Electric wire support member
By designing sliding connecting frames and brackets to adjust the wire support components, the problem of uneven wire stress caused by inconsistent pole heights was solved, achieving uniform wire stress distribution and shock absorption protection, and improving the stability and efficiency of wire laying.
Patent Information
- Application Number
- CN202423121148.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-17
- Publication Date
- 2026-02-10
- Estimated Expiration
- 2034-12-17
AI Technical Summary
The inconsistent height of the cable trays on existing utility poles leads to uneven stress on the cables, which can easily cause excessive pressure on the cables at lower cable trays, resulting in damage.
A wire support component was designed, including a sliding connecting frame and a bracket. The position of the bracket can be adjusted by driving a threaded rod. Combined with an arc groove and a shock-absorbing unit, the bracket can be flexibly adjusted and buffered to ensure that the wire is evenly stressed.
This effectively solves the problem of uneven stress on the power lines caused by differences in the height of utility poles, reduces power line damage, and improves the stability and efficiency of power line laying operations.
Smart Images

Figure CN223898942U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of power equipment, and in particular to a wire support component. Background Technology
[0002] In current power transmission and distribution systems, power line laying is a crucial part of power infrastructure construction. During the laying process, power lines are typically supported overhead by utility poles.
[0003] Existing utility poles are all equipped with fixed cable supports. During the cable laying process, due to the different installation conditions of each utility pole, the height of the cable supports on each pole is not completely consistent after installation. This results in the cable being placed at different heights on each cable support, causing uneven stress on the cable. Consequently, the resultant force of gravity on the cable shifts towards the lower cable, causing excessive pressure on the lower cable and leading to damage. Therefore, there is an urgent need for a cable support component that can effectively adjust the height of the cable on the utility pole and reduce damage caused by excessive pressure on the cable. Utility Model Content
[0004] The purpose of this utility model is to provide a wire support component to solve one or more technical problems existing in the prior art, and at least provide a beneficial option or create conditions.
[0005] The solution to the technical problem of this utility model is:
[0006] The wire support components include:
[0007] Erect a pole;
[0008] A connecting frame that can slide and be positioned on the upright in the vertical direction;
[0009] A bracket is installed on the side of the connecting frame away from the upright, and the bracket has an installation gap that runs through it in the front-to-back direction.
[0010] This technical solution has at least the following beneficial effects: the connecting frame that can move on the pole allows the bracket to be flexibly adjusted in the vertical direction, effectively solving the problem of uneven force on the wires after installation caused by inconsistent height of the wire brackets on the utility pole. This adapts to different installation scenarios and wire layout requirements, and provides a basic guarantee for achieving uniform support of the wires and reducing wire damage caused by height differences.
[0011] As a further improvement to the above technical solution, a drive threaded rod is rotatably installed on the pole, and the connecting bracket is threaded to the drive threaded rod. When faced with uneven heights of wire brackets due to differences in the installation of utility poles, the vertical position of the bracket can be precisely changed with a small adjustment range by rotating the drive threaded rod according to actual needs. This ensures that the wires are kept as horizontal as possible on the brackets of each utility pole, and the weight of the wires is evenly distributed, effectively preventing damage to the wires at lower wire brackets due to uneven force.
[0012] As a further improvement to the above technical solution, the bracket includes two single frames arranged in a vertical direction. Both single frames are installed on the connecting frame. One of the single frames can move on the connecting frame in a direction close to or away from the other single frame. An arc-shaped groove extending in a front-back direction is opened on the side of the two single frames that are close to each other. The arc-shaped grooves on the two single frames correspond one-to-one, and the installation gap is formed between the two corresponding arc-shaped grooves.
