Clamping tool for energy storage cabinet assembly machining

Through the coordination of the design clamping device housing, plug-in assembly and rotating assembly, the existing energy storage cabinet clamping tooling cannot adapt to changes in the number of batteries, and the stable clamping and processing efficiency improvement in the number of batteries is achieved.

CN223147011UActive Publication Date: 2025-07-25QINGDAO CHENSHUN NEW ENERGY TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202422158475.5
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-09-03
Publication Date
2025-07-25
Estimated Expiration
2034-09-03

AI Technical Summary

Technical Problem

The existing energy storage cabinet clamping tooling cannot adapt to changes in the number of battery packs, resulting in the inability to effectively clamp when the number of batteries increases or decreases.

Method used

A clamping tool including a clamping device housing, a plug-in assembly, a reset assembly and a rotating assembly is designed. Through the cooperation of the movable restraint groove and a fixed restraint groove, the plug-in restraint block and the rotating assembly can be used to achieve flexible adjustment and stable clamping of the battery quantity.

Benefits of technology

It realizes automatic adjustment of the clamping position according to the change in the number of batteries, ensuring that each set of batteries can be clamped stably when it increases or decreases, and improving processing efficiency and adaptability.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of energy storage cabinet processing, in particular to a clamping tool for energy storage cabinet component processing, which comprises a clamping device shell, a plug-in component, a reset component and a rotating component, a movable restraining groove is arranged on the inner side of the clamping device shell, and a plurality of fixed restraining grooves are arranged on one side of the clamping device shell. The clamping device shell is provided with a plurality of energy storage batteries, the clamping positioning pieces are pushed according to the number of the energy storage batteries needing to be clamped, the insertion restraining blocks are inserted into the inner sides of the corresponding fixed restraining grooves, and the movable restraining grooves are formed in the inner sides of the insertion restraining blocks. The clamping and positioning piece is fixed to a designated position, then the clamping equipment on the clamping and positioning piece is rotated for accurate adjustment, and the device can effectively and stably clamp batteries when the number of each group of batteries is increased or decreased.
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Description

Technical Field

[0001] The utility model relates to the technical field of energy storage cabinet processing, in particular to a clamping tooling for processing energy storage cabinet components. Background Technique

[0002] An energy storage cabinet is a device for storing energy. It is usually used in the power system to balance supply and demand, improve the stability and reliability of the power grid, store energy during low electricity consumption periods, and release energy during peak periods to reduce the power demand during peak periods and lower the electricity cost.

[0003] When the energy storage batteries inside the existing energy storage cabinet are processed and assembled, they need to be arranged in sequence on the clamping workpiece for fixation, and then bundled to form a battery pack. After fixation, the clamping of the device is cancelled for the next step.

[0004] However, the clamping tooling can only clamp a specific number of batteries. Once the number of batteries in each group increases or decreases, clamping cannot be performed. Content of the Utility Model

[0005] The purpose of the utility model is to provide a clamping tooling for processing energy storage cabinet components to solve the problems raised in the above background technique.

[0006] To achieve the above purpose, the utility model provides the following technical solutions:

[0007] A clamping tooling for processing energy storage cabinet components, the clamping tooling for processing energy storage cabinet components includes:

[0008] A clamping device housing, an activity constraint groove is opened inside the clamping device housing, a plurality of fixed constraint grooves are opened on one side of the clamping device housing, each fixed constraint groove is communicated with the activity constraint groove, a clamping positioning member is arranged inside the activity constraint groove, an insertion activity groove is opened inside the clamping positioning member, and a plurality of energy storage batteries are arranged on the clamping device housing;

[0009] An insertion component, the insertion component is arranged inside the insertion activity groove, and the insertion component includes a connection constraint plate, an insertion constraint block, and a constraint tooth plate;

[0010] A reset component, the reset component is arranged on one side of the connection constraint plate, and the reset component includes a limit constraint plate, a guiding constraint rod, a guiding sleeve, and a reset spring;

[0011] A rotation component, the rotation component is arranged between two constraint tooth plates, and the rotation component includes a rotation gear, a rotation connecting rod, a transmission wheel, a rotation wheel, and a transmission belt.

