Intelligent vibrating wire type sensing equipment based on 5G communication
By integrating a battery storage module and a heat-conducting fluid into an intelligent vibrating wire sensing device, the power supply and temperature effects of vibrating wire sensors have been solved, enabling wireless data transmission and environmental adaptability, and improving measurement accuracy and stability.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- BEIJING ACAD OF BUILDING ENG
- Filing Date
- 2025-12-23
- Publication Date
- 2026-04-10
AI Technical Summary
Existing vibrating wire sensor systems require external power supply, are difficult to wire, rely on wired connections for data acquisition and transmission, and are susceptible to measurement accuracy due to environmental temperature and vibration, and the output frequency is prone to drift.
It adopts a smart vibrating wire sensing device based on 5G communication, integrating a battery storage module and a heat transfer fluid. The heat transfer fluid is used to transfer heat in low-temperature environments and a cooling chip is used to cool in high-temperature environments, avoiding wiring difficulties and temperature effects. The vibrating wire frequency is adjusted by a threaded adjustment component, and a double-layer shell and insulation layer are set to reduce the impact of environmental vibration.
This eliminates the need for external power supply wiring, improves the measurement accuracy and stability of the sensor in complex environments, reduces the impact of temperature and vibration on measurements, and enhances the adaptability and energy efficiency of the device.
Smart Images

Figure CN121829607A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The application relates to the technical field of vibrating string sensors, in particular to an intelligent vibrating string type sensing device based on 5G communication. BACKGROUND
[0002] A vibrating string sensor is a sensor based on vibration principle, which has high sensitivity and high precision, and is widely used in industrial automation, transportation, environmental monitoring and building health monitoring.
[0003] The core component of the vibrating string sensor is a tensioned metal string (vibrating string), and its working principle is based on the vibration characteristics of the vibrating string. When the vibrating string is subjected to external force, its natural vibration frequency will change. By measuring the frequency change, the measurement of the measured physical quantity (such as pressure, stress, displacement, etc.) can be realized.
[0004] However, the existing vibrating string sensor system has the following limitations: The sensor usually needs external power supply, which limits its application in remote or difficult wiring areas; Data acquisition and transmission depend on wired connection, increasing installation and maintenance costs; The output frequency of the sensor is easily affected by the ambient temperature and the vibration of the installation environment, which may cause the elastic modulus and length of the vibrating string to change, thereby affecting the measurement accuracy; Since the sensor itself relies on the vibration of the vibrating string, the vibration of the installation environment will also affect the measurement accuracy of the sensor itself. SUMMARY
[0005] The application provides an intelligent vibrating string type sensing device based on 5G communication, which can solve the problem that the existing vibrating string sensor is easily affected by the ambient temperature and the installation stability of the environment, resulting in output frequency drift and measurement accuracy decline.
[0006] The technical scheme of the application is as follows: an intelligent vibrating string type sensing device based on 5G communication, comprising: A mounting shell is provided, and a sensing cavity for assembling a sensor body and a power supply cavity for assembling a power storage module are respectively arranged on the two sides of the mounting shell. A storage chamber is arranged above the mounting shell, and a refrigeration fin is attached to the surface of the storage chamber. The power storage module is electrically connected with the sensor body and the refrigeration fin. A heat conducting member with an internal hollow is arranged in the power storage module. A spiral heat conducting pipe is arranged on the outside of the sensor body along the length direction of the sensor body. The storage chamber, the heat conducting member and the heat conducting pipe are in communication with each other, and are filled with heat conducting fluid. In a low temperature environment, the heat conducting member can transfer the heat generated by the power storage module to the sensor body through the heat conducting fluid; When the temperature is high, the heat-conducting fluid in the storage chamber is cooled by the refrigeration sheet and then flows into the heat-conducting member and the heat-conducting pipe, so as to reduce the temperature of the power storage module and the sensor body.
