Suspension wire hoop for communication
The suspension clamp, with its modular design and self-locking mechanism, solves the problems of inconvenient installation, rigid cable fixing, and unreliable locking found in traditional suspension clamps. It achieves flexible installation, adaptive buffering, and automatic compensation, thus improving the adaptability and safety of the suspension clamp.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- HEBEI YUTIAN COMM EQUIP CO LTD
- Filing Date
- 2026-02-25
- Publication Date
- 2026-05-12
AI Technical Summary
Traditional cable clamps are inconvenient to install, have rigid cable fixing, poor locking reliability, insufficient expandability and versatility, and lack failure warning or compensation mechanisms.
The suspension clamp adopts a modular design, including an installation ring groove mechanism, a positioning block, a deflection installation ring, a positioning clamping mechanism, and a self-locking top rod mechanism, which enables flexible installation and adaptive buffering, and integrates a dual redundant locking mechanism to ensure reliable fixation.
It improves installation flexibility and reliability, protects cables, provides automatic compensation, ensures long-term fastness, and adapts to the needs of multi-cable laying and capacity expansion.
Smart Images

Figure CN122026264A_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of communication equipment technology, specifically a communication cable clamp. Background Technology
[0002] In external line engineering of communication networks, cables often need to be laid overhead using suspension cables. Traditional suspension cable clamps are mostly simple metal rings, fastened to the pole with bolts. Their suspension point is fixed, their function is limited, and they have revealed many limitations in practical applications.
[0003] Installation and adjustment are inconvenient: The suspension point position and angle of traditional clamps are fixed, making it difficult to adjust them according to the on-site wiring requirements once installed. If the direction of cable lead-out or the number of suspension points needs to be changed, it is often necessary to replace the entire clamp or add auxiliary parts, which is cumbersome.
[0004] Rigid cable fixing methods: Cable fixing clamps that come with cable clamps are usually rigid structures that can only accommodate cables of a specific diameter and lack cushioning and vibration damping designs. Under wind vibration or external forces, cables are prone to hard friction with the clamps, which may damage the cable sheath over time.
[0005] There are potential issues with the reliability of the locking mechanism to the pole: the clamp relies entirely on the torque of manually tightening the bolts to maintain its fastness to the concrete or steel pole. As the pole undergoes slight deformation due to temperature and humidity changes, or as the bolts may loosen under long-term vibration, gaps may form between the clamp and the pole, leading to a decrease in the fixing effect and a risk of slippage.
[0006] Poor scalability and versatility: A single clamp typically provides only a limited number of hanging points, making it difficult to flexibly meet the needs of simultaneously laying multiple cables or future line expansion. Different pole diameters require different clamp specifications, resulting in limited versatility.
[0007] Lack of failure warning or compensation mechanism: In the early stage when the bolts are loose but have not completely failed, traditional clamps cannot provide any warning or automatic compensation for the locking force, and safety hazards are not easily detected.
[0008] Therefore, there is an urgent need for an intelligent cable clamp that is flexible in installation, reliable in locking, adaptable to multiple cable laying, and has a certain degree of safety redundancy. Summary of the Invention
[0009] This invention provides a communication suspension clamp, which solves the problems mentioned in the background art.
[0010] To achieve the above objectives, the present invention provides the following technical solution:
[0011] A communication cable clamp includes two fixed arc plates, each with two pairs of symmetrically arranged fixed plates. Each fixed arc plate has a locking mechanism and an mounting ring groove mechanism. The mounting ring groove mechanism has several positioning block mechanisms, which are fixedly connected to a deflection mounting ring mechanism. The deflection mounting ring mechanism has several positioning cable clamping mechanisms. A locking lever mechanism is fixedly connected within the fixed arc plates. A self-locking push rod mechanism is also located within the fixed arc plates, connected to the locking lever mechanism. The locking mechanism connects the two fixed arc plates. The mounting ring groove mechanism houses the positioning block mechanisms. The deflection mounting ring mechanism installs the positioning cable clamping mechanisms, enabling rapid cable installation. The self-locking push rod mechanism pushes the locking lever mechanism, which then connects to the fixed rod.
