Sliding type wire connecting mechanism of signal tower
By designing a sliding wire connection mechanism on the signal tower, and using slide rails and traction components to achieve automatic connection of wires, the problem of low installation efficiency of manual suspension is solved, the connection efficiency is improved and the service life is extended.
Patent Information
- Application Number
- CN202422389616.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-09-30
- Publication Date
- 2025-08-22
- Estimated Expiration
- 2034-09-30
AI Technical Summary
The existing signal tower wire connection requires manual suspension installation, resulting in low installation efficiency and no slidable connection mechanism is set to affect the wire connection efficiency.
A signal tower sliding wire connection mechanism is designed, including slide rails, sliders, connecting bumps and concave blocks. The slider is driven to move along the slide rail through the traction assembly, so that the connecting bumps and concave blocks are clamped and connected, replacing manual suspension installation.
It improves the efficiency of signal tower wire connection, and can be disassembled and replaced in time when the connecting bumps and concave blocks are damaged, extending the service life of the connecting mechanism.
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Figure CN223260960U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of wire connection, in particular to a sliding wire connection mechanism for a signal tower. Background Art
[0002] A signal tower is a wireless signal transmission device erected by network operators. Its tower-like appearance gives it the name. It's also a form of public radio station, a radio transceiver station within a specific radio coverage area that transmits information between mobile phone terminals via a communications exchange center. Since the rise of wireless cities, signal towers have become the signal transmission base for urban Wi-Fi.
[0003] Existing signal towers are mostly steel-frame structures and are quite tall. During the installation of signal transmitters, the connecting wires of each transmitter need to be manually suspended and installed due to the high-altitude working conditions. This results in low installation efficiency. The signal towers are not equipped with a sliding wire connection mechanism that can be manipulated from the bottom to connect two wires, which reduces the efficiency of wire connection on the signal towers. Utility Model Content
[0004] In view of the above-mentioned defects or deficiencies in the prior art, it is desired to provide a sliding wire connection mechanism for a signal tower to solve the technical problem that the existing signal tower wire connection is connected and installed by manual suspension, the installation efficiency is low, and a slidable wire connection mechanism is not set on the signal tower so that the sliding wire connection mechanism can be manipulated at the bottom to connect the two wires, thereby affecting the wire connection efficiency on the signal tower.
[0005] According to the technical solution provided in an embodiment of the present application, a signal tower sliding wire connection mechanism includes a slide rail, two sliders, a connection protrusion, and a connection concave block. The connection protrusion and the connection concave block are respectively mounted on the two sliders. The two sliders are mounted on the slide rail, and the slider located at the upper portion is fixed to the slide rail by bolts. A traction assembly is provided between the two sliders for driving the slider located at the bottom to move upward along the slide rail so that the connection protrusion is engaged with the connection concave block.
[0006] The traction assembly includes a cable, a first pulley group and a second pulley group, wherein the first pulley group is installed at the rear end of the upper slider, and the second pulley group is installed at the rear end of the lower slider. One end of the cable is fixed to the lower slider, and after the cable passes around the pulley on the first pulley group, it passes through the two pulleys on the second pulley group to form a traction path, so that the traction assembly drives the slider at the bottom to move along the slide rail;
[0007] The connecting protrusion and the connecting concave block are compatible in structure, and their rear ends are connected to the wires respectively. Two positioning grooves are provided on the connecting protrusion and the connecting concave block, and corresponding positioning plates are provided on each of the sliders so that each of the positioning grooves is connected with each of the positioning plates, thereby making the connecting protrusion and the connecting concave block detachable.
[0008] Furthermore, corresponding screw holes are provided on both sides of the connecting protrusion and the connecting concave block, and corresponding through holes are provided on the positioning plate, so that the connecting protrusion and the connecting concave block can be fixed to the corresponding slider by bolts.
[0009] Furthermore, a plurality of connection ports are provided on the top of the connection protrusion, and a corresponding plurality of connection terminals are provided on the connection recess, so that the plurality of connection terminals are snap-fitted into the corresponding respective connection ports.
[0010] Furthermore, the first pulley assembly is provided with one pulley, and the second pulley assembly is provided with two pulleys.
[0011] Furthermore, sliding grooves are provided on both sides of the slide rail, the slider is sleeved on the outside of the slide rail, and two corresponding clamping blocks are provided inside the slider, and the clamping blocks are clamped in the corresponding sliding grooves.
