Battery replacement device and battery replacement method
The battery replacement device addresses placement inaccuracies by using a detection and control system to align the battery mounting base with the battery's position and orientation, ensuring precise and reliable battery placement on the unit.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- TOYOTA JIDOSHA KK
- Filing Date
- 2022-12-05
- Publication Date
- 2026-04-14
AI Technical Summary
Existing battery replacement devices struggle with accurately positioning and orienting batteries from electric vehicles onto a battery placement unit when deviations occur, leading to potential placement failures.
A battery replacement device equipped with a detection unit to determine the position and orientation of the battery, a battery mounting base that can be controlled for precise alignment, and a control unit to manage the positioning and orientation of the mounting base based on detected data, ensuring accurate placement.
Ensures reliable placement of batteries on the battery placement unit by adjusting the position and orientation of the mounting base to match the detected battery position and orientation, enhancing the efficiency and accuracy of battery replacement processes.
Smart Images

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Abstract
Description
Technical Field
[0001] The present disclosure relates to a battery replacement device and a battery replacement method.
Background Art
[0002] Japanese Patent Application Laid-Open No. 2012-192783 (Patent Document 1) discloses a battery replacement device for replacing the battery of an electric vehicle. The battery replacement device removes the battery attached to the electric vehicle and places the removed battery on a battery placement unit driven below the vehicle.
Prior Art Documents
Patent Documents
[0003]
Patent Document 1
Summary of the Invention
Problems to be Solved by the Invention
[0004] However, in Patent Document 1, when the position and orientation of the battery of the electric vehicle deviate from the predetermined position and orientation, there may be a case where the battery cannot be placed on the battery placement unit. Therefore, a battery replacement device and a battery replacement method capable of reliably placing the battery removed from the electric vehicle on the battery placement unit (battery placement table) are desired.
[0005] The present disclosure has been made to solve the above problems, and an object thereof is to provide a battery replacement device and a battery replacement method capable of reliably placing the battery removed from the electric vehicle on the battery placement table.
Means for Solving the Problems
[0006] The battery replacement device according to the first aspect of the present disclosure is a battery replacement device for replacing a first battery installed in an electric vehicle with a second battery, comprising: a detection unit for detecting at least one of the position and orientation of the first battery; a battery mounting base on which the first battery removed from the electric vehicle is placed and which is driven below the electric vehicle; and a control unit for controlling the drive of the battery mounting base, wherein the control unit controls at least one of the position and orientation of the battery mounting base based on at least one of the position and orientation of the first battery detected by the detection unit, and controls the removal of the first battery from the electric vehicle while at least one of the position and orientation of the battery mounting base is controlled.
[0007] In the battery replacement device according to the first aspect of this disclosure, as described above, control is performed to remove the first battery from the electric vehicle while the position and orientation of the battery mounting base are controlled based on at least one of the position and orientation of the first battery detected by the detection unit. This makes it possible to adjust at least one of the position and orientation of the battery mounting base to suit at least one of the position and orientation of the first battery. As a result, the first battery removed from the electric vehicle can be reliably placed on the battery mounting base.
[0008] In the battery replacement device relating to the first aspect described above, preferably, the battery mounting base is configured to be movable horizontally below the electric vehicle, and the detection unit detects the horizontal position of the first battery. The control unit controls the horizontal position of the battery mounting base based on the horizontal position of the first battery detected by the detection unit, and controls the removal of the first battery from the electric vehicle while the horizontal position of the battery mounting base is controlled. This makes it possible to adjust the horizontal position of the battery mounting base to suit the horizontal position of the first battery.
[0009] In this case, preferably, the detection unit detects, in addition to the horizontal position of the first battery, at least one of the following: the tilt of the first battery relative to the horizontal, the orientation of the first battery in a plan view, and the vertical position of the first battery. This allows the position and tilt of the battery mounting base to be adjusted based on at least one of the following: the tilt of the first battery relative to the horizontal, the orientation of the first battery in a plan view, and the vertical position of the first battery.
[0010] In the battery replacement device relating to the first aspect described above, preferably, a vehicle holding unit is further provided to hold the electric vehicle in a state parallel to the horizontal direction. The detection unit also detects at least one of the position and orientation of the first battery attached to the electric vehicle held by the vehicle holding unit. As a result, the electric vehicle can be held horizontally by the vehicle holding unit, so there is no need to provide a mechanism for tilting the battery mounting base with respect to the horizontal direction. Consequently, the configuration of the battery replacement device (battery mounting base) can be simplified.
[0011] In the battery replacement device relating to the first aspect described above, preferably, the detection unit includes a radar that irradiates the first battery with radio waves and detects the distance to the first battery based on the reflected waves from the first battery. This makes it possible to easily detect the position and orientation of the first battery using the radar.
[0012] In the battery replacement device relating to the first aspect described above, preferably, the detection unit includes an imaging unit that images a mark portion including at least one of a marker and a hole portion provided on the first battery, and an image processing unit that detects at least one of the position and orientation of the first battery based on the image captured by the imaging unit. This makes it possible to easily detect the position and orientation of the first battery based on the image of the mark portion.
[0013] In this case, preferably, the battery replacement device is further equipped with a communication unit that communicates with the electric vehicle. Before the first battery is removed, the communication unit acquires mark information from the electric vehicle, which includes at least one of the following: location information of the mark, information about the shape of the mark, and information about the type of the mark. The detection unit detects the mark based on the mark information acquired by the communication unit. This allows the mark to be detected more quickly by referring to the previously acquired mark information.
