A kind of anti-corrosion cable fixing structure for power transmission and transformation project
By designing a fixed frame and snap-fit components, the problem of existing cable fixing structures being unable to evenly bear the weight of cables and adapt to cables of different specifications is solved. This enables layered cable mounting and stable connection, improving the service life and engineering adaptability of cables.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- NANJING XINTANG POWER ENG CO LTD
- Filing Date
- 2025-07-09
- Publication Date
- 2026-04-17
AI Technical Summary
Existing cable fixing structures are unable to evenly bear the weight of the cables, resulting in excessive local stress. Furthermore, they lack adaptability to different specifications and quantities of cables, failing to meet diverse engineering needs.
The fixed frame design includes a rear plate, top plate, bottom plate, front movable plate, and front fixed plate. Through the cooperation of snap-fit components and bending plates, it is divided into multiple mounting areas. The unique design of the snap-fit components and bending plates enables layered mounting and stable connection of cables.
It enables layered mounting of cables of different specifications and quantities, enhances connection stability, avoids excessive local stress on cables, extends cable service life, and provides a reliable support system.
Smart Images

Figure CN224138692U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the technical field of cable fixing structure. Specifically, it relates to a corrosion-resistant cable fixing structure for power transmission and transformation projects. Background Technology
[0002] In the field of power transmission and transformation engineering, the stable fixing of cables is a crucial link in ensuring the safety and reliability of power transmission. Current technologies typically employ a single fixing method, such as directly binding the cable to a pole or wall. This method not only struggles to evenly distribute the cable weight, easily leading to excessive localized stress and cable indentation, thus shortening the cable's lifespan, but also lacks adaptability to different specifications and quantities of cables, as well as the need for categorized storage, failing to meet diverse engineering requirements. With the continuous expansion of power transmission and transformation projects and the increasing demands for power transmission stability, a cable fixing structure capable of effectively bearing the cable weight and providing reliable support is needed. Utility Model Content
[0003] The technical problem to be solved by this utility model is to overcome the shortcomings of the prior art and provide a corrosion-resistant cable fixing structure for power transmission and transformation projects that can overcome or at least partially solve the above problems.
[0004] To solve the above-mentioned technical problems, the basic concept of the technical solution adopted by this utility model is as follows: a corrosion-resistant cable fixing structure for power transmission and transformation projects, comprising: a fixing frame having a rear plate, a top plate, a bottom plate, a front movable plate, and a front fixed plate, forming a mounting area; a snap-fit assembly for connecting the front movable plate and the front fixed plate; and two bending plates, one and two bending plates, symmetrically arranged on the rear plate, the first and the second bending plates respectively moving towards the front fixed plate and the front movable plate, and dividing the mounting area into partition one, partition two, and partition three.
[0005] Preferably, the buckle assembly includes a second buckle groove and a second recessed groove connected on the front fixed plate, and a bent plate and a buckle plate located on the front movable plate. The width of the buckle plate is greater than the width of the bent plate, the width of the bent plate is less than the width of the second buckle groove, the width of the buckle plate is greater than the width of the second recessed groove, the width of the buckle plate is less than the width of the second buckle groove, and the buckle plate is in a raised shape.
[0006] Preferably, the bending plate is provided with a bending portion, which is located above the raised plate.
[0007] Preferably, the bending plate is provided with an arc-shaped portion and an L-shaped bending portion, and a limiting portion is formed between the L-shaped bending portion and the rear plate.
[0008] Preferably, the front end of the second bending plate is provided with a groove, the front end of the second bending plate is provided with a second bending part, and the front movable plate is symmetrically provided with a connected slot 1 and a recessed groove 1, and the groove corresponds to the slot 1 and the recessed groove 1.
[0009] Preferably, the front movable plate is symmetrically provided with horizontal plates, which are placed horizontally in the partition. The horizontal plates are provided with multiple arc-shaped portions, and the symmetrical horizontal plates are located on both sides of the front movable plate.
