Parallel lateral type battery swap station
Through the frame-type mechanical actuator and horizontal adjustment components of the parallel lateral battery swap station, the problem of the robot arm being unable to carry long-distance batteries is solved, which improves battery replacement efficiency and reduces the space requirements and costs of the battery swap station.
Patent Information
- Application Number
- CN202422929179.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-11-29
- Publication Date
- 2025-09-05
- Estimated Expiration
- 2034-11-29
AI Technical Summary
The existing robotic arm-type battery swap method cannot carry batteries with far distances, and requires large space battery swap stations, which increases manufacturing costs.
The parallel lateral battery swap station is adopted, and the frame-type mechanical actuator includes the lower movement component, the upper movement component and the battery grabbing tool. Combined with the horizontal adjustment component, the horizontal adjustment and translation of the battery are achieved, solving the problem of position changes and stability of the battery during the battery swap process.
Improve battery replacement efficiency, reduce space requirements for battery swap stations, and reduce manufacturing costs.
Smart Images

Figure CN223302672U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical application field of new energy battery swap stations, and specifically to a parallel lateral battery swap station. Background Art
[0002] New energy vehicles (NEVs) use unconventional fuels as their power source (or use conventional fuels but employ new onboard power units), integrating advanced technologies in vehicle power control and drive to create vehicles with advanced technical principles, new technologies, and new structures. New energy vehicles include hybrid vehicles, pure electric vehicles, fuel cell vehicles, hydrogen engine vehicles, gas vehicles, and alcohol-ether vehicles.
[0003] At present, in the field of automatic battery replacement technology, when it is necessary to replace the battery of a commercial vehicle or a large truck, since the battery pack is not fixed on the vehicle chassis, but on the vehicle body, when the battery needs to be replaced, the battery on the vehicle body needs to be moved and replaced.
[0004] The existing technology uses a robotic arm replacement method. Although it can quickly and accurately complete the battery replacement, the robotic arm cannot change its position and can only move nearby batteries. Batteries that are far away cannot be moved. Similarly, the robotic arm's transportation method is rotating, which also requires a large space in the battery swap station, otherwise the battery swap cannot be completed.
[0005] The above problems undoubtedly increase the cost of manufacturing battery swap stations, so there is a need to provide a parallel lateral battery swap station. Utility Model Content
[0006] In order to solve the above technical problems, the utility model provides a parallel lateral battery swap station, which solves the vehicle energy replenishment problem by replacing the battery box of the new energy vehicle. During the replacement process, the components are adjusted horizontally to solve the problem of horizontal abnormalities during battery transportation.
[0007] The technical solution of the utility model is: a parallel lateral battery swap station, comprising a battery swap compartment and a battery compartment, wherein the battery compartment has an energy storage base device for storing and charging batteries and a frame-type battery swap mechanical actuator for transporting the batteries on the energy storage base device;
[0008] The frame-type mechanical actuator includes a lower motion assembly, an upper motion assembly connected to the lower motion assembly, and a battery grabbing tooling provided on the upper motion assembly;
[0009] The lower motion component drives the upper motion component and the battery grabbing tool to move to the energy storage base device, and the upper motion component drives the battery grabbing tool to move above the battery, and the battery is transported by the battery grabbing tool.
[0010] Furthermore, the lower motion assembly includes a guide rail and a lower support base that moves linearly on the guide rail through running wheels, and the lower support base is connected to the upper motion assembly through a large plate.
[0011] Furthermore, the lower support base is provided with a rotating shaft, one end of the large plate is fixed to the rotating shaft, and the other end of the large plate is fixed to the bottom of the upper motion assembly;
[0012] The lower support base is further provided with a power drive assembly, and the telescopic end of the power drive assembly is connected to the upper motion assembly through a movable pin assembly.
[0013] Furthermore, the rotation angle of the rotation axis is ±5°.
