Mounting structure for experimental pure water conveying pipeline
By introducing clamping components and tilt adjustment components into the experimental pure water delivery pipeline, the problem of poor flexibility of traditional fixed structures was solved, enabling precise adjustment of the slope and smooth water flow, thus improving the practicality of the fixed structure.
Patent Information
- Application Number
- CN202423186007.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-24
- Publication Date
- 2026-03-06
- Estimated Expiration
- 2034-12-24
AI Technical Summary
Traditional experimental pure water delivery pipelines have poor fixed structure flexibility, making it difficult to adjust the slope, which affects the smooth flow of water and the stable fixation of the pipeline.
The system employs clamping and tilt adjustment components, including a fixed base plate, a fixed frame, a lower clamp, and an upper clamp. The tilt adjustment and lateral adjustment components enable flexible fixing and slope adjustment of the pipeline, while the system utilizes bolts, adjusting screws, and sliders for precise adjustment.
It enables flexible adjustment and stable fixing of the pipe slope, ensuring smooth water flow and improving the convenience and practicality of operation.
Smart Images

Figure CN223975653U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of pipeline fixing technology, and in particular to an installation structure for an experimental pure water conveyance pipeline. Background Technology
[0002] With the continuous development of science and technology, laboratories are playing an increasingly prominent role in various fields. Laboratory pure water, as an indispensable resource in laboratories, directly affects the accuracy and reliability of experimental results due to its quality and stable supply. Traditional methods of supplying laboratory pure water often involve transporting it in buckets or using simple pipelines. However, these methods have many problems, such as susceptibility to contamination, unstable supply, and inconvenience in obtaining water. To solve these problems, people have begun to develop more advanced laboratory pure water delivery pipeline systems to meet the needs of modern laboratories for high-quality pure water. The layout of pipelines often requires a pipeline fixing structure to secure the pipeline in a suitable location, ensuring stability for the delivery of pure water.
[0003] In existing technologies, pipes are typically fixed using clamps, which are then fixed to walls or supports. However, clamps offer limited flexibility. Currently, to ensure smooth drainage, pipes should have a certain slope so that water can flow naturally to the drainage point, ensuring that water can be drained smoothly when the water supply is interrupted, thus preventing water accumulation and bacterial growth. However, once fixed with clamps, it is difficult to adjust the slope, and it is also difficult to control the degree of slope adjustment, making it inconvenient to use.
[0004] Therefore, it is necessary to propose an installation structure for experimental pure water delivery pipelines to solve the above problems. Utility Model Content
[0005] The main objective of this invention is to provide an installation structure for experimental pure water delivery pipelines, which can effectively solve the problems in the background art.
[0006] To achieve the above objectives, the technical solution adopted by this utility model is as follows:
[0007] An installation structure for a laboratory pure water delivery pipeline includes a fixed base plate and a fixing frame disposed on one side of the fixed base plate. The upper end of the fixing frame is provided with a clamping component for fixing the pipeline. The clamping component includes a lower clamp disposed on the fixing frame. The top of the lower clamp is fixed with an upper clamp by bolts. An arc-shaped recess adapted to the pipeline is provided on the opposite side of the upper clamp and the lower clamp.
[0008] The lower end of the fixing frame is provided with an angle adjustment component for adjusting the tilt angle of the clamping assembly. The angle adjustment component includes an adjustment shaft rotatably disposed at the lower end of the fixing frame. The bottom of the lower clamp is connected to the upper end of the adjustment shaft. One end of the adjustment shaft is provided with a blind hole. The inner wall of the blind hole is provided with a spiral groove. A driving block is slidably fitted in the blind hole. The side wall of the driving block is fixedly provided with a first protrusion that slides and guides the spiral groove. A cylinder corresponding to the driving block is fixedly disposed on one side of the lower end of the fixing frame. The inner side of the cylinder away from the driving block is threadedly fitted with a first adjusting screw. The end of the first adjusting screw near the driving block is rotatably connected to the side wall of the driving block. Thus, when the first adjusting screw is rotated, the driving block drives the first protrusion to move, and then the first protrusion drives the adjustment shaft to rotate through the spiral groove.
