New energy storage power supply flat cable structure
By designing the new energy storage power supply wiring structure for wire machining blocks and fixed components, the problems of wire entanglement and chaos are solved, the stable fixation and heat dissipation of wire machining are achieved, and the service life is extended.
Patent Information
- Application Number
- CN202421885856.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-06
- Publication Date
- 2025-07-04
- Estimated Expiration
- 2034-08-06
AI Technical Summary
In the existing energy storage battery wiring structure, the wire body is easily accumulated, wrapped, and it is difficult to accurately enter specific wire plate holes, resulting in confusion in the wiring.
A new energy storage power supply wiring structure is adopted that includes wire management blocks and fixed components. The spring-driven tight block fixes the line body, combined with arc grooves and rubber pads, and the stability is improved through T-blocks and dovetail plug-in holes, and a heat dissipation hole is set to reduce heat accumulation.
Effectively fix the thread body, reduce the probability of winding, enhance stability, protect the thread body, extend the service life, and reduce the risk of overheating through the heat dissipation hole.
Smart Images

Figure CN223066839U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of energy storage power supplies, and particularly relates to a wire arrangement structure for a new energy energy storage power supply. Background Art
[0002] A wire arrangement structure for energy storage batteries is a structure that is installed during the use of energy storage batteries and plays a role in arranging and fixing the wire structures of multiple groups of energy storage batteries. By using it, the wire bodies of energy storage batteries can be clearly distributed, avoiding winding phenomena.
[0003] In a Chinese utility model patent with the publication number CN219040656U, a wire arrangement structure for energy storage batteries is disclosed, including a first wire clip and a second wire clip. The first wire clip is spliced and installed on the outer surface of the lower end of the second wire clip. Wire management grooves for receiving battery wire arrangements are provided inside both the first wire clip and the second wire clip. A number of limiting card boards for separating battery wire arrangements are spliced and installed in the wire management grooves. A splicing block is fixedly installed in the middle position of the outer surface of the lower end of the limiting card board. Fixed card slots for cooperating with the splicing block are provided inside both the first wire clip and the second wire clip. A first buckle is fixedly installed in the middle position of the outer surface of one end of the first wire clip, and a second buckle is fixedly installed in the middle position of the outer surface of one end of the second wire clip.
[0004] Regarding the above related technologies, the inventor believes that there are the following defects: when the above wire arrangement structure is in use, the wire bodies will accumulate at the bottom of the wire management groove, the wire bodies in the same wire management groove are prone to winding, and it is difficult for the wire bodies to accurately enter specific wire board holes after passing through the wire arrangement structure, resulting in a still relatively chaotic wire arrangement. Content of the Utility Model
[0005] In order to solve the above problems, the utility model provides a wire arrangement structure for a new energy energy storage power supply.
[0006] The above technical purpose of the utility model is achieved through the following technical solutions: A wire arrangement structure for a new energy energy storage power supply includes a wire management block. A wire management hole for the wire body to pass through is penetrated and opened on the side wall of the wire management block. An installation groove is opened on the upper surface of the wire management block. A fixing component for fixing the wire body is installed on the wire management block. The fixing component includes a vertical rod that penetrates through the wire management block and is slidably connected, a control block fixed to the upper end of the vertical rod, a pressing block fixed to the lower end of the vertical rod and slidably connected to the inner wall of the wire management hole, and a spring arranged in the installation groove. The upper end of the spring is fixed to the bottom of the control block, and the lower end of the spring is fixed to the inner bottom wall of the installation groove.
[0007] By adopting the above technical solution, multiple wire management blocks are combined according to the number of wire bodies to be arranged. By pulling up the control block, the pressing block moves upward, and the wire bodies are respectively passed through the wire management holes of the wire management blocks. Then, the control block is released, and under the elastic force of the spring, the pressing block presses downward against the wire bodies, playing a good fixing role for the wire bodies and enhancing the stability of the wire bodies in the wire management holes. Thus, the wire bodies of the energy storage battery are distributed, reducing the probability of the wire bodies being disorderly entangled.
