A kind of salt lake lithium extraction electrode wire arrangement device
Patent Information
- Application Number
- CN202521727399.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-14
- Publication Date
- 2026-09-08
- Estimated Expiration
- 2035-08-14
AI Technical Summary
[0002]在盐湖提锂工艺中,电极是核心组件之一,其通常需要连接大量的导线以进行供电或信号传输,这些导线数量众多、走向复杂,若管理不当,极易发生缠绕、拉扯、甚至断裂,不仅影响设备运行的可靠性和美观性,还可能带来安全隐患,如短路、接触不良等,进而影响提锂效率和设备寿命;
该盐湖提锂电极的理线装置,限位件顶部的导向弧形面,极大地方便了导线的顺畅引入,避免了卡滞,提高了安装效率,限位槽内两侧设置的弧形限位弹片,配合形变槽提供的弹性空间,能够自适应地夹紧不同直径和硬度的导线,提供稳定且柔性的束缚力,有效防止导线松脱、移位或磨损,弱化槽的设计进一步优化了限位弹片根部的弹性,使其更容易发生形变以适应导线,同时避免应力集中导致的断裂风险;
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Figure CN224733367U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of wire management auxiliary technology, specifically relating to a wire management device for lithium extraction electrodes from salt lakes. Background Technology
[0002] In the lithium extraction process from salt lakes, the electrode is one of the core components. It usually needs to be connected to a large number of wires for power supply or signal transmission. These wires are numerous and have complex routes. If not managed properly, they are prone to tangling, pulling, or even breaking. This not only affects the reliability and aesthetics of the equipment, but may also bring safety hazards, such as short circuits and poor contact, which in turn affect the lithium extraction efficiency and equipment life. Currently, the clamps or cable ties used to fix the wires have a single binding force, which is difficult to adapt to wires of different thicknesses or hardnesses. The wires are prone to displacement, loosening, or even wear under vibration or external force. Therefore, this utility model provides a wire management device for lithium extraction electrodes in salt lakes. Utility Model Content
[0003] The purpose of this invention is to provide a wire management device for lithium extraction electrodes from salt lakes, so as to solve the problems mentioned in the background art.
[0004] To achieve the above objectives, this utility model provides the following technical solution: a wire management device for lithium extraction electrodes from salt lakes, comprising two wire management plate bodies for arranging the wires of lithium extraction electrodes from salt lakes, an adjustment component provided on the opposite surfaces of the two wire management plate bodies, and multiple limiting members for clamping wires distributed at equal intervals on the top and bottom of each wire management plate body, a docking groove provided on one side of each wire management plate body, and a docking protrusion provided on the other side of each wire management plate body.
[0005] In a preferred embodiment, each of the limiting members has a limiting groove on its top, and the openings on both sides of the top of the limiting groove are provided with guide arc surfaces.
[0006] In a preferred embodiment, arc-shaped limiting springs are provided on both sides of the inner cavity of the limiting groove, and a deformation groove is provided between each limiting spring and the inner wall of the limiting groove. Weakening grooves are provided at the bottom of both sides of the limiting member.
[0007] In a preferred embodiment, the adjustment assembly includes grooves formed on the opposing surfaces of the two cable management plate bodies, and two sliders are symmetrically slidably connected inside each groove.
[0008] In a preferred embodiment, a connecting rod is rotatably connected between every two staggered sliders, the two connecting rods are distributed in an "X" shape, and a locking bolt is provided at the overlapping part of the two connecting rods.
[0009] In a preferred embodiment, a hexagonal limiting sleeve is provided at the center of the top connecting rod, and a threaded sleeve is connected to the external thread of the bottom end of the locking bolt.
[0010] In a preferred embodiment, the mating groove is adapted to the mating protrusion, and the top and bottom of the inner cavity of the mating groove are provided with arc-shaped grooves, and the top and bottom of the mating protrusion are provided with protrusions adapted to the arc-shaped grooves.
