Roof steel structure surface temperature monitoring equipment
By using a connection assembly of windproof clips, fixing plates, and elastic elements in the roof steel structure surface temperature monitoring equipment, the problem of unstable contact between the probe and the steel structure surface was solved, enabling accurate monitoring and stable transmission of data during thermal expansion and contraction, and enhancing the waterproof performance of the equipment.
Patent Information
- Application Number
- CN202520436549.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-13
- Publication Date
- 2026-01-06
- Estimated Expiration
- 2035-03-13
AI Technical Summary
In existing technologies, temperature monitoring equipment for roof steel structures suffers from insufficient accuracy in monitoring data because the probe cannot always be in constant contact with the surface of the steel structure. This is especially true when the steel structure expands and contracts with temperature, making it difficult to guarantee data accuracy.
The temperature monitor body with a probe and the connecting assembly include a windproof clip, a fixing plate, an elastic element and a sleeve. The elastic element makes the sleeve slide relative to the fixing plate, ensuring that the probe is always in contact with the steel structure surface and adapting to the thermal expansion and contraction of the steel structure. The connecting assembly also includes a waterproof joint and a shield to prevent rainwater erosion.
This improved the accuracy of monitoring data, ensured that the probe remained in contact with the surface during the thermal expansion and contraction of the steel structure, enhanced the waterproof performance of the equipment, and improved the stability and reliability of data transmission.
Smart Images

Figure CN223769644U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the technical field of temperature monitoring equipment, specifically a surface temperature monitoring device for roof steel structures. Background Technology
[0002] Abnormal temperatures on the steel structure of the roof surface may be conducted to roofing materials, such as waterproofing and insulation layers, causing these materials to age prematurely, crack, or be damaged. Monitoring the temperature of the steel structure can help detect temperature factors that may damage the roofing materials in a timely manner, allowing for appropriate measures to be taken to protect the roofing materials and ensure the normal functioning of the roof's waterproofing and insulation.
[0003] For example, patent CN221280459U discloses a remote real-time monitoring device for the surface temperature of building components inside a fire scene. It includes a thermocouple and a fireproof protection box. The thermocouple is fixed to the outer surface of the building component by fasteners and connected to a data acquisition and transmission system inside the fireproof protection box via armored compensating wires. The fireproof protection box consists of two symmetrical shells, fixed together by symmetrical clamps on the sides of the shells. A handle is fixed to the outside of the shell, with both sides of the handle welded to the clamps on the same side. The outer surfaces of both the shells and the clamps are coated with an intumescent fire-retardant coating. The fireproof protection box has wire holes through which the armored compensating wires can pass, and the gaps inside the wire holes and between the shells are sealed with intumescent fire-retardant coating.
[0004] Existing technologies, such as those described in the aforementioned patents, can monitor the surface temperature of a building in real time using monitoring devices and transmit the data to a computer via an information transmission system. Some steel structures on roof surfaces also require real-time temperature monitoring. However, since steel structures are exposed to the elements and subject to weather conditions, they will expand and contract with temperature changes. If the probes of the monitoring devices cannot always be in contact with the steel structures, the accuracy of the monitoring data will need to be improved. Utility Model Content
[0005] The purpose of this invention is to provide a surface temperature monitoring device for roof steel structures to address the shortcomings of the prior art.
[0006] To achieve the above objectives, this utility model provides the following technical solution: a surface temperature monitoring device for a roof steel structure, comprising a temperature monitoring body with a probe and at least one set of connecting components. The temperature monitoring body is provided with a sleeve on its exterior. The connecting components include a windproof clamp connected to the roof, a fixing plate, and an elastic element. A connecting plate is provided on the windproof clamp. The connecting plate is screwed to the fixing plate by a first bolt. The sleeve is slidably connected to the fixing plate. The elastic element is disposed between the fixing plate and the sleeve.
[0007] Furthermore, a sliding groove is provided on the fixing plate, and a slider is slidably connected to the sleeve, with the slider slidably connected to the sliding groove.
[0008] Furthermore, the elastic element includes a spring, one end of which is connected to the slider, and the other end of which is connected to the inner wall of the groove.
[0009] Furthermore, a vertical plate is fixedly connected to the sleeve, and a cover plate is rotatably connected to the vertical plate, with rotational damping between the cover plate and the vertical plate.
[0010] Furthermore, the sleeve is provided with a waterproof connector.
[0011] Furthermore, an L-shaped plate is fixedly connected to the windproof clamp, and multiple second bolts are rotatably connected to the L-shaped plate. Each second bolt is screwed with a nut, and multiple through slots are provided on the connecting plate, through which each bolt passes.
