Adjustable antenna support for communication base station iron tower in high-speed rail construction

By designing an adjustable antenna bracket, the tracking and movement of the directional antenna to the high-speed rail is solved, and the problems of poor signal quality and short transmission distance in high-speed rail communication are improved, signal transmission quality and transmission distance are reduced, and the number of base station settings and construction costs are reduced.

CN120073276AActive Publication Date: 2025-05-30CHINA RAILWAY FIRST GROUP CO LTD +1

Patent Information

Application Number
CN202510549516.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-04-29
Publication Date
2025-05-30
Estimated Expiration
2045-04-29

AI Technical Summary

Technical Problem

In the existing high-speed rail communication technology, the signal quality of omnidirectional antennas is poor and the propagation distance is short, resulting in poor communication stability and high construction costs; although the signal quality of directional antennas is good, the coverage area is small, and base stations are required to be intensively set up, resulting in waste of resources and increased costs.

Method used

An adjustable antenna bracket for high-speed rail communication base station tower was designed. Through the combination of cylindrical tower, installation pipe, directional antenna and rotating drive components, the tracking and movement of directional antennas is realized, focusing on high-speed rail, and reducing the number of base station settings.

Benefits of technology

It improves the signal transmission quality of high-speed rail communication base stations, extends the signal transmission distance, reduces the number of base stations, reduces the construction and maintenance costs, and solves the problems of low signal quality and short transmission distance in traditional technology.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The invention relates to the field of high-speed rail communication equipment, in particular to an adjustable antenna support for high-speed rail construction of a communication base station iron tower, and the adjustable antenna support comprises a cylindrical tower which is arranged on one side of a rail, and the distance between the bottom end of the cylindrical tower and the rail is larger than the height of the cylindrical tower; the circumferential outer wall of the cylindrical tower is sleeved with a mounting pipe, and the mounting pipe slides along the outer wall of the cylindrical tower; a hoisting assembly is arranged at the top end of the cylindrical tower and connected with the top end of the mounting pipe; directional antennas are mounted on the circumferential outer wall of the mounting pipe; a rotation driving assembly is arranged between the installation pipe and the directional antenna, the installation end of the rotation driving assembly is arranged on the circumferential outer wall of the installation pipe, and the directional antenna is installed at the swing end of the rotation driving assembly. The directional antenna always faces the high-speed rail when the high-speed rail passes through the directional antenna, and the signal propagation quality of the high-speed rail communication base station is
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Description

Technical Field

[0001] This application generally relates to the technical field of high - speed rail communication base stations, and specifically relates to an adjustable antenna support for communication base station towers in high - speed rail construction. Background Art

[0002] In the field of high - speed rail communication, a reliable and efficient communication system is crucial for ensuring the safe operation of trains and enhancing the passenger experience. The traditional high - speed rail communication method is to set up communication base stations on one side of the high - speed rail track and use omnidirectional antennas for information transmission.

[0003] However, omnidirectional antennas have many drawbacks. Their signal quality is poor, and in the complex high - speed rail operating environment, they are easily interfered with and attenuated, resulting in poor communication stability. At the same time, the propagation distance of omnidirectional antennas is short. To ensure good communication coverage throughout the high - speed rail line, a large number of base stations need to be densely set up along the track, which undoubtedly increases the construction cost and maintenance difficulty.

[0004] While directional antennas perform well in terms of signal quality, their fixed propagation direction makes the signal concentrated and has a high gain. However, due to their small coverage area, in the long - distance linear communication scenario of high - speed rail, many additional base stations are also required to meet the communication needs, which also brings problems of resource waste and cost increase.

[0005] Therefore, there are urgent problems to be solved in the existing high - speed rail communication technology in terms of base station setting and antenna selection, and a new communication solution is urgently needed. Summary of the Invention

[0006] To address the problems of low transmission efficiency and short transmission distance of omnidirectional antennas used in high - speed rail communication, this application provides an adjustable antenna support for communication base station towers in high - speed rail construction, achieving the purpose of a directional antenna tracking a moving high - speed rail, enabling the energy of the directional antenna to focus on the moving high - speed rail, and reducing the number of communication base stations set up.

[0007] According to one aspect of this application, there is provided an adjustable antenna support for a communication base station tower in high - speed rail construction. The adjustable antenna support includes: a cylindrical tower disposed on one side of the railway track, and the distance between the bottom end of the cylindrical tower and the railway track is greater than the height of the cylindrical tower; an installation pipe is sleeved on the outer wall of the cylindrical tower, and the installation pipe slides along the outer wall of the cylindrical tower; a hoisting component is provided at the top end of the cylindrical tower, and the hoisting component is connected to the top end of the installation pipe; a directional antenna is installed on the outer wall of the installation pipe; a rotation driving component is provided between the installation pipe and the directional antenna, the installation end of the rotation driving component is disposed on the outer wall of the installation pipe, and the swinging end installs the directional antenna.

[0008] In some embodiments, a wind power generation assembly is provided at the top of the cylindrical tower, and the wind power generation assembly is electrically connected to the rotation drive assembly; the wind power generation assembly includes a generator provided at the top of the cylindrical tower; it further includes a wind wheel, and a plurality of the wind wheels are annularly arrayed on the outer wall of the circumference of the rotor of the generator.

