WO2011148507A1 - 投写型表示装置 - Google Patents
投写型表示装置 Download PDFInfo
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- WO2011148507A1 WO2011148507A1 PCT/JP2010/059131 JP2010059131W WO2011148507A1 WO 2011148507 A1 WO2011148507 A1 WO 2011148507A1 JP 2010059131 W JP2010059131 W JP 2010059131W WO 2011148507 A1 WO2011148507 A1 WO 2011148507A1
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- light
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- light source
- display device
- projection display
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- G—PHYSICS
- G03—PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
- G03B—APPARATUS OR ARRANGEMENTS FOR TAKING PHOTOGRAPHS OR FOR PROJECTING OR VIEWING THEM; APPARATUS OR ARRANGEMENTS EMPLOYING ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ACCESSORIES THEREFOR
- G03B21/00—Projectors or projection-type viewers; Accessories therefor
- G03B21/14—Details
- G03B21/20—Lamp housings
- G03B21/2053—Intensity control of illuminating light
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- G—PHYSICS
- G03—PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
- G03B—APPARATUS OR ARRANGEMENTS FOR TAKING PHOTOGRAPHS OR FOR PROJECTING OR VIEWING THEM; APPARATUS OR ARRANGEMENTS EMPLOYING ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ACCESSORIES THEREFOR
- G03B21/00—Projectors or projection-type viewers; Accessories therefor
- G03B21/14—Details
- G03B21/16—Cooling; Preventing overheating
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- G—PHYSICS
- G03—PHOTOGRAPHY; CINEMATOGRAPHY; ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ELECTROGRAPHY; HOLOGRAPHY
- G03B—APPARATUS OR ARRANGEMENTS FOR TAKING PHOTOGRAPHS OR FOR PROJECTING OR VIEWING THEM; APPARATUS OR ARRANGEMENTS EMPLOYING ANALOGOUS TECHNIQUES USING WAVES OTHER THAN OPTICAL WAVES; ACCESSORIES THEREFOR
- G03B21/00—Projectors or projection-type viewers; Accessories therefor
- G03B21/14—Details
- G03B21/20—Lamp housings
- G03B21/2006—Lamp housings characterised by the light source
- G03B21/2033—LED or laser light sources
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- G—PHYSICS
- G09—EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
- G09G—ARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
- G09G3/00—Control arrangements or circuits, of interest only in connection with visual indicators other than cathode-ray tubes
- G09G3/20—Control arrangements or circuits, of interest only in connection with visual indicators other than cathode-ray tubes for presentation of an assembly of a number of characters, e.g. a page, by composing the assembly by combination of individual elements arranged in a matrix no fixed position being assigned to or needed to be assigned to the individual characters or partial characters
- G09G3/34—Control arrangements or circuits, of interest only in connection with visual indicators other than cathode-ray tubes for presentation of an assembly of a number of characters, e.g. a page, by composing the assembly by combination of individual elements arranged in a matrix no fixed position being assigned to or needed to be assigned to the individual characters or partial characters by control of light from an independent source
- G09G3/3406—Control of illumination source
- G09G3/3413—Details of control of colour illumination sources
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- H—ELECTRICITY
- H04—ELECTRIC COMMUNICATION TECHNIQUE
- H04N—PICTORIAL COMMUNICATION, e.g. TELEVISION
- H04N9/00—Details of colour television systems
- H04N9/12—Picture reproducers
- H04N9/31—Projection devices for colour picture display, e.g. using electronic spatial light modulators [ESLM]
- H04N9/3141—Constructional details thereof
- H04N9/315—Modulator illumination systems
- H04N9/3155—Modulator illumination systems for controlling the light source
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- G—PHYSICS
- G09—EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
- G09G—ARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
- G09G2320/00—Control of display operating conditions
- G09G2320/02—Improving the quality of display appearance
- G09G2320/0242—Compensation of deficiencies in the appearance of colours
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- G—PHYSICS
- G09—EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
- G09G—ARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
- G09G2320/00—Control of display operating conditions
- G09G2320/04—Maintaining the quality of display appearance
- G09G2320/041—Temperature compensation
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- G—PHYSICS
- G09—EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
- G09G—ARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
- G09G2320/00—Control of display operating conditions
- G09G2320/06—Adjustment of display parameters
- G09G2320/0626—Adjustment of display parameters for control of overall brightness
- G09G2320/064—Adjustment of display parameters for control of overall brightness by time modulation of the brightness of the illumination source
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- G—PHYSICS
- G09—EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
- G09G—ARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
- G09G2320/00—Control of display operating conditions
- G09G2320/06—Adjustment of display parameters
- G09G2320/0626—Adjustment of display parameters for control of overall brightness
- G09G2320/0646—Modulation of illumination source brightness and image signal correlated to each other
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- G—PHYSICS
- G09—EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
- G09G—ARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
- G09G2330/00—Aspects of power supply; Aspects of display protection and defect management
- G09G2330/06—Handling electromagnetic interferences [EMI], covering emitted as well as received electromagnetic radiation
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- G—PHYSICS