[0014] Furthermore, the upper motion assembly includes an upper support frame and a bidirectional telescopic fork assembly provided on the upper support frame. The bidirectional telescopic fork assembly is connected to the battery grabbing tooling and can drive the battery grabbing tooling to move linearly.
[0015] Furthermore, the battery grabbing tooling includes a lifting and adjusting device and a sling connected to the lifting and adjusting device via a steel wire rope;
[0016] The lifting adjustment device includes a lifting adjustment support base, on which a movable pulley assembly and a fixed pulley assembly are provided. One end of the steel wire rope is connected to the sling through a link assembly, and the other end of the steel wire rope is sequentially wound around the fixed pulley assembly and the movable pulley assembly and fixed to the horizontal adjustment assembly.
[0017] The horizontal adjustment component is slidably connected to the lifting adjustment support seat, and the lifting adjustment support seat is provided with a lifting drive component for driving the horizontal adjustment component to move linearly.
[0018] Furthermore, the sling is provided with an inclination sensor.
[0019] Furthermore, the horizontal adjustment assembly includes a horizontal adjustment platform slidably connected to the lifting adjustment support seat, and the horizontal adjustment platform is provided with a motor linear module and a rope support seat connected to the motor linear module;
[0020] One of the steel wire ropes on the same side of the sling is connected to the horizontal adjustment platform, and the other steel wire rope on the same side of the sling is connected to the rope support seat.
[0021] Furthermore, a guide fixing assembly is provided at the bottom of the lifting and adjusting support seat, and a guide column used in conjunction with the guide fixing assembly is provided on the upper end surface of the sling.
[0022] Furthermore, the sling has a fixed frame, the fixed frame is provided with a plurality of positioning guide blocks and a rotary lock tongue, and the fixed frame is also provided with a rotary drive component for driving the rotary lock tongue to rotate.
[0023] The beneficial technical effects of the utility model are:
[0024] 1. The setting of the large plate and the rotating axis can rotate the upper moving assembly and the battery grabbing tooling assembled on the upper moving assembly by ±5° to solve the tilt problem of the parking position of new energy vehicles in the battery swap area within the channel.
[0025] 2. The setting of the two-way telescopic fork assembly can move the battery grabbing tooling horizontally, and then move the battery horizontally, improving the efficiency of battery replacement.
[0026] 3. When the battery tilts on one side during the grasping process, similar to the situation of a seesaw, the horizontal adjustment component can adjust the level of the battery to ensure the stability of the battery during the grasping process.
[0027] The above description is only an overview of the technical solution of the present invention. In order to more clearly understand the technical means of the present invention and to implement it according to the contents of the specification, the following is a detailed description of the preferred embodiments of the present invention in conjunction with the accompanying drawings. BRIEF DESCRIPTION OF THE DRAWINGS
[0028] Figure 1 It is a schematic diagram of the overall structure of the utility model;
[0029] Figure 2 This is a schematic diagram of the internal structure of the utility model;
[0030] Figure 3 This is a structural diagram of the frame-type mechanical actuator of the present utility model;
[0031] Figure 4 This is a schematic structural diagram of the lower motion assembly of the present utility model;
[0032] Figure 5 This is a schematic diagram of the structure of the lower motion component and the upper motion component of the present invention;
[0033] Figure 6 This is a schematic structural diagram of the battery grabbing tool of the present invention;
[0034] Figure 7 This is a structural diagram of the lifting and adjusting device of the utility model;
[0035] Figure 8 This is a structural diagram of the horizontal adjustment assembly of the utility model;
[0036] Figure 9This is a schematic structural diagram of the sling of the present utility model;
[0037] Figure 10 It is a structural schematic diagram of the connection between the guide column and the guide fixing assembly of the present invention.
