US20180294669A1 - Wireless power receiver and method of controlling the same - Google Patents
Wireless power receiver and method of controlling the same Download PDFInfo
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- US20180294669A1 US20180294669A1 US16/004,065 US201816004065A US2018294669A1 US 20180294669 A1 US20180294669 A1 US 20180294669A1 US 201816004065 A US201816004065 A US 201816004065A US 2018294669 A1 US2018294669 A1 US 2018294669A1
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Classifications
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- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02J—CIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
- H02J50/00—Circuit arrangements or systems for wireless supply or distribution of electric power
- H02J50/10—Circuit arrangements or systems for wireless supply or distribution of electric power using inductive coupling
-
- H02J17/00—
-
- H02J5/005—
-
- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02J—CIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
- H02J50/00—Circuit arrangements or systems for wireless supply or distribution of electric power
- H02J50/005—Mechanical details of housing or structure aiming to accommodate the power transfer means, e.g. mechanical integration of coils, antennas or transducers into emitting or receiving devices
-
- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02J—CIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
- H02J50/00—Circuit arrangements or systems for wireless supply or distribution of electric power
- H02J50/10—Circuit arrangements or systems for wireless supply or distribution of electric power using inductive coupling
- H02J50/12—Circuit arrangements or systems for wireless supply or distribution of electric power using inductive coupling of the resonant type
-
- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02J—CIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
- H02J50/00—Circuit arrangements or systems for wireless supply or distribution of electric power
- H02J50/80—Circuit arrangements or systems for wireless supply or distribution of electric power involving the exchange of data, concerning supply or distribution of electric power, between transmitting devices and receiving devices
-
- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02J—CIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
- H02J50/00—Circuit arrangements or systems for wireless supply or distribution of electric power
- H02J50/90—Circuit arrangements or systems for wireless supply or distribution of electric power involving detection or optimisation of position, e.g. alignment
-
- H—ELECTRICITY
- H02—GENERATION; CONVERSION OR DISTRIBUTION OF ELECTRIC POWER
- H02J—CIRCUIT ARRANGEMENTS OR SYSTEMS FOR SUPPLYING OR DISTRIBUTING ELECTRIC POWER; SYSTEMS FOR STORING ELECTRIC ENERGY
- H02J7/00—Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries
- H02J7/00032—Circuit arrangements for charging or depolarising batteries or for supplying loads from batteries characterised by data exchange
- H02J7/00034—Charger exchanging data with an electronic device, i.e. telephone, whose internal battery is under charge
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- H02J7/025—
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- H04B5/0037—
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- H04B5/0093—
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B5/00—Near-field transmission systems, e.g. inductive or capacitive transmission systems
- H04B5/20—Near-field transmission systems, e.g. inductive or capacitive transmission systems characterised by the transmission technique; characterised by the transmission medium
- H04B5/24—Inductive coupling
- H04B5/26—Inductive coupling using coils
- H04B5/266—One coil at each side, e.g. with primary and secondary coils
-
- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04B—TRANSMISSION
- H04B5/00—Near-field transmission systems, e.g. inductive or capacitive transmission systems
- H04B5/70—Near-field transmission systems, e.g. inductive or capacitive transmission systems specially adapted for specific purposes
- H04B5/79—Near-field transmission systems, e.g. inductive or capacitive transmission systems specially adapted for specific purposes for data transfer in combination with power transfer
Definitions
- the disclosure relates to a wireless power transmission technology. More particularly, the disclosure relates to a wireless power receiver capable of wirelessly receiving power and a method of controlling the same.
- a wireless power transmission or a wireless energy transfer refers to a technology of wirelessly transferring electric energy to desired devices.
- an electric motor or a transformer employing the principle of electromagnetic induction has been extensively used and then a method for transmitting electrical energy by irradiating electromagnetic waves, such as radio waves or lasers, has been suggested.
- electromagnetic induction refers to a phenomenon in which voltage is induced so that current flows when a magnetic field is varied around a conductor.
- wireless energy transmission schemes include a remote telecommunication technology based on magnetic resonance and a short wave radio frequency in addition to the electromagnetic induction.
- the receiver since various frequency bands are used in the transmitter, the receiver may not be sufficiently charged with power when the frequency used in the transmitter differs from that used in the receiver. In addition, the receiver must use a plurality of coils in order to cover various frequency bands used in the transmitter.
- the disclosure provides a wireless power receiver capable of improving power transmission efficiency by varying a used frequency band depending on various frequency bands used in a wireless power transmitter, and a method of controlling the same.
- a wireless power receiver to wirelessly receive power from a wireless power transmitter comprises a reception coil to receive the power wirelessly transmitted from the wireless power transmitter through a magnetic field, a frequency detecting unit to detect a frequency band of the power transmitted from the wireless power transmitter and an inductance varying unit to change an inductance of the reception coil according to the detected frequency band.
- a wireless power receiver to wirelessly receive power from a wireless power transmitter comprises a reception coil to receive power having a first frequency band from the wireless power transmitter, a frequency detecting unit to detect if a frequency band of the power transmitted from the wireless power transmitter is the first frequency band and an inductance varying unit to change an inductance of the reception coil if the detected frequency band is out of the first frequency band.
- power can be efficiently transmitted by varying a used frequency band of the wireless power receiver depending on various frequency bands used in a wireless power transmitter, and a method of controlling the same.
- FIG. 1 is a circuit diagram showing the structure of a wireless power transmission system according to one embodiment.
- FIG. 2 is a circuit diagram showing the structure of a wireless power transmission system according to another embodiment.
- FIG. 3 is an equivalent circuit diagram of a first transmission coil according to one embodiment.
- FIG. 4 is an equivalent circuit diagram of a power supply device and a wireless power transmitter according to one embodiment.
- FIG. 5 is an equivalent circuit diagram showing a wireless power receiver according to one embodiment.
- FIG. 6 is a block diagram showing a wireless power transmission system according to still another embodiment.
- FIG. 7 is a block diagram showing the structure of a wireless power receiver according to another embodiment.
- FIG. 8 is a block diagram to explain the operation of an inductance varying unit when the wireless power receiver according to another embodiment receives the power having a first frequency band.
- FIG. 9 is a block diagram to explain the operation of the inductance varying unit when the wireless power receiver according to another embodiment receives the power having a second frequency band.
- FIG. 10 is a view to explain the operation of the inductance varying unit when the wireless power receiver according to the embodiment receives the power having the first frequency band and the reception coil has the spiral structure.
- FIG. 11 is a view to explain the operation of the inductance varying unit when the wireless power receiver according to the embodiment receives the power having the second frequency band and the reception coil has the spiral structure
- FIG. 12 is a view to explain the operation of the inductance varying unit when the wireless power receiver according to the embodiment receives the power having the first frequency band and the reception coil has the helical structure.
- FIG. 13 is a view to explain the operation of the inductance varying unit when the wireless power receiver according to the embodiment receives the power having the second frequency band and the reception coil has the helical structure.
- FIG. 14 is a view showing the structure of a wireless power receiver according to still another embodiment in which an MEMS switch is used as the inductance varying unit.
- FIG. 15 is a flowchart showing the method of controlling the wireless power receiver according to one embodiment.
- FIG. 16 is a flowchart to explain a method of controlling the wireless power receiver according to another embodiment.
- FIG. 1 is a circuit diagram showing the structure of a wireless power transmission system 10 according to one embodiment.
- the wireless power transmission system 10 may include a power supply device 100 , a wireless power transmitter 200 , a wireless power receiver 300 , and a load 400 .
- the power supply device 100 may be included in the wireless power transmitter 200 .
- the wireless power transmitter 200 may include a first transmission coil 210 .
- the wireless power receiver 300 may include a reception coil 310 and a rectifying unit 330 .
- Both terminals of the power supply device 100 are connected with both terminals of the first transmission coil 210 .
- Both terminals of the reception coil 310 are connected with both terminals of the rectifying unit 330
- the load 400 is connected with both terminals of the rectifying unit 330 .
- the load 400 may be included in the wireless power receiver 300 .
- the power generated from the power supply device 100 is transmitted to the wireless power transmitter 200 , and the power received in the wireless power transmitter 200 is transmitted to the wireless power receiver 300 through electromagnetic induction.
- the power supply device 100 generates AC power having a predetermined frequency to be transmitted to the wireless power transmitter 200 .
- the first transmission coil 210 and the reception coil 310 are inductively coupled with each other. In other words, if AC current flows through the first transmission coil 210 by power supplied from the power supply device 100 , the AC current is induced into the reception coil 310 physically spaced apart from the first transmission coil 210 through the electromagnetic induction, so that AC power can be transmitted to the reception coil 310 .
- the frequency band of power transmitted from the first transmission coil 210 to the reception coil 310 may be in the range of 110 KHz to 205 KHz, but the embodiment is not limited thereto.
- the power received in the reception coil 310 is rectified through the rectifying unit 330 and transmitted to the load 400 .
- the first transmission coil 210 and the reception coil 310 may have one of a spiral structure and a helical structure.
- a quality factor and a coupling coefficient are important in the wireless power transmission.
- the power transmission efficiency can be more improved as the quality factor and the coupling coefficient represent greater values.
- the quality factor may refer to an index of energy that may be stored in the vicinity of the wireless power transmitter 200 or the wireless power receiver 300 .
- the quality factor may be varied depending on the operating frequency ⁇ as well as a shape, a dimension and a material of a coil.
- L refers to the inductance of a coil
- R refers to resistance corresponding to the quantity of power loss caused in the coil.
- the quality factor may have a value of 0 to infinity. As the quality factor is increased, the power transmission efficiency between the wireless power transmitter 200 and the wireless power receiver 300 .
- the coupling coefficient represents the degree of magnetic coupling between a transmission coil and a reception coil, and has a value of 0 to 1.
- the coupling coefficient may vary according to the relative position and the relative distance between the transmission coil and the reception coil.
- FIG. 2 is a circuit diagram showing the structure of a wireless power transmission system 20 according to another embodiment.
- the wireless power transmission system 20 may include the power supply device 100 , the wireless power transmitter 200 , the wireless power receiver 300 , and the load 400 .
- the power supply device 100 may be included in the wireless power transmitter 200 .
- the wireless power transmitter 200 may include the first transmission coil 210 and a second transmission coil 220 .
- Both terminals of the first transmission coil 210 may be connected with both terminals of the power supply device 100 .
- the second transmission coil 220 may be spaced apart from the first transmission coil 210 by a predetermined distance.
- the wireless power receiver 300 may include the reception coil 310 and the rectifying unit 330 .
- Both terminals of the reception coil 310 are connected with both terminals of the rectifying unit 330
- the load 400 is connected with both terminals of the rectifying unit 330 .
- the load 400 may be included in the wireless power receiver 300 .
- the power generated from the power supply device 100 may be transmitted to the wireless power transmitter 200 , and the power received in the wireless power transmitter 200 may be transmitted to the wireless power receiver 300 through electromagnetic induction or resonance.
- the power supply device 100 generates AC power having a predetermined frequency to be transmitted to the wireless power transmitter 200 .
- the AC power received in the first transmission coil 210 may be transmitted to the second transmission coil 220 through electromagnetic induction.
- the first transmission coil 210 and the second transmission coil 220 are inductively coupled with each other.
- the AC current flows through the first transmission coil 210 by power supplied from the power supply device 100 , the AC current is induced into the second transmission coil 220 physically spaced apart from the first transmission coil 210 through the electromagnetic induction, so that AC power can be transmitted to the second transmission coil 220 .
- the second transmission coil 220 may transmit the AC power, which is received therein from the first transmission coil 210 , to the reception coil 310 of the wireless power receiver 300 through resonance or electromagnetic induction.
- the second transmission coil 220 transmits power to the reception coil 310 through resonance
- the second transmission coil 220 and the reception coil 310 are resonance-coupled with each other so that the second transmission coil 220 and the reception coil 310 operate at a resonance frequency band. Due to the resonance-coupling between the second transmission coil 220 and the reception coil 310 , the power transmission efficiency between the wireless power transmitter 200 and the wireless power receiver 300 can be greatly improved.
- the frequency band of transmitted power in the case that the second transmission coil 220 transmits power to the reception coil 310 through resonance may be different from the frequency band of transmitted power in the case that the second transmission coil 220 transmits power to the reception coil 310 through electromagnetic induction.
- the frequency band of the transmitted power may be 6.78 MHz, but the embodiment is not limited thereto.
- the frequency band of the transmitted power may be in the range of 110 MHz to 205 MHz, but the embodiment is not limited thereto.
- FIG. 3 is an equivalent circuit diagram of the first transmission coil 210 according to one embodiment.
- the first transmission coil 210 may include an inductor L 1 and a capacitor C 1 , and a circuit having a proper inductance and a proper capacitance is configured by the inductor L 1 and the capacitor C 1 .
- the first transmission coil 210 may be configured in the form of an equivalent circuit in which both terminals of the inductor L 1 are connected with both terminals of the capacitor C 1 .
- the first transmission coil 210 may be configured in the form of an equivalent coil in which the inductor L 1 is connected with the capacitor C 1 in parallel.
- the capacitor C 1 may include a variable capacitor, and impedance matching may be performed as the capacitance of the capacitor C 1 is adjusted.
- Equivalent circuits of the second transmission coil 220 and the reception coil 310 may have the same form as that shown in FIG. 3 .
- FIG. 4 is an equivalent circuit diagram of the power supply device 100 and the wireless power transmitter 200 according to one embodiment.
- the first transmission coil 210 and the second transmission coil 220 may include inductors L 1 and L 2 having predetermined inductances and capacitors C 1 and C 2 having predetermined capacitances.
- FIG. 5 is an equivalent circuit diagram showing the wireless power receiver 300 according to one embodiment.
- the reception coil 310 may include an inductor L 3 having a predetermined inductance and a capacitor C 3 having a predetermined capacitance.
- the rectifying unit 330 rectifies AC power received therein from the reception coil 310 into DC power and may transmit the rectified DC power to the load 400 .
- the rectifying unit 330 may include a rectifier and a smoothing circuit.
- the rectifier may include a silicon rectifier, and may be equivalent to a diode D 1 .
- the rectifier may convert the AC power received therein from a reception induction coil 320 into DC power.
- the smoothing circuit may output smooth DC power by removing an AC component from the DC power converted by the rectifier.
- the smoothing circuit may include a rectification capacitor C 5 as shown in FIG. 4 , but the embodiment is not limited thereto.
- the load 400 may be a predetermined rechargeable battery or device requiring the DC power.
- the load 400 may refer to a battery.
- the wireless power receiver 300 may be embedded in an electronic appliance such as a cellular phone, a mouse, and a laptop computer. Accordingly, the reception coil 310 may have the shape suitable for the shape of an electronic appliance.
- the wireless power transmitter 200 may interchange information with the wireless power receiver 300 through in-band communication or out-of-band communication.
- the in-band communication refers to the communication for interchanging information between the wireless power transmitter 200 and the wireless power receiver 300 through a signal having the frequency used in the wireless power transmission.
- the wireless power receiver 300 may further include a switch and may receive or may not receive power transmitted from the wireless power transmitter 200 through a switching operation of the switch. Accordingly, the wireless power transmitter 200 can recognize an on-signal or an off-signal of the wireless power receiver 300 by detecting the quantity of power consumed in the wireless power transmitter 200 .
- the wireless power receiver 300 may change the power consumed in the wireless power transmitter 200 by adjusting the quantity of power absorbed in a resistor by using the resistor and the switch.
