A foldable and rotatable energy storage connection harness fixing structure

CN224637669UActive Publication Date: 2026-08-14DONGGUAN KAIXIANG ELECTRIC APPLIANCE CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-08
Publication Date
2026-08-14

AI Technical Summary

Technical Problem

[0004]基于此,本实用新型的目的是提供一种可折叠旋转的储能连接线束固定结构,以解决储能连接线束固定结构的技术问题

Benefits of technology

[0023]1、本实用新型通过设置可折叠旋转的底座与折叠件配合结构,其中底座的安装座上开设折叠槽并设置带有第一齿槽的转轴座,折叠件的折叠片一侧设置与转轴座对接且带有第二齿槽的转轴,折叠片可绕转轴在折叠槽内进行折叠或展开,这种设计解决了传统储能连接线束固定结构角度调节单一的问题,在实际应用中,可根据储能设备内部复杂的空间布局以及线束连接的需求,灵活地调整折叠件相对于底座的角度和位置,使线束能够以更合理的走向进行布置,避免了因角度固定而导致的线束缠绕、拉扯等情况,提高了线束连接的稳定性和可靠性,同时也提升了设备内部空间的整体利用率;

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Abstract

This utility model discloses a foldable and rotatable energy storage connection harness fixing structure, relating to the field of energy storage connection harness fixing structures. The utility model includes a base and a folding component. The base includes a mounting seat with a folding groove on its outer surface. A foldable and rotatable base and folding component are fitted together. The mounting seat of the base has a folding groove and a pivot seat with a first toothed groove. One side of the folding component has a pivot that mates with the pivot seat and has a second toothed groove. The folding component can fold or unfold within the folding groove around the pivot. This design solves the problem of limited angle adjustment in traditional energy storage connection harness fixing structures. In practical applications, the angle and position of the folding component relative to the base can be flexibly adjusted according to the complex internal spatial layout of the energy storage device and the needs of the harness connection, avoiding harness tangling and pulling caused by a fixed angle.
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Description

Technical Field

[0001] This utility model relates to the field of energy storage connection harness fixing structure, specifically a foldable and rotatable energy storage connection harness fixing structure. Background Technology

[0002] With the increasing popularity of energy storage systems and related electronic devices, the importance of the fixing structure of energy storage connection harnesses, as key components for energy transmission and signal transmission, is becoming increasingly prominent. A reasonable harness fixing structure can not only ensure the stability of the harness connection and avoid faults such as poor contact and short circuits caused by harness shaking and tangling, but also effectively improve the overall aesthetics and space utilization of the equipment, and provide convenience for the stable operation and daily maintenance of the equipment.

[0003] However, due to the limited angle adjustment of the current energy storage connection harness fixing structure, the traditional fixing structure is difficult to adapt to various complex installation environments during the installation and layout of energy storage equipment, given the complex internal space layout and the different relative positions and angles of different components. When it is necessary to connect, repair, or rearrange the harness, the single-angle fixing makes the adjustment of the harness extremely difficult, often requiring the disassembly of the entire fixing structure. This not only increases the difficulty and workload of operation but also easily damages the harness, affecting its service life and performance. Utility Model Content

[0004] Therefore, the purpose of this utility model is to provide a foldable and rotatable energy storage connection harness fixing structure to solve the technical problems of energy storage connection harness fixing structures.

[0005] To achieve the above objectives, this utility model provides the following technical solution: a foldable and rotatable energy storage connection harness fixing structure, including a base and a folding component. The base includes a mounting seat, and a folding groove is provided on the outer surface of the mounting seat. A pivot seat is provided on one side of the mounting seat, and a first toothed groove is provided through the top and bottom of the pivot seat. A folding component is installed in the folding groove.

[0006] The folding component includes a folding piece, a pivot is provided on one side of the folding piece, the pivot is connected to the pivot seat, and the top and bottom of the pivot are provided with second tooth grooves, the first tooth groove and the second tooth groove are connected, and a locking mechanism for locking the base and the folding component is provided on one side of the base.

[0007] By adopting the above technical solution, the base and folding component are designed. The base has a folding groove and a pivot seat, with the pivot of the folding component engaging with them. This allows for flexible adjustment of the folding component's angle to adapt to different spaces and meet diverse fixing requirements for energy storage connection harnesses.

