A pole-clamp type safety rope suspension device
By using a pole-clamped safety rope suspension device, steel wire ropes are installed on the outside of the main structure using a clamp base and locking structure. This solves the problems of inconvenient installation and construction interference of safety rope suspension devices, achieving flexible construction and stability, and preventing operators from sliding on inclined structures.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- SHANGHAI CONSTRUCTION NO 7 (GROUP) CO LTD
- Filing Date
- 2024-06-22
- Publication Date
- 2026-07-31
AI Technical Summary
The existing safety rope suspension devices are inconvenient to install and remove, the installation location may affect construction, and they are not conducive to repeated use, failing to meet the flexible construction needs of workers.
The safety rope suspension device adopts a pole clamp type, including a clamp base, a pole, a locking element, and a locking structure. Parallel steel wire ropes are set on the outside of the main structure, and the clamp base is fixed by the locking element. The steel wire rope is connected to the hanging ring of the adjacent pole. The life jacket on the operator is hung together with the safety rope, and the safety buckle on the safety rope is hung on the steel wire rope, allowing the operator to move on the steel wire rope.
This solves the problem of inconvenient installation and removal of safety rope suspension devices, prevents the suspension point from interfering with construction by fixing it in one position, enhances the stability and flexibility of the device, adapts to the needs of different construction positions, and prevents operators from sliding on inclined structures and causing secondary injuries.
Smart Images

Figure CN118526735B_ABST
Abstract
Description
Technical Field
[0001] This application relates to the technical field of safety rope suspension devices, and in particular to a pole clamp type safety rope suspension device. Background Technology
[0002] Working at heights is classified as special operations, referring to work performed at a height of 2 meters or more above a reference plane where there is a risk of falling. In construction, many types of work, such as exterior wall construction, roof work, steel structure installation, and equipment installation, involve working at heights. Therefore, working at heights is almost unavoidable in construction projects and can pose a significant safety risk to workers.
[0003] Safety ropes are commonly used as protective equipment for workers in various construction projects involving working at heights. Ensuring the stability of the safety rope's suspension point is crucial. In activities such as roof construction, demolition, and excavation edge work, the safety rope's suspension point is fixed to the main structure. However, the main structure often cannot provide a stable and reliable suspension point, necessitating the installation of a separate safety rope suspension device. Conventional safety rope suspension devices are inconvenient to install and remove, their installation location may affect construction in other areas, and they are not conducive to repeated use. Furthermore, some safety rope suspension devices cannot meet the flexible work requirements of the workers. Summary of the Invention
[0004] The purpose of this application is to provide a pole clamp-type safety rope suspension device to solve the problems of inconvenience in the installation and removal of safety rope suspension devices in related technologies, the installation position may affect the construction of other parts, and it is not conducive to repeated use. At the same time, some safety rope suspension devices cannot meet the flexible construction needs of workers.
[0005] The technical solution of the pole clamp-type safety rope suspension device provided in this application is as follows: A pole clamp-type safety rope suspension device, comprising: A pole is provided with a hanging ring, and a steel wire rope passes through the hanging ring and is wrapped and fixed to the hanging ring; A clamping base is fixedly connected to the upright; the clamping base includes a first horizontal plate, a second horizontal plate and an arc plate, the arc plate connects the first horizontal plate and the second horizontal plate, the first horizontal plate, the second horizontal plate and the arc plate are integrally formed, the first horizontal plate can abut against the upper end of the main structure, and the second horizontal plate can abut against the lower end of the main structure. A locking element capable of connecting the first horizontal plate, the main structure, and the second horizontal plate; A locking structure is provided, which is slidably connected to the wire rope. When the safety buckle causes the wire rope to bend downward, the locking structure can lock relative to the wire rope.
[0006] By adopting the above technical solution, the clamping base is set perpendicular to the main structure. A clamping base and a pole are added to the outer side of the main structure. The steel wire rope connects the hanging rings of the adjacent poles. The life jacket on the operator is hung together with the safety rope. The safety buckle on the safety rope is hung on the steel wire rope. When the operator is working on other parts of the main structure, the operator can move on the steel wire rope, which is convenient for working at different positions. At the same time, it prevents the suspension point from being fixed in one fixed position, which would interfere with the construction work of the operator at the suspension position.
