Wind sensor mounting bracket for communication iron tower

By designing a triangular frame structure for the wind sensor mounting bracket, the problem of unstable installation of wind sensors on communication towers was solved, achieving stable installation and high-accuracy wind monitoring, extending equipment life and reducing maintenance costs.

CN224050118UActive Publication Date: 2026-03-27HEZHOU METEOROLOGICAL BUREAU
View PDF 0 Cites 0 Cited by

Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-05-23
Publication Date
2026-03-27

AI Technical Summary

Technical Problem

The existing installation method of wind sensors on communication towers is prone to inaccurate detection results or loosening, affecting the stability and accuracy of wind monitoring.

Method used

Design an installation bracket that includes vertical columns, horizontal connecting rods, extension columns, and support columns arranged in a triangular pattern. Combine bolt connections and welding to form a stable triangular frame structure, and equip it with guardrails and shock-absorbing pads to ensure the stable installation and protection of the wind sensor.

Benefits of technology

This improved the installation stability of wind sensors and the accuracy of monitoring data, enhanced their resistance to severe weather, extended the service life of the equipment, and reduced maintenance costs.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure CN224050118U_ABST
    Figure CN224050118U_ABST
Patent Text Reader

Abstract

The utility model discloses a wind sensor mounting bracket for a communication iron tower, belongs to the field of wind sensor equipment mounting, and is used for providing a stable and low-interference wind sensor mounting effect. The wind sensor mounting bracket for the communication iron tower comprises three vertical stand columns, three transverse connecting rods, two extension columns and a plurality of supporting columns, the three vertical stand columns are distributed in a triangular mode and are all fixedly installed on a communication iron tower. The three transverse connecting rods extend in the direction perpendicular to the vertical stand columns, and one transverse connecting rod is arranged between every two adjacent vertical stand columns. The two extension columns are arranged on one side of the three vertical stand columns at intervals, and each extension column is fixedly connected with the two transverse connecting rods. The supporting columns are arranged on the portions, located outside the vertical stand columns, of the two extension columns, the supporting columns are distributed at intervals, the supporting columns, the extension columns and the third vertical stand column jointly form an installation area located outside the three vertical stand columns, and the installation area is used for installing a wind sensor.
Need to check novelty before this filing date? Find Prior Art

Description

TECHNICAL FIELD

[0001] The present application relates to the field of wind sensor device installation, in particular to a wind sensor installation support for communication towers. BACKGROUND

[0002] In the field of communication, wind sensors are usually installed on communication towers to monitor the environmental wind conditions in real time and provide data support for the safe operation of communication equipment.

[0003] However, the existing wind sensors or wind detection devices on communication towers are usually directly installed on the communication towers through a fixed seat or are installed with the assistance of an installation column. The former causes the communication tower to be too close to the wind sensor, affecting the detection results, and the latter is loose due to unstable cooperation between the installation column and the communication tower under the action of time. CONTENT OF THE UTILITY MODEL

[0004] The present application provides a wind sensor installation support for communication towers to provide stable and low-interference wind sensor installation effects.

[0005] The present application provides a wind sensor installation support for communication towers, which includes three vertical columns, three horizontal connecting rods, two extension columns, and multiple support columns. The three vertical columns are arranged in a triangular distribution, and each vertical column is fixedly installed on the communication tower. The three horizontal connecting rods extend in a direction perpendicular to the vertical columns, and one horizontal connecting rod is arranged between adjacent two vertical columns. The two extension columns are arranged on one side of the three vertical columns, and each extension column is fixedly connected with two horizontal connecting rods. The multiple support columns are arranged on the part of the two extension columns located outside the vertical columns, and the multiple support columns are distributed in a spaced manner. The multiple support columns, the extension columns, and the third vertical column jointly form an installation area located outside the three vertical columns, and the installation area is used for installing the wind sensor.