[0010] Preferably, a rear pressure plate is provided on the rear plate, and a hanging hole is provided on the rear pressure plate. The rear pressure plate is recessed on the rear plate, and a second opening is provided on the front movable plate.
[0011] Preferably, the rear plate has outward flanges on both sides, and the rear plate forms ventilation gaps through the outward flanges and the rear pressure plate.
[0012] Preferably, the rear plate has symmetrical openings.
[0013] By adopting the above technical solution, the present invention has the following beneficial effects compared with the prior art:
[0014] The anti-corrosion cable fixing structure used in this power transmission and transformation project, through the design of the fixing frame and bending plate one and bending plate two, divides the mounting area into multiple areas. Combined with the horizontal plate and arc-shaped part two structures, it can realize the layered mounting of cables of different specifications and quantities, which greatly improves the adaptability to diverse engineering needs.
[0015] The corrosion-resistant cable fixing structure used in this power transmission and transformation project features a unique design of snap-fit components, which ensures a firm connection between the front movable plate and the front fixed plate and facilitates disassembly. At the same time, the fixing frame has a certain width, which can evenly bear the weight of the cable, avoid excessive local stress on the cable, and effectively extend the service life of the cable.
[0016] 3. The anti-corrosion cable fixing structure used in this power transmission and transformation project has the following characteristics: When a cable is hung on the bending plate, the front end of the bending plate will press down on the clamping plate when the bending plate is pressed down by gravity, so that the clamping plate is stressed. This will enhance the connection stability between the front movable plate and the front fixed plate when the bending plate is stressed, making the fixing frame more stable during use.
[0017] 4. The anti-corrosion cable fixing structure used in this power transmission and transformation project has a compact and reasonable overall structural design. The components work together to form a stable support system, providing reliable support for the cables.
[0018] The specific embodiments of this utility model will be described in further detail below with reference to the accompanying drawings. Attached Figure Description
[0019] In the attached diagram:
[0020] Figure 1 This is a three-dimensional structural diagram of a corrosion-resistant cable fixing structure for power transmission and transformation engineering proposed in this utility model;
[0021] Figure 2 This utility model proposes a corrosion-resistant cable fixing structure for power transmission and transformation projects. Figure 1 Enlarged view of point A in the middle;
[0022] Figure 3 This utility model proposes a corrosion-resistant cable fixing structure for power transmission and transformation projects. Figure 1 Enlarged view of point B in the middle;
[0023] Figure 4 This is a schematic diagram of the rear pressure plate and the horizontal plate of a corrosion-resistant cable fixing structure for power transmission and transformation engineering proposed in this utility model.
[0024] Figure 5 This is a schematic diagram of the bending plate one and bending plate two of the anti-corrosion cable fixing structure for power transmission and transformation engineering proposed in this utility model;
[0025] Figure 6 This is a top view of a corrosion-resistant cable fixing structure for power transmission and transformation engineering proposed in this utility model;
[0026] Figure 7 This is a schematic diagram of the arc-shaped part and the limiting part of the fixing structure for corrosion-resistant cables used in power transmission and transformation projects proposed in this utility model;
[0027] Figure 8 This is a schematic diagram of the slot for fixing a corrosion-resistant cable in a power transmission and transformation project, as proposed in this utility model.
[0028] In the diagram: 1. Fixed frame;
[0029] 11. Rear plate; 111. Rear pressure plate; 112. Opening 1; 113. Hanging hole;
[0030] 114. Bending plate one; 1141. Bending section one; 1142. Arc-shaped section one; 1143. Limiting section; 1144. L-shaped bending section;
[0031] 115. Bending plate two; 1151. Groove; 1152. Bending section two;
[0032] 12. Top slab; 13. Bottom slab;
[0033] 14. Front movable plate; 141. Bent plate; 142. Clamping plate; 143. Opening two; 144. Slot one; 1441. Sunk one; 145. Horizontal plate; 1451. Arc-shaped part two; 146. Cutting groove;
[0034] 15. Front fixing plate; 151. Slot 2; 152. Recessed groove 2;
[0035] 2. Mounting area; 21. Separator 1; 22. Separator 2; 23. Separator 3;
[0036] 3. Outward flange; 31. Ventilation seam. Detailed Implementation
[0037] To make the objectives, technical solutions, and advantages of the embodiments of this utility model clearer, the technical solutions in the embodiments will be clearly and completely described below with reference to the accompanying drawings. The following embodiments are used to illustrate this utility model, but are not intended to limit the scope of this utility model.