[0009] In some embodiments, the rotation drive assembly includes: a swing drive part and an auxiliary drive part; there are two groups of the swing drive parts, and the two groups of the swing drive parts are vertically spaced and provided on the outer wall of the installation pipe; the swing drive part includes a first toothed ring sleeved on the outer wall of the installation pipe, the first toothed ring meshes with a first gear, the first gear is installed on the output shaft of the drive motor, and the drive motor is installed on the outer wall of the installation pipe; the drive motor is electrically connected to the generator; a swing rod is provided at one end of the first toothed ring away from the drive motor; the directional antenna is installed between the swing rods of the two groups of swing drive parts, and both ends of the directional antenna are respectively connected to the two swing rods. In some embodiments, the swing drive part located in the upper part further includes an electric telescopic assembly provided between the swing rod and the directional antenna; one end of the electric telescopic assembly is connected to the end of the swing rod away from the first toothed ring, and the telescopic end of the electric telescopic assembly is connected to the directional antenna.

[0010] In some embodiments, the auxiliary drive part includes: a first electric telescopic rod electrically connected to the generator, one end of the first electric telescopic rod is connected to the installation pipe, and the other end is connected with a slider; the slider slides in a first slide rail, and one end of the first slide rail is installed on the outer wall of the installation pipe; a second slide rail is provided on the surface of the slider, and the second slide rail is fixedly connected to the slider, and the second slide rail is perpendicular to the first slide rail; a guide rod is provided in the second slide rail, and the guide rod slides in the second slide rail; a second gear is rotatably provided at one end of the guide rod away from the slider, the second gear meshes with a second toothed ring, and the second toothed ring is concentric with the installation pipe; the top end of the guide rod passes through the second gear and is rotatably connected to the swing rod.

[0011] In some embodiments, the directional antenna includes: an antenna cover and an antenna body, and the antenna body is provided in the antenna cover; the bottom surface of the antenna cover is hinged to the swing rod; the top surface of the antenna cover is hinged to the electric telescopic assembly.

[0012] In some embodiments, two elastic air bags are spaced in the second slide rail, and the two elastic air bags are respectively provided on the inner walls at both ends of the second slide rail; air outlets of the two elastic air bags are both connected with a first air pipe; one end of the first air pipe away from the elastic air bag is installed in the antenna cover.

[0013] In some embodiments, a plurality of arc-shaped ducts are provided at intervals along the length direction inside the radome, and both ends of each of the arc-shaped ducts are respectively communicated with the two first air pipes; a plurality of exhaust holes are provided at intervals on one side of the arc-shaped duct close to the radiation surface of the radome.

[0014] In some embodiments, the radome includes: a mounting side plate, an arc-shaped breathable plate, a bottom plate, and a top plate; the arc-shaped breathable plate is provided on one side of the mounting side plate, the bending direction of the arc-shaped breathable plate faces the mounting side plate, the bottom plate and the top plate are respectively provided at the lower and upper parts of the mounting side plate and the arc-shaped breathable plate, and the mounting side plate, the arc-shaped breathable plate, the bottom plate, and the top plate form a D-shaped cavity; the arc-shaped duct is arranged close to the arc-shaped breathable plate, and both ends of each of the arc-shaped ducts pass through the mounting side plate and are connected to the first air pipe; a plurality of drainage grooves are provided on the surface of the bottom plate, the drainage grooves penetrate through the bottom plate, and a drain pipe is provided under the bottom plate, and the top surface of the drain pipe is communicated with each of the drainage grooves.

[0015] In some embodiments, an ice removal assembly is further included, and the ice removal assembly includes: a second electric telescopic rod, the second electric telescopic rod is installed outside the mounting side plate, and the telescopic end of the second electric telescopic rod passes through the outer wall of the lower part of the mounting side plate and is arranged inside the D-shaped cavity; the ice removal assembly further includes: a first connecting rod and a second connecting rod, one ends of the first connecting rod and the second connecting rod are respectively hinged to the output end of the second electric telescopic rod; the ends of the first connecting rod and the second connecting rod away from the second electric telescopic rod are arranged close to the mounting side plate, and vertical rods are hinged to the ends of the first connecting rod and the second connecting rod away from the second electric telescopic rod, and the two vertical rods are symmetrically arranged on both sides of the second electric telescopic rod; a limiting block is fixedly connected to the bottom end of the vertical rod, and a limiting track is arranged on the surface of the bottom plate close to one side of the mounting side plate, and the two limiting blocks are slidably arranged in the limiting track; a telescopic wiper is arranged on one side of the limiting block away from the mounting side plate, the bottom surface of the telescopic wiper is in contact with the bottom plate, and the telescopic wiper is formed by a plurality of sleeves sleeved with each other; a horizontal rod is fixedly connected to the top end of the vertical rod, the horizontal rod is perpendicular to the surface of the mounting side plate, a guiding groove is arranged through the surface of the horizontal rod, the guiding groove is perpendicular to the surface of the mounting side plate, and an ice removal pipe is arranged in the guiding groove, the bottom end of the ice removal pipe is slidably arranged in the guiding groove, the upper part of the ice removal pipe is arranged on one side of the antenna main body close to the arc-shaped breathable plate, and a plurality of air outlets are arranged at intervals on one side of the ice removal pipe close to the antenna main body; a guiding rail is arranged between the horizontal rod and the antenna main body, the ice removal pipe passes through the guiding rail, and the track of the guiding rail coincides with the vertical direction projection of the antenna main body; the air outlet of the elastic air bag is further connected with a second air pipe, one end of the second air pipe away from the elastic air bag is connected with one end of the two ice removal pipes, and an air heater is arranged between the air pipe and the ice removal pipe, and the air heater is electrically connected with the generator.