[0012] As a preferred embodiment of the present invention, the locking mechanism includes a first bolt passing through the fixed plate, and the first bolt is threadedly connected to a first locking nut.
[0013] As a preferred embodiment of the present invention, the mounting ring groove mechanism includes a semi-ring plate fixed to the side of the fixing plate, the semi-ring plate is provided with a mounting arc groove, and the bottom of the semi-ring plate is provided with a positioning groove.
[0014] As a preferred embodiment of the present invention, the positioning block mechanism includes a positioning block disposed in the mounting arc groove, the positioning block and the semi-ring plate being slidably connected, and the positioning block being threadedly connected to a second bolt, the second bolt passing through the positioning groove.
[0015] As a preferred embodiment of the present invention, the deflection mounting ring mechanism includes a rotating base fixed on the positioning block, the rotating base being rotatably connected to a deflection shaft, the rotating base being threadedly connected to a third bolt, the end of the third bolt being in contact with the deflection shaft, the deflection shaft being fixedly connected to a mounting ring, and the mounting ring having a plurality of mounting holes.
[0016] As a preferred embodiment of the present invention, the positioning and locking mechanism includes a mounting frame, on which a fourth bolt is provided. The fourth bolt passes through the mounting frame, and the diameter of the fourth bolt is the same as the diameter of the mounting hole. The fourth bolt is threadedly connected to a second locking nut. Two positioning and locking ring mechanisms are provided on both the inner and outer sides of the mounting frame.
[0017] As a preferred embodiment of the present invention, the positioning clasp mechanism includes a mounting rod fixed to a mounting bracket, the mounting rod being fixedly connected to a fixed arc shell, a first elastic element being fixedly connected inside the fixed arc shell, a slider being fixedly connected to the first elastic element, the slider being located inside the fixed arc shell, the slider and the fixed arc shell being slidably connected, the slider being fixedly connected to a fixed arc rod, the fixed arc rod passing through the fixed arc shell, and the fixed arc rod and the fixed arc shell being slidably connected.
[0018] As a preferred embodiment of the present invention, the locking lever mechanism includes a first deflection lever seat and a second deflection lever seat fixed to the inner side of the fixed arc plate. The first deflection lever seat is rotatably connected to a first deflection shaft, and the second deflection lever seat is rotatably connected to a second deflection shaft. The first deflection shaft is fixedly connected to a first gear, and the second deflection shaft is fixedly connected to a second gear. The first gear and the second gear mesh. The first deflection shaft is fixedly connected to a first deflection rod, and the first deflection rod is fixedly connected to a first arc-shaped lever. The second deflection shaft is fixedly connected to a second deflection rod, and the second deflection rod is fixedly connected to a second arc-shaped lever.
[0019] As a preferred embodiment of the present invention, the self-locking push rod mechanism includes a displacement block groove disposed within a fixed arc plate, a displacement block disposed within the displacement block groove, the displacement block and the fixed arc plate being slidably connected, a second elastic element being fixedly connected between the displacement block and the fixed arc plate, the second elastic element being located within the displacement block groove, the displacement block being fixedly connected to a first deflection seat, the first deflection seat being rotatably connected to a push rod, the end of the push rod away from the first deflection seat being rotatably connected to a second deflection seat, the second deflection seat and the first deflection rod being fixedly connected, the displacement block being fixedly connected to a third elastic element, the end of the third elastic element away from the displacement block being fixedly connected to an indicator pull plate, the indicator pull plate being fixedly connected to a wedge-shaped locking rod, the end of the wedge-shaped locking rod near the fixed arc plate being a wedge-shaped structure, and a plurality of wedge-shaped positioning grooves being disposed within the fixed arc plate at positions corresponding to the wedge-shaped locking rod.