[0012] Furthermore, the connection components are in two sets.
[0013] Compared with existing technologies, the roof steel structure surface temperature monitoring device provided by this utility model achieves the connection between the device and the roof through the windproof clamp in the connecting assembly. Then, during the monitoring process, the probe on the monitor body will always be in contact with the steel structure surface. If the steel structure expands due to heat, the steel structure surface will be tightly in contact with the probe. When the steel structure contracts due to cold, the elastic element will drive the sleeve to slide relative to the fixed plate, driving the probe to continue to be in contact with the steel structure surface. In this way, regardless of whether the steel structure expands or contracts due to heat, the probe can always be in contact with the steel structure surface, thus improving the accuracy of the obtained data for monitoring the steel structure surface temperature. Attached Figure Description
[0014] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the drawings used in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments recorded in this utility model. For those skilled in the art, other drawings can be obtained based on these drawings.
[0015] Figure 1 This is a schematic diagram of the overall structure of the device provided in an embodiment of the present utility model;
[0016] Figure 2 This is a schematic diagram of the device from another perspective, provided in an embodiment of the present utility model.
[0017] Figure 3 This is a partial schematic diagram of the device structure provided for an embodiment of the present utility model;
[0018] Figure 4 This is a schematic diagram of the slider and groove structure provided in an embodiment of the present utility model;
[0019] Figure 5 This is a schematic diagram of the temperature monitor body inside the sleeve, as provided in an embodiment of the present invention.
[0020] Explanation of reference numerals in the attached figures:
[0021] 1. Temperature monitor body; 101. Probe; 11. Sleeve; 111. Slider; 112. Waterproof connector; 2. Windproof clamp; 21. Connecting plate; 211. First bolt; 212. Through groove; 22. L-shaped plate; 23. Second bolt; 24. Nut; 3. Fixing plate; 31. Slide groove; 4. Elastic element; 5. Vertical plate; 51. Cover plate; 6. Guide rod. Detailed Implementation
[0022] To enable those skilled in the art to better understand the technical solution of this utility model, the present utility model will be further described in detail below with reference to the accompanying drawings.
[0023] Please see Figure 1-5 This utility model provides a surface temperature monitoring device for a roof steel structure, including a temperature monitor body 1 with a probe 101 and two sets of connecting components. The two sets of connecting components enable the monitor body to be more securely connected to the roof. A sleeve 11 is provided on the outside of the temperature monitor body 1. The connecting components include a windproof clamp 2 connected to the roof, a fixing plate 3, and an elastic element 4. A connecting plate 21 is provided on the windproof clamp 2. The connecting plate 21 is screwed to the fixing plate 3 by a first bolt 211. The sleeve 11 is slidably connected to the fixing plate 3. The elastic element 4 is provided between the fixing plate 3 and the sleeve 11. Specifically, a groove 31 is provided on the fixing plate 3. A slider 111 is slidably connected to the sleeve 11. The slider 111 is slidably connected to the groove 31. The elastic element 4 includes a spring. One end of the spring is connected to the slider 111, and the other end of the spring is connected to the inner wall of the groove 31.
[0024] Working principle: The operator selects a location on the roof and then fixes two windproof clips 2 in this position. In this state, the probe 101 on the temperature monitor body 1 can be in contact with the surface of the steel structure. When the steel structure expands due to weather conditions, the steel structure will press against the probe 101, causing the probe 101 and sleeve 11 to move slightly relative to the fixing plate 3 (the strength of the probe 101 is determined by the material). During this process, the slider 111 slides in the groove 31, while compressing the spring. When the temperature returns to normal and the steel structure returns to its initial state, the slider 111, under the elastic force of the spring, causes the sleeve 11 to move the probe 101 to a relative position, allowing the probe 101 to continue to be in contact with the surface of the steel structure, thus achieving temperature monitoring of the steel structure. When the steel structure contracts due to cold, the spring... The elastic force drives the slider 111 and sleeve 11 to move relative to the fixed plate 3, so that the probe 101 continues to be in contact with the steel structure surface. Regardless of the thermal expansion or contraction of the steel structure, the probe 101 on the monitor body is always in contact with the steel structure, which makes the monitoring data more accurate. In addition, the monitor body can transmit the monitored data to the computer in real time through the data transmission module (this is existing technology and will not be described in detail here). The operator judges the condition of the steel structure based on the real-time monitoring data. The sleeve 11 has a waterproof function, which can effectively isolate rainwater from corroding the monitor body. It is worth mentioning that a guide rod 6 can be set in the slide groove 31, and the slider 111 is slidably connected to the guide rod 6, which makes the sliding of the slider 111 more stable.
