Operation platform for circuit bridging
By designing an operating platform for circuit bridging and using a power assembly and locking collar to achieve automatic lifting, the problems of high physical exertion and insufficient safety of traditional pole climbers are solved, providing an efficient and safe solution for power equipment maintenance.
Patent Information
- Application Number
- CN202510714489.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-30
- Publication Date
- 2025-09-12
AI Technical Summary
Traditional pole climbers rely on workers to alternately step on their legs and pull with their arms to achieve climbing. This consumes a lot of physical energy when carrying tools or equipment, is unsafe, and is not suitable for long-term work, posing a risk of lumbar muscle strain and joint injury.
An operating platform for circuit bridging is designed, which includes a standing mechanism and an embracing mechanism. The power assembly and locking collar are used to realize automatic lifting and stabilization of the platform. Workers can remotely control the power assembly to adjust the height. The support plate provides a standing platform, and the locking collar fits tightly with the pole to ensure safety.
It effectively replaces manual climbing with a climbing pole. It is easy to operate, highly safe, frees your hands and feet, adapts to construction at different heights, reduces physical exertion, and reduces muscle fatigue and injury risks.
Smart Images

Figure CN120625849A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of power system maintenance, in particular to an operating platform for circuit bridging. Background Art
[0002] In the maintenance and construction environment of power systems, it is often necessary to inspect and maintain power equipment high up on the poles. In existing scenarios, due to the low penetration rate of professional equipment platforms, workers are often required to use traditional pole climbers to perform maintenance. However, traditional pole climbers have many shortcomings and are inconvenient to use. They require higher construction experience and skills from workers, are not suitable for long-term work, and cause great physical loss.
[0003] Traditional pole climbers rely on alternating leg pedaling and arm pulling to achieve ascent, requiring the worker to remain suspended throughout the entire process. This requires significant core and upper limb strength. Prolonged work can easily lead to muscle fatigue and even lumbar muscle strain or joint injuries. The physical exertion increases exponentially when carrying tools or equipment. Traditional pole climbers also lack anti-slip mechanisms and active safety features, making them less secure.
[0004] Therefore, there is a need for a circuit bridging operating platform that can effectively replace manual foot climbing, is easy to operate, has high safety, and allows workers to stand directly on the platform to carry out maintenance work to meet the needs of the existing environment. Summary of the Invention
[0005] The purpose of this section is to summarize some aspects of the embodiments of the present invention and briefly introduce some preferred embodiments. Some simplifications or omissions may be made in this section and the abstract of the specification and the title of the invention of this application to avoid blurring the purpose of this section, the abstract of the specification and the title of the invention, and such simplifications or omissions cannot be used to limit the scope of the invention.
[0006] In view of the above-mentioned existing technologies, traditional pole climbers rely on workers to alternately step on their legs and pull with their arms to achieve climbing. When carrying tools or equipment, physical exertion increases exponentially, the anti-slip mechanism is backward, there is no active protection device, and the safety is insufficient.
[0007] Therefore, the technical problem to be solved by the present invention is to design a circuit bridging operating platform that can effectively replace manual foot climbing, is easy to operate, has high safety, and allows workers to directly stand on the platform to carry out maintenance work to meet the needs of the existing environment.
[0008] In order to solve the above technical problems, the present invention provides the following technical solutions: an operating platform for circuit bridging, comprising:
[0009] A station mechanism, comprising a power assembly and a support plate connected to the power assembly;
[0010] The embracing mechanism comprises a locking collar fixedly arranged on one side of the power assembly and a resisting member fixedly arranged on one side of the locking collar and facing the wire rod.
[0011] As an improvement of the present invention,
[0012] A limit ceiling is provided at one end of the power assembly, and the limit ceiling is fixedly sleeved with a wire rod;
[0013] A hanging end head is fixedly provided at one end of the position-limiting ceiling, and the hanging end head is connected to the power assembly.
[0014] As an improvement of the present invention,
[0015] The bottom of the power assembly is fixed with an extended support rod, and one side is fixedly connected to a hanging plate;
[0016] A slip ring is fixedly provided on one side of the support plate, and the slip ring slides along the outer wall of the support rod.