[0020] The present invention has the following advantages:
[0021] 1. This communication cable clamp, through its modular and self-locking design, significantly improves installation flexibility and operational reliability. Its core advantage lies in the fact that the mounting ring groove mechanism, detachable positioning blocks, deflection mounting rings, and positioning cable clamping mechanism together form a highly configurable hanging system. Construction personnel can flexibly add, remove, and arrange hanging points within the ring groove according to the number, routing, and spacing requirements of the cables, and independently adjust the horizontal angle of each hanging point. This achieves a high degree of adaptability—"one clamp, multiple cable laying schemes"—greatly simplifying the complexity of on-site installation and subsequent expansion.
[0022] 2. This clamp incorporates an adaptive buffer mechanism in the cable fixing process, effectively protecting the cable. The positioning and clamping mechanism adopts a symmetrical inner and outer elastic clamping ring design. Through a spring-driven slider and arc rod, it can apply a uniform and flexible clamping force to cables of different diameters. This design not only avoids cable sheath damage that may be caused by rigid clamps, but its elastic properties can also absorb some dynamic loads such as wind vibration, reducing fretting wear between the cable and the clamp, and extending the cable's service life.
[0023] 3. Particularly noteworthy is the integration of a unique automatic safety compensation function, enhancing locking reliability. The built-in locking lever mechanism ensures synchronized movement of the two arc-shaped levers through gear meshing, resulting in a tight fit against the rod. The linked self-locking push rod mechanism, when the main locking bolt of the clamp loosens due to vibration or other reasons, causing a small gap between the fixed arc plate and the rod, activates its internal elastic element to drive the wedge-shaped lever to move. This, in turn, pushes the locking lever mechanism via a connecting rod, causing the arc-shaped lever to automatically push outward, compensating for the gap and re-clamping the rod. This passive safety mechanism provides crucial redundancy for the long-term fastening of the clamp.
[0024] 4. Overall, this clamp structure is ingeniously designed and highly integrated. It organically combines an adjustable multi-point cable laying system with a dual-redundant locking mechanism (main bolt locking + automatic compensation locking). The various mechanisms are mechanically linked, requiring no external power. The structure is robust and durable, making it ideal for long-term use in harsh outdoor environments. It provides an excellent solution for the safe and efficient construction and maintenance of overhead communication lines. Attached Figure Description
[0025] To more clearly illustrate the specific embodiments of the present invention or the technical solutions in the prior art, the drawings used in the description of the specific embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are some embodiments of the present invention. For those skilled in the art, other drawings can be obtained from these drawings without creative effort.
[0026] Figure 1 This is a first-view structural schematic diagram of a communication suspension clamp.
[0027] Figure 2 This is a structural schematic diagram of a communication suspension clamp from a second perspective.
[0028] Figure 3 for Figure 2 A magnified view of region A in the middle.
[0029] Figure 4 This is a partial structural diagram of a communication cable clamp.
[0030] Figure 5 This is a cross-sectional view of a positioning clasp mechanism in a communication cable clamp.
[0031] In the diagram: 1. Fixed arc plate; 2. Fixed plate; 3. Locking mechanism; 301. First bolt; 302. First locking nut; 4. Mounting ring groove mechanism; 401. Semi-ring plate; 402. Mounting arc groove; 403. Positioning groove; 5. Positioning block mechanism; 501. Positioning block; 502. Second bolt; 6. Deflection mounting ring mechanism; 601. Rotating base; 602. Deflection shaft; 603. Third bolt; 604. Mounting ring; 605. Mounting hole; 7. Positioning clamping mechanism; 701. Mounting bracket; 702. Fourth bolt; 703. Second locking nut; 704. Positioning clamping ring mechanism; 7041. Mounting rod; 7042. Fixed arc shell; 7043. First elastic element; 7044, slider; 7045, fixed arc rod; 8, locking lever mechanism; 801, first deflection rod seat; 802, second deflection rod seat; 803, first deflection shaft; 804, second deflection shaft; 805, first gear; 806, second gear; 807, first deflection rod; 808, first arc-shaped lever; 809, second deflection rod; 810, second arc-shaped lever; 9, self-locking push rod mechanism; 901, displacement block groove; 902, displacement block; 903, second elastic element; 904, first deflection seat; 905, push rod; 906, second deflection seat; 907, third elastic element; 908, indicator pull plate; 909, wedge-shaped lever. Detailed Implementation
[0032] The preferred embodiments of the present invention will be described below with reference to the accompanying drawings. It should be understood that the preferred embodiments described herein are for illustration and explanation only and are not intended to limit the present invention.
