Battery replacement cabinet main control board convenient to clamp

By using a snap-fit ​​structure and positioning device, the problem of complex installation of the main control board of the traditional battery swapping cabinet is solved, enabling rapid installation and disassembly, and improving maintenance efficiency and system reliability.

CN223745065UActive Publication Date: 2025-12-30CHONGQING TIANTAI REVERSION TECH CO LTD
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Patent Information

Application Number
CN202520294406.9
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-21
Publication Date
2025-12-30
Estimated Expiration
2035-02-21

AI Technical Summary

Technical Problem

The installation method of the main control board of traditional battery swapping cabinets is complicated, which leads to inconvenient maintenance, time-consuming and costly maintenance, affecting the normal operation and service efficiency of the battery swapping cabinets.

Method used

The main control board is installed using a snap-fit ​​method, which enables quick installation and removal through snap-fit ​​blocks and spring structures. Positioning blocks and straightening blocks ensure accurate positioning, while support blocks and screws provide additional fixation to ensure stability.

Benefits of technology

It enables rapid installation and removal of the main control board, reducing maintenance time, improving work efficiency, and ensuring the reliability and security of the system.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of a battery changing cabinet main control board, in particular to a battery changing cabinet main control board convenient to clamp. The power conversion cabinet main control board convenient to clamp comprises a power conversion cabinet, a main control board body, a mounting plate, a clamping block, a first spring, a mounting seat and a dismounting assembly, the mounting seat is arranged at the upper part in the power conversion cabinet, the main control board body is embedded and mounted on the mounting plate, the mounting plate is fixed on the mounting seat in a clamping manner, and the dismounting assembly is arranged on the mounting plate. Clamping blocks are symmetrically connected to two sides of the rear part of the mounting plate in a sliding manner; and the outer sides of the clamping blocks are designed into inclined planes. The mounting plate provided with the main control board body is held by a hand and is close to the mounting seat, and the clamping blocks are pushed into the clamping grooves, so that the main control board body can be quickly mounted; and during disassembly, the push handle is pushed by hands, and the clamping block is separated from the clamping groove by utilizing the sliding frame, so that quick disassembly is completed, the maintenance time is shortened, the workload is reduced, and the working efficiency is greatly improved.
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Description

Technical Field

[0001] This utility model relates to the technical field of main control boards for battery swapping cabinets, and in particular to a main control board for battery swapping cabinets that is easy to snap into. Background Technology

[0002] In existing battery swapping cabinet systems, the main control board, as one of the core components, bears the important responsibility of controlling and managing various functions of the battery swapping cabinet.

[0003] However, traditional main control board installation methods often suffer from complex operation and inconvenient maintenance. Specifically, many existing battery swapping cabinets use screws to fix the main control board, which not only requires tools for disassembly and assembly but is also difficult to operate in limited space. This results in significant time and labor costs for each maintenance or replacement of the main control board. Due to the complexity of traditional installation methods, maintenance personnel often spend a considerable amount of time ensuring that every screw is properly tightened or loosened during the disassembly and installation of the main control board. This inefficient operating procedure greatly limits the speed of maintenance work and may affect the normal operation and service provision of the battery swapping cabinet. Utility Model Content

[0004] To overcome the aforementioned shortcomings, the technical issue is to provide a main control board for the battery swapping cabinet that is easy to connect via a snap-fit ​​mechanism.

[0005] A main control board for a battery swapping cabinet that is easy to snap into includes a battery swapping cabinet, a main control board body, a mounting plate, snap blocks, first springs, a mounting base, and a disassembly assembly. A mounting base is provided at the top inside the battery swapping cabinet. The main control board body is embedded in the mounting plate, and the mounting plate is fixed to the mounting base by snap-fit. Snap blocks are symmetrically slidably connected to both sides of the rear of the mounting plate. The outer side of the snap blocks is designed as a bevel. Two first springs are connected between the snap blocks and the interior of the mounting plate. Snap slots that fit the snap blocks are symmetrically opened on both sides of the front side of the mounting base. The snap blocks snap into the snap slots. A disassembly assembly is provided on the mounting base.