[0007] By adopting the above scheme, the power storage module is integrated on the vibrating string sensor, so that the device avoids the disadvantages of wiring in the field, and when the temperature is low, the heat generated by the power storage module during operation is transmitted to the heat-conducting pipe through the heat-conducting fluid, so that the temperature of the sensor body can rise, and the output frequency is not affected by the low temperature. In addition, when the temperature is high, the refrigeration sheet can effectively reduce the internal temperature of the device.
[0008] In one embodiment of the present application, the mounting shell comprises: The shell is hollow inside, and an opening is formed on one side of the shell, and a cover plate is assembled at the opening of the shell. The inner shell is arranged in the outer shell and has a gap with the outer shell, and the sensing cavity and the power supply cavity are formed on both sides of the inner shell. The heat insulation layer is arranged in the gap.
[0009] By adopting the above technical scheme, the device shell is designed as a double layer, and the heat insulation layer is arranged in the gap, so that the heat insulation performance of the whole device is improved, and the heat generated by the power storage module during operation does not affect the operation of the sensor body.
[0010] In one embodiment of the present application, the heat-conducting member comprises: The heat-conducting member comprises a plurality of hollow heat-conducting discs, and the power storage module comprises a plurality of battery monomers arranged in rows and spaced apart, and a heat-conducting gap is arranged between each row of battery monomers, and the heat-conducting disc is arranged in the heat-conducting gap and in contact with the battery monomer, and any one of the heat-conducting discs is in communication with the heat-conducting pipe, and any one of the heat-conducting discs is in communication with the storage chamber. The connecting pipe is arranged between the heat-conducting discs.
[0011] By adopting the above scheme, by arranging a plurality of heat-conducting plates and inserting the heat-conducting plates between adjacent two rows of battery monomers, the contact area between the battery monomers and the heat-conducting plates can be increased, the heat exchange area between the heat-conducting fluid inside the heat-conducting plates and the battery monomers can be increased, and the heat exchange efficiency is improved.
[0012] In one of the embodiments of the present application, the intelligent vibrating string type sensing device based on 5G communication further comprises: A charging head is assembled on the shell and electrically connected with the power storage module. A wireless transmission module is electrically connected with the power storage module.
[0013] By adopting the above scheme, the wireless transmission module and the charging head are arranged, and the charging head is integrated on the power storage module, so that the disadvantage of the plug-in cable for continuous charging of the device is avoided, the device can face more complex outdoor working environments, and the hindrance of the cable to the measurement work is avoided.
[0014] In one of the embodiments of the present application, the sensor body comprises: An internally hollow sensor shell is fixedly connected with a mounting seat on one end inner wall, and a threaded groove in communication with the sensor shell is formed on the other end, a threaded adjusting piece is threadedly connected in the threaded groove, one end of the threaded adjusting piece is fixedly connected with a vibrating string, and the other end of the vibrating string is fixedly connected with the mounting seat. An electromagnetic excitation module is embedded in the sensor shell and electrically connected with the power storage module.
[0015] By adopting the above scheme, the rigidity and length of the vibrating string in the sensor shell can be adjusted by the threaded adjusting piece, the natural frequency of the vibrating string is changed, the detection range and precision of the entire sensor are changed, and the detection performance of the device can be adjusted to face different working conditions.
[0016] In one of the embodiments of the present application, the threaded adjusting piece comprises: A threaded column is provided with a columnar cavity on one end, a plurality of annular clamping grooves are coaxially formed on the inner wall of the columnar cavity, the annular clamping grooves are arranged at intervals along the length direction of the columnar cavity, and a push piece is fixedly connected to the other end of the threaded column. A clamping column is arranged in the columnar cavity, a plurality of clamping rings are arranged at intervals along the length direction of the clamping column, the clamping rings are arranged in the annular clamping grooves and match the shape of the annular clamping grooves, and one end of the clamping column is coaxially fixedly connected with the other end of the vibrating string.