[0033] It should be noted that the terms "center", "upper", "lower", "left", "right", "vertical", "horizontal", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing the present invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on the present invention.
[0034] For examples, please refer to Figures 1-5A communication cable clamp includes two fixed arc plates 1. Each fixed arc plate 1 has two pairs of symmetrically arranged fixed plates 2. Each fixed plate 2 has a locking mechanism 3. Each fixed arc plate 1 has an mounting ring groove mechanism 4. The mounting ring groove mechanism 4 has several positioning block mechanisms 5. The positioning block mechanisms 5 are fixedly connected to a deflection mounting ring mechanism 6. The deflection mounting ring mechanism 6 has several positioning cable clamping mechanisms 7. A locking lever mechanism 8 is fixedly connected inside each fixed arc plate 1. A self-locking push rod mechanism 9 is also located inside each fixed arc plate 1. The self-locking push rod mechanism 8 and the locking lever mechanism 9 are connected. The locking mechanism 3 connects the two fixed arc plates 1. The mounting ring groove mechanism 4 houses the positioning block mechanisms 5. The deflection mounting ring mechanism 6 installs the positioning cable clamping mechanisms 7, which enable rapid cable installation. The self-locking push rod mechanism 9 pushes the locking lever mechanism 8, which is then connected to the fixed rod.
[0035] The locking mechanism 3 includes a first bolt 301 passing through the fixed plate 2, and the first bolt 301 is threadedly connected to a first locking nut 302.
[0036] The mounting ring groove mechanism 4 includes a semi-ring plate 401 fixed to the side of the fixing plate 2. The semi-ring plate 401 is provided with a mounting arc groove 402, and the bottom of the semi-ring plate 401 is provided with a positioning groove 403. The positioning block mechanism 5 includes a positioning block 501 disposed in the mounting arc groove 402. The positioning block 501 and the semi-ring plate 401 are slidably connected. The positioning block 501 is threadedly connected to a second bolt 502, and the second bolt 502 passes through the positioning groove 403.
[0037] Specifically, the semi-circular plate 401 is connected to the fixed arc plate 1, and has an installation arc groove 402 and a long strip-shaped positioning groove 403. The positioning block 501 of the positioning block mechanism 5 can be embedded in the installation arc groove 402 and slide along it. By passing the second bolt 502 through the positioning groove 403 and screwing it into the positioning block 501, the positioning block 501 can be locked in any position of the semi-circular plate 401.
[0038] The deflection mounting ring mechanism 6 includes a rotating base 601 fixed to the positioning block 501. The rotating base 601 is rotatably connected to the deflection shaft 602. The rotating base 601 is threadedly connected to a third bolt 603. The end of the third bolt 603 contacts the deflection shaft 602. The deflection shaft 602 is fixedly connected to a mounting ring 604. The mounting ring 604 has several mounting holes 605. The positioning locking mechanism 7 includes a mounting frame 701. The mounting frame 701 has a fourth bolt 702. The fourth bolt 702 passes through the mounting frame 701. The diameter of the fourth bolt 702 is the same as the diameter of the mounting hole 605. The fourth bolt 702 is threadedly connected to a second locking nut 703. The mounting frame 701 has two positioning locking ring mechanisms 704 on both the inner and outer sides. The positioning retaining ring mechanism 704 includes a mounting rod 7041 fixed to the mounting bracket 701. The mounting rod 7041 is fixedly connected to a fixed arc shell 7042. A first elastic element 7043 is fixedly connected inside the fixed arc shell 7042. The first elastic element 7043 is fixedly connected to a slider 7044. The slider 7044 is located inside the fixed arc shell 7042 and is slidably connected to the fixed arc shell 7042. The slider 7044 is fixedly connected to a fixed arc rod 7045. The fixed arc rod 7045 passes through the fixed arc shell 7042 and is slidably connected to the fixed arc shell 7042.