[0017] As an improvement of the present invention,
[0018] A lap platform is fixedly provided on one side of the support rod;
[0019] One end of the locking collar is rotatably connected to the overlap platform, and the other end is rotatably connected to the hanging plate.
[0020] As an improvement of the present invention,
[0021] The transmission gear is rotatably connected on the joint platform;
[0022] The outer wall of the locking collar is fixedly provided with a matching groove;
[0023] The transfer gear engages with the mating groove.
[0024] As an improvement of the present invention,
[0025] The locking collar is connected to the reserved disassembly end;
[0026] Both ends of the reserved disassembly end are embedded in the locking collar;
[0027] The locking collar and the reserved disassembly end are fixedly connected via a positioning piece.
[0028] As an improvement of the present invention,
[0029] The locking collar is fixedly connected to a telescopic sleeve;
[0030] An adjusting screw is rotatably arranged at one end of the telescopic sleeve, and the other end is slidably connected with the resisting member.
[0031] The resisting member is located between the telescopic sleeve and the wire rod.
[0032] As an improvement of the present invention,
[0033] The outer wall of the support plate is fixedly connected to the protective rod;
[0034] The support plate and the power assembly are connected via a winding rope.
[0035] As an improvement of the present invention,
[0036] The locking collar is connected to a reinforcing rod;
[0037] An oblique brace extends from the bottom of the support plate, and the other end of the oblique brace slides along the outer wall of the support rod.
[0038] The beneficial effects of the present invention are: it effectively replaces manual climbing by stepping on the pole climber, the power assembly can efficiently realize the lifting and lowering of the entire platform, ensuring that it can adapt to construction environments at different heights. It only needs to pre-install the limit ceiling and control the surrounding mechanism to lock the pole to be constructed, so that the height can be freely adjusted while carrying workers, freeing hands and feet and achieving efficient construction. BRIEF DESCRIPTION OF THE DRAWINGS
[0039] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following briefly introduces the drawings required for describing the embodiments. Obviously, the drawings described below are only some embodiments of the present invention. Those skilled in the art can also derive other drawings based on these drawings without inventive effort. Among them:
[0040] Figure 1 Schematic diagram of the overall structure of the circuit bridging operating platform in the present invention.
[0041] Figure 2 This is a schematic structural diagram from another angle of the circuit bridging operating platform of the present invention.
[0042] Figure 3 It is a schematic three-dimensional diagram of the partial structure of the circuit bridging operating platform in the present invention. DETAILED DESCRIPTION
[0043] In order to make the above-mentioned objects, features and advantages of the present invention more obvious and easy to understand, the specific embodiments of the present invention are described in detail below with reference to the accompanying drawings.
[0044] Example 1
[0045] Reference Figure 1 , this embodiment provides an operating platform for circuit bridging.
[0046] The positioning mechanism 1 is used to assist staff in adjusting the height, replacing manual climbing. During the installation and use of the entire platform, a positioning structure needs to be installed at the height of the pole in advance. The positioning structure ensures a firm connection with the pole. The positioning structure is connected to the power assembly 11 below. The power assembly 11 is fixedly connected to the pole through the positioning structure, ensuring its own stable connection.
[0047] The power assembly 11 is connected to the support plate 12 at the bottom, and the support plate 12 is equivalent to a platform for people to stand and work directly. A small winch or a traction drive structure such as a motor + pulley can be set in the power assembly 11, which is respectively connected to the positioning structure above and the support plate 12 below. The staff can remotely operate the power assembly 11 through a remote control or other equipment, and the internal traction drive structure can start to operate, driving the support plate 12 to rise or fall, as well as the rising or falling movement of itself in coordination with the positioning structure. When the entire platform is installed, the staff can also choose to stand on the platform to operate the power assembly 11.
[0048] The embracing mechanism 2 is used to securely engage the utility pole. A locking collar 21 is provided on one side of the power assembly 11. Under normal conditions, the locking collar 21 can be manually opened and closed to facilitate initial clamping of the utility pole. A resisting member 22 is also provided on the locking collar 21. The contact end of the resisting member 22 is used to engage the utility pole. Because the locking collar 21 itself cannot directly engage the utility pole, the resisting member 22 cooperates with the resisting member 22 to ensure a tight fit. The resisting member 22 can be made of a material such as a highly slip-resistant rubber block to maximize the anti-slip effect and prevent the locking collar 21 from swaying along the utility pole.
