Wireless remote control direct current cableway equipment

Through wireless remote control of DC cable equipment, solar power supply and wireless remote control components, the problem that hydrologic cable equipment cannot monitor depth and distance in real time is solved, and remote control and efficient hydrological data detection are realized.

CN223192349UActive Publication Date: 2025-08-05JINGJIANG HYDROLOGY & WATER RESOURCES SURVEY BUREAU OF CHANGJIANG WATER RESOURCES COMMISSION
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Patent Information

Application Number
CN202422859584.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-11-22
Publication Date
2025-08-05
Estimated Expiration
2034-11-22

AI Technical Summary

Technical Problem

The existing hydrological cableway equipment cannot monitor the depth and distance of the hydrological detection equipment in real time during detection, and its operation is limited by fixed areas, so it cannot effectively detect hydrological data in long-distance waters.

Method used

Wireless remote control DC cable equipment is adopted, including power supply components, cable components and wireless remote control components. Powered by solar panels, the equipment is continuously powered by power supply rail cables and cable main cables, and the counting sensors and wireless remote control components are combined to achieve remote control and precise positioning.

Benefits of technology

It realizes no need for on-site operation, saves costs, improves detection efficiency and accuracy, can monitor the location of the equipment in real time, adapt to complex environments, and is suitable for large-scale river monitoring.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses wireless remote control direct current cableway equipment which comprises a cableway tower, a reinforcing plate, hydrological equipment, a power supply assembly, a cableway assembly and a wireless remote control assembly. The beneficial effects of the utility model are that solar energy can be converted into electric energy through the solar cell panel, and the electric energy is stored in the battery, on one hand, the electric energy can be stored, the solar energy is fully utilized, the use cost is saved, a complex cableway operation station building does not need to be established, the cost is saved, and the counting sensor is arranged; according to the method, the distance between the hydrological equipment and the river channel and the descending height can be accurately calculated, the method is crucial for work needing to accurately master the position of the equipment in the river channel, accurate position data is beneficial to accurately measuring water temperatures at different water depths, and then the temperature stratification condition of a water body is more accurately analyzed.
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Description

Technical Field

[0001] The utility model relates to a cableway device, in particular to a wireless remote-controlled DC cableway device, belonging to the technical field of hydrological equipment. Background Art

[0002] Hydrological stations used on major rivers in China employ cableway flow measurement, with a grid of measuring points set up throughout the river. Hydrological stations are grassroots hydrological institutions that observe and collect hydrological and meteorological data on rivers, lakes, reservoirs, and other water bodies. Currently, most hydrological stations measure river flow velocity by controlling a cableway winch, carrying various hydrological instruments and equipment, to a specific depth underwater to collect data such as flow velocity, flow direction, water temperature, suspended load, and bedload.

[0003] Hydrological cableway is a type of professional hydrological testing equipment. It can transport hydrological testing instruments to any designated location above the river being tested. The structural forms of hydrological cableway are divided into suspension cableway, box cableway, boat cableway and multi-span cableway according to the different suspension components; and divided into single-span cableway, double-span cableway and multi-span cableway according to the number of spans. The selection of hydrological cableway is usually determined by the terrain of the measuring station, natural environment, cross-section conditions, water level fluctuation, flow velocity, and flow measurement and sand collection methods.

[0004] In the prior art, there is a hydrological cableway disclosed in announcement number CN218119221U, which is connected to the two sides and the top of the detection equipment through multiple cables, and by establishing multiple constraint points, it is possible to limit the freedom of the detection equipment, thereby reducing the swing amplitude of the detection equipment during movement. However, the existing hydrological cableway can only be operated in a fixed area when in use. When the detection personnel are on the other side of the river bank or have not entered the control room, they cannot operate the detection method of the relevant equipment, which will bring inconvenience to the detection. In addition, when the hydrological detection equipment body is detecting areas such as the center of the river, due to the long distance from the shore, the detection personnel cannot effectively observe in real time the depth of the hydrological detection equipment body entering the water and the distance of the hydrological equipment from the river bank, and cannot effectively detect the hydrological data in the corresponding water layer of the relevant water area. Summary of the Invention

[0005] The purpose of the present utility model is to provide a wireless remote control DC cableway device in order to solve at least one of the above technical problems.

