Multi-pipeline common-frame supporting structure suitable for large workshop
By employing a combination design of rotating bearings, support blocks, and rotatable arc plates in large workshops, along with ball bearings and drive motors, the problems of cable entanglement, wear, and inconvenient fixing were solved, enabling orderly guidance and rapid positioning of multiple pipelines, thus improving construction efficiency and safety.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- ANHUI PROVINCE IND EQUIP INSTALLATION CO LTD
- Filing Date
- 2025-05-30
- Publication Date
- 2026-05-12
AI Technical Summary
In large workshops, cables are widely distributed. Traditional support structures lack guidance and positioning design, resulting in tangling, dragging, wear and tear, and unstable operation. Furthermore, the fixed design is inconvenient to disassemble and assemble, and cannot meet the needs of laying multiple types of cables in parallel.
By employing a rotating shaft seat, support block, rotatable arc plate, and fixing components, combined with ball bearings and a drive motor, it achieves orderly guidance, flexible positioning, and rapid fixing of multiple pipelines, reducing frictional resistance. Mechanical assistance is provided through the drive motor and assist rollers, reducing the workload of manual operation.
It achieves orderly support and guidance for multiple pipelines, reduces frictional resistance, improves laying smoothness, and enhances construction efficiency and safety. It features a compact structure and convenient operation, and is suitable for multi-device parallel charging scenarios.
Smart Images

Figure CN224233275U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of cable support and wiring management technology, specifically a multi-pipeline co-support structure suitable for large workshops. Background Technology
[0002] In large workshops, with the widespread application of various electrical equipment, intelligent systems, and automated equipment, the number and distribution of various types of pipelines such as charging cables, control cables, and communication cables are large. Traditional methods relying on manual bundling or ground laying are no longer sufficient to meet the needs of efficient, safe, and orderly deployment. In existing technologies, some support structures only have a single support function and lack effective guidance and positioning design. During the laying process, cables are prone to problems such as tangling, dragging on the ground, wear, and unstable operation, which not only affect construction efficiency but also bring significant safety hazards.
[0003] Furthermore, most cable clamping structures are fixed designs, which are inconvenient to assemble and disassemble, lack flexibility, and cannot meet the needs of frequent changes in wiring paths or parallel laying of multiple types of cables. Therefore, there is an urgent need for a structural solution that can support, guide, limit, and conveniently fix multiple cables in a shared rack to improve the standardization of cable management and overall operational efficiency in large workshops. Utility Model Content
[0004] The purpose of this utility model embodiment is to provide a multi-pipeline co-support structure suitable for large workshops, aiming to solve the technical problems mentioned in the background art.
[0005] To achieve the above objectives, this utility model provides the following technical solution:
[0006] A multi-pipeline co-support structure suitable for large workshops includes a support frame, a plurality of rotating shaft seats are mounted on the surface of the support frame, and a support block is provided on the outer side of the rotating shaft seats. A second arc plate is connected to the surface of the support block, and a first arc plate is rotatably connected to the surface of the second arc plate.
[0007] The second arc-shaped plate has mounting brackets on both sides inside, and the mounting brackets are equipped with ball bearings.
[0008] The surfaces of the first and second arc-shaped plates are both provided with fixing components.
[0009] Furthermore, a hinge is mounted on the surface of the second arc-shaped plate, and the first arc-shaped plate is mounted on the hinge.
[0010] Furthermore, the fixing component includes a first threaded tube and a second threaded tube, and the first threaded tube and the second threaded tube are respectively installed on the surfaces of the first arc-shaped plate and the second arc-shaped plate, and the interiors of the first threaded tube and the second threaded tube are engaged with a connecting threaded rod.
[0011] Furthermore, a drive motor is mounted on the surface of the first arc-shaped plate, a bearing is installed inside the first arc-shaped plate, and a rotating rod is rotatably connected inside the bearing. An assist roller is sleeved on the outside of the rotating rod.