[0038] The accompanying drawings are:
[0039] 100, battery replacement; 200, battery compartment; 300, energy storage base device; 400, frame-type mechanical actuator; 410, lower motion assembly; 411, lower support base; 412, guide rail; 413, rotating shaft; 414, large plate; 415, power drive assembly; 420, upper motion assembly; 421, upper support frame; 422, two-way telescopic fork assembly; 430, battery grabbing tooling; 431, lifting adjustment device; 4311, lifting adjustment support seat ; 4312, fixed pulley assembly; 4313, movable pulley assembly; 4314, wire rope; 4315, horizontal adjustment assembly; 43151, horizontal adjustment platform; 43152, motor linear module; 43153, rope support seat; 4316, lifting drive assembly; 4317, guide fixing assembly; 432, sling; 4321, fixed frame; 4322, positioning guide block; 4323, rotary lock tongue; 4324, guide column; 4325, rotary drive assembly. DETAILED DESCRIPTION
[0040] In order to more clearly understand the technical means of the present invention and implement it according to the contents of the specification, the specific implementation methods of the present invention are further described in detail below in conjunction with the drawings and examples. The following examples are used to illustrate the present invention but are not used to limit the scope of the present invention.
[0041] It should be noted that the terms "first," "second," and the like in the specification and claims of this application and the accompanying drawings are used to distinguish similar objects, and are not necessarily used to describe a specific order or precedence. It should be understood that the terms used in this manner are interchangeable where appropriate, for the purposes of describing the embodiments of the present application herein.
[0042] In the description of the present utility model, it should be noted that the terms "center", "up", "down", "left", "right", "vertical", "horizontal", "inside", "outside", etc. indicate orientations or positional relationships based on the descriptions in the embodiments and shown in the accompanying drawings, or are the orientations or positional relationships in which the utility model product is usually placed when in use. They are only for the convenience of describing the present utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation. Therefore, they cannot be understood as a limitation on the present utility model.
[0043] like Figures 1-10As shown, the present invention specifically relates to a parallel lateral battery swap station, comprising a battery swap compartment and a battery compartment 200, wherein the battery compartment 200 has an energy storage base device 300 for storing and charging batteries and a frame-type battery swap mechanical actuator for transporting the batteries on the energy storage base device 300;
[0044] The frame-type mechanical actuator 400 includes a lower motion assembly 410, an upper motion assembly 420 connected to the lower motion assembly 410, and a battery grabbing tool 430 provided on the upper motion assembly 420;
[0045] The lower motion component 410 drives the upper motion component 420 and the battery grabbing tool 430 to move to the energy storage base device 300 . The upper motion component 420 drives the battery grabbing tool 430 to move above the battery and transports the battery through the battery grabbing tool 430 .
[0046] It should be noted that the vehicle enters the battery swap compartment to wait for the battery 100 to be replaced. There are multiple battery packs in the battery compartment 200, and each battery pack has an independent energy storage base device 300. The battery pack is fixed and charged separately through the energy storage base device 300. The specific structure of the energy storage base device 300 is a commonly used technical means in the prior art and will not be described in detail.
[0047] The frame-type mechanical actuator 400 is arranged on one side of the energy storage base device 300, wherein the energy storage base device 300 is arranged in parallel. Therefore, the frame-type mechanical actuator 400 can reach the position of each energy storage base device 300 through linear movement to move the batteries on the energy storage base device 300.
[0048] Among them, the main function of the lower motion component 410 is to execute the movement command and reach the specified position of the energy storage base device 300. The main function of the upper motion component 420 is not only to provide support for the battery grabbing tooling 430, but also to adjust the position of the battery grabbing tooling 430 so as to move the battery grabbing tooling 430 to the top of the battery, fix the battery through the battery grabbing tooling 430, and then cooperate with the upper motion component 420 and the lower motion component 410 to complete the battery transportation.
[0049] The lower motion assembly 410 includes a guide rail 412 and a lower support base 411 that moves linearly on the guide rail 412 via running wheels. The lower support base 411 is connected to the upper motion assembly 420 via a large plate 414 .