[0006] Optionally, the mounting base is provided with several ventilation slots to provide ventilation channels for the main control board body.

[0007] Optionally, the disassembly assembly includes a push handle, a sliding bracket, and a second spring. The sliding bracket is symmetrically slidably connected inside the mounting base. The sliding bracket passes through the corresponding slot and contacts the inclined surface of the locking block. Two second springs are connected between the sliding bracket and the inside of the mounting base. A push handle is connected to the outer side of each of the two sliding brackets.

[0008] Optionally, it also includes a support block, a sliding block, and a screw. Support blocks are connected to both the left and right side walls of the mounting base. Screws are rotatably connected to each support block. Screws are threadedly connected to the upper end of each screw. The sliding blocks are in close contact with the mounting base and are engaged with the push handle.

[0009] Optionally, it also includes correction blocks, with correction blocks connected to both the upper and lower side walls of the mounting plate, and the inner side of each correction block is designed as a bevel.

[0010] Optionally, it also includes positioning blocks, with two positioning blocks connected in the middle of the rear side wall of the mounting plate. The outer rear side of the two positioning blocks is inclined, and two guide grooves that cooperate with the positioning blocks are opened in the middle of the front side of the mounting base.

[0011] The beneficial effects are as follows: 1. By holding the mounting plate with the main control board body installed in hand, bringing it close to the mounting base, and pushing the clip into the slot, the main control board body can be quickly installed; during disassembly, simply push the handle and use the sliding bracket to disengage the clip from the slot, thereby completing the quick disassembly, which not only reduces maintenance time and workload, but also greatly improves work efficiency.

[0012] 2. By designing positioning blocks and correction blocks, the mounting plate is ensured to be accurately aligned and firmly fixed to the mounting base during installation, effectively avoiding connection instability caused by positional deviation, making the entire system more reliable and durable.

[0013] 3. The design of the support block, sliding block, and screw provides additional fixing function for the push handle, preventing the main control board from loosening or falling off due to accidental operation, thus increasing the safety and reliability of the overall system. When disassembly is required, the sliding block can be unlocked by rotating the screw, ensuring safe and controllable operation. Attached Figure Description

[0014] Figure 1 This is a three-dimensional structural diagram of the present invention.

[0015] Figure 2 This is a three-dimensional structural diagram of the main control board body, mounting plate, and mounting base of this utility model.

[0016] Figure 3 This is a cross-sectional view of the mounting plate component of this utility model.

[0017] Figure 4 This is a three-dimensional structural diagram of the mounting base, guide groove, and card slot of this utility model.

[0018] Figure 5 This is a cross-sectional view of the mounting base component of this utility model.

[0019] The markings in the attached diagram are as follows: 1: Battery swapping cabinet, 2: Main control board body, 3: Mounting plate, 4: Locking block, 5: First spring, 6: Positioning block, 7: Correction block, 8: Mounting seat, 9: Guide groove, 10: Locking groove, 11: Push handle, 12: Sliding frame, 13: Second spring, 14: Support block, 15: Sliding block, 16: Screw. Detailed Implementation

[0020] The present invention will now be described in detail with reference to the accompanying drawings and specific embodiments.