- G09—EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
- G09G—ARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
- G09G2360/00—Aspects of the architecture of display systems
- G09G2360/14—Detecting light within display terminals, e.g. using a single or a plurality of photosensors
- G09G2360/145—Detecting light within display terminals, e.g. using a single or a plurality of photosensors the light originating from the display screen
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- G—PHYSICS
- G09—EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
- G09G—ARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
- G09G2360/00—Aspects of the architecture of display systems
- G09G2360/16—Calculation or use of calculated indices related to luminance levels in display data
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- G—PHYSICS
- G09—EDUCATION; CRYPTOGRAPHY; DISPLAY; ADVERTISING; SEALS
- G09G—ARRANGEMENTS OR CIRCUITS FOR CONTROL OF INDICATING DEVICES USING STATIC MEANS TO PRESENT VARIABLE INFORMATION
- G09G3/00—Control arrangements or circuits, of interest only in connection with visual indicators other than cathode-ray tubes
- G09G3/001—Control arrangements or circuits, of interest only in connection with visual indicators other than cathode-ray tubes using specific devices not provided for in groups G09G3/02 - G09G3/36, e.g. using an intermediate record carrier such as a film slide; Projection systems; Display of non-alphanumerical information, solely or in combination with alphanumerical information, e.g. digital display on projected diapositive as background
- G09G3/002—Control arrangements or circuits, of interest only in connection with visual indicators other than cathode-ray tubes using specific devices not provided for in groups G09G3/02 - G09G3/36, e.g. using an intermediate record carrier such as a film slide; Projection systems; Display of non-alphanumerical information, solely or in combination with alphanumerical information, e.g. digital display on projected diapositive as background to project the image of a two-dimensional display, such as an array of light emitting or modulating elements or a CRT
Definitions
- the present invention relates to a projection display device, and more particularly to a projection display device in which a light amount is adjusted to a desired light balance by using a light emitting element.
- Projection-type display devices are known as display devices that can enjoy images and images on a large screen.
- Conventional projection display devices mainly perform enlarged display according to the following procedure.
- White light from the light source is separated into red light, green light, and blue light by color separation means such as a dichroic mirror, and the separated monochromatic light is modulated by a light modulation element such as a liquid crystal device or DMD.
- Color images are created by color-synthesizing the modulated images of each color using color synthesis means such as a cross dichroic prism.
- Magnified display of the created color image on a screen using a projection optical system such as a projection lens Magnified display of the created color image on a screen using a projection optical system such as a projection lens.
- discharge lamps such as high-pressure mercury lamps and metal halide lamps have been used as light sources.
- semiconductor light-emitting elements such as LEDs and semiconductor lasers as light sources and are being put into practical use.
- These light emitting elements have the advantages that they do not contain components of heat rays and ultraviolet rays, are easy to control lighting, have a fast response speed, have no fear of rupture, and have a long life compared to discharge lamps.
- the light emitting element is capable of emitting light of three primary colors that produce red, green, and blue color images, and is therefore suitable as a light source for a projection display device, including that there is no need for color separation. .
- the light emitting element is mechanically and electrically connected and mounted on a substrate and a lead frame by silver paste, bonding wires, stud bumps, and the like, and is sealed and protected with a sealing material such as epoxy resin or silicon gel.
- this encapsulant has a refractive index of around 1.5, by putting a light emitting element in the encapsulant, total reflection of light emitted from the light emitting layer at the light emitting element interface is reduced, There is also an effect of increasing the light extraction efficiency.
- the light emitting elements used differ depending on the light emission color, and generally GaN-based compound semiconductors are often used in the ultraviolet to green wavelength region, and AlGaInP based materials called quaternary materials in the yellow to red wavelength region, and GaAs Many compound semiconductors are used.
- the light emitting element emits a lot of heat together with light, and when a larger amount of current is passed to increase the amount of light emission, the temperature becomes higher.
- the light emission efficiency of the light emitting element has temperature dependence, and generally the light emission efficiency decreases when the junction temperature becomes high.
- the temperature dependency varies depending on the material. For example, the red light emitting element has a large temperature dependency, the green light emitting element is small, and the blue light emitting element is hardly affected by the temperature.
- the luminescent material varies depending on the luminescent color
- the degree of decrease in the amount of luminescence at high temperatures varies depending on the luminescent color. Therefore, when the environmental temperature of the projection display device changes, the junction temperature of the light emitting element also changes, so that the light quantity ratio of each color light changes. That is, it is difficult to maintain a desired white balance.