[0016] Embodiments of the present application have the following advantages.

[0017] The hoisting assembly consists of a hoisting rope, a pulley block, and an electric cable winder. The electric cable winder pulls the hoisting rope, so that the installation pipe is installed through the hoisting rope passing through the pulley block at the top of the cylindrical tower. When the directional antenna needs to be repaired, the electric cable winder located at the bottom of the cylindrical tower can be controlled to make the installation pipe drive the directional antenna and the rotation drive assembly to slide on the surface of the cylindrical tower, and then maintenance can be carried out at the bottom of the tower, improving the maintenance efficiency. When the high-speed train passes by one side of the cylindrical tower, the directional antenna is first located on the side where the high-speed train is approaching. When the high-speed train drives away from one side of the directional antenna, the rotation drive assembly drives the directional antenna to swing around the axis of the cylindrical tower, so that when the high-speed train passes by the cylindrical tower, the directional antenna can always face the high-speed train, thereby improving the signal transmission quality of the high-speed train communication base station. Since the signal transmission distance of the directional antenna is relatively long, and coupled with the tracking function of the directional antenna, the signal transmission distance of the high-speed train communication base station and the like is further improved, so that the number of high-speed train communication base stations can be reduced, and the problems of low signal transmission quality, short transmission distance, and unstable signal caused by the forward antenna used in the traditional high-speed train communication base station can also be improved.

[0018] Other features and advantages of the present invention will be described in the following specification, and in part, will be obvious from the specification, or will be understood by implementing the present invention. The objectives and other advantages of the present invention can be achieved and obtained by the structures specifically pointed out in the written specification and the drawings.

[0019] The technical solutions of the present invention will be further described in detail below with reference to the drawings and embodiments. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] The drawings are used to provide a further understanding of the present invention, and constitute a part of the specification. They are used together with the embodiments of the present invention to explain the present invention, and do not constitute a limitation to the present invention. In the drawings: Figure 1 The schematic structural diagram of the antenna support according to an embodiment of the present application is shown.

[0021] Figure 2 The schematic structural diagram of the wind power generation assembly according to an embodiment of the present application is shown.

[0022] Figure 3 The schematic structural diagram of the rotation drive assembly according to an embodiment of the present application is shown.

[0023] Figure 4 The schematic structural diagram of the auxiliary drive part according to an embodiment of the present application is shown.

[0024] Figure 5 ShownFigure 4 Enlarged view of area A.

[0025] Figure 6 Schematic diagram showing the radome structure according to an embodiment of the present application.

[0026] Figure 7 Schematic diagram showing the installation of the antenna body according to an embodiment of the present application.

[0027] Figure 8 Schematic diagram showing the structure of the de-icing component according to an embodiment of the present application.

[0028] Figure 9 Showing according to an embodiment of the present application Figure 8 Enlarged view of area B.

[0029] Reference numerals 1 - cylindrical tower; 2 - mounting pipe; 3 - directional antenna; 4 - rotation drive assembly; 5 - wind power generation assembly; 6 - generator; 7 - wind turbine; 8 - swing drive part; 9 - auxiliary drive part; 10 - first toothed ring; 11 - first gear; 12 - drive motor; 13 - swing rod; 14 - electric telescopic assembly; 15 - first electric telescopic rod; 16 - slider; 17 - first slide rail; 18 - second slide rail; 19 - guide rod; 20 - second gear; 21 - second toothed ring; 22 - radome; 23 - antenna body; 24 - elastic airbag; 25 - first air pipe; 26 - arc-shaped conduit; 27 - mounting side plate; 28 - arc-shaped air-permeable plate; 29 - bottom plate; 30 - top plate; 31 - drainage groove; 32 - drain pipe; 33 - de-icing component; 34 - second electric telescopic rod; 35 - first connecting rod; 36 - second connecting rod; 37 - vertical rod; 38 - limit block; 39 - limit track; 40 - telescopic wiper; 41 - horizontal rod; 42 - guide groove; 43 - de-icing pipe; 44 - guide rail; 45 - second air pipe; 46 - air heater. Detailed implementation manners

[0030] In order to make the objectives, solutions and advantages of the technical solutions of the present application clearer, the technical solutions of the embodiments of the present application will be clearly and completely described below with reference to the accompanying drawings of the specific embodiments of the present application. Unless otherwise specified, the terms used herein have the ordinary meanings in the art. The same reference numerals in the drawings represent the same components.

[0031] In the description of the present application, it should be noted that unless otherwise clearly specified and limited, the terms "installation", "connection", and "coupling" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be a direct connection or an indirect connection through an intermediate medium, and it can be the communication inside two components. For those of ordinary skill in the art, the specific meanings of the above terms in the present application can be understood according to specific circumstances.