[0006] The novel wind sensor installation support of the present application forms a stable triangular frame structure through the triangular distribution of the three vertical columns and the fixed connection of the horizontal connecting rods. At the same time, the installation area formed in cooperation with the extension columns and the support columns makes the entire installation support have high structural stability, effectively resists the influence of strong winds and other bad weather, ensures the stability of the installed wind sensor, and improves the accuracy of the monitoring data.

[0007] The extension columns and the support columns can adjust the size of the installation area according to wind sensors of different models and sizes, improve the applicability of the installation support, and facilitate the installation of the wind sensor.

[0008] In some embodiments of the present application, multiple mounting holes are arranged on the vertical columns, and the mounting holes are used to fix the installation support on the communication tower. The stable installation of the installation support is realized by connecting the mounting holes with corresponding mounting points on the communication tower through bolts.

[0009] In some embodiments of the present application, a guardrail is arranged in the installation area, which is arranged around the edge of the installation area and is used to prevent the wind sensor from falling accidentally during installation and use. The guardrail can prevent the wind sensor from falling accidentally during installation and use, and at the same time, it can protect the wind sensor to some extent and reduce the collision damage of external objects to the wind sensor.

[0010] In some embodiments of the present application, the guardrail is composed of a plurality of rod members. The rod member has simple structure, convenient installation and stable protection effect, and at the same time, it can avoid affecting the wind force.

[0011] In some embodiments of the present application, a shock pad is further arranged in the installation area, which is arranged at the contact part of the wind sensor and the installation support, and is used to absorb the vibration generated by the wind sensor during operation. The shock pad can effectively absorb the vibration generated by the wind sensor during operation, reduce the influence of vibration on the accuracy of the monitoring data of the wind sensor, and at the same time, prolong the service life of the wind sensor.

[0012] In some embodiments of the present application, the plurality of support columns are distributed in parallel. The parallel distribution of the support columns can make the support effect stable.

[0013] In some embodiments of the present application, the two extension columns are distributed in parallel. The parallel distribution of the extension columns can facilitate the installation and fixation of the support column. BRIEF DESCRIPTION OF DRAWINGS

[0014] The accompanying drawings are used to provide a further understanding of the technical scheme of the present application, and constitute a part of the specification, and are used together with the embodiments of the present application to explain the technical scheme of the present application, and do not constitute a limitation on the technical scheme of the present application.

[0015] Figure 1 A schematic view of a wind sensor installation support for a communication tower is provided for the embodiments of the present application.

[0016] Figure 2 A top view schematic view of a wind sensor installation support for a communication tower is provided for the embodiments of the present application.

[0017] Reference signs: 1-vertical column; 2-horizontal connecting rod; 3-extension column; 4-assistant support rod; 5-guardrail; 6-support column. DETAILED DESCRIPTION

[0018] With reference to the drawings and the embodiments of the present application, the technical solutions in the embodiments of the present application will be clearly and completely described. Obviously, the described embodiments are only part of the embodiments of the present application, rather than all the embodiments of the present application. Based on the embodiments of the present application, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of the present application.

[0019] It should be noted that all directional indications, such as upper, lower, left, right, front, back, etc., in the embodiments of the present application are only used to explain the relative position relationship, movement condition, etc. between components in a certain specific posture (as shown in the drawings), and if the specific posture changes, the directional indications also change accordingly.

[0020] The terms "first", "second", etc. are only used for descriptive purposes, and cannot be understood as indicating or implying relative importance or implicitly indicating the number of the indicated technical features. Therefore, the features defined as "first", "second" can explicitly or implicitly include one or more features. In the description of the present application, unless otherwise specified, the meaning of "multiple" is two or more.

[0021] In the description of the present application, it should be noted that, unless otherwise specified and limited, the terms "connected", "connected" should be understood broadly, for example, it can be fixedly connected, or it can be detachably connected, or integrally connected. For those of ordinary skill in the art, the specific meaning of the above terms in the present application can be understood according to the specific circumstances. In addition, when describing the pipeline, "connected" and "connected" in the present application have the meaning of conducting. The specific meaning needs to be understood in combination with the context.