[0008] Furthermore, the locking mechanism includes a double-ended spring sleeve, with spring grooves formed at the top and bottom of the double-ended spring sleeve.

[0009] By adopting the above technical solution, the locking mechanism is equipped with a double-headed spring sleeve and a spring groove, which provides space for the subsequent installation and sliding of the moving rod. It is the basic structure for the locking mechanism to realize the locking and unlocking functions, ensuring that the structure can work stably.

[0010] Furthermore, a movable rod is slidably connected within the spring groove, and one side of the movable rod abuts against a spring for causing the movable rod to return to its original position.

[0011] By adopting the above technical solution, a slidingly connected movable rod and a return spring are provided in the spring groove. The movable rod can be automatically reset by the elastic force of the spring, realizing the automatic locking of the locking mechanism. The operation is simple and the efficiency of use is improved.

[0012] Furthermore, both of the two movable rods are provided with connecting plates at the top and bottom, and each connecting plate is provided with toothed blocks.

[0013] By adopting the above technical solution, the connecting piece of the movable rod is equipped with a toothed block. The toothed block can be inserted into the corresponding toothed groove to achieve locking. The movement of the movable rod drives the toothed block to move, which can accurately control locking and unlocking and enhance structural stability.

[0014] Furthermore, the toothed block is inserted into the first toothed groove and extends into the second toothed groove, and the base is made of engineering plastic.

[0015] By adopting the above technical solution, the toothed block is inserted into the first and second toothed grooves, and the base is made of engineering plastic. The toothed block and the toothed grooves cooperate to achieve a stable lock, and the engineering plastic makes the base sturdy and durable, adaptable to different environments.

[0016] Furthermore, a rotating seat is rotatably connected to the outer surface of the folded piece, and a wire harness clamp is installed on the outer surface of the rotating seat.

[0017] By adopting the above technical solution, the outer surface of the folding piece is provided with a rotating seat and a wire harness clamp that are rotatably connected. The rotating seat can drive the wire harness clamp to rotate, and the clamp angle can be flexibly adjusted according to the direction of the wire harness, thereby improving the accuracy of wire harness fixing.

[0018] Furthermore, the back of the mounting base is provided with a strong adhesive surface, which is used to fix the base to the mounting surface.

[0019] By adopting the above technical solution, the back of the mounting base is provided with a strong adhesive surface, which can quickly fix the base to the mounting surface without complicated installation tools and steps, saving installation time and manpower and improving installation efficiency.

[0020] Furthermore, the folding piece can be folded or unfolded within the folding groove around the pivot, and the rotating seat can drive the wire harness clamp to rotate around the folding piece.

[0021] By adopting the above technical solution, the folding piece can be folded and unfolded in the folding groove around the pivot, and the rotating seat can drive the wire harness clamp to rotate. The dual adjustment makes the wire harness fixation more flexible and adaptable to various complex spaces and wire harness directions.

[0022] In summary, the present invention has the following main advantages:

[0023] 1. This utility model features a foldable and rotatable base and folding component structure. The base has a folding groove and a pivot seat with a first tooth groove. The folding component has a pivot on one side that mates with the pivot seat and has a second tooth groove. The folding component can fold or unfold around the pivot in the folding groove. This design solves the problem of the single angle adjustment of the traditional energy storage connection harness fixing structure. In practical applications, the angle and position of the folding component relative to the base can be flexibly adjusted according to the complex spatial layout inside the energy storage device and the needs of the harness connection. This allows the harness to be arranged in a more reasonable direction, avoiding harness tangling and pulling caused by fixed angles. This improves the stability and reliability of the harness connection and also enhances the overall utilization rate of the internal space of the device.

[0024] 2. This utility model incorporates a locking mechanism, including a double-headed spring sleeve with spring grooves at its top and bottom. Movable rods are slidably connected within these grooves, with one side of the movable rod abutting against a spring for resetting. Connecting pieces are located at the top and bottom of both movable rods, each with a toothed block inserted into the first toothed groove and extending into the second toothed groove. This design solves the problem of unstable locking after angle adjustment in traditional fixing structures. When the angle of the folding component needs adjustment, simply overcome the spring force to push the movable rod, disengaging the toothed block from the first and second toothed grooves, allowing the folding component to rotate freely. After adjusting to the appropriate angle, releasing the movable rod causes the spring force to reset, and the toothed block re-inserts into the first and second toothed grooves, firmly locking the folding component to the base. This ensures that the wire harness will not shift angle due to vibration or other factors during equipment operation, guaranteeing the stability and durability of the wire harness fixation. Attached Figure Description

[0025] Figure 1 This is a three-dimensional structural diagram of the present invention;

[0026] Figure 2 This is a rear-view three-dimensional structural diagram of the present invention;

[0027] Figure 3 This is a frontal cross-sectional three-dimensional structural schematic diagram of the present invention;

[0028] Figure 4 This utility model Figure 3 A magnified structural diagram of point A in the middle.