[0013] The above solution divides the bracket into two relatively movable frames. When dealing with wires of different diameters, the installation gap can be adjusted by changing the distance between the frames, thus flexibly accommodating wires of various specifications. The arc-shaped groove increases the contact area between the wire and the bracket, allowing for a better fit when the wire is placed on the bracket. This reduces localized stress concentration caused by poor contact or shaking. Building upon the solution to uneven wire stress caused by differences in pole height, this further optimizes the support effect for different wires, improving the practicality of the entire wire support structure in complex wire laying operations.
[0014] As a further improvement to the above technical solution, one of the frames is provided with a connecting bolt, which passes through one of the frames and is threaded to the other frame. After the relative positions of the frames are adjusted according to the wire specifications, the connecting bolt can provide a strong fastening force, effectively preventing the frames from shifting relative to each other due to external forces during daily use.
[0015] As a further improvement to the above technical solution, both of the single frames are provided with corresponding shock-absorbing units at the arc-shaped grooves. The shock-absorbing unit includes an arc-shaped plate, a mounting block, and a locking assembly. The side walls of both single frames are provided with mounting grooves. The mounting block can slide and extend in the corresponding mounting groove in the front-back direction. The locking assembly is used to lock the mounting block in the mounting groove. The mounting groove is connected to the mounting gap. The arc-shaped plate is elastically connected to the mounting block. The arc-shaped plate can move in the vertical direction in the mounting gap. The inner arc surface of the arc-shaped plate faces the mounting gap.
[0016] Through the above solution, when external forces such as vibration and wind impact occur, the curved plate can elastically move vertically within the installation gap to absorb and disperse these external forces, preventing them from directly acting on the wires and bracket structure. On the one hand, it protects the wires from wear and breakage caused by excessive vibration or collision; on the other hand, it reduces the impact of external forces on the bracket and the entire support structure, lowering the possibility of deformation and damage to the support structure due to long-term external forces, extending the service life of the wire support structure, and indirectly maintaining the stability of the wire support system. This also plays a supplementary role in solving the problem of wire damage caused by uneven stress.
[0017] As a further improvement to the above technical solution, the locking assembly includes a locking rod and a driving member. The locking rod can slide in the left and right direction within the frame. The driving member is used to drive the locking rod to slide in the frame towards the mounting block. The locking rod is located on the side of the mounting block away from the mounting gap. A locking block is provided on the locking rod. The mounting block has a slot. The locking block can slide to engage with the slot.
[0018] Through the above technical solution, the locking rod in the locking component slides towards the mounting block under the action of the driving component, so that the locking block engages with the slot, thereby locking the mounting block of the shock absorber unit. This locking mechanism ensures that the mounting block is always in the set position under different environmental conditions and will not be displaced due to external interference. This ensures that the arc plate of the shock absorber unit can work stably within the preset elastic range, continuously and effectively providing buffering and shock absorption for the wire. The stable shock absorption effect helps maintain the force balance of the wire on the bracket, reducing the damage caused by sudden changes in force on the wire due to vibration or external impact. This is consistent with the core problem of solving the damage of wire due to uneven force.
[0019] As a further improvement to the above technical solution, the driving component is the connecting bolt, and a guide surface is provided on one end of the locking rod near the connecting bolt. The distance between the guide surface and the other end of the locking rod gradually increases along the installation direction of the connecting bolt, and the guide surface is located on the installation path of the connecting bolt.
[0020] With the above scheme, when installing the wires, the mounting block is first slid into the mounting groove and temporarily stabilized in the frame. Then, the worker places the wire in the installation gap and tightens the connecting bolts. After the connecting bolts are inserted into each frame, they abut against the guide surface of the drive rod. Under the action of the guide surface, the drive rod is driven to move in the left and right directions, thereby driving the locking block set on the drive rod to move until the locking block is inserted into the slot of the mounting block, forming a lock on the mounting block that only moves in the front and back directions. This design simplifies the locking steps of the vibration damping unit mounting block, reduces the operational complexity and time cost when installing wire support components on the utility pole, and the convenient and quick installation process helps to improve the overall efficiency of wire laying operations.