[0014] In a battery replacement device in which the detection unit includes an imaging unit and an image processing unit, preferably, a cleaning unit for cleaning the markings is further provided. The control unit controls the cleaning unit to clean the markings before the detection unit detects the markings. This allows any dirt or other contaminants adhering to the markings to be removed by cleaning before the detection unit detects them. As a result, the image processing unit can more reliably detect the markings based on the image of the markings captured by the camera.
[0015] In the battery replacement device relating to the first aspect described above, preferably, a storage unit is further provided to store at least one of the position and orientation of the battery mounting base when the first battery is removed from the electric vehicle. The control unit moves the battery mounting base based on at least one of the position and orientation of the battery mounting base stored by the storage unit, and controls the placement of the second battery on the moved battery mounting base. This makes it possible to set at least one of the position and orientation of the battery mounting base when attaching the second battery to the electric vehicle to the same as at least one of the position and orientation of the battery mounting base when the first battery is removed from the electric vehicle (while the removal is in progress). As a result, the second battery can be attached to the electric vehicle more reliably.
[0016] The battery replacement method according to the second aspect of the present disclosure is a battery replacement method for replacing a battery of an electric vehicle using a battery replacement device including a battery placement table, the method including: a step of detecting at least one of the position and orientation of the battery; a step of controlling at least one of the position and orientation of the battery placement table based on at least one of the detected position and orientation of the battery; and a step of removing the battery from the electric vehicle and placing it on the battery placement table while at least one of the position and orientation of the battery placement table is controlled.
[0017] In the battery replacement method according to the second aspect of the present disclosure, as described above, based on at least one of the position and orientation of the battery detected by the detection unit, while at least one of the position and orientation of the battery placement table is controlled, the battery is removed from the electric vehicle. Thereby, a battery replacement method capable of reliably placing the battery removed from the electric vehicle on the battery placement table can be provided.
Advantages of the Invention
[0018] According to the present disclosure, the battery removed from the electric vehicle can be reliably placed on the battery placement table.
Brief Description of the Drawings
[0019] [Figure 1] It is a diagram showing the configuration of a battery replacement device according to an embodiment. [Figure 2] It is a plan view showing the vehicle stop area of a battery replacement device according to an embodiment. [Figure 3] It is a diagram showing the configuration of an electric vehicle. [Figure 4] It is a schematic diagram showing the configuration under the floor of a battery replacement device according to an embodiment. [Figure 5] It is a perspective view showing the configuration of a battery placement table of a battery replacement device according to an embodiment. [Figure 6] It is a flowchart showing each step of a battery replacement device according to an embodiment. [Figure 7] It is a bottom view of an electric vehicle seen from below. [Figure 8]FIG. 8(A) is a schematic view of a state in which the horizontal positions of the battery mounting table and the battery are displaced from each other. FIG. 8(B) is a schematic view of a state in which the displacement in the horizontal position between the battery mounting table and the battery is eliminated. [Figure 9] FIG. 9(A) is a schematic view of a state in which the alignment pin is inserted into the pin insertion hole. FIG. 9(B) is a schematic view of a state in which the locking / unlocking tool is inserted into the tool insertion hole. FIG. 9(C) is a schematic view of a state in which unlocking is being performed by the locking / unlocking tool. [Figure 10] FIG. 10(A) is a schematic view of a state in which the battery removed from the electric vehicle is moved downward by the battery mounting table. FIG. 10(B) is a schematic view of a state in which the lifting / lowering part is retracted downward. FIG. 10(C) is a schematic view of a state in which the battery is stored in the storage. [Figure 11] FIG. 11(A) is a schematic view showing a state in which the position of the battery mounting table is displaced from the position of the battery mounting table stored in the memory. FIG. 11(B) is a schematic view showing a state in which the position of the battery mounting table overlaps with the position of the battery mounting table stored in the memory. [Figure 12] FIG. 12(A) is a schematic view showing a state in which the battery is placed on the battery mounting table. FIG. 12(B) is a schematic view showing a state in which the electric vehicle is lifted by the lifting / lowering part. FIG. 12(C) is a schematic view showing a state in which the battery is attached to the electric vehicle. [Figure 13] FIG. 13(A) is a schematic view showing a state in which the movement of the battery is restricted by the stopper part. FIG. 13(B) is a schematic view showing a state in which the position and orientation of the battery are adjusted by the movable part. [Figure 14] It is a schematic view showing a radar according to a modification of an embodiment. [Figure 15] It is a figure showing the hole part provided in the battery of the electric vehicle.
Mode for Carrying Out the Invention
[0020] Hereinafter, embodiments of the present disclosure will be described in detail with reference to the drawings. In the drawings, the same or corresponding parts are denoted by the same reference numerals and the description thereof will not be repeated.
[0021] (Configuration of the battery replacement device) Figure 1 shows a battery replacement device 100 and an electric vehicle 200 according to this embodiment. The battery replacement device 100 is a device for replacing the battery 201 installed in the electric vehicle 200 with battery 101. The battery replacement device 100 comprises a battery replacement station 100a where the battery replacement is performed and a storage shed 100b where the battery 101 is stored. The storage shed 100b is attached to the battery replacement station 100a. The battery replacement station 100a is provided with an entrance / exit 102 for the electric vehicle 200 to enter and exit. Note that battery 201 and battery 101 are examples of the "first battery" and "second battery" of this disclosure, respectively.
[0022] The battery 101, stored in the hangar 100b, is moved to the temporary storage area 40 located in the underfloor area S, and then transported to the electric vehicle 200. The underfloor area S is also provided with a battery mounting platform 34, a lifting section 35, and a transport section 36, which will be described later.
