Suspension bridge cable infrared temperature collection instrument

CN224757935UActive Publication Date: 2026-09-15CCCC SECOND HIGHWAY ENG CO LTD
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Patent Information

Application Number
CN202522016687.4
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-19
Publication Date
2026-09-15
Estimated Expiration
2035-09-19

AI Technical Summary

Benefits of technology

[0012] The technical advantages of this utility model are as follows: 1. By setting grooves, anti-slip rubber, and an angle adjustment plate, the data acquisition device is fixed to the gantry column by passing cable ties through the grooves during use. The anti-slip rubber enhances the anti-slip effect and ensures the stability of the fixation. Adjusting the angle adjustment plate aligns the infrared temperature sensor with the cable strand being measured, increasing the flexibility of measurement and ensuring accurate temperature measurement. 2. The data acquisition device of this utility model has a circuit board inside, which integrates a data processing module, a data storage module, and an Internet of Things module. The data processing module analyzes temperature fluctuations during measurement, eliminating the influence of catwalk shaking on temperature. The data storage module can store temperature data locally, ensuring that data is not lost when the device is powered off or the network is abnormal.

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Abstract

The utility model belongs to infrared temperature appearance technical field, especially relates to a kind of suspension bridge cable infrared temperature collection appearance.A kind of suspension bridge cable infrared temperature collection appearance, including collection appearance body, collection appearance body front end surface is equipped with panel, panel is equipped with OLED display screen, infrared temperature measuring hole, reset button and switch button in proper order, the panel middle part of rear end surface is equipped with vertical direction steering column, vertical direction steering column can rotatably connect with angle adjusting plate, collection appearance body inside is equipped with circuit board and lithium battery, the panel on the front end surface below OLED display screen is equipped with multiple operation buttons, infrared temperature measuring hole is equipped with infrared temperature measuring sensor, infrared temperature measuring sensor, lithium battery, OLED display screen, reset button and switch button are connected with circuit board respectively.The utility model is through adjusting angle adjusting plate, and infrared temperature sensor is aimed at the cable to be measured, and flexibility of measurement is increased, and temperature measuring accuracy is guaranteed.
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Description

Technical Field

[0001] This utility model belongs to the field of infrared thermometer technology, and specifically relates to an infrared temperature acquisition instrument for suspension bridge cable strands. Background Technology

[0002] Real-time monitoring of cable strand temperature is crucial during the construction of the main cable of a suspension bridge, ensuring that the bridge's alignment and internal forces meet design requirements. Accurate acquisition of cable strand temperature data provides a scientific basis for cable adjustment schemes, effectively improving the precision and efficiency of main cable erection, and thus promoting the intelligent and digital development of main cable construction. Currently, this vital data collection relies primarily on two traditional methods: one is on-site sampling using handheld infrared thermometers by construction workers; the other is indirectly obtaining ambient temperature by deploying temperature and humidity sensors in the construction area. Both methods have significant limitations and cannot meet the high standards of construction quality control required for modern long-span suspension bridges.

[0003] Specifically, manually holding a temperature gun is not only time-consuming, labor-intensive, and inefficient, but also fails to achieve continuous, synchronous, and real-time temperature monitoring, resulting in significant data gaps in both time and space. While deploying fixed environmental sensors can acquire continuous data, the limitations of sensor installation location and orientation mean that the measured data are typically macroscopic atmospheric temperature or local ambient temperature, which differs significantly from the true surface temperature of the cable strands. Because the cable strands are affected by various factors such as solar radiation, wind speed, and self-heating, their temperature field distribution is complex. Ambient temperature alone cannot accurately reflect the actual state of the cable strands, directly impacting the accuracy of temperature correction and alignment control, and failing to meet the requirements of high-precision construction analysis. Utility Model Content

[0004] To address the aforementioned problems, the purpose of this utility model is to provide an infrared temperature acquisition device for suspension bridge cable strands. By setting grooves, anti-slip rubber, and an angle adjustment plate, the acquisition device is fixed to the gantry column by passing cable ties through the grooves during use. The anti-slip rubber enhances the anti-slip effect and ensures the stability of the fixation. Adjusting the angle adjustment plate aligns the infrared temperature sensor with the cable strand being measured, increasing the flexibility of the measurement and ensuring accurate temperature measurement.

[0005] The technical solution of this utility model is as follows: an infrared temperature acquisition device for suspension bridge cables, comprising an acquisition device body, the acquisition device body being a shell structure, a panel on the front end of the acquisition device body, an OLED display screen, an infrared temperature measuring hole, a reset button, and a power switch button arranged sequentially on the panel, a vertical steering column in the middle of the rear end panel of the acquisition device body, the vertical steering column being rotatably connected to an angle adjustment plate, a circuit board and a lithium battery inside the acquisition device body, multiple operation buttons on the front end panel below the OLED display screen, an infrared temperature sensor inside the infrared temperature measuring hole, and the infrared temperature sensor, lithium battery, OLED display screen, reset button, and power switch button being respectively connected to the circuit board.

