Municipal large-diameter water supply pipeline buttress bearing force monitoring device
By designing a support bearing capacity monitoring device with pressure sensors and sliding rod assemblies, the problem of difficulty in detecting the bearing capacity of supports in the existing technology has been solved, realizing real-time monitoring of supports, avoiding damage to supports and pipelines, improving work efficiency and reducing maintenance costs.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- WUHU HUA YAN WATER CO LTD
- Filing Date
- 2025-04-09
- Publication Date
- 2026-04-21
AI Technical Summary
Existing pipe supports are difficult to test for their load-bearing capacity, which makes the supports and water supply pipes prone to damage, reducing work efficiency and increasing project costs.
A load-bearing capacity monitoring device for large-diameter water supply pipeline supports in municipal applications was designed. The device uses pressure sensors and sliding rod assemblies to monitor the support force, and transmits the force through the bending and rotation of the arc-shaped support plate. Combined with a display controller and signal receiver, the device monitors the load-bearing capacity of the supports in real time.
It enables real-time monitoring of the bearing capacity of the supports, avoids sudden damage to the supports, improves work efficiency, reduces maintenance time, and lowers project costs.
Smart Images

Figure CN224151857U_ABST
Abstract
Description
Technical Field
[0001] This utility model patent relates to the field of water supply pipeline support technology, and mainly to a load-bearing monitoring device for large-diameter water supply pipeline supports used in municipal applications. Background Technology
[0002] With the improvement of people's living standards and the development of industry, the demand for water quantity and quality has greatly increased. Water supply projects are playing an increasingly important role in meeting people's living and industrial development needs for water. Water supply projects mostly use pipeline transportation, and the pipelines are long and heavy, requiring the use of pipeline supports.
[0003] Existing pipe supports are difficult to test their load-bearing capacity. If the load on the supports is too high, it can easily lead to damage to the supports, which in turn can damage the water supply pipeline, reduce work efficiency, and increase project costs. To address this, we propose a load-bearing capacity monitoring device for large-diameter municipal water supply pipeline supports. Utility Model Content
[0004] This utility model mainly provides a bearing capacity monitoring device for large-diameter water supply pipeline supports in municipal applications to solve the technical problems mentioned in the background art.
[0005] To achieve the above objectives, the following technical solution is provided: a municipal large-diameter water supply pipeline support bearing capacity monitoring device, including a base, with first monitoring components connected to both sides of the top of the base, the first monitoring components including a first sleeve connected to the top of the base, a first pressure sensor connected to the bottom of the first sleeve and a first slide rod connected to the top of the first pressure sensor, the bottom of the first slide rod being slidably connected to the first sleeve, and the top of the first slide rod being connected to an arc-shaped support plate;
[0006] The base is connected to two sides of the top, and the second monitoring component includes a second sleeve connected to the top of the base, a second pressure sensor connected to the bottom of the second sleeve, a second slide rod connected to the top of the second pressure sensor, and an arm rotatably connected to the top of the second slide rod. The top of the arm is rotatably connected to an arc-shaped support plate.
[0007] Furthermore, a display controller is connected to the top of the first sleeve on one side, a buzzer is connected to the top side of the display controller, a display screen is provided on one side of the display controller, and multiple control buttons are provided on the other side of the display controller.
[0008] Furthermore, a force monitoring mechanism is connected to the top of the first sleeve. The force monitoring mechanism includes a sliding connection to a fixed plate at the top of the first sleeve, a telescopic assembly connected to the top of the fixed plate, a third pressure sensor connected to the bottom of the telescopic assembly, and a synchronizing rod connected to the top of the telescopic assembly. First sliding rods are connected to both sides of the synchronizing rod.
[0009] Furthermore, a battery is connected to one side of the top of the base, and a signal receiver is connected to the other side of the top of the base. The signal receiver, battery, display controller, first pressure sensor, second pressure sensor, and third pressure sensor are electrically connected.
[0010] Furthermore, the telescopic assembly includes a third sleeve connected to the top of the fixed plate, a third sliding rod slidably connected to the top of the third sleeve, and a first spring sleeved on the outer wall of the third sleeve and the third sliding rod, with a synchronizing rod connected to the top of the first spring.