[0021] As a further improvement to the above technical solution, the locking component is a locking bolt, and the locking bolt corresponds one-to-one with the mounting block. One end of the locking bolt that passes through the frame is threaded to the corresponding mounting block.
[0022] By using locking bolts as the locking component, this locking method can be selected to fix the mounting block under different construction environments, operation requirements, or personal operating habits, ensuring the normal operation of the vibration damping unit and maintaining effective protection of the wires.
[0023] As a further improvement to the above technical solution, a dovetail block extending in the vertical direction is provided on the side of the single frame that slides relative to the other single frame near the connecting frame. A dovetail groove is provided on the connecting frame, and the dovetail block is slidably installed in the dovetail groove.
[0024] The dovetail block and dovetail groove provide a precise and stable sliding path for the single frame when adjusting the installation gap to accommodate the wire diameter. This limits unnecessary swaying or offset of the single frame in other directions, ensuring the accuracy and reliability of the single frame during adjustment.
[0025] As a further improvement to the above technical solution, a reinforcing plate is provided on the connecting frame, and the side of the reinforcing plate away from the connecting frame is connected to the single frame that is fixed relative to the other single frame.
[0026] A reinforcing plate is installed between the connecting frame and the single frame, which significantly enhances the connection strength between the two. Under the long-term placement of the wires and the influence of gravity and various external forces, the reinforcing plate can effectively distribute and bear these forces, preventing deformation, breakage, and other issues at the connection point. Attached Figure Description
[0027] To more clearly illustrate the technical solutions in the embodiments of this utility model, the accompanying drawings used in the description of the embodiments will be briefly explained below. Obviously, the described drawings are only a part of the embodiments of this utility model, and not all of them. Those skilled in the art can obtain other design schemes and drawings based on these drawings without creative effort.
[0028] Figure 1 This is a schematic diagram of the overall structure of the wire support component in Embodiment 1 of this utility model;
[0029] Figure 2 This is a front view of the wire support component of Embodiment 1 of this utility model.
[0030] Figure 3 This is a front view of the wire support component of Embodiment 2 of this utility model;
[0031] Figure 4 This is a side view of the wire support component of Embodiment 1 of this utility model.
[0032] Figure Labels
[0033] 1. Upright pole; 2. Connecting frame; 21. Dovetail groove; 22. Reinforcing rod; 23. Reinforcing plate; 24. Drive threaded rod; 3. Bracket; 301. Installation gap; 31. Single frame; 311. Arc groove; 32. Mounting groove; 33. Locking bolt; 34. Dovetail block; 35. Connecting bolt; 4. Vibration damping unit; 41. Arc plate; 42. Mounting block; 43. Slide rod; 44. Elastic element; 5. Locking rod; 6. Clamping block; 7. Return spring. Detailed Implementation
[0034] The embodiments of this utility model are described in detail below. Examples of these embodiments are shown in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are only used to explain this utility model, and should not be construed as limiting this utility model.
[0035] In the description of this utility model, it should be understood that the directional descriptions, such as up, down, front, back, left, right, etc., indicate the directional or positional relationship based on the directional or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this utility model and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this utility model.
[0036] In the description of this utility model, "several" means one or more, "multiple" means two or more, "greater than," "less than," and "exceeding" are understood to exclude the stated number, while "above," "below," and "within" are understood to include the stated number. If "first" or "second" is used in the description, it is only for the purpose of distinguishing technical features and should not be construed as indicating or implying relative importance, or implicitly indicating the number of indicated technical features, or implicitly indicating the order of the indicated technical features.
[0037] In the description of this utility model, unless otherwise explicitly defined, terms such as "setting," "installation," and "connection" should be interpreted broadly, and those skilled in the art can reasonably determine the specific meaning of the above terms in this utility model in conjunction with the specific content of the technical solution.