[0050] The lower support base 411 moves linearly on the guide rail 412 via the running wheels, thereby driving the upper motion assembly 420 and the battery grabbing tool 430 to move synchronously to the designated energy storage base device 300 position.
[0051] In addition, the lower support base 411 is also provided with a driving motor for driving the travel wheels to move. The specific connection relationship belongs to a very mature existing technology and is therefore not described in detail.
[0052] The lower support base 411 is provided with a rotating shaft 413 , one end of the large plate 414 is fixed to the rotating shaft 413 , and the other end of the large plate 414 is fixed to the bottom of the upper motion assembly 420 ;
[0053] The lower support base 411 is further provided with a power drive assembly 415 , the telescopic end of the power drive assembly 415 is connected to the upper motion assembly 420 via a movable pin assembly; the rotation angle of the rotating shaft 413 is ±5°.
[0054] The power drive component 415 in this embodiment is a cylinder. Since the upper motion component 420 is connected to the rotating shaft 413 through the large plate 414, when the telescopic end of the cylinder applies external force to the upper motion component 420, the upper motion component 420 can rotate along the axial direction of the rotating shaft 413.
[0055] When a vehicle enters the battery swapping compartment, the actual parking position may have a certain angle deviation from the specified required position. The rotating shaft 413 is rotated to solve the tilt problem of the parking position of the new energy vehicle in the battery swapping area within the channel.
[0056] The upper motion assembly 420 includes an upper support frame 421 and a bidirectional telescopic fork assembly 422 provided on the upper support frame 421 . The bidirectional telescopic fork assembly 422 is connected to the battery grabbing fixture 430 and can drive the battery grabbing fixture 430 to linearly translate.
[0057] The bidirectional telescopic fork assembly 422 can linearly translate components on the fork forward and backward or left and right to complete the position change. The bidirectional telescopic fork assembly 422 is used to move batteries from the battery swap compartment to the battery compartment 200; in addition, fully charged batteries in the battery compartment 200 can be moved to the vehicle.
[0058] Of course, the lower moving assembly 410 is also needed in the above-mentioned translation process, and the battery can be moved to the designated replacement or placement position only through the lower moving assembly 410.
[0059] The battery grabbing tool 430 includes a lifting and adjusting device 431 and a sling 432 connected to the lifting and adjusting device 431 via a wire rope 4314;
[0060] The lifting adjustment device 431 includes a lifting adjustment support base 4311, on which a movable pulley assembly 4313 and a fixed pulley assembly 4312 are provided. One end of the steel wire rope 4314 is connected to the sling 432 via a link assembly. The other end of the steel wire rope 4314 is sequentially wound around the fixed pulley assembly 4312 and the movable pulley assembly 4313 and fixed to the horizontal adjustment assembly 4315.
[0061] The horizontal adjustment component 4315 is slidably connected to the lifting adjustment support base 4311, and the lifting adjustment support base 4311 is provided with a lifting driving component 4316 that drives the horizontal adjustment component 4315 to move linearly.
[0062] Among them, the lifting and adjustment support seat 4311 is fixed on the bidirectional telescopic fork assembly 422, and the wire rope 4314 passes through the lifting and adjustment support seat 4311 and is connected to the sling 432 through the link assembly to fix the sling 432. In order to ensure the smoothness of the wire rope 4314 during the extension and retraction process, a fixed pulley assembly 4312 and a movable pulley assembly 4313 are provided on the lifting and adjustment support seat 4311 for use with the wire rope 4314. The wire rope 4314 is wrapped around the fixed pulley assembly 4312 and the movable pulley assembly 4313 and is fixed to the horizontal adjustment assembly 4315.
[0063] In addition, the lifting drive assembly 4316 is a structure that can drive the linear movement of parts, which can be a cylinder, an oil cylinder or a motor, etc., and will not be described in detail here.