[0029] In the diagram: 1. Base; 101. Mounting seat; 102. Strong adhesive surface; 103. Folding groove; 104. Rotating shaft seat; 105. First toothed groove; 2. Folding component; 201. Folding piece; 202. Rotating shaft; 203. Second toothed groove; 204. Rotating seat; 205. Wire harness clamp; 3. Locking mechanism; 301. Double-headed spring sleeve; 302. Spring groove; 303. Movable rod; 304. Spring; 305. Connecting piece; 306. Tooth block. Detailed Implementation

[0030] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain the present invention, and should not be construed as limiting the present invention.

[0031] A foldable and rotatable energy storage connection harness fixing structure, such as Figure 1-4 As shown, it includes a base 1 and a folding component 2. The base 1 includes a mounting seat 101. A folding groove 103 is provided on the outer surface of the mounting seat 101. A pivot seat 104 is provided on one side of the mounting seat 101. A first toothed groove 105 passes through the top and bottom of the pivot seat 104. The folding component 2 is installed in the folding groove 103.

[0032] The folding component 2 includes a folding piece 201. A rotating shaft 202 is provided on one side of the folding piece 201, which is connected to a rotating shaft seat 104. The top and bottom of the rotating shaft 202 are provided with second toothed grooves 203, and a first toothed groove 105 communicates with the second toothed groove 203. A locking mechanism 3 for locking the base 1 and the folding component 2 is provided on one side of the base 1. This structure consists of a base 1 and a folding component 2. The mounting base 1 of the base 1 has a folding groove 103 and a rotating shaft seat 104. The rotating shaft 202 on one side of the folding piece 201 of the folding component 2 connects to the rotating shaft seat 104. In practical applications, the angle and position of the folding component 2 relative to the base 1 can be flexibly adjusted according to the complex internal space and wiring harness routing of the energy storage device. This design breaks the limitation of the single angle of traditional fixed structures, making the wiring harness arrangement more reasonable, effectively avoiding problems such as wiring harness tangling and pulling, and improving the stability and reliability of wiring harness fixing.

[0033] See Figure 1 , Figure 4The locking mechanism 3 includes a double-ended spring sleeve 301. Spring grooves 302 are formed at the top and bottom of the double-ended spring sleeve 301. The presence of spring grooves 302 in the double-ended spring sleeve 301 provides the necessary space for the subsequent installation and sliding of the movable rod 303. During operation, the spring grooves 302 accommodate and guide the movable rod 303. When the angle of the folding member 2 needs adjustment, the movable rod 303 can slide within the spring grooves 302 to unlock. After adjustment, the movable rod 303 can be reset and locked using the structure within the spring grooves 302. It is the fundamental structure for the locking mechanism to achieve locking and unlocking functions, ensuring the stable operation of the entire energy storage connection harness fixing structure.

[0034] See Figure 1 , Figure 2 A movable rod 303 is slidably connected within a spring groove 302, and a spring 304 abuts against one side of the movable rod 303 to return it to its original position. This structure cleverly utilizes the elastic properties of the spring 304. During operation, when unlocking is required, external force pushes the movable rod 303 to slide within the spring groove 302, compressing the spring 304. After adjusting the angle of the folding piece 2, the external force is removed, and the elastic force of the spring 304 causes the movable rod 303 to automatically return to its original position. This design achieves an automatic locking function for the locking mechanism, eliminating the need for complex operating procedures, greatly improving ease of use and efficiency, and making the fixing and adjustment of the energy storage connection harness easier and faster.