[0012] Preferably, two connection constraint plates are provided inside the plugging activity slot. One side of each connection constraint plate is provided with a plugging constraint block. One end of the plugging constraint block is plugged inside the fixed constraint slot. One side of the connection constraint plate is provided with a constraint toothed plate.

[0013] Preferably, two limit constraint plates are provided inside the plugging activity slot. One side of each limit constraint plate is provided with a guiding sleeve. One side of each connection constraint plate is provided with a guiding constraint rod. One end of each guiding constraint rod is sleeved inside the guiding sleeve.

[0014] Preferably, a return spring is provided between each limit constraint plate and the connection constraint plate. Each return spring is sleeved on the corresponding guiding sleeve. A rotating gear is provided inside the plugging activity slot.

[0015] Preferably, the rotating gear meshes with the two constraint toothed plates. A rotating constraint slot, a transmission constraint slot, and an unlocking constraint slot are formed inside the clamping and positioning member. The rotating constraint slot communicates with the plugging activity slot. The rotating constraint slot communicates with the transmission constraint slot. The transmission constraint slot communicates with the unlocking constraint slot.

[0016] Preferably, a rotating connecting rod is provided inside the rotating constraint slot. A rotating unlocking member is provided inside the unlocking constraint slot. A rotating wheel is sleeved on the rotating unlocking member. A transmission wheel is sleeved on the rotating connecting rod. The transmission wheel is arranged inside the transmission constraint slot.

[0017] Preferably, the rotating wheel is arranged inside the transmission constraint slot. A transmission belt is provided inside the transmission constraint slot. The transmission belt is sleeved on the transmission wheel and the rotating wheel. One end of the rotating unlocking member penetrates through the clamping and positioning member and is suspended.

[0018] Compared with the prior art, the beneficial effects of the present utility model are:

[0019] According to the number of energy storage batteries to be clamped, push the clamping and positioning member to insert the plugging constraint block into the corresponding fixed constraint slot, fix the clamping and positioning member to the specified position, and then rotate the clamping device on the clamping and positioning member for precise adjustment. This device can effectively and stably clamp when the number of batteries in each group increases or decreases. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] Figure 1 It is a schematic diagram of the overall structure of the present utility model;

[0021] Figure 2 It is a schematic diagram of a partial structure of the present utility model;

[0022] Figure 3 It is a schematic diagram of a partial cross-sectional structure of the present utility model;

[0023] Figure 4 It is a schematic diagram of the plugging assembly structure of the present utility model;

[0024] Figure 5 This is a schematic diagram of the inner structure of the clamping and positioning part of the present utility model;

[0025] Figure 6 This is a schematic diagram of the rotating assembly structure of the present utility model.

[0026] In the figure: clamping device housing 1, movable constraint groove 2, fixed constraint groove 3, clamping and positioning part 4, insertion movable groove 5, rotating constraint groove 6, energy storage battery 7, transmission constraint groove 8, unlocking constraint groove 9, limit constraint plate 10, connection constraint plate 11, insertion constraint block 12, guiding constraint rod 13, guiding sleeve 14, return spring 15, constraint toothed plate 16, rotating gear 17, rotating connecting rod 18, transmission wheel 19, rotating wheel 20, transmission belt 21, rotating unlocking part 22. Specific embodiments

[0027] In order to clearly and completely describe the purpose, technical solution of the present utility model, and make the advantages more clearly understood, the following further details the embodiments of the present utility model with reference to the accompanying drawings. It should be understood that the specific embodiments described herein are part of the embodiments of the present utility model, rather than all the embodiments, and are only used to explain the embodiments of the present utility model, not to limit the embodiments of the present utility model. All other embodiments obtained by those of ordinary skill in the art without creative efforts belong to the scope of protection of the present utility model.