[0022] In the embodiments of the present application, the words such as "exemplary" or "for example" are used to represent as an example, illustration or description. Any embodiment or design scheme described as "exemplary" or "for example" in the embodiments of the present application should not be interpreted as more preferred or more advantageous than other embodiments or design schemes. Rather, the words such as "exemplary" or "for example" are intended to present the relevant concept in a specific manner.

[0023] In the field of communication, wind sensors are usually needed to be installed on communication towers to monitor the environmental wind conditions in real time, and provide data support for the safe operation of communication equipment.

[0024] However, the existing wind sensors or wind detection devices on the communication tower are usually directly installed on the communication tower through a fixing seat, or are installed through an installation column. The former will cause the communication tower to be too close to the wind sensor, affecting the detection result, and the latter will loosen due to unstable cooperation between the installation column and the communication tower under the time effect.

[0025] For this purpose, please refer to Figure 1 and Figure 2 , the application provides a wind sensor mounting bracket for communication tower, comprising three vertical columns 1, three horizontal connecting rods 2, two extension columns 3 and a plurality of support columns 6.

[0026] Please refer to Figure 1 and Figure 2 , three vertical columns 1 are arranged in a triangular distribution, and three vertical columns 1 are fixedly installed on the communication tower. The vertical column 1 adopts a columnar design, which has good compression and bending resistance in mechanics, and can effectively bear the weight of the wind sensor and the mounting bracket itself, as well as external wind load. When the columnar structure is stressed, the force can be transmitted along the column body more evenly, reducing stress concentration.

[0027] Please refer to Figure 1 At the same time, the columnar shape is convenient for opening mounting holes on its surface for fixed connection with the communication tower and other components (such as horizontal connecting rods 2, extension columns 3, etc.), ensuring the convenience of installation and the stability of the structure. In addition, the three vertical columns 1 are arranged in a triangular distribution, and the horizontal connecting rods 2 form a triangular frame, further enhancing the overall spatial stability and improving the support effect of the wind sensor.

[0028] Considering that the communication tower is usually installed outdoors, it faces the environment of wind blowing, sun shining, rain and possible corrosion, the vertical column 1 is generally made of high-strength and corrosion-resistant material. Common materials include high-strength alloy steel such as Q345 steel, which has high yield strength and tensile strength, can not deform or break under large load, and ensures that the mounting bracket remains stable in various harsh environments.

[0029] In addition, steel materials with hot-dip galvanizing treatment on the surface can also be used. The hot-dip galvanizing layer can effectively isolate the contact between the steel and the external corrosive medium, greatly improve the corrosion resistance of the steel, prolong the service life of the vertical column 1, and reduce maintenance costs. In some scenarios where weight is strictly required, aluminum alloy materials will also be selected. Aluminum alloy is lighter in weight, easy to install and transport, and has good strength and corrosion resistance, which can also meet the use requirements of the wind sensor mounting bracket.

[0030] Please refer to Figure 1 and Figure 2 , three horizontal connecting rods 2 extend in a direction perpendicular to the vertical column 1, and one horizontal connecting rod 2 is arranged between adjacent two vertical columns 1.

[0031] Please refer to Figure 1 and Figure 2, the transverse connecting rod 2 needs to have high strength and deformation resistance to withstand the load transmitted by the vertical column 1 and maintain performance stability in harsh outdoor environments. Common materials are high-strength alloy steels such as Q345 steel, which has excellent yield strength and tensile strength, ensuring that the support structure does not bend or break under external forces such as strong winds and vibrations.

[0032] In addition, steel treated with surface hot galvanizing is also preferred, as the hot galvanizing layer can effectively isolate corrosive media such as water vapor and acid-base substances, extending the service life of the transverse connecting rod 2 and reducing maintenance costs. In some weight-sensitive scenarios, aluminum alloy materials can also be used as an alternative solution, as they are lightweight, high-strength, and corrosion-resistant, reducing the overall weight of the installation support while ensuring structural strength, making transportation and installation easier.