[0008] Further, an arc-shaped groove matching with the wire body is formed at the bottom of the pressing block.
[0009] By adopting the above technical solution, the arc-shaped groove makes the bottom of the pressing block fit more closely with the surface of the wire body, increasing the contact area between the pressing block and the wire body and enhancing the fixing effect on the wire body.
[0010] Further, a rubber pad is fixed on the inner wall of the arc-shaped groove.
[0011] By adopting the above technical solution, the rubber pad is made of rubber material, and its surface has a large friction coefficient, increasing the friction force between the pressing block and the wire body and reducing the probability of the wire body displacing in the wire management hole. In addition, the rubber pad also plays a protective role for the wire body, reducing the wear of the pressing block on the wire body.
[0012] Further, a T-shaped groove is formed on the side wall of the wire management block, and a T-shaped block inserted and matched with the T-shaped groove is fixed on the side wall of the wire management block away from the T-shaped groove.
[0013] By adopting the above technical solution, the wire management block is inserted into the T-shaped groove of the adjacent wire management block through the T-shaped block, thereby combining two adjacent wire management blocks and enhancing the stability between the two adjacent wire management blocks.
[0014] Further, a plugging hole inserted and matched with the control block is formed at the bottom of the wire management block.
[0015] By adopting the above technical solution, the upper wire management block is inserted onto the control block of the lower wire management block through the plugging hole, facilitating the combination of the upper and lower wire management blocks.
[0016] Further, the cross-section of the control block and the cross-section of the plugging hole are both in a dovetail shape.
[0017] By adopting the above technical solution, the dovetail-shaped control block and plugging hole prevent the wire management block from disengaging upward from the control block, enhancing the stability between the upper and lower wire management blocks.
[0018] Further, a fillet is formed at the intersection of the inner wall of the wire management hole and the side wall of the wire management block.
[0019] By adopting the above technical solution, the setting of the rounded corners reduces the wear between the wire body and the wire management holes, and prolongs the service life of the wire body.
[0020] Furthermore, a plurality of heat dissipation holes are penetrated through both the wire management block and the control block.
[0021] By adopting the above technical solution, the heat dissipation holes play a good role in dissipating heat from the wire body, enabling the heat generated during the use of the wire body to be discharged through the heat dissipation holes, and reducing the probability of overheating of the wire body.
[0022] In summary, the present utility model has the following beneficial effects:
[0023] 1. In the present application, a plurality of wire management blocks are combined according to the number of wire bodies to be arranged. By pulling up the control block to move the pressing block upward, and respectively passing the wire bodies through the wire management holes of the wire management blocks, and then releasing the control block, the control block makes the pressing block press downward against the wire bodies under the elastic force of the spring, which plays a good fixing role on the wire bodies, enhances the stability of the wire bodies in the wire management holes, thereby distributing the wire bodies of the energy storage battery and reducing the probability of chaotic entanglement of the wire bodies;
[0024] 2. In the present application, the arc-shaped groove makes the bottom of the pressing block fit more closely to the surface of the wire body, increases the contact area between the pressing block and the wire body, and enhances the fixing effect on the wire body;
[0025] 3. In the present application, the rubber pad is made of rubber material, and its surface has a large friction coefficient, which increases the friction force between the pressing block and the wire body, reduces the probability of displacement of the wire body in the wire management hole. In addition, the rubber pad also plays a protective role on the wire body, reducing the wear of the pressing block on the wire body. BRIEF DESCRIPTION OF THE DRAWINGS
[0026] Figure 1 is a schematic diagram of the overall structure of an embodiment of the present utility model;
[0027] Figure 2 is a schematic cross-sectional structure diagram of an embodiment of the present utility model.
[0028] In the figure: 1. Wire management block; 11. Wire management hole; 12. Installation groove; 13. T-shaped groove; 14. Insertion hole; 15. Rounded corner; 2. Fixing component; 21. Vertical rod; 22. Control block; 23. Pressing block; 231. Arc-shaped groove; 24. Spring; 3. T-shaped block; 4. Rubber pad; 5. Heat dissipation hole. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0029] Next, the technical solutions in the embodiments of the present application will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present application; obviously, the described embodiments are only a part of the embodiments of the present application, rather than all the embodiments. Based on the embodiments in the present application, all other embodiments obtained by those of ordinary skill in the art without making creative efforts belong to the scope of protection of the present application.