[0012] Furthermore, one end of the rotating rod is connected to the output end of the drive motor.
[0013] Furthermore, the surface of the assist roller is provided with an arc-shaped groove.
[0014] Furthermore, a rubber sleeve is provided inside the arc-shaped groove.
[0015] This utility model provides a multi-pipeline shared support structure suitable for large workshops, which has the following advantages:
[0016] This invention achieves orderly guidance and flexible positioning of multiple pipelines by setting a rotating shaft seat and a support block on the support frame, combined with the rotatable engagement of the first and second arc-shaped plates. The ball bearings installed within the mounting bracket significantly reduce frictional resistance during pipeline sliding, improving laying smoothness. The fixing components facilitate quick clamping or release of cables. The compact structure and convenient operation effectively solve problems such as unstable pipeline support, inconvenient laying, and chaotic management in large workshops, demonstrating significant structural innovation and application value. Attached Figure Description
[0017] Figure 1 This is a schematic diagram of a multi-pipeline co-support structure suitable for large workshops.
[0018] Figure 2 This is a partial structural diagram of a multi-pipeline co-support structure suitable for large workshops.
[0019] Figure 3 This is a front sectional view of a connecting threaded rod, a first threaded pipe, and a second threaded pipe in a multi-pipeline co-support structure suitable for large workshops.
[0020] In the diagram: 1. Support frame; 2. Rotary shaft seat; 3. Support block; 4. First arc plate; 5. Second arc plate; 6. Hinge; 7. Drive motor; 8. Rubber sleeve; 9. Assist roller; 10. Rotating rod; 11. Bearing; 12. Connecting threaded rod; 13. First threaded tube; 14. Second threaded tube; 15. Mounting bracket; 16. Ball bearing. Detailed Implementation
[0021] To make the objectives, technical solutions, and advantages of this utility model clearer, the present utility model will be further described in detail below with reference to the accompanying drawings and embodiments. It should be understood that the specific embodiments described herein are merely illustrative of the present utility model and are not intended to limit the present utility model.
[0022] The specific implementation of this utility model will be described in detail below with reference to specific embodiments.
[0023] like Figures 1-3 As shown in the figure, the present invention provides a multi-pipeline co-support structure suitable for large workshops, including a support frame 1. The support frame 1 is characterized in that a plurality of rotating shaft seats 2 are installed on the surface of the support frame 1, and a support block 3 is provided on the outer side of the rotating shaft seat 2. A second arc plate 5 is connected to the surface of the support block 3, and a first arc plate 4 is rotatably connected to the surface of the second arc plate 5. A hinge 6 is installed on the surface of the second arc plate 5, and the first arc plate 4 is disposed on the hinge 6.
[0024] The second arc-shaped plate 5 has mounting brackets 15 on both sides inside, and the mounting brackets 15 have ball bearings 16 installed inside.
[0025] The surfaces of the first arc-shaped plate 4 and the second arc-shaped plate 5 are jointly provided with fixing components.
[0026] The fixing assembly includes a first threaded tube 13 and a second threaded tube 14, and the first threaded tube 13 and the second threaded tube 14 are respectively installed on the surface of the first arc plate 4 and the second arc plate 5. The first threaded tube 13 and the second threaded tube 14 are connected to a connecting threaded rod 12 through their internal meshing.
[0027] In one embodiment of this utility model, the multi-pipeline co-support structure is mainly applied to scenarios where multiple cables or charging cables require orderly support and guidance. This is particularly relevant in large workshops where multiple devices are dispersed, charging operations are frequent, and cables often need to traverse long distances and move frequently during operation. In such situations, problems such as cables dragging on the ground, tangling, flattening, wear, and insecure fixing are common, severely impacting the ease of operation for workers and the lifespan of the cables, posing significant safety hazards and efficiency losses. Therefore, a structure with cable support, guidance, limiting, and fixing functions is urgently needed to assist the charging process.
