Water supply pipeline reinforcing structure
The design of threaded rods and clamps enhances the support and clamping of water supply pipes, solving the problem of unstable connections caused by gravity and shaking during long-term use, and improving the stability and practicality of pipe connections.
Patent Information
- Application Number
- CN202520596084.3
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-01
- Publication Date
- 2026-01-06
- Estimated Expiration
- 2035-04-01
AI Technical Summary
The existing water supply pipeline reinforcement structure suffers from insufficient stability at the connection points due to weight and swaying during long-term use.
By employing components such as threaded rods, threaded plates, fixed cylinders, and support seats, the movement direction and angle of the threaded plates and clamping plates are adjusted to support and clamp the pipeline, thereby enhancing connection stability.
This effectively avoids connection instability caused by gravity and shaking of the pipeline, improving the stability and practicality of the pipeline connection.
Smart Images

Figure CN223768364U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of pipeline reinforcement technology, specifically relating to a water supply pipeline reinforcement structure. Background Technology
[0002] Water is the source of life and an essential substance for our survival. With the development of human civilization and the rise of cities, people's water use has gradually shifted towards transportation and supply. Water supply pipelines have thus emerged to meet the water needs of people in different regions. Water supply pipelines establish routes for water resource transportation through the connection between pipelines. Corresponding reinforcement structures are often required at the connection points of water supply pipelines to ensure the stability of the pipelines.
[0003] Existing water supply pipeline reinforcement structures mostly rely on the stability between the flanges of the interconnecting pipes. However, since the pipes are often at a certain height above the ground, their weight and the swaying caused by the stress during long-term use result in insufficient stability between the interconnecting pipes, which is not conducive to their use.
[0004] Therefore, a water supply pipeline reinforcement structure is needed to solve the problem of insufficient stability between interconnected pipelines due to the influence of their weight and the swaying caused by the force of the pipeline during long-term use in the existing technology. Utility Model Content
[0005] The purpose of this utility model is to provide a water supply pipeline reinforcement structure to solve the problems mentioned in the background art.
[0006] To achieve the above objectives, this utility model provides the following technical solution: a water supply pipeline reinforcement structure, comprising two pipeline bodies, each with a fixed sleeve fixedly fitted on its outer circumferential surface. A first threaded rod is rotatably connected to the middle position of the bottom surface of the fixed sleeve. A threaded plate is threadedly connected to the outer circumferential surface of the first threaded rod. Fixed cylinders are fixed at both ends of the bottom surface of the threaded plate. A movable rod is slidably inserted inside the fixed cylinder. A support seat is provided at the bottom of the movable rod. Multiple insertion holes are evenly opened on the outer circumferential surface of the movable rod. A bolt is threadedly connected to the outer circumferential surface of the fixed cylinder. One end of the bolt extends into the interior of an adjacent fixed cylinder and into the interior of an adjacent insertion hole. A first threaded hole is opened on the bottom surface of the movable rod. A first threaded post is threadedly connected inside the first threaded hole. The bottom of the first threaded post is fixed to the top surface of the adjacent support seat.
[0007] It should be noted in the solution that the top of the first threaded rod extends to the inner cavity of the adjacent fixed sleeve. A rotating rod is rotatably connected to the inner cavity of the fixed sleeve. One end of the rotating rod passes through the fixed sleeve and extends out of the fixed sleeve. The top of the outer circumference of the first threaded rod is fixedly sleeved on the first bevel gear. A second bevel gear is fixedly sleeved on the outer circumference of the rotating rod near the first bevel gear. The first bevel gear and the adjacent second bevel gear are meshed together.
[0008] It is worth noting that a limiting rod is inserted through the threaded plate at both ends of the first threaded rod in an adjacent position. The top of the limiting rod is fixed to the surface of the fixing sleeve in an adjacent position, and the diameter of the bottom surface of the limiting rod is larger than the diameter of its top surface.
[0009] Furthermore, it should be noted that a second threaded rod is rotatably connected to one side of the surface at the top of the fixed sleeve, and an L-shaped threaded seat is threadedly connected to the outer circumferential surface of the second threaded rod. One side of the threaded seat extends to a position close to another part of the pipe body.
[0010] In a preferred embodiment, a limiting shaft is inserted through the surface of the threaded seat, and one side of the limiting shaft is fixed to the surface of the pipe body at an adjacent position.
