An integrated bridge monitoring auxiliary device

CN224623778UActive Publication Date: 2026-08-11广东交科检测有限公司
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-08-20
Publication Date
2026-08-11

AI Technical Summary

Technical Problem

[0003]传统监测主要依赖人工巡检与固定式传感器网络,但野外桥梁普遍存在供电困难的问题,严重影响监测数据的连续性与可靠性,部分尝试太阳能供电的设备,在阴雨天或光照不足区域存在供电中断风险

Benefits of technology

[0013]1、本实用新型蓄电池分别与太阳能电池板、微型风力发电机电性连接,通过太阳能与风能互补为蓄电池供电,解决野外桥梁供电困难,提升供电系统的稳定性与可靠性。

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Abstract

This utility model relates to the field of bridge safety maintenance technology, and more specifically, to an integrated bridge monitoring auxiliary device, comprising: a fixed plate and a mounting box; the mounting box is fixed to the upper surface of the fixed plate; a sliding groove is formed on the top surface of the mounting box; one end of the solar panel is hinged to the mounting box; one end of the support arm is hinged to the solar panel, and the other end of the support arm is hinged to the fixed block; a T-shaped block is slidably disposed in the sliding groove and is connected to the fixed block; a micro wind turbine is fixed to one side of the mounting box; the acquisition module, the data transmission module, and the battery are installed inside the mounting box; the acquisition module is connected to a sensor; this utility model, through improvements to the integrated bridge monitoring auxiliary device, has the advantages of improved power supply stability and reliability, and applicability to different regions, thus effectively solving the problems and shortcomings of existing technologies and equipment.
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Description

Technical Field

[0001] This utility model relates to the field of bridge safety maintenance technology, and more specifically, to an integrated bridge monitoring auxiliary device. Background Technology

[0002] With the construction of numerous highways, bridge structures have become increasingly large-scale, and the adoption of viaducts, continuous beam bridges, and continuous steel structure bridges has made bridge inspection a time-consuming and labor-intensive task.

[0003] Traditional monitoring mainly relies on manual inspections and fixed sensor networks, but bridges in the field generally have difficulties in power supply, which seriously affects the continuity and reliability of monitoring data. Some devices that try to use solar power are at risk of power outages on cloudy or rainy days or in areas with insufficient sunlight.

[0004] In view of this, we have studied and improved the existing problems to provide an integrated bridge monitoring auxiliary device, aiming to solve the problems and improve its practical value through this technology. Utility Model Content

[0005] The purpose of this utility model is to provide an integrated bridge monitoring auxiliary device to solve the problems and shortcomings mentioned in the background art.

[0006] To achieve the above objectives, this utility model provides an integrated bridge monitoring auxiliary device, which is accomplished by the following specific technical means:

[0007] An integrated bridge monitoring auxiliary device includes: a fixed plate, a mounting box, a sliding groove, a solar panel, a support arm, a fixing block, a T-block, a micro wind turbine, a data acquisition module, a data transmission module, a battery, and sensors. The mounting box is fixed to the upper surface of the fixed plate. A sliding groove is formed on the top surface of the mounting box. One end of the solar panel is hinged to the mounting box. One end of the support arm is hinged to the solar panel, and the other end of the support arm is hinged to the fixing block. The T-block is slidably disposed in the sliding groove and is connected to the fixing block. The micro wind turbine is fixed to one side of the mounting box. The data acquisition module, the data transmission module, and the battery are installed inside the mounting box. The data acquisition module is connected to sensors.

[0008] As a further optimization of this technical solution, the sensor in the integrated bridge monitoring auxiliary device of this utility model includes at least one of a strain sensor, a vibration sensor, and a crack gauge.

[0009] As a further optimization of this technical solution, the battery of the integrated bridge monitoring auxiliary device of this utility model is electrically connected to the solar panel and the micro wind turbine, and the battery supplies power to the acquisition module and the data transmission module.

[0010] As a further optimization of this technical solution, the T-shaped block of the integrated bridge monitoring auxiliary device of this utility model is connected to the fixed block by fasteners.

[0011] As a further optimization of this technical solution, the data transmission module of the integrated bridge monitoring auxiliary device of this utility model adopts wireless communication.

[0012] Due to the application of the above technical solution, this utility model has the following advantages compared with the prior art:

[0013] 1. The battery of this utility model is electrically connected to a solar panel and a micro wind turbine, respectively. The battery is powered by the complementary power of solar and wind energy, which solves the problem of power supply difficulties for bridges in the field and improves the stability and reliability of the power supply system.

[0014] 2. One end of the support arm of this utility model is hinged to the solar panel, and the other end of the support arm is hinged to the fixing block. By adjusting the movement of the T-shaped block in the slide groove, the tilt angle of the solar panel can be flexibly adjusted to adapt to different light requirements.

[0015] 3. This utility model improves the integrated monitoring auxiliary device for bridges, which has the advantages of improving the stability and reliability of power supply and being applicable to different regions, thus effectively solving the problems and shortcomings of existing technologies and equipment. Attached Figure Description

[0016] The accompanying drawings, which form part of this application, are used to provide a further understanding of the present invention. The illustrative embodiments of the present invention and their descriptions are used to explain the present invention and do not constitute an undue limitation of the present invention. In the drawings:

[0017] Figure 1 This is a schematic diagram of the overall structure of this utility model;

[0018] Figure 2 This is an exploded structural diagram of the present invention;

[0019] Figure 3 This is an exploded structural diagram of the present invention.