[0038] In existing utility pole installation operations, geological issues and measurement errors often result in the brackets on the utility poles not being at the same horizontal height after installation. This causes uneven stress on the wires placed on the brackets, with the resultant force on the wires between two poles shifting towards the lower wire. The lower wire experiences greater pressure and is more prone to damage. Therefore, this application provides a wire support component that can adjust the height of the brackets on the utility pole, thereby ensuring that the wires are at a consistent horizontal height and reducing wire damage.
[0039] Reference Figure 1 This application provides a wire support component, which includes:
[0040] Upright pole 1 extends in the vertical direction, and an adjustment frame is fitted on upright pole 1;
[0041] Connecting frame 2 can slide and be positioned on the adjusting frame in the vertical direction;
[0042] The bracket 3 is installed on the side of the connecting frame 2 away from the adjusting frame. The bracket 3 is provided with an installation gap 301 that runs through the front and back direction. The installation gap 301 is used to place the wire.
[0043] As a further preferred embodiment, the adjustment frame is provided with an adjustment groove extending in the vertical direction. An opening is provided on the side of the adjustment groove away from the upright 1. The connecting frame 2 is installed in the adjustment groove through the opening. A drive threaded rod 24 is rotatably installed in the adjustment groove. The drive threaded rod 24 extends in the vertical direction. The upward end of the drive threaded rod 24 passes through the adjustment groove and is connected to a nut.
[0044] After installing each wire support component in its designated position, the worker first uses equipment such as a laser level to determine the height of the brackets 3 on two adjacent support components. If it is found that the brackets 3 on two adjacent support components are not at the same horizontal height, simply turn the drive threaded rod 24 on the adjusting frame to drive the connecting frame 2 to move the brackets 3 relative to the upright 1 on the adjusting frame until the brackets 3 on two adjacent support components are at the same horizontal height. Then, stop turning the drive threaded rod 24. The worker can then adjust the brackets 3 on two adjacent support components in sequence until all brackets 3 are at the same horizontal height. Finally, the wire is passed through the brackets 3 on each support component to complete the wire installation.
[0045] Further, as a preferred embodiment, refer to Figure 1 and Figure 2 The adjustment groove is also equipped with a pair of reinforcing rods 22. The two reinforcing rods 22 are located on both sides of the drive threaded rod 24 in the left and right directions. The two ends of each reinforcing rod 22 are connected to the two inner walls of the adjustment groove in the up and down directions. The connecting frame 2 is sleeved on the reinforcing rods 22. The vertically arranged reinforcing rods 22 can enhance the connection stability between the connecting frame 2 and the adjustment frame. At the same time, the two reinforcing rods 22 are arranged on both sides of the drive threaded rod 24 to fix the sliding path of the connecting frame 2 and enhance the sliding stability of the connecting frame 2.
[0046] Reference Figure 2 The bracket 3 includes two single frames 31 arranged in the vertical direction. Both single frames 31 are installed on the side of the connecting frame 2 away from the adjusting frame. The upper single frame 31 can slide on the connecting frame 2 in the direction of approaching or moving away from the lower single frame 31. The lower single frame 31 is fixedly connected to the connecting frame 2. Both single frames 31 have multiple arc-shaped grooves 311 extending in the front-back direction on the side that is close to each other. The multiple arc-shaped grooves 311 on the same single frame 31 are arranged in the left-right direction. The arc-shaped grooves 311 on the two single frames 31 correspond one-to-one, and an installation gap 301 is formed between the two corresponding arc-shaped grooves 311.
