Bridge monitoring data acquisition device

By introducing intelligent heat dissipation mechanism and sealing components into the bridge monitoring data acquisition device, the overheating problem caused by insufficient heat dissipation of the device is solved, efficient heat dissipation and dust prevention effects are achieved, and the service life of the device is extended.

CN223077755UActive Publication Date: 2025-07-08LINGNAN INST OF TECH +1
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Patent Information

Application Number
CN202421808792.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-07-29
Publication Date
2025-07-08
Estimated Expiration
2034-07-29

AI Technical Summary

Technical Problem

The existing bridge monitoring data acquisition device is prone to overheating and damage to internal components due to lack of heat dissipation function after long-term operation.

Method used

A bridge monitoring data acquisition device including a heat dissipation mechanism and a sealing component is designed. The heat dissipation mechanism consists of a heat dissipation fan, a heat dissipation through hole, a temperature sensing device and a processor, which can realize intelligent heat dissipation; the sealing component controls the opening and closing of the heat dissipation fan and the through hole through a spiral hole, a spiral rod, a driving motor and a guide support component.

Benefits of technology

The intelligent heat dissipation function of the bridge monitoring data acquisition device is realized, which avoids overheating of internal components, extends the service life of the device, and prevents dust and particulates from entering when heat dissipation is not required.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to a bridge monitoring data acquisition device, which comprises a device body, a device cover body covering the device body and a heat dissipation mechanism, and is characterized in that the heat dissipation mechanism comprises a crosspiece arranged in the device body and N heat dissipation fans arranged on the crosspiece, the device body is provided with heat dissipation through holes used for heat dissipation, the heat dissipation mechanism further comprises a temperature sensing device arranged in the device body and a processor arranged in the device body and electrically connected with the temperature sensing device, and N is a positive integer larger than or equal to 1; according to the bridge monitoring data acquisition device, the structure of an existing bridge monitoring data acquisition device is improved, and the improved bridge monitoring data acquisition device can realize an intelligent heat dissipation function during working, so that internal elements of the acquisition device are prevented from being overheated, the internal elements are protected, and the service life of the acquisition device is prolonged.
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Description

Technical Field

[0001] The utility model relates to the technical field of bridge monitoring, and particularly relates to a bridge monitoring data acquisition device. Background Art

[0002] Bridges are an important part of the transportation system, and their safety has a huge impact on society. In recent years, with the successive completion of many large bridges in China, the safety status during their service life has received increasing attention. Especially in the initial stage of bridge construction, it is necessary to use acquisition devices and processing devices to collect and monitor the performance data of the bridge, such as the measurement of the length, thickness or similar linear dimensions of the bridge; the measurement of the bridge angle; the measurement of the bridge area; the measurement of the irregular surface or contour of the bridge, etc.

[0003] However, most of the existing bridge monitoring devices are placed outdoors and are prone to accumulate a large amount of heat after long-term operation. Lack of heat dissipation function, resulting in overheating or even damage of internal components. To solve the above problems, a bridge monitoring data acquisition device is proposed in the present invention. Summary of the Utility Model

[0004] (1) Technical Problems to be Solved

[0005] The purpose of the utility model is to overcome the deficiencies of the prior art, meet the actual needs, and provide a bridge monitoring data acquisition device to solve the above technical problems.

[0006] (2) Technical Solutions

[0007] To achieve the purpose of the utility model, the technical solutions adopted by the utility model are as follows:

[0008] A bridge monitoring data acquisition device includes a device body and a device cover covering the device body, and further includes a heat dissipation mechanism. The heat dissipation mechanism includes a crossbar arranged in the device body and N heat dissipation fans arranged on the crossbar. Heat dissipation through holes for heat dissipation are formed in the device body. The heat dissipation mechanism further includes a temperature sensing device arranged in the device body and a processor arranged in the device body and electrically connected to the temperature sensing device, where N is a positive integer greater than or equal to 1.