[0006] The utility model achieves the above-mentioned object through the following technical solutions: a wireless remote control DC cableway equipment, comprising a reinforcement plate symmetrically arranged on a cableway tower and fixedly connected to the bottom surface of the cableway tower, and a hydrological device arranged between the two cableway towers;

[0007] A power supply assembly is provided on the surface of one of the cableway towers, which includes a power supply system bracket symmetrically fixedly connected to the surface of the cableway tower, a power box fixedly connected to the top of the power supply system bracket, and a solar panel, battery and power supply cable for powering the equipment;

[0008] A cableway assembly is provided between the two cableway towers. The cableway assembly includes a power rail steel cable and a cableway main cable erected between the two cableway towers. The power rail steel cable is located on the upper side of the cableway main cable.

[0009] A wireless remote control assembly is provided on the surface of the main cable, which includes a traveling box arranged between the cableway towers, a first rotating rod symmetrically fixedly connected to the inner surface of the traveling box, and a traveling pulley, a first sprocket, a counting sensor, a chain, a second sprocket, a worm gear reducer and a reduction motor for driving the traveling box to move.

[0010] As a further solution of the present invention: the surface of each cableway tower is fixedly connected with an anchor cable, and the bottom end of the anchor cable is fixedly connected with a ground anchor.

[0011] As a further solution of the present invention: a solar panel is installed obliquely on the surface of the power box through a mounting bracket, a battery is fixedly installed inside the power box, the solar panel is electrically connected to the battery through a conductive cable, the output end of the battery is fixedly connected to a power supply cable, and a surveillance camera is fixedly installed on the surface of the power box.

[0012] As a further solution of the present invention: the surface of each cableway tower is symmetrically connected with vertical plates, and the power supply slide rail cable pulley and the main cable pulley are connected in sequence from top to bottom through the rotating shaft. The surfaces of the two power supply slide rail cable pulleys are provided with power supply rail cables, and the surfaces of the two main cable pulleys are provided with cableway main cables. The two ends of the cableway main cable and the power supply rail cable are respectively fixedly connected to the anchor cables on both sides, and the power supply cable is slidably wound around the surface of the power supply rail cable.

[0013] As a further solution of the present invention, a lightning protection net is provided on the bottom surface of the ground anchor and the bottom surface of the reinforcement plate.

[0014] As a further solution of the present invention: the driving pulley is arranged on the surface of the main cable of the cableway, the surfaces of the two first rotating rods are fixedly sleeved with the first sprocket, the inner wall surface of the driving box is fixedly connected with a support plate, the surface of the support plate is fixedly connected with a worm gear reducer, a reduction motor is fixedly installed on one side surface of the driving box, the output end of the reduction motor and the input end of the worm gear reducer are fixedly connected, the output end of the worm gear reducer is fixedly connected with the second sprocket, the second sprocket and the first sprocket are connected by a chain transmission, the bottom surface of the driving box is fixedly connected with an electric winch, the winding end of the electric winch is wound with a steel wire rope, and the bottom end of the steel wire rope is detachably connected to a hydrological equipment.

[0015] As a further solution of the present invention: the worm gear reducer includes a housing, the housing and the support plate are fixedly connected, the inner wall surface of the housing is rotatably connected to the worm body, the worm body and the output shaft of the reduction motor are fixedly connected, the surface of the worm body is meshingly connected to the worm wheel body, the surface of the worm wheel body is fixedly sleeved with a second rotating rod, the second rotating rod is rotatably connected to the housing, one end of the second rotating rod passes through the housing and extends to the outside of the housing, and is fixedly connected to the second sprocket arranged inside the driving box.