- the light emitting element has a problem that the degree of decrease in the amount of light due to a change with time varies depending on the emission color.
- the sealing material tends to yellow compared to light emitting elements that emit long wavelengths such as red, and the transmittance decreases due to yellowing. The amount of light coming out decreases.
- FIG. 1 is a schematic configuration diagram showing a configuration of an optical system of a projection display device disclosed in Patent Document 1 (Japanese Patent Laid-Open No. 2007-65012).
- an optical system 1051 of a projection display apparatus 1001 includes an R (red) color light source 1010R, a G (green) color light source 1010G, a B (blue) color light source 1010B, a color composition unit 1011, a light modulation element 1014, and projection optics.
- a system 1016 and a light receiving element 1017 are included.
- the light sources 1010R, 1010G, 1010B and the light modulation element 1014 are controlled by the control unit 1100.
- the monochromatic lights emitted from the R color light source 1010R, the G color light source 1010G, and the B color light source 1010B using the light emitting elements are combined in the same optical path by the color combining unit 1011 and enter the polarizing plate 1013.
- a polarization uniforming means using a polarizing beam splitter array and a ⁇ / 2 phase difference plate is inserted in front of the polarizing plate 1013.
- the optical system uses a single-plate light modulation element, the three primary colors of red, green, and blue are sequentially turned on, and light of each color modulated by the light modulation element 1014 is temporally synthesized.
- the FSC Field Sequential Color
- the polarization direction of the incident linearly polarized light is controlled in accordance with the displayed image, and the image is projected on a screen (not shown) or the like through the detection unit 1102 and the projection optical system 1016.
- a polarizing plate 1013 is disposed on the incident side of the light modulation element 1014, and a polarization separation means 1015 is disposed on the emission side, and a single liquid crystal device is used for the light modulation element 1014.
- a polarization beam splitter or the like is used as the polarization separation means 1015, which has a polarization separation surface 1030 made of a dichroic film inclined by 45 ° with respect to incident light, transmits linearly polarized light in one polarization direction, and the polarization direction is It has the function of reflecting the other orthogonally polarized light that is orthogonal.
- linearly polarized light having a polarization direction parallel to the paper surface (hereinafter referred to as P-polarized light) is transmitted, and linearly polarized light having a polarization direction perpendicular to the paper surface (hereinafter referred to as S-polarized light) is reflected. It has a configuration. As indicated by the broken arrow, a projection optical system 1016 is disposed on the optical path of the P-polarized light that is the transmitted light 1020A that has passed through the polarization separating means 1015, and the light modulated by the light modulation element 1014 is illustrated. Project to no screen etc.
- the S-polarized light that is the reflected light 1020B reflected by the polarization separation surface 1030 of the polarization separation means 1015 is incident on the light receiving element 1017.
- the light receiving element 1017 a photodiode, a phototransistor, or the like that converts the intensity of light into an electrical quantity can be used, and these polarization separation means 1015 and the light receiving element 1017 have a function as a detection unit 1102.
- the control unit 1100 has a function of driving the R color light source 1010R, the G color light source 1010G, and the B color light source 1010B, and a function of controlling the light modulation element 1014 and the light receiving element 1017. By detecting and returning the result to the control unit 1100, the control unit 1100 controls the power of each color light source to maintain the white balance at a desired value.
- the display device of Patent Document 1 can cope with a decrease in light emission efficiency due to the change of the light emitting element over time, but the temperature dependency of the light emitting element is not taken into consideration, and the white balance is maintained when the environmental temperature changes. Have the problem of not being able to.
- the light source of the projection display device using the light modulation element depends on the light emission color as described above by performing color composition using LEDs (Light Emitting Diodes, light emitting diodes) and semiconductor lasers of three primary colors of red, green and blue.
- LEDs Light Emitting Diodes, light emitting diodes
- semiconductor lasers of three primary colors of red, green and blue.
- the degree of decrease in luminous efficiency due to the junction temperature and the amount of decrease in light intensity due to long-term use are different.
- the reason for this is that the materials used for the light-emitting elements are different and the sealing material that seals and protects the light-emitting elements is discolored by light having a short wavelength in the blue or ultraviolet region, resulting in a decrease in transmittance. This is because the amount of light emitted through the sealing material is reduced.
- a light source using a plurality of light emitting elements has a problem in that the white balance of a display image is changed as described above because the rate of change in brightness differs depending on the individual light emitting elements even in the same light emitting color. It was.
- An object of the present invention is to maintain an optimal white balance of a display image even when the environmental temperature of the display device changes and the light amount of each color in the light emitting elements of multiple colors changes due to deterioration or failure of the light emitting elements.
- An object of the present invention is to provide a projection display device that can achieve high-quality image quality.