[0009] Furthermore, it further includes a blocking component arranged between the crossbar and the heat dissipation through holes. The blocking component has opposite first blocking part and second blocking part. Among them, the first blocking part is used to block the heat dissipation fans, and the second blocking part is used to block the heat dissipation through holes.

[0010] Further, the plugging component includes a plugging main body, a second plugging plate is arranged on the upper end surface of the plugging main body, the second plugging plate forms the second plugging portion, a first plugging plate is arranged on the lower end surface of the plugging main body, and the first plugging plate forms the first plugging portion.

[0011] Further, it further includes a spiral hole provided on the plugging main body, a spiral rod is spirally inserted in the spiral hole, one end of the spiral rod is rotatably arranged on the device body, and the other end of the spiral rod is fixedly connected to the driving end of a driving motor, and the driving motor is fixedly arranged on the device body.

[0012] Further, it further includes a first guiding and supporting component, the first guiding and supporting component includes a first guiding support rod, a first guiding support cylinder and a first guiding support spring, the first guiding support rod is movably inserted in the first guiding support cylinder, the first guiding support spring is wound around the first guiding support rod, and two ends of the first guiding support spring are respectively fixedly connected to the side wall of the first guiding support rod and the outer side wall of the first guiding support cylinder.

[0013] Further, a first anti-card slot is formed on one side of the first plugging plate close to the heat dissipation fan, and a second anti-card slot is formed on one side of the second plugging plate close to the heat dissipation through hole.

[0014] Further, the second plugging plate and the plugging main body are separated, and a second guiding and supporting component is arranged between the second plugging plate and the plugging main body. The arrangement of the second guiding and supporting component is used to enable the second plugging plate to move closer to or away from the plugging main body.

[0015] Further, the second guiding and supporting component includes a second guiding support rod, a second guiding support cylinder and a second guiding support spring, the second guiding support rod is movably inserted in the second guiding support cylinder, the second guiding support spring is wound around the second guiding support rod, and two ends of the second guiding support spring are respectively fixedly connected to the side wall of the second guiding support rod and the outer side wall of the second guiding support cylinder.

[0016] Further, the first plugging plate and the plugging main body are separated, and a third guiding and supporting component is arranged between the first plugging plate and the plugging main body. The arrangement of the third guiding and supporting component is used to enable the first plugging plate to move closer to or away from the plugging main body.

[0017] Further, the third guiding and supporting component includes a third guiding support rod, a third guiding support cylinder, and a third guiding support spring. The third guiding support rod is movably inserted into the third guiding support cylinder. The third guiding support spring is wound around the third guiding support rod, and both ends of the third guiding support spring are fixedly connected to the side wall of the third guiding support rod and the outer side wall of the third guiding support cylinder respectively.

[0018] (3) Beneficial effects:

[0019] The present utility model improves the structure of the existing bridge monitoring data acquisition device. The improved bridge monitoring data acquisition device can realize the function of intelligent heat dissipation during operation, thereby avoiding overheating of the internal components of the acquisition device, playing a role in protecting the internal components, and thus extending the service life of the acquisition device.

[0020] A heat dissipation mechanism is provided in the present invention. The heat dissipation mechanism includes a combined structure of a heat dissipation fan, heat dissipation through holes, a temperature sensing device, and a processor. The setting of this combined structure can achieve the effect of intelligent heat dissipation. Specifically, during the operation of the acquisition device, heat is generated. The generated heat is collected by the temperature sensing device in real time, and the collected signal is received and processed by the processor. When the temperature signal is higher than the preset threshold, the processor drives the heat dissipation fan to work, and the work of the heat dissipation fan dissipates heat from the inside of the device body.

[0021] A blocking component is provided in the present invention. The blocking component includes a combined structure of a spiral hole, a spiral rod, a driving motor, a first blocking plate, a second blocking plate, and a first guiding and supporting component. The setting of this combined structure is used to block and open the heat dissipation fan and the heat dissipation through holes. Specifically, when heat dissipation is required, the blocking component opens the heat dissipation fan and the heat dissipation through holes for heat dissipation. When heat dissipation is not required, the blocking component closes the heat dissipation fan and the heat dissipation through holes to prevent dust or fixed particles from entering the device body.