[0047] When installing electrical wires, various specifications of wires are usually used. After the wire support component of this application is installed, the worker can first pass the wire through the installation gap 301 in the bracket 3, and then move the single frame 31 that can move relative to the connecting frame 2 to change the size of the installation gap 301, so that the wire can pass smoothly through the installation gap 301. After placement, the single frame 31 that can move relative to the connecting frame 2 is driven to move closer to another single frame 31 until the movable single frame 31 presses against the wire placed in the installation gap 301. At this time, a stable clamp is formed between the two single frames 31 for the wire. Through this scheme, the bracket 3 of the support component of this application can freely change the size of the installation gap 301, thereby flexibly accommodating wires of various specifications. Furthermore, the arc groove 311 increases the contact area between the wire and the bracket 3, so that the wire can fit better when placed on the bracket 3, reducing the phenomenon of local stress concentration caused by poor contact or shaking, and further improving the practicality of the entire wire support component in wire laying operations.
[0048] Further, as a preferred embodiment, refer to Figure 1 A dovetail block 34 is provided on the side of the upper frame 31 near the connecting frame 2. The dovetail block 34 extends in the vertical direction. A dovetail groove 21 extending in the vertical direction is opened on the side of the connecting frame 2 away from the adjusting frame. The dovetail block 34 is slidably installed in the dovetail groove 21. Through the cooperation between the dovetail block 34 and the dovetail groove 21, when the single frame 31 moves relative to adjust the installation gap 301 to adapt to the wire diameter, it provides a precise and stable sliding path for the single frame 31, restricts unnecessary shaking or offset of the single frame 31 in other directions, and ensures the accuracy and reliability of the single frame 31 during the adjustment process.
[0049] As a further preferred embodiment, the connecting frame 2 is provided with a reinforcing plate 23. The side of the reinforcing plate 23 away from the connecting frame 2 is connected to a single frame 31 fixed relative to the connecting frame 2. Specifically, the reinforcing plate 23 is a right-angled triangle. One right-angled side of the reinforcing plate 23 is connected to the connecting frame 2, and the other right-angled side is connected to the single frame 31 fixed relative to the connecting frame 2. Through the stabilizing property of the triangle, the single frame 31 located below and fixed relative to the connecting frame 2 is supported, which significantly enhances the connection strength between the two. Under the long-term placement of the wire and the application of gravity and various external forces, the reinforcing plate 23 can effectively disperse and bear these forces, prevent deformation and breakage of the connection part, and ensure the overall structural integrity and stability of the bracket 3.
[0050] Reference Figure 1 , Figure 2 and Figure 3Both single frames 31 have connection holes. One single frame 31 is equipped with a connecting bolt 35, and the connection hole of the other single frame 31 is provided with an internal thread. The connecting bolt 35 extends in the vertical direction and passes through the connection hole of one single frame 31, and is threaded to the other single frame 31. After the wire is placed into the installation gap 301, the connecting bolt 35 is tightened to connect the two single frames 31. The movable single frame 31 moves on the connecting frame 2 toward the fixed single frame 31 until the movable single frame 31 presses the wire and fixes the wire in the installation gap 301. The connecting bolt 35 can provide a strong fastening force, effectively preventing the single frames 31 from relative displacement due to external forces such as wind and vibration during daily use. This robust connection method ensures the overall stability of the bracket 3, enabling the bracket 3 to continuously and stably support the wires and preventing changes in the stress state of the wires due to loosening of the bracket 3 structure. At the same time, the use of simple connecting bolts 35 as connecting components facilitates the installation of support components by workers.
[0051] As a further preferred embodiment, two connecting bolts 35 are provided, with the two connecting bolts 35 located at both ends of the single frame 31 in the left-right direction, and the two connecting bolts 35 connect the single frame 31 from both sides, thereby improving the stability of the connection of the single frame 31.