[0011] Compared with the prior art, the beneficial effects of this utility model are: The wire management device of this lithium extraction electrode from salt lakes features a guide arc-shaped surface at the top of the limiting component, which greatly facilitates the smooth introduction of the wires, avoids jamming, and improves installation efficiency. The arc-shaped limiting springs set on both sides of the limiting groove, together with the elastic space provided by the deformation groove, can adaptively clamp wires of different diameters and hardness, providing a stable and flexible binding force, effectively preventing the wires from loosening, shifting, or wearing. The design of the weakening groove further optimizes the elasticity of the root of the limiting spring, making it easier for it to deform to adapt to the wires, while avoiding the risk of breakage caused by stress concentration. The wire management device for this lithium extraction electrode from salt lakes features an adjustment assembly consisting of a sliding groove, a slider, an "X"-shaped cross link, and locking bolts. This allows for convenient and stable adjustment of the spacing between the two wire management plates. This effectively adapts to different electrode spacings or wire bundle volumes, greatly enhancing the device's versatility and applicability. The design of the limiting sleeve and threaded sleeve ensures a stable lock after adjustment, preventing loosening during operation. The wire management device for the lithium extraction electrode from the salt lake features a docking groove on one side and a docking protrusion on the other, ensuring their mutual compatibility. This allows multiple wire management devices to be quickly and accurately spliced together laterally. The arc-shaped groove in the docking groove and the protrusion on the docking protrusion cooperate to form a stable snap-fit connection, enhancing the connection strength and integrity between side-by-side devices and meeting the needs of large-scale wire management. Attached Figure Description
[0012] Figure 1 This is a front view of the structure of this utility model; Figure 2 This is a side view of the structure of this utility model; Figure 3 for Figure 1 Enlarged diagram of point A.
[0013] In the diagram: 1. Cable management board body; 101. Slide groove; 102. Connecting groove; 103. Connecting protrusion; 104. Limiting component; 105. Limiting groove; 106. Guide arc surface; 107. Limiting spring; 108. Deformation groove; 109. Weakening groove; 2. Slider; 3. Connecting rod; 301. Limiting sleeve; 4. Locking bolt; 5. Threaded sleeve. Detailed Implementation
[0014] The present invention will be further described below with reference to the embodiments.
[0015] The following embodiments are used to illustrate the present invention, but should not be used to limit the scope of protection of the present invention. The conditions in the embodiments can be further adjusted according to specific conditions, and simple improvements to the method of the present invention under the premise of the concept of the present invention are all within the scope of protection claimed by the present invention.
[0016] Please see Figures 1-3 This utility model provides a wire management device for lithium extraction electrodes from salt lakes, including two wire management plate bodies 1. An adjustment component is provided on the opposite surface of the two wire management plate bodies 1. The adjustment component includes a sliding groove 101 opened on the opposite surface of the two wire management plate bodies 1. Two sliders 2 are symmetrically slidably connected inside each sliding groove 101. A connecting rod 3 is rotatably connected between every two staggered sliders 2. The two connecting rods 3 are distributed in an "X" shape. A locking bolt 4 is provided at the overlapping part of the two connecting rods 3. A hexagonal limiting sleeve 301 is provided at the center of the top connecting rod 3. A threaded sleeve 5 is connected to the external thread at the bottom end of the locking bolt 4. When it is necessary to adjust the distance between the two cable management plate bodies 1, the locking bolt 4 can be rotated counterclockwise to loosen the two connecting rods 3. Then the connecting rods 3 can be rotated. As the connecting rods 3 rotate, the intersection angle of the two connecting rods 3 changes. Because the connecting rods 3 are rotatably connected between each pair of staggered sliders 2, and the sliders 2 are slidably connected in the slide groove 101, the change in the intersection angle of the connecting rods 3 will cause the sliders 2 to slide in the slide groove 101. For example, if the distance between the two cable management plate bodies 1 is to be increased, the intersection angle of the connecting rods 3 will increase, and the sliders 2 will slide along the slide groove 101 to both sides, thereby pushing the two cable management plate bodies 1 away from each other; conversely, if the distance is to be decreased, the intersection angle of the connecting rods 3 will decrease, and the sliders 2 will slide along the slide groove 101 towards the middle, making the two cable management plate bodies 1 closer to each other. After the two cable management plate bodies 1 are adjusted to the appropriate spacing, tighten the locking bolt 4. The threaded sleeve 5 connected to the external thread at the bottom of the locking bolt 4 will gradually approach and press against the overlapping part of the two connecting rods 3 as the locking bolt 4 is tightened. By increasing the friction, the position of the two connecting rods 3 is fixed, thereby fixing the position of the slider 2 in the slide groove 101, so that the two cable management plate bodies 1 maintain the adjusted spacing and no longer move relative to each other. In this embodiment, the top and bottom of the cable management board body 1 are equally spaced with multiple limiting members 104 for clamping wires. Each limiting member 104 has a limiting groove 105 at its top. The openings on both sides of the top of the limiting groove 105 are provided with guide arc-shaped surfaces 106. Arc-shaped limiting spring pieces 107 are provided on both sides of the inner cavity of the limiting groove 105. A deformation groove 108 is provided between each limiting spring piece 107 and the inner wall of the