[0006] The front panel of the data acquisition device body has screw grooves around its perimeter, and screws are installed in the screw grooves. The circuit board inside the data acquisition device body is fixedly connected to the inside of the data acquisition device body by screws, and buffer pads are installed in the screw grooves.

[0007] The front panel has grooves on both the top and bottom sides where it connects to the main body of the data acquisition device.

[0008] The groove surface is covered with anti-slip rubber.

[0009] The data acquisition device has a charging port and a data reading interface on its side. The charging port is connected to the lithium battery, and the edges of the charging port and the data reading interface are provided with waterproof sealing rings.

[0010] Both the charging port and the data reading interface are Type-C interfaces.

[0011] The circuit board is a PCB board, which integrates an infrared temperature measurement module, a data processing module, a data storage module, and an Internet of Things module. The modules are connected by circuits to realize data acquisition, processing, storage, and transmission.

[0012] The technical advantages of this utility model are as follows: 1. By setting grooves, anti-slip rubber, and an angle adjustment plate, the data acquisition device is fixed to the gantry column by passing cable ties through the grooves during use. The anti-slip rubber enhances the anti-slip effect and ensures the stability of the fixation. Adjusting the angle adjustment plate aligns the infrared temperature sensor with the cable strand being measured, increasing the flexibility of measurement and ensuring accurate temperature measurement. 2. The data acquisition device of this utility model has a circuit board inside, which integrates a data processing module, a data storage module, and an Internet of Things module. The data processing module analyzes temperature fluctuations during measurement, eliminating the influence of catwalk shaking on temperature. The data storage module can store temperature data locally, ensuring that data is not lost when the device is powered off or the network is abnormal.

[0013] The following will provide further explanation in conjunction with the accompanying drawings. Attached Figure Description

[0014] Figure 1 This is a three-dimensional structural schematic diagram of an infrared temperature acquisition device for suspension bridge cable strands according to this utility model.

[0015] Figure 2 This is a side view of the structure of an infrared temperature acquisition device for suspension bridge cable strands according to the present invention.

[0016] Reference numerals: 1-Data acquisition unit body; 2-Angle adjustment plate; 3-Vertical steering column; 4-OLED display screen; 5-Screw groove; 6-Operation button; 7-Infrared temperature measurement hole; 8-Groove; 9-Switch button; 10-Reset button; 11-Anti-slip rubber; 12-Charging port; 13-Data reading interface; 14-Waterproof sealing ring. Detailed Implementation Example 1

[0017] like Figure 1 , Figure 2 As shown, an infrared temperature acquisition device for suspension bridge cables includes an acquisition body 1, which is a shell structure. The front end of the acquisition body 1 has a panel, on which an OLED display screen 4, an infrared temperature measuring hole 7, a reset button 10, and a power switch 9 are arranged in sequence. The rear end of the acquisition body 1 has a vertical steering column 3 in the middle of the panel, and the vertical steering column 3 is rotatably connected to an angle adjustment plate 2. The acquisition body 1 contains a circuit board and a lithium battery. The front end panel below the OLED display screen 4 has multiple operation buttons 6. The infrared temperature measuring hole 7 contains an infrared temperature sensor. The infrared temperature sensor, lithium battery, OLED display screen, reset button 10, and power switch 9 are respectively connected to the circuit board.

[0018] This utility model is fixed to the gantry column and the angle adjustment plate can be flexibly adjusted through the vertical steering column to align the infrared temperature sensor with the cable strand being measured, adapting to different construction scenarios, ensuring measurement stability and flexibility, and achieving accurate temperature measurement. Example 2

[0019] Based on Embodiment 1, in this embodiment, preferably, screw grooves 5 are provided around the front panel of the data acquisition device body 1, screws are provided in the screw grooves 5, the circuit board inside the data acquisition device body 1 is fixedly connected to the inside of the data acquisition device body 1 by screws, and buffer pads are provided in the screw grooves 5.

[0020] The front panel of the data acquisition device 1 of this utility model is provided with screw grooves 5 around its perimeter. Screws are provided in the screw grooves 5. The circuit board inside the data acquisition device 1 is fixedly connected to the inside of the data acquisition device 1 by the screws. Buffer pads are provided in the screw grooves 5 to reduce the impact of construction vibration on the circuit board. Example 3

[0021] Based on Embodiment 1 or Embodiment 2, in this embodiment, preferably, grooves 8 are provided at the connection points between the upper and lower sides of the front panel and the main body 1 of the data acquisition device.

[0022] The front panel of this utility model has grooves 8 at the connection between the upper and lower sides of the panel and the main body 1 of the data acquisition device. In use, the data acquisition device is fixed to the gantry column by passing cable ties through the grooves. Example 4

[0023] Based on Embodiment 1 or Embodiment 3, in this embodiment, preferably, the groove surface of the groove 8 is covered with anti-slip rubber 11.