- the wireless power transmitter 200 may acquire the state information of the wireless power receiver 300 by detecting the variation of the power consumption.
- the switch may be connected with the resistor in series.
- the state information of the wireless power receiver 300 may include information about the present charge quantity and the change of the charge quantity in the wireless power receiver 300 .
- the switch is open, the power absorbed in the resistor becomes zero, and the power consumed in the wireless power transmitter 200 is reduced.
- the switch If the switch is short-circuited, the power absorbed in the resistor becomes greater than zero, and the power consumed in the wireless power transmitter 200 is increased. If the wireless power receiver repeats the above operation, the wireless power transmitter 200 detects power consumed therein to make digital communication with the wireless power receiver 300 .
- the wireless power transmitter 200 receives the state information of the wireless power receiver 300 through the above operation so that the wireless power transmitter 200 can transmit appropriate power.
- the state information of the wireless power transmitter 200 may include information about the maximum quantity of power to be supplied from the wireless power transmitter 200 , the number of wireless power receivers 300 receiving the power from the wireless power transmitter 200 and the quantity of available power of the wireless power transmitter 200 .
- the out-of-band communication refers to the communication performed through a specific frequency band other than the resonance frequency band in order to exchange information necessary for the power transmission.
- the wireless power transmitter 200 and the wireless power receiver 300 can be equipped with out-of-band communication modules to exchange information necessary for the power transmission.
- the out-of-band communication module may be installed in the power supply device. According to one embodiment, the out-of-band communication module may use a short-range communication technology, such as Bluetooth, Zigbee, WLAN or NFC, but the embodiment is not limited thereto.
- FIG. 6 is a block diagram showing a wireless power transmission system according to still another embodiment.
- the wireless power transmission system 10 may include the power supply device 100 , the wireless power transmitter 200 , the wireless power receiver 300 , and the load 400 .
- the power supply device 100 , the wireless power transmitter 200 , and the load 400 are the same as those described with reference to FIGS. 2 to 5 , and the details thereof will be omitted.
- the wireless power receiver 300 may include the reception coil 310 , a frequency detecting unit 350 , an inductance varying unit 360 , a frequency matching unit 370 , and the rectifying unit 330 .
- the reception coil 310 may wirelessly receive power from the wireless power transmitter 200 .
- the reception coil 310 wirelessly receives power from the wireless power transmitter 200
- the reception coil 310 is magnetically coupled with the second transmission coil 220 provided in the wireless power transmitter 200 so that the reception coil 310 may wirelessly receive power from the second transmission coil 220 through a magnetic field.
- the power transmitted from the wireless power transmitter 200 to the reception coil 310 may have various frequency bands.
- the power transmitted from the wireless power transmitter 200 to the reception coil 310 may have three frequency bands.
- a first frequency band may be in the range of 110 KHz to 205 KHz, and may include a frequency band used in the WPC (Wireless Power Consortium) which is a technical standard to wirelessly transmit power through electromagnetic induction.
- WPC Wireless Power Consortium
- an outer diameter of the reception coil 310 may be 40 mm, but the embodiment is not limited thereto.
- a second frequency band may be 6.78 MHz, and may include a frequency band used in the A4WP (Alliance for Wireless Power) which is a technical standard to wirelessly transmit power through resonance.
- A4WP Alliance for Wireless Power
- an outer diameter of the reception coil 310 may be 20 mm, but the embodiment is not limited thereto.
- a third frequency band may be in the range of 206 KHz to 300 KHz, and may include a frequency band used in the PMA (Power Matters Alliance) which is a technical standard to wirelessly transmit power through electromagnetic induction.
- PMA Power Matters Alliance
- an outer diameter of the reception coil 310 may be 35 mm, but the embodiment is not limited thereto.
- the numerical value of the frequency band is provided, but the embodiment is not limited thereto.
- the reception coil 310 may have one of a spiral structure and a helical structure, but the embodiment is not limited thereto. In other words, the reception coil 310 may have various shapes.
- the reception coil 310 may have a spiral structure.
- reception coil 310 may be expressed in the structure including an inductor having a proper inductance.
- the frequency detecting unit 350 may detect a frequency band of power received by the reception coil 310 . According to one embodiment, the frequency detecting unit 350 may detect the frequency band of the power received by the reception coil through the in-band communication or the out-of-band communication.
- the wireless power receiver 300 when the wireless power receiver 300 receives power having a first frequency band from the wireless power transmitter 200 , the wireless power receiver 300 may make communication with the wireless power transmitter 200 through the in-band communication.
- the frequency detecting unit 350 may send a ping signal to the wireless power transmitter 200 and may detect a frequency band based on a response signal to the ping signal.
- the first frequency band may be in the range of 110 KHz to 205 KHz, and may be a frequency band used in a WPC (Wireless Power Consortium) which is a technical standard to wirelessly transmit power through electromagnetic induction.
- WPC Wireless Power Consortium
- the ping signal may be a signal to determine if the wireless power receiver 300 normally receives the power having the first frequency band from the wireless power transmitter 200 .
- the frequency detecting unit 350 determines that the wireless power transmitter 100 transmits power having the second frequency band. Accordingly, the frequency detecting unit 350 may determine if the frequency band is the first frequency band or the second frequency band.
- the second frequency band may be 6.78 MHz, and may be a frequency band used in the A4WP (Alliance for Wireless Power) which is a technical standard to wirelessly transmit power through resonance.
- the frequency detecting unit 350 may stop the in-band communication with the wireless power transmitter 200 , and may detect the frequency of power transmitted from the wireless power transmitter 200 through the out-of-band communication.
- the frequency detecting unit 350 may include one among short range communication modules for Bluetooth, Zigbee, WLAN, and NFC.
- the inductance varying unit 360 may change the inductance of the reception coil 310 according to the frequency band detected by the frequency detecting unit 350 .
- the inductance varying unit 360 increases the inductance of the reception coil 310 .
- the inductance varying unit 360 may decrease the inductance of the reception coil 310 . The details thereof will be described below.
- the frequency matching unit 370 may match the specific frequency by using the changed inductance.
- the specific frequency may refer to a frequency band detected by the frequency detecting unit 350 .
- the frequency matching unit 370 enables more exact matching to the frequency of the power transmitted from the wireless power transmitter 200 .
- the frequency matching unit 370 may output the AC power in the matching state to the rectifying unit 300 .
- the rectifying unit 330 may receive the AC power in the matching state from the frequency matching unit 370 and rectify the AC power in the matching state into DC power.
- the rectifying unit 330 may transmit the rectified DC power to the load 400 and charge the load 400 with the DC power.
- FIG. 7 is a block diagram showing the structure of a wireless power receiver according to another embodiment
- FIG. 8 is a block diagram to explain the operation of the inductance varying unit when the wireless power receiver according to another embodiment receives the power having the first frequency band
- FIG. 9 is a block diagram to explain the operation of the inductance varying unit when the wireless power receiver according to another embodiment receives the power having the second frequency band.
- the wireless power receiver 300 may include the reception coil 310 , the frequency detecting unit 350 , the inductance varying unit 360 , the frequency matching unit 370 and the rectifying unit 330 .
- the inductance varying unit 360 may include at least one switch, and each switch may connect one terminal of the reception coil 310 with one terminal of the frequency matching unit 370 , and connect an opposite terminal of the reception coil 310 with an opposite terminal of the frequency matching unit 330 .
- FIG. 7 shows that the inductance varying unit 360 includes two switches, the embodiment is not limited thereto.
- the switch included in the inductance varying unit 360 may include a MEMS (Micro Electro Mechanical System) switch.
- MEMS Micro Electro Mechanical System
- a MEMS technology refers to a technology of manufacturing ultra-precision machinery having the size of micron (um) or millimeters (mm) based on a semiconductor process technology. Since the MEMS switch included in the inductance varying unit 360 has a significantly small size, the MEMS switch is applicable to the wireless power receiver 300 that must be down-scaled.
- the inductance varying unit 360 will be described on the assumption that the inductance varying unit 360 includes two switches of a first switch 361 and a second switch 363 .
- the inductance varying unit 360 may change the inductance according to the frequency band of the power received by the reception coil 310 which is detected by the frequency detecting unit 350 .
- the inductance varying unit 360 may change the inductance of the reception coil 310 by actuating the first and second switches 361 and 363 according to the detected frequency band.
- the inductance of the reception coil 310 is changed according to the frequency band of the power received by the reception coil 310 so that the power having various frequency bands is stably transmitted through the frequency matching. This can be confirmed through the relationship equation between the frequency used in the transmission of an electromagnetic wave and the inductance. In other words, the relationship equation between the frequency f and the inductance L of the reception coil 310 may be expressed as Equation 1.
- the frequency matching unit 370 may match the specific frequency by using the changed inductance.
- the specific frequency may refer to a frequency band detected by the frequency detecting unit 350 .
- the frequency matching unit 370 enables more exact matching to the frequency of the power transmitted from the wireless power transmitter 200 .
- the frequency matching unit 370 may include at least one capacitor connected with the reception coil 310 .
- the capacitor may include a fixed capacitor or a variable capacitor.
- a control unit (not shown) of the wireless power receiver 300 may adjust the capacitance of the capacitor according to the inductance changed by the inductance varying unit 360 so that the matching is achieved at each frequency band.
- the capacitance of the capacitor must be adjusted according to the changed inductance of the reception coil 310 so that the matching is achieved at the transmitted frequency band.
- the frequency matching unit 370 may match the frequency band of the power transmitted from the wireless power transmitter 200 to the frequency band of the wireless power receiver 300 .
- the wireless power receiver 300 may change the inductance of the reception coil 310 through the operation of the inductance varying unit 360 according to the case that the power having the first frequency band is received and the case that the power having the second frequency band is received. Therefore, the wireless power receiver 300 may cover both of the case that the wireless power transmitter 200 transmits the power having the first frequency band and the case that the wireless power transmitter 200 transmits the power having the second frequency band. Accordingly, the convenience of the user can be improved. The details thereof will be described in more detail with reference to FIGS. 8 and 9 .
- FIG. 8 is a block diagram to explain the procedure of changing the inductance of the reception coil 310 when the wireless power receiver 300 wirelessly receives the power having the first frequency band from the wireless power transmitter 200 .
- FIG. 9 is a block diagram to explain the procedure of changing the inductance of the reception coil 310 when the wireless power receiver 300 wirelessly receives the power having the second frequency band from the wireless power transmitter 200 .
- the inductance varying unit 360 connects the first switch 361 with a first terminal A of the reception coil 310 , and connects the second switch 363 with a third terminal C of the reception coil 310 .
- the inductance varying unit 360 may control the operation of the first switch 361 and the second switch 363 as shown in FIG. 8 so that the length of the reception coil 310 is increased in order to increase the inductance of the reception coil 310 .
- the inductance of the reception coil 310 may be expressed as a reference sign L 3 .
- the inductance L 3 may have the range of 10 uH to 15 uH.
- the capacitance of the capacitor C 6 of the frequency matching unit 370 may be adjusted so that the frequency band of the wireless power receiver 300 is matched to the first frequency band.
- the capacitance of the capacitor C 6 may be 1.8 nF, but the embodiment is not limited thereto.
- an additional capacitor which is connectable with the reception coil 310 in series, may be provided at one terminal of the capacitor C 6 for the purpose of frequency matching.
- the capacitance of the additional capacitor may be 183 nF, but the embodiment is not limited thereto.
- the frequency band of the wireless power receiver 300 may be matched to the first frequency band of the power transmitted from the wireless power transmitter 200 .
- the inductance varying unit 360 connects the first switch 361 with the second terminal B of the reception coil 310 , and connects the second switch 363 with the third terminal C of the reception coil 310 .
- the inductance varying unit 360 may control the operation of the first switch 361 and the second switch 363 as shown in FIG. 9 so that the length of the reception coil 310 is shortened in order to decrease the inductance of the reception coil 310 .
- the inductance of the reception coil 310 may be expressed as a reference sign L 4 .
- the inductance L 4 may have the range of 1.5 uH to 2 uH.
- the capacitance of the capacitor C 7 of the frequency matching unit 370 may be adjusted so that the frequency band of the wireless power receiver 300 is matched to the second frequency band.
- the capacitance of the capacitor C 7 may be 470 pF, but the embodiment is not limited thereto.
- an additional capacitor which is connectable with the reception coil 310 in series, may be provided at one terminal of the capacitor C 7 for the purpose of frequency matching.
- the capacitance of the additional capacitor may be 360 pF, but the embodiment is not limited thereto.
- the frequency band of the wireless power receiver 300 may be matched to the second frequency band of the power transmitted from the wireless power transmitter 200 .
- the frequency detecting unit 360 may connect the first switch 361 with the first terminal A of the reception coil 310 , and connect the second switch 363 with the second terminal B of the reception coil 310 .
- the inductance varying unit 360 may control the operations of the first switch 361 and the second switch 363 so that the inductance of the reception coil 310 has an intermediate value between L 3 and L 4 .
- the inductance L 4 may be in the range of 4 uH to 5 uH.
- the capacitance of the capacitor of the frequency matching unit 370 may be adjusted so that the frequency band of the wireless power receiver 300 is matched to the third frequency band.
- the capacitance of the capacitor may be 5 nF, but the embodiment is not limited thereto.
- an additional capacitor which is connectable with the reception coil 310 in series, may be provided at one terminal of the capacitor for the purpose of frequency matching.
- the capacitance of the additional capacitor may be 120 nF, but the embodiment is not limited thereto.
- the wireless power receiver 300 according to the embodiment may change the inductance of the reception coil 310 according to the frequency band of the power transmitted from the wireless power transmitter 200 .
- the wireless power transmitter 200 uses various frequency bands in power transmission
- the wireless power receiver 300 may cover the various frequency bands. Therefore, when a user charges a terminal equipped with the wireless power receiver 300 , the user can conveniently charge the terminal regardless of the frequency band used in the wireless power transmitter 200 .
- the terminal may include one of a mobile phone, an MP3, and a smart appliance, but the embodiment is not limited thereto.
- the terminal is applicable to all electronic appliances that can be wirelessly charged.
- FIG. 10 is a view to explain the operation of the inductance varying unit when the wireless power receiver according to the embodiment receives the power having the first frequency band and the reception coil has the spiral structure.
- FIG. 11 is a view to explain the operation of the inductance varying unit when the wireless power receiver according to the embodiment receives the power having the second frequency band and the reception coil has the spiral structure.
- the wireless power receiver 300 may include the reception coil 310 , the frequency detecting unit 350 , the inductance varying unit 360 , the frequency matching unit 370 , and the rectifying unit 330 similarly to the structure of the wireless power receiver 300 described with reference to FIG. 6 .
- the reception coil 310 has a spiral structure in which one conductive line has a spiral shape on a flat surface.
- a thickness T 1 is 100 um
- a line width W 1 is 600 um
- a spacing S 1 is 100 um, but the above numeric values are provided, but the embodiment is not limited thereto.
- the inductance varying unit 360 connects the first switch 361 with the first terminal A of the reception coil 310 , and connects the second switch 363 with the third terminal C of the reception coil 310 .
- the inductance varying unit 360 may control the operations of the first and second switches 361 and 363 as shown in FIG. 10 so that the length of the reception coil 310 is lengthened in order to increase the inductance of the reception coil 310 .
- the changed inductance of the reception coil 310 may be expressed as L 3
- the first and second switches 361 and 363 may include MEMS switches, and may be operated by external power.