[0007] By fixing the main structure and the clamp base with locking components, the problems of inconvenience in the installation and removal of conventional safety rope suspension devices and their lack of reusability can be solved. At the same time, by setting a steel wire rope parallel to the main structure on the outside of the main structure, the problem of the installation position affecting the construction of other parts can be solved, and the problem that some safety rope suspension devices cannot meet the needs of workers for flexible construction can be solved.
[0008] Optionally, it also includes a stiffening plate, the side of which is fixedly connected to the side wall of the upright, and the bottom edge of which is fixedly connected to the clamp base.
[0009] By adopting the above technical solution, the side of the stiffening plate is fixedly connected to the side wall of the upright, and the bottom edge of the stiffening plate is fixedly connected to the clamp base. The stiffening plate can provide a certain support for the upright, prevent the weld between the upright and the clamp base from shaking, and enhance the structural strength and stability.
[0010] Optionally, it also includes a connecting rod and a steel plate embedded part, wherein the steel plate embedded part is embedded in the main structure, the connecting rod is welded to the steel plate embedded part, the connecting rod is inserted between the first horizontal plate and the second horizontal plate, and the locking member can connect the first horizontal plate, the connecting rod and the second horizontal plate.
[0011] By adopting the above technical solution, the locking component can connect the first horizontal plate, the connecting rod, and the second horizontal plate, and the clamping base can be fixedly connected to the main structure through the connecting rod.
[0012] Optionally, the locking structure includes a connecting rod and a clamping member. The connecting rod is fixedly connected to the two uprights respectively. The clamping member is connected to the safety buckle via a chain. The clamping member is slidably connected to the connecting rod and can abut against the wire rope.
[0013] By adopting the above technical solution, the clamping component and the connecting rod are slidably connected, the wire rope can abut against the clamping component, the clamping component remains unchanged in the direction perpendicular to the connecting rod, and the wire rope can move away from the connecting rod under the operation of the operator and abut against and press against the clamping component.
[0014] Optionally, the clamping member has a sliding hole, and the clamping member is slidably connected to the connecting rod through the sliding hole; the clamping member has a clearance hole, which is arranged parallel to the sliding hole, and the wire rope can pass through the clearance hole.
[0015] By adopting the above technical solution, the wire rope can pass through the clearance hole, allowing the clamping component to provide clearance space for the wire rope to slide.
[0016] Optionally, the clamping component also includes a support frame and a rotating plate. The support frame is fixedly connected to the side wall of the clearance hole, and the support frame is rotatably connected to the center of the rotating plate. The wire rope can abut against the rotating plate.
[0017] By adopting the above technical solution, the support frame is rotatably connected to the center of the rotating plate. The rotation of the rotating plate around the support frame enables the rotating plate to come into contact with the wire rope, thereby preventing the clamping parts from moving relative to the wire rope.
[0018] Optionally, it also includes a first elastic element and a second elastic element, the first elastic element and the second elastic element being arranged in parallel and located on both sides of the support frame respectively; the first elastic element connects the side wall of the clearance hole to the rotating plate, and the second elastic element connects the side wall of the clearance hole to the rotating plate.
[0019] By adopting the above technical solution, the first elastic element connects the side wall of the clearance hole to the rotating plate, and the second elastic element connects the side wall of the clearance hole to the rotating plate. The first elastic element and the second elastic element can drive the rotating plate to rotate around the support frame and return to its original position under the action of elasticity.
[0020] Optionally, it may also include sleeves, a plurality of which are sleeved on the wire rope and abut against each other.
[0021] By adopting the above technical solution, multiple sleeves are fitted onto the wire rope and the multiple sleeves abut against each other, which can prevent the sleeves from slipping on the wire rope.
[0022] Optionally, the sleeve is provided with a first tooth pattern, the rotating plate is provided with a second tooth pattern, and the second tooth pattern can engage with the first tooth pattern; the side wall of the clearance hole is provided with a third tooth pattern, and the third tooth pattern can engage with the first tooth pattern.