[0016] As a further solution of the present invention, a motor wireless controller is fixedly connected to the surface of the driving box.

[0017] As a further solution of the present invention: counting sensors are coaxially mounted on the surfaces of the first rotating rod and the winding shaft of the electric winch.

[0018] The beneficial effects of the utility model are:

[0019] 1. The utility model is provided with a power supply component, which can convert solar energy into electrical energy through solar panels and store it in batteries. On the one hand, it can store electrical energy, make full use of solar energy, save use costs, and do not need to build a complex cableway operation station, thus saving costs;

[0020] 2. The utility model is equipped with a cableway assembly. By setting up a power supply line cable, the first is to ensure continuous power supply to the equipment. When the hydrological equipment moves between the two towers, the power supply cable can slide on the cable, so that the equipment can still maintain connection with the power supply during the movement, and there will be no power interruption due to power supply cable length limitation or entanglement, ensuring the normal operation of the equipment;

[0021] Second, it protects the power supply cables. Sliding the power supply cables around the power supply rail cables can prevent the power supply cables from being accidentally damaged by passing vehicles, pedestrians, or floating objects in the water. It also reduces the wear and tear of the power supply cables caused by their own gravity, wind, and other factors, thereby extending the service life of the power supply cables.

[0022] 3. The utility model is equipped with a wireless remote control component, so the operator does not need to go to the river site in person, avoiding the dangers that may be faced by being close to turbulent water, complex terrain, bad weather, etc. For example, during flood season or when the river surface is not frozen, the operator can detect the river situation without going to the site, and the operator can adjust the position and operating status of the hydrological equipment at any time according to needs, without being restricted by distance and site environment;

[0023] At the same time, there is no need for staff to run back and forth on site to operate the equipment, saving time and energy. At the same time, one operator can control multiple devices at the same time, improving work efficiency. The advantages are more obvious when frequent monitoring of a large area of river is required.

[0024] 4. The utility model is equipped with a counting sensor, which can accurately calculate the distance of the hydrological equipment from the river channel and the height of the descent. This is crucial for work that requires accurate grasp of the position of the equipment in the river channel. Accurate position data helps to accurately measure the water temperature at different water depths, and thus more accurately analyze the temperature stratification of the water body;

[0025] The location information of hydrological equipment can be obtained in real time. Operators can quickly know the location of the equipment at the control end without additional complex operations or manual measurements, which improves work efficiency and enables remote control without the need for on-site measurements. BRIEF DESCRIPTION OF THE DRAWINGS

[0026] Figure 1 This is a schematic diagram of the overall structure of the utility model Figure 1 ;

[0027] Figure 2 This is a schematic diagram of the overall structure of the utility model Figure 2 ;

[0028] Figure 3 This is a schematic diagram of the overall structure of the utility model Figure 3 ;

[0029] Figure 4 This is a schematic diagram of the cross-sectional structure of the power box in the present utility model;

[0030] Figure 5 This is a schematic diagram of the structure of the wireless remote control component in this utility model Figure 1 ;

[0031] Figure 6 This is a schematic diagram of the structure of the wireless remote control component in this utility model Figure 2 ;

[0032] Figure 7 This is a schematic diagram of the cross-sectional structure of the carriage in the utility model. Figure 1 ;

[0033] Figure 8 This is a schematic diagram of the cross-sectional structure of the carriage in the utility model. Figure 2 ;

[0034] Figure 9 This is a schematic diagram of the connection structure of the worm gear reducer in the utility model.