[0022] A second guiding and supporting component is provided between the second blocking plate and the blocking main body in the present invention. The setting of the second guiding and supporting component can be used for the second blocking plate to move closer to or away from the blocking main body. At the same time, during the movement process, it can also ensure that the movement is always in the vertical direction, thereby ensuring the high efficiency of the movement.

[0023] A third guiding and supporting component is provided between the first blocking plate and the blocking main body in the present invention. The setting of the third guiding and supporting component can be used for the first blocking plate to move closer to or away from the blocking main body. At the same time, during the movement process, it can also ensure that the movement is always in the vertical direction, thereby ensuring the high efficiency of the movement. Description of the Drawings

[0024] Figure 1Schematic structural diagram of an embodiment of the bridge monitoring data acquisition device of the present utility model;

[0025] Figure 2 Bridge monitoring data acquisition device of the present utility model Figure 1 Schematic diagram of a partial sectional structure therein;

[0026] Figure 3 Bridge monitoring data acquisition device of the present utility model Figure 2 Schematic enlarged view of structure A therein;

[0027] Figure 4 Bridge monitoring data acquisition device of the present utility model Figure 2 Schematic diagram of a partial structure therein;

[0028] Figure 5 Bridge monitoring data acquisition device of the present utility model Figure 4 Schematic enlarged view of structure B therein.

[0029] Reference numerals are as follows:

[0030] Device body 1,

[0031] Device cover 2,

[0032] Heat dissipation mechanism 3, cross bar 31, heat dissipation fan 32, heat dissipation through hole 33, plugging component 34, plugging main body 341, spiral hole 342, spiral rod 343, drive motor 344, first plugging plate 345, second plugging plate 346, first guiding and supporting component 347, first guiding and supporting rod 3471, first guiding and supporting cylinder 3472, first guiding and supporting spring 3473, temperature sensing device 35,

[0033] Second guiding and supporting component 4, second guiding and supporting rod 41, second guiding and supporting cylinder 42, second guiding and supporting spring 43,

[0034] Third guiding and supporting component 5, third guiding and supporting rod 51, third guiding and supporting cylinder 52, third guiding and supporting spring 53. Detailed implementation manners

[0035] The following further describes the present utility model in conjunction with the appended Figures 1-5 drawings and embodiments:

[0036] A bridge monitoring data acquisition device includes a device body 1 and a device cover 2 covering the device body 1. It also includes a heat dissipation mechanism 3. The heat dissipation mechanism 3 includes a crossbar 31 disposed inside the device body 1 and N heat dissipation fans 32 disposed on the crossbar 31. The device body 1 is provided with heat dissipation through holes 33 for heat dissipation. The heat dissipation mechanism 3 further includes a temperature sensing device 35 disposed inside the device body 1 and a processor disposed inside the device body 1 and electrically connected to the temperature sensing device 35. Here, N is a positive integer greater than or equal to 1. The present utility model improves the structure of the existing bridge monitoring data acquisition device. The improved bridge monitoring data acquisition device can realize the function of intelligent heat dissipation during operation, thereby avoiding overheating of internal components of the acquisition device, protecting the internal components, and prolonging the service life of the acquisition device.

[0037] In the present invention, a heat dissipation mechanism 3 is provided. The heat dissipation mechanism 3 includes a combined structure of heat dissipation fans 32, heat dissipation through holes 33, a temperature sensing device 35, and a processor. The setting of this combined structure can achieve the effect of intelligent heat dissipation. Specifically, during the operation of the acquisition device, heat is generated. The generated heat is collected in real time by the temperature sensing device 35. The collected signal is received and processed by the processor. When the temperature signal is higher than a preset threshold, the processor drives the heat dissipation fans 32 to work. The work of the heat dissipation fans 32 dissipates heat inside the device body 1.