[0023] The battery replacement device 100 comprises a control device 10, a detection device 20, and a drive device 30. The detection device 20 is an example of the "detection unit" described herein.
[0024] The control unit 10 includes a processor 11, a memory 12, and a communication unit 13. The memory 12 stores the program executed by the processor 11, as well as information used by the program (for example, maps, formulas, and various parameters). As will be described in detail later, the processor 11 controls the drive unit 30. Note that the processor 11 and the memory 12 are examples of the "control unit" and "memory" as described herein.
[0025] The communication unit 13 includes various communication interfaces. The processor 11 controls the communication unit 13. The communication unit 13 communicates with the DCM, etc., of the electric vehicle 200. Communication between the communication unit 13 and the electric vehicle 200 is bidirectional. The communication unit 13 may also communicate with a mobile terminal, etc., owned by the user of the electric vehicle 200.
[0026] Furthermore, the detection device 20 includes a camera 21 and an image processing unit 22. Details of the detection device 20 will be described in detail later. Note that the camera 21 is an example of the "imaging unit" in this disclosure.
[0027] Furthermore, as shown in Figure 2, the battery replacement device 100 is provided with a vehicle stopping area 103. When the electric vehicle 200 is stopped in the vehicle stopping area 103, and the user performs an operation to instruct the start of battery replacement work in the navigation system (not shown) of the electric vehicle 200, the communication unit 13 receives an instruction signal from the electric vehicle 200 to start battery replacement work. Based on the fact that the communication unit 13 has received the instruction signal, the processor 11 starts controlling the battery replacement work. The electric vehicle 200 stops in the vehicle stopping area 103 so that the front-to-back direction is the X direction and the left-to-right direction is the Y direction.
[0028] Referring to Figure 3, when the ignition power (not shown) of the electric vehicle 200 is turned off, the SMR (System Main Relay) 204 connecting the battery 201 and the PCU (Power Control Unit) 203 is turned off. As a result, the battery 201 is electrically disconnected from the PCU 203 and the MG (Motor Generator) 205. When an operation to start the battery replacement work is performed on the electric vehicle 200 in this state, the battery replacement device 100 starts controlling the battery replacement work. Also, based on the above operation, the lock between the vehicle-side connector 210 and the battery 201 connector 211 is released. After the SMR 204 is turned off, power from the auxiliary battery 206 is supplied to accessories such as the MG 205 and DCM via the DC / DC converter 207 and PCU 203.
[0029] The drive unit 30 also includes a wheel chock 31 (see Figure 2), a shutter 32 (see Figure 2), a cleaning unit 33 (see Figure 2), a battery mounting base 34 (see Figure 1), a lifting unit 35 (see Figure 1), a transport unit 36 (see Figure 1), an adjustment unit 37 (see Figure 5), and a guide unit 38 (see Figure 13(A)). The lifting unit 35 is an example of the "vehicle holding unit" in this disclosure.
[0030] Referring again to Figure 2, the vehicle stopping area 103 is provided with four wheel chocks 31. The wheel chocks 31 are provided to correspond to each of the four wheels 202 of the electric vehicle 200.
[0031] The wheel chock portion 31 includes a pressing member 31a, a pair of lateral roller portions 31b, and a slider portion 31c. The pressing member 31a is positioned to straddle the pair of lateral roller portions 31b and the slider portion 31c. The pressing member 31a moves the wheel 202 by pressing it from the outside (side). As a result, the wheel 202 is positioned by the wheel chock portion 31.
[0032] The lateral roller section 31b is provided on both the X1 and X2 sides of the slider section 31c. Each of the pair of lateral roller sections 31b is composed of multiple rollers whose axis of rotation extends along the X direction. The multiple rollers of the lateral roller section 31b are arranged along the Y direction. As the multiple rollers of the lateral roller section 31b rotate, the pressing member 31a is moved along the Y direction.
[0033] The slider section 31c moves the pressing member 31a, which is placed on the wheel chock section 31, along the X direction. The slider section 31c may be, for example, a belt conveyor type. Note that the configuration of the wheel chock section 31 is not limited to the above example. For example, it may not have to have either the horizontal roller section 31b or the slider section 31c.
[0034] Furthermore, the processor 11 controls the cleaning unit 33 to clean the battery 201. The cleaning unit 33 includes, for example, two nozzles 33a. The two nozzles 33a are arranged to sandwich an opening 32a in the Y direction for retracting the battery 201 removed from the electric vehicle 200. The nozzles 33a spray water from below the battery 201 toward the battery 201. This cleans the battery 201 and also cleans a plurality of markers 201d (see Figure 7) provided on the bottom surface of the battery 201. The plurality of markers 201d are provided near different corners 201e (see Figure 7) of the battery 201, which has a rectangular shape in a plan view (bottom view). The above configuration of the cleaning unit 33 is merely an example and is not limited thereto. The markers 201d are an example of the "markings" in this disclosure.
[0035] Furthermore, when the shutter 32 opens, the opening 32a is exposed. Figure 2 shows an example where the shutter 32 is double-opening, but the shutter 32 may also be single-opening.
[0036] As shown in Figure 4, the lifting unit 35 raises and lowers the electric vehicle 200 by holding it from below. The lifting unit 35 is movable in the vertical direction (Z direction) through the opening 32a.
[0037] The lifting section 35 includes a pair of lifting bars 35a. Each of the pair of lifting bars 35a is provided with two projections 35b that protrude toward Z1. The electric vehicle 200 is supported from below by the two projections 35b of each of the pair of lifting bars 35a (i.e., four projections 35b).