[0012] In summary, the beneficial effects of this application are:
[0013] First, by respectively installing the connecting concave block and the connecting protrusion on the connecting mechanism, on which two connecting wires are installed, on the corresponding sliders, so that the slider on which the connecting concave block is installed is fixed to the slide rail by bolts, so that by pulling the cable on the traction assembly, the slider on which the connecting protrusion is installed is driven to move along the vertical direction of the slide rail, so that the connecting protrusion and the connecting concave block are snap-connected, so that the connecting wires fixedly connected to the rear ends of the connecting protrusion and the connecting concave block are connected, thereby improving the wire connection efficiency on the signal tower;
[0014] Second, by setting corresponding positioning grooves on the connecting protrusions and the connecting concave blocks, and setting corresponding positioning plates on the slider, so that the positioning grooves are clamped on the positioning plates, and the sides of the connecting protrusions and the connecting concave blocks are fixed by bolts, so that the connecting protrusions and the connecting concave blocks can be disassembled and replaced in time after damage, thereby improving the service life of the connecting mechanism. BRIEF DESCRIPTION OF THE DRAWINGS
[0015] Other features, objects and advantages of the present application will become more apparent upon reading the detailed description of non-limiting embodiments made with reference to the following drawings:
[0016] Figure 1This is a front view schematic diagram of the overall structure of the utility model;
[0017] Figure 2 This is a rear view schematic diagram of the overall structure of the utility model;
[0018] Figure 3 This is a schematic diagram of the decomposition structure of the utility model;
[0019] Figure 4 This is a schematic diagram of the structure of the connecting protrusion of the utility model;
[0020] Figure 5 This is a schematic diagram of the bottom structure of the connecting concave block of the utility model;
[0021] Numbers in the figure: connecting mechanism-100, slide rail-110, slider-120, positioning plate-121, snap-in block-122, connecting protrusion-130, positioning groove-131, connecting port-132, connecting recess-140, connecting terminal-141, traction assembly-150, cable-151, first pulley group-152, second pulley group-153. DETAILED DESCRIPTION
[0022] The present application will be further described in detail below with reference to the accompanying drawings and examples. It should be understood that the specific embodiments described herein are merely for the purpose of explaining the relevant utility model and are not intended to limit the utility model. It should also be noted that, for ease of description, only the portions relevant to the utility model are shown in the accompanying drawings.
[0023] It should be noted that, in the absence of conflict, the embodiments and features of the embodiments in this application can be combined with each other. The present application will be described in detail below with reference to the accompanying drawings and in combination with the embodiments.
[0024] A signal tower sliding wire connection mechanism, such as Figure 1-Figure 5As shown, the connecting mechanism 100 includes a slide rail 110, two sliders 120, a connecting protrusion 130 and a connecting concave block 140. The connecting protrusion 130 and the connecting concave block 140 are respectively installed on the two sliders 120. The two sliders 120 are sleeved on the slide rail 110, and the slider 120 at the upper part is fixed to the slide rail 110 by bolts. The slide rail 110 at the bottom slides and rotates on the slide rail 110. A traction assembly 150 is provided between the two sliders 120 so that the traction assembly 150 is used to The slider 120 at the bottom is driven to move upward along the slide rail 110 so that the connecting protrusion 130 is engaged with the connecting concave block 140, thereby connecting the connecting line connecting the connecting protrusion 130 and the connecting concave block 140; the traction assembly 150 includes a cable 151, a first pulley group 152 and a second pulley group 153, the first pulley group 152 is installed at the rear end of the upper slider 120, the second pulley group 153 is installed at the rear end of the lower slider 120, one end of the cable 151 is fixed to the lower slider 120, and the cable 151 is connected to the connecting line connecting the connecting protrusion 130 and the connecting concave block 140; After the rope 151 passes around the pulley on the first pulley group 152, it passes through the two pulleys on the second pulley group 153 to form a traction path, so that the cable 151 on the traction assembly 150 is pulled, thereby driving the slider 120 at the bottom to move along the slide rail 110, so that the connecting protrusion 130 is connected to the connecting line connected to the connecting concave block 140, thereby efficiently completing the wire connection on the signal tower, replacing the original manual suspension installation, and improving the wire connection efficiency on the signal tower; the connecting protrusion 130 and the connecting concave block 140 are structurally compatible, and their rear ends are respectively connected to the wires, and two positioning grooves 131 are provided on the connecting protrusion 130 and the connecting concave block 140, and each slider 120 is provided with corresponding positioning plates 121, so that each positioning groove 131 is snap-connected with each positioning plate 121, so that the connecting protrusion 130 and the connecting concave block 140 are detachable, so that the connecting protrusion 130 and the connecting concave block 140 can be disassembled and replaced in time after damage and aging, thereby improving the connection service life of the connection mechanism 100.