[0017] By setting the threaded column and the clamping column, when the natural frequency of the vibrating string needs to be adjusted, the threaded column is rotated, the threaded column is rotated to drive the clamping column to move away from the one end of the mounting base, the clamping column moves away from the other end of the vibrating string, and then the vibrating string can be tensioned, and when the vibrating string needs to be relaxed, the threaded column is rotated in the opposite direction to relax the vibrating string, so that the device can conveniently and efficiently adjust the tightness of the vibrating string.
[0018] In one embodiment of the present application, the mounting shell comprises: A plurality of connecting members are arranged in the gap, and the two ends of the connecting member are respectively perpendicularly arranged on the inner wall of the outer shell and the outer wall of the inner shell. The connecting member comprises: A columnar connecting frame is internally provided with a cavity, and the two ends of the connecting frame are respectively perpendicularly connected with the inner wall of the outer shell and the outer wall of the inner shell. A spring strip is arranged inside the cavity and extends along the length direction of the connecting frame, the two ends of the spring strip are respectively connected and fixed with the two ends of the connecting frame, and a counterweight ball is fixedly connected to the middle part of the spring strip.
[0019] By adopting the above scheme, the outer shell is arranged as an inner-outer double-layer shell containing a gap, due to the existence of the gap, the temperature conduction efficiency between the inner shell and the outer shell is reduced, and a plurality of connecting frames are arranged between the inner shell and the outer shell, the connecting frame plays a role of fixing the outer shell and the inner shell, and when the working environment vibrates, the vibration is transmitted to the spring strip and the counterweight ball, so that the counterweight ball vibrates on the spring strip, thereby reducing the adverse effect on the measurement accuracy caused by the vibration of the device itself in the environment vibration.
[0020] In one embodiment of the present application, the connecting member comprises a connecting rope, one end of the connecting rope is fixedly connected to the inner wall of the upper end of the connecting frame, and the other end of the connecting rope is connected with the counterweight ball.
[0021] By adopting the above scheme, when the external environment vibrates, the connecting frame plays a role of supporting the two outer shells and the inner shell, and the counterweight ball can swing on the connecting rope, thereby offsetting the vibration of the device mounting shell caused by the external environment vibration.
[0022] In one embodiment of the present application, a compression medium is arranged inside the columnar cavity between the threaded column and the clamping column, the length of the clamping column is equal to the length of the columnar cavity, and the compression medium extrudes one end face of the clamping column.
[0023] By adopting the above scheme, the compression medium is arranged inside the columnar cavity, the compression medium keeps pressure on the clamping column at all times, the clamping ring outside the clamping column can be pressed in the annular clamping groove at all times, the clamping column can rotate inside the threaded column, the possibility of axial displacement of the clamping column is reduced, the threaded column is also extruded by the compression medium, the clamping ring can be extruded by the threaded column when the threaded column is not adjusted by external force, and the possibility of self-rotation of the threaded column is reduced.
[0024] In one of the embodiments of the present application, a plurality of rectangular grooves are formed in the upper end of the storage chamber, and a heat-conducting silica gel sheet is arranged on the inner wall of the bottom end of the rectangular grooves.
[0025] By arranging the rectangular grooves and the heat-conducting silica gel sheet inside the rectangular grooves, the heat-conducting silica gel sheet can improve the heat exchange efficiency between the refrigeration sheet and the storage chamber, thereby improving the refrigeration effect of the device in a high-temperature environment.
[0026] In summary, the present application has at least one of the following beneficial technical effects: by arranging the power storage module and the heat-conducting fluid, the power storage module is integrated on the vibrating string sensor, avoiding the need for external power supply, leading to difficult cable wiring, and being difficult to cope with complex outdoor working environments, at the same time, the power storage module can also utilize the heat generated during its own operation and transfer the heat to the vibrating string sensor in a low-temperature environment, reducing the drift of the output frequency of the vibrating string sensor due to low temperature, improving the ability of the device to cope with low-temperature working environments, in addition, the heat-conducting fluid absorbs heat and expands, thereby making the heat-conducting fluid circulate inside the device, so that the device does not need to increase additional driving structures when conducting heat, and is more energy-saving.