[0038] As shown in Figure 5, the battery mounting base 34 is provided with two positioning pins 34a, four locking / unlocking tools 34b, and a roller section 34c. A camera 21 is mounted (fixed) on the battery mounting base 34. The camera 21 is mounted, for example, on the Y2 side edge of the battery mounting base 34. The camera 21 may also be mounted in a location other than the battery mounting base 34 (for example, on the lifting bar 35a). The camera 21 may also be configured to be movable relative to the battery mounting base 34. The tip of the positioning pin 34a is provided with a tapered surface 34d (see Figure 9). That is, the positioning pin 34a has a shape that tapers toward the Z1 side.
[0039] The battery mounting base 34 is configured to be movable horizontally below the electric vehicle 200. Specifically, the battery mounting base 34 is movable in the X direction (X1 direction, X2 direction) and the Y direction (Y1 direction, Y2 direction). In addition, the battery mounting base 34 is rotatable so as to change its orientation (angle) in the XY plane. Each of the pair of lifting bars 35a may also be movable in the same way as the battery mounting base 34.
[0040] Referring again to Figure 1, the transport unit 36 is configured to transport batteries (201, 101). Specifically, the transport unit 36 transports the battery 201, which has been removed from the electric vehicle 200 and placed on the battery mounting base 34, to the temporary storage area 40. The battery 201, which is placed on the battery mounting base 34, is moved to the Y1 side and placed on the transport unit 36 when the roller portion 34c (see Figure 5) of the battery mounting base 34 rotates while the battery mounting base 34 is lowered to the same height position (position in the Z direction) as the transport unit 36. The transport unit 36 then moves the battery 201 to the temporary storage area 40. The transport unit 36 may be, for example, a belt conveyor type.
[0041] Furthermore, the transport unit 36 moves the battery 101, which has been transported from the storage area 100b to the temporary storage area 40, toward the Y2 side and places it on the battery mounting base 34. At this time, the roller portion 34c of the battery mounting base 34 rotates in the opposite direction to the above, causing the battery 101 to move toward the Y2 side on the battery mounting base 34.
[0042] Referring again to Figure 5, the adjustment unit 37 includes a stopper unit 37a and a movable unit 37b. The stopper unit 37a is positioned (fixed) to the movable unit 37b.
[0043] The stopper portion 37a restricts the movement of the battery 101, which is placed on the battery mounting base 34, to the X2 side and the Y2 side. The stopper portion 37a temporarily fixes the horizontal position of the corner portion 101a (see Figure 13(A)) of the battery 101 placed on the battery mounting base 34.
[0044] The stopper portion 37a has an L-shape in a plan view. The battery 101 has a rectangular shape in a plan view. Therefore, the stopper portion 37a contacts the surface 101b on the X2 side (see Figure 13(A)) and the surface 101c on the Y2 side (see Figure 13(A)) of the battery 101, respectively.
[0045] Furthermore, the adjustment unit 37 is driven independently of the battery mounting base 34. Specifically, the movable unit 37b on which the stopper unit 37a is located can move independently of the battery mounting base 34 in the X direction (X1 direction, X2 direction) and the Y direction (Y1 direction, Y2 direction). In addition, the movable unit 37b can rotate independently of the battery mounting base 34 to change its orientation (angle) in the XY plane.
[0046] (Battery replacement method) Next, the battery replacement method using the battery replacement device 100 will be explained with reference to the flowchart (sequence diagram) in Figure 6.
[0047] [Transmission of vehicle information, etc.: Electric vehicles] First, in step S21, the electric vehicle 200 transmits information about the electric vehicle 200, information about the battery 201, and information about the marker 201d to the communication unit 13 of the battery exchange device 100. For example, the above information is transmitted to the communication unit 13 by performing an operation to transmit the above information in the navigation system of the electric vehicle 200 (not shown). The electric vehicle 200 transmits the above information before entering the battery exchange device 100. However, the above information may also be transmitted after the electric vehicle 200 has entered the battery exchange device 100.
[0048] [Acquisition of vehicle information, etc.: Battery replacement device] Next, in step S1, the communication unit 13 of the battery replacement device 100 receives information about the electric vehicle 200, information about the battery 201, and information about the marker 201d transmitted from the electric vehicle 200 in step S21 via communication. The acquired information is stored in the memory 12 (see Figure 1).
[0049] Specifically, the communication unit 13 acquires information regarding the size (vehicle class) of the electric vehicle 200. This information includes the overall length and width of the electric vehicle 200. It may also include information regarding the height and ground clearance of the electric vehicle 200.
[0050] Furthermore, the communication unit 13 acquires information regarding the size of the battery 201. Specifically, the communication unit 13 acquires information regarding the length L (see Figure 7) and width W (see Figure 7) of the battery 201. The communication unit 13 may also acquire information regarding the height H (see Figure 4) of the battery 201.
[0051] Furthermore, the communication unit 13 acquires location information of the battery 201. Specifically, the communication unit 13 acquires location information of the battery 201 relative to the vehicle body 200a of the electric vehicle 200. For example, the communication unit 13 acquires information on the distance D1 (see Figure 7) between the front end 200b (see Figure 7) of the vehicle body 200a and the front end 201a (see Figure 7) of the battery 201. The communication unit 13 also acquires information on the distance D2 (see Figure 7) between the lateral end 200c (see Figure 7) of the vehicle body 200a and the lateral end 201b (see Figure 7) of the battery 201. Note that the location information of the battery 201 is not limited to the above examples.