[0009] Preferably, the first adjusting screw and the driving block are rotatably connected by a pushing assembly. The pushing assembly includes a push block slidably connected to one end of the cylinder near the driving block. The side of the push block away from the first adjusting screw is fixedly connected to the side wall of the driving block, and the side of the driving block near the first adjusting screw is rotatably connected to one end of the first adjusting screw.
[0010] Preferably, the inner wall of the cylinder near the drive block is uniformly provided with a groove, and the push block is uniformly provided with a second protrusion that slides and guides the groove in the circumferential direction.
[0011] Preferably, the lower end of the fixing frame is provided with a through groove corresponding to the adjusting shaft, the lower end of the lower clamp extends downward through the through groove, and the width of the through groove is greater than the thickness of the lower clamp.
[0012] Preferably, the device further includes a lateral adjustment assembly, which includes a sliding sleeve movably connected to the outside of the adjustment shaft. A second limiting protrusion is uniformly arranged around the outside of the adjustment shaft. The inner side of the sliding sleeve is slidably guided to the drive block. The lower end of the lower clamp is fixedly connected to the top of the sliding sleeve. Both sides of the upper end of the fixing frame are provided with fan-shaped sliding grooves. A fan-shaped slider is slidably connected to the inner side of the sliding groove. The center of the sliding groove and the slider falls on the axis of the adjustment shaft. The sliding displacement direction of the slider is the displacement around the axis of the adjustment shaft. A second adjusting screw is threaded onto one of the sliders. One end of the second adjusting screw is rotatably connected to the side wall of the lower clamp. Rotating the second adjusting screw causes the lower clamp to move axially along the adjustment shaft.
[0013] Preferably, a telescopic rod is fixedly provided on the side wall of the slider away from the second adjusting screw, and the end of the telescopic rod away from the slider is fixedly connected to the side of the lower clamp away from the second adjusting screw.
[0014] Preferably, the inner wall of the groove is provided with a first limiting protrusion, and the slider slides and the first limiting protrusion cooperate in a sliding guide manner.
[0015] Compared with the prior art, this utility model provides an installation structure for a laboratory pure water delivery pipeline, which has the following beneficial effects:
[0016] The installation structure for the experimental pure water delivery pipeline has a clamping component that is set on the tilt adjustment component. This allows for adjustment of the tilt angle of the clamping component, which is convenient to adapt to the slope of the pipeline. Moreover, the adjustment is linear, the angle is easy to control, and the operation is convenient, which increases its practicality.
[0017] Based on the above, the lateral adjustment component facilitates the adjustment of the position of the clamping component, thereby making it easier to fine-tune the position of the pipeline. Moreover, the lateral adjustment component can also increase the stability of the clamping component when adjusting the tilt angle. Attached Figure Description
[0018] Figure 1 This is a schematic diagram of the structure of this utility model;
[0019] Figure 2 This is a structural diagram of the present invention in its disassembled state;
[0020] Figure 3 This is a structural schematic diagram of the fixing frame of this utility model;
[0021] Figure 4 This is a structural diagram of the tilt adjustment component and the fixing frame of this utility model in a disassembled state;
[0022] Figure 5 This is a structural diagram of the drive block and adjusting shaft of this utility model in their disassembled state;
[0023] Figure 6 This is a structural diagram of the first adjusting screw, push block, and cylinder of this utility model in their disassembled state.
[0024] In the diagram: 1. Fixed base plate; 2. Fixing frame; 3. Upper clamp; 4. Lower clamp; 5. First adjusting screw; 6. Second adjusting screw; 7. Sliding sleeve; 8. Telescopic rod; 9. Sliding block; 10. Sliding groove; 11. First limiting protrusion; 12. Cylinder; 13. Adjusting shaft; 14. Second limiting protrusion; 15. Through groove; 16. Blind hole; 17. Driving block; 18. First protrusion; 19. Spiral groove; 20. Push block; 21. Second protrusion; 22. Groove. Detailed Implementation
[0025] To make the technical means, creative features, objectives and effects of this utility model easier to understand, the present utility model will be further described below in conjunction with specific embodiments.