[0021] Example: A main control board for a battery swapping cabinet that is easy to snap into, such as... Figures 1-5 As shown, the device includes a battery swapping cabinet 1, a main control board body 2, a mounting plate 3, a locking block 4, a first spring 5, a mounting base 8, and a disassembly assembly. The mounting base 8 is located inside the battery swapping cabinet 1 at the top. The main control board body 2 is embedded in the mounting plate 3, and the mounting plate 3 is fixed to the mounting base 8 via a locking mechanism, thus enabling convenient installation and removal of the main control board body 2. The mounting plate 3 has locking blocks 4 symmetrically slidably connected to its rear left and right sides. The outer side of the locking blocks 4 is designed with a beveled shape. Two first springs 5 ​​are connected between the locking blocks 4 and the interior of the mounting plate 3, allowing the locking blocks 4 to automatically reset after external force is removed. The mounting base 8 has symmetrically symmetrical slots 10 on its front left and right sides that fit the locking blocks 4. The locking blocks 4 engage in the slots 10 to fix the mounting plate 3 to the mounting base 8. The mounting base 8 is equipped with a disassembly assembly for quick disassembly of the main control board body 2. The mounting base 8 also has several ventilation slots to provide ventilation channels for the main control board body 2.

[0022] like Figure 2 , Figure 4 and Figure 5 As shown, the disassembly assembly includes a push handle 11, a sliding bracket 12, and a second spring 13. The sliding bracket 12 is symmetrically slidably connected to the mounting base 8. The sliding bracket 12 passes through the corresponding slot 10 and contacts the inclined surface of the locking block 4. Two second springs 13 are connected between the sliding bracket 12 and the interior of the mounting base 8 to ensure that the sliding bracket 12 can automatically reset when no external force is applied. A push handle 11 is connected to the outer side of each of the two sliding brackets 12. By pushing these two push handles 11, the sliding bracket 12 can be moved inward, thereby releasing the locking state between the locking block 4 and the slot 10, which facilitates the quick disassembly of the main control board body 2.

[0023] like Figures 2-5 As shown, it also includes positioning blocks 6 and straightening blocks 7. Straightening blocks 7 are connected to both the upper and lower side walls of the mounting plate 3. The inner side of each straightening block 7 is designed as a bevel to guide the mounting plate 3 to be correctly embedded into the mounting base 8 and to ensure the accuracy of the position during installation. Two positioning blocks 6 are welded to the middle of the rear side wall of the mounting plate 3. The outer side of the rear end of the two positioning blocks 6 is beveled. Two guide grooves 9 that cooperate with the positioning blocks 6 are opened in the middle of the front side of the mounting base 8. When the mounting plate 3 is installed on the mounting base 8, the positioning blocks 6 are inserted into the guide grooves 9 to ensure that the mounting plate 3 is accurately aligned and firmly fixed.

[0024] When installing the main control board body 2, first fix the mounting base 8 in the target position inside the battery swapping cabinet 1. Then, hold the mounting plate 3 with the main control board body 2 already installed and bring it close to the mounting base 8. At this time, the straightening block 7 will first contact the mounting base 8. Through the contact between the inclined surface of the straightening block 7 and the upper and lower walls of the mounting base 8, the operator can adjust the vertical position of the mounting plate 3 in time. Continue to push the mounting plate 3 backward. The positioning block 6 on the mounting plate 3 will engage with the guide groove 9 on the mounting base 8. Through the guiding action of the positioning block 6, the left and right position of the mounting plate 3 can be corrected to ensure that the locking block 4 is precisely aligned with the slot 10. As the mounting plate 3 moves further backward, the locking block 4 will be pushed into the slot 10. During this process, the locking block 4 is squeezed and moves inward. The first spring 5 is compressed accordingly. When the locking block 4 is fully inserted into the slot 10, the first spring 5 rebounds and resets, causing the locking block 4 to move outward and fully engage with the slot 10, thereby completing the quick installation of the main control board body 2.

[0025] To remove the main control board body 2, first push the push handle 11 inward, causing the sliding bracket 12 to move inward. During this process, the second spring 13 is compressed. The inward movement of the sliding bracket 12 pushes the inclined surface of the locking block 4, causing the locking block 4 to move inward. At the same time, the first spring 5 is also compressed, causing the locking block 4 to disengage from the locking slot 10. Simultaneously, pull the main control board body 2 and the mounting plate 3 forward, moving the locking block 4 out of the locking slot 10 from the front. After the locking block 4 disengages from the locking slot 10, the first spring 5 rebounds and resets, causing the locking block 4 to move outward and return to its original position. This completes the disassembly of the main control board body 2. Finally, release the push handle 11, and the second spring 13 rebounds and resets, causing the sliding bracket 12 and the push handle 11 to move outward and return to their initial positions.