[0020] In the diagram: 1. Fixing plate; 2. Mounting box; 3. Slide; 4. Solar panel; 5. Support arm; 6. Fixing block; 7. T-block; 8. Micro wind turbine; 9. Data acquisition module; 10. Data transmission module; 11. Battery; 12. Sensor. Detailed Implementation

[0021] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present utility model. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments.

[0022] Please see Figures 1 to 3 This utility model provides a specific technical implementation scheme for an integrated bridge monitoring auxiliary device:

[0023] An integrated bridge monitoring auxiliary device includes: a fixed plate 1, a mounting box 2, a sliding groove 3, a solar panel 4, a support arm 5, a fixing block 6, a T-block 7, a micro wind turbine 8, a data acquisition module 9, a data transmission module 10, a battery 11, and a sensor 12. The mounting box 2 is fixed to the upper surface of the fixed plate 1. The top surface of the mounting box 2 has a sliding groove 3. One end of the solar panel 4 is hinged to the mounting box 2. One end of the support arm 5 is hinged to the solar panel 4, and the other end of the support arm 5 is hinged to the fixing block 6. The T-block 7 is slidably disposed in the sliding groove 3 and is connected to the fixing block 6. The T-block 7 is connected to the fixing block 6 by fasteners. By adjusting the position of the fixing block 6, the tilt angle of the solar panel 4 can be flexibly adjusted to adapt to different... The micro wind turbine 8 is fixed to one side of the mounting box 2, and the data acquisition module 9, data transmission module 10, and battery 11 are installed inside the mounting box 2. The data transmission module 10 uses wireless communication to transmit monitoring data back to the data center. The battery 11 is electrically connected to the solar panel 4 and the micro wind turbine 8, and the battery 11 supplies power to the data acquisition module 9 and the data transmission module 10. The data acquisition module 9 is used to receive and process the data monitored by the sensor 12. The battery 11 is powered by the complementary use of solar and wind energy, which solves the problem of power supply difficulties for bridges in the field and improves the stability and reliability of the power supply system. The data acquisition module 9 is connected to the sensor 12. The sensor 12 includes at least one of strain sensor, vibration sensor, and crack gauge.

[0024] Specific implementation steps:

[0025] In use, the sensor 12 is installed at various monitoring positions on the bridge. The position of the fixing block 6 is adjusted so that the angle of the solar panel 4 is appropriate. The fixing block 6 is connected and fixed to the T-block 7 with screws. The electricity generated by the solar panel 4 and the micro wind turbine 8 is stored in the battery 11. The sensor 12 monitors various positions on the bridge and transmits the data back to the acquisition module 9. The data transmission module 10 transmits the data collected by the acquisition module 9 back to the monitoring center for bridge analysis.

[0026] In summary, this integrated bridge monitoring auxiliary device electrically connects a battery to a solar panel and a micro wind turbine, respectively. By leveraging the complementary power of solar and wind energy, the battery is powered, solving the problem of power supply difficulties on bridges in the field and improving the stability and reliability of the power supply system. One end of a support arm is hinged to the solar panel, and the other end is hinged to a fixed block. The fixed block, combined with the movement of a T-shaped block within a groove, allows for flexible adjustment of the solar panel's tilt angle to adapt to different lighting requirements. This invention, through improvements to the integrated bridge monitoring auxiliary device, offers advantages such as enhanced power supply stability and reliability, and applicability to different regions, effectively solving the problems and shortcomings of existing technologies and equipment.

[0027] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the present invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. An integrated bridge monitoring auxiliary device, comprising: The components include a fixed plate (1), a mounting box (2), a sliding groove (3), a solar panel (4), a support arm (5), a fixing block (6), a T-block (7), a micro wind turbine (8), a data acquisition module (9), a data transmission module (10), a battery (11), and a sensor (12). The mounting box (2) is fixed to the upper surface of the fixed plate (1); a sliding groove (3) is provided on the top surface of the mounting box (2); and one end of the solar panel (4) is hinged to the mounting box (2). Connection; one end of the support arm (5) is hinged to the solar panel (4), and the other end of the support arm (5) is hinged to the fixing block (6); the T-shaped block (7) is slidably disposed in the slide groove (3), and the T-shaped block (7) is connected to the fixing block (6); the micro wind turbine (8) is fixed to one side of the mounting box (2); the acquisition module (9), the data transmission module (10), and the battery (11) are installed inside the mounting box (2); the acquisition module (9) is connected to a sensor (12).

2. The integrated bridge monitoring auxiliary device according to claim 1, characterized in that: The sensor (12) includes at least one of a strain sensor, a vibration sensor, and a crack gauge.

3. The integrated bridge monitoring auxiliary device according to claim 1, characterized in that: The battery (11) is electrically connected to the solar panel (4) and the micro wind turbine (8), and the battery (11) supplies power to the acquisition module (9) and the data transmission module (10).

4. The integrated bridge monitoring auxiliary device according to claim 1, characterized in that: The T-block (7) is connected to the fixing block (6) by fasteners.

5. The integrated bridge monitoring auxiliary device according to claim 1, characterized in that: The data transmission module (10) adopts wireless communication.