[0027] By arranging the threaded column and the clamping column, when it is necessary to adjust the vibrating string sensor according to different working conditions, the threaded column can drive the clamping column to displace axially inside the threaded groove by rotating the threaded column, so that the clamping column can drive the vibrating string to be tightened or relaxed, and then adjust the natural frequency of the vibrating string to adjust the measurement range of the device, in addition, by injecting the compression medium between the threaded column and the clamping column, the compression medium can press the clamping column and the threaded column, so that the clamping ring outside the clamping column can be further pressed in the annular clamping groove when the vibrating string is tightened, thereby reducing the possibility of malfunction of the clamping column and the threaded column.
[0028] By setting up a connecting frame, outer shell, and inner shell, the outer shell and inner shell are first separated to form a gap with poor thermal conductivity. The connecting frame is then placed in the gap to connect and fix the outer shell and inner shell. When the external environment vibrates, the counterweight ball inside the connecting frame will swing in various directions on the spring bar, thus achieving a shock absorption effect. At the same time, the connecting frame can open up the outer shell and inner shell, making the gap between the outer shell and inner shell uniform. Due to the poor thermal conductivity of the gap, the heat of the energy storage module is prevented from reaching the sensor body through conduction, which improves the shock absorption effect of the device and gives the device good heat insulation performance. Attached Figure Description
[0029] Figure 1 This is an exploded view of an intelligent vibrating wire sensing device based on 5G communication provided in the first embodiment of this application; Figure 2 This is an exploded view of a smart vibrating wire sensor battery storage module based on 5G communication provided in the first embodiment of this application; Figure 3 This is a front sectional view of the insulation layer of an intelligent vibrating wire sensing device based on 5G communication provided in the first embodiment of this application; Figure 4 This is a front sectional view of a smart vibrating wire sensor mounting housing based on 5G communication provided in the second embodiment of this application; Figure 5 This is a front view of a smart vibrating wire sensor connection frame based on 5G communication provided in the second embodiment of this application; Figure 6 This is a front view of a smart vibrating wire sensor connection frame based on 5G communication provided in the second embodiment of this application; Figure 7 This is a front view of a connecting rope for an intelligent vibrating wire sensing device based on 5G communication, provided in the third embodiment of this application; Figure 8 This is a front sectional view of a threaded column of an intelligent vibrating wire sensing device based on 5G communication provided in the first embodiment of this application; Figure 9 This is an exploded view of the locking post of an intelligent vibrating wire sensing device based on 5G communication provided in the first embodiment of this application; Figure 10 This is a front cross-sectional view of the compressed medium of an intelligent vibrating wire sensing device based on 5G communication provided in the fourth embodiment of this application; Figure 11 This is a front cross-sectional view of a thermally conductive silicone sheet for an intelligent vibrating wire sensing device based on 5G communication, provided in the fifth embodiment of this application.
[0030] Explanation of reference numerals in the attached drawings: 1. Mounting housing; 11. Sensing cavity; 12. Power supply cavity; 13. Outer shell; 14. Inner shell; 15. Gap; 16. Insulation layer; 17. Connector; 171. Connecting frame; 172. Cavity; 173. Spring strip; 174. Counterweight ball; 175. Connecting rope; 2. Sensor body; 21. Heat pipe; 22. Sensor housing; 23. Mounting base; 24. Threaded groove; 25. Threaded adjustment component; 251. Threaded post; 25 11. Columnar cavity; 2512. Annular slot; 2513. Paddle; 252. Snap pin; 253. Snap ring; 254. Compression medium; 26. Vibrating string; 27. Electromagnetic excitation module; 3. Energy storage module; 31. Heat-conducting component; 311. Heat-conducting plate; 312. Connecting pipe; 32. Battery cell; 33. Heat-conducting gap; 4. Storage chamber; 41. Cooling element; 42. Rectangular groove; 43. Heat-conducting silicone sheet; 5. Charging head; 6. Wireless transmission module. Detailed Implementation
[0031] The following is in conjunction with the appendix Figures 1-11 This application provides a further detailed description of an intelligent vibrating wire sensing device based on 5G communication.