[0039] Specifically, by loosening the third bolt 603, the deflection angle of the mounting ring 604 can be manually adjusted. After adjustment, tighten the third bolt 603 so that its end presses against the deflection shaft 602 to fix the angle.
[0040] Additionally, the positioning cable clamping mechanism 7 passes through the mounting hole 605 via the fourth bolt 702 on its mounting bracket 701 and is secured to the mounting ring 604 with the second locking nut 703. Multiple mechanisms can be installed as needed. Each positioning cable clamping mechanism 7 has two sets of positioning ring clamping mechanisms 704 symmetrically mounted on its mounting bracket 701. In each set, the fixed arc shell 7042 is fixed to the mounting bracket 701 via the mounting rod 7041. The slider 7044 is placed inside the fixed arc shell 7042 and can slide, connected to the fixed arc shell 7042 via the first elastic element 7043. One end of the fixed arc rod 7045 is fixed to the slider 7044, and the other end extends out of the fixed arc shell 7042. This allows the cable to be placed within the fixed arc shell 7042 and the fixed arc rod 7045.
[0041] The locking lever mechanism 8 includes a first deflection lever seat 801 and a second deflection lever seat 802 fixed to the inner side of the fixed arc plate 1. The first deflection lever seat 801 is rotatably connected to a first deflection shaft 803, and the second deflection lever seat 802 is rotatably connected to a second deflection shaft 804. The first deflection shaft 803 is fixedly connected to a first gear 805, and the second deflection shaft 804 is fixedly connected to a second gear 806. The first gear 805 and the second gear 806 mesh. The first deflection shaft 803 is fixedly connected to a first deflection rod 807, the first deflection rod 807 is fixedly connected to a first arc-shaped locking lever 808, the second deflection shaft 804 is fixedly connected to a second deflection rod 809, and the second deflection rod 809 is fixedly connected to a second arc-shaped locking lever 810. The self-locking push rod mechanism 9 includes a displacement block groove 901 disposed in the fixed arc plate 1, a displacement block 902 disposed in the displacement block groove 901, the displacement block 902 being slidably connected to the fixed arc plate 1, a second elastic element 903 being fixedly connected between the displacement block 902 and the fixed arc plate 1, the second elastic element 903 being located in the displacement block groove 901, the displacement block 902 being fixedly connected to a first deflection seat 904, the first deflection seat 904 being rotatably connected to a push rod 905, the push rod 905 being away from the first deflection seat 902. One end of 4 is rotatably connected to the second deflection seat 906. The second deflection seat 906 and the first deflection rod 807 are fixedly connected. The displacement block 902 is fixedly connected to the third elastic element 907. The end of the third elastic element 907 away from the displacement block 902 is fixedly connected to the indicator pull plate 908. The indicator pull plate 908 is fixedly connected to the wedge-shaped locking rod 909. The end of the wedge-shaped locking rod 909 near the fixed arc plate 1 is a wedge-shaped structure. Several wedge-shaped positioning grooves are provided in the fixed arc plate 1 at positions corresponding to the wedge-shaped locking rod 909.