[0024] The groove 8 of this invention has a groove surface covered with anti-slip rubber 11. During use, the anti-slip rubber increases the anti-slip effect and ensures the stability of the data acquisition device. Example 5

[0025] Based on Embodiment 1 or Embodiment 4, in this embodiment, preferably, the side of the data acquisition device body 1 is provided with a charging port 12 and a data reading interface 13, the charging port 12 is connected to the lithium battery, and the edges of the charging port 12 and the data reading interface 13 are provided with waterproof sealing rings 14.

[0026] The instrument body 1 of this utility model has a charging port 12 and a data reading interface 13 on its side. The charging port 12 is connected to the lithium battery and is used to charge the lithium battery. The edges of the charging port 12 and the data reading interface 13 are provided with waterproof sealing rings 14 to ensure the waterproof effect of the instrument. Example 6

[0027] Based on Embodiment 1 or Embodiment 5, in this embodiment, preferably, both the charging port 12 and the data reading interface 13 are Type-C interfaces.

[0028] The charging port 12 of this utility model is a Type-C interface that supports fast charging, and the data reading interface 13 is a Type-C interface that supports high-speed transmission. The two interface designs enable separate operation of charging and data export. The waterproof design is suitable for humid construction environments, avoiding damage to the equipment from moisture, while ensuring reliable export of local data. At the same time, the Type-C interface is smaller and easier to integrate. Example 7

[0029] Based on Embodiment 1 or Embodiment 6, in this embodiment, preferably, the circuit board is a PCB board, which integrates an infrared temperature measurement module, a data processing module, a data storage module and an Internet of Things module. The modules are connected by circuits to realize data acquisition, processing, storage and transmission.

[0030] The circuit board described in this invention is a PCB board, which integrates an infrared temperature measurement module, a data processing module, a data storage module, and an IoT module. These modules are interconnected via circuitry to achieve data acquisition, processing, storage, and transmission. The data acquisition unit itself contains a circuit board integrating the data processing module, data storage module, and IoT module. The data processing module analyzes temperature fluctuations during measurement, eliminating the impact of catwalk swaying on temperature. The data storage module stores temperature data locally, ensuring data integrity and continuity in case of power failure or network malfunction, thus guaranteeing the continuity and security of monitoring data.

[0031] The above description is only a preferred embodiment of the present utility model, but the protection scope of the present utility model is not limited thereto. Any changes or substitutions that can be easily conceived by those skilled in the art within the technical scope disclosed in the present utility model should be included within the protection scope of the present utility model.

Claims

1. A suspension bridge cable infrared temperature acquisition instrument, characterized in that: The device includes a data acquisition unit (1), which is a shell structure. The front end of the data acquisition unit (1) is provided with a panel, on which an OLED display screen (4), an infrared temperature measuring hole (7), a reset button (10), and a switch button (9) are arranged in sequence. The rear end of the data acquisition unit (1) is provided with a vertical steering column (3) in the middle of the panel. The vertical steering column (3) is rotatably connected to an angle adjustment plate (2). The data acquisition unit (1) is provided with a circuit board and a lithium battery inside. The front end of the panel below the OLED display screen (4) is provided with multiple operation buttons (6). The infrared temperature measuring hole (7) is provided with an infrared temperature sensor. The infrared temperature sensor, lithium battery, OLED display screen, reset button (10), and switch button (9) are respectively connected to the circuit board.

2. The infrared temperature acquisition instrument for the cable of a suspension bridge according to claim 1, characterized in that: The front panel of the data acquisition device (1) is provided with screw grooves (5) around its perimeter. Screws are provided in the screw grooves (5). The circuit board inside the data acquisition device (1) is fixedly connected to the inside of the data acquisition device (1) by screws. Buffer pads are provided in the screw grooves (5).

3. The instrument for collecting infrared temperature of a cable of a suspension bridge according to claim 1, characterized in that: The front panel has grooves (8) at the connection between the upper and lower sides of the panel and the main body (1) of the data acquisition instrument.

4. The infrared temperature acquisition instrument for the cable of a suspension bridge according to claim 3, characterized in that: The groove surface of the groove (8) is covered with anti-slip rubber (11).

5. The infrared temperature acquisition instrument for suspension bridge cable strands according to claim 1, characterized in that: The main body (1) of the data acquisition device is provided with a charging port (12) and a data reading interface (13) on its side. The charging port (12) is connected to the lithium battery. The edges of the charging port (12) and the data reading interface (13) are provided with waterproof sealing rings (14).

6. The infrared temperature acquisition instrument for suspension bridge cable strands according to claim 5, characterized in that: Both the charging port (12) and the data reading interface (13) are Type-C interfaces.

7. The infrared temperature acquisition instrument for the cable of a suspension bridge according to claim 1, characterized in that: The circuit board is a PCB board, which integrates an infrared temperature measurement module, a data processing module, a data storage module, and an Internet of Things module. The modules are connected by circuits to realize data acquisition, processing, storage, and transmission.