[0011] In a preferred embodiment, a second threaded hole is provided on one side of the threaded seat, and a second threaded post is threadedly connected to the inside of the second threaded hole. A clamping plate is fixedly sleeved on the outer circumferential surface of the second threaded post, and the surface of one side of the clamping plate is in contact with the surface of the pipe body at the adjacent position.
[0012] Compared with the prior art, the water supply pipeline reinforcement structure provided by this utility model has at least the following beneficial effects:
[0013] (1) By rotating the rotating rod, the threaded plate can move in the vertical direction. By adjusting the total length between the fixed cylinder and the movable rod and the total length between the movable rod and the support seat, the support seat can be made to fit against the ground. Thus, the support seat can support the pipe body, thereby avoiding the situation where the pipe body is affected by its own weight and is prone to shaking, which affects the stability of the pipe body connection. This improves the practicality of the device.
[0014] (2) By rotating the second threaded rod, the threaded seat can move in the horizontal direction. By adjusting the angle of the clamping plate, the clamping plate can abut against the flange position of the adjacent pipe body after the threaded seat moves. Thus, under the clamping action of the two clamping plates, gaps are avoided at the flange of the two pipe bodies after long-term use, thereby further improving the practicality of the device. Attached Figure Description
[0015] Figure 1 This is a three-dimensional structural diagram of the present invention from the front view.
[0016] Figure 2 In this utility model Figure 1 Enlarged structural diagram at point A;
[0017] Figure 3 In this utility model Figure 1 Enlarged structural diagram at point B;
[0018] Figure 4 This is a three-dimensional structural diagram of the fixing sleeve in this utility model;
[0019] Figure 5 This is a three-dimensional structural diagram of a part of the present invention.
[0020] In the diagram: 1. Pipe body; 2. Fixing sleeve; 3. First threaded rod; 4. Threaded plate; 5. Fixing cylinder; 6. Movable rod; 7. Support seat; 8. Limiting rod; 9. Rotating rod; 10. First bevel gear; 11. Second bevel gear; 12. Insertion hole; 13. Bolt; 14. First threaded post; 15. First threaded hole; 16. Second threaded rod; 17. Threaded seat; 18. Limiting shaft; 19. Second threaded post; 20. Clamping plate; 21. Second threaded hole. Detailed Implementation
[0021] Please see Figure 1-5This utility model provides a water supply pipeline reinforcement structure, including a pipeline body 1. The pipeline body 1 consists of two parts. A fixing sleeve 2 is fixedly fitted onto the outer circumference of each pipeline body 1. A first threaded rod 3 is rotatably connected to the middle position of the bottom surface of the fixing sleeve 2. A threaded plate 4 is threadedly connected to the outer circumference of the first threaded rod 3. Fixing cylinders 5 are fixed to both ends of the bottom surface of the threaded plate 4. A movable rod 6 is slidably inserted inside the fixing cylinder 5. A support seat 7 is provided at the bottom of the movable rod 6. Multiple insertion holes 12 are evenly distributed on the outer circumference of the movable rod 6. A bolt 13 is threadedly connected to the outer circumference of the fixing cylinder 5. One end of the bolt 13 extends into the interior of an adjacent fixing cylinder 5. Extending into the interior of the adjacent insertion hole 12, the bottom surface of the movable rod 6 is provided with a first threaded hole 15. The interior of the first threaded hole 15 is threaded with a first threaded post 14. The bottom of the first threaded post 14 is fixed to the top surface of the adjacent support seat 7. It can move vertically through the threaded plate 4. By adjusting the total length between the fixed cylinder 5 and the movable rod 6 and the total length between the movable rod 6 and the support seat 7, the support seat 7 can be made to fit against the ground. Thus, the support seat 7 can support the pipe body 1, thereby preventing the pipe body 1 from being affected by its own weight and the easy shaking that affects the stability of the interconnection of the pipe body 1.