[0035] See Figure 3 , Figure 4 Both movable rods 303 have connecting pieces 305 at their top and bottom, and each connecting piece 305 has a toothed block 306. This structure, with connecting pieces 305 and toothed blocks 306 on the top and bottom of the movable rods 303, is key to the precise locking of the locking mechanism. When the movable rod 303 slides within the spring groove 302, it moves the connecting pieces 305 and toothed blocks 306 together. In the locked state, the toothed blocks 306 insert into the first toothed groove 105 and extend into the second toothed groove 203, firmly locking the base 1 and the folding piece 2. When unlocking, the movable rod 303 moves, causing the toothed blocks 306 to disengage from the toothed grooves. In this way, the locking and unlocking processes can be precisely controlled, effectively enhancing the stability of the entire energy storage connection harness fixing structure and preventing loosening during equipment operation.

[0036] See Figure 1 , Figure 2The toothed block 306 inserts into the first toothed groove 105 and extends into the second toothed groove 203. The base 1 is made of engineering plastic. This structure creates a tight interlocking relationship between the base 1 and the folding member 2, achieving a stable locking effect. During the operation of the energy storage device, it effectively prevents the folding member 2 from shifting at an angle due to vibration and other factors, ensuring the stability of the wiring harness fixation. Meanwhile, the base 1 is made of engineering plastic, which has advantages such as high strength, corrosion resistance, and good insulation. This material choice allows the base 1 to adapt to different operating environments, making it sturdy, durable, and not easily damaged, extending the service life of the entire energy storage connection wiring harness fixing structure.

[0037] See Figure 1 , Figure 4 A rotating seat 204 is rotatably connected to the outer surface of the folding plate 201. A wire harness clamp 205 is mounted on the outer surface of the rotating seat 204. This structure provides greater flexibility for fixing the wire harness. In practical applications, due to the complex and diverse routing of the wire harness inside the energy storage device, the rotating seat 204 drives the wire harness clamp 205 to rotate around the folding plate 201, allowing for fine-tuning according to the specific direction of the wire harness. This enables the wire harness clamp 205 to better fit the wire harness, improving the accuracy of wire harness fixing and preventing problems such as loosening and wear caused by improper fixing, thus ensuring the safe and stable operation of the energy storage device.

[0038] See Figure 3 , Figure 4 The mounting base 101 has a strong adhesive surface 102 on its back, which is used to fix the base 1 to the mounting surface. This structure greatly facilitates the installation of the base 1. During installation, there is no need to use complicated installation tools or cumbersome installation steps; simply stick the strong adhesive surface 102 to the desired mounting surface to quickly fix the base 1. This installation method saves installation time and labor costs, and improves installation efficiency. Especially in energy storage devices where space is limited or traditional installation methods are inconvenient, the design of the strong adhesive surface 102 makes the installation of the base 1 more flexible and convenient, meeting the installation needs of different scenarios.

[0039] See Figure 1The folding piece 201 can be folded or unfolded within the folding groove 103 around the rotating shaft 202. Simultaneously, the rotating seat 204 can drive the wire harness clamp 205 to rotate around the folding piece 201. This dual-adjustment structure provides extremely high flexibility for wire harness fixation. Inside energy storage devices, the spatial layout is complex, and wire harness routing is diverse. Folding and unfolding the folding piece 201 allows for initial adjustment of the approximate position and angle of the wire harness clamp 205. Furthermore, rotation of the rotating seat 204 allows for fine-tuning of the wire harness clamp 205, enabling it to better adapt to various complex spaces and wire harness routings. This ensures the wire harness can be arranged along the most reasonable path, improving the quality and stability of wire harness fixation.

[0040] The implementation principle of this embodiment is as follows: First, the strong adhesive surface 102 provided on the back of the mounting base 101 is used to firmly fix the base 1 on the mounting surface required by the energy storage device, providing a stable mounting foundation for the entire energy storage connection harness fixing structure.

[0041] When it is necessary to fix the energy storage connection harness, the harness is placed in the harness clamp 205. Since the folding piece 201 can be folded or unfolded around the pivot 202 in the folding groove 103 of the mounting base 101, the operator can flexibly adjust the angle and position of the folding piece 201 according to the actual space layout inside the energy storage device and the harness routing requirements, so that the harness can be arranged in the most reasonable path. This effectively avoids problems such as harness entanglement and pulling caused by the single angle of the traditional fixing structure, and improves the rationality and stability of the harness arrangement.