[0025] When the connecting mechanism 100 connects the wires on the signal tower, the connecting wires are respectively fixed to the rear ends of the connecting concave block 140 and the connecting protrusion 130 on the connecting mechanism 100, and the connecting concave block 140 and the connecting protrusion 130 are respectively clamped and installed on each slider 120 and fixed by bolts. At the same time, a traction assembly 150 is provided at the rear ends of the two sliders 120, so that the first pulley group 152 on the traction assembly 150 is installed at the rear end of the slider 120 located at the top of the slide rail 110, and the second pulley group 153 is installed at the rear end of the slider 120 located at the bottom of the slide rail 110, so that the cable 151 on the traction mechanism passes around the pulley on the first pulley group 152, and then passes through the two pulleys on the second pulley group 153, so that the traction cable 151 drives the slider 120 at the bottom to move upward, so that the connecting protrusion 130 is clamped and connected with the connecting concave block 140, so that the two connecting wires are connected, replacing the original manual suspension installation, thereby improving the connection efficiency of the signal tower wires.
[0026] As a preferred embodiment, please refer to Figure 4 and Figure 5 Corresponding screw holes are also provided on both sides of the connecting protrusion 130 and the connecting concave block 140, and corresponding through holes are provided on the positioning plate 121, so that the connecting protrusion 130 and the connecting concave block 140 can be fixed to the corresponding slider 120 by bolts, so that the connecting protrusion 130 and the connecting concave block 140 can be easily disassembled, thereby extending the service life of the connecting mechanism 100.
[0027] As a preferred embodiment, please refer to Figure 4 and Figure 5 A plurality of connection ports 132 are provided on the top of the connection protrusion 130, and a corresponding plurality of connection terminals 141 are provided on the connection recess 140, so that the plurality of connection terminals 141 are snapped into the corresponding connection ports 132, thereby realizing the connection between the connection protrusion 130 and the connection wires on the connection recess 140, thereby improving the connection efficiency of the signal tower wires.
[0028] As a preferred embodiment, please refer to Figure 2 and Figure 3 A pulley is provided on the first pulley group 152, and two pulleys are provided on the second pulley group 153, so that the cable 151 passes through the pulleys of the first pulley group 152 and the second pulley group to form a traction path, so that the slider 120 moves along the slide rail 110, so that the connecting line on the connecting mechanism 100 is slidably connected.
[0029] As a preferred embodiment, please refer to Figure 3 and Figure 4Slide grooves are provided on both sides of the slide rail 110, and the slider 120 is sleeved on the outside of the slide rail 110, and two corresponding clamping blocks 122 are provided inside the slider 120. The clamping blocks 122 are clamped in the corresponding slide grooves, so that the slider 120 can move straight along the slide rail 110, so that the connecting wires on the connecting mechanism 100 can be connected by sliding, thereby improving the connection efficiency of the signal tower wires.
[0030] The working principle of the sliding wire connection mechanism 100 of a signal tower in the present invention is as follows:
[0031] During the process of connecting the wires on the signal tower by the connecting mechanism 100, the connecting wires are respectively fixed to the rear ends of the connecting concave block 140 and the connecting protrusion 130 on the connecting mechanism 100, and the connecting concave block 140 and the connecting protrusion 130 are respectively clamped and installed on each slider 120 and fixed by bolts. At the same time, a traction assembly 150 is set at the rear ends of the two sliders 120, so that the first pulley group 152 on the traction assembly 150 is installed at the rear end of the slider 120 located at the top of the slide rail 110, and the second pulley group 153 is installed at the rear end of the slider 120 located at the bottom of the slide rail 110, so that the cable 151 on the traction mechanism passes around the pulley on the first pulley group 152, and then passes through the two pulleys on the second pulley group 153. The pulley is used to pull the cable 151, thereby driving the slider 120 at the bottom to move upward, so that the connecting protrusion 130 is snap-connected with the connecting concave block 140 to connect the two connecting lines, replacing the original manual suspension installation, thereby improving the connection efficiency of the signal tower wires. At the same time, corresponding positioning grooves 131 are provided on the connecting protrusion 130 and the connecting concave block 140, and a corresponding positioning plate 121 is provided on the slider 120, so that the positioning groove 131 is snap-connected to the positioning plate 121, and the sides of the connecting protrusion 130 and the connecting concave block 140 are fixed by bolts, so that the connecting protrusion 130 and the connecting concave block 140 can be disassembled and replaced in time after damage and aging, thereby improving the connection service life of the connecting mechanism 100.