- the capacitance of the capacitor of the frequency matching unit 370 may be adjusted so that the frequency band of the wireless power receiver 300 is matched to the first frequency band.
- the frequency band of the wireless power receiver 300 may be matched to the first frequency band of the power transmitted from the wireless power transmitter 200 .
- the inductance varying unit 360 when the frequency band detected by the frequency detecting unit 350 is the second frequency band of 6.78 MHz, the inductance varying unit 360 connects the first switch 361 with the second terminal B of the reception coil 310 , and connects the second switch 363 with the third terminal C of the reception coil 310 .
- the inductance varying unit 360 may control the operations of the first and second switches 361 and 363 as shown in FIG. 11 so that the length of the reception coil 310 is shortened in order to decrease the inductance of the reception coil 310 .
- the changed inductance of the reception coil 310 may be expressed as L 4 , and L 4 is smaller than L 3 .
- the length of the reception coil 310 is shortened.
- the length of the reception coil 310 is shortened by the length from the first terminal A to the second terminal B of the reception coil 310 , so that the inductance of the reception coil 310 may be reduced.
- the capacitance of the capacitor of the frequency matching unit 370 may be adjusted so that the frequency band of the wireless power receiver 300 is matched to the second frequency band.
- the frequency band of the wireless power receiver 300 may be matched to the second frequency band of the power transmitted from the wireless power transmitter 200 .
- the first terminal A of the reception coil 310 may be provided in an open state
- the first terminal A of the reception coil 310 may be grounded through a third switch 365 as shown in FIG. 11 .
- the inductance varying unit 360 may further include the third switch 356 .
- the first terminal A of the reception coil 310 is grounded so that the loop of the reception coil 310 formed from the second terminal B to the third terminal C is electrically isolated from the loop of the reception coil 310 formed from the first terminal A to the second terminal B to prevent the frequency interference.
- the first terminal A of the reception coil 310 is grounded thereby preventing the frequency interference that may occur in the procedure that the loop of the reception coil 310 formed from the second terminal B to the third terminal C receives power from the wireless power transmitter 200 .
- the inductance varying unit 360 may connect the first switch 361 to the first terminal A of the reception coil 310 , and connect the second switch 363 to the second terminal B of the reception coil 310 .
- the inductance varying unit 360 may control the operations of the first and second switches 361 and 363 so that the inductance of the reception coil 310 has the value between L 3 and L 4 .
- the capacitance of the capacitor of the frequency matching unit 370 can be adjusted so that the frequency band of the wireless power receiver 300 is matched to the third frequency band.
- the wireless power receiver 300 may include the reception coil 310 , the frequency detecting unit 350 , the inductance varying unit 360 , the frequency matching unit 370 , and the rectifying unit 330 similarly to the structure of the wireless power receiver 300 described with reference to FIG. 6 .
- the reception coil 310 has a helical structure in which one conductive line has a 3-D spiral shape.
- a thickness T 2 is 100 um
- a line width W 2 is 600 um
- a spacing S 2 is 100 um, but the above numeric values are provided, but the embodiment is not limited thereto.
- the inductance varying unit 360 connects the first switch 361 with the first terminal A of the reception coil 310 , and connects the second switch 363 with the third terminal C of the reception coil 310 .
- the inductance varying unit 360 may control the operations of the first and second switches 361 and 363 as shown in FIG. 12 so that the length of the reception coil 310 is lengthened in order to increase the inductance of the reception coil 310 .
- the inductance of the reception coil 310 may be changed to L 3 .
- the capacitance of the capacitor of the frequency matching unit 370 can be adjusted so that the frequency band of the wireless power receiver 300 is matched to the first frequency band.
- the frequency band of the wireless power receiver 300 may be matched to the first frequency band of the power transmitted from the wireless power transmitter 200 .
- the inductance varying unit 360 connects the first switch 361 with the second terminal B of the reception coil 310 , and connects the second switch 363 with the third terminal C of the reception coil 310 .
- the inductance varying unit 360 may control the operations of the first and second switches 361 and 363 as shown in FIG. 13 so that the length of the reception coil 310 is shortened in order to decrease the inductance of the reception coil 310 .
- the inductance of the reception coil 310 may be changed to L 4 , and L 4 is smaller than L 3 .
- the capacitance of the capacitor of the frequency matching unit 370 can be adjusted so that the frequency band of the wireless power receiver 300 is matched to the second frequency band.
- the frequency band of the wireless power receiver 300 may be matched to the second frequency band of the power transmitted from the wireless power transmitter 200 .
- the first terminal A of the reception coil 310 may be grounded through the third switch 365 as shown in FIG. 13 .
- the inductance varying unit 360 may further include the third switch 356 .
- the first terminal A of the reception coil 310 is grounded so that the loop of the reception coil 310 formed from the second terminal B to the third terminal C is electrically isolated from the loop of the reception coil 310 formed from the first terminal A to the second terminal B to prevent the frequency interference.
- the first terminal A of the reception coil 310 is grounded thereby preventing the frequency interference that may occur in the procedure that the loop of the reception coil 310 formed from the second terminal B to the third terminal C receives power from the wireless power transmitter 200 .
- the inductance varying unit 360 may connect the first switch 361 to the first terminal A of the reception coil 310 , and connect the second switch 363 to the second terminal B of the reception coil 310 .
- the inductance varying unit 360 may control the operations of the first and second switches 361 and 363 so that the inductance of the reception coil 310 has the value between L 3 and L 4 .
- the capacitance of the capacitor of the frequency matching unit 370 can be adjusted so that the frequency band of the wireless power receiver 300 is matched to the third frequency band.
- FIG. 14 is a view showing the structure of a wireless power receiver according to still another embodiment in which an MEMS switch is used as the inductance varying unit.
- the wireless power receiver 300 may include the reception coil 310 , the frequency detecting unit 350 , the inductance varying unit 360 , the frequency matching unit 370 , and the rectifying unit 330 .
- the inductance varying unit 360 may include at least one MEMS switch. Since the MEMS switch represents the characteristics of low insertion loss and high isolation, requires low cost, and has a significantly small size, the MEMS switch is applicable to the wireless power receiver 300 that must be down-scaled.
- FIG. 14 shows the case that the inductance varying unit 360 employs three MEMS switches having an SPST (Single Pole Single Throw) type, the embodiment is not limited thereto.
- the inductance varying unit 360 may use various types of MEMS switches and the different number of the MEMS switches.
- the inductance varying unit 360 may include three MEMS switches, that is, a first MEMS switch 366 , a second MEMS switch 367 and a third MEMS switch 368 .
- Each MEMS switch may include a power supply unit K, a gate terminal G, a source terminal S, and a drain terminal D.
- the power supply unit K may be connected with the gate terminal G, the source terminal S may be connected with one terminal of the reception coil 310 , and each drain terminal D may be connected with the frequency matching unit 370 .
- the MEMS switch serves as a switch operating by the power supply unit K.
- the MEMS switch may be turned on or turned off according to voltage applied between the gate terminal G and the source terminal S of the MEMS switch. That is to say, in order to turn on the MEMS switch, the voltage of 5V may be applied between the gate terminal G and the source terminal S. In order to turn off the MEMS switch, the voltage of 0V is applied between the gate terminal G and the source terminal S. In this case, voltages of 5V and 0V are provided, but the embodiment is not limited thereto.
- the inductance varying unit 360 may turn on the first MEMS switch 366 through the power supply unit K, turn on the third MEMS switch 368 , and turn off the second MEMS switch 367 .
- the inductance varying unit 360 may control the operation of each MEMS switch so that the length of the reception coil 310 is lengthened in order to increase the inductance of the reception coil 310 .
- the changed inductance of the reception coil 310 may be expressed as L 3 .
- the capacitance of the capacitor of the frequency matching unit 370 may be adjusted so that the frequency band of the wireless power receiver 300 is matched to the first frequency band.
- the inductance varying unit 360 may turn off the first MEMS switch 366 through the power supply unit K, and may turn off the second and third MEMS switches 367 and 368 .
- the inductance varying unit 360 may control the operation of each MEMS switch so that the length of the reception coil 310 is shortened in order to decrease the inductance of the reception coil 310 .
- the changed inductance of the reception coil 310 may be expressed as L 4 .
- the capacitance of the capacitor of the frequency matching unit 370 may be adjusted so that the frequency band of the wireless power receiver 300 is matched to the second frequency band.
- the inductance varying unit 360 may turn on the first and second MEMS switches 366 and 367 through the power supply unit K, and may turn off the third MEMS switch 368 .
- the inductance varying unit 360 may control the operation of each MEMS switch so that the inductance of the reception coil 310 has the value between L 3 and L 4 .
- the capacitance of the capacitor of the frequency matching unit 370 may be adjusted so that the frequency band of the wireless power receiver 300 is matched to the third frequency band.
- FIG. 15 is a flowchart showing the method of controlling the wireless power receiver according to one embodiment.
- the reception coil 310 of the wireless power receiver 300 wirelessly receives power from the wireless power transmitter 200 (step S 101 ).
- the frequency band of the power received by the wireless power receiver 300 may be classified into two frequency bands.
- the first frequency band may be in the range of 110 KHz to 205 KHz, and the second frequency band may be 6.78 MHz.
- the frequency detecting unit 350 of the wireless power receiver 300 detects the frequency band of the power transmitted from the wireless power transmitter 200 (step S 103 ). According to one embodiment, the frequency detecting unit 350 may detect the frequency band of the power transmitted from the wireless power transmitter 200 through the in-band communication or the out-of-band communication.
- the frequency detecting unit 350 of the wireless power receiver 300 determines if the detected frequency band is the first frequency band (step S 105 ). In other words, the frequency detecting unit 350 may determine if the detected frequency band is the first frequency band or the second frequency band.
- the inductance varying unit 360 of the wireless power receiver 300 increases the inductance of the reception coil 310 through the switching operation so that the reception coil 310 has proper inductance (step S 107 ). Since the frequency band used based on electromagnetic induction is lower than the second frequency band, the inductance varying unit 360 may increase the inductance by lengthening the length of the reception coil 310 through the switching operation. Since the change of the inductance has been described with reference to FIGS. 8, 10, and 12 , the details thereof will be omitted.
- the frequency matching unit 370 of the wireless power receiver 300 matches the frequency of the wireless power receiver 300 to the first frequency band by combining the capacitance and the increased inductance of the reception coil 310 and transmits AC power having a frequency band matched to the first frequency band to the rectifying unit 330 (step S 109 ).
- the rectifying unit 330 of the wireless power receiver 300 rectifies the AC power in the matching state into DC power and transmits the DC power to the load 400 (step S 111 ).
- the frequency detecting unit 350 determines the detected frequency band as the second frequency band (step S 113 ).
- the inductance varying unit 360 of the wireless power receiver 300 decreases the inductance of the reception coil 310 through the switching operation so that the reception coil 310 has proper inductance (step S 115 ). Since the second frequency band is higher than the second frequency band, the inductance varying unit 360 may decrease the inductance by shortening the length of the reception coil 310 through the switching operation. Since the change of the inductance has been described with reference to FIGS. 9, 11, and 13 , the details thereof will be omitted.
- the frequency matching unit 370 of the wireless power receiver 300 matches the frequency of the wireless power receiver 300 to the second frequency band by combining the capacitance and the decreased inductance of the reception coil 310 and transmits AC power having a frequency band matched to the second frequency band to the rectifying unit 330 (step S 117 ).
- FIG. 16 is a flowchart to explain a method of controlling the wireless power receiver according to another embodiment.
- the wireless power receiver 300 operates at the first frequency band (step S 201 ).
- the inductance of the reception coil 310 may be set on the assumption that the frequency band of the power transmitted from the wireless power transmitter 200 is the first frequency band.
- the capacitance of the capacitor of the frequency matching unit 370 must be set according to the set inductance so that the frequency band of the wireless power receiver 300 is matched to the first frequency band.
- the first frequency band may be in the range of 110 KHz to 205 KHz, but the embodiment is not limited thereto.
- the reception coil 310 of the wireless power receiver 300 receives power having the first frequency band from the wireless power transmitter 200 (step S 203 ).
- the reception coil 310 may wirelessly receive the power having the first frequency band through the electromagnetic induction from the second transmission coil 220 of the wireless power transmitter 200 .
- the frequency detecting unit 350 of the wireless power receiver 300 transmits a power signal to the wireless power transmitter 200 through in-band communication (step S 205 ).
- the in-band communication scheme refers to a communication scheme to transmit information through a switch and a resistor by using the frequency band used in the wireless power transmission, and the details thereof has been described with reference to FIG. 5 .
- the frequency detecting unit 350 may periodically transmit the power signal to the wireless power transmitter 200 through the in-band communication.
- the power signal may include one of a signal, which is transmitted by the wireless power receiver 300 in order to notify the wireless power transmitter 200 that the wireless power receiver 300 normally receives power, and a signal which is transmitted by the wireless power receiver 300 in order to request that the wireless power transmitter 200 increases or decreases power transmission.
- the frequency detecting unit 350 of the wireless power receiver 300 periodically transmits the power signal to the wireless power transmitter 200 while determining if the wireless power receiver 300 has not received the power normally, that is, a power receiving state is abnormal (step S 207 ).
- the frequency detecting unit 350 determines that the wireless power receiver 300 has not received the power normally, that is, the power receiving state is abnormal in the procedure of transmitting the power signal to the wireless power receiver 300 three times. Otherwise, the frequency detecting unit 350 determines that the power receiving state is normal. In this case, the three-time transmission of the power signal is provided, but the embodiment is not limited thereto. In addition, if the power receiving state is abnormal, the frequency band of the power transmitted from the wireless power transmitter 200 may not be the first frequency band. If the frequency detecting unit 350 determines that the power receiving state is abnormal, the frequency detecting unit 350 of the wireless power receiver 300 activates the operation of the out-of-band communication module (step S 209 ).
- the out-of-band communication module may be provided in the frequency detecting unit 350 .
- the out-of-band communication module may employ a short-range communication scheme such as the Bluetooth, the ZigBee, the WLAN, and the NFC, but the embodiment is not limited thereto.
- the procedure returns to step S 201 .
- the frequency detecting unit 350 of the wireless power receiver 300 determines that the frequency band of the power transmitted from the wireless power transmitter 200 is the second frequency band through the out-of-band communication module (step S 211 ). In other words, the wireless power receiver 300 makes out-of-band communication with the wireless power transmitter 200 to determine if the frequency band of the power transmitted from the wireless power transmitter 200 is the second frequency band.
- the second frequency band may be 6.78 MHz, but the embodiment is not limited thereto.
- the inductance varying unit 360 of the wireless power receiver 300 changes the inductance of the reception coil 310 to decrease the inductance of the reception coil 310 in order to match the frequency band of the wireless power receiver 300 to the second frequency band (step S 213 ). Since the change of the inductance has been described with reference to FIGS. 9, 11, and 13 , the details thereof will be omitted.
- the frequency matching unit 370 of the wireless power receiver 300 more exactly matches the frequency band of the wireless power receiver 300 to the second frequency band through the capacitor as the inductance of the reception coil 310 is changed (step S 215 ).
- the rectifying unit 330 of the wireless power receiver 300 rectifies the AC power having a frequency band matched to the second frequency band into DC power and transmits the AC power to the load 400 (step S 217 ).
- the frequency detecting unit 350 determines that the frequency band of the power transmitted from the wireless power transmitter 200 is not the second frequency band.
- the frequency detecting unit 350 determines that the frequency band of the power transmitted from the wireless power transmitter 200 is the third frequency band (step S 219 ).