[0033] Please refer to Figure 1 and Figure 2 The transverse connecting rod 2 is usually designed as a long rod structure, which can provide stable transverse support force when connecting two vertical columns 1, effectively resisting horizontal wind and external forces. The cross-sectional shape of the rod structure is commonly circular, square, or rectangular, with the circular cross-section being more uniform in all directions, better able to handle complex external forces. Square or rectangular cross-sections are more convenient to weld or bolt, allowing them to fit closely with the connecting parts of the vertical column 1, improving the stability of the connection.

[0034] Please refer to Figure 1 and Figure 2 A transverse connecting rod 2 is provided between two adjacent vertical columns 1, and the installation method uses bolt connection or welding. When bolted, installation holes are made at the corresponding positions of the transverse connecting rod 2 ends and the vertical column 1, and high-strength bolts are passed through the installation holes and tightened with nuts to firmly fix the transverse connecting rod 2 to the vertical column 1. This method is easy to disassemble and maintain, and is more flexible when adjusting the support structure or replacing parts.

[0035] Welding method is to weld the two ends of the transverse connecting rod 2 with the vertical column 1 to form a rigid connection that cannot be disassembled. Welded connections have high connection strength and stability, ensuring that the transverse connecting rod 2 and the vertical column 1 form a whole, effectively transmitting the load, but the welding operation has high process requirements and is difficult to disassemble for maintenance. In actual application, the appropriate installation method can be selected according to the installation requirements and use scenarios.

[0036] Please refer to Figure 1 and Figure 2Two extension columns 3 are arranged at one side of the three vertical columns 1, and each extension column 3 is fixedly connected with two transverse connecting rods 2. The extension column 3 adopts a hollow tubular structure, which takes into account the strength and lightweight requirements. The hollow tubular structure can effectively reduce its own weight under the premise of ensuring a certain cross-sectional moment of inertia, facilitating installation and transportation; at the same time, the circular or square cross-sectional shape makes the column bear force uniformly in all directions, and can better resist wind force and external force impact from different angles.

[0037] To meet the use requirements in complex outdoor environments, the extension column 3 is usually made of high-strength and corrosion-resistant materials. Commonly used is high-strength alloy steel such as Q345 steel, which has high yield strength and tensile strength, and can withstand large loads, ensuring that the extension column 3 will not deform or break when connecting the transverse connecting rods 2 and supporting the wind sensor installation area.

[0038] In addition, steel materials with hot-dip galvanizing treatment on the surface are also commonly used. The hot-dip galvanizing layer can effectively isolate air, moisture and other corrosive media, prolonging the service life of the extension column 3; in some weight-sensitive scenarios, aluminum alloy materials can also be used as an ideal alternative due to their low density, high strength and strong corrosion resistance, which can reduce the overall weight of the support while ensuring structural performance.

[0039] Please refer to Figure 1 and Figure 2 Two extension columns 3 are arranged at one side of the three vertical columns 1, and each extension column 3 is fixedly connected with two transverse connecting rods 2, and the specific fixing method adopts the form of bolt connection combined with welding. Installation holes are provided on the extension column 3 and the transverse connecting rod 2 at the corresponding positions, and the high-strength bolts are used for preliminary fixation to ensure the position accuracy; then the welding process is used for reinforcement at the connection to form a rigid connection, which can ensure the convenience of installation and provide reliable connection strength, so that the extension column 3, the transverse connecting rod 2 and the vertical column 1 form a stable support structure.

[0040] Please refer to Figure 2 A plurality of support columns 6 are arranged on the part of the two extension columns 3 located outside the vertical column 1, and the plurality of support columns 6 are arranged at intervals. The plurality of support columns 6, the extension column 3 and the third vertical column 1 form an installation area outside the three vertical columns 1, and the installation area is used for installing the wind sensor.