[0032] As described above, in the use of traditional high-speed rail communication base stations, the signal transmission distance of traditional omnidirectional antennas is short and the signal transmission quality is poor, while the coverage area of directional antennas is small, thus affecting the signal transmission quality and equipment cost of high-speed rail communication base stations.

[0033] To at least partially solve one or more of the above problems and other potential problems, the exemplary embodiments of the present application provide an adjustable antenna bracket for a communication base station tower in high-speed rail construction. The adjustable antenna bracket includes: a cylindrical tower 1, disposed on one side of the railway track, and the distance between the bottom end of the cylindrical tower 1 and the railway track is greater than the height of the cylindrical tower 1; an installation pipe 2 is sleeved on the outer wall of the cylindrical tower 1, and the installation pipe 2 slides along the outer wall of the cylindrical tower 1; a hoisting assembly is provided at the top of the cylindrical tower 1, and the hoisting assembly is connected to the top end of the installation pipe 2; a directional antenna 3 is installed on the outer wall of the installation pipe 2; a rotation driving assembly 4 is provided between the installation pipe 2 and the directional antenna 3, and the installation end of the rotation driving assembly 4 is disposed on the outer wall of the installation pipe 2, and the swinging end installs the directional antenna 3.

[0034] In the above embodiment, the hoisting assembly is composed of a lifting rope, a pulley block, and an electric cable reel. By pulling the lifting rope through the electric cable reel, the installation pipe 2 is installed by the lifting rope passing through the pulley block at the top end of the cylindrical tower 1. When the directional antenna 3 needs to be repaired, the electric cable reel located at the bottom of the cylindrical tower 1 can be controlled to make the installation pipe 2 drive the directional antenna 3 and the rotation driving assembly 4 to slide on the surface of the cylindrical tower 1, and then maintenance can be carried out at the bottom of the tower, improving the maintenance efficiency; When the high-speed rail passes by one side of the cylindrical tower 1, the directional antenna 3 is first located on the side where the high-speed rail is approaching. When the high-speed rail drives away from one side of the directional antenna 3, the rotation driving assembly 4 drives the directional antenna 3 to swing around the axis of the cylindrical tower 1, so that when the high-speed rail passes by the cylindrical tower 1, the directional antenna 3 can always face the high-speed rail, thereby improving the signal transmission quality of the high-speed rail communication base station. Since the signal transmission distance of the directional antenna 3 is relatively long, and in addition, the directional antenna 3 has a tracking function, the signal transmission distance of high-speed rail communication base stations and the like is further improved, so that the number of high-speed rail communication base stations can be reduced, and the problems of low signal transmission quality, short transmission distance, and unstable signal caused by using forward antennas in traditional high-speed rail communication base stations can also be improved.

[0035] Please refer toFigures 1-9 , in some embodiments, a wind power generation assembly 5 is provided at the top of the cylindrical tower 1, and the wind power generation assembly 5 is electrically connected to the rotation driving assembly 4; the wind power generation assembly 5 includes a generator 6 provided at the top of the cylindrical tower 1; and further includes a wind wheel 7, and a plurality of the wind wheels 7 are annularly arrayed on the outer wall of the rotor of the generator 6.

[0036] In the above embodiment, a wind power generation assembly 5 is provided at the top of the cylindrical tower 1. Since the height of the cylindrical tower 1 is relatively high, when the wind wheel 7 is driven, the rotation of the wind wheel 7 drives the output shaft of the generator 6 to rotate, so that the generator 6 generates electricity. Then, the electricity generated by the generator 6 can be supplied to various electrical appliances of the communication base station. Compared with the traditional photovoltaic panels, the wind power generator 6 can provide stable electricity, reduce the installation area required, and reduce the impact of high-altitude wind on the communication base station.

[0037] Please refer to Figures 1-9 , in some embodiments, the rotation driving assembly 4 includes: a swing driving part 8 and an auxiliary driving part 9; there are two groups of the swing driving parts 8, and the two groups of the swing driving parts 8 are vertically spaced and arranged on the outer wall of the installation pipe 2; the swing driving part 8 includes a first toothed ring 10 sleeved on the outer wall of the installation pipe 2, the first toothed ring 10 meshes with a first gear 11, the first gear 11 is installed on the output shaft of a driving motor 12, and the driving motor 12 is installed on the outer wall of the installation pipe 2; the driving motor 12 is electrically connected to the generator 6; a swing rod 13 is provided at one end of the first toothed ring 10 away from the driving motor 12; the directional antenna 3 is installed between the swing rods 13 of the two groups of swing driving parts 8, and both ends of the directional antenna 3 are respectively connected to the two swing rods 13.

[0038] In the above embodiment, the rotation driving assembly 4 is composed of the swing driving part 8 and the auxiliary driving part 9, and there are two groups of the driving parts, which are respectively arranged at both ends of the directional antenna 3. When the driving motor 12 of the swing driving part 8 drives the first gear 11 to rotate, the first gear 11 rotates to drive the first toothed ring 10 meshing with it to rotate around the cylindrical tower 1. Since a swing rod 13 is provided on the side of the first toothed ring 10 away from the first gear 11, when the first gear 11 rotates, the swing rod 13 swings around the axis of the cylindrical tower 1, so that the end of the swing rod 13 away from the first toothed ring 10 can drive the directional antenna 3 to swing, thereby achieving the purpose of the directional antenna 3 tracking the running high-speed train.