[0042] Specifically, the positioning block 902 is placed in the positioning block groove 901 inside the fixed arc plate 1 and is slidable. A second elastic element 903 connects it to the groove wall. The positioning block 902 is connected to the first deflection rod 807 through the first deflection seat 904, the push rod 905, and the second deflection seat 906. The positioning block 902 is also connected to the indicator pull plate 908 through the third elastic element 907. A wedge-shaped locking rod 909 is fixed on the indicator pull plate 908. The inclined surface of the wedge-shaped locking rod 909 contacts the inclined surface of the inner wall of the fixed arc plate 1. When the clamp is fully tightened by the locking mechanism 3, the first arc-shaped locking rod 808 and the second arc-shaped locking rod 810 will be tightly attached to the rod body. At this time, the self-locking top rod mechanism 9 is in a compressed energy storage state. Due to the presence of the wedge-shaped locking rod 909 and the wedge-shaped positioning groove, it can be ensured that the first arc-shaped locking rod 808 and the second arc-shaped locking rod 810 will not loosen when locked, so as to achieve one-way self-locking.
[0043] The workflow of this invention is as follows:
[0044] Install the clamp body: Open the two fixing arc plates 1, place them on the target pole at the designated height, align the fixing plate 2, insert all the first bolts 301, and use a wrench to evenly tighten the first locking nuts 302 until the clamp firmly grips the pole. At this time, the arc-shaped locking rod of the locking rod mechanism 8 is pressed tightly against the pole surface under the synchronous action of the gears.
[0045] Configure hanging points: Determine the required number and location of hanging points according to the wiring design. Place the corresponding number of positioning blocks 501 of the positioning block mechanism 5 into the mounting arc grooves 402 of the mounting ring groove mechanism 4, slide them to the predetermined position, and tighten the second bolt 502 to fix them. Install the deflection mounting ring mechanism 6 on the positioning blocks 501, adjust the mounting ring 604 to the required deflection angle, and tighten the third bolt 603 to fix it.
[0046] Cable clamp installation: Based on the number of cables to be fixed, install the corresponding number of positioning clamping mechanisms 7 onto the mounting holes 605 of each mounting ring 604 using the fourth bolt 702, and lock them with the second locking nut 703.
[0047] Cable laying and securing: The communication cables are placed one by one between the upper and lower sets of fixing arc rods 7045 of the corresponding positioning and clamping mechanism 7. The fixing arc rods 7045 automatically close under the action of the first elastic element 7043, gently and firmly holding the cables.
[0048] Safety Monitoring and Compensation: During long-term use, if the main locking mechanism 3 becomes loose due to vibration or other reasons, a small gap will appear between the fixed arc plate 1 and the rod body. At this time, the second elastic element 903, which has been compressed in the self-locking top rod mechanism 9, begins to release, pushing the positioning block 902 to move. The positioning block 902 pushes the first deflection rod 807 through the push rod 905, and then drives the second deflection rod 809 to move synchronously through gear transmission, causing the first arc-shaped locking rod 808 and the second arc-shaped locking rod 810 to push outward, actively compensating for the gap and re-locking the rod body. This process is accompanied by the outward movement of the indicator pull plate 908, which can serve as a visual warning of loosening.
[0049] Finally, it should be noted that the above descriptions are merely preferred embodiments 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 foregoing embodiments, those skilled in the art can still modify the technical solutions described in the foregoing embodiments or make equivalent substitutions for some of the technical features. Any modifications, equivalent substitutions, improvements, etc., made within the spirit and principles of the present invention should be included within the protection scope of the present invention.
Claims
1. A communication cable clamp, comprising two fixing arc plates, characterized in that, The fixed arc plate has two pairs of symmetrically arranged fixed plates. Each fixed plate has a locking mechanism and an installation ring groove mechanism. The installation ring groove mechanism has several positioning block mechanisms, which are fixedly connected to a deflection installation ring mechanism. The deflection installation ring mechanism has several positioning cable clamping mechanisms. A locking lever mechanism is fixedly connected inside the fixed arc plate. A self-locking push rod mechanism is also located inside the fixed arc plate, and it is connected to the locking lever mechanism. The locking mechanism connects the two fixed arc plates. The installation ring groove mechanism houses the positioning block mechanism. The deflection installation ring mechanism installs the positioning cable clamping mechanism, which enables rapid cable installation. The self-locking push rod mechanism pushes the locking lever mechanism, which connects to the fixed rod.