[0049] The positioning structure is installed at a high position on the line pole in advance to ensure a firm connection between the positioning structure and the line pole. The power assembly 11 is connected to the positioning structure, and then the staff can open the embracing mechanism 2 and sleeve it on the outer wall of the line pole.
[0050] The staff remotely operates the power assembly 11 through the remote control power assembly 11 and other equipment. Under the action of the internal small winch, the power assembly 11 realizes its own winding and rising movement until it moves to a higher position to ensure that the overall center of gravity is in the right direction.
[0051] After climbing up, the staff manually closes the locking ring 21 and ensures that the contact end of the resistance piece 22 can fit tightly against the pole. Then, the staff can directly transfer their position from the pole to the support plate 12 and stand on the support plate 12 to work freely.
[0052] Example 2
[0053] Reference Figures 1-2 This embodiment is based on the previous embodiment, and differs from the previous embodiment in that:
[0054] A limited ceiling 13 is installed above the power assembly 11. Bolts or other means can be used to secure the limited ceiling 13 to the poles, ensuring a secure connection to the power assembly 11. A hanging end 131 is fixed to one end of the limited ceiling 13. The hanging end 131 and the power assembly 11 are connected via a wire rope to a small winch within the power assembly 11. When the power assembly 11 is started, it can be pulled up along the wire rope to a higher position, ensuring the proper orientation of the overall center of gravity.
[0055] A support rod 111 is fixedly extended from the bottom of the power assembly 11 , and a hanging plate 112 is connected to one side of the power assembly 11 . The hanging plate 112 is used to cooperate with the locking collar 21 .
[0056] A slip ring 121 is fixedly mounted on one side of the support plate 12. The slip ring 121 can slide along the outer wall of the support rod 111, thereby ensuring that the support plate 12 can slide along the outer wall of the support rod 111 under the action of the slip ring 121. After the power assembly 11 is started, the support plate 12 can also be pulled along the wire rope. The cooperation between the slip ring 121 and the support rod 111 can ensure a more stable connection.
[0057] The support rod 111 is facing the side of the locking ring 21, and the overlapping platform 23 is also fixed. The locking ring 21 is divided into an upper and lower end. The upper end and the lower end of the locking ring 21 are respectively rotatably connected to the hanging plate 112 and the overlapping platform 23. The hanging plate 112 and the overlapping platform 23 synchronously rotate the locking ring 21, which is convenient for the staff to flexibly adjust the corresponding position of the locking ring 21.
[0058] A set of transmission gears 231 are rotatably connected to the connecting platform 23. To coordinate the rotation of the transmission gears 231, a mating groove 211 is fixedly formed on the outer wall of the locking collar 21. When the locking collar 21 rotates, the mating groove 211 on the outer wall can cooperate with the rotation of the transmission gears 231, providing better transmission, higher fault tolerance, and greater stability.
[0059] The locking collar 21 is also connected to a reserved disassembly end 212, which can be removed at ordinary times to leave space for the locking collar 21 to be smoothly put on the corresponding wire rod. The two ends of the reserved disassembly end 212 can be embedded in the locking collar 21 to play a preliminary fixing role.
[0060] The locking collar 21 and the reserved disassembly end 212 are fixedly connected by a positioning member 24. The positioning member 24 can be in the form of a pin to directly fix the locking collar 21 and the reserved disassembly end 212 to ensure that the overall connection is firm.
[0061] Example 3
[0062] Reference Figures 1 to 3 This embodiment is based on the previous embodiment, and differs from the previous embodiment in that:
[0063] Multiple telescopic sleeves 213 are fixedly connected to the locking collar 21. These sleeves 213 are arranged in a circular array on the locking collar 21, and the number of sleeves installed can be adjusted as needed. An adjustment screw 2131 is rotatably mounted on one end of each telescopic sleeve 213. The adjustment screw 2131 faces outward from the locking collar 21, allowing for easy adjustment from the outside.