[0028] The structure includes a support frame 1, on the surface of which are mounted several rotating shaft seats 2, and support blocks 3 are provided on the outer side of the rotating shaft seats 2. A second arc-shaped plate 5 is connected to the surface of the support block 3, and a first arc-shaped plate 4 is rotatably connected to the surface of the second arc-shaped plate 5. The first arc-shaped plate 4 is mounted on a hinge 6. Through the cooperation of the hinge structure, an openable and closable guide clamping mechanism is formed to guide and limit the cable, preventing the cable from falling off or shifting during operation.
[0029] The second arc plate 5 has mounting brackets 15 on both sides inside. The mounting brackets 15 are equipped with ball bearings 16. The cable slides between the ball bearings 16, which can effectively reduce the frictional resistance during its movement, reduce wear, and improve the smoothness of laying and service life.
[0030] A fixing component is provided on the surfaces of the first arc-shaped plate 4 and the second arc-shaped plate 5. The fixing component includes a first threaded tube 13 and a second threaded tube 14, which are respectively installed on the surfaces of the first arc-shaped plate 4 and the second arc-shaped plate 5. A connecting threaded rod 12 is engaged with each other inside. By rotating the connecting threaded rod 12, the first arc-shaped plate 4 and the second arc-shaped plate 5 can be driven to switch between a fixed state and a released state, thereby realizing the rapid positioning and unlocking operation of the cable.
[0031] This utility model, through the combined design of the above-mentioned multiple structures, achieves unified support, smooth guidance, rapid positioning, and clamping fixation for multiple cables, solving multiple problems existing in the prior art, such as cumbersome operation, messy wiring, and bulky structure, thus improving the automation level and safety factor of charging operations. At the same time, this structure has fewer components, simpler connection relationships, and is easy to mass-produce and install quickly, possessing good engineering adaptability and economic prospects for widespread application. It has broad practical value in complex scenarios such as parallel charging of multiple devices and unified pipeline layout.
[0032] like Figure 1 and Figure 2 As shown, in one embodiment of this utility model, a drive motor 7 is mounted on the surface of the first arc-shaped plate 4, a bearing 11 is mounted inside the first arc-shaped plate 4, and a rotating rod 10 is rotatably connected inside the bearing 11. An assist roller 9 is sleeved on the outer side of the rotating rod 10. One end of the rotating rod 10 is connected to the output end of the drive motor 7.
[0033] In this embodiment, the drive motor 7 is mounted on the surface of the first arc-shaped plate 4 to provide power output to the rotating rod 10. Both ends of the rotating rod 10 are mounted inside the first arc-shaped plate 4 via bearings 11 to ensure smooth operation during rotation and reduce vibration and noise caused by rotation. An assist roller 9 is sleeved on the outside of the rotating rod 10, and its outer surface is in direct contact with the charging cable. This assist roller 9 forms an effective frictional driving relationship with the cable during rotation, thereby driving the cable to move.
[0034] During operation, after the drive motor 7 is powered on, its output shaft drives the rotating rod 10 to rotate. The rotating rod 10 drives the externally mounted assist roller 9 to rotate. The assist roller 9 and the charging cable generate friction through surface contact, thereby driving the cable to be released or retracted along the structural direction. Since the bearing 11 provides stable rotational support, the rotating rod 10 can maintain a coaxial rotation state throughout the entire operation, improving the structural stability and transmission efficiency.
[0035] This structure offers significant advantages. Through the coordination of the drive motor 7, rotating rod 10, and assist roller 9, mechanical assistance is provided during cable movement, reducing the manual load on operators when pulling or retrieving cables and significantly lowering labor intensity. Furthermore, in workshop settings with limited space or long cables, this structure provides continuous, uniform, and controllable cable traction, preventing cable sheath damage or bending caused by uneven dragging force.