[0038] Example 1: Refer to Figures 1-8 A corrosion-resistant cable fixing structure for power transmission and transformation projects is disclosed. Its core lies in the coordinated design of the fixing frame 1 and the clamping assembly, including: a fixing frame 1 with a rear plate 11, a top plate 12, a bottom plate 13, a front movable plate 14, and a front fixed plate 15, forming a mounting area 2 for cable mounting; a clamping assembly for connecting the front movable plate 14 and the front fixed plate 15; and two bending plates, one 114 and the other 115, symmetrically arranged on the rear plate 11, which are respectively positioned close to the front fixed plate 15 and the front movable plate 14, dividing the mounting area 2 into partition 21, partition 22, and partition 23. The fixing frame 1 is coated with an anti-corrosion layer and uses anti-corrosion materials and processes, reducing the risk of metal components being corroded by rainwater, moisture, and corrosive gases, thus reducing safety hazards and subsequent maintenance costs, and meeting the increasingly stringent requirements for power transmission stability in power transmission and transformation projects.
[0039] The snap-fit assembly includes a second snap-fit groove 151 and a second recessed groove 152 connected on the front fixed plate 15, and a bent plate 141 and a snap-fit plate 142 located on the front movable plate 14. The width of the snap-fit plate 142 is greater than the width of the bent plate 141, the width of the bent plate 141 is less than the width of the second snap-fit groove 151, the width of the snap-fit plate 142 is greater than the width of the second recessed groove 152, the width of the snap-fit plate 142 is less than the width of the second snap-fit groove 151, and the snap-fit plate 142 is in a raised shape.
[0040] The bending plate 114 is provided with a bending part 1141, which is located above the raised plate 142.
[0041] The bending plate 114 is provided with an arc-shaped part 1142 and an L-shaped bending part 1144, and a limiting part 1143 is formed between the L-shaped bending part 1144 and the back plate 11.
[0042] The front end of the bending plate 115 has a groove 1151 and a bending part 1152. The front movable plate 14 has symmetrically connected slots 144 and recessed grooves 1441, and the groove 1151 corresponds to the slots 144 and recessed grooves 1441.
[0043] A horizontal plate 145 is symmetrically arranged on the front movable plate 14. The horizontal plate 145 is horizontally placed in the partition 22. Multiple arc-shaped parts 1451 are opened on the horizontal plate 145. The symmetrical horizontal plates 145 are located on both sides of the front movable plate 14. The distance between the symmetrical horizontal plates 145 is greater than the width of the front fixed plate 15. This ensures that when the front movable plate 14 is opened at a large angle, the horizontal plate 145 will not collide with the front fixed plate 15.
[0044] A rear pressure plate 111 is provided on the rear plate 11, and a hanging hole 113 is provided on the rear pressure plate 111. The rear pressure plate 111 is recessed on the rear plate 11, and an opening 143 is provided on the front movable plate 14.
[0045] The rear plate 11 has symmetrical openings 112. The openings 112 are another embodiment for connecting and fixing the frame 1. Bolts can be passed through the openings 112 to connect with the external connecting frame, realizing multiple connection methods between the fixing frame 1 and the mounting surface.
[0046] During installation, screws are installed on the wall, wooden board, utility pole, or other required locations. Then, the hanging holes 113 on the rear pressure plate 111 are hung on the screws. Finally, a screwdriver is used to tighten the screws through the second opening 143 to complete the installation and fixation of the fixing frame 1. The recessed design of the rear pressure plate 111 allows the rear plate 11 of the fixing frame 1 to fit more tightly with the mounting surface, enhancing stability. Since the fixing frame 1 has a certain width, when the cable is hung in the hanging area 2, it can avoid the cable being damaged due to concentrated force.