[0052] Furthermore, the communication unit 13 may acquire information on the capacity (charge capacity) of the battery 201 and the State of Charge (SOC) of the battery 201.
[0053] Furthermore, the information regarding marker 201d (hereinafter referred to as marker information) includes information about the position, shape, and type (for example, size and color) of each of the multiple markers 201d. The position information of marker 201d includes information about the position (coordinates) of each of the multiple markers 201d in the area where the battery 201 is placed, as well as information about the positional relationships between the multiple markers 201d.
[0054] [Sends a signal to instruct battery replacement work; electric vehicle] Next, in step S22, the electric vehicle 200, which is stopped in the vehicle stopping area 103, transmits an instruction signal to the communication unit 13 to begin the battery replacement work. After transmitting the instruction signal to the communication unit 13, the electric vehicle 200 turns off the SMR 204 (see Figure 3). At this time, communication between the electric vehicle 200 and the communication unit 13 is maintained by power supply from the auxiliary battery 206 (see Figure 3).
[0055] [Received instruction signal for battery replacement: Battery replacement device] Next, in step S2, the communication unit 13 receives the instruction signal transmitted from the electric vehicle 200 in step S22. In step S2, after receiving the instruction signal, the processor 11 may send an instruction message to the user of the electric vehicle 200 via the communication unit 13, instructing them to turn off the ignition power.
[0056] [Wheel chock control: Battery replacement device] Next, in step S3, the processor 11 adjusts the position of the wheel chock 31 (see Figure 2) based on the information (vehicle information and battery information) obtained through the communication unit 13 in step S1.
[0057] Specifically, the processor 11 controls the drive of a pair of lateral roller sections 31b (see Figure 2) based on information about the width of the electric vehicle 200. The processor 11 also controls the drive of the slider section 31c (see Figure 2) based on the overall length of the electric vehicle 200. Furthermore, the processor 11 controls the wheel chock section 31 (lateral roller section 31b and slider section 31c) based on the position information of the battery 201 relative to the vehicle body 200a. Through these controls, the position of each pressing member 31a in the X and Y directions is adjusted. The processor 11 may also control each of the four wheel chock sections 31 independently of each other.
[0058] This adjusts the horizontal position and orientation of the vehicle body 200a, as well as the horizontal position and orientation of the battery 201. As a result, it becomes possible to move the battery 201 to a predetermined position above the opening 32a.
[0059] [Marker cleaning: Battery replacement device] Next, in step S4, the processor 11 cleans the battery 201 by controlling the nozzle 33a (see Figure 2) of the cleaning unit 33. This cleans the marker 201d provided on the battery 201. Note that cleaning includes not only removing dirt and foreign matter, but also removing snow and ice attached to the underside of the vehicle body. Snow and ice are removed using, for example, de-icing agents, hot water, and hot air.
[0060] [Holds the vehicle horizontally: Battery replacement device] Next, in step S5, the processor 11 opens the shutter 32 and raises the lifting bar 35a while the shutter 32 is open. As a result, the lifting bar 35a passes through the opening 32a and the electric vehicle 200 is lifted by the lifting bar 35a (see Figure 4). The processor 11 then raises the lifting bar 35a to a predetermined height position to hold the electric vehicle 200 parallel to the horizontal. Although Figure 4 shows the wheels 202 lifted off the ground, the wheels 202 may be in contact with the ground.
[0061] In step S5, the processor 11 may adjust the distance by which the lifting bar 35a is raised based on the information regarding the ground clearance of the electric vehicle 200 obtained in step S1. In this case, the lifting unit 35 may be controlled so that the ground clearance of the electric vehicle 200 remains constant.
[0062] Furthermore, in step S5, the processor 11 may change the distance (unsigned) between the lifting bars 35a based on the width of the electric vehicle 200. Also, although Figure 5 shows an example where the positional relationship between the two protrusions 35b provided on each lifting bar 35a is constant, the positional relationship between the two protrusions 35b may be adjusted based on the overall length of the electric vehicle 200, etc.
[0063] [Battery position and orientation detection: Battery replacement device] Next, in step S6, the detection device 20 (see Figure 1) detects the position and orientation of the battery 201 of the electric vehicle 200 held by the lifting unit 35.
[0064] Specifically, the camera 21 acquires images of the three markers 201d (see Figure 7) located on the bottom surface of the battery 201 by imaging the battery 201 from below (Z2 side). The image processing unit 22 then detects the position and orientation of the battery 201 based on the images of the markers 201d acquired by the camera 21.
[0065] Here, the detection device 20 (image processing unit 22) detects marker 201d based on the marker information acquired by the communication unit 13 in step S1. The image processing unit 22 identifies marker 201d in the image acquired by the camera 21 based on at least one of the positional relationship between markers 201d, information on the shape of marker 201d, and information on the type of marker 201d, which are included in the marker information. For example, the image processing unit 22 determines that an object having a shape and type that matches the acquired shape and type information of marker 201d is marker 201d. The image processing unit 22 also determines that multiple objects having a positional relationship that matches the acquired positional relationship information between markers 201d are marker 201d.
[0066] The image processing unit 22 then calculates (detects) the region where the battery 201 is located based on the positional relationship of the three markers 201d. Specifically, the image processing unit 22 detects the horizontal position and orientation of the battery 201. That is, the image processing unit 22 detects the position in the X direction, the position in the Y direction, and the orientation (angle) of the battery 201 in the XY plane. The position and orientation of the battery 201 detected at this time are stored in the memory 12.
[0067] Furthermore, the image processing unit 22 detects the position (height) of the battery 201 in the vertical direction (Z direction) based on the positional relationship of the three markers 201d.