[0025] Compared with the prior art, the roof steel structure surface temperature monitoring device provided by this utility model achieves the connection between the device and the roof through the windproof clip 2 in the connecting assembly. Then, during the monitoring process, the probe 101 on the monitor body will always be in contact with the steel structure surface. If the steel structure expands due to heat, the steel structure surface will tightly fit the probe 101. When the steel structure contracts due to cold, the elastic element 4 will drive the sleeve 11 to slide relative to the fixed plate 3, driving the probe 101 to continue to be in contact with the steel structure surface. In this way, regardless of whether the steel structure expands or contracts due to heat, the probe 101 can always be in contact with the steel structure surface, thus improving the accuracy of the obtained data for monitoring the steel structure surface temperature.
[0026] The sleeve 11 is fixedly connected to a vertical plate 5, and a shield 51 is rotatably connected to the vertical plate 5. There is rotational damping between the shield 51 and the vertical plate 5. After the windproof clip 2 is installed on the roof, the shield 51 is rotated to an inclined state so that rainwater can flow down along the shield 51, preventing rainwater from getting on the sleeve 11 and preventing rainwater from corroding the first bolt 211. The rotational damping between the shield 51 and the vertical plate 5 allows the shield 51 to remain in an inclined state.
[0027] The sleeve 11 is equipped with a waterproof connector 112, which is located at the contact point between the sleeve 11 and the probe 101. This waterproof connector 112 is of model M16. The advantage of this type of waterproof connector 112 is that it can ensure stable current and signal transmission, meet the power and signal transmission requirements of different devices, has low contact resistance, and can effectively reduce power loss and signal attenuation. In addition, it is made of high-strength metal or engineering plastic material, which has strong impact resistance, vibration resistance and tensile strength, and can adapt to different installation and use conditions.
[0028] The windproof clip 2 is fixedly connected to an L-shaped plate 22, and multiple second bolts 23 are rotatably connected to the L-shaped plate 22. Each second bolt 23 is screwed with a nut 24. The connecting plate 21 has multiple through slots 212, and each bolt passes through the corresponding through slot 212. The connecting plate 21 can be fixed to the L-shaped plate 22 by the cooperation of the second bolts 23 and the corresponding nuts 24. The position of the connecting plate 21 relative to the L-shaped plate 22 can also be adjusted and then fixed by the cooperation of the second bolts 23 and the nuts 24. In this way, the position of the monitor body relative to the windproof clip 2 can be adjusted.
[0029] The foregoing description only illustrates certain exemplary embodiments of the present invention. Undoubtedly, those skilled in the art can modify the described embodiments in various ways without departing from the spirit and scope of the present invention. Therefore, the above drawings and descriptions are illustrative in nature and should not be construed as limiting the scope of protection of the claims of the present invention.
Claims
1. A roof steel structure surface temperature monitoring device comprising a temperature monitor body with a probe and at least one set of connecting components, the outside of the temperature monitor body is provided with a sleeve, characterized in that, The connecting assembly comprises a windproof clamp connected with the roof, a fixing plate and an elastic member, the windproof clamp is provided with a connecting plate, the connecting plate is screwed with the fixing plate through first bolts, a sleeve is slidingly connected with the fixing plate, and the elastic member is arranged between the fixing plate and the sleeve.
2. The roof steel structure surface temperature monitoring device according to claim 1, characterized in that, A sliding groove is formed in the fixing plate, a sliding block is slidingly connected with the sleeve, and the sliding block is slidingly connected with the sliding groove.
3. The roof steel structure surface temperature monitoring device according to claim 2, characterized in that, The elastic member comprises a spring, one end of the spring is connected with the sliding block, and the other end of the spring is connected with the inner wall of the sliding groove.
4. The roof steel structure surface temperature monitoring device according to claim 1, characterized in that, A vertical plate is fixedly connected with the sleeve, a shutter is rotatably connected with the vertical plate, and the shutter and the vertical plate have rotation damping.
5. The roof steel structure surface temperature monitoring device according to claim 1, wherein, A waterproof joint is arranged on the sleeve.
6. The roof steel structure surface temperature monitoring device according to claim 1, wherein, An L-shaped plate is fixedly connected with the windproof clamp, a plurality of second bolts are rotatably connected with the L-shaped plate, nuts are screwed with the second bolts, a plurality of through grooves are formed in the connecting plate, and the bolts pass through the corresponding through grooves.
7. The roof steel structure surface temperature monitoring device according to claim 1, wherein, The connecting assembly has two groups.
Citation Information
Patent Citations
Remote real-time monitoring device for surface temperature of building component in fire scene
CN221280459U