[0023] By adopting the above technical solution, when the wire rope bends, it can drive the rotating plate to rotate. The second tooth on the rotating plate meshes with the first tooth, and the third tooth on the side wall of the clearance hole meshes with the first tooth, thereby locking the sleeve with the clamping part and preventing the clamping part from moving downward under the action of the safety buckle.
[0024] In summary, this application includes at least one of the following beneficial technical effects: 1. The clamp base is set perpendicular to the main structure. A clamp base and a pole are added to the outer side of the main structure. The wire rope connects the hanging ring of the adjacent pole. The life jacket and safety rope of the operator are hung together. The safety buckle on the safety rope is hung on the wire rope. When the operator is working on other parts of the main structure, the operator can move on the wire rope, which is convenient for working at different positions. At the same time, it prevents the suspension point from being fixed in one position, which would interfere with the construction work of the operator at the suspension position.
[0025] By fixing the main structure and the clamp base with locking components, the problems of inconvenience in the installation and removal of conventional safety rope suspension devices and their lack of reusability can be solved. At the same time, by setting a steel wire rope parallel to the main structure on the outside of the main structure, the problem of the installation position affecting the construction of other parts can be solved, and the problem that some safety rope suspension devices cannot meet the needs of workers for flexible construction can be solved.
[0026] 2. When installing inclined stairs or other inclined structures at a height, the main structure is inclined, the uprights are perpendicular to the main structure and inclined, and the wire rope is parallel to the main structure and inclined. If an operator accidentally steps on the rope or slips, the safety buckle will cause the safety rope to move at an incline, pulling the wire rope away from the connecting rod. The wire rope bends, pressing the rotating plate against the support frame, causing it to rotate in the direction of compressing the first spring. The first spring is compressed, and the second spring is stretched. The second tooth on the side of the rotating plate with the second spring engages with the first tooth on the sleeve, while the first tooth on the sleeve engages with the third tooth on the side wall of the clearance hole, preventing the clamping block from sliding relative to the wire rope. This prevents the operator from sliding downwards along the inclined wire rope, thus avoiding secondary injury. Attached Figure Description
[0027] Figure 1 This is a schematic diagram of the structure of Embodiment 1 of this application; Figure 2 This is a schematic diagram of the upright and the clamp base in Embodiment 1 of this application; Figure 3 This is a schematic diagram of the structure of Embodiment 2 of this application; Figure 4 This is a cross-sectional schematic diagram of Embodiment 2 of this application; Figure 5 for Figure 4A magnified view of part A in the middle; Figure 6 This is a schematic diagram of the upright and the clamp base in Embodiment 3 of this application.
[0028] In the picture: 10. Pole; 11. Hanging ring; 20. Clip base; 21. First horizontal plate; 22. Second horizontal plate; 23. Curved plate; 30. Locking component; 31. Screw; 32. Nut; 40. Locking structure; 41. Connecting rod; 42. Clamping element; 421. Clamping block; 422. Sliding hole; 423. Clearance hole; 424. Support frame; 425. Rotating plate; 4251. Second toothed groove; 426. Third toothed groove; 50. Stiff plate; 60. Connecting rod; 70. Main structure; 71. Steel plate embedded parts; 72. Steel plate structure; 80. First elastic element; 81. First spring; 90. Second elastic element; 91. Second spring; 100. Sleeve; 101. First tooth pattern; 110. Steel wire rope; 120. Safety rope; 130. Safety buckle; 140. Chain. Detailed Implementation
[0029] The following is in conjunction with the appendix Figure 1 -Appendix Figure 6 This application will be described in further detail below.
[0030] This application discloses a pole clamp-type safety rope suspension device.