limiting groove 105. Weakening grooves 109 are provided at the bottom of both sides of the limiting member 104. When it is necessary to organize and fix the wires of the lithium extraction electrode from the salt lake, the operator brings one end of the wire close to the limiting member 104 on the wire management plate body 1. Since the openings on both sides of the top of the limiting groove 105 are provided with guide arc surfaces 106, when the wire contacts the guide arc surfaces 106, it will be smoothly guided into the limiting groove 105 along its smooth curved surface without jamming or scratching, which greatly improves the convenience and smoothness of wire introduction. As the wire gradually penetrates deeper into the limiting groove 105, it comes into contact with the arc-shaped limiting springs 107 on both sides of the inner cavity of the limiting groove 105. Due to the differences in diameter and hardness of different wires, when the wire enters, it will generate an outward compressive force on the arc-shaped limiting springs 107. At this time, the deformation groove 108 provides space for the arc-shaped limiting springs 107 to elastically deform. Under the action of the compressive force, the arc-shaped limiting springs 107 will elastically deform towards the deformation groove 108. Meanwhile, the weakening grooves 109 provided at the bottom of both sides of the limiting member 104 further optimize the elastic performance of the root of the limiting member 104. When the arc-shaped limiting spring 107 is squeezed, the weakening grooves 109 make it easier for the root of the limiting member 104 to undergo slight elastic deformation, thereby better matching the deformation of the arc-shaped limiting spring 107. This allows the entire limiting member 104 to more flexibly adapt to wires of different diameters and hardness. With the elastic deformation of the arc-shaped limiting spring 107, it will generate a reverse elastic force. This elastic force will tightly clamp the wire and firmly fix the wire in the limiting groove 105, preventing the wire from loosening or shifting during subsequent use. Once the wire is clamped by the arc-shaped limiting spring 107, the wire is fixed on the limiting member 104. At this time, the wire is stably restricted in the limiting groove 105, and can withstand a certain degree of vibration and external force without easily falling off or being damaged, thus ensuring the normal operation and management of the lithium extraction electrode wire in the salt lake. The design of the guide arc surface 106 allows the wires to be smoothly introduced into the limiting groove 105, avoiding the need for repeated adjustments due to jamming during the introduction of the wires, greatly shortening the wire installation time and improving the installation efficiency of the entire wire management device. It is especially suitable for lithium extraction electrode scenarios in salt lakes that require a large number of wires to be organized and fixed. The arc-shaped limiting spring 107, in conjunction with the deformation groove 108, enables the limiting member 104 to automatically adjust the clamping force according to the diameter and hardness of different wires. Regardless of whether the wire is thin and flexible or thick and rigid, the arc-shaped limiting spring 107 can provide appropriate binding force through elastic deformation, firmly clamping the wire in the limiting groove 105, effectively preventing the wire from loosening and shifting. The weakening groove 109 further optimizes the elasticity of the root of the limiting member 104, so that the arc-shaped limiting spring 107 can deform more evenly when squeezed by the wire, avoiding the problem of spring damage or uneven clamping force caused by local stress concentration, thereby improving the stability and reliability of wire fixing. Due to the smooth transition of the guide arc surface 106 and the flexible clamping of the arc-shaped limiting spring 107, the wire will not be damaged by sharp edges or excessive compression during the introduction and fixing process, reducing wire wear, extending wire service life, and lowering equipment failure and maintenance costs caused by wire damage. In this embodiment, each cable management board body 1 has a docking groove 102 on one side and a docking protrusion 103 on the other side. The docking groove 102 is adapted to the docking protrusion 103. The top and bottom of the inner cavity of the docking groove 102 are provided with arc-shaped grooves, and the top and bottom of the docking protrusion 103 are provided with protrusions adapted to the arc-shaped grooves. When it is necessary to splice the wire management devices of multiple lithium extraction electrodes from salt lakes to meet the needs of large-scale wire management, the operator first prepares the main body 1 of the wire management board to be spliced, ensuring that they are in an operable position and that the surface is clean and free of debris that may obstruct the splicing. The operator slowly moves one cable management plate body 1 with the mating protrusion 103 towards the other cable management plate body 1 with the mating groove 102. During this approach, the positions of the two cable management plate bodies 1 are carefully adjusted to ensure accurate alignment of the mating protrusion 103 and the mating groove 102. Since the mating groove 102 and the mating protrusion 103 are designed to fit together, after correct alignment, the mating protrusion 103 can smoothly insert into the mating groove 102. As the mating protrusion 103 is gradually inserted into the mating groove 102, the protrusions at the top and bottom of the mating protrusion 103 will contact the arc-shaped grooves at the top and bottom of the inner cavity of the mating groove 102. During the insertion process, the protrusion will slide along the curved surface of the arc-shaped groove. Due to the design of the arc-shaped groove, the protrusion will undergo a certain elastic deformation, allowing the mating protrusion 103 to smoothly enter the interior of the mating groove 102. When the mating protrusion 103 is fully inserted into the mating groove 102, the protrusion will return to its original shape and lock into the arc-shaped groove, forming a stable snap-fit connection that firmly splices the two cable management plate bodies 1 together.