[0039] Please refer to Figures 1-9, in some embodiments, the swing driving part 8 located in the upper part further includes an electric telescopic component 14, and the electric telescopic component 14 is arranged between the swing rod 13 and the directional antenna 3; one end of the electric telescopic component 14 is connected to the end of the swing rod 13 away from the first toothed ring 10, and the telescopic end of the electric telescopic component 14 is connected to the directional antenna 3.

[0040] In the above embodiments, the swing driving part 8 further includes an electric telescopic component 14. By telescoping the electric telescopic component 14, the distance between the top end of the directional antenna 3 and the cylindrical tower 1 can be adjusted, and then the pitching angle of the directional antenna 3 can be changed.

[0041] Please refer to Figures 1-9 , in some embodiments, the auxiliary driving part 9 includes: a first electric telescopic rod 15, the first electric telescopic rod 15 is electrically connected to the generator 6, one end of the first electric telescopic rod 15 is connected to the installation pipe 2, and the other end is connected with a slider 16; the slider 16 is slidably arranged in the first slide rail 17, and one end of the first slide rail 17 is installed on the outer wall of the circumference of the installation pipe 2; a second slide rail 18 is arranged on the surface of the slider 16, the second slide rail 18 is fixedly connected with the slider 16, and the second slide rail 18 is vertically arranged with the first slide rail 17; a guide rod 19 is arranged in the second slide rail 18, and the guide rod 19 is slidably arranged in the second slide rail 18; a second gear 20 is rotatably arranged at one end of the guide rod 19 away from the slider 16, the second gear 20 meshes with the second toothed ring 21, and the second toothed ring 21 is concentrically arranged with the installation pipe 2; the top end of the guide rod 19 passes through the second gear 20 and is rotatably connected with the swing rod 13.

[0042] In the above embodiments, when the rotation driving part works, the auxiliary driving part 9 is started, the first electric telescopic rod 15 extends and retracts, driving the slider 16 to slide in the first slide rail 17. When the slider 16 slides, since the top surface of the slider 16 is connected to the second slide rail 18, the second slide rail 18 slides along with the slider 16 towards the installation pipe 2. Thus, when the second slide rail 18 moves, the guide rod 19 in the second slide rail 18 is driven to move. When the guide rod 19 moves, the second gear 20 is driven to move. Since the second gear 20 is rotatably connected with the swing rod 13 and the distance between the second gear 20 and the axis of the installation pipe 2 remains unchanged, when the second slide rail 18 moves, the second gear 20 moves along the inner wall of the second toothed ring 21. Through the cooperation of the swing driving part 8 and the auxiliary driving part 9, when one of the swing driving part 8 or the auxiliary driving part 9 fails, it can still be driven, and the jitter problem of the directional antenna 3 when swinging around the cylindrical tower 1 can also be reduced.

[0043] Please refer to Figures 1-9, in some embodiments, the directional antenna 3 includes: a radome 22 and an antenna body 23, the antenna body 23 is disposed inside the radome 22; the bottom surface of the radome 22 is hinged to the swing rod 13; the top surface of the radome 22 is hinged to the electric telescopic assembly 14.

[0044] In the above embodiment, the radome 22 is used to protect the antenna body 23, avoiding the problems of the exposed antenna body 23 being sunburned and aged, and the attachment of birds, which causes the service life of the directional antenna 3 to be shortened. The bottom surface of the radome 22 is hinged to the swing rod 13, so that when the first electric telescopic rod 15 expands and contracts, the bottom surface of the radome 22 swings around the swing rod 13, and then the purpose of adjusting the pitch angle of the radome 22 and the antenna body 23 can be achieved.

[0045] Please refer to Figures 1-9 , in some embodiments, two elastic air bags 24 are arranged at intervals in the second slide rail 18, and the two elastic air bags 24 are respectively arranged on the inner walls at both ends of the second slide rail 18; the air outlets of the two elastic air bags 24 are both connected with a first air pipe 25; one end of the first air pipe 25 away from the elastic air bag 24 is installed inside the radome 22.

[0046] In the above embodiment, during the swinging process of the directional antenna 3, it needs to reciprocate in the second slide rail 18. When the guide rod 19 moves to one end of the second slide rail 18, the guide rod 19 pushes the elastic air bag 24, so that the elastic air bag 24 is squeezed, and the gas in the elastic air bag 24 is squeezed and enters the first air pipe 25, so that the elastic air bag 24 can be driven to exhaust by the reciprocating movement of the directional antenna 3.

[0047] Please refer to Figures 1-9 , in some embodiments, a plurality of arc-shaped conduits 26 are arranged at intervals along the length direction inside the radome 22, and both ends of each arc-shaped conduit 26 are respectively communicated with the two first air pipes 25; a number of exhaust holes are arranged at intervals on one side of the arc-shaped conduit 26 close to the radiation surface of the radome 22.

[0048] In the above embodiment, the air in the first air pipe 25 enters the arc-shaped conduit 26, and then blows towards the radome 22 through the exhaust holes on the surface of the arc-shaped conduit 26, and the radome 22 can be cleaned of dust by blowing, avoiding the dust on the surface of the radome 22 from blocking the air holes of the radome 22, which may cause the antenna body 23 to be unable to dissipate heat during operation.