[0052] Reference Figure 1 , Figure 2 and Figure 3 Both single frames 31 are provided with multiple corresponding shock-absorbing units 4 at multiple arc-shaped grooves 311. The shock-absorbing unit 4 includes an arc-shaped plate 41 and a mounting block 42. Multiple mounting grooves 32 extending in the front-back direction are opened on the side wall of both single frames 31 away from the connecting frame 2. One mounting groove 32 corresponds to one shock-absorbing unit 4. The mounting groove 32 is connected to the mounting gap 301. The mounting block 42 can slide and be positioned in the front-back direction in the corresponding mounting groove 32. The arc-shaped plate 41 of the same shock-absorbing unit 4 is elastically connected to the mounting block 42 of the same shock-absorbing unit 4. The outer arc surface of the arc-shaped plate 41 faces the mounting block 42 of the same shock-absorbing unit 4, and the inner arc surface faces the mounting gap 301. Through the shock-absorbing unit 4, when there is external vibration, wind impact, etc., the arc-shaped plate 41 can move elastically in the up-down direction in the mounting gap 301 to absorb and disperse these external forces and prevent external forces from directly acting on the wires and bracket 3 structure. On the one hand, it protects the wires from wear, breakage and other damage caused by excessive vibration or collision. On the other hand, it reduces the impact of external forces on bracket 3 and the entire support component, and reduces the possibility of deformation and damage to the support component due to long-term external force.
[0053] Specifically, the shock absorber unit 4 also includes a slide rod 43 and an elastic element 44. Multiple mounting blocks 42 have sliding grooves extending in the vertical direction and close to the mounting gap 301. The slide rod 43 of the same shock absorber unit 4 is slidably installed in the sliding groove of the mounting block 42 of the same shock absorber unit 4. One end of the elastic element 44 is connected to the slide rod 43 of the same shock absorber unit 4, and the other end is connected to the bottom of the sliding groove of the mounting block 42 of the same shock absorber unit 4. When the elastic element 44 is in its natural state, it drives the slide rod 43 to move away from the bottom of the sliding groove. The end of the slide rod 43 away from the bottom of the sliding groove extends out of the frame 31 in the vertical direction. The outer arc surface of the arc plate 41 is connected to the end of the slide rod 43 that extends into the mounting gap 301.
[0054] Through the cooperation of the slide bar 43 and the elastic element 44, the arc plate 41 can slide along a fixed path within the installation gap 301, thereby providing stable shock absorption for the wire. Furthermore, the arc surface of the arc plate 41 reduces the offset of the wire in the left and right directions, ensuring that the wire is always within the installation gap 301, further improving the shock absorption effect of the shock absorption unit 4 on the wire.
[0055] As a further preferred embodiment, under prolonged use, the elastic element 44 within the shock-absorbing unit 4 may experience elasticity attenuation. For example, the elastic element 44 within the lower frame 31 may undergo a certain degree of plastic deformation after being subjected to the weight of the wire for an extended period, reducing the shock-absorbing effect of the shock-absorbing unit 4. Conversely, the elastic element 44 within the shock-absorbing unit 4 located on the upper frame 31 will also undergo a certain degree of plastic deformation due to the weight of the arc-shaped block. However, the deformation directions of the upper and lower shock-absorbing units 4 are opposite. Therefore, when workers inspect the wire support components, the shock-absorbing units 4 on each frame 31 can be removed, and the shock-absorbing units 4 located on the upper and lower sides of the installation gap 301 can be swapped to improve the support and shock-absorbing effect of the shock-absorbing unit 4 below the installation gap 301 on the wire, extend the service life of the shock-absorbing unit 4, and improve the utilization rate of the shock-absorbing unit 4 components.
[0056] Multiple shock absorber units 4 include locking components. The locking components are used to lock the mounting block 42 in the mounting groove 32 after it is installed in place. The locking components can lock the mounting block 42 that has slid into the mounting groove 32, thereby further improving the installation stability of the shock absorber unit 4 in the single frame 31.
[0057] Reference Figure 1 and Figure 2In some embodiments, the locking assembly includes locking bolts 33, and multiple locking bolts 33 are provided. Each locking bolt 33 corresponds to a multiple mounting block 42. The multiple locking bolts 33 are rotatably installed on the side of the single frame 31 away from the installation gap 301. One end of the multiple locking bolts 33 that passes through the single frame 31 is threaded to the mounting block 42. After the mounting block 42 is installed in place, the locking bolts 33 are aligned with the corresponding mounting block 42 on the single frame 31 and screwed into the single frame 31, thereby locking the mounting block 42 onto the single frame 31. This locking method has a simple structure and is easy for workers to operate.