[0041] Please refer to Figure 1 and Figure 2The novel application is characterized in that three vertical columns 1 are arranged in a triangular distribution and are fixedly connected through transverse connecting rods 2 to form a stable triangular frame structure, and the mounting area formed by the extension column 3 and the support column 6 can ensure the stability of the wind sensor after installation and improve the accuracy of the monitoring data.

[0042] The extension column 3 and the support column 6 can adjust the size of the mounting area according to different models and sizes of wind sensors, improve the applicability of the mounting bracket, and facilitate the installation of the wind sensor.

[0043] For example, refer to Figure 1 and Figure 2 , three vertical columns 1 are arranged in a triangular distribution, and the three vertical columns 1 are fixedly connected through transverse connecting rods 2 to form a stable triangular frame structure. Two extension columns 3 are arranged on one side of the three vertical columns 1, and one end of the extension column 3 is fixedly connected to two of the vertical columns 1 through bolts. One end of the plurality of support columns 6 is fixedly connected to the extension column 3 through bolts, and the other end is fixedly connected to the third vertical column 1 through bolts. The plurality of support columns 6, the extension column 3, and the third vertical column 1 together form a mounting area outside the three vertical columns 1 for installing the wind sensor.

[0044] A plurality of mounting holes are provided on the vertical column 1, and during installation, the bolts are connected to the corresponding mounting points on the communication tower through the mounting holes, and the mounting bracket is stably fixed on the communication tower.

[0045] A guardrail 5 is arranged around the edge of the mounting area, and the guardrail 5 is fixedly connected to the mounting bracket through bolts to prevent the wind sensor from accidentally falling during installation and use. At the same time, a shock-absorbing pad is arranged at the contact part of the wind sensor and the mounting bracket in the mounting area, and the shock-absorbing pad is made of rubber material and can effectively absorb the vibration generated by the wind sensor during operation.

[0046] During actual installation of the wind sensor, the length of the extension column 3 and the support column 6 is adjusted according to the size of the wind sensor to determine the appropriate size of the mounting area, and the wind sensor is placed in the mounting area and fixedly connected to the mounting bracket through bolts or other fixing methods to ensure firm installation of the wind sensor.

[0047] In some examples, a plurality of mounting holes are provided on the vertical column 1, and the mounting holes are used to fix the mounting bracket on the communication tower. The bolts are connected to the corresponding mounting points on the communication tower through the mounting holes to achieve stable installation of the mounting bracket.

[0048] For example, refer to Figure 1In some examples, a protective fence 5 is arranged in the installation area, which is arranged around the edge of the installation area, and is used to prevent the wind sensor from falling accidentally during installation and use. The protective fence 5 can prevent the wind sensor from falling accidentally during installation and use, and at the same time, it can protect the wind sensor to a certain extent and reduce the collision damage of external objects to the wind sensor.

[0049] Please refer to Figure 1 In some examples, the protective fence 5 is composed of a plurality of rod members. The rod member has simple structure, convenient installation, stable protection effect, and avoids affecting the wind force.

[0050] The rod member can be a metal rod, which can be a round rod, a square rod, or other shaped rod members.

[0051] In some examples, a shock-absorbing pad is also arranged in the installation area, which is arranged at the contact part of the wind sensor and the installation support, and is used to absorb the vibration generated by the wind sensor during operation. The shock-absorbing pad can effectively absorb the vibration generated by the wind sensor during operation, reduce the influence of vibration on the accuracy of the monitoring data of the wind sensor, and at the same time, prolong the service life of the wind sensor.

[0052] In some examples, the shock-absorbing pad is usually made of materials with high elasticity and high damping properties, such as natural rubber, neoprene rubber, and silicone rubber. Natural rubber has low cost and good elasticity, which can effectively buffer the vibration; neoprene rubber has excellent weather resistance, aging resistance and corrosion resistance in addition to good elasticity, which is suitable for outdoor harsh environment of communication towers; silicone rubber performs well in high and low temperature environments and can maintain stable performance in a temperature range of -60°C to 250°C.