[0031] Example 1 Reference Figure 1 and Figure 2A pole-mounted clamp-type safety rope suspension device includes a pole 10, a clamp base 20, a locking element 30, a locking structure 40, a stiffening plate 50, a connecting rod 60, and a steel plate embedded part 71. The clamp base 20 includes a first horizontal plate 21, a second horizontal plate 22, and an arc-shaped plate 23. The first horizontal plate 21 is located above the second horizontal plate 22. The arc-shaped plate 23 is located between the first horizontal plate 21 and the second horizontal plate 22, connecting the first horizontal plate 21 and the second horizontal plate 22. The first horizontal plate 21, the second horizontal plate 22, and the arc-shaped plate 23 are integrally formed. The first horizontal plate 21 can abut against the upper end of the main structure 70, and the second horizontal plate 22 can abut against the lower end of the main structure 70. The locking element 30 can connect the first horizontal plate 21, the main structure 70, and the second horizontal plate 22. The upright post 10 is located above the clamping base 20. The upright post 10 is perpendicular to the first horizontal plate 21 and fixedly connected to the first horizontal plate 21. The upright post 10 is provided with multiple pairs of hanging rings 11, each pair of hanging rings 11 being symmetrically arranged on both sides of the upright post 10. The wire rope 110 passes through one side of the hanging ring 11 of one upright post 10 and is wound and fixed to the adjacent side of the hanging ring 11 of the next upright post 10. The locking structure 40 can slide and connect with the wire rope 110. When the safety buckle 130 drives the wire rope 110 to bend towards the clamping base 20, the locking structure 40 can lock relative to the wire rope 110.
[0032] The clamping base 20 is set perpendicular to the main structure 70. The clamping base 20 and the upright 10 are added to the outer side of the main structure 70. The wire rope 110 is connected to the hanging ring 11 of the adjacent upright 10. The life jacket on the operator is hung together with the safety rope 120. The safety buckle 130 on the safety rope 120 is hung on the wire rope 110. When the operator is working on other parts of the main structure 70, the operator can move on the wire rope 110, which is convenient for working at different positions. At the same time, it prevents the suspension point from being fixed in one fixed position, which would interfere with the construction work of the operator at the suspension position.
[0033] By fixing the main structure 70 and the clamp base 20 with the locking component 30, the problem of the inconvenience of installing and removing conventional safety rope 120 suspension devices and their lack of reusability can be solved. At the same time, by setting a steel wire rope 110 parallel to the main structure 70 on the outside of the main structure 70, the problem of the installation position affecting the construction of other parts can be solved, and the problem that some safety rope 120 suspension devices cannot meet the needs of workers for flexible construction can be solved.
[0034] Reference Figure 1 and Figure 2 The stiffening plate 50 is set in the shape of a right-angled triangle, wherein the hypotenuse of the triangle is set as a concave arc surface. The right-angled side of the stiffening plate 50 is fixedly connected to the side wall of the upright 10, and the bottom edge of the stiffening plate 50 is fixedly connected to the clamp base 20.
[0035] Four stiffening plates 50 are provided, which are respectively set around the upright 10. The stiffening plates 50 can provide a certain support for the upright 10, prevent the weld between the upright 10 and the clamp base 20 from shaking, and enhance the structural strength and stability.
[0036] Reference Figure 1 and Figure 2 The main structure 70 can be a concrete structure. During construction, steel plate pre-embedded parts 71 are pre-embedded. The connecting rod 60 is welded to the steel plate pre-embedded parts 71. The connecting rod 60 is located between the first horizontal plate 21 and the second horizontal plate 22. The connecting rod 60 is inserted into the first horizontal plate 21 and the second horizontal plate 22. The locking part 30 can connect the first horizontal plate 21, the connecting rod 60 and the second horizontal plate 22.
[0037] The locking element 30 can be a screw 31 and a nut 32, the embedded steel bar can be a steel bar, the connecting rod 60 is tied to the steel bar, and the connecting rod 60 is inserted between the first horizontal plate 21 and the second horizontal plate 22 of the clamping base 20. The screw 31 passes through the first horizontal plate 21, the connecting rod 60 and the second horizontal plate 22, and the nut 32 is threadedly connected to the screw 31 at the bottom end of the second horizontal plate 22. The clamping base 20 is thus fixedly connected to the main structure 70 through the connecting rod 60.