[0032] Example 1, please refer to Figure 1 This application provides a smart vibrating wire sensing device based on 5G communication, comprising a mounting housing 1. The mounting housing 1 has a sensing cavity 11 for assembling a sensor body 2 and a power supply cavity 12 for assembling a battery storage module 3, respectively, on its two sides. A storage chamber 4 is located above the mounting housing 1, and a cooling chip 41 is attached to the surface of the storage chamber 4. The battery storage module 3 is electrically connected to both the sensor body 2 and the cooling chip 41. The battery storage module 3 has a hollow heat-conducting component 31 inside. A spiral heat-conducting pipe 21 is provided on the outside of the sensor body 2 along its length. The storage chamber 4, the heat-conducting component 31, and the heat-conducting pipe 21 are interconnected and all are filled with a heat-conducting fluid. In low-temperature environments, the heat-conducting component 31 transfers the heat generated by the energy storage module 3 to the sensor body 2 through the heat-conducting fluid. In high-temperature environments, the heat-conducting fluid inside the storage chamber 4 is cooled by the cooling chip 41 and then flows into the heat-conducting component 31 and the heat-conducting pipe 21 to reduce the temperature of the energy storage module 3 and the sensor body 2. By integrating the energy storage module 3 onto the vibrating wire 26 sensor, the device has its own power supply, avoiding the drawbacks of complex wiring. At the same time, when the ambient temperature is low, the heat generated by the energy storage module 3 during operation is used to raise the temperature of the sensor body 2 through the heat-conducting fluid, preventing the output frequency from being affected by excessively low temperatures.
[0033] In this embodiment, the heat-conducting fluid can be a toluene solution, an ethanol solution, or water; In this embodiment, the cooling chip 41 can be a semiconductor cooling chip.
[0034] Please see Figure 3 The mounting housing 1 includes an outer shell 13, an inner shell 14, and a thermal insulation layer 16. The outer shell 13 is hollow inside, and an opening is provided on one side of the outer shell 13. A cover plate is fitted to the opening of the outer shell 13. The inner shell 14 is disposed in the outer shell 13, and a gap 15 is provided between the inner shell 14 and the outer shell 13. The sensing cavity 11 and the power supply cavity 12 are opened on both sides of the inner shell 14. The thermal insulation layer 16 is disposed in the gap 15. By designing the device housing 13 as a double layer and setting the thermal insulation layer 16 in the gap 15, the thermal insulation performance of the entire device is improved, and the heat generated by the energy storage module 3 during its operation is prevented from affecting the operation of the sensor body 2.
[0035] In this embodiment, the insulation layer 16 can be a rock wool layer.
[0036] Please see Figure 2 The heat-conducting component 31 includes a heat-conducting plate 311 and a connecting pipe 312. Multiple heat-conducting plates 311 are provided and are hollow inside. The energy storage module 3 includes multiple battery cells 32 arranged in rows at intervals. A heat-conducting gap 33 is provided between each row of battery cells 32. The heat-conducting plate 311 is disposed in the heat-conducting gap 33 and contacts the battery cells 32. Any heat-conducting plate 311 is connected to the heat-conducting pipe 21 and to the storage chamber 4. The heat-conducting plates 311 are interconnected through the connecting pipe 312. By inserting the heat-conducting plate 311 between two adjacent rows of battery cells 32, the heat exchange area between the heat-conducting fluid inside the heat-conducting plate 311 and the battery cells 32 is increased, thus improving the heat exchange efficiency.
[0037] Please continue reading. Figure 1 The intelligent vibrating wire sensing device based on 5G communication also includes a charging head 5 and a wireless transmission module 6. The charging head 5 is mounted on the housing 13 and electrically connected to the energy storage module 3. The wireless transmission module 6 is electrically connected to the energy storage module 3. By integrating the wireless transmission module 6 and the charging head 5 onto the energy storage module 3, the drawback of needing to plug in a cable for continuous charging is avoided.