[0022] Further as Figure 4 As shown, it is worth noting that the top of the first threaded rod 3 extends to the inner cavity of the adjacent fixed sleeve 2. A rotating rod 9 is rotatably connected to the inner cavity of the fixed sleeve 2. One end of the rotating rod 9 passes through the fixed sleeve 2 and extends out of the outside of the fixed sleeve 2. The top of the outer circumference of the first threaded rod 3 is fixedly sleeved on the first bevel gear 10. A second bevel gear 11 is fixedly sleeved on the outer circumference of the rotating rod 9 near the first bevel gear 10. The first bevel gear 10 and the adjacent second bevel gear 11 are meshed together. When the rotating rod 9 is rotated, the second bevel gear 11 can rotate, so that the first threaded rod 3 can be in a rotating state under the meshing action between the second bevel gear 11 and the first bevel gear 10.
[0023] Further as Figure 4 As shown, it is worth noting that limiting rods 8 are inserted through the threaded plate 4 at the two ends of the first threaded rod 3 in adjacent positions. The top of the limiting rod 8 is fixed to the surface of the adjacent fixing sleeve 2. The diameter of the bottom surface of the limiting rod 8 is larger than the diameter of its top surface. The two limiting rods 8 can limit the movement trajectory of the threaded plate 4, so that the threaded plate 4 can only move in the vertical direction. Furthermore, due to the shape of the limiting rods 8, the bottom surface of the limiting rods 8 can abut against the hole wall of the threaded plate 4, preventing the threaded plate 4 from detaching from the outer circumference of the two limiting rods 8.
[0024] Further as Figure 1 , Figure 2 and Figure 3 As shown, it is worth noting that a second threaded rod 16 is rotatably connected to one side of the surface at the top of the fixed sleeve 2. The outer circumferential surface of the second threaded rod 16 is threadedly connected to an L-shaped threaded seat 17. One side of the threaded seat 17 extends to a position close to another pipe body 1. A limiting shaft 18 is inserted through the surface of the threaded seat 17. One side of the limiting shaft 18 is fixed to the surface of the adjacent pipe body 1. Since the limiting shaft 18 can limit the adjacent threaded seat 17, making it move only in the horizontal direction, the threaded seat 17 can move in the horizontal direction under the cooperation between the internal thread structure on the inner wall of the threaded seat 17 and the external thread structure on the outer circumferential surface of the second threaded rod 16 when the second threaded rod 16 is rotated.
[0025] Further as Figure 3 As shown, it is worth noting that a second threaded hole 21 is provided on one side of the threaded seat 17. A second threaded post 19 is threadedly connected inside the second threaded hole 21. A clamping plate 20 is fixedly fitted on the outer circumferential surface of the second threaded post 19. One side of the clamping plate 20 is in contact with the surface of the adjacent pipe body 1. By rotating the second threaded post 19, the angle of the clamping plate 20 can be adjusted, and the clamping plate 20 can be fixed in multiple angles.
[0026] This solution has the following working process: In actual use, when the user needs to improve the stability of the pipe body 1, firstly, the rotating rod 9 is rotated so that the second bevel gear 11 can rotate. This allows the first threaded rod 3 to rotate under the meshing action between the second bevel gear 11 and the first bevel gear 10. Since the limiting rod 8 can limit the movement trajectory of the threaded plate 4, when the first threaded rod 3 rotates, the threaded plate 4 can move vertically under the cooperation between the internal thread structure on its inner wall and the external thread structure on the outer circumference of the first threaded rod 3. After the threaded plate 4 moves to a certain height, the height of the support seat 7 is adjusted by adjusting the length of the fixed cylinder 5 at the adjacent position of the movable rod 6, ensuring a certain gap between the support seat 7 and the ground. Then, the bolt 13 is rotated so that it can move along the interior of the vertically adjacent insertion hole 12. The lengths of the fixed cylinder 5 and the movable rod 6 are limited. At this time, there is a certain gap between the support seat 7 and the ground. By rotating the support seat 7, the support seat 7 can move slightly within a certain range until it is in contact with the ground under the action of the thread structure between the first threaded column 14 and the first threaded hole 15, thereby supporting the two pipe bodies 1. When it is necessary to improve the stability of the flange connection of the two pipe bodies 1, firstly, by rotating the clamp 20, the clamp 20 can be turned downward so that the clamp 20 can abut against the flange of the pipe body 1 when it moves. When rotating the second threaded rod 16, the threaded seat 17 can move horizontally under the action of the internal thread structure on the inner wall of the threaded seat 17 and the external thread structure on the outer circumference of the second threaded rod 16, so that the two clamps 20 can abut against the flange of the two pipe bodies 1, thereby improving the stability between the flanges of the two pipe bodies 1.