[0038] When the entire suspension device needs to be suspended on the main structure 70, it is fixed by screw 31 and nut 32, and the safety rope 120 is attached to the steel wire rope 110 that is wound and connected to the hanging ring 11. When the construction is completed and the entire suspension device needs to be separated from the main structure 70, the nut 32 is loosened, the screw 31 is removed, and the clamp base 20 is separated from the connecting rod 60.
[0039] Example 2 Reference Figure 3 and Figure 4 A pole-clamp type safety rope suspension device is disclosed. The difference between this embodiment and Embodiment 1 lies in the specific structure of the locking structure 40 and its connection with the wire rope 110 and the pole 10, as follows: The locking structure 40 includes a connecting rod 41 and a clamping member 42. The connecting rod 41 is perpendicular to the pole 10 and located between two poles 10. Both ends of the connecting rod 41 are fixedly connected to the two poles 10 respectively, and the connecting rod 41 is positioned above the wire rope 110. The clamping member 42 is connected to a safety buckle 130 via a chain 140. Movement of the safety buckle 130 can move the clamping member 42. The clamping member 42 is slidably connected to the connecting rod 41. When the wire rope 110 bends away from the connecting rod 41, the clamping member 42 can abut against the wire rope 110.
[0040] The clamping component 42 includes a clamping block 421. When the main structure 70 is inclined, the upright 10 is perpendicular to the main structure 70 and inclined, the wire rope 110 is parallel to the main structure 70 and inclined, and the connecting rod 41 is located diagonally above and parallel to the wire rope 110. When the operator accidentally steps on or slips, the safety buckle 130 drives the safety rope 120 to move inclined and pulls the wire rope 110 away from the connecting rod 41. The wire rope 110 bends, and the clamping block 421 can abut against the wire rope 110, generating friction between the clamping block 421 and the wire rope 110, thereby preventing the operator from sliding downwards along the inclined wire rope 110 and causing secondary injury to the operator. When the operator is not in an emergency, the clamping block 421 is in a relaxed state. The clamping block 421 moves with the safety buckle 130 under the drive of the chain 140, thereby moving with the operator.
[0041] Reference Figure 4 and Figure 5 The clamping member 42 has a sliding hole 422 for the connecting rod 41 to pass through, and the clamping member 42 is slidably connected to the connecting rod 41 through the sliding hole 422. A clearance hole 423 is provided on the clamping member 42 below the sliding hole 422 for the wire rope 110 to pass through. The clamping member 42 includes a support frame 424 and a rotating plate 425. The support frame 424 is located above the side wall of the clearance hole 423 and is fixedly connected to the side wall of the clearance hole 423. The rotating plate 425 is located inside the support hole and above the support frame 424. The support frame 424 and the rotating plate 425 are rotatably connected at their center. When the wire rope 110 bends away from the connecting rod 41, the rotating plate 425 can abut against the wire rope 110.
[0042] When an inclined staircase or other inclined structure needs to be installed at a height, the main structure 70 is inclined, the upright 10 is perpendicular to the main structure 70 and inclined, and the wire rope 110 is parallel to the main structure 70 and inclined. If an operator accidentally steps on the rope or slips, the safety buckle 130 moves the safety rope 120 at an angle and pulls the wire rope 110 away from the connecting rod 41. The wire rope 110 bends, pressing the rotating plate 425 so that it rotates along the support frame 424. One side of the rotating plate 425 can abut against the wire rope 110, creating friction between them. This prevents the operator from sliding downwards along the inclined wire rope 110, thus avoiding secondary injury.
[0043] Reference Figure 4 and Figure 5The first elastic element 80 and the second elastic element 90 are arranged in parallel and located on both sides of the support frame 424, with the first elastic element 80 located on the side closer to the operator and the second elastic element 90 located on the side farther from the operator. The line connecting the first elastic element 80 and the second elastic element 90 is parallel to the wire rope 110. The first elastic element 80 connects the side wall of the clearance hole 423 to the rotating plate 425, and the second elastic element 90 connects the side wall of the clearance hole 423 to the rotating plate 425.