[0038] Please see Figure 8The sensor body 2 includes a sensor housing 22 and an electromagnetic excitation module 27. The sensor housing 22 is hollow inside. A mounting base 23 is fixedly connected to the inner wall of one end of the sensor housing 22, and a threaded groove 24 communicating with the sensor housing 22 is opened at the other end. A threaded adjustment component 25 is threadedly connected inside the threaded groove 24. A vibrating string 26 is fixedly connected to one end of the threaded adjustment component 25, and the other end of the vibrating string 26 is fixedly connected to the mounting base 23. The electromagnetic excitation module 27 is embedded in the sensor housing 22 and electrically connected to the energy storage module 3. By setting the threaded adjustment component 25, the rigidity and length of the vibrating string 26 are adjusted, thereby changing the natural frequency of the vibrating string 26, so that the device can adjust the detection performance for different working conditions.
[0039] In this embodiment, the electromagnetic excitation module 27 includes a magnet and a coil. The coil is wound around the magnet, which faces the vibrating string 26. The coil is connected to the battery cell of the energy storage module 3. The specific installation method and electrical connection method are all existing conventional technical means, so they will not be described in detail here.
[0040] Please see Figure 9 The threaded adjusting component 25 includes a threaded post 251 and a retaining post 252. One end of the threaded post 251 has a cylindrical cavity 2511. Multiple annular grooves 2512 are coaxially formed on the inner wall of the cylindrical cavity 2511. These annular grooves 2512 are spaced apart along the length of the cylindrical cavity 2511. A lever 2513 is fixedly connected to the other end of the threaded post 251. The retaining post 252 is disposed within the cylindrical cavity 2511. In step 11, multiple retaining rings 253 are spaced apart along the length of the retaining post 252. The retaining rings 253 are disposed in the annular groove 2512 and match the shape of the annular groove 2512. One end of the retaining post 252 is coaxially connected and fixed to the other end of the vibrating string 26. By rotating the threaded post 251, the retaining post 252 is moved along the axial direction of the threaded groove 24, so that the device can conveniently and efficiently adjust the tension of the vibrating string 26.
[0041] Example 2 is basically the same in structure as Example 1, except that: Please refer to... Figure 4 , Figure 5 and Figure 6 The mounting housing 1 includes a connector 17, and multiple connectors 17 are provided. The multiple connectors 17 are disposed in the gap 15. The two ends of the connectors 17 are respectively vertically assembled to the inner wall of the outer shell 13 and the outer wall of the inner shell 14. The connector 17 includes a columnar connecting frame 171 and a spring strip 173. The connecting frame 171 has a cavity 172 inside. The two ends of the connecting frame 171 are perpendicularly connected to the inner wall of the outer shell 13 and the outer wall of the inner shell 14, respectively. The spring strip 173 is disposed inside the cavity 172 and extends along the length of the connecting frame 171. The two ends of the spring strip 173 are respectively connected and fixed to the two ends of the connecting frame 171. A counterweight ball 174 is fixedly connected to the middle of the spring strip 173. When the working environment vibrates, the counterweight ball 174 vibrates on the spring strip 173, which has a shock absorption effect on the device and makes the device more stable.
[0042] Example 3 is basically the same in structure as Example 2, except that: Please refer to... Figure 7 The connector 17 includes a connecting rope 175. One end of the connecting rope 175 is fixedly connected to the upper inner wall of the connecting frame 171, and the other end of the connecting rope 175 is connected to the counterweight ball 174. When the external environment vibrates, the counterweight ball 174 can swing on the connecting rope 175, thereby offsetting the vibration of the device mounting housing 1 itself caused by the vibration of the external environment.