- the third frequency band may be in the range of 206 KHz to 300 KHz, but the embodiment is not limited thereto.
- the inductance varying unit 360 of the wireless power receiver 300 changes the inductance of the reception coil 310 to decrease the inductance of the reception coil 310 in order to match the frequency band of the wireless power receiver 300 to the third frequency band (step S 221 ).
- the changed inductance of the reception coil 310 is smaller than the inductance in step S 201 and greater than the inductance in step S 213 . Since the change of the inductance has been described with reference to FIGS. 9, 11, and 13 , the details thereof will be omitted.
- the frequency matching unit 370 of the wireless power receiver 300 more exactly matches the frequency band of the wireless power receiver 300 to the third frequency band through the capacitor as the inductance of the reception coil 310 is changed (step S 223 ).
- the rectifying unit 330 of the wireless power receiver 300 rectifies the AC power having a frequency band matched to the third frequency band into DC power and transmits the AC power to the load 400 (step S 225 ).
- the method of controlling the wireless power receiver according to the embodiment may be prepared as a program executable by a computer and stored in computer-readable recording media.
- the computer-readable recording media include a ROM, a RAM, a CD-ROM, a magnetic table, a floppy disk, and an optical data storing device, and include a device realized in the form of a carrier wave (for example, transmission over the Internet).
- the computer-readable recording media are distributed into computer systems connected to each other through a network to store computer-readable codes through a distribution scheme so that the computer-readable codes may be executed.
- function programs, codes, and code segments used to realize the method can be easily deduced by programmers in the art to which the disclosure pertains.
- a scheme of transmitting power through electromagnetic induction may signify a tightly coupling scheme having a relatively low Q value
- a scheme of transmitting power through resonance may signify a loosely coupling scheme having a relatively high Q value
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- Engineering & Computer Science (AREA)
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Abstract
Description
- This application is a Continuation of co-pending U.S. patent application Ser. No. 14/648,183 filed on May 28, 2015, which is the National Phase of PCT International Application No. PCT/KR2013/009959 filed on Nov. 5, 2013, which claims priority to and the benefit of Korean Patent Application No. 10-2012-0145814 filed on Dec. 13, 2012, all of which are hereby expressly incorporated by reference into the present application.
- The disclosure relates to a wireless power transmission technology. More particularly, the disclosure relates to a wireless power receiver capable of wirelessly receiving power and a method of controlling the same.
- A wireless power transmission or a wireless energy transfer refers to a technology of wirelessly transferring electric energy to desired devices. In the 1800 s, an electric motor or a transformer employing the principle of electromagnetic induction has been extensively used and then a method for transmitting electrical energy by irradiating electromagnetic waves, such as radio waves or lasers, has been suggested. Actually, electrical toothbrushes or electrical razors, which are frequently used in daily life, are charged based on the principle of electromagnetic induction. The electromagnetic induction refers to a phenomenon in which voltage is induced so that current flows when a magnetic field is varied around a conductor. Although the commercialization of the electromagnetic induction technology has been rapidly progressed around small-size devices, the power transmission distance thereof is short.
- Until now, wireless energy transmission schemes include a remote telecommunication technology based on magnetic resonance and a short wave radio frequency in addition to the electromagnetic induction.
- Recently, among wireless power transmitting technologies, an energy transmitting scheme employing electromagnetic induction and resonance has been widely used.
- In a wireless power transmission system employing the electromagnetic induction and resonance, since an electrical signal formed between a transmitter and a receiver is wirelessly transmitted through a coil, a user can easily charge power in an electronic appliance such as a portable appliance.
- However, in the conventional power transmission process, since various frequency bands are used in the transmitter, the receiver may not be sufficiently charged with power when the frequency used in the transmitter differs from that used in the receiver. In addition, the receiver must use a plurality of coils in order to cover various frequency bands used in the transmitter.
- The related art is disclosed in Korean Unexamined Patent Publication No. 10-2006-0058735 tiled “Variable inductor for integrated circuit and printed circuit board”.
- The disclosure provides a wireless power receiver capable of improving power transmission efficiency by varying a used frequency band depending on various frequency bands used in a wireless power transmitter, and a method of controlling the same.
- A wireless power receiver to wirelessly receive power from a wireless power transmitter comprises a reception coil to receive the power wirelessly transmitted from the wireless power transmitter through a magnetic field, a frequency detecting unit to detect a frequency band of the power transmitted from the wireless power transmitter and an inductance varying unit to change an inductance of the reception coil according to the detected frequency band.
- A wireless power receiver to wirelessly receive power from a wireless power transmitter comprises a reception coil to receive power having a first frequency band from the wireless power transmitter, a frequency detecting unit to detect if a frequency band of the power transmitted from the wireless power transmitter is the first frequency band and an inductance varying unit to change an inductance of the reception coil if the detected frequency band is out of the first frequency band.
- As described above, according to the embodiment, power can be efficiently transmitted by varying a used frequency band of the wireless power receiver depending on various frequency bands used in a wireless power transmitter, and a method of controlling the same.
- Meanwhile, any other various effects will be directly and implicitly described below in the description of the embodiment.
-
FIG. 1 is a circuit diagram showing the structure of a wireless power transmission system according to one embodiment. -
FIG. 2 is a circuit diagram showing the structure of a wireless power transmission system according to another embodiment. -
FIG. 3 is an equivalent circuit diagram of a first transmission coil according to one embodiment. -
FIG. 4 is an equivalent circuit diagram of a power supply device and a wireless power transmitter according to one embodiment. -
FIG. 5 is an equivalent circuit diagram showing a wireless power receiver according to one embodiment. -
FIG. 6 is a block diagram showing a wireless power transmission system according to still another embodiment. -
FIG. 7 is a block diagram showing the structure of a wireless power receiver according to another embodiment. -
FIG. 8 is a block diagram to explain the operation of an inductance varying unit when the wireless power receiver according to another embodiment receives the power having a first frequency band. -
FIG. 9 is a block diagram to explain the operation of the inductance varying unit when the wireless power receiver according to another embodiment receives the power having a second frequency band. -
FIG. 10 is a view to explain the operation of the inductance varying unit when the wireless power receiver according to the embodiment receives the power having the first frequency band and the reception coil has the spiral structure. -
FIG. 11 is a view to explain the operation of the inductance varying unit when the wireless power receiver according to the embodiment receives the power having the second frequency band and the reception coil has the spiral structure -
FIG. 12 is a view to explain the operation of the inductance varying unit when the wireless power receiver according to the embodiment receives the power having the first frequency band and the reception coil has the helical structure. -
FIG. 13 is a view to explain the operation of the inductance varying unit when the wireless power receiver according to the embodiment receives the power having the second frequency band and the reception coil has the helical structure. -
FIG. 14 is a view showing the structure of a wireless power receiver according to still another embodiment in which an MEMS switch is used as the inductance varying unit. -
FIG. 15 is a flowchart showing the method of controlling the wireless power receiver according to one embodiment. -
FIG. 16 is a flowchart to explain a method of controlling the wireless power receiver according to another embodiment. - Hereinafter, embodiments will be described in detail with reference to accompanying drawings so that those skilled in the art can easily work with the embodiments.
-
FIG. 1 is a circuit diagram showing the structure of a wirelesspower transmission system 10 according to one embodiment. - Referring to
FIG. 1 , the wirelesspower transmission system 10 may include apower supply device 100, awireless power transmitter 200, awireless power receiver 300, and aload 400. - According to one embodiment, the
power supply device 100 may be included in thewireless power transmitter 200. - The
wireless power transmitter 200 may include afirst transmission coil 210. - The
wireless power receiver 300 may include areception coil 310 and a rectifyingunit 330. - Both terminals of the
power supply device 100 are connected with both terminals of thefirst transmission coil 210. - Both terminals of the
reception coil 310 are connected with both terminals of the rectifyingunit 330, and theload 400 is connected with both terminals of the rectifyingunit 330. According to one embodiment, theload 400 may be included in thewireless power receiver 300. - The power generated from the
power supply device 100 is transmitted to thewireless power transmitter 200, and the power received in thewireless power transmitter 200 is transmitted to thewireless power receiver 300 through electromagnetic induction. - Hereinafter, the power transmission procedure between the
wireless power transmitter 200 and thewireless power receiver 300 will be described in more detail. - The
power supply device 100 generates AC power having a predetermined frequency to be transmitted to thewireless power transmitter 200. - The
first transmission coil 210 and thereception coil 310 are inductively coupled with each other. In other words, if AC current flows through thefirst transmission coil 210 by power supplied from thepower supply device 100, the AC current is induced into thereception coil 310 physically spaced apart from thefirst transmission coil 210 through the electromagnetic induction, so that AC power can be transmitted to thereception coil 310. - According to one embodiment, the frequency band of power transmitted from the
first transmission coil 210 to thereception coil 310 may be in the range of 110 KHz to 205 KHz, but the embodiment is not limited thereto. - Thereafter, the power received in the
reception coil 310 is rectified through the rectifyingunit 330 and transmitted to theload 400. - According to one embodiment, the
first transmission coil 210 and thereception coil 310 may have one of a spiral structure and a helical structure. - A quality factor and a coupling coefficient are important in the wireless power transmission. In other words, the power transmission efficiency can be more improved as the quality factor and the coupling coefficient represent greater values.
- The quality factor may refer to an index of energy that may be stored in the vicinity of the
wireless power transmitter 200 or thewireless power receiver 300. - The quality factor may be varied depending on the operating frequency ω as well as a shape, a dimension and a material of a coil. The quality factor may be expressed as following equation, Q=ω*L/R. In the above equation, L refers to the inductance of a coil and R refers to resistance corresponding to the quantity of power loss caused in the coil.
- The quality factor may have a value of 0 to infinity. As the quality factor is increased, the power transmission efficiency between the
wireless power transmitter 200 and thewireless power receiver 300. - The coupling coefficient represents the degree of magnetic coupling between a transmission coil and a reception coil, and has a value of 0 to 1.
- The coupling coefficient may vary according to the relative position and the relative distance between the transmission coil and the reception coil.
-
FIG. 2 is a circuit diagram showing the structure of a wirelesspower transmission system 20 according to another embodiment. - Referring to
FIG. 2 , the wirelesspower transmission system 20 according to another embodiment may include thepower supply device 100, thewireless power transmitter 200, thewireless power receiver 300, and theload 400. - According to one embodiment, the
power supply device 100 may be included in thewireless power transmitter 200. - The
wireless power transmitter 200 may include thefirst transmission coil 210 and asecond transmission coil 220. - Both terminals of the
first transmission coil 210 may be connected with both terminals of thepower supply device 100. - The
second transmission coil 220 may be spaced apart from thefirst transmission coil 210 by a predetermined distance. - The
wireless power receiver 300 may include thereception coil 310 and the rectifyingunit 330. - Both terminals of the
reception coil 310 are connected with both terminals of the rectifyingunit 330, and theload 400 is connected with both terminals of the rectifyingunit 330. According to one embodiment, theload 400 may be included in thewireless power receiver 300. - The power generated from the
power supply device 100 may be transmitted to thewireless power transmitter 200, and the power received in thewireless power transmitter 200 may be transmitted to thewireless power receiver 300 through electromagnetic induction or resonance. - Hereinafter, the power transmission procedure between the
wireless power transmitter 200 and thewireless power receiver 300 will be described in more detail. - The
power supply device 100 generates AC power having a predetermined frequency to be transmitted to thewireless power transmitter 200. The AC power received in thefirst transmission coil 210 may be transmitted to thesecond transmission coil 220 through electromagnetic induction. In other words, thefirst transmission coil 210 and thesecond transmission coil 220 are inductively coupled with each other. In other words, if AC current flows through thefirst transmission coil 210 by power supplied from thepower supply device 100, the AC current is induced into thesecond transmission coil 220 physically spaced apart from thefirst transmission coil 210 through the electromagnetic induction, so that AC power can be transmitted to thesecond transmission coil 220. - The
second transmission coil 220 may transmit the AC power, which is received therein from thefirst transmission coil 210, to thereception coil 310 of thewireless power receiver 300 through resonance or electromagnetic induction. - When the
second transmission coil 220 transmits power to thereception coil 310 through resonance, thesecond transmission coil 220 and thereception coil 310 are resonance-coupled with each other so that thesecond transmission coil 220 and thereception coil 310 operate at a resonance frequency band. Due to the resonance-coupling between thesecond transmission coil 220 and thereception coil 310, the power transmission efficiency between thewireless power transmitter 200 and thewireless power receiver 300 can be greatly improved. - The frequency band of transmitted power in the case that the
second transmission coil 220 transmits power to thereception coil 310 through resonance may be different from the frequency band of transmitted power in the case that thesecond transmission coil 220 transmits power to thereception coil 310 through electromagnetic induction. - According to one embodiment, when the
second transmission coil 220 transmits the power to thereception coil 310 through resonance, the frequency band of the transmitted power may be 6.78 MHz, but the embodiment is not limited thereto. - According to one embodiment, when the
second transmission coil 220 transmits the power to thereception coil 310 through electromagnetic induction, the frequency band of the transmitted power may be in the range of 110 MHz to 205 MHz, but the embodiment is not limited thereto. - As described above, when the
second transmission coil 220 transmits the power to thereception coil 310 through resonance or electromagnetic induction, as different frequency bands are used for power transmission, a frequency band matching work is required so that the frequency band used in thewireless power receiver 300 is matched with the frequency band used in thesecond transmission coil 220. The details thereof will be made below by making reference to the following description ofFIGS. 5 to 16 .FIG. 3 is an equivalent circuit diagram of thefirst transmission coil 210 according to one embodiment. - As shown in
FIG. 3 , thefirst transmission coil 210 may include an inductor L1 and a capacitor C1, and a circuit having a proper inductance and a proper capacitance is configured by the inductor L1 and the capacitor C1. - The
first transmission coil 210 may be configured in the form of an equivalent circuit in which both terminals of the inductor L1 are connected with both terminals of the capacitor C1. In other words, thefirst transmission coil 210 may be configured in the form of an equivalent coil in which the inductor L1 is connected with the capacitor C1 in parallel. - The capacitor C1 may include a variable capacitor, and impedance matching may be performed as the capacitance of the capacitor C1 is adjusted. Equivalent circuits of the
second transmission coil 220 and thereception coil 310 may have the same form as that shown inFIG. 3 . -
FIG. 4 is an equivalent circuit diagram of thepower supply device 100 and thewireless power transmitter 200 according to one embodiment. - As shown in
FIG. 4 , thefirst transmission coil 210 and thesecond transmission coil 220 may include inductors L1 and L2 having predetermined inductances and capacitors C1 and C2 having predetermined capacitances. -
FIG. 5 is an equivalent circuit diagram showing thewireless power receiver 300 according to one embodiment. - As shown in
FIG. 5 , thereception coil 310 may include an inductor L3 having a predetermined inductance and a capacitor C3 having a predetermined capacitance. - The rectifying
unit 330 rectifies AC power received therein from thereception coil 310 into DC power and may transmit the rectified DC power to theload 400. - In detail, the rectifying
unit 330 may include a rectifier and a smoothing circuit. According to one embodiment, the rectifier may include a silicon rectifier, and may be equivalent to a diode D1. - The rectifier may convert the AC power received therein from a reception induction coil 320 into DC power.