[0035] In the figure: 1. Cableway tower, 2. Reinforcement plate, 3. Power supply component, 31. Power supply system bracket, 32. Power box, 33. Solar panel, 34. Surveillance camera, 35. Battery, 36. Power supply cable, 4. Cableway component, 41. Vertical plate, 42. Main rope pulley, 43. Power supply slide rail cable pulley, 44. Power supply rail cable, 45. Cableway main rope, 5. Wireless remote control component, 51. Driving box, 53. First rotating rod, 54. Driving pulley, 55. First sprocket, 56. Counting sensor, 57. Chain, 58. Second sprocket, 59. Support plate, 510. Reducer motor, 511. Housing, 512. Worm body, 513. Worm wheel body, 514. Second rotating rod, 515. Electric winch, 516. Wire rope, 517. Motor wireless controller, 6. Hydrological equipment, 7. Lightning protection net. DETAILED DESCRIPTION

[0036] The following will be combined with the drawings in the embodiments of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the embodiments described are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.

[0037] Example 1, as Figures 1 to 9 As shown, a wireless remote control DC cableway equipment includes a cableway tower 1 symmetrically arranged and a reinforcement plate 2 fixedly connected to the bottom surface of the cableway tower 1 and a hydrological device 6 arranged between the two cableway towers 1;

[0038] A power supply assembly 3 is provided on the surface of one of the cableway towers 1. The power supply assembly 3 includes a power supply system bracket 31 symmetrically fixedly connected to the surface of the cableway tower 1, a power supply box 32 fixedly connected to the top of the power supply system bracket 31, and a solar panel 33, a battery 35 and a power supply cable 36 for powering the equipment. The power supply can be provided to the equipment without the need for a dedicated cableway operation station, thus saving costs.

[0039] A cableway assembly 4 is provided between the two cableway towers 1. The cableway assembly 4 includes a power rail cable 44 and a cableway main cable 45 which are erected between the two cableway towers 1. The power rail cable 44 is located on the upper side of the cableway main cable 45.

[0040] A wireless remote control component 5 is provided on the surface of the main rope 45. The wireless remote control component 5 includes a traveling box 51 arranged between the cableway towers 1 and a first rotating rod 53 symmetrically fixedly connected to the inner surface of the traveling box 51 and a traveling pulley 54, a first sprocket 55, a counting sensor 56, a chain 57, a second sprocket 58, a worm gear reducer and a reduction motor 510 for driving the traveling box 51 to move. The power system, control system and power supply system are concentrated on the cableway, which is conducive to management and saves management costs. Remote control can be realized and it is convenient for unmanned operation and inspection.

[0041] Embodiment 2: In addition to all the technical features of embodiment 1, this embodiment also includes: an anchor cable 11 is fixedly connected to the surface of each cable tower 1, and the bottom end of the anchor cable 11 is fixedly connected to a ground anchor 12, which can ensure the installation firmness of the cable tower 1.

[0042] A solar panel 33 is installed obliquely on the surface of the power box 32 through a mounting bracket. A battery 35 is fixedly installed inside the power box 32. The solar panel 33 is electrically connected to the battery 35 through a conductive cable. The output end of the battery 35 is fixedly connected to a power supply cable 36. A surveillance camera 34 is fixedly installed on the surface of the power box 32. Solar energy can be converted into electrical energy through the solar panel 33 and stored in the battery 35. On the one hand, electrical energy can be stored, solar energy can be fully utilized, and the use cost can be saved.

[0043] Embodiment 3. In addition to all the technical features of embodiment 1, this embodiment also includes: the surface of each cableway tower 1 is symmetrically connected with a vertical plate 41, and the two vertical plates 41 are connected with a power supply slide rail cable pulley 43 and a main cable pulley 42 from top to bottom through a rotating shaft. The surfaces of the two power supply slide rail cable pulleys 43 are provided with power supply rail cables 44, and the surfaces of the two main cable pulleys 42 are provided with cableway main cables 45. The two ends of the cableway main cables 45 and the power supply rail cables 44 are respectively fixedly connected to the anchor cables 11 on both sides, and the power supply cable 36 is slidably wound around the surface of the power supply rail cables 44. By providing the power supply rail cables 44, when the hydrological equipment 6 moves between the two cableway towers 1, the power supply cable can slide on the cable, so that the equipment can still maintain connection with the power supply during the movement, and there will be no power interruption due to power supply cable length limitations or entanglement problems, thereby ensuring that the equipment can work normally.