[0026] like Figure 1-6As shown, an installation structure for an experimental pure water delivery pipeline includes a fixed base plate 1 and a fixing frame 2 disposed on one side of the fixed base plate 1. The upper end of the fixing frame 2 is provided with a clamping component for fixing the pipeline. The clamping component includes a lower clamp 4 disposed on the fixing frame 2. The top of the lower clamp 4 is fixed with an upper clamp 3 by bolts, and the upper clamp 3 and the lower clamp 4 are provided with an arc-shaped recess adapted to the pipeline on opposite sides.
[0027] Furthermore, the lower end of the fixing frame 2 is provided with an angle adjustment component for adjusting the tilt angle of the clamping assembly. The angle adjustment component includes an adjustment shaft 13 rotatably disposed at the lower end of the fixing frame 2. The bottom of the lower clamp 4 is connected to the upper end of the adjustment shaft 13. The lower end of the fixing frame 2 is provided with a through groove 15 corresponding to the adjustment shaft 13. The lower end of the lower clamp 4 extends downward through the through groove 15, and the width of the through groove 15 is greater than the thickness of the lower clamp 4. One end of the adjustment shaft 13 is provided with a blind hole 16. The inner wall of the blind hole 16 is provided with a spiral groove 19. The blind hole 16 is slidably fitted with... The drive block 17 has a first protrusion 18 fixedly provided on its side wall, which slides and guides the spiral groove 19. A cylinder 12 corresponding to the drive block 17 is fixedly provided on one side of the lower end of the fixing frame 2. A first adjusting screw 5 is threadedly fitted on the inner side of the cylinder 12 away from the drive block 17. The end of the first adjusting screw 5 close to the drive block 17 is rotatably connected to the side wall of the drive block 17. When the first adjusting screw 5 is rotated, the drive block 17 drives the first protrusion 18 to move, and then the first protrusion 18 drives the adjusting shaft 13 to rotate through the spiral groove 19.
[0028] To achieve stable displacement of the drive block 17, the first adjusting screw 5 and the drive block 17 are rotatably connected by a pushing assembly. The pushing assembly includes a push block 20 slidably connected to one end of the cylinder 12 near the drive block 17. The side of the push block 20 away from the first adjusting screw 5 is fixedly connected to the side wall of the drive block 17, and the side of the drive block 17 near the first adjusting screw 5 is rotatably connected to one end of the first adjusting screw 5. The inner wall of the cylinder 12 near the drive block 17 is uniformly provided with a groove 22, and the push block 20 is uniformly provided with a second protrusion 21 that slides and guides the groove 22 in the circumferential direction.
[0029] It also includes a lateral adjustment assembly, which includes a sliding sleeve 7 movably connected to the outside of the adjustment shaft 13. The outside of the adjustment shaft 13 is uniformly surrounded by a second limiting protrusion 14. The inner side of the sliding sleeve 7 is slidably guided to the drive block 17. The lower end of the lower clamp 4 is fixedly connected to the top of the sliding sleeve 7. Both sides of the upper end of the fixing frame 2 are provided with fan-shaped sliding grooves 10. The inner side of the sliding groove 10 is slidably connected to a fan-shaped slider 9. The center of the sliding groove 10 and the slider 9 falls on the axis of the adjustment shaft 13. The sliding displacement direction of the slider 9 is the displacement around the axis of the adjustment shaft 13. One of the sliders 9 is threadedly connected to a second adjusting screw 6. One end of the second adjusting screw 6 is rotatably connected to the side wall of the lower clamp 4. Rotating the second adjusting screw 6 will drive the lower clamp 4 to move axially along the adjustment shaft 13.
[0030] To further increase the stability of the lower clamp 4, a telescopic rod 8 is fixedly installed on the side wall of the slider 9 away from the second adjusting screw 6, and the end of the telescopic rod 8 away from the slider 9 is fixedly connected to the side of the lower clamp 4 away from the second adjusting screw 6.
[0031] To increase the stability of the slider 9, a first limiting protrusion 11 is provided on the inner wall of the slide groove 10, and the slider 9 slides and is guided by the first limiting protrusion 11.