[0038] In this embodiment, it further includes a blocking component 34. The blocking component 34 is disposed between the crossbar 31 and the heat dissipation through holes 33. The blocking component 34 has a relative first blocking part and a second blocking part. Among them, the first blocking part is used to block the heat dissipation fans 32, and the second blocking part is used to block the heat dissipation through holes 33. In the present invention, a blocking component 34 is provided. The blocking component 34 includes a combined structure of a spiral hole 342, a spiral rod 343, a driving motor 344, a first blocking plate 345, a second blocking plate 346, and a first guiding and supporting component 347. The setting of this combined structure is used to block and open the heat dissipation fans 32 and the heat dissipation through holes 33. Specifically, when heat dissipation is required, the blocking component 34 opens the heat dissipation fans 32 and the heat dissipation through holes 33 for heat dissipation. When heat dissipation is not required, the blocking component 34 closes the heat dissipation fans 32 and the heat dissipation through holes 33 to prevent dust or fixed particles from entering the device body 1.

[0039] In this embodiment, the blocking component 34 includes a blocking main body 341. A second blocking plate 346 is disposed on the upper end surface of the blocking main body 341. The second blocking plate 346 forms the second blocking part. A first blocking plate 345 is disposed on the lower end surface of the blocking main body 341. The first blocking plate 345 forms the first blocking part.

[0040] In this embodiment, it further includes a spiral hole 342 provided on the plugging main body 341. A spiral rod 343 is spirally inserted into the spiral hole 342. One end of the spiral rod 343 is rotatably arranged on the device body 1, and the other end of the spiral rod 343 is fixedly connected to the driving end of a driving motor 344. The driving motor 344 is fixedly arranged on the device body 1.

[0041] In this embodiment, it further includes a first guiding and supporting assembly 347. The first guiding and supporting assembly 347 includes a first guiding support rod 3471, a first guiding support cylinder 3472, and a first guiding support spring 3473. The first guiding support rod 3471 is movably inserted into the first guiding support cylinder 3472. The first guiding support spring 3473 is wound around the first guiding support rod 3471, and both ends of the first guiding support spring 3473 are respectively fixedly connected to the side wall of the first guiding support rod 3471 and the outer side wall of the first guiding support cylinder 3472.

[0042] In this embodiment, a first anti-card slot is formed on the side of the first plugging plate 345 close to the heat dissipation fan 32, and a second anti-card slot is formed on the side of the second plugging plate 346 close to the heat dissipation through hole 33.

[0043] In this embodiment, the second plugging plate 346 is separated from the plugging main body 341, and a second guiding and supporting assembly 4 is arranged between the second plugging plate 346 and the plugging main body 341. The second guiding and supporting assembly 4 is arranged to enable the second plugging plate 346 to move closer to or away from the plugging main body 341. The second guiding and supporting assembly 4 includes a second guiding support rod 41, a second guiding support cylinder 42, and a second guiding support spring 43. The second guiding support rod 41 is movably inserted into the second guiding support cylinder 42. The second guiding support spring 43 is wound around the second guiding support rod 41, and both ends of the second guiding support spring 43 are respectively fixedly connected to the side wall of the second guiding support rod 41 and the outer side wall of the second guiding support cylinder 42. In the present invention, the second guiding and supporting assembly 4 is arranged between the second plugging plate 346 and the plugging main body 341. The arrangement of the second guiding and supporting assembly 4 can be used for the second plugging plate 346 to move closer to or away from the plugging main body 341. At the same time, during the movement process, it can also ensure that the movement is always in the vertical direction, thereby ensuring the high-efficiency progress of the movement.