[0043] Example 4 is basically the same in structure as Example 1, except that: Please refer to... Figure 10 A compression medium 254 is provided inside the cylindrical cavity 2511 between the threaded post 251 and the retaining post 252. The length of the retaining post 252 is equal to the length of the cylindrical cavity 2511. The compression medium 254 presses one end face of the retaining post 252. By providing the compression medium 254 inside the cylindrical cavity 2511, the compression medium 254 maintains pressure on one end of the retaining post 252 at all times, thereby ensuring that the retaining ring 253 outside the retaining post 252 is always pressed tightly in the annular retaining groove 2512, reducing the possibility of the retaining post 252 becoming loose.
[0044] The compression medium 254 can be water.
[0045] Example 5 is basically the same in structure as Example 1, except that: Please refer to... Figure 11 The storage chamber 4 has multiple rectangular grooves 42 at its upper end. The storage chamber 4 has a thermally conductive silicone pad 43 on the inner wall of the bottom end of the rectangular groove 42. The cooling chip 41 is assembled on the thermally conductive silicone pad 43. By setting the thermally conductive silicone pad 43 inside the rectangular groove 42, the thermally conductive silicone pad 43 can improve the heat exchange efficiency between the cooling chip 41 and the storage chamber 4, thereby improving the cooling effect of the device in high-temperature environments.
[0046] In summary, when the device operates in a low-temperature environment, the heat generated by the energy storage module 3 during power supply is absorbed by the heat-conducting fluid. After absorbing heat, the heat-conducting fluid expands and its density decreases, allowing the heat-conducting fluid inside the heat pipe 21 and the storage chamber 4 to flow into the heat-conducting component 31, thus achieving heat circulation. The expanded heat-conducting fluid in the heat-conducting component 31 enters the heat pipe 21, thereby transferring heat to the outside of the sensor, thus achieving heat transfer and reducing the impact of low-temperature environment on the sensor. In addition, the configuration of the energy storage module 3 can effectively avoid the drawbacks of needing on-site wiring when working in complex outdoor environments, making it more convenient to use.
[0047] The above are all preferred embodiments of this application, and are not intended to limit the scope of protection of this application. Therefore, all equivalent changes made in accordance with the structure, shape and principle of this application should be covered within the scope of protection of this application.
Claims
1. A smart vibrating wire sensing device based on 5G communication, characterized in that, include: The mounting housing (1) has a sensing cavity (11) for assembling the sensor body (2) and a power supply cavity (12) for assembling the energy storage module (3) on its two sides. A storage chamber (4) is provided above the mounting housing (1). A cooling chip (41) is attached to the surface of the storage chamber (4). The energy storage module (3) is electrically connected to both the sensor body (2) and the cooling chip (41). The energy storage module (3) has a hollow heat-conducting component (31) inside. The sensor body (2) has a spiral heat-conducting pipe (21) along its length outside. The storage chamber (4), the heat-conducting component (31), and the heat-conducting pipe (21) are interconnected and filled with heat-conducting fluid. In low-temperature environments, the heat-conducting component (31) transfers the heat generated by the energy storage module (3) to the sensor body (2) through the heat-conducting fluid; In a high-temperature environment, the heat-conducting fluid inside the storage chamber (4) is cooled by the cooling chip (41) and then flows into the heat-conducting component (31) and the heat-conducting pipe (21) respectively to reduce the temperature of the energy storage module (3) and the sensor body (2).
2. The intelligent vibrating wire sensing device based on 5G communication according to claim 1, characterized in that: The mounting housing (1) includes: The outer shell (13) is hollow inside, and an opening is provided on one side of the outer shell (13). A cover plate is fitted at the opening of the outer shell (13). The inner shell (14) is disposed in the outer shell (13) and has a gap (15) between it and the outer shell (13). The sensing cavity (11) and the power supply cavity (12) are opened on both sides of the inner shell (14). Thermal insulation layer (16) is disposed in the gap (15).