[0064] When the lifting drive assembly 4316 drives the horizontal adjustment assembly 4315 to move linearly relative to the lifting adjustment support seat 4311, the horizontal adjustment assembly 4315 drives the wire rope 4314 to rotate relative to the fixed sliding assembly and the movable pulley assembly 4313, thereby driving the sling 432 to rise or fall.
[0065] The sling 432 is provided with an inclination sensor to monitor the levelness of the sling 432 and further monitor the levelness of the battery relative to the ground during the lifting process.
[0066] The horizontal adjustment assembly 4315 includes a horizontal adjustment platform 43151 slidably connected to the lifting adjustment support 4311 , and the horizontal adjustment platform 43151 is provided with a motor linear module 43152 and a rope support 43153 connected to the motor linear module 43152 ;
[0067] One of the steel wire ropes 4314 on the same side of the sling 432 is connected to the horizontal adjustment platform 43151 , and the other steel wire rope 4314 on the same side of the sling 432 is connected to the rope support seat 43153 .
[0068] It should be noted that the steel wire ropes 4314 on the same side of the sling 432 are wound around the same fixed pulley assembly 4312 and movable pulley assembly 4313 , one of the steel wire ropes 4314 is fixedly connected to the horizontal adjustment platform 43151 , and the other steel wire rope 4314 is connected to the rope support seat 43153 .
[0069] When the horizontality of the sling 432 is normal, since the rope support seat 43153 is arranged on the horizontal adjustment platform 43151, when the horizontal adjustment platform 43151 moves, the support seat is driven to move synchronously to complete the lifting and lowering of the sling 432. During this process, the motor linear module 43152 will not start, and the position of the rope support seat 43153 relative to the horizontal adjustment platform 43151 will not change.
[0070] When the levelness of the sling 432 is abnormal, the position of the rope support seat 43153 relative to the horizontal adjustment platform 43151 is adjusted by the motor linear module 43152, thereby adjusting the levelness of the sling 432. During this process, the position of the horizontal adjustment platform 43151 relative to the lifting adjustment support seat 4311 will not change.
[0071] A guide fixing assembly 4317 is provided at the bottom of the lifting and adjusting support seat 4311, and a guide column 4324 is provided on the upper end face of the sling 432 for use with the guide fixing assembly 4317. Since the steel wire rope 4314 is a flexible transmission, the guide column 4324 and the guide fixing assembly 4317 cooperate with each other as a guide to fix it so as to make it rigidly connected, thereby ensuring that no shaking occurs during the transportation of the battery.
[0072] The sling 432 has a fixed frame 4321 , and the fixed frame 4321 is provided with a plurality of positioning guide blocks 4322 and a rotating lock tongue 4323 . The fixed frame 4321 is also provided with a rotating drive assembly 4325 for driving the rotating lock tongue 4323 to rotate.
[0073] The battery is limited by the directional guide block, and then the lock tongue is driven to rotate by the rotary drive assembly 4325 to lock the battery. This structure has been used to a certain extent in the prior art, so it will not be described in detail.
[0074] The above embodiments are only specific implementation methods of the present invention, which are used to illustrate the technical solutions of the present invention rather than to limit them. The protection scope of the present invention is not limited thereto. Although the present invention has been described in detail with reference to the above embodiments, ordinary technicians in this field should understand that any technician familiar with this technical field can still modify the technical solutions recorded in the above embodiments within the technical scope disclosed by the present invention, or make equivalent replacements for some of the technical features therein; and these modifications, changes or replacements do not deviate the essence of the corresponding technical solutions from the spirit and scope of the technical solutions of the embodiments of the present invention, and should all be included in the protection scope of the present invention.