[0011] Furthermore, limiting mechanisms are connected to both sides of the top of the arc-shaped support plate. The limiting mechanisms include a second spring connected to the top groove of the arc-shaped support plate, a limiting rod connected to one side of the second spring, and a pull rod connected to the top of the limiting rod.
[0012] Furthermore, a cover plate is rotatably connected to the top side of the arc-shaped support plate, and an insert block is fixed at the bottom of the cover plate. Limiting grooves are provided on both sides of the insert block, and the groove of the limiting groove cooperates with the limiting rod.
[0013] Compared with the prior art, the beneficial effects of this utility model are as follows:
[0014] This utility model provides a load-bearing capacity monitoring device for large-diameter water supply pipeline supports in municipal applications. The device utilizes a curved support plate with a bent top to rotate the arm, causing the second sliding rod to descend. This lowers the second sliding rod, changing the reading of the second pressure sensor. The descent of the first sliding rod also changes the reading of the first pressure sensor. A third pressure sensor monitors the supporting force of the synchronizing rod. The spring force of the second spring causes the limiting rod to enter the limiting groove, thus restricting the position of the cover plate. This allows workers to easily remove the monitoring equipment through the cover plate. A signal receiver receives the monitoring data from the first, second, and third pressure sensors and sends it to the display controller. This provides real-time monitoring, preventing sudden support failures that could disrupt the project, minimizing repair time, and improving work efficiency.
[0015] The present invention will be explained in detail below with reference to the accompanying drawings and specific embodiments. Attached Figure Description
[0016] Figure 1 This is a schematic diagram of the overall structure of this utility model;
[0017] Figure 2 This is a cross-sectional view of the entire utility model;
[0018] Figure 3 This is a cross-sectional view of the entire utility model;
[0019] Figure 4 for Figure 3 Enlarged view of point A in the middle.
[0020] In the diagram: 10, base; 20, first monitoring component; 21, first sleeve; 22, first pressure sensor; 23, first slide bar; 30, support plate; 31, cover plate; 311, insert block; 312, limiting groove; 40, second monitoring component; 41, second sleeve; 42, second pressure sensor; 43, second slide bar; 44, arm; 50, force monitoring mechanism; 51, fixing plate; 52, telescopic component; 521, third sleeve; 522, third slide bar; 523, first spring; 53, synchronizing rod; 54, third pressure sensor; 60, limiting mechanism; 61, second spring; 62, limiting rod; 63, pull rod; 70, battery; 80, signal receiver; 90, display controller; 91, buzzer; 92, display screen; 93, control button. Detailed Implementation
[0021] To facilitate understanding of this utility model, a more comprehensive description of the utility model will be given below with reference to the accompanying drawings, which show several embodiments of the utility model. However, the utility model can be implemented in different forms and is not limited to the embodiments described in the text. On the contrary, these embodiments are provided to make the disclosure of the utility model more thorough and comprehensive.
[0022] For an example, please refer to... Figure 1-4 A municipal large-diameter water supply pipeline support bearing capacity monitoring device includes a base 10. The top two sides of the base 10 are connected to a first monitoring component 20. The first monitoring component 20 includes a first sleeve 21 connected to the top of the base 10, a first pressure sensor 22 connected to the bottom of the first sleeve 21, and a first slide rod 23 connected to the top of the first pressure sensor 22. The bottom of the first slide rod 23 is slidably connected to the first sleeve 21, and the top of the first slide rod 23 is connected to an arc-shaped support plate 30.
[0023] The base 10 is connected to the top two sides of the second monitoring component 40. The second monitoring component 40 includes a second sleeve 41 connected to the top of the base 10, a second pressure sensor 42 connected to the bottom of the second sleeve 41, a second slide rod 43 connected to the top of the second pressure sensor 42, and an arm 44 rotatably connected to the top of the second slide rod 43. The top of the arm 44 is rotatably connected to an arc-shaped support plate 30.