- the projection display device of the present invention is a projection display device including a plurality of light source units, A plurality of temperature sensors, light sensors, and cooling means installed corresponding to each of the plurality of light source units; A light amount control unit that controls the light amount of the corresponding light source unit according to the outputs of the plurality of photosensors; A cooling control unit for controlling a cooling operation by each cooling unit corresponding to the outputs of the plurality of temperature sensors; A CPU that controls the light quantity control unit according to the output of the temperature detection means installed inside the housing, and maintains a constant ratio of the quantity of light emitted from the plurality of light source units; It is characterized by having.
- the light source unit may include a red light source that emits red light, a green light source that emits green light, a blue light source that emits blue light, and a color composition unit that synthesizes light from each color light source.
- Each may have a plurality of light emitting elements, and the light emitting elements may be light emitting diodes or semiconductor lasers.
- the photosensor may be a photodiode or a phototransistor, and when a plurality of light emitting elements are used for light sources of red, green, and blue, they may be provided corresponding to each.
- the light amount control means may compare the light amounts of the light emitting elements of red, green, and blue colors based on the amount of received light detected by the light sensor, and control the driving conditions of the light source so as to maintain the white balance of each color. .
- the light quantity of each color of red light, green light, and blue light is measured by the light sensor of each color, and the light quantity control unit changes the driving condition of the light emitting element to adjust the light quantity ratio of each color to the desired white balance. Therefore, even if the junction temperature of the light emitting element changes and the light emission efficiency changes, or even if the light emitting element deteriorates and the light intensity decreases due to long-term use, it is possible to maintain an optimal white balance display image It becomes.
- the light quantity control unit Can change the driving conditions of red light, green light, and blue light so as to achieve an optimum white balance, and thus has the following effects. That is, 1) Even if the brightness of each color light source changes due to changes in junction temperature, individual differences, changes over time, and driving conditions, the white balance and color reproduction range can be maintained. 2) The chromaticity coordinates of white and the chromaticity coordinates of the three primary colors can be matched with a predetermined video standard. 3) The display image can be brightened or darkened to save power while maintaining the white balance and color reproduction range according to the video signal.
- FIG. 1 is a configuration diagram of a first embodiment of a projection display device according to the present invention.
- FIG. It is a typical block diagram which shows the structure of the optical system of 1st Embodiment of the projection type display apparatus by this invention. It is the figure which showed the timing which the video signal, the lighting time of the light source of each color, and the optical sensor of each color measure the illumination intensity of each light source. It is the figure which showed the junction temperature and illuminance of RGB LED. It is a block diagram of 2nd Embodiment of the projection type display apparatus by this invention.
- a projection display apparatus includes a light source including a light emitting element that emits red, green, or blue color light, a light modulation element using a liquid crystal device, a light sensor, a light amount control unit, and a light source cooling unit. Because the white balance of each color is maintained by measuring the amount of light emitted from these light emitting elements with a light sensor and comparing and adjusting the light amount of each light emitting element of red, green, and blue by the light amount control unit Even when the junction temperature of the light-emitting element changes or the light-emitting element deteriorates due to long-term use and the amount of light decreases, it is possible to maintain a display image with an optimal white balance.
- the white balance means a ratio (balance) of light amounts of light emitting elements of red, green, and blue for displaying white.
- FIG. 2 is a block diagram showing the configuration of the first embodiment of the projection display apparatus according to the present invention.
- the video signal processing circuit 1 receives video signals of various frequencies and resolutions, receives a scaling circuit that converts them to frequencies and resolutions suitable for the light modulation elements, and receives horizontal and vertical synchronization signals, and is necessary for each part of the display device. It consists of detection circuit such as creation of simple timing signal, APL (Average Picture Level) of video signal and histogram.
- detection circuit such as creation of simple timing signal, APL (Average Picture Level) of video signal and histogram.
- the output of the video signal processing circuit 1 is output to a LUT (Look Up Table) 2, and various color adjustments such as correction of voltage-transmittance characteristics of the liquid crystal device, gamma correction, and color space converter are performed in the LUT 2.
- LUT Look Up Table
- the liquid crystal drive circuit 3 drives a plurality of light modulation elements 14 provided corresponding to RGB. Since these are equivalent to a general circuit of a three-plate type liquid crystal projector, detailed description is omitted.
- the CPU 4 controls the video signal processing circuit 1, the LUT 2, the liquid crystal driving circuit 3, and the like, and monitors the output of the in-set temperature sensor 5. Further, the CPU 4 controls the light amount control unit 6.
- the cooling control unit 7 receives the outputs of the temperature sensors 15R, 15G, and 15B provided in the vicinity of the RGB light sources, and cools the RGB light sources with a predetermined power corresponding to each output. Supply to 18R, 18G, 18B.
- the set internal temperature sensor 5 is installed in the housing of the display device, and is installed in the vicinity of the light modulation element, for example. At this time, individual temperature sensors may be arranged in the vicinity of the light modulation elements of the respective colors.