[0047] At the connection between the front movable plate 14 and the base plate 13, the cutting groove 146 facilitates the bending of the front movable plate 14. When the front movable plate 14 is not connected to the front fixed plate 15, an opening is formed between the front movable plate 14 and the front fixed plate 15, which facilitates the cable to enter the mounting area 2 through the opening, thereby facilitating the mounting of the cable. When the cable is mounted on the fixed frame 1, by pushing the front movable plate 14 closer to the front fixed plate 15, the clamping plate 142, due to the lifting of its front end, enters the mounting area 2 from the second clamping groove 151, and the clamping plate 142 is clamped on the second sinking groove 152, thereby connecting the front movable plate 14 and the front fixed plate 15.
[0048] Section 1 (21), Section 2 (22), and Section 3 (23) can be partitioned and hung according to cable type, quantity, and type. This not only facilitates the orderly installation of cables but also makes it easier to quickly locate and find different cables during subsequent maintenance.
[0049] When the front movable plate 14 is opened, an opening is formed between the front movable plate 14 and the second bending plate 115, which makes it convenient to put the cable into the first partition 21.
[0050] The front end of the second bending plate 115 is inserted into the first sinking groove 1441 through the groove 1151, so as to connect and support the front end of the second bending plate 115. Furthermore, the front end of the second bending plate 115 is provided with a second bending part 1152. Therefore, when the current movable plate 14 approaches the front fixed plate 15, when the second bending part 1152 of the front end of the second bending plate 115 contacts the groove 151, it will automatically be inserted into the second sinking groove 152, so as to achieve autonomous connection.
[0051] The second bending plate 115 and the first bending plate 114 form a partition 22, which can also be used to store and hang cables in separate sections.
[0052] An opening is formed between the bending plate 114 and the front fixing plate 15, through which cables of the appropriate specifications can be hung on the bending plate 114. The arc-shaped part 1142 on the bending plate 114 can also limit the cable, and the limiting part 1143 formed can also divide the cable into sections.
[0053] Meanwhile, when a cable is hung on the bending plate 114, the front end of the bending plate 114 will press down on the clamping plate 142 when the bending plate 114 is pressed down by gravity, so that the clamping plate 142 is subjected to force. This will enhance the connection stability between the front movable plate 14 and the front fixed plate 15 when the bending plate 114 is subjected to force, making the fixed frame 1 more stable in use.
[0054] The horizontal plate 145 allows for the mounting and placement of cables according to their actual specifications, while the arc-shaped section 1451 enables better partitioning and classification of cables.
[0055] Example 2: Refer to Figure 1 , Figure 6 A corrosion-resistant cable fixing structure for power transmission and transformation projects is basically the same as that in Embodiment 1, but further: outward flanges 3 are provided on both sides of the rear plate 11, and ventilation gaps 31 are formed on the rear plate 11 through the outward flanges 3 and the rear pressure plate 111. The ventilation gaps 31 can prevent rainwater from accumulating between the rear plate 11 and the mounting surface, so that the rainwater can be discharged through the ventilation gaps 31, and the rear plate 11 and the mounting surface can be ventilated and dried, thus preventing the fixing frame 1 from rusting and corroding.
[0056] Compared to the numerous problems existing in traditional cable fixing structures, this utility model has significant advantages. First, through the design of the fixing frame 1 and the bending plate 114 and bending plate 115, the mounting area 2 is divided into multiple regions. Combined with the horizontal plate 145 and the arc-shaped part 1451, it is possible to mount cables of different specifications and quantities in layers, greatly improving the adaptability to diverse engineering needs. Second, the unique design of the snap-fit assembly makes the connection between the front movable plate 14 and the front fixed plate 15 firm and easy to disassemble. At the same time, the fixing frame 1 has a certain width, which can evenly bear the weight of the cable, avoid excessive local stress on the cable, and effectively extend the service life of the cable. Third, the overall structural design is compact and reasonable, and the various components cooperate with each other to form a stable support system, providing reliable support for the cable.