[0049] Please refer to Figures 1-9, in some embodiments, the radome 22 includes: a mounting side plate 27, an arc-shaped air-permeable plate 28, a bottom plate 29, and a top plate 30; the arc-shaped air-permeable plate 28 is disposed on one side of the mounting side plate 27, and the bending direction of the arc-shaped air-permeable plate 28 faces the mounting side plate 27. The bottom plate 29 and the top plate 30 are respectively disposed at the lower and upper parts of the mounting side plate 27 and the arc-shaped air-permeable plate 28. The mounting side plate 27, the arc-shaped air-permeable plate 28, the bottom plate 29, and the top plate 30 form a D-shaped cavity; the arc-shaped conduit 26 is disposed close to the arc-shaped air-permeable plate 28, and both ends of each arc-shaped conduit 26 pass through the mounting side plate 27 and are connected to the first air pipe 25; a plurality of drainage grooves 31 are provided on the surface of the bottom plate 29, the drainage grooves 31 penetrate through the bottom plate 29, and a drain pipe 32 is provided below the bottom plate 29. The top surface of the drain pipe 32 is communicated with each of the drainage grooves 31.

[0050] In the above embodiments, in winter freezing rain weather, water vapor will enter the radome 22, causing the antenna body 23 to freeze and affecting the normal use of the antenna body 23. Moreover, the water vapor will cause corrosion of the antenna body 23. To prevent the accumulation of water vapor and water droplets in the radome 22, the water can be discharged through the drainage grooves 31.

[0051] Please refer to Figures 1-9, in some embodiments, it further includes a de-icing component 33, and the de-icing component 33 includes: a second electric telescopic rod 34, the second electric telescopic rod 34 is installed outside the installation side plate 27, and the telescopic end of the second electric telescopic rod 34 passes through the lower outer wall of the installation side plate 27 and is arranged in the D-shaped cavity; the de-icing component 33 further includes: a first connecting rod 35 and a second connecting rod 36, one ends of the first connecting rod 35 and the second connecting rod 36 are respectively hinged to the output end of the second electric telescopic rod 34; the ends of the first connecting rod 35 and the second connecting rod 36 away from the second electric telescopic rod 34 are arranged close to the installation side plate 27, and vertical rods 37 are hinged to the ends of the first connecting rod 35 and the second connecting rod 36 away from the second electric telescopic rod 34, and the two vertical rods 37 are symmetrically arranged on both sides of the second electric telescopic rod 34; a limiting block 38 is fixedly connected to the bottom end of the vertical rod 37, and a limiting track 39 is arranged on one side of the surface of the bottom plate 29 close to the installation side plate 27, and the two limiting blocks 38 are slidably arranged in the limiting track 39; a telescopic wiper 40 is arranged on the side of the limiting block 38 away from the installation side plate 27, the bottom surface of the telescopic wiper 40 is in contact with the bottom plate 29, and the telescopic wiper 40 is formed by a plurality of sleeves sleeved with each other; a horizontal rod 41 is fixedly connected to the top end of the vertical rod 37, the horizontal rod 41 is perpendicular to the surface of the installation side plate 27, a guiding groove 42 is arranged through the surface of the horizontal rod 41, the guiding groove 42 is perpendicular to the surface of the installation side plate 27, and a de-icing pipe 43 is arranged in the guiding groove 42, the bottom end of the de-icing pipe 43 is slidably arranged in the guiding groove 42, the upper part of the de-icing pipe 43 is arranged on one side of the antenna body 23 close to the arc-shaped air-permeable plate 28, and a plurality of air outlets are arranged at intervals on the side of the de-icing pipe 43 close to the antenna body 23; a guiding rail 44 is arranged between the horizontal rod 41 and the antenna body 23, the de-icing pipe 43 passes through the guiding rail 44, and the trajectory of the guiding rail 44 coincides with the vertical direction projection of the antenna body 23; the air outlet of the elastic air bag 24 is further connected to a second air pipe 45, one end of the second air pipe 45 away from the elastic air bag 24 is connected to one end of the two de-icing pipes 43, and an air heater 46 is arranged between the air pipe and the de-icing pipe 43, and the air heater 46 is electrically connected to the generator 6.

[0052] In the above embodiments, the second electric telescopic rod 34 expands and contracts to drive the first link 35 and the second link 36 to swing. Since the limit blocks 38 at the ends of the first link 35 and the second link 36 slide in the limit track 39, when the second electric telescopic rod 34 expands and contracts, the first link 35 and the second link 36 approach or move away from each other. The telescopic wiper 40 on one side of the limit block 38 moves along with the movement of the first link 35 and the second link 36. A spring is provided inside the telescopic wiper 40, which can make one end of the telescopic wiper 40 abut against the inner wall of the arc-shaped ventilation plate 28. The water on the surface of the bottom plate 29 is scraped into the drainage groove 31 by the movement of the telescopic wiper 40, avoiding the accumulation of water. When the first link 35 and the second link 36 move, they drive the two vertical rods 37 to approach or move away from each other. A guide groove 42 is provided on the surface of the horizontal rod 41 arranged on the upper part of the vertical rod 37. The de-icing pipe 43 is slidably arranged in the guide groove 42. When the de-icing pipe 43 reciprocates, affected by the guide rail 44, the de-icing pipe 43 moves along one side of the antenna main body 23 in a fitting manner, so that the de-icing pipe 43 can move along the surface of the antenna main body 23. The air outlet on the surface of the de-icing pipe 43 blows air on the antenna main body 23. The gas in the second air pipe 45 is heated by the air heater 46, so that the heated gas can de-ice the antenna main body 23.