[0068] [Control of the position and orientation of the battery tray: Battery replacement device] Next, in step S7, the processor 11 controls the horizontal position and orientation of the battery mounting base 34 based on the horizontal position and orientation of the battery 201 detected by the image processing unit 22 in step S6.
[0069] Figure 8(A) is a plan view showing a state where the battery 201 (see dashed line) of the electric vehicle 200 and the battery mounting base 34 are misaligned. By controlling the position and orientation of the battery mounting base 34, the misalignment between the battery 201 and the battery mounting base 34 is eliminated (see Figure 8(B)). Note that Figures 8(A) and (B) are plan views with the electric vehicle 200 as the reference point.
[0070] In detail, the position and orientation of the battery mounting base 34 are controlled so that the positioning pin 34a of the battery mounting base 34 and the pin insertion hole 208 provided in the electric vehicle 200 overlap in a plan view. Consequently, the locking / unlocking tool 34b of the battery mounting base 34 and the tool insertion hole 201f provided in the electric vehicle 200 (battery 201) overlap in a plan view. The controlled position and orientation of the battery mounting base 34 are stored in the memory 12. Note that the horizontal position and orientation of at least one of the positioning pin 34a and the locking / unlocking tool 34b may be controlled independently of the battery mounting base 34.
[0071] [Battery Removal: Battery Replacement Device] Next, in step S8, the battery 201 is removed from the body 200a of the electric vehicle 200. First, the processor 11 raises the battery mounting base 34 by a distance based on the height position information of the battery 201 acquired in step S6. This causes the positioning pin 34a to be inserted into the pin insertion hole 208 and the locking / unlocking tool 34b to be inserted into the tool insertion hole 201f (see Figure 9(B)). As a result, the battery mounting base 34 is positioned relative to the electric vehicle 200 (battery 201). Note that at this time, the positioning pin 34a is inserted into the pin insertion hole 208 before the locking / unlocking tool 34b is inserted into the tool insertion hole 201f (see Figure 9(A)). The height position of the raised battery mounting base 34 at this time is stored in the memory 12. Note that the distance by which the battery mounting base 34 is raised may always be controlled to be constant.
[0072] Next, as shown in Figure 9(C), the processor 11 raises the locking / unlocking tool 34b while it is inserted into the tool insertion hole 201f. Then, the processor 11 drives (rotates) the locking / unlocking tool 34b inserted into the tool insertion hole 201f. This unlocks the bolt 201g in the tool insertion hole 201f. As a result, the battery 201 is removed from the vehicle body 200a and placed on the battery mounting base 34. Note that the timing of insertion of the positioning pin 34a into the pin insertion hole 208 and the timing of insertion of the locking / unlocking tool 34b into the tool insertion hole 201f may be the same.
[0073] [Transporting batteries to the storage area: Battery replacement device] Next, in step S9, the battery 201, which was removed from the vehicle body 200a in step S8, is transported to the storage compartment 100b (see Figure 10). First, as shown in Figure 10(A), the processor 11 lowers the battery mounting platform 34 on which the battery 201 is placed to the height of the transport unit 36 (see Figure 1). Next, as shown in Figure 10(B), the processor 11 lowers the lifting unit 35 (lifting bar 35a) to a position below the battery mounting platform 34. As a result, the vehicle body 200a of the electric vehicle 200 is placed on the ground without being held by the lifting bar 35a. Next, the processor 11 drives the roller unit 34c (see Figure 5) of the battery mounting platform 34. As a result, the battery 201 placed on the battery mounting base 34 is moved towards the Y1 side (towards the transport unit 36) by the roller unit 34c and removed from the battery mounting base 34 (see Figure 10(C)). The battery 201 is then transported to the temporary storage area 40 by the transport unit 36 and stored in the storage compartment 100b.
[0074] [Control of the position and orientation of the battery tray: Battery replacement device] Next, in step S10, the processor 11 controls the position and orientation of the battery mounting base 34 by moving the battery mounting base 34 based on the position and orientation of the battery mounting base 34 stored in the memory 12 in step S7. Specifically, if there is a discrepancy between the position and orientation of the battery mounting base 34 and the position and orientation of the battery mounting base 34 stored in the memory 12 (see dashed line in Figure 11(A)) (see Figure 11(A)), the processor 11 moves and rotates the battery mounting base 34 horizontally so that the discrepancy is eliminated (see Figure 11(B)).
[0075] [Adjusting the position and orientation of batteries on the battery tray: Battery replacement device] Next, in step S11, the processor 11 adjusts the position and orientation of the battery 101 placed on the battery mounting base 34. Specifically, the processor 11 adjusts the position and orientation of the battery 101 using the stopper portion 37a (see Figures 5 and 12(A)).
[0076] First, the processor 11 moves the battery 101 from the storage area 100b to the temporary storage area 40. Then, the processor 11 moves the battery 101 from the temporary storage area 40 to the battery mounting platform 34 by controlling the transport unit 36. The processor 11 also moves the battery 101 placed on the battery mounting platform 34 toward the Y2 side by controlling the roller unit 34c of the battery mounting platform 34. At this time, the battery 101 being moved by the roller unit 34c stops when it comes into contact with the stopper unit 37a. The movement of the battery 101 toward the X2 side and the Y2 side is restricted by the stopper unit 37a (see Figure 13(A)). This temporarily determines the horizontal position of the corner 101a of the battery 101 (see Figure 13(A)).