[0044] The first elastic element 80 can be a first spring 81, and the second elastic element 90 can be a second spring 91. When the operator accidentally steps on the wrong foot or slips, the safety buckle 130 causes the safety rope 120 to tilt and move, pulling the wire rope 110 away from the connecting rod 41. The wire rope 110 bends, and it presses the rotating plate 425, causing it to rotate around the support frame 424 in the direction of pressing the first spring 81. The first spring 81 is compressed, and the second spring 91 is stretched. The side of the rotating plate 425 with the second spring 91 can abut against the wire rope 110, generating friction between the rotating plate 425 and the wire rope 110, thereby preventing the operator from sliding down the wire rope 110 and causing secondary injury. Once the operator is out of danger and continues to stand on the main structure 70, the first spring 81 and the second spring 91 return to their original positions under the action of elasticity, the rotating plate 425 disengages from the wire rope 110, the clamping member 42 disengages from the wire rope 110, and the clamping member 42 continues to move with the operator under the action of the safety buckle 130.
[0045] Reference Figure 4 and Figure 5 Multiple sleeves 100 are fitted onto the wire rope 110, and the sleeves 100 abut against each other. Each sleeve 100 has a first tooth 101, and the rotating plate 425 has a second tooth 4251, which engages with the first tooth 101. A third tooth 426 is provided on the side wall of the clearance hole 423, which engages with the first tooth 101.
[0046] As the wire rope 110 moves away from the connecting rod 41, the rotating plate 425 rotates around the support frame 424. The sleeve 100 is positioned between the rotating plate 425 and the side wall of the clearance hole 423 on the clamping member 42. The second tooth 4251 on the rotating plate 425 engages with the first tooth 101 on the sleeve 100, and simultaneously, the first tooth 101 on the sleeve 100 engages with the third tooth 426 on the side wall of the clearance hole 423. The engagement of the first tooth 101 with the second tooth 4251 and the third tooth 426 respectively prevents the clamping member 42 from detaching from the wire rope 110. This prevents the operator from sliding downwards along the inclined wire rope 110, thus avoiding secondary injury to the operator.
[0047] The implementation principle of the pole clamp-type safety rope suspension device in this embodiment is as follows: the main structure 70 and the clamp base 20 are fixed by the locking member 30, which makes it more convenient to install and remove the safety rope 120 suspension device and facilitates repeated use. At the same time, by setting a steel wire rope 110 parallel to the main structure 70 on the outside of the main structure 70, the installation position will not interfere with the construction and is convenient for operators to carry out flexible construction.
[0048] When it is necessary to install an inclined staircase or other inclined structure at a high altitude, the main structure 70 is inclined, the upright 10 is perpendicular to the main structure 70 and inclined, and the wire rope 110 is parallel to the main structure 70 and inclined. When an operator accidentally steps on the rope or slips, the safety buckle 130 drives the safety rope 120 to move at an inclination and pulls the wire rope 110 away from the connecting rod 41. The wire rope 110 bends and squeezes the rotating plate 425, causing the rotating plate 425 to rotate around the support frame 424 in the direction of squeezing the first spring 81. The first spring 81 is compressed, and the second spring 91 is stretched. The second tooth 4251 on one side of the rotating plate 425, which is equipped with the second spring 91, engages with the first tooth 101 on the sleeve 100. Simultaneously, the first tooth 101 on the sleeve 100 engages with the third tooth 426 on the side wall of the clearance hole 423, preventing the clamping block 421 from sliding relative to the wire rope 110. This prevents the operator from sliding downwards along the wire rope 110, thus avoiding secondary injury. After the operator is out of danger and continues to stand on the main structure 70, the first spring 81 and the second spring 91 return to their original positions under elastic action. The rotating plate 425 disengages from the wire rope 110, and the clamping block 421 disengages from the wire rope 110. Driven by the safety buckle 130, the clamping block 421 continues to move with the operator.
[0049] Example 3 Reference Figure 6 A pole clamp-type safety rope suspension device. The difference between this embodiment and embodiment 1 is that when the main structure 70 is a drillable single steel plate structure 72 or a giant steel pipe structure, there is no need to set the connecting rod 60. Holes can be drilled at the matching position of the structure, and the clamp base 20 can be clamped and directly fixed to the structure with high-strength bolts.