[0044] In this embodiment, the first sealing plate 345 is separated from the sealing main body 341, and a third guiding and supporting assembly 5 is arranged between the first sealing plate 345 and the sealing main body 341. The third guiding and supporting assembly 5 is arranged to enable the first sealing plate 345 to move closer to or away from the sealing main body 341. The third guiding and supporting assembly 5 includes a third guiding support rod 51, a third guiding support cylinder 52 and a third guiding support spring 53. The third guiding support rod 51 is movably inserted into the third guiding support cylinder 52. The third guiding support spring 53 is wound around the third guiding support rod 51, and both ends of the third guiding support spring 53 are fixedly connected to the side wall of the third guiding support rod 51 and the outer side wall of the third guiding support cylinder 52. In the present invention, the third guiding and supporting assembly 5 is arranged between the first sealing plate 345 and the sealing main body 341. The arrangement of the third guiding and supporting assembly 5 can be used for the first sealing plate 345 to move closer to or away from the sealing main body 341. At the same time, during the movement, it can also ensure that the movement is always in the vertical direction, thus ensuring the high efficiency of the movement.

[0045] Beneficial effects of the utility model:

[0046] The structure of the existing bridge monitoring data acquisition device is improved in the utility model. The improved bridge monitoring data acquisition device can realize the function of intelligent heat dissipation during work, thereby avoiding overheating of the internal components of the acquisition device, playing a role in protecting the internal components, and thus prolonging the service life of the acquisition device.

[0047] A heat dissipation mechanism 3 is arranged in the present invention. The heat dissipation mechanism 3 includes a combined structure of a heat dissipation fan 32, heat dissipation through holes 33, a temperature sensing device 35 and a processor. The arrangement of this combined structure can achieve the effect of intelligent heat dissipation. Specifically, during the operation of the acquisition device, heat is generated. The generated heat is collected by the temperature sensing device 35 in real time. The collected signal is received and processed by the processor. When the temperature signal is higher than the preset threshold, the processor drives the heat dissipation fan 32 to work. The work of the heat dissipation fan 32 dissipates heat inside the device body 1.

[0048] A sealing assembly 34 is arranged in the present invention. The sealing assembly 34 includes a combined structure of a spiral hole 342, a spiral rod 343, a driving motor 344, a first sealing plate 345, a second sealing plate 346 and a first guiding and supporting assembly 347. The arrangement of this combined structure is used to seal and open the heat dissipation fan 32 and the heat dissipation through holes 33. Specifically, when heat dissipation is required, the sealing assembly 34 opens the heat dissipation fan 32 and the heat dissipation through holes 33 for heat dissipation. When heat dissipation is not required, the sealing assembly 34 closes the heat dissipation fan 32 and the heat dissipation through holes 33 to prevent dust or fixed particles from entering the device body 1.

[0049] The present invention provides a second guiding and supporting assembly 4 between the second sealing plate 346 and the sealing main body 341. The provision of the second guiding and supporting assembly 4 can be used for the second sealing plate 346 to move closer to or away from the sealing main body 341. At the same time, during the movement, it can ensure that the movement is always in the vertical direction, thus guaranteeing the high-efficiency progress of the movement.

[0050] The present invention provides a third guiding and supporting assembly 5 between the first sealing plate 345 and the sealing main body 341. The provision of the third guiding and supporting assembly 5 can be used for the first sealing plate 345 to move closer to or away from the sealing main body 341. At the same time, during the movement, it can ensure that the movement is always in the vertical direction, thus guaranteeing the high-efficiency progress of the movement.

[0051] The embodiments disclosed in the present utility model are preferred embodiments, but not limited thereto. Those of ordinary skill in the art can easily understand the spirit of the present utility model based on the above embodiments and make different extensions and changes. However, as long as they do not depart from the spirit of the present utility model, they are within the protection scope of the present utility model.

Claims

1. A bridge monitoring data acquisition device, comprising a device body (1) and a device cover body (2) covering the device body (1), characterized in that, It further includes a heat dissipation mechanism (3). The heat dissipation mechanism (3) includes a cross bar (31) disposed inside the device body (1), and N heat dissipation fans (32) disposed on the cross bar (31). A heat dissipation through hole (33) for heat dissipation is formed on the device body (1). The heat dissipation mechanism (3) further includes a temperature sensing device (35) disposed inside the device body (1), and a processor disposed inside the device body (1) and electrically connected to the temperature sensing device (35), where N is a positive integer greater than or equal to 1.