[0030] As Figure 1 and Figure 2 shown, an energy storage power supply wire arrangement structure in an embodiment of the present application is disclosed, which includes a wire management block 1, a fixing component 2, and a T-shaped block 3.
[0031] The wire management block 1 is of a cuboid structure. A wire management hole 11 for the wire body to pass through is formed through the side wall of the wire management block 1. An installation groove 12 is formed on the upper surface of the wire management block 1. A T-shaped groove 13 is formed on the side wall of the wire management block 1. A plug hole 14 is formed at the bottom of the wire management block 1. The fixing component 2 is installed on the wire management block 1 and is used to fix the wire body. The fixing component 2 includes a vertical rod 21, a control block 22, a pressing block 23, and a spring 24. The vertical rod 21 is a vertically arranged rectangular rod-shaped structure, and the vertical rod 21 is arranged through the wire management block 1 and is slidably connected. The control block 22 is fixed to the upper end of the vertical rod 21, and the control block 22 is in plug-in fit with the plug hole 14. The pressing block 23 is fixed to the lower end of the vertical rod 21, and the pressing block 23 is slidably connected to the inner wall of the wire management hole 11. The spring 24 is arranged in the installation groove 12. The upper end of the spring 24 is fixed to the bottom of the control block 22, and the lower end of the spring 24 is fixed to the inner bottom wall of the installation groove 12. The T-shaped block 3 is a block-shaped structure with a T-shaped cross-section, and the T-shaped block 3 is in plug-in fit with the T-shaped groove 13.
[0032] The wire management block 1 is plugged into the T-shaped groove 13 of the adjacent wire management block 1 through the T-shaped block 3, thereby combining two adjacent wire management blocks 1, enhancing the stability between the two adjacent wire management blocks 1. The upper wire management block 1 is plugged onto the control block 22 of the lower wire management block 1 through the plug hole 14, facilitating the combination of the upper and lower wire management blocks 1. Multiple wire management blocks 1 are combined together according to the number of wire bodies to be arranged. By pulling the control block 22 upward, the pressing block 23 moves upward, and the wire bodies are respectively passed through the wire management holes 11 of the wire management block 1. Then, the control block 22 is released, and the control block 22 makes the pressing block 23 press downward against the wire bodies under the elastic force of the spring 24, playing a good role in fixing the wire bodies, enhancing the stability of the wire bodies in the wire management holes 11, thereby distributing the wire bodies of the energy storage battery and reducing the probability of the wire bodies being disorderly wound.
[0033] In order to enhance the fixing effect on the wire bodies, an arc-shaped groove 231 matching the wire bodies is formed at the bottom of the pressing block 23. The arc-shaped groove 231 makes the bottom of the pressing block 23 more closely fit with the surface of the wire bodies, increasing the contact area between the pressing block 23 and the wire bodies, thereby enhancing the fixing effect on the wire bodies.
[0034] In order to reduce the probability of the wire body being displaced in the wire management hole 11, a rubber pad 4 is fixed to the inner wall of the arc groove 231. The rubber pad 4 is made of rubber material and its surface has a large friction coefficient, which increases the friction between the clamping block 23 and the wire body, thereby reducing the probability of the wire body being displaced in the wire management hole 11. In addition, the rubber pad 4 also protects the wire body and reduces the wear of the clamping block 23 on the wire body.
[0035] In order to enhance the stability between the upper and lower cable management blocks 1, the cross-sections of the control block 22 and the plug-in hole 14 are both dovetail-shaped. The dovetail-shaped control block 22 and the plug-in hole 14 prevent the cable management block 1 from detaching upward from the control block 22, thereby enhancing the stability between the upper and lower cable management blocks 1.
[0036] In order to extend the service life of the wire body, a rounded corner 15 is provided at the intersection between the inner wall of the wire management hole 11 and the side wall of the wire management block 1. The setting of the rounded corner 15 reduces the wear between the wire body and the wire management hole 11, thereby extending the service life of the wire body.