[0050] The embodiments described in this specific implementation are preferred embodiments of this application and are not intended to limit the scope of protection of this application. Identical components are represented by the same reference numerals. Therefore, all equivalent changes made to the structure, shape, and principle of this application should be covered within the scope of protection of this application.
Claims
1. A standing pole carabiner type safety rope suspension device comprising a steel wire rope (110), a safety rope (120) and a safety carabiner (130), characterized in that, include A pole (10) is provided with a hanging ring (11), and a steel wire rope (110) passes through the hanging ring (11) and is wrapped and fixed with the hanging ring (11); A clamping base (20) is fixedly connected to the upright (10); the clamping base (20) includes a first horizontal plate (21), a second horizontal plate (22) and an arc plate (23), the arc plate (23) connects the first horizontal plate (21) and the second horizontal plate (22), the first horizontal plate (21), the second horizontal plate (22) and the arc plate (23) are integrally formed, the first horizontal plate (21) can abut against the upper end of the main structure (70), and the second horizontal plate (22) can abut against the lower end of the main structure (70); Locking member (30), which can connect the first horizontal plate (21), the main structure (70) and the second horizontal plate (22); The locking structure (40) is slidably connected to the wire rope (110). When the safety buckle (130) causes the wire rope (110) to bend downward, the locking structure (40) can lock relative to the wire rope (110).
2. A standing pole carabiner type safety line suspension device according to claim 1, characterized in that, It also includes a stiffening plate (50), the side of which is fixedly connected to the side wall of the upright (10), and the bottom edge of which is fixedly connected to the clamp base (20).
3. The pole clamp-type safety rope suspension device according to claim 2, characterized in that, It also includes a connecting rod (60) and a steel plate embedded part (71), the steel plate embedded part (71) is embedded in the main structure (70), the connecting rod (60) is welded to the steel plate embedded part (71), the connecting rod (60) is inserted between the first horizontal plate (21) and the second horizontal plate (22), and the locking part (30) can connect the first horizontal plate (21), the connecting rod (60) and the second horizontal plate (22).
4. A standing pole carabiner type safety line suspension device according to claim 3, characterized in that, The locking structure (40) includes a connecting rod (41) and a clamping member (42). The connecting rod (41) is fixedly connected to the two uprights (10) respectively. The clamping member (42) is connected to the safety buckle (130) through a chain (140). The clamping member (42) is slidably connected to the connecting rod (41). The clamping member (42) can abut against the wire rope (110).
5. A standing pole clip-on safety line hanger according to claim 4, wherein, The clamping member (42) has a sliding hole (422) and the clamping member (42) is slidably connected to the connecting rod (41) through the sliding hole (422); the clamping member (42) has a clearance hole (423) and the clearance hole (423) is arranged parallel to the sliding hole (422), and the wire rope (110) can pass through the clearance hole (423).
6. A standing pole clip-on safety line suspension device according to claim 5, characterised in that, The clamping component (42) also includes a support frame (424) and a rotating plate (425). The support frame (424) is fixedly connected to the side wall of the clearance hole (423). The support frame (424) is rotatably connected to the center of the rotating plate (425). The wire rope (110) can abut against the rotating plate (425).
7. A standing pole clip-on safety line hanger according to claim 6, wherein, It also includes a first elastic element (80) and a second elastic element (90), the first elastic element (80) and the second elastic element (90) are arranged in parallel and are located on both sides of the support frame (424); the first elastic element (80) connects the side wall of the clearance hole (423) to the rotating plate (425), and the second elastic element (90) connects the side wall of the clearance hole (423) to the rotating plate (425).
8. A standing pole carabiner type safety line suspension device according to claim 7, characterized in that It also includes sleeves (100), a plurality of sleeves (100) being fitted onto the wire rope (110) and abutting against each other.
9. A pole clamp-type safety rope suspension device according to claim 8, characterized in that, The sleeve (100) is provided with a first tooth (101), the rotating plate (425) is provided with a second tooth (4251), the second tooth (4251) can engage with the first tooth (101); the side wall of the clearance hole (423) is provided with a third tooth (426), the third tooth (426) can engage with the first tooth (101).