[0064] The adjusting screw 2131 also achieves linear propulsion during rotation. The other end of the telescopic sleeve 213 is slidably connected to the resistance member 22. When the adjusting screw 2131 is rotated and pushed in from the outside, the resistance member 22 is also pushed forward by the adjusting screw 2131. The resistance member 22 is located between the telescopic sleeve 213 and the wire rod. When the resistance member 22 is pushed to its maximum position, it will adhere to the wire rod, thereby achieving good positioning and anti-slip function.
[0065] The outer wall of the support plate 12 is fixedly connected to the protection rod 122. The protection rod 122 can effectively limit the actual range of movement of the support plate 12 and improve the safety performance. The staff can work freely even at a higher place.
[0066] The locking collar 21 is connected to a reinforcing rod 214 , and multiple reinforcing rods 214 are provided, with both ends connected to the upper end and the lower end of the locking collar 21 , respectively. This not only limits the actual installation range of the locking collar 21 , but also improves the connection strength of the locking collar 21 .
[0067] The bottom of the support plate 12 is also fixedly connected to an oblique brace 123 , and the other end of the oblique brace 123 also slides along the outer wall of the support rod 111 , ensuring the stable and firm operation of the support plate 12 .
[0068] It should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention and are not intended to limit the present invention. Although the present invention has been described in detail with reference to the preferred embodiments, those skilled in the art should understand that the technical solutions of the present invention may be modified or replaced by equivalents without departing from the spirit and scope of the technical solutions of the present invention, which should all be included in the scope of the claims of the present invention.
Claims
1. An operating platform for circuit bridging, characterized in that: A station mechanism (1) comprises a power assembly (11) and a support plate (12) connected to the power assembly (11); The embracing mechanism (2) comprises a locking collar (21) fixedly arranged on one side of the power assembly (11) and a resisting member (22) fixedly arranged on one side of the locking collar (21) and facing the wire rod.
2. The circuit bridging operating platform according to claim 1, wherein: A position-limiting ceiling (13) is provided at one end of the power assembly (11), and the position-limiting ceiling (13) is fixedly sleeved with a wire rod; A hanging end (131) is fixedly provided at one end of the position-limiting ceiling (13), and the hanging end (131) is connected to the power assembly (11).
3. The circuit bridging operating platform according to claim 1 or 2, characterized in that: An extension support rod (111) is fixed at the bottom of the power assembly (11), and a hanging plate (112) is fixedly connected to one side of the power assembly (11); A slip ring (121) is fixedly provided on one side of the support plate (12), and the slip ring (121) slides along the outer wall of the support rod (111).
4. The circuit bridging operating platform according to claim 3, wherein: A lap platform (23) is fixedly provided on one side of the support rod (111); One end of the locking collar (21) is rotatably connected to the overlap platform (23), and the other end is rotatably connected to the hanging plate (112).
5. The circuit bridging operating platform according to claim 4, characterized in that: The overlapping platform (23) is rotatably connected to a transmission gear (231); The outer wall of the locking collar (21) is fixedly provided with a matching groove (211); The transmission gear (231) engages with the matching groove (211).
6. The circuit bridging operating platform according to any one of claims 2, 4, and 5, characterized in that: The locking collar (21) is connected to a reserved disassembly end (212); Both ends of the reserved disassembly end (212) are embedded in the locking collar (21); The locking collar (21) and the reserved disassembly end (212) are fixedly connected via a positioning member (24).
7. The circuit bridging operating platform according to claim 6, wherein: The locking collar (21) is fixedly connected to a telescopic sleeve (213); One end of the telescopic sleeve (213) is rotatably provided with an adjusting screw (2131), and the other end is slidably connected to the abutment member (22). The resisting member (22) is located between the telescopic sleeve (213) and the wire rod.
8. The circuit bridging operating platform according to claim 7, wherein: The outer wall of the support plate (12) is fixedly connected to a protective rod (122); The support plate (12) and the power assembly (11) are connected via a winding rope.
9. The circuit bridging operating platform according to claim 4, wherein: The locking collar (21) is connected to a reinforcing rod (214); An oblique support (123) extends from the bottom of the support plate (12), and the other end of the oblique support (123) slides along the outer wall of the support rod (111).