[0044] The bottom surface of the ground anchor 12 and the bottom surface of the reinforcement plate 2 are both provided with a lightning protection net 7, which can connect the power supply rail cable 44 to the ground to avoid being struck by lightning when used in thunderstorm weather.

[0045] In embodiment four, the driving pulley 54 is arranged on the surface of the cableway main rope 45, and the surfaces of the two first rotating rods 53 are fixedly sleeved with the first sprocket 55, the inner wall surface of the driving box 51 is fixedly connected with a support plate 59, and the surface of the support plate 59 is fixedly connected with a worm gear reducer, and a reduction motor 510 is fixedly installed on one side surface of the driving box 51, and the output end of the reduction motor 510 is fixedly connected to the input end of the worm gear reducer, and the output end of the worm gear reducer is fixedly connected to the second sprocket 58, and the second sprocket 58 and the first sprocket 55 are connected by a chain 57. The bottom surface of the driving box 51 is fixedly connected with an electric winch 515, and the winding end of the electric winch 515 is wound with a wire rope 516, and the bottom end of the wire rope 516 is detachably connected to the hydrological equipment 6. When in use, the reduction motor 510 can be remotely controlled to operate, thereby adjusting the horizontal distance and vertical distance of the hydrological equipment 6.

[0046] The worm gear reducer includes a shell 511, which is fixedly connected to the support plate 59. The inner wall surface of the shell 511 is rotatably connected to the worm body 512, and the worm body 512 is fixedly connected to the output shaft of the reduction motor 510. The surface of the worm body 512 is meshingly connected to the worm wheel body 513, and the surface of the worm wheel body 513 is fixedly sleeved with a second rotating rod 514. The second rotating rod 514 is rotatably connected to the shell 511. One end of the second rotating rod 514 passes through the shell 511 and extends to the outside of the shell 511, and is fixedly connected to the second sprocket 58 arranged inside the driving box 51. The worm gear reducer can regulate the speed of the reduction motor 510 to ensure the stability of the operation of the hydrological equipment 6.

[0047] A motor wireless controller 517 is also fixedly connected to the surface of the driving box 51, which can remotely control the reduction motor 510 and the electric winch 515.

[0048] The first rotating rod 53 and the winding shaft surface of the electric winch 515 are coaxially mounted with a counting sensor 56, which can accurately calculate the distance of the hydrological equipment 6 from the river channel and the height of the descent, which is crucial for work that requires accurate grasp of the position of the equipment in the river channel.

[0049] It should be noted that the electric winch 515 includes a reduction motor, a rotating shaft, and a winding drum.

[0050] Working Principle: When using this type of DC cableway equipment, first place two cableway towers 1 on both sides of the river bank to be tested, and fix the reinforcement plate 2 to the river bank with long nails to achieve the initial fixation of the cableway tower 1. Then pull the anchor cable 11 and adjust the angle between the anchor cable 11 and the cableway tower 1 so that the anchor cable 11 can tighten the cableway tower 1. At this time, use the ground anchor 12 to fix the anchor cable 11 to complete the fixation of the two cableway towers 1.

[0051] Then, the power supply cable 36 is slidably wound around the surface of the power supply rail steel cable 44, and the power supply rail steel cable 44 is installed on the surface of the power supply slide rail steel cable pulley 43 provided on the surface of the cableway tower 1 on both sides. Then, the power supply slide rail steel cable pulley 43 is tightened and its two ends are fixed to the anchor cable 11. The power supply rail steel cable 44 is grounded using the lightning protection net 7. Then, the cableway main cable 45 is installed on the surface of the main cable pulley 42 in the same way, and its two ends are fixed to the anchor cable 11.

[0052] Then the wireless remote control assembly 5 and the hydrological equipment can be installed on the surface of the cableway main cable 45. After the installation is completed, the equipment can be powered on and the water flow can be monitored.