[0028] Embodiment 1: Please refer to Figures 1-6 , the present utility model provides three technical solutions:

[0029] A clamping tool for processing an energy storage cabinet assembly includes:

[0030] An activity constraint groove 2 is opened inside the clamping device housing 1, and a plurality of fixed constraint grooves 3 are opened on one side of the clamping device housing 1. Each fixed constraint groove 3 communicates with the activity constraint groove 2. A clamping and positioning part 4 is arranged inside the activity constraint groove 2. An insertion activity groove 5 is opened inside the clamping and positioning part 4. A plurality of energy storage batteries 7 are arranged on the clamping device housing 1. An insertion assembly is arranged inside the insertion activity groove 5. The insertion assembly includes a connection constraint plate 11, an insertion constraint block 12, and a constraint toothed plate 16. Two connection constraint plates 11 are arranged inside the insertion activity groove 5. An insertion constraint block 12 is arranged on one side of each connection constraint plate 11. One end of the insertion constraint block 12 is inserted inside the fixed constraint groove 3. A constraint toothed plate 16 is arranged on one side of the connection constraint plate 11;

[0031] Two limit constraint plates 10 are provided on the inner side of the plug-in movable groove 5, and a guide sleeve 14 is provided on one side of each limit constraint plate 10. A guide constraint rod 13 is provided on one side of each connecting constraint plate 11. One end of each guide constraint rod 13 is sleeved on the inner side of the guide sleeve 14. The guide constraint rod 13 and the guide sleeve 14 can prevent the spring from leaving the original position.

[0032] Embodiment 2: Based on the embodiment 1, the reset assembly is arranged on one side of the connection constraint plate 11, and the reset assembly includes a limit constraint plate 10, a guide constraint rod 13, a guide sleeve 14, and a reset spring 15. A reset spring 15 is arranged between each limit constraint plate 10 and the connection constraint plate 11, and each reset spring 15 is sleeved on the corresponding guide sleeve 14. A rotating gear 17 is arranged on the inner side of the plug-in movable groove 5;

[0033] The rotating gear 17 is meshed with the two constraint tooth plates 16, and a rotation constraint groove 6, a transmission constraint groove 8, and an unlocking constraint groove 9 are provided on the inner side of the clamping positioning member 4. The rotation constraint groove 6 is connected with the plug-in movable groove 5, the rotation constraint groove 6 is connected with the transmission constraint groove 8, and the transmission constraint groove 8 is connected with the unlocking constraint groove 9. The rotation of the rotating gear 17 can enable the constraint tooth plate 16 to drive the connecting constraint plate 11 to move toward the side of the limit constraint plate 10, thereby causing the plug-in constraint block 12 to disengage from the fixed constraint groove 3.

[0034] Embodiment 3: On the basis of Embodiment 2, a rotating assembly is arranged between two constraining tooth plates 16, and the rotating assembly includes a rotating gear 17, a rotating connecting rod 18, a transmission wheel 19, a rotating wheel 20, and a transmission belt 21. A rotating connecting rod 18 is provided inside the rotating constraint groove 6, a rotating unlocking member 22 is provided inside the unlocking constraint groove 9, a rotating wheel 20 is sleeved on the rotating unlocking member 22, a transmission wheel 19 is sleeved on the rotating connecting rod 18, the transmission wheel 19 is arranged inside the transmission constraint groove 8, the rotating wheel 20 is arranged inside the transmission constraint groove 8, a transmission belt 21 is provided inside the transmission constraint groove 8, and the transmission belt 21 is sleeved on the transmission wheel 1 9 and the rotating wheel 20, one end of the rotating unlocking piece 22 passes through the clamping positioning piece 4 and is suspended. When in use, the clamping positioning piece 4 is pushed according to the number of energy storage batteries 7 to be clamped, so that the plug-in constraint block 12 is plugged into the inner side of the corresponding fixed constraint groove 3, and the clamping positioning piece 4 is fixed to the specified position. Then, the clamping device on the clamping positioning piece 4 is rotated for precise adjustment. When the number of energy storage batteries 7 to be clamped needs to be increased, the rotating unlocking piece 22 is rotated to drive the plug-in constraint block 12 to release the constraint, so that the clamping positioning piece 4 can be adjusted. After adjusting to the specified position, it is automatically locked by the reset component to complete the entire operation.