- CPU4 may take the average of those detected temperatures, and may weight appropriately.
- the temperature in the set has a strong correlation with the environment (outside air) temperature surrounding the display device when the power consumption of the display device is constant after the display device is turned on and brought into thermal equilibrium. That is, when the outside air temperature rises, the temperature detected by the set internal temperature sensor 5 also rises. If the outside air temperature and the set internal temperature are collected and calibrated at the time of manufacturing the display device, individual differences of temperature sensors can be corrected.
- a temperature sensor may be installed outside the housing instead of inside the housing to directly detect the outside air temperature.
- it installs in one place inside a housing
- FIG. 3 is a schematic configuration diagram of the projection display device of the present embodiment.
- the description of the configuration of the projection display apparatus that is not directly related to the present invention is omitted.
- the projection display apparatus includes an R color (red) light source 10R, a G color (green) light source 10G, and a B color (blue) light source 10B, and is close to each color light source. Temperature sensors 15R, 15G, and 15B are provided, and optical sensors 17R, 17G, and 17B that detect leakage light are disposed in the vicinity of the light sources of the respective colors.
- the light emitted from the R color light source 10R, the G color light source 10G, and the B color light source 10B that emits monochromatic light using the light emitting elements is the condensing lenses 19R, 19G, and 19B for each color, and the illumination optics for each color.
- the light is modulated by the light modulation elements 14R, 14G, and 14B of the respective colors through the systems 12R, 12G, and 12B, and is synthesized by the color synthesizing unit 11.
- a cross dichroic prism, a cross dichroic mirror, or the like is used for the color synthesizing means 11.
- the light that has passed through the color synthesizing means 11 is projected onto a projection surface such as a screen (not shown) via the projection optical system 16.
- the optical sensors 17R, 17G, and 17B arranged in the vicinity of each light source detect leakage light that does not directly irradiate the light modulation element. Since the leakage light has a strong correlation with the intensity of light directly irradiating the light modulation element, it is possible to detect the amount of light directly irradiating the light modulation element by detecting the leakage light. It is possible to correct individual variations of light emitting elements by collecting and calibrating data at the time of manufacturing a display device. Even when a plurality of light emitting elements are used for a single color light source, individual differences among the light emitting elements can be absorbed by measuring the amount of combined light of these light sources.
- the light quantity controller 6 adjusts the output of the light sources 10R, 10G, and 10B for each color by controlling the light source drive circuits 8R, 8G, and 8B for each color according to the outputs of the light sensors 17R, 17G, and 17B for each color. To obtain the desired white balance.
- the adjustment of the output of the light source may be performed by controlling the current value or by PWM (Pulse Width Modulation) control. In this embodiment, an example of PWM control will be described.
- the light source is controlled by PWM
- the intensity of light received by the photodiode is converted into a current, the current is further converted into a frequency, and the number of pulses in a predetermined period is counted with a clock having a fixed frequency to obtain the illuminance.
- This type of optical sensor is suitable for obtaining the light amount or average illuminance for a predetermined period.
- the PWM cycle is often synchronized with the frame of the video signal.
- the PWM cycle and the frame of the video signal are synchronized, the amount of light of each color for each frame can be controlled to be constant.
- EMI Electro-Magnetic Interference
- the drive PWM periods of the light sources of the respective colors are made different from each other. For this reason, the PWM cycle of each color is asynchronous with the frame of the video signal.
- the switching frequency of the drive circuit is different, so that the electromagnetic interference spectrum does not overlap and the EMI peak is reduced.
- the frame of the video signal and the PWM cycle of the light source drive are asynchronous means that the frame update of the light source modulation element and the light amount control of the illumination light are asynchronous, which deteriorates the color reproducibility of the projected image. I will let you. However, since the synchronization error can be suppressed within one PWM cycle, the time ratio of the error to the frame cycle can be reduced by shortening the PWM cycle, and the deterioration of color reproducibility can be reduced.
- the PWM cycle of at least one color may be synchronized with the video signal frame. For example, when the PWM control of the G light source with high visibility is synchronized with the frame of the video signal, the frame update of the light modulation element and the light amount control of the illumination light are synchronized. EMI can be reduced while suppressing the above.
- all the colors may be synchronized with the frame of the video signal while making the PWM cycles of the light source drive different from each other.
- the PWM cycle of driving the R, G, and B color light sources is an integral multiple of the frame frequency of the video signal, such as 5 ⁇ 60 Hz, 6 ⁇ 60 Hz, and 7 ⁇ 60 Hz, respectively.
- the degree of improvement in the EMI of the component decreases.
- Each color light source 10R, 10G, 10B is provided with cooling means 18R, 18G, 18B, respectively.