[0024] It should be noted that, in the embodiment, the second pressure sensor 42 monitors the supporting force of the second slide bar 43. When the top of the arc-shaped support plate 30 bends, the arm 44 will rotate, thereby causing the second slide bar 43 to descend, which in turn causes the monitoring value of the second pressure sensor 42 to change. The descent of the first slide bar 23 causes the monitoring value of the first pressure sensor 22 to change.
[0025] For an example, please refer to... Figure 3 The top of the first sleeve 21 on one side is connected to the display controller 90. A buzzer 91 is connected to one side of the top of the display controller 90. A display screen 92 is provided on one side of the display controller 90, and multiple control buttons 93 are provided on the other side of the display controller 90.
[0026] It should be noted that, in this embodiment, if the monitoring data is abnormal, the buzzer 91 will be used to alert the staff, the monitoring data will be displayed on the display screen 92, and the display controller 90 will be configured using the control button 93.
[0027] For an example, please refer to... Figure 2 The first sleeve 21 is connected to the top of a force monitoring mechanism 50. The force monitoring mechanism 50 includes a fixed plate 51 slidably connected to the top of the first sleeve 21, a telescopic component 52 connected to the top of the fixed plate 51, a third pressure sensor 54 connected to the bottom of the telescopic component 52, and a synchronizing rod 53 connected to the top of the telescopic component 52. The synchronizing rod 53 is connected to the first sliding rod 23 on both sides.
[0028] It should be noted that, in the embodiment, the synchronizing rod 53 facilitates the synchronous descent of the first sliding rods 23 on both sides, preventing the arc-shaped support plate 30 from being concave in the middle, and the third pressure sensor 54 facilitates the monitoring of the supporting force of the synchronizing rod 53.
[0029] For an example, please refer to... Figure 2-3 The base 10 is connected to a battery 70 on one side of its top and a signal receiver 80 on the other side of its top. The signal receiver 80, battery 70, display controller 90, first pressure sensor 22, second pressure sensor 42 and third pressure sensor 54 are electrically connected.
[0030] It should be noted that, in this embodiment, the battery 70 is used to provide energy, and the signal receiver 80 receives monitoring data from the first pressure sensor 22, the second pressure sensor 42 and the third pressure sensor 54, and then sends it to the display controller 90.
[0031] For an example, please refer to... Figure 2The telescopic assembly 52 includes a third sleeve 521 connected to the top of the fixed plate 51, a third slide rod 522 slidably connected to the top of the third sleeve 521, and a first spring 523 sleeved on the outer wall of the third sleeve 521 and the third slide rod 522. The top of the first spring 523 is connected to a synchronizing rod 53.
[0032] It should be noted that, in the embodiment, the third slide bar 522 is raised by the first spring 523, which can provide support force.
[0033] For an example, please refer to... Figure 4 The top two sides of the arc-shaped support plate 30 are connected to limiting mechanisms 60. The limiting mechanism 60 includes a second spring 61 connected to the top groove of the arc-shaped support plate 30, a limiting rod 62 connected to one side of the second spring 61, and a pull rod 63 connected to the top of the limiting rod 62.
[0034] It should be noted that, in the embodiment, the elastic force of the second spring 61 facilitates the reset of the limiting rod 62, and the pulling rod 63 facilitates the movement of the limiting rod 62.
[0035] For an example, please refer to... Figure 4 The top side of the arc-shaped support plate 30 is rotatably connected to the cover plate 31. The bottom of the cover plate 31 is fixed with an insert block 311. The insert block 311 has limiting grooves 312 on both sides. The groove of the limiting groove 312 cooperates with the limiting rod 62.
[0036] It should be noted that, in the embodiment, the limiting rod 62 enters the limiting groove 312 to restrict the position of the cover plate 31, prevent the cover plate 31 from rotating, restrict the position of the pipeline, and facilitate the staff to remove the monitoring equipment through the cover plate 31.
[0037] The specific operation method of this utility model is as follows:
[0038] The aforementioned municipal large-diameter water supply pipeline support bearing capacity monitoring device monitors the supporting force of the second slide bar 43 through the second pressure sensor 42. When the top of the arc-shaped support plate 30 bends, the arm 44 will rotate, thereby causing the second slide bar 43 to descend, which in turn causes the monitoring value of the second pressure sensor 42 to change. The first slide bar 23 descends, causing the monitoring value of the first pressure sensor 22 to change. The supporting force of the synchronous rod 53 is monitored through the third pressure sensor 54.