[0032] The beneficial effects of the signal tower sliding wire connection mechanism 100 of the utility model are:
[0033] First, the connecting concave block 140 and the connecting protrusion 130 on the connecting mechanism 100, on which two connecting wires are mounted, are respectively mounted on the corresponding sliders 120, so that the sliders 120 mounted with the connecting concave block 140 are fixed to the slide rail 110 by bolts. The cable 151 on the traction assembly 150 is pulled, thereby driving the slider 120 mounted with the connecting protrusion 130 to move along the vertical direction of the slide rail 110, so that the connecting protrusion 130 and the connecting concave block 140 are engaged and connected, so that the connecting wires fixedly connected at the rear ends of the connecting protrusion 130 and the connecting concave block 140 are connected, thereby improving the efficiency of wire connection on the signal tower;
[0034] Second, by providing corresponding positioning grooves 131 on the connecting protrusion 130 and the connecting concave block 140, and providing a corresponding positioning plate 121 on the slider 120, so that the positioning groove 131 is engaged with the positioning plate 121, and the side surfaces of the connecting protrusion 130 and the connecting concave block 140 are fixed by bolts, the connecting protrusion 130 and the connecting concave block 140 can be disassembled and replaced in time after being damaged or aged, thereby improving the service life of the connecting mechanism 100.
[0035] The above description is merely an illustration of the preferred embodiments of this application and the technical principles employed. Furthermore, the scope of the utility model disclosed in this application is not limited to the technical solutions formed by the specific combination of the above-mentioned technical features. It also encompasses other technical solutions formed by any combination of the above-mentioned technical features or their equivalents without departing from the concept of the utility model. For example, a technical solution formed by replacing the above-mentioned features with (but not limited to) technical features with similar functions disclosed in this application.
Claims
1. A sliding wire connection mechanism for a signal tower, characterized by: The connecting mechanism (100) comprises a slide rail (110), two sliders (120), a connecting protrusion (130) and a connecting concave block (140); the connecting protrusion (130) and the connecting concave block (140) are respectively mounted on the two sliders (120); the two sliders (120) are mounted on the slide rail (110), and the slider (120) located at the upper portion is fixed to the slide rail (110) by bolts; a traction assembly (150) is provided between the two sliders (120) for driving the slider (120) located at the bottom portion to move upward along the slide rail (110) so that the connecting protrusion (130) is engaged and connected with the connecting concave block (140); The traction assembly (150) includes a cable (151), a first pulley group (152) and a second pulley group (153), wherein the first pulley group (152) is installed at the rear end of the upper slider (120), and the second pulley group (153) is installed at the rear end of the lower slider (120), one end of the cable (151) is fixed to the lower slider (120), and the cable (151) passes through the pulley on the first pulley group (152) and then passes through the two pulleys on the second pulley group (153) to form a traction path, so that the traction assembly (150) drives the slider (120) at the bottom to move along the slide rail (110); The connecting protrusion (130) and the connecting concave block (140) are structurally compatible, and their rear ends are respectively connected to the electric wires. Two positioning grooves (131) are provided on the connecting protrusion (130) and the connecting concave block (140), and corresponding positioning plates (121) are provided on each of the sliding blocks (120) so that each of the positioning grooves (131) and each of the positioning plates (121) are snap-connected, thereby making the connecting protrusion (130) and the connecting concave block (140) detachable.
2. The signal tower sliding wire connection mechanism according to claim 1, characterized in that: Corresponding screw holes are also provided on both sides of the connecting protrusion (130) and the connecting concave block (140), and corresponding through holes are provided on the positioning plate (121), so that the connecting protrusion (130) and the connecting concave block (140) can be fixed to the corresponding slider (120) by bolts.
3. The signal tower sliding wire connection mechanism according to claim 1, characterized in that: The top of the connection protrusion (130) is provided with a plurality of connection ports (132), and the connection recess (140) is provided with a corresponding plurality of connection terminals (141), so that the plurality of connection terminals (141) are snap-fitted into the corresponding respective connection ports (132).
4. The signal tower sliding wire connection mechanism according to claim 1, characterized in that: The first pulley assembly (152) is provided with a pulley, and the second pulley assembly (153) is provided with two pulleys.
5. The signal tower sliding wire connection mechanism according to claim 1, characterized in that: Slide grooves are provided on both sides of the slide rail (110), the slider (120) is sleeved on the outside of the slide rail (110), and two corresponding clamping blocks (122) are provided inside the slider (120), and the clamping blocks (122) are clamped in the corresponding slide grooves.