[0053] The embodiments of the present application have been described above. The above description is exemplary and not exhaustive, and is not limited to the disclosed embodiments. Many modifications and variations are obvious to those of ordinary skill in the art in the technical field without departing from the scope and spirit of the described embodiments.

[0054] The selection of the terms used herein is intended to best explain the principles of the embodiments, practical applications, or improvements to the technology in the market, or to enable other ordinary technical personnel in the technical field to understand the disclosed embodiments herein.

[0055] The above are only optional embodiments of the present application and are not used to limit the present application. For those skilled in the art, various changes and modifications can be made to the present application. Any modification, equivalent replacement, improvement, etc. made within the spirit and principle of the present application shall be included in the protection scope of the present application.

Claims

1. An adjustable antenna bracket for a high-speed railway communication base station tower, characterized in that: include: A columnar tower (1) is arranged on one side of the rail, and the distance between the bottom end of the columnar tower (1) and the rail is greater than the height of the columnar tower (1); A mounting tube (2) is sleeved on the circumferential outer wall of the cylindrical tower (1), and the mounting tube (2) slides along the outer wall of the cylindrical tower (1); A hanging assembly is provided at the top of the columnar tower (1), and the hanging assembly is connected to the top of the installation pipe (2); A directional antenna (3) is installed on the circumferential outer wall of the installation tube (2); A rotation drive assembly (4) is provided between the mounting tube (2) and the directional antenna (3); the mounting end of the rotation drive assembly (4) is provided on the circumferential outer wall of the mounting tube (2), and the directional antenna (3) is mounted on the swing end.

2. The adjustable antenna bracket for a high-speed railway construction communication base station tower according to claim 1 is characterized in that: A wind power generation component (5) is provided at the top of the columnar tower (1), and the wind power generation component (5) is electrically connected to the rotation drive component (4); The wind power generation assembly (5) comprises a generator (6) which is arranged at the top of the cylindrical tower (1); It also includes a wind wheel (7), wherein a plurality of the wind wheels (7) are provided, and the plurality of wind wheels (7) are arranged in an annular array on the circumferential outer wall of the rotor of the generator (6).

3. The adjustable antenna bracket for a high-speed railway construction communication base station tower according to claim 2 is characterized in that: The rotation drive assembly (4) comprises: A swing drive unit (8) and an auxiliary drive unit (9); The swing drive parts (8) are provided with two groups, and the two groups of swing drive parts (8) are arranged vertically at intervals on the circumferential outer wall of the mounting tube (2); The swing drive unit (8) comprises a first gear ring (10), the first gear ring (10) is sleeved on the circumferential outer wall of the mounting tube (2), the first gear ring (10) is meshed with a first gear (11), the first gear (11) is mounted on the output shaft of a drive motor (12), and the drive motor (12) is mounted on the circumferential outer wall of the mounting tube (2); The drive motor (12) is electrically connected to the generator (6); A rocker rod (13) is provided at one end of the first gear ring (10) away from the drive motor (12); The directional antenna (3) is installed between the swing rods (13) of the two sets of swing drive parts (8), and the two ends of the directional antenna (3) are respectively connected to the two swing rods (13).

4. The adjustable antenna bracket for a high-speed railway construction communication base station tower according to claim 3 is characterized in that: The swing drive unit (8) located at the upper portion further comprises an electric telescopic assembly (14), wherein the electric telescopic assembly (14) is arranged between the swing rod (13) and the directional antenna (3); One end of the electric telescopic component (14) is connected to an end of the swing rod (13) away from the first gear ring (10), and the telescopic end of the electric telescopic component (14) is connected to the directional antenna (3).

5. The adjustable antenna bracket for a high-speed railway construction communication base station tower according to claim 4 is characterized in that: The auxiliary driving unit (9) comprises: a first electric telescopic rod (15), the first electric telescopic rod (15) being electrically connected to the generator (6), one end of the first electric telescopic rod (15) being connected to the mounting tube (2), and the other end of the first electric telescopic rod (15) being connected to a slider (16); The sliding block (16) is slidably disposed in a first sliding rail (17), and one end of the first sliding rail (17) is mounted on a circumferential outer wall of the mounting tube (2); A second slide rail (18) is provided on the surface of the slide block (16), the second slide rail (18) is fixedly connected to the slide block (16), and the second slide rail (18) is arranged perpendicular to the first slide rail (17); A guide rod (19) is provided in the second slide rail (18), and the guide rod (19) is slidably arranged in the second slide rail (18); A second gear (20) is rotatably provided at one end of the guide rod (19) away from the slider (16), the second gear (20) is meshed with a second gear ring (21), and the second gear ring (21) is concentrically arranged with the mounting tube (2); The top end of the guide rod (19) passes through the second gear (20) and is rotationally connected to the swing rod (13).