[0039] The spring force of the second spring 61 causes the limiting rod 62 to enter the limiting groove 312, thereby restricting the position of the cover plate 31 and making it easier for staff to remove the monitoring equipment through the cover plate 31.
[0040] The embodiments described above merely illustrate the implementation methods of this application. However, those skilled in the art can make various modifications and improvements without departing from the concept of this application, and these all fall within the protection scope of this application. Therefore, the protection scope of this patent application should be determined by the appended claims.
Claims
1. A municipal large-diameter water supply pipeline pier bearing monitoring device, comprising a base (10), characterized in that: The base (10) is connected to the top two sides of the first monitoring component (20). The first monitoring component (20) includes a first sleeve (21) connected to the top of the base (10), a first pressure sensor (22) connected to the bottom of the first sleeve (21), and a first slide rod (23) connected to the top of the first pressure sensor (22). The bottom of the first slide rod (23) is slidably connected to the first sleeve (21), and the top of the first slide rod (23) is connected to an arc-shaped support plate (30). The base (10) is connected to the top two sides of the second monitoring component (40). The second monitoring component (40) includes a second sleeve (41) connected to the top of the base (10), a second pressure sensor (42) connected to the bottom of the second sleeve (41), a second slide rod (43) connected to the top of the second pressure sensor (42), and an arm (44) rotatably connected to the top of the second slide rod (43). The top of the arm (44) is rotatably connected to an arc-shaped support plate (30).
2. The municipal large-diameter water supply pipeline pier bearing monitoring device according to claim 1, characterized in that: The top of the first sleeve (21) on one side is connected to a display controller (90), a buzzer (91) is connected to one side of the top of the display controller (90), a display screen (92) is provided on one side of the display controller (90), and multiple control buttons (93) are provided on the other side of the display controller (90).
3. The municipal large-diameter water supply pipeline support pier force monitoring device according to claim 2, characterized in that: The first sleeve (21) is connected to a force monitoring mechanism (50) at the top. The force monitoring mechanism (50) includes a fixed plate (51) slidably connected to the top of the first sleeve (21), a telescopic component (52) connected to the top of the fixed plate (51), a third pressure sensor (54) connected to the bottom of the telescopic component (52), and a synchronizing rod (53) connected to the top of the telescopic component (52). The synchronizing rod (53) is connected to a first sliding rod (23) on both sides.
4. The municipal large-diameter water supply pipeline support pier force monitoring device according to claim 3, characterized in that: A battery (70) is connected to one side of the top of the base (10), and a signal receiver (80) is connected to the other side of the top of the base (10). The signal receiver (80), the battery (70), the display controller (90), the first pressure sensor (22), the second pressure sensor (42), and the third pressure sensor (54) are electrically connected.
5. The municipal large-diameter water supply pipeline support pier force monitoring device according to claim 3, characterized in that: The telescopic assembly (52) includes a third sleeve (521) connected to the top of the fixed plate (51), a third slide rod (522) slidably connected to the top of the third sleeve (521), and a first spring (523) sleeved on the outer wall of the third sleeve (521) and the third slide rod (522). The top of the first spring (523) is connected to a synchronizing rod (53).
6. The municipal large-diameter water supply pipeline support bearing capacity monitoring device according to claim 1, characterized in that: The top two sides of the arc-shaped support plate (30) are connected to limiting mechanisms (60). The limiting mechanism (60) includes a second spring (61) connected to the top groove of the arc-shaped support plate (30), a limiting rod (62) connected to one side of the second spring (61), and a pull rod (63) connected to the top of the limiting rod (62).
7. The municipal large-diameter water supply pipeline support pier force monitoring device according to claim 6, characterized in that: The top side of the arc-shaped support plate (30) is rotatably connected to the cover plate (31), and the bottom of the cover plate (31) is fixed with a plug (311). The plug (311) has a limiting groove (312) on both sides, and the groove of the limiting groove (312) cooperates with the limiting rod (62).