- the cooling means 18R, 18G, and 18B for example, a liquid cooling system using an air cooling fan or a pump, a Peltier element, or the like can be considered, and these can be appropriately selected.
- a predetermined power is output to each cooling unit in accordance with the detection output of the temperature sensor for each color installed in the vicinity of the light source for each color.
- the detection output has a strong correlation with the junction temperature of each light emitting element. It is possible to correct variations in temperature sensors and the like by collecting and calibrating data at the time of manufacturing the display device.
- junction temperature of the light emitting element may be obtained at any time by obtaining the thermal resistance from the temperature sensor to the junction of the light emitting element in advance and obtaining the power consumption of the light emitting element as needed.
- Junction temperature of light emitting element (° C.) Temperature of temperature sensor (° C.) + Thermal resistance from temperature sensor to junction of light emitting element (° C./W) ⁇ power consumption of light emitting element (W)
- determining the chromaticity coordinates of the mixed color light determines the light quantity ratio of each color light source to be controlled.
- the chromaticity coordinates of the mixed color light can be calculated.
- the chromaticity coordinates of the emission colors of the R, G, and B color light sources may be fixed depending on the specifications of the light source.
- chromaticity coordinates may be measured for each light source and reflected in the calculation. If the deviation of the chromaticity coordinates of the emission color due to the light source driving conditions such as the driving current is taken into consideration, the data may be stored in advance and reflected in the calculation according to the driving conditions.
- the chromaticity coordinates of the emission colors of the R, G, and B color light sources are fixed.
- the light quantity ratio of each color is a light quantity ratio within a predetermined period (or an average illuminance ratio within a predetermined period) measured by an optical sensor of each color having a strong correlation with the projected light quantity ratio of each color within a predetermined period. means.
- the electric power supplied to the entire light source is determined by the PWM duty of each color.
- the CPU 4 obtains the light quantity ratio of each color to obtain a desired white balance, determines the absolute value (target light quantity) of the light quantity (or average illuminance within the predetermined period) of each color from the desired white luminance, and determines the light quantity.
- a control command is issued to the control unit 6.
- the light amount control unit 6 detects the outputs of the light sensors 17R, 17G, and 17B of the respective colors, and negatively compares the measured light amounts of the respective colors with respect to the light source drive circuits 8R, 8G, and 8B of the respective colors so as to be equal to the respective target light amounts.
- the PWM duty ratio is controlled by applying feedback. For this reason, once the white balance and luminance are set, the white balance is maintained at a desired value regardless of changes in the junction temperature of the light emitting element and changes with time.
- the CPU 4 When adjusting the luminance while maintaining the white balance, the CPU 4 changes the target light amount of each color without changing the light amount ratio of each color. Conversely, when it is desired to adjust the white balance, the RGB light amount ratio is adjusted.
- FIG. 4 is a schematic diagram showing the lighting time of each color light emitting element and the illuminance measurement period of each color photosensor.
- the illuminance measurement period of the optical sensor is set to three PWM periods of each color.
- the PWM cycle of each color is not synchronized with the video signal, and the PWM cycle of each color is not the same.
- the fact that the PWM cycle is not synchronized with the video signal means that an integer multiple of the PWM cycle does not coincide with one frame period (a period from the falling edge of Vsync to the next falling edge) of the video signal.
- the PWM cycle becomes longer in the order of RGB. For example, when the display device is turned on, initialization is performed so that the vertical synchronization signal and the PWM drive of each color are synchronized only once.
- the light sensor of each color starts illuminance measurement after waiting for the first PWM falling edge from the falling edge of the vertical synchronization signal (Vsync).
- the illuminance is measured over three periods for each color.
- the illuminance measurement for each color is performed in synchronization with the PWM for each color.
- the light quantity control unit 6 controls the light source drive circuits 8R, 8G, and 8B while maintaining the light quantity ratio of each color in time for the next frame based on the measurement result. That is, the illuminance of each color in the current frame is measured, and the result is reflected in the next frame. If necessary, the PWM duty is changed in the next frame. It is desirable that the difference between the illuminance measurement frame and the light amount control timing of the light source is small. Here, one frame is used.
- the change timing of the light amount of each color does not coincide with the frame period, and there is a deviation for each frame.
- This can be an error in the brightness of each color depending on the frame.
- this error has little effect on still images. This is because, due to human visual characteristics, it is integrated and brightness errors cannot be detected. In the case of a moving image, the change in the image itself is more visually dominant than the error in brightness, so this is not a problem.
- the brightness of the light source is changed according to the content of the video signal (so-called adaptive dimming)
- the brightness of the light source is adjusted by APL or histogram. For example, the brightness is rapidly adjusted for each frame. There is no need to operate, for example, it is only necessary to change the brightness slowly over a period of 1 to several seconds, so that there is no problem.