- The smoothing circuit may output smooth DC power by removing an AC component from the DC power converted by the rectifier. According to one embodiment, the smoothing circuit may include a rectification capacitor C5 as shown in
FIG. 4 , but the embodiment is not limited thereto. - The
load 400 may be a predetermined rechargeable battery or device requiring the DC power. For example, theload 400 may refer to a battery. - The
wireless power receiver 300 may be embedded in an electronic appliance such as a cellular phone, a mouse, and a laptop computer. Accordingly, thereception coil 310 may have the shape suitable for the shape of an electronic appliance. - The
wireless power transmitter 200 may interchange information with thewireless power receiver 300 through in-band communication or out-of-band communication. - The in-band communication refers to the communication for interchanging information between the
wireless power transmitter 200 and thewireless power receiver 300 through a signal having the frequency used in the wireless power transmission. Thewireless power receiver 300 may further include a switch and may receive or may not receive power transmitted from thewireless power transmitter 200 through a switching operation of the switch. Accordingly, thewireless power transmitter 200 can recognize an on-signal or an off-signal of thewireless power receiver 300 by detecting the quantity of power consumed in thewireless power transmitter 200. - In detail, the
wireless power receiver 300 may change the power consumed in thewireless power transmitter 200 by adjusting the quantity of power absorbed in a resistor by using the resistor and the switch. Thewireless power transmitter 200 may acquire the state information of thewireless power receiver 300 by detecting the variation of the power consumption. The switch may be connected with the resistor in series. According to one embodiment, the state information of thewireless power receiver 300 may include information about the present charge quantity and the change of the charge quantity in thewireless power receiver 300. - In more detail, if the switch is open, the power absorbed in the resistor becomes zero, and the power consumed in the
wireless power transmitter 200 is reduced. - If the switch is short-circuited, the power absorbed in the resistor becomes greater than zero, and the power consumed in the
wireless power transmitter 200 is increased. If the wireless power receiver repeats the above operation, thewireless power transmitter 200 detects power consumed therein to make digital communication with thewireless power receiver 300. - The
wireless power transmitter 200 receives the state information of thewireless power receiver 300 through the above operation so that thewireless power transmitter 200 can transmit appropriate power. - To the contrary, a resistor and a switch are provided at the side of the
wireless power transmitter 200 so that the state information of thewireless power transmitter 200 can be transmitted to thewireless power receiver 300. According to one embodiment, the state information of thewireless power transmitter 200 may include information about the maximum quantity of power to be supplied from thewireless power transmitter 200, the number ofwireless power receivers 300 receiving the power from thewireless power transmitter 200 and the quantity of available power of thewireless power transmitter 200. - Hereinafter, the out-of-band communication will be described.
- The out-of-band communication refers to the communication performed through a specific frequency band other than the resonance frequency band in order to exchange information necessary for the power transmission. The
wireless power transmitter 200 and thewireless power receiver 300 can be equipped with out-of-band communication modules to exchange information necessary for the power transmission. The out-of-band communication module may be installed in the power supply device. According to one embodiment, the out-of-band communication module may use a short-range communication technology, such as Bluetooth, Zigbee, WLAN or NFC, but the embodiment is not limited thereto. - Hereinafter, a scheme of matching frequencies by varying an inductance of a reception coil according to frequency bands used in wireless power transmission will be described with reference to
FIGS. 6 to 14 . -
FIG. 6 is a block diagram showing a wireless power transmission system according to still another embodiment. - Referring to
FIG. 6 , the wirelesspower transmission system 10 according to still another embodiment may include thepower supply device 100, thewireless power transmitter 200, thewireless power receiver 300, and theload 400. - The
power supply device 100, thewireless power transmitter 200, and theload 400 are the same as those described with reference toFIGS. 2 to 5 , and the details thereof will be omitted. - The
wireless power receiver 300 may include thereception coil 310, afrequency detecting unit 350, aninductance varying unit 360, afrequency matching unit 370, and the rectifyingunit 330. - The
reception coil 310 may wirelessly receive power from thewireless power transmitter 200. - When the
reception coil 310 wirelessly receives power from thewireless power transmitter 200, thereception coil 310 is magnetically coupled with thesecond transmission coil 220 provided in thewireless power transmitter 200 so that thereception coil 310 may wirelessly receive power from thesecond transmission coil 220 through a magnetic field. - When the
wireless power transmitter 200 wirelessly transmits power to thereception coil 310, the power transmitted from thewireless power transmitter 200 to thereception coil 310 may have various frequency bands. For example, according to one embodiment, the power transmitted from thewireless power transmitter 200 to thereception coil 310 may have three frequency bands. - A first frequency band may be in the range of 110 KHz to 205 KHz, and may include a frequency band used in the WPC (Wireless Power Consortium) which is a technical standard to wirelessly transmit power through electromagnetic induction. In this case, an outer diameter of the
reception coil 310 may be 40 mm, but the embodiment is not limited thereto. - A second frequency band may be 6.78 MHz, and may include a frequency band used in the A4WP (Alliance for Wireless Power) which is a technical standard to wirelessly transmit power through resonance. In this case, an outer diameter of the
reception coil 310 may be 20 mm, but the embodiment is not limited thereto. - A third frequency band may be in the range of 206 KHz to 300 KHz, and may include a frequency band used in the PMA (Power Matters Alliance) which is a technical standard to wirelessly transmit power through electromagnetic induction. In this case, an outer diameter of the
reception coil 310 may be 35 mm, but the embodiment is not limited thereto. - However, the numerical value of the frequency band is provided, but the embodiment is not limited thereto.
- The
reception coil 310 may have one of a spiral structure and a helical structure, but the embodiment is not limited thereto. In other words, thereception coil 310 may have various shapes. - According to one embodiment, when the
wireless power receiver 300 is mounted on a mobile terminal such as a cellular phone, thereception coil 310 may have a spiral structure. - If the
reception coil 310 is realized as an equivalent circuit, thereception coil 310 may be expressed in the structure including an inductor having a proper inductance. - The
frequency detecting unit 350 may detect a frequency band of power received by thereception coil 310. According to one embodiment, thefrequency detecting unit 350 may detect the frequency band of the power received by the reception coil through the in-band communication or the out-of-band communication. - According to one embodiment, when the
wireless power receiver 300 receives power having a first frequency band from thewireless power transmitter 200, thewireless power receiver 300 may make communication with thewireless power transmitter 200 through the in-band communication. In this case, thefrequency detecting unit 350 may send a ping signal to thewireless power transmitter 200 and may detect a frequency band based on a response signal to the ping signal. In this case, the first frequency band may be in the range of 110 KHz to 205 KHz, and may be a frequency band used in a WPC (Wireless Power Consortium) which is a technical standard to wirelessly transmit power through electromagnetic induction. - The ping signal may be a signal to determine if the
wireless power receiver 300 normally receives the power having the first frequency band from thewireless power transmitter 200. - If the
frequency detecting unit 350 does not receive the response signal to the ping signal, thefrequency detecting unit 350 determines that thewireless power transmitter 100 transmits power having the second frequency band. Accordingly, thefrequency detecting unit 350 may determine if the frequency band is the first frequency band or the second frequency band. In this case, the second frequency band may be 6.78 MHz, and may be a frequency band used in the A4WP (Alliance for Wireless Power) which is a technical standard to wirelessly transmit power through resonance. - According to one embodiment, when the
frequency detecting unit 350 does not receive the response signal to the ping signal, thefrequency detecting unit 350 may stop the in-band communication with thewireless power transmitter 200, and may detect the frequency of power transmitted from thewireless power transmitter 200 through the out-of-band communication. - When the
frequency detecting unit 350 detects the frequency band having power received by thereception coil 310 through the out-of-band communication, thefrequency detecting unit 350 may include one among short range communication modules for Bluetooth, Zigbee, WLAN, and NFC. - Since the in-band-communication and the out-of-band communication have been described with reference to
FIG. 5 , the details thereof will be omitted. - The
inductance varying unit 360 may change the inductance of thereception coil 310 according to the frequency band detected by thefrequency detecting unit 350. In detail, as the frequency band of the power received by thereception coil 310 represents a lower value, theinductance varying unit 360 increases the inductance of thereception coil 310. As the frequency band of the power received by thereception coil 310 represents a higher value, theinductance varying unit 360 may decrease the inductance of thereception coil 310. The details thereof will be described below. - After the
inductance varying unit 360 changes the inductance of thereception coil 310 according to the detected frequency band, thefrequency matching unit 370 may match the specific frequency by using the changed inductance. In this case, the specific frequency may refer to a frequency band detected by thefrequency detecting unit 350. In other words, thefrequency matching unit 370 enables more exact matching to the frequency of the power transmitted from thewireless power transmitter 200. - After matching the frequency band used by the
wireless power receiver 300 to the frequency band of the power transmitted from thewireless power transmitter 200, thefrequency matching unit 370 may output the AC power in the matching state to the rectifyingunit 300. - The rectifying
unit 330 may receive the AC power in the matching state from thefrequency matching unit 370 and rectify the AC power in the matching state into DC power. - The rectifying
unit 330 may transmit the rectified DC power to theload 400 and charge theload 400 with the DC power. -
FIG. 7 is a block diagram showing the structure of a wireless power receiver according to another embodiment, andFIG. 8 is a block diagram to explain the operation of the inductance varying unit when the wireless power receiver according to another embodiment receives the power having the first frequency band.FIG. 9 is a block diagram to explain the operation of the inductance varying unit when the wireless power receiver according to another embodiment receives the power having the second frequency band. - Referring to
FIG. 7 , thewireless power receiver 300 according to another embodiment may include thereception coil 310, thefrequency detecting unit 350, theinductance varying unit 360, thefrequency matching unit 370 and the rectifyingunit 330. - The
inductance varying unit 360 may include at least one switch, and each switch may connect one terminal of thereception coil 310 with one terminal of thefrequency matching unit 370, and connect an opposite terminal of thereception coil 310 with an opposite terminal of thefrequency matching unit 330. AlthoughFIG. 7 shows that theinductance varying unit 360 includes two switches, the embodiment is not limited thereto. - According to one embodiment, the switch included in the
inductance varying unit 360 may include a MEMS (Micro Electro Mechanical System) switch. A MEMS technology refers to a technology of manufacturing ultra-precision machinery having the size of micron (um) or millimeters (mm) based on a semiconductor process technology. Since the MEMS switch included in theinductance varying unit 360 has a significantly small size, the MEMS switch is applicable to thewireless power receiver 300 that must be down-scaled. - Hereinafter, the
inductance varying unit 360 will be described on the assumption that theinductance varying unit 360 includes two switches of afirst switch 361 and asecond switch 363. - The
inductance varying unit 360 may change the inductance according to the frequency band of the power received by thereception coil 310 which is detected by thefrequency detecting unit 350. In other words, theinductance varying unit 360 may change the inductance of thereception coil 310 by actuating the first andsecond switches - The inductance of the
reception coil 310 is changed according to the frequency band of the power received by thereception coil 310 so that the power having various frequency bands is stably transmitted through the frequency matching. This can be confirmed through the relationship equation between the frequency used in the transmission of an electromagnetic wave and the inductance. In other words, the relationship equation between the frequency f and the inductance L of thereception coil 310 may be expressed as Equation 1. -
f=½π√LC [equation 1] - As the frequency f is increased, the inductance L must be relatively decreased. As the frequency f is decreased, the inductance L must be relatively increased. In more detail, as the frequency f is increased, the wavelength h is shorted (f=c/h), lower inductance is required. As the frequency f is decreased, the wavelength h is lengthened, so that greater inductance is required.
- After the
inductance varying unit 360 changes the inductance of thereception coil 310 according to the detected frequency band, thefrequency matching unit 370 may match the specific frequency by using the changed inductance. In this case, the specific frequency may refer to a frequency band detected by thefrequency detecting unit 350. In other words, thefrequency matching unit 370 enables more exact matching to the frequency of the power transmitted from thewireless power transmitter 200. - According to one embodiment, the
frequency matching unit 370 may include at least one capacitor connected with thereception coil 310. The capacitor may include a fixed capacitor or a variable capacitor. When the variable capacitor is used as thefrequency matching unit 370, a control unit (not shown) of thewireless power receiver 300 may adjust the capacitance of the capacitor according to the inductance changed by theinductance varying unit 360 so that the matching is achieved at each frequency band. In other words, the capacitance of the capacitor must be adjusted according to the changed inductance of thereception coil 310 so that the matching is achieved at the transmitted frequency band. - As the capacitance of the capacitor is adjusted, the
frequency matching unit 370 may match the frequency band of the power transmitted from thewireless power transmitter 200 to the frequency band of thewireless power receiver 300. - The
wireless power receiver 300 according to the embodiment may change the inductance of thereception coil 310 through the operation of theinductance varying unit 360 according to the case that the power having the first frequency band is received and the case that the power having the second frequency band is received. Therefore, thewireless power receiver 300 may cover both of the case that thewireless power transmitter 200 transmits the power having the first frequency band and the case that thewireless power transmitter 200 transmits the power having the second frequency band. Accordingly, the convenience of the user can be improved. The details thereof will be described in more detail with reference toFIGS. 8 and 9 . -
FIG. 8 is a block diagram to explain the procedure of changing the inductance of thereception coil 310 when thewireless power receiver 300 wirelessly receives the power having the first frequency band from thewireless power transmitter 200.FIG. 9 is a block diagram to explain the procedure of changing the inductance of thereception coil 310 when thewireless power receiver 300 wirelessly receives the power having the second frequency band from thewireless power transmitter 200. - Referring to
FIG. 8 , if the frequency band detected by thefrequency detecting unit 350 is the first frequency band of 110 KHz to 205 KHz, theinductance varying unit 360 connects thefirst switch 361 with a first terminal A of thereception coil 310, and connects thesecond switch 363 with a third terminal C of thereception coil 310. In other words, since the first frequency band is lower than the second frequency band of 6.78 MHz, theinductance varying unit 360 may control the operation of thefirst switch 361 and thesecond switch 363 as shown inFIG. 8 so that the length of thereception coil 310 is increased in order to increase the inductance of thereception coil 310. In this case, the inductance of thereception coil 310 may be expressed as a reference sign L3. According to one embodiment, the inductance L3 may have the range of 10 uH to 15 uH. - In addition, as the inductance of the
reception coil 310 is changed to L3, the capacitance of the capacitor C6 of thefrequency matching unit 370 may be adjusted so that the frequency band of thewireless power receiver 300 is matched to the first frequency band. According to one embodiment, the capacitance of the capacitor C6 may be 1.8 nF, but the embodiment is not limited thereto. In addition, an additional capacitor, which is connectable with thereception coil 310 in series, may be provided at one terminal of the capacitor C6 for the purpose of frequency matching. The capacitance of the additional capacitor may be 183 nF, but the embodiment is not limited thereto. - Accordingly, the frequency band of the
wireless power receiver 300 may be matched to the first frequency band of the power transmitted from thewireless power transmitter 200. - Referring to
FIG. 9 , when the frequency band detected by thefrequency detecting unit 350 is the second frequency band of 6.78 MHz, theinductance varying unit 360 connects thefirst switch 361 with the second terminal B of thereception coil 310, and connects thesecond switch 363 with the third terminal C of thereception coil 310. In other words, since the second frequency band is higher than the first frequency band, theinductance varying unit 360 may control the operation of thefirst switch 361 and thesecond switch 363 as shown inFIG. 9 so that the length of thereception coil 310 is shortened in order to decrease the inductance of thereception coil 310. In this case, the inductance of thereception coil 310 may be expressed as a reference sign L4. According to one embodiment, the inductance L4 may have the range of 1.5 uH to 2 uH. In addition, as the inductance of thereception coil 310 is changed to L4, the capacitance of the capacitor C7 of thefrequency matching unit 370 may be adjusted so that the frequency band of thewireless power receiver 300 is matched to the second frequency band. According to one embodiment, the capacitance of the capacitor C7 may be 470 pF, but the embodiment is not limited thereto. In addition, an additional capacitor, which is connectable with thereception coil 310 in series, may be provided at one terminal of the capacitor C7 for the purpose of frequency matching. The capacitance of the additional capacitor may be 360 pF, but the embodiment is not limited thereto. - Accordingly, the frequency band of the
wireless power receiver 300 may be matched to the second frequency band of the power transmitted from thewireless power transmitter 200. - According to one embodiment, when the frequency band detected by the
frequency detecting unit 350 is the third frequency band of 205 KHz to 300 KHz, thefrequency detecting unit 360 may connect thefirst switch 361 with the first terminal A of thereception coil 310, and connect thesecond switch 363 with the second terminal B of thereception coil 310. In other words, since the third frequency band is higher than the first frequency band and lower than the second frequency band, theinductance varying unit 360 may control the operations of thefirst switch 361 and thesecond switch 363 so that the inductance of thereception coil 310 has an intermediate value between L3 and L4. In this case, the inductance L4 may be in the range of 4 uH to 5 uH. - In addition, as the inductance of the
reception coil 310 is changed to the intermediate value between L3 and L4, the capacitance of the capacitor of thefrequency matching unit 370 may be adjusted so that the frequency band of thewireless power receiver 300 is matched to the third frequency band. According to one embodiment, the capacitance of the capacitor may be 5 nF, but the embodiment is not limited thereto. In addition, an additional capacitor, which is connectable with thereception coil 310 in series, may be provided at one terminal of the capacitor for the purpose of frequency matching. The capacitance of the additional capacitor may be 120 nF, but the embodiment is not limited thereto. As shown inFIGS. 7 to 9 , thewireless power receiver 300 according to the embodiment may change the inductance of thereception coil 310 according to the frequency band of the power transmitted from thewireless power transmitter 200. - Accordingly, although the
wireless power transmitter 200 uses various frequency bands in power transmission, thewireless power receiver 300 may cover the various frequency bands. Therefore, when a user charges a terminal equipped with thewireless power receiver 300, the user can conveniently charge the terminal regardless of the frequency band used in thewireless power transmitter 200. - The terminal may include one of a mobile phone, an MP3, and a smart appliance, but the embodiment is not limited thereto. The terminal is applicable to all electronic appliances that can be wirelessly charged.