[0077] The battery 101 may be moved towards Y2 while being guided by a pair of guide parts 38 (see Figure 13(A)). The processor 11 may also adjust the distance D3 between the pair of guide parts 38 (see Figure 13(A)) based on information about the battery 101 (such as size and type).
[0078] Then, with the position of the corner portion 101a temporarily determined by the stopper portion 37a, the processor 11 adjusts the position and orientation of the battery 101. Specifically, the processor 11 adjusts the position and orientation of the battery 101 placed on the battery mounting base 34 based on the position and orientation of the battery 201 stored in the memory 12 in step S6 (see dashed line in Figure 13(A)). More specifically, as shown in Figure 13(B), the processor 11 moves the stopper portion 37a (movable portion 37b) so that the horizontal position and orientation of the battery 101 placed on the battery mounting base 34 are the same as the horizontal position and orientation of the battery 201 stored in the memory 12. The battery mounting base 34 remains stationary while the stopper portion 37a (movable portion 37b) is moving.
[0079] The adjustment unit 37 may be used to align the battery 101 and the battery mounting base 34. In this case, the position and orientation of the battery mounting base 34 may be controlled (control in step S10) after the alignment of the battery 101 and the battery mounting base 34 has been performed.
[0080] [Battery installation: Battery replacement device] Next, in step S12, the processor 11 controls the attachment of the battery 101 to the vehicle body 200a. Specifically, the processor 11 raises the lifting section 35 (lifting bar 35a) to the same height as the lifting section 35 (lifting bar 35a) that was raised in step S5. As a result, the vehicle body 200a is held parallel to the horizontal direction at the same height as the vehicle body 200a held by the lifting section 35 (lifting bar 35a) in step S5 (see Figure 12(B)). Before this control, the processor 11 may move the lifting section 35 horizontally so that its horizontal position is the same as its horizontal position in step S5.
[0081] Next, as shown in Figure 12(C), the processor 11 raises the battery mounting base 34 to the height position of the battery mounting base 34 stored in the memory 12 in step S8. This causes the positioning pin 34a (see Figure 5) to be inserted into the pin insertion hole 208 (see Figure 7). In this state, the processor 11 raises the locking / unlocking tool 34b. This causes the locking / unlocking tool 34b to be inserted into a tool insertion hole (not shown) of the battery 101. The processor 11 then drives (rotates) the locking / unlocking tool 34b, thereby locking the bolts (not shown) in the tool insertion hole. When it is detected that all bolts are locked, the vehicle-side connector 210 and the connector (not shown) of the battery 101 are locked. As a result, the battery 101 is installed on the vehicle body 200a. Note that the stopper part 37a may be retracted (moved away from the battery 101) before the battery mounting base 34 is raised.
[0082] [Battery mounting platform and lifting mechanism retraction: Battery replacement device] Next, in step S13, the processor 11 lowers the battery mounting platform 34 and the lifting unit 35 and moves them away from the electric vehicle 200. After that, the processor 11 closes the shutter 32 (see Figure 2).
[0083] [Notification of completion of battery replacement work: Battery replacement device] Next, in step S14, the processor 11 notifies the electric vehicle 200 via the communication unit 13 that the battery replacement operation has been completed.
[0084] [Battery replacement completion notification received: Electric vehicle] Then, in step S23, the electric vehicle 200 receives the notification transmitted from the communication unit 13 of the battery replacement device 100 in step S14. This puts the electric vehicle 200 in a state where the ignition power can be turned on. After that, the process is terminated.
[0085] As described above, in this embodiment, the adjustment unit 37 adjusts the position and orientation of the battery 101 placed on the battery mounting base 34 based on the position and orientation of the battery 201 detected by the detection device 20. This allows the position and orientation of the battery 101 to be easily adjusted by the adjustment unit 37 regardless of the position and orientation of the battery mounting base 34. Furthermore, the position and orientation of the battery 101 can be adjusted without adjusting the battery mounting base 34.
[0086] In the above embodiment, an example was shown in which the position of the drive unit 30 is adjusted based on information about the electric vehicle 200 and the battery 201, but the disclosure is not limited thereto. The position of the drive unit 30 may be adjusted based on information about either the electric vehicle 200 or the battery 201.
[0087] In the above embodiment, an example was shown in which the position and orientation of the battery 101 are adjusted by the stopper portion 37a being driven independently of the battery mounting base 34, but the disclosure is not limited thereto. The stopper portion 37a may be linked to the battery mounting base 34.
[0088] In the above embodiment, an example was shown in which the position and orientation of the battery 201 are detected based on an image of the marker 201d captured by the camera 21, but the disclosure is not limited thereto. As shown in Figure 14, the position and orientation of the battery 201 may be detected using a radar 121 that irradiates the battery 201 with radio waves (see solid arrow). Specifically, the radar 121 detects the distance to the battery 201 based on the reflected waves from the battery 201 (see dashed arrow). Note that multiple radars 121 may be provided.
[0089] In the above embodiment, an example was shown in which the position and orientation of the battery 201 are detected based on an image of the marker 201d captured by the camera 21, but the disclosure is not limited thereto. As shown in Figure 15, the position and orientation of the battery 301 may be detected based on images of a plurality of holes 301d provided in the battery 301. The battery 301 and the holes 301d are examples of the "first battery" and "marked portion" of the disclosure, respectively.