3. The intelligent vibrating wire sensing device based on 5G communication according to claim 2, characterized in that: The heat-conducting component (31) includes: Multiple hollow heat-conducting disks (311) are provided. The energy storage module (3) includes multiple battery cells (32) arranged in rows at intervals. A heat-conducting gap (33) is provided between each row of battery cells (32). The heat-conducting disk (311) is disposed in the heat-conducting gap (33) and contacts the battery cells (32). Any heat-conducting disk (311) is connected to the heat-conducting pipe (21) and any heat-conducting disk (311) is connected to the storage chamber (4). The heat-conducting plates (311) are connected to each other through the connecting pipe (312).
4. The intelligent vibrating wire sensing device based on 5G communication according to claim 2, characterized in that: The intelligent vibrating wire sensing device based on 5G communication also includes: A charging head (5) is mounted on the housing (13) and electrically connected to the energy storage module (3); A wireless transmission module (6) is electrically connected to the energy storage module (3).
5. The intelligent vibrating wire sensing device based on 5G communication according to claim 1, characterized in that: The sensor body (2) includes: The sensor housing (22) is hollow inside. A mounting base (23) is fixedly connected to the inner wall of one end of the sensor housing (22), and a threaded groove (24) communicating with the sensor housing (22) is opened at the other end. A threaded adjusting member (25) is threadedly connected inside the threaded groove (24). A vibrating string (26) is fixedly connected to one end of the threaded adjusting member (25), and the other end of the vibrating string (26) is connected and fixed to the mounting base (23). An electromagnetic excitation module (27) is embedded in the sensor housing (22) and electrically connected to the energy storage module (3).
6. The intelligent vibrating wire sensing device based on 5G communication according to claim 5, characterized in that: The threaded adjustment element (25) includes: A threaded post (251) has a cylindrical cavity (2511) at one end. Multiple annular slots (2512) are coaxially formed on the inner wall of the cylindrical cavity (2511). The multiple annular slots (2512) are arranged at intervals along the length of the cylindrical cavity (2511). A lever (2513) is fixedly connected to the other end of the threaded post (251). A retaining post (252) is disposed in the cylindrical cavity (2511). Multiple retaining rings (253) are spaced apart on the outside of the retaining post (252) along its own length direction. The retaining rings (253) are disposed in the annular groove (2512) and match the shape of the annular groove (2512). One end of the retaining post (252) is coaxially connected and fixed to the other end of the vibrating string (26).
7. The intelligent vibrating wire sensing device based on 5G communication according to claim 2, characterized in that: The mounting housing (1) includes: Connector (17), multiple connectors (17) are provided, multiple connectors (17) are provided in the gap (15), and the two ends of the connector (17) are respectively vertically assembled on the inner wall of the outer shell (13) and the outer wall of the inner shell (14); The connector (17) includes: A columnar connecting frame (171) has a cavity (172) inside, and the two ends of the connecting frame (171) are perpendicularly connected to the inner wall of the outer shell (13) and the outer wall of the inner shell (14), respectively. A spring bar (173) is disposed inside the cavity (172) and extends along the length direction of the connecting frame (171). The two ends of the spring bar (173) are respectively connected and fixed to the two ends of the connecting frame (171). A counterweight ball (174) is fixedly connected to the middle of the spring bar (173).
8. The intelligent vibrating wire sensing device based on 5G communication according to claim 7, characterized in that: The connector (17) includes a connecting rope (175), one end of which is fixedly connected to the upper inner wall of the connecting frame (171), and the other end of which is connected to the counterweight ball (174).
9. The intelligent vibrating wire sensing device based on 5G communication according to claim 6, characterized in that: A compression medium (254) is provided inside the cylindrical cavity (2511) between the threaded post (251) and the locking post (252). The length of the locking post (252) is equal to the length of the cylindrical cavity (2511). The compression medium (254) squeezes one end face of the locking post (252).
10. The intelligent vibrating wire sensing device based on 5G communication according to claim 1, characterized in that: The storage chamber (4) has multiple rectangular grooves (42) at its upper end. The storage chamber (4) has a thermally conductive silicone pad (43) on the inner wall of the bottom end of the rectangular groove (42). The cooling chip (41) is mounted on the thermally conductive silicone pad (43).