- Hereinafter, applications of the embodiment according to the shapes of the reception coil will be described with reference to
FIGS. 10 to 13 . - First, description will be made with reference to
FIGS. 10 and 11 regarding an example that the inductance of thereception coil 310 is changed when thereception coil 310 has a spiral structure. -
FIG. 10 is a view to explain the operation of the inductance varying unit when the wireless power receiver according to the embodiment receives the power having the first frequency band and the reception coil has the spiral structure.FIG. 11 is a view to explain the operation of the inductance varying unit when the wireless power receiver according to the embodiment receives the power having the second frequency band and the reception coil has the spiral structure. - Referring to
FIGS. 10 and 11 , thewireless power receiver 300 may include thereception coil 310, thefrequency detecting unit 350, theinductance varying unit 360, thefrequency matching unit 370, and the rectifyingunit 330 similarly to the structure of thewireless power receiver 300 described with reference toFIG. 6 . - Referring to
FIG. 10 , thereception coil 310 has a spiral structure in which one conductive line has a spiral shape on a flat surface. - In the
reception coil 310 having the spiral structure, a thickness T1 is 100 um, a line width W1 is 600 um, and a spacing S1 is 100 um, but the above numeric values are provided, but the embodiment is not limited thereto. - In
FIG. 10 , when the frequency band detected by thefrequency detecting unit 350 is the first frequency band of 110 KHz to 205 KHz, theinductance varying unit 360 connects thefirst switch 361 with the first terminal A of thereception coil 310, and connects thesecond switch 363 with the third terminal C of thereception coil 310. In other words, since the first frequency band is lower than the second frequency band, theinductance varying unit 360 may control the operations of the first andsecond switches FIG. 10 so that the length of thereception coil 310 is lengthened in order to increase the inductance of thereception coil 310. In this case, the changed inductance of thereception coil 310 may be expressed as L3, and the first andsecond switches - Further, as the inductance of the
reception coil 310 is changed to L3, the capacitance of the capacitor of thefrequency matching unit 370 may be adjusted so that the frequency band of thewireless power receiver 300 is matched to the first frequency band. - Therefore, the frequency band of the
wireless power receiver 300 may be matched to the first frequency band of the power transmitted from thewireless power transmitter 200. - In
FIG. 11 , when the frequency band detected by thefrequency detecting unit 350 is the second frequency band of 6.78 MHz, theinductance varying unit 360 connects thefirst switch 361 with the second terminal B of thereception coil 310, and connects thesecond switch 363 with the third terminal C of thereception coil 310. In other words, since the second frequency band is higher than a frequency band of power transmitted through electromagnetic induction, theinductance varying unit 360 may control the operations of the first andsecond switches FIG. 11 so that the length of thereception coil 310 is shortened in order to decrease the inductance of thereception coil 310. In this case, the changed inductance of thereception coil 310 may be expressed as L4, and L4 is smaller than L3. - In other words, as shown in
FIG. 11 , as the length of thereception coil 310 is provided from the second terminal B to the third terminal C due to the switching operation of theinductance varying unit 360, the length of thereception coil 310 is shortened. In addition, the length of thereception coil 310 is shortened by the length from the first terminal A to the second terminal B of thereception coil 310, so that the inductance of thereception coil 310 may be reduced. - Further, as the inductance of the
reception coil 310 is changed to L4, the capacitance of the capacitor of thefrequency matching unit 370 may be adjusted so that the frequency band of thewireless power receiver 300 is matched to the second frequency band. - Therefore, the frequency band of the
wireless power receiver 300 may be matched to the second frequency band of the power transmitted from thewireless power transmitter 200. - According to one embodiment, although the first terminal A of the
reception coil 310, which is switched off, may be provided in an open state, the first terminal A of thereception coil 310 may be grounded through athird switch 365 as shown inFIG. 11 . In this case, theinductance varying unit 360 may further include the third switch 356. The first terminal A of thereception coil 310 is grounded so that the loop of thereception coil 310 formed from the second terminal B to the third terminal C is electrically isolated from the loop of thereception coil 310 formed from the first terminal A to the second terminal B to prevent the frequency interference. - In other words, the first terminal A of the
reception coil 310 is grounded thereby preventing the frequency interference that may occur in the procedure that the loop of thereception coil 310 formed from the second terminal B to the third terminal C receives power from thewireless power transmitter 200. - According to one embodiment, when the frequency band detected by the
frequency detecting unit 350 is the third frequency band of 205 KHz to 300 KHz, theinductance varying unit 360 may connect thefirst switch 361 to the first terminal A of thereception coil 310, and connect thesecond switch 363 to the second terminal B of thereception coil 310. In other words, since the third frequency band is higher than the first frequency band and lower than the third frequency band, theinductance varying unit 360 may control the operations of the first andsecond switches reception coil 310 has the value between L3 and L4. In addition, as the inductance of thereception coil 310 is changed to the value between L3 and L4, the capacitance of the capacitor of thefrequency matching unit 370 can be adjusted so that the frequency band of thewireless power receiver 300 is matched to the third frequency band. - Hereinafter, description will be made with reference to
FIGS. 12 and 13 regarding an example that the inductance of thereception coil 310 is changed when thereception coil 310 has a helical structure. - Referring to
FIGS. 12 and 13 , thewireless power receiver 300 may include thereception coil 310, thefrequency detecting unit 350, theinductance varying unit 360, thefrequency matching unit 370, and the rectifyingunit 330 similarly to the structure of thewireless power receiver 300 described with reference toFIG. 6 . - The
reception coil 310 has a helical structure in which one conductive line has a 3-D spiral shape. - In the
reception coil 310 having the helical structure, a thickness T2 is 100 um, a line width W2 is 600 um, and a spacing S2 is 100 um, but the above numeric values are provided, but the embodiment is not limited thereto. - In
FIG. 12 , when the frequency band detected by thefrequency detecting unit 350 is the first frequency band of 110 KHz to 205 KHz, theinductance varying unit 360 connects thefirst switch 361 with the first terminal A of thereception coil 310, and connects thesecond switch 363 with the third terminal C of thereception coil 310. In other words, since the first frequency band is lower than the second frequency band, theinductance varying unit 360 may control the operations of the first andsecond switches FIG. 12 so that the length of thereception coil 310 is lengthened in order to increase the inductance of thereception coil 310. In this case, the inductance of thereception coil 310 may be changed to L3. - In addition, as the inductance of the
reception coil 310 is changed to L3, the capacitance of the capacitor of thefrequency matching unit 370 can be adjusted so that the frequency band of thewireless power receiver 300 is matched to the first frequency band. - Accordingly, the frequency band of the
wireless power receiver 300 may be matched to the first frequency band of the power transmitted from thewireless power transmitter 200. - In
FIG. 13 , when the frequency band detected by thefrequency detecting unit 350 is the second frequency band of 6.78 MHz, theinductance varying unit 360 connects thefirst switch 361 with the second terminal B of thereception coil 310, and connects thesecond switch 363 with the third terminal C of thereception coil 310. In other words, since the second frequency band is higher than the first frequency band, theinductance varying unit 360 may control the operations of the first andsecond switches FIG. 13 so that the length of thereception coil 310 is shortened in order to decrease the inductance of thereception coil 310. In this case, the inductance of thereception coil 310 may be changed to L4, and L4 is smaller than L3. - In addition, as the inductance of the
reception coil 310 is changed to L4 the capacitance of the capacitor of thefrequency matching unit 370 can be adjusted so that the frequency band of thewireless power receiver 300 is matched to the second frequency band. - Accordingly, the frequency band of the
wireless power receiver 300 may be matched to the second frequency band of the power transmitted from thewireless power transmitter 200. - According to one embodiment, although the first terminal A of the
reception coil 310, which is switched off, may be provided in an open state, the first terminal A of thereception coil 310 may be grounded through thethird switch 365 as shown inFIG. 13 . In this case, theinductance varying unit 360 may further include the third switch 356. The first terminal A of thereception coil 310 is grounded so that the loop of thereception coil 310 formed from the second terminal B to the third terminal C is electrically isolated from the loop of thereception coil 310 formed from the first terminal A to the second terminal B to prevent the frequency interference. - In other words, the first terminal A of the
reception coil 310 is grounded thereby preventing the frequency interference that may occur in the procedure that the loop of thereception coil 310 formed from the second terminal B to the third terminal C receives power from thewireless power transmitter 200. - According to one embodiment, when the frequency band detected by the
frequency detecting unit 350 is the third frequency band of 205 KHz to 300 KHz, theinductance varying unit 360 may connect thefirst switch 361 to the first terminal A of thereception coil 310, and connect thesecond switch 363 to the second terminal B of thereception coil 310. In other words, since the third frequency band is higher than the first frequency band and lower than the third frequency band, theinductance varying unit 360 may control the operations of the first andsecond switches reception coil 310 has the value between L3 and L4. In addition, as the inductance of thereception coil 310 is changed to the value between L3 and L4, the capacitance of the capacitor of thefrequency matching unit 370 can be adjusted so that the frequency band of thewireless power receiver 300 is matched to the third frequency band. -
FIG. 14 is a view showing the structure of a wireless power receiver according to still another embodiment in which an MEMS switch is used as the inductance varying unit. Referring toFIG. 14 , thewireless power receiver 300 according to still another embodiment may include thereception coil 310, thefrequency detecting unit 350, theinductance varying unit 360, thefrequency matching unit 370, and the rectifyingunit 330. - The
inductance varying unit 360 may include at least one MEMS switch. Since the MEMS switch represents the characteristics of low insertion loss and high isolation, requires low cost, and has a significantly small size, the MEMS switch is applicable to thewireless power receiver 300 that must be down-scaled. - Although
FIG. 14 shows the case that theinductance varying unit 360 employs three MEMS switches having an SPST (Single Pole Single Throw) type, the embodiment is not limited thereto. Theinductance varying unit 360 may use various types of MEMS switches and the different number of the MEMS switches. - The
inductance varying unit 360 may include three MEMS switches, that is, afirst MEMS switch 366, asecond MEMS switch 367 and athird MEMS switch 368. - Each MEMS switch may include a power supply unit K, a gate terminal G, a source terminal S, and a drain terminal D.
- The power supply unit K may be connected with the gate terminal G, the source terminal S may be connected with one terminal of the
reception coil 310, and each drain terminal D may be connected with thefrequency matching unit 370. - The MEMS switch serves as a switch operating by the power supply unit K. The MEMS switch may be turned on or turned off according to voltage applied between the gate terminal G and the source terminal S of the MEMS switch. That is to say, in order to turn on the MEMS switch, the voltage of 5V may be applied between the gate terminal G and the source terminal S. In order to turn off the MEMS switch, the voltage of 0V is applied between the gate terminal G and the source terminal S. In this case, voltages of 5V and 0V are provided, but the embodiment is not limited thereto.