- the illuminance measurement is performed in synchronization with the PWM of each color, the brightness error due to the frame does not affect the white balance adjustment.
- FIG. 5 is a diagram showing the junction temperature and normalized illuminance characteristics of the RGB three-color LEDs.
- 5A shows the characteristics of the red LED
- FIG. 5B shows the characteristics of the green LED
- FIG. 5C shows the characteristics of the blue LED.
- the normalized illuminance means relative illuminance when the illuminance at a certain temperature is 100%.
- the red LED is 50% when the temperature increases by 50 ° C. It will drop more. That is, the red LED has a high temperature dependency of illuminance.
- T1 ° C. for example, 40 ° C.
- the red LED has a high temperature dependency of illuminance.
- T1 for example, 40 ° C.
- the illuminance at the junction temperature T1 for example, 40 ° C.
- the illuminance rises by 50 ° C. it decreases by about 10%.
- a blue LED there is almost no change in illuminance due to the junction temperature.
- the illuminance of the red LED decreases as the junction temperature of the red LED increases, and it becomes difficult to maintain white balance.
- the illuminance of the LED is roughly proportional to the drive power, but if the illuminance decreases due to temperature dependence, further power input is required. Since the junction temperature also depends on the input power, the cooling means needs to be further turned on, which increases the power consumption of the entire display device. This increase in power consumption does not necessarily contribute to the performance as a display device such as an increase in luminance and white balance maintenance, and results in contrary to the social demand for energy saving.
- the power supplied to the red LED cooling means 18R is determined so that the junction temperature of the red LED does not exceed a predetermined temperature at the maximum luminance.
- a command to lower the absolute value of the PWM duty ratio of each color is issued to the light amount control unit 6 while maintaining the white balance (that is, maintaining the RGB light amount ratio).
- the light quantity control unit is controlled in the same manner as the operation of lowering the luminance while maintaining the white balance described above (for example, every time the outside air temperature increases by 1 ° C., the absolute value of the duty ratio of each color is decreased by 3%).
- the outside air temperature rises and this reduces the brightness, it can be restored to its original state when the outside air temperature falls due to air conditioning or the like. Further, when the outside air temperature is lower than that in the standard environment, the desired brightness and the desired white balance can be realized with less power consumption than in the standard environment, which is convenient.
- FIG. 6 is a block diagram of a second embodiment of the projection display apparatus according to the present invention.
- the cooling control unit 7 supplies predetermined power to the cooling units 18R, 18G, and 18B for each color according to the detection temperatures of the temperature sensors 15RGB for each color. For example, when the red PWM duty increases due to the detection result of the red light sensor 17R, the illuminance of the red light emitting element increases. As the illuminance increases, the junction temperature of the red light-emitting element increases, so that the detection temperature of the red temperature sensor 15R increases.
- the cooling control unit 7 supplies power predetermined for the new detected temperature to the red cooling means 18R. That is, the cooling control unit 7 in the first embodiment controls the cooling means for each color according to the output of the temperature sensor for each color, and operates independently of the operation of the light amount control unit 6.
- the cooling controller 7 controls the power supplied to the cooling means 18R, 18G, and 18B for each color so as to keep the output of the temperature sensor for each color constant.
- the CPU 4 transmits, to the cooling control unit 7, a target temperature value at which the output of the temperature sensor for each color should be constant based on a command to the light amount control unit 6 (drive power setting value for each color light source).
- the light amount control loop and the cooling control loop each affect the other party, which may cause the control system to oscillate and become unstable. Therefore, the response speed of the light quantity control loop is converged faster than the response speed of the cooling control loop.
- the light amount change rate in the light amount control is made larger than the light amount change rate in the cooling control.
- the light amount change rate is the time ⁇ t until the light amount change amount (ie, ⁇ L) from the state where the light amount is shifted by the predetermined light amount deviation ⁇ L to the predetermined light amount is converged to the predetermined light amount by the light amount control.
- Light quantity change rate ⁇ L / ⁇ t
- the junction temperature is increased or decreased by increasing or decreasing the cooling capacity based on the correlation between the junction temperature of the light emitting element and the illuminance, and thus the light amount is indirectly increased or decreased. Therefore, after the light quantity control system converges first, the above-described oscillation phenomenon is prevented by slowly converging the cooling control system over time. Since the temperature dependence of illuminance also depends on the emission wavelength, the cooling control for each color operates independently.