[0053] During use, the user can observe the position of the hydrological equipment through the monitoring camera 34 and use the wireless remote control to send a start signal to the motor wireless controller 517. At this time, the motor wireless controller 517 can control the reduction motor 510 to operate. The reduction motor 510 can drive the worm body 512 to rotate, and the rotation of the worm body 512 can drive the worm wheel body 513 to rotate. The rotation of the worm wheel body 513 can drive the second rotating rod 514 to rotate. The rotation of the second rotating rod 514 can drive the second sprocket 58 to rotate. The rotation of the second sprocket 58 can drive the two first sprockets 55 to rotate synchronously through the chain 57, thereby driving the first rotating rod 53 to rotate, and then driving the driving pulley 54 to roll on the surface of the cableway main rope 45, thereby driving the hydrological equipment to move horizontally.

[0054] During this process, at the initial stage of rotation of the first rotating rod 53, the counting sensor 56 begins to count the number of rotations of the first rotating rod 53. When the number of rotations reaches a preset number, the user can control the reduction motor 510 to stop running. At this time, the hydrological device 6 is located above the position to be measured in the river. Then, the user sends a start signal to the electric winch 515 through the wireless remote control. At this time, the reduction motor in the electric winch 515 rotates, and then drives the winding roller inside it to rotate through the rotating shaft, so that the wire rope 516 can be lowered, and then the height position of the hydrological device 6 can be adjusted.

[0055] During this process, the rotation of the winding roller can drive the winding shaft on its surface to rotate synchronously. At the initial stage of the rotation of the winding shaft, the counting sensor 56 starts to count the number of rotations of the winding shaft. When the number of rotations reaches the preset number of rotations, the user can control the electric winch 515 to stop running. At this time, the hydrological equipment 6 is located at a preset depth inside the water flow. Then the water flow equipment can be used to monitor the river conditions, and the location information of the hydrological equipment can be obtained in real time. The operator can quickly know the location of the equipment at the control end without additional complex operations or manual measurements, which improves work efficiency. There is no need for on-site measurements by personnel, and remote control can be achieved.

[0056] It will be apparent to those skilled in the art that the present invention is not limited to the details of the exemplary embodiments described above and that the present invention can be implemented in other specific forms without departing from the spirit or essential characteristics of the present invention. Therefore, the embodiments should be considered in all respects as illustrative and non-restrictive, and the scope of the present invention is defined by the appended claims, not the foregoing description, and all variations within the meaning and range of equivalents of the claims are intended to be encompassed within the present invention. Any reference sign in a claim should not be construed as limiting the claim to which it relates.

[0057] In addition, it should be understood that although this specification is described in terms of implementation methods, not every implementation method contains only one independent technical solution. This narrative method of the specification is only for the sake of clarity. Those skilled in the art should regard the specification as a whole. The technical solutions in each embodiment can also be appropriately combined to form other implementation methods that can be understood by those skilled in the art.

Claims

1. A wireless remote-controlled DC cableway device, comprising a reinforcing plate (2) symmetrically arranged on a cableway tower (1) and fixedly connected to the bottom surface of the cableway tower (1), and a hydrological device (6) arranged between two of the cableway towers (1); Its characteristics are: A power supply assembly (3) is provided on the surface of one of the cableway towers (1), and the power supply assembly (3) includes a power supply system bracket (31) symmetrically fixedly connected to the surface of the cableway tower (1), a power supply box (32) fixedly connected to the top of the power supply system bracket (31), and a solar panel (33), a battery (35), and a power supply cable (36) for powering the equipment; A cableway assembly (4) is provided between the two cableway towers (1), the cableway assembly (4) comprising a power supply rail steel cable (44) and a cableway main cable (45) erected between the two cableway towers (1), the power supply rail steel cable (44) being located on the upper side of the cableway main cable (45); A wireless remote control assembly (5) is provided on the surface of the main cable (45), and the wireless remote control assembly (5) includes a traveling box (51) provided between the cableway towers (1), a first rotating rod (53) symmetrically fixedly connected to the inner surface of the traveling box (51), and a traveling pulley (54), a first sprocket (55), a counting sensor (56), a chain (57), a second sprocket (58), a worm gear reducer and a reduction motor (510) for driving the traveling box (51) to move.