[0058] Reference Figure 3 In other embodiments, the locking assembly includes a locking rod 5 and a driving member, dividing multiple shock-absorbing units 4 within the same frame 31 into two groups. The two groups of shock-absorbing units 4 within the same frame 31 are arranged at intervals along the left-right direction. Each group of shock-absorbing units 4 corresponds to one locking rod 5. Both frames 31 have multiple first locking slots extending along the left-right direction, with each group of shock-absorbing units 4 corresponding to one first locking slot. The locking rod 5 is installed in the corresponding first locking slot, and the driving member is used to drive the locking rod 5 to move along the left-right direction towards the same locking slot within the first locking slot. The mounting block 42 of another set of shock absorber units 4 on the single frame 31 slides in the direction. Both single frames 31 have multiple second locking slots on the side wall of the first locking slot. Multiple locking rods 5 are connected to multiple locking blocks 6. Multiple locking blocks 6 on a locking rod 5 correspond one-to-one with multiple mounting blocks 42 of a set of shock absorber units 4. The locking blocks 6 are installed in the second locking slot, which is connected to the mounting slot 32. Multiple mounting blocks 42 have slots extending in the left and right direction. The locking blocks 6 can slide with the locking rod 5 to engage with the corresponding mounting block 42 slot.
[0059] By moving the locking block 6 in the left-right direction and engaging it in the slot, the mounting block 42, which can move in the front-back direction, is locked, making it difficult for the mounting block 42 to move in the front-back direction within the mounting slot 32, thus achieving a stable connection between the shock-absorbing unit 4 and the frame 31.
[0060] Specifically, the driving component includes connecting bolts 35. Two sets of shock-absorbing units 4 arranged along the left-right direction on each frame 31 correspond one-to-one with two connecting bolts 35. Two locking rods 5 on the same frame 31 have their ends facing away from each other, pointing towards the corresponding connecting bolts 35. Guide surfaces are provided at the ends of the two locking rods 5 facing the corresponding connecting bolts 35. The distance between the guide surfaces and the other ends of the locking rods 5 gradually increases along the installation direction of the corresponding connecting bolts 35. The connecting hole connects to the first locking groove. The locking rods 5 can extend until the guide surfaces are located on the installation path of the connecting bolts 35. The connecting bolts 35 are inserted through the connecting hole... After being inserted into one of the single frames 31, it first abuts against the guide surface of the locking rod 5 on the single frame 31. Through the guiding action of the guide surface, the locking rod 5 is driven to move towards the other locking rod 5, thereby driving the locking block 6 to slide in the second locking groove until the locking block 6 is engaged in the groove, locking the mounting block 42 in the mounting groove 32. This design simplifies the locking steps of the mounting block 42 of the shock absorber unit 4, reduces the operational complexity and time cost when installing wire support components, and the convenient and quick installation process helps to improve the overall efficiency of wire laying operations, while ensuring that the shock absorber unit 4 can play its role in a timely and effective manner.
[0061] As a further preferred embodiment, a return spring 7 is provided at the end of the first locking groove away from the connecting hole. One end of the return spring 7 is connected to the bottom of the first locking groove, and the other end is connected to the locking rod 5. When the return spring 7 is in its natural state, it drives the locking rod 5 to move towards the connecting hole. When the worker needs to remove the mounting block 42, he first unscrews the connecting bolt 35. At this time, under the action of the return spring 7, the locking rod 5 drives the locking block 6 to slide, and the locking block 6 returns to the second locking groove, releasing the lock on the mounting block 42. Then the worker can remove the mounting block 42 from the mounting groove 32.