[0017] The working principle and usage process of this utility model are as follows: First, rotate the locking bolt 4 counterclockwise to loosen the connecting rod 3. Rotate the connecting rod 3 to change the cross angle. The slider 2 slides in the slide groove 101 to increase or decrease the distance between the two cable management plate bodies 1. After adjusting appropriately, tighten the locking bolt 4 and the threaded sleeve 5 presses the overlapping part of the connecting rod 3 to fix the position. When one end of the wire is brought close to the limiting member 104, it smoothly enters the limiting groove 105 along the guide arc surface 106 and contacts the arc-shaped limiting spring 107. Under the extrusion pressure, the spring deforms towards the deformation groove 108, and the weakening groove 109 causes the root of the limiting member 104 to deform in conjunction, and the spring generates a reverse elastic force to clamp the wire. During splicing, the mating protrusion 103 of one cable management board body 1 is aligned with the mating groove 102 of the other and inserted. The protrusion on the mating protrusion 103 slides along the arc groove to generate elastic deformation. After being fully inserted, the protrusion recovers and is locked into the arc groove, thus completing the splicing.
[0018] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles of the present invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A wire arranging device for salt lake lithium extraction electrode, comprising two wire arranging plate bodies (1) for arranging the wires of the salt lake lithium extraction electrode, characterized in that: Adjustment components are provided on the opposite surfaces of the two cable management plate bodies (1). Multiple clamping wires are provided at equal intervals on the top and bottom of the cable management plate bodies (1). A docking groove (102) is provided on one side of each cable management plate body (1), and a docking protrusion (103) is provided on the other side of each cable management plate body (1).
2. The device according to claim 1, wherein: Each of the limiting members (104) has a limiting groove (105) on its top, and the openings on both sides of the top of the limiting groove (105) are provided with guide arc surfaces (106).
3. The device according to claim 2, wherein: The inner cavity of the limiting groove (105) is provided with arc-shaped limiting spring pieces (107) on both sides. Each limiting spring piece (107) is provided with a deformation groove (108) between it and the inner wall of the limiting groove (105). The bottom of both sides of the limiting member (104) is provided with a weakening groove (109).
4. The device according to claim 1, wherein: The adjustment assembly includes grooves (101) formed on opposite surfaces of two cable management plate bodies (1), and two sliders (2) are symmetrically connected inside each groove (101).
5. The device according to claim 4, wherein: A connecting rod (3) is rotatably connected between each pair of staggered sliders (2). The two connecting rods (3) are arranged in an "X" shape, and a locking bolt (4) is provided at the overlapping part of the two connecting rods (3).
6. The device according to claim 5, wherein: A hexagonal limiting sleeve (301) is provided at the center of the top connecting rod (3), and a threaded sleeve (5) is connected to the external thread at the bottom end of the locking bolt (4).
7. The device according to claim 1, wherein: The docking groove (102) is adapted to the docking protrusion (103). The top and bottom of the inner cavity of the docking groove (102) are provided with arc-shaped grooves, and the top and bottom of the docking protrusion (103) are provided with protrusions adapted to the arc-shaped grooves.