6. The adjustable antenna bracket for a high-speed railway construction communication base station tower according to claim 5 is characterized in that: The directional antenna (3) comprises: A radome (22), an antenna body (23), wherein the antenna body (23) is arranged in the radome (22); The bottom surface of the radome (22) is hinged to the swing rod (13); The top surface of the antenna cover (22) is hinged to the electric telescopic assembly (14).

7. The adjustable antenna bracket for a high-speed railway construction communication base station tower according to claim 6 is characterized in that: Two elastic air bags (24) are arranged at intervals inside the second slide rail (18), and the two elastic air bags (24) are respectively arranged on the inner walls at both ends of the second slide rail (18); The air outlets of the two elastic air bags (24) are both connected to a first air pipe (25); One end of the first air pipe (25) away from the elastic airbag (24) is installed in the antenna cover (22).

8. The adjustable antenna bracket for a high-speed railway construction communication base station tower according to claim 7, characterized in that: A plurality of arc-shaped ducts (26) are arranged in the antenna cover (22) at intervals along its length direction, and two ends of each of the arc-shaped ducts (26) are respectively connected to two of the first air pipes (25); A plurality of exhaust holes are provided at intervals on a surface of the arc-shaped conduit (26) close to the radiation surface of the antenna cover (22).

9. The adjustable antenna bracket for a high-speed railway construction communication base station tower according to claim 8, characterized in that: The radome (22) comprises: Install the side panels (27), the arc-shaped air-permeable panel (28), the bottom panel (29), and the top panel (30); The arc-shaped air-permeable plate (28) is arranged on one side of the mounting side plate (27), the bending direction of the arc-shaped air-permeable plate (28) is toward the mounting side plate (27), the bottom plate (29) and the top plate (30) are arranged at the lower part and the upper part of the mounting side plate (27) and the arc-shaped air-permeable plate (28), respectively, and the mounting side plate (27), the arc-shaped air-permeable plate (28), the bottom plate (29), and the top plate (30) form a D-shaped cavity; The arc-shaped conduits (26) are arranged close to the arc-shaped air-permeable plate (28), and both ends of each of the arc-shaped conduits (26) pass through the mounting side plate (27) to be connected to the first air pipe (25); A plurality of drainage grooves (31) are provided on the surface of the bottom plate (29), and the drainage grooves (31) are arranged through the bottom plate (29). A drainage pipe (32) is provided at the lower part of the bottom plate (29), and the top surface of the drainage pipe (32) is connected to each of the drainage grooves (31).

10. The adjustable antenna bracket for a high-speed railway construction communication base station tower according to claim 9, characterized in that: It also includes a de-icing assembly (33), wherein the de-icing assembly (33) includes: a second electric telescopic rod (34), the second electric telescopic rod (34) being mounted on the outside of the mounting side plate (27), the telescopic end of the second electric telescopic rod (34) passing through the lower outer wall of the mounting side plate (27) and being disposed in the D-shaped cavity; The de-icing assembly (33) further comprises: A first connecting rod (35) and a second connecting rod (36), wherein one end of the first connecting rod (35) and one end of the second connecting rod (36) are respectively hinged to the output end of the second electric telescopic rod (34); One end of the first connecting rod (35) and the second connecting rod (36) away from the second electric telescopic rod (34) is arranged close to the mounting side plate (27); one end of the first connecting rod (35) and the second connecting rod (36) away from the second electric telescopic rod (34) is hinged to a vertical rod (37); the two vertical rods (37) are symmetrically arranged on both sides of the second electric telescopic rod (34); The bottom end of the vertical rod (37) is fixedly connected to a limiting block (38); a limiting track (39) is provided on the surface of the bottom plate (29) close to the mounting side plate (27); and the two limiting blocks (38) are slidably arranged in the limiting track (39); A telescopic wiper plate (40) is provided on a side of the limit block (38) away from the mounting side plate (27), the bottom surface of the telescopic wiper plate (40) is in contact with the bottom plate (29), and the telescopic wiper plate (40) is formed by a plurality of sleeves that are sleeved together; The top of the vertical rod (37) is fixedly connected to a horizontal rod (41), the horizontal rod (41) is perpendicular to the surface of the mounting side plate (27), a guide groove (42) is provided through the surface of the horizontal rod (41), the guide groove (42) is perpendicular to the surface of the mounting side plate (27), a deicing pipe (43) is provided in the guide groove (42), the bottom end of the deicing pipe (43) is slidably arranged in the guide groove (42), the upper part of the deicing pipe (43) is arranged on the side of the antenna body (23) close to the arc-shaped air permeable plate (28), and a plurality of air outlets are provided at intervals on the side of the deicing pipe (43) close to the antenna body (23); A guide rail (44) is provided between the horizontal rod (41) and the antenna body (23); the deicing pipe (43) is arranged through the guide rail (44); and the track of the guide rail (44) coincides with the vertical projection of the antenna body (23); The air outlet of the elastic airbag (24) is also connected to a second air pipe (45), one end of the second air pipe (45) away from the elastic airbag (24) is connected to one end of the two deicing pipes (43), an air heater (46) is provided between the air pipe and the deicing pipes (43), and the air heater (46) is electrically connected to the generator (6).

Citation Information

Patent Citations

  • Communication tower with antenna terminal protection function

    CN108682934A

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    CN115911817A

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    CN119852701A

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