[0027] According to the above working process, rotating the rotating rod 9 allows the threaded plate 4 to move vertically. By adjusting the total length between the fixed cylinder 5 and the movable rod 6, and the total length between the movable rod 6 and the support seat 7, the support seat 7 can be made to fit against the ground. Thus, the support seat 7 can support the pipe body 1, thereby preventing the pipe body 1 from being affected by its own weight and easily shaking, which would affect the stability of the interconnection of the pipe bodies 1. This improves the practicality of the device. By rotating the second threaded rod 16, the threaded seat 17 can move horizontally. By adjusting the angle of the clamping plate 20, the clamping plate 20 can abut against the flange position of the adjacent pipe body 1 after the threaded seat 17 moves. Thus, under the clamping action of the two clamping plates 20, gaps are prevented from appearing at the flange of the two pipe bodies 1 after long-term use, thereby further improving the practicality of the device.
Claims
1. A water supply pipe reinforcing structure comprising a pipe body (1), characterized by, The pipeline body (1) has two, two said pipeline body (1) is fixedly sleeved with the fixed sleeve (2), the middle position of the bottom surface of the fixed sleeve (2) is rotatably connected with the first threaded rod (3), the outer periphery of the first threaded rod (3) is threadedly connected with the threaded plate (4), the bottom surface of the threaded plate (4) is fixedly connected with the fixed cylinder (5), the inside of the fixed cylinder (5) is slidably inserted with the movable rod (6), the bottom of the movable rod (6) is provided with the supporting seat (7), the outer periphery of the movable rod (6) is uniformly provided with a plurality of insertion holes (12), the outer periphery of the fixed cylinder (5) is threadedly connected with the bolt (13), one end of the bolt (13) extends to the inside of the adjacent position fixed cylinder (5) and extends to the inside of the adjacent position insertion hole (12), the surface of the bottom of the movable rod (6) is provided with the first threaded hole (15), the inside of the first threaded hole (15) is threadedly connected with the first threaded column (14), and the bottom of the first threaded column (14) is fixedly connected with the surface of the top of the adjacent position supporting seat (7).
2. A water supply pipe reinforcing structure according to claim 1, characterized by: The top of the first threaded rod (3) extends to the inner cavity position of the adjacent position fixed sleeve (2), the inner cavity position of the fixed sleeve (2) is rotatably connected with the rotating rod (9), one end of the rotating rod (9) penetrates through the fixed sleeve (2) and extends out of the outside of the fixed sleeve (2), the top of the outer periphery of the first threaded rod (3) is fixedly sleeved with the first bevel gear (10), the position of the outer periphery of the rotating rod (9) close to the first bevel gear (10) is fixedly sleeved with the second bevel gear (11), and the first bevel gear (10) and the second bevel gear (11) are rotatably connected.
3. The water supply pipe reinforcing structure according to claim 1, characterized by: The surface of the threaded plate (4) is inserted with the limiting rod (8) at the position of the two ends of the adjacent position first threaded rod (3), the top of the limiting rod (8) is fixedly connected with the surface of the adjacent position fixed sleeve (2), and the diameter of the bottom surface of the limiting rod (8) is greater than that of the top surface.
4. The water supply pipe reinforcing structure according to claim 1, characterized by: The surface of the top position of the fixed sleeve (2) is rotatably connected with the second threaded rod (16) on one side, the outer periphery of the second threaded rod (16) is threadedly connected with the L-shaped threaded seat (17), and one side of the threaded seat (17) extends to the position close to the other pipeline body (1).
5. A water supply pipe reinforcing structure according to claim 4, wherein: The surface of the threaded seat (17) is inserted with the limiting shaft (18), and one side of the limiting shaft (18) is fixedly connected with the surface of the adjacent position pipeline body (1).
6. A water supply pipe reinforcing structure according to claim 4, wherein: The surface of one side of the threaded seat (17) is provided with the second threaded hole (21), the inside of the second threaded hole (21) is threadedly connected with the second threaded column (19), the outer periphery of the second threaded column (19) is fixedly sleeved with the clamping plate (20), and the surface of one side of the clamping plate (20) is attached to the surface of the adjacent position pipeline body (1).