[0057] The above description is merely a preferred embodiment of the present utility model and is not intended to limit the present utility model in any way. Although the present utility model has been disclosed above with reference to a preferred embodiment, it is not intended to limit the present utility model. Any person skilled in the art can make some modifications or alterations to the above-described technical content to create equivalent embodiments without departing from the scope of the present utility model. Any simple modifications, equivalent changes, and alterations made to the above embodiments based on the technical essence of the present utility model without departing from the scope of the present utility model shall still fall within the scope of the present utility model.
Claims
1. An anti-corrosion cable fixing structure for power transmission and distribution works, characterized by, include: A fixed frame (1) is provided with a rear plate (11), a top plate (12), a bottom plate (13), a front movable plate (14), and a front fixed plate (15), and a mounting area (2) is formed. A snap-fit assembly for connecting the front movable plate (14) to the front fixed plate (15); Bending plate one (114) and bending plate two (115) are symmetrically arranged on the rear plate (11). Bending plate one (114) and bending plate two (115) are respectively close to the front fixed plate (15) and the front movable plate (14), and divide the mounting area (2) into partition one (21), partition two (22) and partition three (23).
2. The corrosion-proof cable fixing structure for power transmission and distribution projects according to claim 1, characterized in that, The buckle assembly includes a second slot (151) and a second recessed slot (152) connected on the front fixed plate (15), and a bent plate (141) and a locking plate (142) located on the front movable plate (14). The width of the locking plate (142) is greater than the width of the bent plate (141), the width of the bent plate (141) is less than the width of the second slot (151), the width of the locking plate (142) is greater than the width of the second recessed slot (152), the width of the locking plate (142) is less than the width of the second slot (151), and the locking plate (142) is in a raised shape.
3. The corrosion protection cable fixing structure for power transmission and distribution projects according to claim 2, characterized in that, The bending plate (114) is provided with a bending part (1141), which is located above the raised plate (142).
4. The corrosion protection cable fixing structure for a power transmission and distribution project according to claim 2 or 3, characterized in that, The bending plate (114) is provided with an arc-shaped part (1142) and an L-shaped bending part (1144), and a limiting part (1143) is formed between the L-shaped bending part (1144) and the rear plate (11).
5. The corrosion protection cable fixing structure for power transmission and distribution projects according to claim 4, characterized in that, The front end of the second bending plate (115) is provided with a groove (1151) and the front end of the second bending plate (115) is provided with a bending part (1152). The front movable plate (14) is symmetrically provided with a connected slot (144) and a recessed groove (1441). The groove (1151) corresponds to the slot (144) and the recessed groove (1441).
6. The corrosion protection cable fixing structure for power transmission and distribution projects according to claim 5, characterized in that, A horizontal plate (145) is symmetrically arranged on the front movable plate (14). The horizontal plate (145) is horizontally placed in the partition (22). Multiple arc-shaped parts (1451) are opened on the horizontal plate (145). The symmetrical horizontal plate (145) is located on both sides of the front movable plate (14).
7. The anti-corrosion cable fixing structure for power transmission and transformation projects according to claim 6, characterized in that, The rear plate (11) is provided with a rear pressure plate (111), the rear pressure plate (111) is provided with a hanging hole (113), the rear pressure plate (111) is recessed on the rear plate (11), and the front movable plate (14) is provided with an opening (143).
8. The corrosion protection cable fixing structure for power transmission and distribution projects according to claim 7, characterized in that, The rear plate (11) has outward flanges (3) on both sides, and the rear plate (11) forms ventilation gaps (31) through the outward flanges (3) and the rear pressure plate (111).
9. The corrosion protection cable fixing structure for power transmission and distribution projects according to claim 7, characterized in that, The rear plate (11) is symmetrically provided with openings (112).