[0042] After adjusting the angle of the folding piece 201, the base 1 and the folding piece 2 are locked using the locking mechanism 3. Specifically, the double-headed spring sleeve 301 in the locking mechanism 3 has a movable rod 303 slidably connected in the spring grooves 302 at the top and bottom. One side of the movable rod 303 abuts against a spring 304. In the unlocked state, the spring 304 is in a natural state, and the movable rod 303 can slide freely in the spring groove 302. When locking is required, the external force on the movable rod 303 is released, and the elastic force of the spring 304 causes the movable rod 303 to return to its original position. The movable rod 303 drives the tooth block 306 to insert into the first tooth groove 105 on the rotating shaft seat 104 and extend into the second tooth groove 203 on the rotating shaft 202 through the connecting piece 305, thereby realizing the firm locking of the base 1 and the folding piece 2. This ensures that the folding piece 2 will not shift due to vibration or other factors during equipment operation, thus ensuring the stability and durability of the wire harness fixation.

[0043] In addition, since the outer surface of the folding piece 201 is rotatably connected to the rotating seat 204, and the outer surface of the rotating seat 204 is equipped with a wire harness clamp 205, the rotating seat 204 can drive the wire harness clamp 205 to rotate around the folding piece 201. This allows the wire harness clamp 205 to be finely adjusted according to the specific direction of the wire harness, further improving the flexibility and accuracy of wire harness fixing and better meeting the wire harness fixing needs of energy storage devices in different usage scenarios.

[0044] Although embodiments of the present invention have been shown and described, these specific embodiments are merely explanations of the present invention and are not intended to limit the invention. The specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples. After reading this specification, those skilled in the art may make modifications, substitutions, and variations to the embodiments as needed without departing from the principles and spirit of the present invention, provided that such modifications, substitutions, and variations are within the scope of the claims of the present invention and are protected by patent law.

Claims

1. A foldable and rotatable energy storage connection harness fixing structure, characterized in that: The device includes a base (1) and a folding component (2). The base (1) includes a mounting seat (101). The outer surface of the mounting seat (101) is provided with a folding groove (103). A pivot seat (104) is provided on one side of the mounting seat (101). The top and bottom of the pivot seat (104) are provided with first toothed grooves (105). The folding component (2) is installed in the folding groove (103). The folding component (2) includes a folding piece (201), and a rotating shaft (202) is provided on one side of the folding piece (201). The rotating shaft (202) is connected to the rotating shaft seat (104), and a second tooth groove (203) is provided on the top and bottom of the rotating shaft (202). The first tooth groove (105) and the second tooth groove (203) are connected. A locking mechanism (3) for locking the base (1) and the folding component (2) is provided on one side of the base (1).

2. The foldable and rotatable energy storage connection harness fixation structure according to claim 1, wherein: The locking mechanism (3) includes a double-headed spring sleeve (301), and spring grooves (302) are provided at the top and bottom of the double-headed spring sleeve (301).

3. The foldable and rotatable energy storage connection harness fixation structure according to claim 2, wherein: A movable rod (303) is slidably connected in the spring groove (302), and a spring (304) for causing the movable rod (303) to return to its original position is abutted on one side of the movable rod (303).

4. The foldable and rotatable energy storage connection harness fixation structure according to claim 3, wherein: Both of the two movable rods (303) are provided with connecting plates (305) at the top and bottom, and each connecting plate (305) is provided with a toothed block (306).

5. The foldable and rotatable energy storage connection harness fixation structure according to claim 4, characterized in that: The tooth block (306) is inserted into the first tooth groove (105) and extends into the second tooth groove (203), and the base (1) is made of engineering plastic.

6. The foldable and swivelable energy storage connection harness fixation structure according to claim 1, characterized in that: The outer surface of the folding piece (201) is rotatably connected to a rotating seat (204), and a wire harness clamp (205) is installed on the outer surface of the rotating seat (204).

7. The foldable and swivelable energy storage connection harness fixation structure according to claim 1, characterized in that: The back of the mounting base (101) is provided with a strong adhesive surface (102), which is used to fix the base (1) to the mounting surface.

8. The foldable and rotatable energy storage connection harness fixation structure of claim 6, wherein: The folding piece (201) can be folded or unfolded in the folding groove (103) around the rotating shaft (202), and the rotating seat (204) can drive the wire harness clamp (205) to rotate around the folding piece (201).