Detailed Description
In order to make the objects, technical solutions and advantages of the present application more apparent, the technical solutions of the present application will be described in detail and completely with reference to the following specific embodiments of the present application and the accompanying drawings. It should be apparent that the described embodiments are only some of the embodiments of the present application, and not all of the embodiments. All other embodiments, which can be derived by a person skilled in the art from the embodiments given herein without making any creative effort, shall fall within the protection scope of the present application.
Note: in the present application, the X direction means an axial direction that is a direction opposite to a direction in which the vehicle keeps traveling straight on a horizontal ground surface, the Y direction means an axial direction perpendicular to the X direction on a vehicle chassis plane, and the Z direction means an axial direction perpendicular to a plane formed by the X direction and the Y direction.
The electric motor coach is a small-sized light passenger-carrying electric vehicle with less than 9 passengers, and the electric motor drives wheels to run by using a vehicle-mounted power supply as power. The electric motor coach is different from special electric vehicles (such as garbage transport vehicles powered by vehicle-mounted power supplies, urban goods transport vehicles powered by vehicle-mounted power supplies, public transport vehicles powered by vehicle-mounted power supplies and the like)
Note: the model parameters of the electric motor coach can comprise information such as the length of the coach body, the width of the coach body, the height of the coach body, the front wheel track, the rear wheel track, the size of a tire, the weight of the coach body, the wheel base of the coach body, the size of a battery, the weight of the battery and the like.
The utility model provides a battery intelligence storage charging system that electricity was traded in sharing of different motorcycle types [ electric ] motor coach, the motorcycle type parameter information who acquires according to vehicle recognition device, can be applicable to the [ electric ] motor coach of different motorcycle types trades the electricity, can so that not unidimensional power battery can be safe, convenient quick charging, battery intelligence storage charging system can be for the [ electric ] motor coach use of multiple motorcycle type, no matter be A0, the power battery of [ electric ] motor coach such as A level or B level all can charge, be convenient for the extensive commercial popularization and application of [ electric ] motor coach.
The electric push rod used in the present application is an electric driving device that converts a rotational motion of a motor into a linear reciprocating motion of a push rod. The device can be used as an execution machine in various simple or complex process flows; the electric push rod is composed of a driving motor, a reduction gear, a screw rod, a nut, a guide sleeve, a push rod, a sliding seat, a spring, a shell, a turbine, a micro control switch and the like. The electric push rod is a novel electric actuating mechanism, and the electric push rod is a novel linear actuating mechanism mainly composed of a motor, a push rod, a control device and the like, and can realize remote control and centralized control. The electric push rod moves back and forth within a certain range of stroke. The electric push rod actuating mechanism is adopted, when the control opening degree is changed, power needs to be supplied, and power can be not supplied when the required opening degree is reached, so that the electric push rod actuating mechanism has the obvious energy-saving advantage compared with a pneumatic actuating mechanism in terms of energy conservation.
In the screw mode adopted in the application, the motor drives a pair of screw nuts after being decelerated by a gear. The rotary motion of the motor is changed into linear motion, and the push rod action is completed by utilizing the positive and negative rotation of the motor. For example, the complex actions such as rotation and shaking can be completed through various levers, rocking bars or connecting rods. By varying the lever arm length, the stroke can be increased or decreased. The worm and gear drive form adopted in this application: the worm on the motor gear drives the worm wheel to rotate, so that the small lead screw in the worm wheel axially moves, the connecting plate drives the limiting rod to correspondingly axially move, when the required stroke is reached, the limiting block is adjusted to press down the travel switch to power off, and the motor stops running (positive and negative control is the same). The gear drive form adopted in this application: the motor drives a small screw rod arranged in the inner tube after passing through the reduction gear, drives a nut which is connected with the small screw rod to axially run, when the nut reaches a set stroke, a contact angle of the nut presses the limit switch to disconnect a power supply, and the motor stops moving (the reverse direction is the same as the direction). The sprocket approach used in this application, i.e. a wheel with cogged sprocket teeth, is used to mesh with precisely pitched blocks on a chain link or cable, and with (roller) chains to transmit motion.