[0026] like Figure 2 , Figure 4 and Figure 5 As shown, it also includes a support block 14, a sliding block 15, and a screw 16. Support blocks 14 are welded to both the left and right side walls of the mounting base 8. Screws 16 are rotatably connected to the support blocks 14. Sliding blocks 15 are threadedly connected to the upper ends of the screws 16. The sliding blocks 15 are close to the mounting base 8 and can only move vertically due to the limitation of the mounting base 8, but cannot rotate. The sliding blocks 15 are engaged with the push handle 11 to fix the push handle 11 and prevent it from moving accidentally, thereby further improving the stability of the engagement of the locking block 4. When it is necessary to disassemble the main control board body 2, the screw 16 must first be rotated to make the sliding block 15 move downward along the screw 16 and disengage from the push handle 11. In this way, the push handle 11 can operate normally. After disassembly, the screw 16 is reversed to move the sliding block 15 upward, so that it re-engages with the push handle 11 and returns to a stable state.

[0027] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that variations may be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. A battery swap cabinet master control board facilitating card connection, characterized in that: The utility model provides a battery replacement cabinet, including battery replacement cabinet (1), main control board body (2), mounting plate (3), clamping block (4), first spring (5), mounting seat (8) and dismounting assembly, be provided with mounting seat (8) in the inside upper portion of battery replacement cabinet (1), main control board body (2) is embedded and installed on mounting plate (3), and mounting plate (3) is fixed on mounting seat (8) through the clamping mode, and the both sides of mounting plate (3) rear portion are connected with clamping block (4) slidingly symmetrically, the outside of clamping block (4) is designed as inclined plane, and two first springs (5) are connected between clamping block (4) and the inside of mounting plate (3), and the both sides of mounting seat (8) front side are symmetrically provided with the clamping groove (10) of adapting with clamping block (4), and clamping block (4) is clamped in clamping groove (10), and mounting seat (8) is equipped with dismounting assembly. ​ 2. The battery swap cabinet master control board of claim 1, wherein: Mounting seat (8) is provided with a plurality of ventilation grooves, which provides a ventilation channel for main control board body (2).

3. The battery swap cabinet master control board of claim 2, wherein: The dismounting assembly comprises a push handle (11), a sliding frame (12) and a second spring (13), and the mounting seat (8) is symmetrically connected with the sliding frame (12) slidingly, the sliding frame (12) penetrates through the corresponding clamping groove (10) and contacts the inclined surface of the clamping block (4), and the sliding frame (12) and the mounting seat (8) are connected with two second springs (13) respectively, and the outer sides of the two sliding frames (12) are connected with one push handle (11) respectively.

4. The battery swap cabinet master control board of claim 3, wherein: Further comprising a support block (14), a sliding block (15) and a screw rod (16), the left and right side walls of the mounting seat (8) are connected with the support block (14), the support block (14) is rotatably connected with the screw rod (16), the upper end of the screw rod (16) is threadedly connected with the sliding block (15), the sliding block (15) is in close contact with the mounting seat (8), and the sliding block (15) is clamped with the push handle (11).

5. The battery swap cabinet master control board of claim 4, wherein: Further comprising a correction block (7), the upper and lower side walls of the mounting plate (3) are connected with the correction block (7), and the inner side surface of each correction block (7) is designed as an inclined surface.

6. The battery swap cabinet master control board of claim 5, wherein: Further comprising a positioning block (6), the rear side wall of the mounting plate (3) is connected with two positioning blocks (6), the rear end outer side surface of the two positioning blocks (6) is inclined, and the front side of the mounting seat (8) is provided with two guide grooves (9) matched with the positioning blocks (6).