2. The wireless remote control DC cableway equipment according to claim 1, characterized in that: An anchor cable (11) is fixedly connected to the surface of each cableway tower (1), and a ground anchor (12) is fixedly connected to the bottom end of the anchor cable (11).

3. The wireless remote control DC cableway equipment according to claim 1, characterized in that: A solar panel (33) is obliquely mounted on the surface of the power box (32) via a mounting bracket, a battery (35) is fixedly mounted inside the power box (32), the solar panel (33) is electrically connected to the battery (35) via a conductive cable, an output end of the battery (35) is fixedly connected to a power supply cable (36), and a surveillance camera (34) is fixedly mounted on the surface of the power box (32).

4. The wireless remote control DC cableway equipment according to claim 1, characterized in that: The surface of each cableway tower (1) is symmetrically connected to a vertical plate (41), and a power supply rail cable pulley (43) and a main cable pulley (42) are rotatably connected between the two vertical plates (41) from top to bottom through a rotating shaft. The surfaces of the two power supply rail cable pulleys (43) are provided with power supply rail cables (44), and the surfaces of the two main cable pulleys (42) are provided with cableway main cables (45). The two ends of the cableway main cables (45) and the power supply rail cables (44) are respectively fixedly connected to the anchor cables (11) on both sides, and the power supply cable (36) is slidably wound around the surface of the power supply rail cables (44).

5. The wireless remote control DC cableway equipment according to claim 2, characterized in that: The bottom surface of the ground anchor (12) and the bottom surface of the reinforcement plate (2) are both provided with a lightning protection net (7).

6. The wireless remote control DC cableway equipment according to claim 1, characterized in that: The driving pulley (54) is arranged on the surface of the cableway main rope (45), and the surfaces of the two first rotating rods (53) are fixedly sleeved with first sprockets (55). The inner wall surface of the driving box (51) is fixedly connected to a support plate (59), and the surface of the support plate (59) is fixedly connected to a worm gear reducer. A reduction motor (510) is fixedly installed on one side surface of the driving box (51), and the output end of the reduction motor (510) is fixedly connected to the input end of the worm gear reducer. The output end of the worm gear reducer is fixedly connected to a second sprocket (58), and the second sprocket (58) and the first sprocket (55) are connected by a chain (57). The bottom surface of the driving box (51) is fixedly connected to an electric winch (515), and the winding end of the electric winch (515) is wound with a steel wire rope (516), and the bottom end of the steel wire rope (516) is detachably connected to a hydrological device (6).

7. The wireless remote control DC cableway equipment according to claim 6, characterized in that: The worm gear reducer includes a housing (511), the housing (511) and the support plate (59) are fixedly connected, the inner wall surface of the housing (511) is rotatably connected to a worm body (512), the worm body (512) and the output shaft of the reduction motor (510) are fixedly connected, the surface of the worm body (512) is meshingly connected to a worm wheel body (513), the surface of the worm wheel body (513) is fixedly sleeved with a second rotating rod (514), the second rotating rod (514) and the housing (511) are rotatably connected, one end of the second rotating rod (514) passes through the housing (511) and extends to the outside of the housing (511), and is fixedly connected to a second sprocket (58) arranged inside the driving box (51).

8. The wireless remote control DC cableway equipment according to claim 1, characterized in that: A motor wireless controller (517) is also fixedly connected to the surface of the driving box (51).

9. The wireless remote control DC cableway equipment according to claim 1, characterized in that: A counting sensor (56) is coaxially mounted on the first rotating rod (53) and the surface of the winding shaft of the electric winch (515).

Citation Information

Patent Citations

  • Hydrometric cableway

    CN218119221U