- Video signal processing circuit 2 LUT 3 Liquid crystal drive circuit 4 CPU 5 In-set temperature sensor 6
- Light quantity control unit 7 Cooling control unit 8R, 8G, 8B
- Light source drive circuit 10R R color light source 10G G color light source 10B B color light source 11
- Illumination optical system 14R, 14G, 14B Light modulation element 15R, 15G, 15B
- Temperature sensor 16 Projection optical system 17R, 17G, 17B
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Abstract
Description
前記複数の光源部のそれぞれに対応して設置された複数の、温度センサー、光センサー、および、冷却手段と、
前記複数の光センサーの出力に応じて対応する光源部の光量を制御する光量制御部と、
前記複数の温度センサーの出力に応じて対応する各冷却手段による冷却動作を制御する冷却制御部と、
筐体内部に設置された温度検出手段の出力に応じて前記光量制御部を制御し、前記複数の光源部から照射される光量比を一定に保持するCPUと、
を有することを特徴とする。
1)ジャンクション温度の変化、個体差、経時変化や駆動条件によって各色光源の明るさが変化しても、ホワイトバランスや色再現範囲を維持することができる。
2)白色の色度座標や三原色の色度座標を所定の映像規格に合わせることができる。
3)映像信号に応じてホワイトバランスや色再現範囲を保ったまま、表示画像を明るくしたり、節電のために暗くしたりできる。
発光素子のジャンクション温度(℃)=温度センサーの温度(℃)+温度センサーから発光素子のジャンクションまでの熱抵抗(℃/W)×発光素子の消費電力(W)
R色光で(0.698,0.302)、G色光で(0.194,0.706)、B色光で(0.141,0.046)の場合に混色光で(0.3127,0.329)としたいとき、R色光の光量:G色光の光量:B色光の光量=25.5:68.9:5.61という比率にすればよい。
光量変化率=ΔL/Δt
(1)投写型表示装置の環境温度の変化
(2)発光素子の経時変化
によらず、ホワイトバランスを所望の値に維持しつつ、輝度の調整が可能となり、どのような環境で投写型表示装置を使用しても、また長期間に渡って使用しても高品位な画質が得られる。
2 LUT
3 液晶駆動回路
4 CPU
5 セット内温度センサー
6 光量制御部
7 冷却制御部
8R、8G、8B 光源駆動回路
10R R色光源
10G G色光源
10B B色光源
11 色合成手段
12R、12G、12B 照明光学系
14R、14G、14B 光変調素子
15R、15G、15B 温度センサー
16 投写光学系
17R、17G、17B 光センサー
18R、18G、18B 冷却手段
19R、19G、19B 集光レンズ
Claims (9)
- 複数の光源部を備える投射型表示装置であって、
前記複数の光源部のそれぞれに対応して設置された複数の、温度センサー、光センサー、および、冷却手段と、
前記複数の光センサーの出力に応じて対応する光源部の光量を制御する光量制御部と、
前記複数の温度センサーの出力に応じて対応する各冷却手段による冷却動作を制御する冷却制御部と、
筐体内部に設置された温度検出手段の出力に応じて前記光量制御部を制御し、前記複数の光源部から照射される光量比を一定に保持するCPUと、
を有することを特徴とする投写型表示装置。 - 前記光源部は、赤色光を発する赤色光源と、緑色光を発する緑色光源と、青色光を発する青色光源と、前記各色光源からの光を合成する色合成手段とを有する、請求項1に記載の投写型表示装置。
- 前記各色光源部は、それぞれ少なくとも一つの発光素子を有する、請求項2に記載の投写型表示装置。
- 前記発光素子は、発光ダイオードである、請求項3に記載の投写型表示装置。
- 前記発光素子は、半導体レーザである、請求項3に記載の投写型表示装置。
- 前記光源制御部は、映像信号と非同期で前記光源部の光量を調整する請求項1に記載の投写型表示装置。
- 光変調素子として、複数の液晶デバイスを備える請求項1に記載の投写型表示装置。
- 前記光源制御部は、各色の前記光源部の光量をそれぞれ異なる周期で調整する請求項1に記載の投写型表示装置。
- 前記光センサーは、前記光源部の光量を調整する前記周期と同期して照度の測定を行う請求項1に記載の投写型表示装置。
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JP2012517073A JP5676595B2 (ja) | 2010-05-28 | 2010-05-28 | 投写型表示装置および投写表示方法 |
PCT/JP2010/059131 WO2011148507A1 (ja) | 2010-05-28 | 2010-05-28 | 投写型表示装置 |
CN201080067089.3A CN102918578B (zh) | 2010-05-28 | 2010-05-28 | 投影显示设备 |
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Also Published As
Publication number | Publication date |
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US9022578B2 (en) | 2015-05-05 |
US20150212400A1 (en) | 2015-07-30 |
EP2579239A4 (en) | 2016-01-20 |
US9274408B2 (en) | 2016-03-01 |
EP2579239A1 (en) | 2013-04-10 |
JPWO2011148507A1 (ja) | 2013-07-25 |
US20130070208A1 (en) | 2013-03-21 |
CN102918578B (zh) | 2015-10-14 |
JP5676595B2 (ja) | 2015-02-25 |
CN102918578A (zh) | 2013-02-06 |
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