Claims
1. A parallel side-type battery swap station, comprising a battery swap compartment and a battery compartment (200), characterized in that: The battery compartment (200) comprises an energy storage base device (300) for storing and charging batteries and a frame-type mechanical execution device (400) for transporting the batteries on the energy storage base device (300); The frame-type mechanical actuator (400) comprises a lower motion component (410), an upper motion component (420) connected to the lower motion component (410), and a battery grabbing tool (430) provided on the upper motion component (420); The lower motion component (410) drives the upper motion component (420) and the battery grabbing tool (430) to move to the energy storage base device (300); the upper motion component (420) drives the battery grabbing tool (430) to move above the battery, and the battery is transported by the battery grabbing tool (430).
2. The parallel lateral battery swap station according to claim 1, characterized in that: The lower motion assembly (410) comprises a guide rail (412) and a lower support base (411) that moves linearly on the guide rail (412) via running wheels. The lower support base (411) is connected to the upper motion assembly (420) via a large plate (414).
3. The parallel lateral battery swap station according to claim 2, characterized in that: The lower support base (411) is provided with a rotating shaft (413), one end of the large plate (414) is fixed to the rotating shaft (413), and the other end of the large plate (414) is fixed to the bottom of the upper motion component (420); The lower support base (411) is further provided with a power drive assembly (415), and the telescopic end of the power drive assembly (415) is connected to the upper motion assembly (420) via a movable pin assembly.
4. The parallel lateral battery swap station according to claim 3, characterized in that: The rotation angle of the rotating shaft (413) is ±5°.
5. The parallel lateral battery swap station according to claim 1, characterized in that: The upper motion assembly (420) includes an upper support frame (421) and a bidirectional telescopic fork assembly (422) provided on the upper support frame (421); the bidirectional telescopic fork assembly (422) is connected to the battery grabbing tool (430) and is capable of driving the battery grabbing tool (430) to perform linear translation.
6. The parallel lateral battery swap station according to claim 1, characterized in that: The battery grabbing tool (430) includes a lifting and adjusting device (431) and a sling (432) connected to the lifting and adjusting device (431) via a steel wire rope (4314); The lifting adjustment device (431) includes a lifting adjustment support seat (4311), a movable pulley assembly (4313) and a fixed pulley assembly (4312) are provided on the lifting adjustment support seat (4311), one end of the steel wire rope (4314) is connected to the sling (432) through a link assembly, and the other end of the steel wire rope (4314) is sequentially wound around the fixed pulley assembly (4312) and the movable pulley assembly (4313) and fixed to the horizontal adjustment assembly (4315); The horizontal adjustment component (4315) is slidably connected to the lifting adjustment support seat (4311), and the lifting adjustment support seat (4311) is provided with a lifting drive component (4316) that drives the horizontal adjustment component (4315) to move linearly.
7. The parallel lateral battery swap station according to claim 6, characterized in that: The sling (432) is provided with an inclination sensor.
8. The parallel lateral battery swap station according to claim 7, characterized in that: The horizontal adjustment assembly (4315) includes a horizontal adjustment platform (43151) slidably connected to the lifting adjustment support seat (4311), and the horizontal adjustment platform (43151) is provided with a motor linear module (43152) and a rope support seat (43153) connected to the motor linear module (43152); One of the steel wire ropes (4314) on the same side of the sling (432) is connected to the horizontal adjustment platform (43151), and the other steel wire rope (4314) on the same side of the sling (432) is connected to the rope support seat (43153).
9. The parallel lateral battery swap station according to claim 6, characterized in that: The bottom of the lifting and adjusting support seat (4311) is provided with a guide fixing assembly (4317), and the upper end surface of the sling (432) is provided with a guide column (4324) used in conjunction with the guide fixing assembly (4317).
10. The parallel lateral battery swap station according to claim 6, characterized in that: The sling (432) has a fixed frame (4321), the fixed frame (4321) is provided with a plurality of positioning guide blocks (4322) and a rotating lock tongue (4323), and the fixed frame (4321) is also provided with a rotating drive component (4325) for driving the rotating lock tongue (4323) to rotate.
Citation Information
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