[0053] Please refer to Figure 2 In some examples, the plurality of support columns 6 are arranged in parallel. The parallel arrangement of the support columns 6 can make the support effect of the support columns 6 stable.

[0054] In some examples, the parallel arrangement of the support columns 6 can uniformly transmit the weight and wind load of the upper structure (such as the equipment platform, antenna, wind sensor support, etc.) to the foundation, avoiding local overloading and causing structural deformation or damage. For example, in the wind sensor support, the parallel support columns 6 can balance the lateral thrust of the support caused by the wind, reducing the stress concentration of a single component.

[0055] The size, shape and connection method of the parallel support columns 6 can be designed uniformly, which is convenient for factory prefabrication and processing, and reduces the production cost. For example, all the support columns 6 can be made of the same specification of steel (such as Q345 steel pipe), which reduces the on-site cutting and adjustment workload.

[0056] Please refer to Figure 2In some examples, two extension columns 3 are arranged in parallel. Parallel extension columns 3 can facilitate the installation and fixation of support columns 6.

[0057] Parallel extension columns 3 can jointly bear the load (such as the weight of equipment, wind force) transmitted by the transverse connecting rod 2, avoiding tilting or breaking caused by the stress on a single column. For example, in a wind sensor support, two parallel extension columns 3 are fixed by a transverse connecting rod 2, which can balance the horizontal thrust of the wind force on the sensor and reduce the bending moment at the root.

[0058] Parallel extension columns 3 can serve as additional "installation reference points", with beams, clamps, or other components added between or outside them for the installation of sensors, cameras, cable trays, and other equipment. For example, two parallel extension columns 3 can form a "track" through a transverse connecting rod 2, facilitating the sliding adjustment of the installation position of equipment.

[0059] Please refer to Figure 1 and Figure 2 In some examples, an auxiliary support rod 4 is arranged between the end of the extension column 3 and the vertical column 1, and the auxiliary support rod 4 is arranged obliquely.

[0060] Please refer to Figure 1 The auxiliary support rod 4, together with the extension column 3 and the vertical column 1, forms a triangular structure, which effectively enhances the anti-deformation ability of the entire installation support by utilizing the stability principle of a triangle. In severe weather such as strong winds, the wind sensor is subjected to a large wind force, and the auxiliary support rod 4 can disperse and transmit the load, reducing the bending stress of the extension column 3 and the vertical column 1, preventing the support from tilting or being damaged due to uneven stress, and ensuring the stable operation of the wind sensor.

[0061] Please refer to Figure 1 and Figure 2 The auxiliary support rod 4 shares part of the load borne by the end of the extension column 3, allowing the installation support to bear a larger weight of wind sensors or other additional equipment. When a large and heavy wind sensor needs to be installed, the auxiliary support rod 4 can effectively prevent the extension column 3 from deforming due to excessive load, providing reliable support for the wind sensor.

[0062] The auxiliary support rod 4 increases the overall rigidity of the structure, reducing the vibration amplitude of the extension column 3 under the action of wind load. This helps to reduce the measurement error of the wind sensor due to vibration, improving the accuracy of monitoring data; at the same time, reducing vibration can also prolong the service life of the wind sensor and its internal precision components.

[0063] The auxiliary support rod 4 is usually in the shape of a round pipe or a square pipe, such as a common Φ32x2.5mm round steel pipe or a 30x30x2mm square steel pipe, which has good bending and torsion resistance while ensuring strength. In terms of material, the same or similar high-strength alloy steel (such as Q345 steel) as the extension column 3 and the vertical column 1 is selected and subjected to hot galvanizing corrosion prevention treatment to adapt to complex outdoor environments and ensure long-term reliability.