2. The communication suspension clamp according to claim 1, characterized in that, The locking mechanism includes a first bolt passing through a fixed plate, the first bolt being threadedly connected to a first locking nut.
3. The communication suspension clamp according to claim 1, characterized in that, The mounting ring groove mechanism includes a semi-ring plate fixed to the side of the fixing plate, the semi-ring plate is provided with a mounting arc groove, and the bottom of the semi-ring plate is provided with a positioning groove.
4. The communication suspension clamp according to claim 3, characterized in that, The positioning block mechanism includes a positioning block disposed in the mounting arc groove, the positioning block and the semi-ring plate are slidably connected, and the positioning block is threadedly connected to a second bolt, which passes through the positioning groove.
5. The communication suspension clamp according to claim 4, characterized in that, The deflection mounting ring mechanism includes a rotating base fixed on the positioning block, a deflection shaft rotatably connected to the rotating base, a third bolt threadedly connected to the rotating base, the end of the third bolt contacting the deflection shaft, a mounting ring fixedly connected to the deflection shaft, and a plurality of mounting holes provided on the mounting ring.
6. The communication suspension clamp according to claim 5, characterized in that, The positioning and locking mechanism includes a mounting frame with a fourth bolt that passes through it. The diameter of the fourth bolt is the same as the diameter of the mounting hole. The fourth bolt is threaded to a second locking nut. Two positioning and locking ring mechanisms are provided on both the inner and outer sides of the mounting frame.
7. The communication suspension clamp according to claim 6, characterized in that, The positioning clasp mechanism includes a mounting rod fixed to the mounting bracket, the mounting rod being fixedly connected to a fixed arc shell, a first elastic element being fixedly connected inside the fixed arc shell, a slider being fixedly connected to the first elastic element, the slider being located inside the fixed arc shell, the slider and the fixed arc shell being slidably connected, the slider being fixedly connected to a fixed arc rod, the fixed arc rod passing through the fixed arc shell, the fixed arc rod and the fixed arc shell being slidably connected.
8. The communication suspension clamp according to claim 1, characterized in that, The locking lever mechanism includes a first deflection lever seat and a second deflection lever seat fixed to the inner side of the fixed arc plate. The first deflection lever seat is rotatably connected to a first deflection shaft, and the second deflection lever seat is rotatably connected to a second deflection shaft. The first deflection shaft is fixedly connected to a first gear, and the second deflection shaft is fixedly connected to a second gear. The first gear and the second gear mesh. The first deflection shaft is fixedly connected to a first deflection rod, and the first deflection rod is fixedly connected to a first arc-shaped locking lever. The second deflection shaft is fixedly connected to a second deflection rod, and the second deflection rod is fixedly connected to a second arc-shaped locking lever.
9. The communication suspension clamp according to claim 8, characterized in that, The self-locking push rod mechanism includes a displacement block groove located within a fixed arc plate, a displacement block located within the groove, a displacement block slidably connected to the fixed arc plate, a second elastic element fixedly connected between the displacement block and the fixed arc plate, the second elastic element being located within the displacement block groove, a first deflection seat fixedly connected to the displacement block, a push rod rotatably connected to the first deflection seat, a second deflection seat rotatably connected to the end of the push rod away from the first deflection seat, a fixed connection between the second deflection seat and the first deflection rod, a third elastic element fixedly connected to the displacement block, an indicator pull plate fixedly connected to the end of the third elastic element away from the displacement block, a wedge-shaped locking rod fixedly connected to the wedge-shaped locking rod, a wedge-shaped structure at the end of the wedge-shaped locking rod near the fixed arc plate, and several wedge-shaped positioning grooves located within the fixed arc plate corresponding to the wedge-shaped locking rod.