As shown in fig. 1 and fig. 2, the battery intelligent storage charging system for sharing battery replacement for electric cars of different models includes: a battery storage rack CC101, a battery charging device CC102 and a battery dispatching device CC103, wherein,
the battery storage rack CC101 is used for storing power batteries 20 of electric motor coaches of different vehicle types;
the battery scheduling device CC103 comprises a track and is used for conveying the extracted batteries to be charged to the battery storage rack CC101 or conveying the fully charged batteries on the battery storage rack to the battery replacement robot;
the battery charging device CC102 is disposed on the battery storage rack CC101, and is used for rapidly charging the power batteries, and monitoring and displaying the current state of each power battery in real time, where the current state of each power battery includes: a battery to be charged, a positive charging battery, a full charge battery, and a faulty battery.
The battery storage rack comprises a frame for placing power batteries, wherein the frame is of a multilayer structure, a plurality of power battery storage positions are arranged on the frame, and each layer of the structure of the frame is formed by connecting a plurality of longitudinal beams and a plurality of cross beams; the battery intelligent storage charging system locks the power battery on the frame, and after receiving information of taking a certain power battery, the battery intelligent storage charging system unlocks the power battery independently, so that the power battery is only placed on the frame, and the power battery is controlled to be moved out of the frame. The frame is formed by welding sectional materials, the size of each sectional material is 40mm multiplied by 40mm, and through actual measurement, the size of each sectional material is set to be 40mm multiplied by 40mm, so that the strength of the frame is improved.
Further comprising: the intelligent battery storage and charging system locks the power battery on the frame in an electromagnetic suction mode through the electromagnetic sucker. The power battery is fixed on the frame in an electromagnetic suction mode of the electromagnetic chuck. The power battery is fixed by adopting the electromagnetic suction way of the electromagnetic chuck, and the advantage is that the power battery is not limited to be fixed in a specific form. When a certain power battery is taken, the intelligent battery storage and charging system can be independently unlocked and then taken down by the battery scheduling device.
Further comprising: the battery intelligent storage charging system moves the power battery out of the frame, and the power battery is moved out of the frame through a plurality of running rollers and running roller driving devices arranged on the frame, wherein the left side and the right side of the running rollers are driven by two chain wheels, and the driving motors arranged on the left side and the right side of the running rollers drive one set of chain wheels to enable the running rollers to rotate so as to correspondingly move the power battery on the running rollers.
The battery charging device CC102 further includes a power battery plugging unit CC1021, where the power battery plugging unit is used to plug a power battery placed in a power battery storage location, and the power battery plugging unit enables the power socket to move and adjust along the front-back direction of the vehicle and the direction perpendicular to the ground, and then to be connected with the power battery to be charged. The power battery plug-in unit also comprises a sensor, and the sensor inserts the guide column into the guide column hole of the power battery after judging that the power supply plug-in socket is matched with the interface of the power battery after moving and adjusting, so as to complete the positioning of the power supply plug-in socket and the power battery. (by combining the sensor with the guide post, the positioning of the power socket and the power battery can be accurately finished, the positioning efficiency is improved, and the physical abrasion when the guide post is inserted into the guide post hole of the power battery is reduced)
As shown in fig. 3, the power battery plug-in unit CC1021 further includes an electric push rod CC 10211; the power battery plug-in unit enables the power plug-in socket to be connected with a power battery to be charged after the power plug-in socket moves and adjusts along the front and back directions of the vehicle and the direction vertical to the ground, and the power battery plug-in unit is characterized in that: the power battery plug-in unit enables the power supply plug socket to move and adjust along the front-back direction of the vehicle and the direction vertical to the ground through the electric push rod and then is connected with the power battery to be charged.
As shown in fig. 1, the battery charging apparatus CC102 further includes a charger CC1022 and a charging control cabinet CC1023 connected to each other, where the charger is used for fast charging the power battery; and the charging control cabinet is used for controlling the quick charging of the power battery and carrying out corresponding alarming and power-off operations after monitoring the state of the power battery.
The battery scheduling device also comprises a lifting platform and a mobile platform, wherein,
the lifting platform comprises a frame structure consisting of a plurality of guide posts and lead screws arranged in parallel with the guide posts, and the lifting platform vertically moves along the guide posts;
the mobile platform comprises a planar frame, is arranged in the frame structure of the lifting platform and moves back and forth along the track direction to convey the extracted batteries to be charged to the battery storage rack or convey the fully charged batteries on the battery storage rack to the battery replacement robot.
The lift platform includes: the gear pair is connected with the motor; the lifting platform does vertical motion along the guide post, and the vertical motion refers to that: the battery dispatching device enables the lifting platform to move vertically along the guide column through the driving of the lead screw, wherein the lead screw drives the pair of gear pairs to move through the motor.