- In detail, when the frequency band detected by the
frequency detecting unit 350 is the first frequency band in the range of 110 KHz to 205 KHz, theinductance varying unit 360 may turn on thefirst MEMS switch 366 through the power supply unit K, turn on thethird MEMS switch 368, and turn off thesecond MEMS switch 367. In other words, since the first frequency band is lower than the second frequency band of 6.78 MHz, theinductance varying unit 360 may control the operation of each MEMS switch so that the length of thereception coil 310 is lengthened in order to increase the inductance of thereception coil 310. In this case, the changed inductance of thereception coil 310 may be expressed as L3. - In addition, as the inductance of the
reception coil 310 is changed to L3, the capacitance of the capacitor of thefrequency matching unit 370 may be adjusted so that the frequency band of thewireless power receiver 300 is matched to the first frequency band. - If the frequency band detected by the
frequency detecting unit 350 is the second frequency band of 6.78 MHz, theinductance varying unit 360 may turn off thefirst MEMS switch 366 through the power supply unit K, and may turn off the second and third MEMS switches 367 and 368. In other words, since the second frequency band is higher than the first frequency band of 6.78 MHz, theinductance varying unit 360 may control the operation of each MEMS switch so that the length of thereception coil 310 is shortened in order to decrease the inductance of thereception coil 310. In this case, the changed inductance of thereception coil 310 may be expressed as L4. - In addition, as the inductance of the
reception coil 310 is changed to L4, the capacitance of the capacitor of thefrequency matching unit 370 may be adjusted so that the frequency band of thewireless power receiver 300 is matched to the second frequency band. - If the frequency band detected by the
frequency detecting unit 350 is the third frequency band of 205 KHz to 300 MHz, theinductance varying unit 360 may turn on the first and second MEMS switches 366 and 367 through the power supply unit K, and may turn off thethird MEMS switch 368. In other words, since the third frequency band is higher than the first frequency band and lower than the second frequency band, theinductance varying unit 360 may control the operation of each MEMS switch so that the inductance of thereception coil 310 has the value between L3 and L4. - Further, as the inductance of the
reception coil 310 is changed to have the value between L3 and L4, the capacitance of the capacitor of thefrequency matching unit 370 may be adjusted so that the frequency band of thewireless power receiver 300 is matched to the third frequency band. - Hereinafter, a method of controlling the wireless power receiver according to one embodiment will be described with reference to
FIG. 15 . - Hereinafter, the description of the method of controlling the wireless power receiver according to one embodiment will be made by making reference to the description of
FIGS. 6 to 14 . -
FIG. 15 is a flowchart showing the method of controlling the wireless power receiver according to one embodiment. - First, the
reception coil 310 of thewireless power receiver 300 wirelessly receives power from the wireless power transmitter 200 (step S101). According to one embodiment, the frequency band of the power received by thewireless power receiver 300 may be classified into two frequency bands. The first frequency band may be in the range of 110 KHz to 205 KHz, and the second frequency band may be 6.78 MHz. - The
frequency detecting unit 350 of thewireless power receiver 300 detects the frequency band of the power transmitted from the wireless power transmitter 200 (step S103). According to one embodiment, thefrequency detecting unit 350 may detect the frequency band of the power transmitted from thewireless power transmitter 200 through the in-band communication or the out-of-band communication. - The
frequency detecting unit 350 of thewireless power receiver 300 determines if the detected frequency band is the first frequency band (step S105). In other words, thefrequency detecting unit 350 may determine if the detected frequency band is the first frequency band or the second frequency band. - If the detected frequency band is the first frequency band, the
inductance varying unit 360 of thewireless power receiver 300 increases the inductance of thereception coil 310 through the switching operation so that thereception coil 310 has proper inductance (step S107). Since the frequency band used based on electromagnetic induction is lower than the second frequency band, theinductance varying unit 360 may increase the inductance by lengthening the length of thereception coil 310 through the switching operation. Since the change of the inductance has been described with reference toFIGS. 8, 10, and 12 , the details thereof will be omitted. - The
frequency matching unit 370 of thewireless power receiver 300 matches the frequency of thewireless power receiver 300 to the first frequency band by combining the capacitance and the increased inductance of thereception coil 310 and transmits AC power having a frequency band matched to the first frequency band to the rectifying unit 330 (step S109). - The rectifying
unit 330 of thewireless power receiver 300 rectifies the AC power in the matching state into DC power and transmits the DC power to the load 400 (step S111). - Meanwhile, if the detected frequency band is not determined as the first frequency band, the
frequency detecting unit 350 determines the detected frequency band as the second frequency band (step S113). - The
inductance varying unit 360 of thewireless power receiver 300 decreases the inductance of thereception coil 310 through the switching operation so that thereception coil 310 has proper inductance (step S115). Since the second frequency band is higher than the second frequency band, theinductance varying unit 360 may decrease the inductance by shortening the length of thereception coil 310 through the switching operation. Since the change of the inductance has been described with reference toFIGS. 9, 11, and 13 , the details thereof will be omitted. - The
frequency matching unit 370 of thewireless power receiver 300 matches the frequency of thewireless power receiver 300 to the second frequency band by combining the capacitance and the decreased inductance of thereception coil 310 and transmits AC power having a frequency band matched to the second frequency band to the rectifying unit 330 (step S117). - The rectifying
unit 330 of thewireless power receiver 300 rectifies the AC power in the matching state into DC power and transmits the DC power to the load 400 (step S119).FIG. 16 is a flowchart to explain a method of controlling the wireless power receiver according to another embodiment. - Hereinafter, the description of the method of controlling the wireless power receiver according to another embodiment will be made by making reference to the description of
FIGS. 6 to 14 . - The
wireless power receiver 300 operates at the first frequency band (step S201). In other words, the inductance of thereception coil 310 may be set on the assumption that the frequency band of the power transmitted from thewireless power transmitter 200 is the first frequency band. In this case, the capacitance of the capacitor of thefrequency matching unit 370 must be set according to the set inductance so that the frequency band of thewireless power receiver 300 is matched to the first frequency band. - According to one embodiment, the first frequency band may be in the range of 110 KHz to 205 KHz, but the embodiment is not limited thereto.
- The
reception coil 310 of thewireless power receiver 300 receives power having the first frequency band from the wireless power transmitter 200 (step S203). According to one embodiment, thereception coil 310 may wirelessly receive the power having the first frequency band through the electromagnetic induction from thesecond transmission coil 220 of thewireless power transmitter 200. - The
frequency detecting unit 350 of thewireless power receiver 300 transmits a power signal to thewireless power transmitter 200 through in-band communication (step S205). The in-band communication scheme refers to a communication scheme to transmit information through a switch and a resistor by using the frequency band used in the wireless power transmission, and the details thereof has been described with reference toFIG. 5 . Thefrequency detecting unit 350 may periodically transmit the power signal to thewireless power transmitter 200 through the in-band communication. According to one embodiment, the power signal may include one of a signal, which is transmitted by thewireless power receiver 300 in order to notify thewireless power transmitter 200 that thewireless power receiver 300 normally receives power, and a signal which is transmitted by thewireless power receiver 300 in order to request that thewireless power transmitter 200 increases or decreases power transmission. - The
frequency detecting unit 350 of thewireless power receiver 300 periodically transmits the power signal to thewireless power transmitter 200 while determining if thewireless power receiver 300 has not received the power normally, that is, a power receiving state is abnormal (step S207). - According to one embodiment, the
frequency detecting unit 350 determines that thewireless power receiver 300 has not received the power normally, that is, the power receiving state is abnormal in the procedure of transmitting the power signal to thewireless power receiver 300 three times. Otherwise, thefrequency detecting unit 350 determines that the power receiving state is normal. In this case, the three-time transmission of the power signal is provided, but the embodiment is not limited thereto. In addition, if the power receiving state is abnormal, the frequency band of the power transmitted from thewireless power transmitter 200 may not be the first frequency band. If thefrequency detecting unit 350 determines that the power receiving state is abnormal, thefrequency detecting unit 350 of thewireless power receiver 300 activates the operation of the out-of-band communication module (step S209). According to one embodiment, the out-of-band communication module may be provided in thefrequency detecting unit 350. According to one embodiment, the out-of-band communication module may employ a short-range communication scheme such as the Bluetooth, the ZigBee, the WLAN, and the NFC, but the embodiment is not limited thereto. - Meanwhile, if the
frequency detecting unit 350 determines that the power receiving state is normal, the procedure returns to step S201. - The
frequency detecting unit 350 of thewireless power receiver 300 determines that the frequency band of the power transmitted from thewireless power transmitter 200 is the second frequency band through the out-of-band communication module (step S211). In other words, thewireless power receiver 300 makes out-of-band communication with thewireless power transmitter 200 to determine if the frequency band of the power transmitted from thewireless power transmitter 200 is the second frequency band. According to one embodiment, the second frequency band may be 6.78 MHz, but the embodiment is not limited thereto. - If the frequency band of the power transmitted from the
wireless power transmitter 200 is the second frequency band, theinductance varying unit 360 of thewireless power receiver 300 changes the inductance of thereception coil 310 to decrease the inductance of thereception coil 310 in order to match the frequency band of thewireless power receiver 300 to the second frequency band (step S213). Since the change of the inductance has been described with reference toFIGS. 9, 11, and 13 , the details thereof will be omitted. - The
frequency matching unit 370 of thewireless power receiver 300 more exactly matches the frequency band of thewireless power receiver 300 to the second frequency band through the capacitor as the inductance of thereception coil 310 is changed (step S215). - The rectifying
unit 330 of thewireless power receiver 300 rectifies the AC power having a frequency band matched to the second frequency band into DC power and transmits the AC power to the load 400 (step S217). - Meanwhile, if the
frequency detecting unit 350 determines that the frequency band of the power transmitted from thewireless power transmitter 200 is not the second frequency band, thefrequency detecting unit 350 determines that the frequency band of the power transmitted from thewireless power transmitter 200 is the third frequency band (step S219). According to the embodiment, the third frequency band may be in the range of 206 KHz to 300 KHz, but the embodiment is not limited thereto. - The
inductance varying unit 360 of thewireless power receiver 300 changes the inductance of thereception coil 310 to decrease the inductance of thereception coil 310 in order to match the frequency band of thewireless power receiver 300 to the third frequency band (step S221). In this case, the changed inductance of thereception coil 310 is smaller than the inductance in step S201 and greater than the inductance in step S213. Since the change of the inductance has been described with reference toFIGS. 9, 11, and 13 , the details thereof will be omitted. - The
frequency matching unit 370 of thewireless power receiver 300 more exactly matches the frequency band of thewireless power receiver 300 to the third frequency band through the capacitor as the inductance of thereception coil 310 is changed (step S223). - The rectifying
unit 330 of thewireless power receiver 300 rectifies the AC power having a frequency band matched to the third frequency band into DC power and transmits the AC power to the load 400 (step S225). - The method of controlling the wireless power receiver according to the embodiment may be prepared as a program executable by a computer and stored in computer-readable recording media. The computer-readable recording media include a ROM, a RAM, a CD-ROM, a magnetic table, a floppy disk, and an optical data storing device, and include a device realized in the form of a carrier wave (for example, transmission over the Internet).
- The computer-readable recording media are distributed into computer systems connected to each other through a network to store computer-readable codes through a distribution scheme so that the computer-readable codes may be executed. In addition, function programs, codes, and code segments used to realize the method can be easily deduced by programmers in the art to which the disclosure pertains.
- Although a preferred embodiment of the disclosure has been described for illustrative purposes, those skilled in the art will appreciate that various modifications, additions and substitutions are possible, without departing from the scope and spirit of the invention as disclosed in the accompanying claims.
- According to the embodiment, a scheme of transmitting power through electromagnetic induction may signify a tightly coupling scheme having a relatively low Q value, and a scheme of transmitting power through resonance may signify a loosely coupling scheme having a relatively high Q value.
Claims (19)
Priority Applications (1)
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US16/004,065 US20180294669A1 (en) | 2012-12-13 | 2018-06-08 | Wireless power receiver and method of controlling the same |
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US16/004,065 Abandoned US20180294669A1 (en) | 2012-12-13 | 2018-06-08 | Wireless power receiver and method of controlling the same |
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Cited By (2)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US20230370116A1 (en) * | 2017-02-08 | 2023-11-16 | Canon Kabushiki Kaisha | Power transmission apparatus, power reception apparatus, method, and recording medium |
US12143173B2 (en) * | 2017-02-08 | 2024-11-12 | Canon Kabushiki Kaisha | Power transmission apparatus, power reception apparatus, method, and recording medium |
Families Citing this family (80)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US11476566B2 (en) | 2009-03-09 | 2022-10-18 | Nucurrent, Inc. | Multi-layer-multi-turn structure for high efficiency wireless communication |
US9300147B2 (en) * | 2011-06-29 | 2016-03-29 | Lg Electronics Inc. | Method for avoiding signal collision in wireless power transfer |
KR102008808B1 (en) * | 2012-12-13 | 2019-10-21 | 엘지이노텍 주식회사 | Wireless power receiver and controlling method thereof |
KR20150021285A (en) * | 2013-08-20 | 2015-03-02 | 엘지이노텍 주식회사 | Wireless power receiving device |
JP6395535B2 (en) * | 2014-03-31 | 2018-09-26 | ローム株式会社 | Power receiving device, power transmitting device, and non-contact power feeding system |
US10044232B2 (en) | 2014-04-04 | 2018-08-07 | Apple Inc. | Inductive power transfer using acoustic or haptic devices |
US10135303B2 (en) * | 2014-05-19 | 2018-11-20 | Apple Inc. | Operating a wireless power transfer system at multiple frequencies |