[0036] Furthermore, by integrating the aforementioned transmission components within the first arc-shaped plate 4, the structure is not only compact but also easy to maintain and replace, possessing excellent modular design characteristics. This facilitates rapid deployment of the structure across supports of different locations and specifications, improving the overall system's deployment efficiency and adaptability. Overall, this embodiment further enhances the convenience, safety, and intelligence of this invention in the process of guiding and managing charging cables.
[0037] In this embodiment, the surface of the assist roller 9 is provided with an arc-shaped groove, and a rubber sleeve 8 is provided inside the arc-shaped groove for contacting the outer surface of the charging cable and transmitting friction. This structure enables the charging cable to remain stably attached during the rotation of the assist roller 9, effectively avoiding slippage or detachment caused by insufficient surface contact or misalignment, thereby ensuring the continuity and controllability of cable traction during release or retrieval.
[0038] The rubber sleeve 8 is positioned within the arc-shaped groove, providing flexible contact support while encasing the cable. The rubber material possesses a high coefficient of friction and a degree of elasticity, ensuring grip while cushioning and protecting the cable, preventing wear, indentation, or even breakage of the cable sheath caused by direct contact with the hard roller surface. Simultaneously, the rubber sleeve 8 exhibits a degree of self-adaptive wrapping capability during rotation, accommodating cables of different diameters and achieving structural versatility and improved compatibility.
[0039] By embedding the rubber sleeve 8 into the arc-shaped groove of the assist roller 9, the overall structure not only improves the stability of the transmission process and the smoothness of cable operation, but also shows significant advantages in protecting the cable, extending its service life, and improving operational safety, further enhancing the applicability and reliability of this utility model structure in actual construction scenarios.
[0040] The above are merely preferred embodiments of the present utility model and are not intended to limit the present utility model. Any modifications, equivalent substitutions, and improvements made within the spirit and principles of the present utility model should be included within the protection scope of the present utility model.
Claims
1. A multi-pipeline co-support structure suitable for large workshops, comprising a support frame (1), characterized in that, The support frame (1) has several rotating shaft seats (2) installed on its surface, and a support block (3) is provided on the outside of the rotating shaft seat (2). The surface of the support block (3) is connected to a second arc plate (5), and the surface of the second arc plate (5) is rotatably connected to a first arc plate (4). The second arc plate (5) has mounting brackets (15) on both sides inside, and ball bearings (16) are installed inside the mounting brackets (15). The surfaces of the first arc plate (4) and the second arc plate (5) are jointly provided with fixing components.
2. The multi-pipeline co-support structure suitable for large workshops according to claim 1, characterized in that, The surface of the second arc plate (5) is fitted with a hinge (6), and the first arc plate (4) is mounted on the hinge (6).
3. The multi-pipeline co-support structure suitable for large workshops according to claim 1, characterized in that, The fixing assembly includes a first threaded tube (13) and a second threaded tube (14), and the first threaded tube (13) and the second threaded tube (14) are respectively installed on the surface of the first arc plate (4) and the second arc plate (5). The first threaded tube (13) and the second threaded tube (14) are connected to a connecting threaded rod (12) through their internal engagement.
4. The multi-pipeline co-support structure suitable for large workshops according to claim 1, characterized in that, A drive motor (7) is installed on the surface of the first arc plate (4), a bearing (11) is installed inside the first arc plate (4), and a rotating rod (10) is rotatably connected inside the bearing (11), and an assist roller (9) is sleeved on the outside of the rotating rod (10).
5. A multi-pipeline co-support structure suitable for large workshops according to claim 4, characterized in that, One end of the rotating rod (10) is connected to the output end of the drive motor (7).
6. A multi-pipeline co-support structure suitable for large workshops according to claim 4, characterized in that, The surface of the assist roller (9) is provided with an arc-shaped groove.
7. A multi-pipeline co-support structure suitable for large workshops according to claim 6, characterized in that, A rubber sleeve (8) is provided inside the arc-shaped groove.