2. The bridge monitoring data acquisition device according to claim 1, wherein: It further includes a plugging component (34). The plugging component (34) is disposed between the cross bar (31) and the heat dissipation through hole (33). The plugging component (34) has a relative first plugging portion and second plugging portion. Among them, the first plugging portion is used to plug the heat dissipation fan (32), and the second plugging portion is used to plug the heat dissipation through hole (33).

3. The bridge monitoring data acquisition device according to claim 2, characterized in that: The plugging component (34) includes a plugging main body (341). A second plugging plate (346) is disposed on the upper end surface of the plugging main body (341). The second plugging plate (346) forms the second plugging portion. A first plugging plate (345) is disposed on the lower end surface of the plugging main body (341). The first plugging plate (345) forms the first plugging portion.

4. The bridge monitoring data acquisition device according to claim 3, wherein: It further includes a spiral hole (342) disposed on the plugging main body (341). A spiral rod (343) is spirally inserted into the spiral hole (342). One end of the spiral rod (343) is rotatably disposed on the device body (1), and the other end of the spiral rod (343) is fixedly connected to the driving end of a driving motor (344). The driving motor (344) is fixedly disposed on the device body (1).

5. The bridge monitoring data acquisition device according to claim 4, wherein: It further includes a first guiding and supporting component (347). The first guiding and supporting component (347) includes a first guiding support rod (3471), a first guiding support cylinder (3472) and a first guiding support spring (3473). The first guiding support rod (3471) is movably inserted into the first guiding support cylinder (3472). The first guiding support spring (3473) is wound around the first guiding support rod (3471), and both ends of the first guiding support spring (3473) are respectively fixedly connected to the side wall of the first guiding support rod (3471) and the outer side wall of the first guiding support cylinder (3472).

6. The bridge monitoring data acquisition device according to claim 5, characterized in that: A first anti - clamping groove is formed on the side of the first plugging plate (345) close to the heat dissipation fan (32). A second anti - clamping groove is formed on the side of the second plugging plate (346) close to the heat dissipation through hole (33).

7. The bridge monitoring data acquisition device according to claim 6, wherein: The second plugging plate (346) is separated from the plugging main body (341), and a second guiding and supporting component (4) is disposed between the second plugging plate (346) and the plugging main body (341). The setting of the second guiding and supporting component (4) is used to enable the second plugging plate (346) to move closer to or away from the plugging main body (341).

8. The bridge monitoring data acquisition device according to claim 7, wherein: The second guiding and supporting component (4) includes a second guiding support rod (41), a second guiding support cylinder (42) and a second guiding support spring (43). The second guiding support rod (41) is movably inserted into the second guiding support cylinder (42). The second guiding support spring (43) is wound around the second guiding support rod (41), and two ends of the second guiding support spring (43) are respectively fixedly connected to the side wall of the second guiding support rod (41) and the outer side wall of the second guiding support cylinder (42).

9. The bridge monitoring data acquisition device according to claim 6, characterized in that: The first sealing plate (345) is separated from the sealing main body (341), and a third guiding and supporting component (5) is arranged between the first sealing plate (345) and the sealing main body (341). The arrangement of the third guiding and supporting component (5) is used to enable the first sealing plate (345) to move closer to or away from the sealing main body (341).

10. The bridge monitoring data acquisition device according to claim 9, characterized in that: The third guiding and supporting component (5) includes a third guiding support rod (51), a third guiding support cylinder (52) and a third guiding support spring (53). The third guiding support rod (51) is movably inserted into the third guiding support cylinder (52). The third guiding support spring (53) is wound around the third guiding support rod (51), and two ends of the third guiding support spring (53) are respectively fixedly connected to the side wall of the third guiding support rod (51) and the outer side wall of the third guiding support cylinder (52).