US10084343B2 (en) * | 2014-06-13 | 2018-09-25 | Empire Technology Development Llc | Frequency changing encoded resonant power transfer |
US10566843B2 (en) * | 2014-07-15 | 2020-02-18 | Qorvo Us, Inc. | Wireless charging circuit |
KR101994741B1 (en) * | 2014-09-11 | 2019-07-01 | 삼성전기주식회사 | A wireless power receiver and a control method for the same |
US10559970B2 (en) | 2014-09-16 | 2020-02-11 | Qorvo Us, Inc. | Method for wireless charging power control |
JP6498438B2 (en) * | 2014-12-26 | 2019-04-10 | ローム株式会社 | Power reception control circuit, wireless power receiving device control method, electronic device |
US9923387B2 (en) | 2015-01-09 | 2018-03-20 | Mediatek Inc. | Multi-mode wireless receiver apparatus and resonator circuit design |
KR20160100755A (en) * | 2015-02-16 | 2016-08-24 | 엘지이노텍 주식회사 | Wireless apparatus and method for transmitting power |
KR101810001B1 (en) * | 2015-05-26 | 2017-12-18 | 주식회사 아모센스 | A wireless power receiver module |
US10566839B2 (en) * | 2015-06-30 | 2020-02-18 | WiTricinity Corporation | Systems, methods and apparatus for guidance and alignment between electric vehicles and wireless charging systems |
WO2017007932A1 (en) * | 2015-07-08 | 2017-01-12 | Patrick Mercier | Wireless power transfer device and method with dual-frequency operation |
KR101659351B1 (en) * | 2015-07-14 | 2016-09-27 | 주식회사 서연전자 | Apparatus and method for discerning wireless charging standard |
US10658847B2 (en) | 2015-08-07 | 2020-05-19 | Nucurrent, Inc. | Method of providing a single structure multi mode antenna for wireless power transmission using magnetic field coupling |
US10636563B2 (en) | 2015-08-07 | 2020-04-28 | Nucurrent, Inc. | Method of fabricating a single structure multi mode antenna for wireless power transmission using magnetic field coupling |
US10063100B2 (en) | 2015-08-07 | 2018-08-28 | Nucurrent, Inc. | Electrical system incorporating a single structure multimode antenna for wireless power transmission using magnetic field coupling |
US11205848B2 (en) | 2015-08-07 | 2021-12-21 | Nucurrent, Inc. | Method of providing a single structure multi mode antenna having a unitary body construction for wireless power transmission using magnetic field coupling |
EP3657519A1 (en) * | 2015-08-07 | 2020-05-27 | NuCurrent, Inc. | Single layer multi mode antenna for wireless power transmission using magnetic field coupling |
WO2017031348A1 (en) | 2015-08-19 | 2017-02-23 | Nucurrent, Inc. | Multi-mode wireless antenna configurations |
KR102481953B1 (en) * | 2015-09-09 | 2022-12-29 | 삼성전자주식회사 | Wireless power transmitter and method for controlling thereof |
US10790699B2 (en) | 2015-09-24 | 2020-09-29 | Apple Inc. | Configurable wireless transmitter device |
WO2017053861A1 (en) | 2015-09-24 | 2017-03-30 | Apple Inc. | Configurable wireless transmitter device |
US10477741B1 (en) | 2015-09-29 | 2019-11-12 | Apple Inc. | Communication enabled EMF shield enclosures |
US10651685B1 (en) | 2015-09-30 | 2020-05-12 | Apple Inc. | Selective activation of a wireless transmitter device |
CN208589547U (en) * | 2016-01-13 | 2019-03-08 | 株式会社村田制作所 | Antenna assembly and electronic equipment |
GB2547450A (en) * | 2016-02-18 | 2017-08-23 | Nordic Semiconductor Asa | Wireless charging |
GB2547446A (en) * | 2016-02-18 | 2017-08-23 | Nordic Semiconductor Asa | Wireless charging |
CN107134649A (en) * | 2016-02-26 | 2017-09-05 | 苏州伊诺联客电子科技有限公司 | Coil antenna module and preparation method thereof |
JP6380441B2 (en) * | 2016-03-23 | 2018-08-29 | Smk株式会社 | Film with antenna and touch panel |
US10734840B2 (en) | 2016-08-26 | 2020-08-04 | Apple Inc. | Shared power converter for a wireless transmitter device |
US10879705B2 (en) | 2016-08-26 | 2020-12-29 | Nucurrent, Inc. | Wireless connector receiver module with an electrical connector |
CN208955196U (en) * | 2016-09-26 | 2019-06-07 | 株式会社村田制作所 | Antenna assembly and electronic equipment |
US10432031B2 (en) | 2016-12-09 | 2019-10-01 | Nucurrent, Inc. | Antenna having a substrate configured to facilitate through-metal energy transfer via near field magnetic coupling |
US10594160B2 (en) | 2017-01-11 | 2020-03-17 | Apple Inc. | Noise mitigation in wireless power systems |
US11223234B2 (en) | 2017-02-13 | 2022-01-11 | Nucurrent, Inc. | Method of operating a wireless electrical energy transmission base |
KR101871772B1 (en) * | 2017-04-17 | 2018-06-28 | 주식회사 파워리퍼블릭 | High power high voltage type wireless power receiver |
JP7073048B2 (en) * | 2017-04-28 | 2022-05-23 | キヤノン株式会社 | Electronic devices, control methods and programs for electronic devices |
US11282638B2 (en) | 2017-05-26 | 2022-03-22 | Nucurrent, Inc. | Inductor coil structures to influence wireless transmission performance |
KR20190063930A (en) * | 2017-11-30 | 2019-06-10 | 엘지이노텍 주식회사 | Wireless Charging Apparatus and System |
WO2019223004A1 (en) | 2018-05-25 | 2019-11-28 | Oppo广东移动通信有限公司 | Wireless charging receiving device and mobile terminal |
EP3742576B1 (en) * | 2018-05-25 | 2022-08-24 | Guangdong Oppo Mobile Telecommunications Corp., Ltd. | Wireless charging receiving device and mobile terminal |
KR102499554B1 (en) * | 2018-12-03 | 2023-02-15 | 엘지전자 주식회사 | Wireless charging device |
CN114365382A (en) * | 2019-07-17 | 2022-04-15 | 索雷斯能源公司 | Multi-phase radio field power transfer system, transmitter and receiver |
US11271430B2 (en) | 2019-07-19 | 2022-03-08 | Nucurrent, Inc. | Wireless power transfer system with extended wireless charging range |
US11227712B2 (en) | 2019-07-19 | 2022-01-18 | Nucurrent, Inc. | Preemptive thermal mitigation for wireless power systems |
US11056922B1 (en) | 2020-01-03 | 2021-07-06 | Nucurrent, Inc. | Wireless power transfer system for simultaneous transfer to multiple devices |
TWI728652B (en) * | 2020-01-15 | 2021-05-21 | 大陸商東莞寶德電子有限公司 | Wireless charging mouse and charging method thereof |
CN111431259B (en) * | 2020-04-30 | 2021-11-23 | 中兴新能源汽车有限责任公司 | Wireless charging starting method and device and storage medium |
US11476722B2 (en) | 2020-04-30 | 2022-10-18 | Nucurrent, Inc. | Precision power level control for extended range wireless power transfer |
WO2021222843A1 (en) * | 2020-04-30 | 2021-11-04 | Nucurrent, Inc. | Wireless power transmitters and associated base stations for transmitting power at extended separation distances |
US11310934B2 (en) | 2020-04-30 | 2022-04-19 | Nucurrent, Inc. | Multi-channel cooling for extended distance wireless power transmitter |
US11482890B2 (en) | 2020-04-30 | 2022-10-25 | Nucurrent, Inc. | Surface mountable wireless power transmitter for transmission at extended range |
US11239709B2 (en) | 2020-04-30 | 2022-02-01 | Nucurrent, Inc. | Operating frequency based power level altering in extended range wireless power transmitters |
US11283303B2 (en) | 2020-07-24 | 2022-03-22 | Nucurrent, Inc. | Area-apportioned wireless power antenna for maximized charging volume |
US20220052565A1 (en) * | 2020-08-15 | 2022-02-17 | Aira, Inc. | Resonant Reflection Device Detection |
US11876386B2 (en) | 2020-12-22 | 2024-01-16 | Nucurrent, Inc. | Detection of foreign objects in large charging volume applications |
US11881716B2 (en) | 2020-12-22 | 2024-01-23 | Nucurrent, Inc. | Ruggedized communication for wireless power systems in multi-device environments |
US11387684B1 (en) | 2020-12-23 | 2022-07-12 | Nucurrent, Inc. | Wireless power transmitters and associated base stations for transmitting power at extended separation distances |
US11476711B2 (en) | 2020-12-23 | 2022-10-18 | Nucurrent, Inc. | Wireless power transmitters and associated base stations for through-structure charging |
US11637459B2 (en) | 2020-12-23 | 2023-04-25 | Nucurrent, Inc. | Wireless power transmitters for transmitting power at extended separation distances utilizing T-Core shielding |
US11387674B1 (en) | 2020-12-23 | 2022-07-12 | Nucurrent, Inc. | Wireless power transmitters for transmitting power at extended separation distances utilizing concave shielding |
US11757311B2 (en) | 2020-12-23 | 2023-09-12 | Nucurrent, Inc. | Wireless power transmitters and associated base stations for transmitting power at extended separation distances |
US11695302B2 (en) | 2021-02-01 | 2023-07-04 | Nucurrent, Inc. | Segmented shielding for wide area wireless power transmitter |
US20220247217A1 (en) * | 2021-02-02 | 2022-08-04 | Nucurrent, Inc. | Wireless Power Transmitters And Associated Base Stations For Transmitting Power Over Varying Horizontal Position |
EP4295465A1 (en) * | 2021-02-19 | 2023-12-27 | General Electric Company | Power transfer disablement switch in a wireless power reception apparatus |
US11791667B2 (en) | 2021-04-30 | 2023-10-17 | Nucurrent, Inc. | Power capability detection for wireless power transmission based on receiver power request |
US11539247B2 (en) | 2021-04-30 | 2022-12-27 | Nucurrent, Inc. | Power capability detection in precision power level control systems for wireless power transmission |
US11532956B2 (en) | 2021-04-30 | 2022-12-20 | Nucurrent, Inc. | Power capability detection with verification load in power level control systems for wireless power transmission |
US11942799B2 (en) | 2021-04-30 | 2024-03-26 | Nucurrent, Inc. | False notification suppression in wireless power transfer system |
US11482891B1 (en) | 2021-04-20 | 2022-10-25 | Nucurrent, Inc. | Timing verification in precision power level control systems for wireless power transmission |
US11637448B1 (en) | 2021-10-12 | 2023-04-25 | Nucurrent, Inc. | Wireless power transmitter with removable magnetic connector panel for vehicular use |
US11967830B2 (en) | 2021-10-12 | 2024-04-23 | Nucurrent, Inc. | Wireless power transmitters for transmitting power at extended separation distances with magnetic connectors |
US12132325B2 (en) | 2021-10-12 | 2024-10-29 | Nucurrent, Inc. | Wireless power transmitter with removable magnetic connector panel |
US11831174B2 (en) | 2022-03-01 | 2023-11-28 | Nucurrent, Inc. | Cross talk and interference mitigation in dual wireless power transmitter |
US12003116B2 (en) | 2022-03-01 | 2024-06-04 | Nucurrent, Inc. | Wireless power transfer system for simultaneous transfer to multiple devices with cross talk and interference mitigation |
Citations (3)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US6321067B1 (en) * | 1996-09-13 | 2001-11-20 | Hitachi, Ltd. | Power transmission system IC card and information communication system using IC card |
US20120112554A1 (en) * | 2010-11-10 | 2012-05-10 | Nam Yun Kim | Wireless power transmission system, and method of controlling transmission and reception of resonance power |
US10008881B2 (en) * | 2012-12-13 | 2018-06-26 | Lg Innotek Co., Ltd. | Wireless power receiver with variable frequency and method of controlling the same |
Family Cites Families (29)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
JP3392016B2 (en) * | 1996-09-13 | 2003-03-31 | 株式会社日立製作所 | Power transmission system and power transmission and information communication system |
DE19837675A1 (en) * | 1998-08-19 | 2000-02-24 | Nokia Technology Gmbh | Charging device for accumulators in a mobile electrical device with inductive energy transfer |
US7522878B2 (en) * | 1999-06-21 | 2009-04-21 | Access Business Group International Llc | Adaptive inductive power supply with communication |
US6184651B1 (en) * | 2000-03-20 | 2001-02-06 | Motorola, Inc. | Contactless battery charger with wireless control link |
US7460001B2 (en) | 2003-09-25 | 2008-12-02 | Qualcomm Incorporated | Variable inductor for integrated circuit and printed circuit board |
US8405467B2 (en) | 2007-11-27 | 2013-03-26 | Qualcomm Incorporated | Methods and apparatuses for inductor tuning in radio frequency integrated circuits |
US20090160261A1 (en) * | 2007-12-19 | 2009-06-25 | Nokia Corporation | Wireless energy transfer |
JP2009205050A (en) | 2008-02-29 | 2009-09-10 | Seiko Epson Corp | Projection system and projector |
JP4987775B2 (en) * | 2008-03-27 | 2012-07-25 | 株式会社東芝 | Wireless powered terminal, system and method |
WO2009144542A1 (en) * | 2008-04-15 | 2009-12-03 | Toyota Jidosha Kabushiki Kaisha | Wireless energy transfer device |
JP4911148B2 (en) | 2008-09-02 | 2012-04-04 | ソニー株式会社 | Contactless power supply |
JP5258521B2 (en) | 2008-11-14 | 2013-08-07 | トヨタ自動車株式会社 | Power supply system |
US8842410B2 (en) * | 2009-08-31 | 2014-09-23 | Qualcomm Incorporated | Switchable inductor network |
KR101423406B1 (en) | 2009-11-18 | 2014-07-24 | 가부시끼가이샤 도시바 | Wireless power transmission device |
US8373388B2 (en) * | 2009-12-11 | 2013-02-12 | Electronics And Telecommunications Research Institute | Portable device and battery charging method thereof |
JP5463932B2 (en) * | 2010-01-26 | 2014-04-09 | ソニー株式会社 | Information processing apparatus, information processing method, and information processing system |
KR101184503B1 (en) * | 2010-08-13 | 2012-09-20 | 삼성전기주식회사 | Wireless power transmission apparatus and transmission method thereof |
JP5693148B2 (en) | 2010-10-29 | 2015-04-01 | キヤノン株式会社 | Power supply apparatus and control method |
KR101153179B1 (en) | 2010-12-20 | 2012-06-18 | 서울대학교산학협력단 | Method and apparatus for wireless charging based on the resonance frequency selection |
US9077192B2 (en) | 2010-12-29 | 2015-07-07 | National Semiconductor Corporation | Transmitter and receiver tuning in a wireless charging system |
US9178369B2 (en) * | 2011-01-18 | 2015-11-03 | Mojo Mobility, Inc. | Systems and methods for providing positioning freedom, and support of different voltages, protocols, and power levels in a wireless power system |
JP5677875B2 (en) | 2011-03-16 | 2015-02-25 | 日立マクセル株式会社 | Non-contact power transmission system |
JP5490046B2 (en) | 2011-03-22 | 2014-05-14 | 株式会社東芝 | Transmission equipment |
KR101859191B1 (en) | 2011-03-23 | 2018-05-18 | 삼성전자주식회사 | Method and apparatus for controlling wireless power transmission and reception, and wireless power transmission system |
WO2012141239A1 (en) * | 2011-04-15 | 2012-10-18 | Necカシオモバイルコミュニケーションズ株式会社 | Transmitter, receiver, non-contact power transmission control method, and computer-readable recording medium |
US9094055B2 (en) * | 2011-04-19 | 2015-07-28 | Qualcomm Incorporated | Wireless power transmitter tuning |
US9444289B2 (en) * | 2011-09-09 | 2016-09-13 | Lg Electronics Inc. | Wireless power system and resonant frequency changing method thereof |
KR101349551B1 (en) * | 2011-11-02 | 2014-01-08 | 엘지이노텍 주식회사 | A wireless power transmission apparatus and method thereof |
EP2907216A4 (en) * | 2012-10-11 | 2016-08-24 | Powermat Technologies Ltd | Inductive power transmission system and method for concurrently transmitting digital messages |
-
2012
- 2012-12-13 KR KR1020120145814A patent/KR102008808B1/en active IP Right Grant
-
2013
- 2013-11-05 CN CN201710075181.8A patent/CN106953421A/en active Pending
- 2013-11-05 EP EP13862509.0A patent/EP2932578B9/en active Active
- 2013-11-05 WO PCT/KR2013/009959 patent/WO2014092339A1/en active Application Filing
- 2013-11-05 US US14/648,183 patent/US10008881B2/en active Active
- 2013-11-05 EP EP18176543.9A patent/EP3407456A1/en not_active Withdrawn
- 2013-11-05 CN CN201380065285.0A patent/CN104871401B/en not_active Expired - Fee Related
- 2013-11-05 JP JP2015547838A patent/JP6013619B2/en not_active Expired - Fee Related
- 2013-11-12 TW TW102141011A patent/TWI619325B/en not_active IP Right Cessation
-
2016
- 2016-09-21 JP JP2016184315A patent/JP6298509B2/en active Active
-
2018
- 2018-06-08 US US16/004,065 patent/US20180294669A1/en not_active Abandoned
Patent Citations (3)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US6321067B1 (en) * | 1996-09-13 | 2001-11-20 | Hitachi, Ltd. | Power transmission system IC card and information communication system using IC card |
US20120112554A1 (en) * | 2010-11-10 | 2012-05-10 | Nam Yun Kim | Wireless power transmission system, and method of controlling transmission and reception of resonance power |
US10008881B2 (en) * | 2012-12-13 | 2018-06-26 | Lg Innotek Co., Ltd. | Wireless power receiver with variable frequency and method of controlling the same |
Cited By (2)
Publication number | Priority date | Publication date | Assignee | Title |
---|---|---|---|---|
US20230370116A1 (en) * | 2017-02-08 | 2023-11-16 | Canon Kabushiki Kaisha | Power transmission apparatus, power reception apparatus, method, and recording medium |
US12143173B2 (en) * | 2017-02-08 | 2024-11-12 | Canon Kabushiki Kaisha | Power transmission apparatus, power reception apparatus, method, and recording medium |
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US10008881B2 (en) | 2018-06-26 |
TW201433039A (en) | 2014-08-16 |
KR102008808B1 (en) | 2019-10-21 |
WO2014092339A1 (en) | 2014-06-19 |
EP2932578B1 (en) | 2018-07-25 |
US20150318710A1 (en) | 2015-11-05 |
TWI619325B (en) | 2018-03-21 |
CN104871401A (en) | 2015-08-26 |
KR20140077070A (en) | 2014-06-23 |
JP6298509B2 (en) | 2018-03-20 |
JP6013619B2 (en) | 2016-10-25 |
CN106953421A (en) | 2017-07-14 |
EP2932578B9 (en) | 2019-01-02 |
CN104871401B (en) | 2017-11-10 |
EP2932578A1 (en) | 2015-10-21 |
EP2932578A4 (en) | 2016-07-20 |
EP3407456A1 (en) | 2018-11-28 |
JP2017017992A (en) | 2017-01-19 |
JP2016504902A (en) | 2016-02-12 |
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