[0062] The preferred embodiments of the present invention have been described in detail above, but the present invention is not limited to the described embodiments. Those skilled in the art can make various equivalent modifications or substitutions without departing from the spirit of the present invention, and these equivalent modifications or substitutions are all included within the scope defined by the claims of this application.
Claims
1. A wire support component, characterized in that, include: Pole (1); A connecting frame (2) that can slide and be positioned on the upright (1) in the vertical direction; A bracket (3) is installed on the side of the connecting frame (2) away from the upright (1), and the bracket (3) has an installation gap (301) that runs through the front and rear directions; A drive threaded rod (24) is rotatably mounted on the upright (1), and the connecting frame (2) is threadedly connected to the drive threaded rod (24); The bracket (3) includes two single frames (31) arranged in the vertical direction. Both single frames (31) are installed on the connecting frame (2). One of the single frames (31) can move on the connecting frame (2) in the direction of approaching or moving away from the other single frame (31). Both single frames (31) have arc-shaped grooves (311) extending in the front-back direction on the side that is close to each other. The arc-shaped grooves (311) on the two single frames (31) correspond one-to-one, and the installation gap (301) is formed between the two corresponding arc-shaped grooves (311).
2. The wire support member according to claim 1, characterized in that, One of the frames (31) is provided with a connecting bolt (35) extending in the vertical direction, the connecting bolt (35) passing through one of the frames (31) and threadedly connected to the other frame (31).
3. The wire support member according to claim 2, characterized in that, Both of the single frames (31) are provided with corresponding shock-absorbing units (4) at the arc-shaped groove (311). The shock-absorbing unit (4) includes an arc-shaped plate (41), a mounting block (42) and a locking component. The side walls of both single frames (31) are provided with mounting grooves (32) extending in the front-back direction. The mounting block (42) is installed in the corresponding mounting groove (32). The locking component is used to lock the mounting block (42) in the mounting groove (32). The mounting groove (32) is connected to the mounting gap (301). The arc-shaped plate (41) is elastically connected to the mounting block (42). The arc-shaped plate (41) can move in the mounting gap (301) in the up-down direction. The inner arc surface of the arc-shaped plate (41) faces the mounting gap (301).
4. The wire support member according to claim 3, characterized in that, The locking assembly includes a locking rod (5) and a driving member. The locking rod (5) can slide in the left and right direction within the frame (31). The driving member is used to drive the locking rod (5) to slide in the frame (31) towards the mounting block (42). The locking rod (5) is located on the side of the mounting block (42) away from the mounting gap (301). A locking block (6) is provided on the locking rod (5). The mounting block (42) has a slot. The locking block (6) can slide with the locking rod (5) to engage with the slot.
5. The wire support member according to claim 4, characterized in that, The driving component includes the connecting bolt (35), and a guide surface is provided on one end of the locking rod (5) near the connecting bolt (35). The distance between the guide surface and the other end of the locking rod (5) gradually increases along the installation direction of the connecting bolt (35), and the guide surface is located on the installation path of the connecting bolt (35).
6. The wire support member according to claim 3, characterized in that, The locking assembly includes a locking bolt (33), which corresponds one-to-one with the mounting block (42). One end of the locking bolt (33) that passes through the single frame (31) is threaded to the corresponding mounting block (42).
7. The wire support member according to claim 1, characterized in that, The single frame (31) that slides relative to the connecting frame (2) is provided with a dovetail block (34) extending in the vertical direction on the side close to the connecting frame (2). The connecting frame (2) is provided with a dovetail groove (21), and the dovetail block (34) is slidably installed in the dovetail groove (21).
8. The wire support member according to claim 1, characterized in that, A reinforcing plate (23) is provided on the connecting frame (2), and the side of the reinforcing plate (23) away from the connecting frame (2) is connected to the single frame (31) which is fixed relative to the connecting frame (2).