[0090] The embodiments disclosed herein should be considered in all respects to be illustrative and not restrictive. The scope of this disclosure is indicated by the claims rather than by the description of the embodiments above, and all modifications within the meaning and scope equivalent to the claims are intended to be included. [Explanation of Symbols]
[0091] 11 Processor (control unit), 12 Memory (storage unit), 13 Communication unit, 20 Detection device (detection unit), 21 Camera (imaging unit), 22 Image processing unit, 30 Drive unit, 31 Wheel chock unit, 33 Cleaning unit, 34 Battery mounting base, 34a Alignment pin, 35 Lifting unit (vehicle holding unit), 37 Adjustment unit, 37a Stopper unit, 100 Battery replacement device, 101 Battery (second battery), 121 Radar, 200 Electric vehicle, 200a Vehicle body, 201, 301 Battery (first battery), 201d Marker (marking unit), 301d Hole (marking unit).
Claims
1. A battery replacement device for replacing a first battery installed in an electric vehicle with a second battery, A detection unit that detects at least one of the position and orientation of the first battery, A battery mounting platform on which the first battery removed from the electric vehicle is placed and which is driven below the electric vehicle, A control unit that controls the drive of the battery mounting platform, It comprises a communication unit that communicates with the aforementioned electric vehicle, The control unit, Based on at least one of the position and orientation of the first battery detected by the detection unit, the position and orientation of the battery mounting base are controlled, With at least one of the position and orientation of the battery mounting platform controlled, control is performed to remove the first battery from the electric vehicle. The detection unit includes an imaging unit that images a mark portion, which includes at least one of a marker and a hole, provided on the first battery, and an image processing unit that detects at least one of the position and orientation of the first battery based on the image captured by the imaging unit. Before the first battery is removed, the communication unit obtains mark information from the electric vehicle, which includes at least one of the following: position information of the mark, information regarding the shape of the mark, and information regarding the type of the mark. The detection unit detects the mark based on the mark information acquired by the communication unit, and is a battery replacement device.
2. The battery mounting platform is configured to be movable horizontally below the electric vehicle. The detection unit detects the horizontal position of the first battery, The control unit, Based on the horizontal position of the first battery detected by the detection unit, the horizontal position of the battery mounting base is controlled. The battery replacement device according to claim 1, wherein the position of the battery mounting platform in the horizontal direction is controlled, and control is performed to remove the first battery from the electric vehicle.
3. The battery replacement device according to claim 2, wherein the detection unit detects, in addition to the position of the first battery in the horizontal direction, at least one of the following: the inclination of the first battery with respect to the horizontal direction, the orientation of the first battery in a plan view, and the position of the first battery in the vertical direction.
4. The system further includes a vehicle holding section that holds the electric vehicle in a state parallel to the horizontal direction, The battery replacement device according to any one of claims 1 to 3, wherein the detection unit detects at least one of the position and orientation of the first battery attached to the electric vehicle held by the vehicle holding unit.
5. The battery replacement device according to any one of claims 1 to 3, wherein the detection unit includes a radar that irradiates the first battery with radio waves and detects the distance to the first battery based on the reflected waves from the first battery.
6. The system further includes a cleaning unit for cleaning the aforementioned markings, The battery replacement device according to any one of claims 1 to 3, wherein the control unit controls the cleaning unit to clean the marked portion before the detection unit detects the marked portion.
7. The system further includes a storage unit that stores at least one of the position and orientation of the battery mounting base when the first battery is removed from the electric vehicle. The battery replacement device according to any one of claims 1 to 3, wherein the control unit controls the movement of the battery mounting base based on at least one of the position and orientation of the battery mounting base stored by the storage unit, and controls the placement of the second battery on the moved battery mounting base.
8. A battery replacement method for replacing the batteries of an electric vehicle using a battery replacement device equipped with a battery mounting platform, The battery replacement device includes a communication unit that communicates with the electric vehicle, and before the battery is removed, it acquires mark information from the electric vehicle, which includes at least one of the following: position information of a mark, including at least one of a marker and a hole provided on the battery; information regarding the shape of the mark; and information regarding the type of the mark. A step of detecting at least one of the position and orientation of the battery, A step of controlling at least one of the position and orientation of the battery mounting base based on at least one of the detected position and orientation of the battery, The process includes removing the battery from the electric vehicle and placing it on the battery mounting base while at least one of the position and orientation of the battery mounting base is controlled, The aforementioned detection step is, The process of imaging the marked area with an imaging unit provided in the battery replacement device, A step of detecting the mark in the image captured by the imaging unit based on the mark information acquired by the communication unit, A battery replacement method comprising the step of detecting at least one of the position and orientation of the battery based on the detected mark.
9. A battery replacement device for replacing a first battery installed in an electric vehicle with a second battery, A detection unit that detects at least one of the position and orientation of the first battery, A battery mounting platform on which the first battery removed from the electric vehicle is placed and which is driven below the electric vehicle, A control unit that controls the drive of the battery mounting platform, The system includes a storage unit that stores at least one of the position and orientation of the battery mounting base when the first battery is removed from the electric vehicle, The control unit, Based on at least one of the position and orientation of the first battery detected by the detection unit, the position and orientation of the battery mounting base are controlled, With at least one of the position and orientation of the battery mounting platform controlled, control is performed to remove the first battery from the electric vehicle. A battery replacement device that controls the movement of the battery mounting base based on at least one of the position and orientation of the battery mounting base stored in the memory unit, and places the second battery on the moved battery mounting base.
Citation Information
Patent Citations
Visual positioning system and a positioning method in a battery swap station
CN109584200A
Method and system for judging surface cleanliness of battery of battery swapping station
CN112044799A
Battery replacement equipment positioning method and system and battery replacement method and system
CN113895289A
Battery changing device and battery changing method of vehicle
JP2010184622A
Vehicle battery replacing apparatus
JP2012192783A