The mobile platform includes: a motor, a gear and a rack; or a motor and a lead screw kinematic pair; the moving platform moves to the left side and the right side of the vehicle body along the guide rail in a frame structure of the lifting platform, and the moving platform means that:
the battery dispatching device drives a gear rack or a screw rod kinematic pair through a motor to control the mobile platform, and moves to the left and right sides of the vehicle body along the guide rail in a frame structure of the lifting platform.
The mobile platform further comprises a plurality of rollers arranged in the plane of the frame, the battery dispatching device controls the power battery to be moved out of or into the plane of the frame, the motor drives the chain wheels to rotate, every two chain wheels drive the two adjacent rollers, one set of chain wheels is driven to enable the rollers to rotate, and the power battery to be moved out of or into the plane of the frame.
As shown in fig. 4, the work flow of the battery intelligent storage charging system applying the present application is as follows:
step 401, driving the electric passenger car into an intelligent battery replacement positioning platform, and replacing a power-lack battery through a battery replacement robot;
step 402, taking out a power-lack battery from the battery replacement robot by the battery scheduling device, conveying the power-lack battery to a battery storage rack, and placing the power-lack battery on the battery storage rack, wherein the battery storage rack displays that the state of the power-lack battery is a state to be charged; after the power battery is placed on the battery storage rack, the power battery can be automatically corrected and positioned through a power battery plug-in unit of the battery charging device;
step 403, after the power socket and the power battery to be charged are connected in place, the battery charging device automatically charges the power battery; the battery charging device also comprises a charging control cabinet and a charger, and is connected to the charging control cabinet through a wire harness to realize automatic operation of all actions; the charged battery storage rack displays that the state of the power battery is a charging state;
and step 404, after the power battery is charged, the battery storage rack displays that the state of the power battery is in a full-charge state, if a fault occurs in the charging process, the battery storage rack displays that the state of the power battery is in a fault state, and the intelligent battery storage charging system performs fault processing operation on the power battery with the fault.
In the description provided herein, numerous specific details are set forth. However, it is understood that embodiments of the application may be practiced without these specific details. In some instances, well-known methods, structures and techniques have not been shown in detail in order not to obscure an understanding of this description.
Similarly, it should be appreciated that in the foregoing description of exemplary embodiments of the application, various features of the application are sometimes grouped together in a single embodiment, figure, or description thereof for the purpose of streamlining the disclosure and aiding in the understanding of one or more of the various inventive aspects. However, the disclosed method should not be interpreted as reflecting an intention that: this application is intended to cover such departures from the present disclosure as come within known or customary practice in the art to which this invention pertains. Rather, as the following claims reflect, inventive aspects lie in less than all features of a single foregoing disclosed embodiment. Thus, the claims following the detailed description are hereby expressly incorporated into this detailed description, with each claim standing on its own as a separate embodiment of this application.
Those skilled in the art will appreciate that the modules in the device in an embodiment may be adaptively changed and disposed in one or more devices different from the embodiment. The modules or units or components of the embodiments may be combined into one module or unit or component, and furthermore they may be divided into a plurality of sub-modules or sub-units or sub-components. All of the features disclosed in this specification (including any accompanying claims, abstract and drawings), and all of the processes or elements of any method or apparatus so disclosed, may be combined in any combination, except combinations where at least some of such features and/or processes or elements are mutually exclusive. Each feature disclosed in this specification (including any accompanying claims, abstract and drawings) may be replaced by alternative features serving the same, equivalent or similar purpose, unless expressly stated otherwise.
Furthermore, those skilled in the art will appreciate that while some embodiments described herein include some features included in other embodiments, rather than other features, combinations of features of different embodiments are meant to be within the scope of the application and form different embodiments. For example, in the following claims, any of the claimed embodiments may be used in any combination.
It should be noted that the above-mentioned embodiments illustrate rather than limit the application, and that those skilled in the art will be able to design alternative embodiments without departing from the scope of the appended claims. In the claims, any reference signs placed between parentheses shall not be construed as limiting the claim. The word "comprising" does not exclude the presence of elements or steps not listed in a claim. The word "a" or "an" preceding an element does not exclude the presence of a plurality of such elements. The application may be implemented by means of hardware comprising several distinct elements, and by means of a suitably programmed computer. In the unit claims enumerating several means, several of these means may be embodied by one and the same item of hardware. The usage of the words first, second and third, etcetera do not indicate any ordering. These words may be interpreted as names.