[0037] In order to reduce the probability of overheating of the wire body, a plurality of heat dissipation holes 5 are provided on the wire management block 1 and the control block 22. The heat dissipation holes 5 have a good heat dissipation effect on the wire body, so that the heat generated during the use of the wire body is discharged through the heat dissipation holes 5, thereby reducing the probability of overheating of the wire body.
[0038] The use principle of a new energy storage power supply wiring structure in the present embodiment is as follows: the wiring block 1 is plugged into the T-slot 13 of the adjacent wiring block 1 through the T-block 3, thereby combining the two adjacent wiring blocks 1, and enhancing the stability between the two adjacent wiring blocks 1. The upper wiring block 1 is plugged into the control block 22 of the lower wiring block 1 through the plug hole 14, which is convenient for combining the upper and lower wiring blocks 1. According to the number of wires required for wiring, multiple wiring blocks 1 are combined together, and the control block 22 is pulled upward to move the pressing block 23 upward, and the wires are respectively passed through the wiring holes 11 of the wiring block 1, and the control block 22 is released so that the control block 22 makes the pressing block 23 press the wire downward under the elastic force of the spring 24, which has a good fixing effect on the wire, enhances the stability of the wire in the wiring hole 11, thereby distributing the wires of the energy storage battery and reducing the probability of chaotic winding of the wires.
[0039] The above is only a preferred embodiment of the present invention. The protection scope of the present invention is not limited to the above embodiments. All technical solutions under the concept of the present invention belong to the protection scope of the present invention. It should be pointed out that for ordinary technicians in this technical field, some improvements and modifications without departing from the principle of the present invention should also be regarded as the protection scope of the present invention.
Claims
1. A wire arranging structure for a new energy energy storage power supply, including a wire arranging block (1), characterized in that: A wire management hole (11) for the wire body to pass through is formed through the side wall of the wire management block (1). An installation groove (12) is formed on the upper surface of the wire management block (1). A fixing component (2) for fixing the wire body is installed on the wire management block (1). The fixing component (2) includes a vertical rod (21) that penetrates through the wire management block (1) and is slidably connected, a control block (22) fixed to the upper end of the vertical rod (21), a pressing block (23) fixed to the lower end of the vertical rod (21) and slidably connected to the inner wall of the wire management hole (11), and a spring (24) arranged in the installation groove (12). The upper end of the spring (24) is fixed to the bottom of the control block (22), and the lower end of the spring (24) is fixed to the inner bottom wall of the installation groove (12).
2. The cable structure of a new energy energy storage power supply according to claim 1, wherein: An arc-shaped groove (231) matching the wire body is formed at the bottom of the pressing block (23).
3. The wiring structure of a new energy energy storage power supply according to claim 2, characterized in that: A rubber pad (4) is fixed to the inner wall of the arc-shaped groove (231).
4. The wire arrangement structure of a new energy energy storage power supply according to claim 3, characterized in that: A T-shaped groove (13) is formed on the side wall of the wire management block (1). A T-shaped block (3) that is inserted and matched with the T-shaped groove (13) is fixed to the side wall of the wire management block (1) away from the T-shaped groove (13).
5. The wire arrangement structure of a new energy energy storage power supply according to claim 4, characterized in that: A plugging hole (14) that is inserted and matched with the control block (22) is formed at the bottom of the wire management block (1).
6. The wiring structure of a new energy energy storage power supply according to claim 5, characterized in that: The cross-sections of both the control block (22) and the plugging hole (14) are in the shape of a dovetail.
7. The cable structure of a new energy energy storage power supply according to claim 1, characterized in that: A fillet (15) is formed at the intersection between the inner wall of the wire management hole (11) and the side wall of the wire management block (1).
8. The wire arrangement structure of a new energy energy storage power supply according to claim 7, characterized in that: A plurality of heat dissipation holes (5) penetrate through both the wire management block (1) and the control block (22).
Citation Information
Patent Citations
Wire arrangement structure of energy storage battery
CN219040656U