[0035] Although embodiments of the present utility model have been shown and described, those of ordinary skill in the art can understand that various changes, modifications, substitutions, and variations can be made to these embodiments without departing from the principle and spirit of the present utility model. The scope of the present utility model is defined by the appended claims and their equivalents.

Claims

1. A clamping tooling for the processing of an energy storage cabinet assembly, characterized in that: The clamping tooling for processing the energy storage cabinet assembly includes: A clamping device housing (1), with an active constraint groove (2) opened inside the clamping device housing (1), and a plurality of fixed constraint grooves (3) opened on one side of the clamping device housing (1). Each fixed constraint groove (3) communicates with the active constraint groove (2). An inner side of the active constraint groove (2) is provided with a clamping positioning member (4), and an insertion active groove (5) is opened inside the clamping positioning member (4). A plurality of energy storage batteries (7) are provided on the clamping device housing (1); An insertion assembly, which is arranged inside the insertion active groove (5). The insertion assembly includes a connection constraint plate (11), an insertion constraint block (12), and a constraint toothed plate (16); A reset assembly, which is arranged on one side of the connection constraint plate (11). The reset assembly includes a limit constraint plate (10), a guiding constraint rod (13), a guiding sleeve (14), and a reset spring (15); A rotating assembly, which is arranged between two constraint toothed plates (16). The rotating assembly includes a rotating gear (17), a rotating connecting rod (18), a transmission wheel (19), a rotating wheel (20), and a transmission belt (21).

2. The clamping tooling for processing an energy storage cabinet assembly according to claim 1, characterized in that: Two connection constraint plates (11) are arranged inside the insertion active groove (5). An insertion constraint block (12) is arranged on one side of each connection constraint plate (11). One end of the insertion constraint block (12) is inserted inside the fixed constraint groove (3). A constraint toothed plate (16) is arranged on one side of the connection constraint plate (11).

3. The clamping tooling for processing an energy storage cabinet assembly according to claim 2, wherein: Two limit constraint plates (10) are arranged inside the insertion active groove (5). A guiding sleeve (14) is arranged on one side of each limit constraint plate (10). A guiding constraint rod (13) is arranged on one side of each connection constraint plate (11). One end of each guiding constraint rod (13) is sleeved inside the guiding sleeve (14).

4. A clamping tooling for processing an energy storage cabinet assembly according to claim 3, wherein: A reset spring (15) is arranged between each limit constraint plate (10) and the connection constraint plate (11). Each reset spring (15) is sleeved on the corresponding guiding sleeve (14). A rotating gear (17) is arranged inside the insertion active groove (5).

5. The clamping tooling for processing an energy storage cabinet assembly according to claim 4, wherein: The rotating gear (17) meshes with the two constraint toothed plates (16). A rotating constraint groove (6), a transmission constraint groove (8), and an unlocking constraint groove (9) are opened inside the clamping positioning member (4). The rotating constraint groove (6) communicates with the insertion active groove (5). The rotating constraint groove (6) communicates with the transmission constraint groove (8). The transmission constraint groove (8) communicates with the unlocking constraint groove (9).

6. The clamping tooling for processing an energy storage cabinet assembly according to claim 5, wherein: A rotating connecting rod (18) is arranged inside the rotating constraint groove (6). A rotating unlocking member (22) is arranged inside the unlocking constraint groove (9). A rotating wheel (20) is sleeved on the rotating unlocking member (22). A transmission wheel (19) is sleeved on the rotating connecting rod (18). The transmission wheel (19) is arranged inside the transmission constraint groove (8).

7. The clamping tooling for processing an energy storage cabinet assembly according to claim 6, characterized in that: The rotating wheel (20) is arranged inside the transmission constraint groove (8). A transmission belt (21) is arranged inside the transmission constraint groove (8). The transmission belt (21) is sleeved on the transmission wheel (19) and the rotating wheel (20). One end of the rotating unlocking member (22) penetrates through the clamping positioning member (4) and is suspended.