[0064] The length of the auxiliary support rod 4 is determined according to the actual distance between the end of the extension column 3 and the vertical column 1, ensuring that it can tightly connect the two after installation and form a stable triangle. The installation angle is generally between 30°-60°, and within this angle range, the triangle structure has the best load transfer and dispersion effect. In actual application, the optimal length and angle of the auxiliary support rod 4 can be determined through mechanical calculation or simulation analysis to achieve the best reinforcement effect.

[0065] One end of the auxiliary support rod 4 is fixed at a suitable position on the end of the extension column 3 through welding or bolt connection, and the other end is connected to the vertical column 1. In order to make the stress more uniform, the connection point should be selected as close as possible to the position with larger stress on the extension column 3 and the vertical column 1, such as near the transverse connecting rod 2.

[0066] When welding is used, beveling treatment is required at the connection site to ensure firm welding, and the height and length of the weld meet the relevant standards. After welding is completed, the weld is polished and subjected to corrosion prevention treatment; when bolt connection is used, connecting plates are welded at both ends of the auxiliary support rod 4, mounting holes are opened on the connecting plates, high-strength bolts (such as 8.8 grade) are connected with the corresponding mounting holes on the extension column 3 and the vertical column 1, and spring washers or lock nuts are used to prevent the bolts from loosening.

[0067] When installing the auxiliary support rod 4, first temporarily fix one end of it on the end of the extension column 3, then adjust the angle and position of the auxiliary support rod 4 to make the other end accurately align with the mounting point on the vertical column 1, and then fix it. During the fixing process, use measuring tools (such as a level and a protractor) to monitor in real time to ensure that the installation angle and position of the auxiliary support rod 4 are accurate and correct, and the stability of the triangular structure is ensured.

[0068] In the description of the present specification, specific features, structures, materials or characteristics can be combined in any one or more embodiments or examples in a suitable manner.

[0069] The above is only a specific implementation of the present application, but the protection scope of the present application is not limited thereto, and any change or replacement within the technical scope disclosed in the present application should be covered within the protection scope of the present application. Therefore, the protection scope of the present application should be subject to the protection scope of the claims.

Claims

1. A mounting bracket for a wind sensor used in communication towers, characterized in that, It includes three vertical columns, three horizontal connecting rods, two extension columns, and multiple support columns; The three vertical columns are arranged in a triangular pattern, and all three vertical columns are fixedly installed on the communication tower. The three transverse connecting rods extend in a direction perpendicular to the vertical column, and one transverse connecting rod is provided between two adjacent vertical columns; Two of the extension columns are spaced apart on one side of the three vertical columns, and each of the extension columns is fixedly connected to the two of the transverse connecting rods; Multiple support columns are disposed on the portions of the two extension columns located outside the vertical columns. The multiple support columns are spaced apart, and together with the extension columns and the third vertical column, they form an installation area located outside the three vertical columns. The installation area is used to install wind sensors.

2. The wind sensor mounting bracket for communication towers according to claim 1, characterized in that, The vertical column is provided with multiple mounting holes, which are used to fix the mounting bracket to the communication tower.

3. The wind sensor mounting bracket for communication towers according to claim 1, characterized in that, A protective railing is installed within the installation area, surrounding the edge of the installation area. The protective railing is used to prevent the wind sensor from accidentally falling during installation and use.

4. The wind sensor mounting bracket for communication towers according to claim 3, characterized in that, The guardrail is composed of multiple rods.

5. The wind sensor mounting bracket for communication towers according to claim 1, characterized in that, The installation area is also equipped with shock-absorbing pads, which are placed at the contact points between the wind sensor and the mounting bracket. The shock-absorbing pads are used to absorb the vibrations generated by the wind sensor during operation.

6. The wind sensor mounting bracket for communication towers according to claim 1, characterized in that, The multiple support columns are distributed in parallel.

7. The wind sensor mounting bracket for communication towers according to claim 1, characterized in that, The two extended columns are distributed in parallel.