[0032] In use, the fixed base plate 1 is first installed at a suitable height. When the tilt angle of the clamping component needs to be adjusted, the first adjusting screw 5 is turned to drive the push block 20 to move. Since the limit of the groove 22 and the second protrusion 21, the push block 20 will not rotate with the first adjusting screw 5. Thus, the push block 20 smoothly pushes the drive block 17 to move. The drive block 17 drives the first protrusion 18 to move inside the blind hole 16. The first protrusion 18 drives the adjusting shaft 13 to rotate through the swivel. The adjusting shaft 13 achieves the change of the tilt angle of the clamping component through the cooperation of the second limiting protrusion 14 and the sliding sleeve 7. Moreover, when the clamping component rotates, it will drive the second adjusting screw 6, the slider 9, and the telescopic rod 8 to rotate synchronously to adapt. The second adjusting screw 6 can be rotated to drive the lower clamp 4 to move and achieve the adjustment of the lateral displacement. Finally, the upper clamp 3 is opened and the pipe is placed on the lower clamp 4. The upper clamp 3 is fixed to achieve the fixation of the pipe.
[0033] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claims. The scope of protection of this utility model is defined by the appended claims and their equivalents.
Claims
1. An installation structure for an experimental pure water delivery pipeline, comprising a fixed base plate (1) and a fixed frame (2) arranged on one side of the fixed base plate (1), characterized in that: The upper end of the fixing frame (2) is provided with a clamping assembly for fixing the pipeline, the clamping assembly comprises a lower clamp (4) arranged on the fixing frame (2), the top of the lower clamp (4) is fixed with an upper clamp (3) through bolts, and the opposite sides of the upper clamp (3) and the lower clamp (4) are provided with arc recesses matched with the pipeline; The lower end of the fixing frame (2) is provided with an inclination adjusting assembly for adjusting the inclination angle of the clamping assembly, the inclination adjusting assembly comprises an adjusting shaft (13) rotatably arranged at the lower end of the fixing frame (2), the bottom of the lower clamp (4) is connected to the upper end of the adjusting shaft (13), one end of the adjusting shaft (13) is provided with a blind hole (16), the inner wall of the blind hole (16) is provided with a spiral groove (19), the blind hole (16) is slidably connected with a driving block (17), the side wall of the driving block (17) is fixedly provided with a first protrusion (18) slidably guided matched with the spiral groove (19), one side of the lower end of the fixing frame (2) is fixedly provided with a cylinder (12) corresponding to the driving block (17), the inner side of the cylinder (12) is threadedly connected with a first adjusting screw (5) away from the driving block (17), one end of the first adjusting screw (5) close to the driving block (17) is rotatably connected with the side wall of the driving block (17), so that when the first adjusting screw (5) is rotated, the driving block (17) drives the first protrusion (18) to displace, and then the first protrusion (18) drives the adjusting shaft (13) to rotate through the spiral groove (19).
2. The installation structure for an experimental pure water delivery pipe according to claim 1, characterized by: The first adjusting screw (5) and the driving block (17) are rotatably connected through a pushing assembly, the pushing assembly comprises a pushing block (20) slidably connected to the inner side of the cylinder (12) close to the driving block (17), the side of the pushing block (20) away from the first adjusting screw (5) is fixedly connected with the side wall of the driving block (17), and the side of the driving block (17) close to the first adjusting screw (5) is rotatably connected with one end of the first adjusting screw (5).
3. The installation structure for an experimental pure water delivery pipe according to claim 2, characterized by: The inner wall of the inner side of the cylinder (12) close to the driving block (17) is uniformly provided with a groove (22), and the circumferential direction of the pushing block (20) is uniformly provided with a second protrusion (21) slidably guided matched with the groove (22).
4. The installation structure for an experimental pure water delivery pipe according to claim 1, characterized by: The lower end of the fixing frame (2) is provided with a through groove (15) corresponding to the adjusting shaft (13), the lower end of the lower clamp (4) extends downward through the through groove (15), and the width of the through groove (15) is greater than the thickness of the lower clamp (4).
5. The installation structure for an experimental pure water delivery pipe according to claim 1, characterized by: The lateral adjusting assembly comprises a sliding sleeve (7) movably connected to the outside of the adjusting shaft (13), the outside of the adjusting shaft (13) is uniformly provided with a second limiting convex strip (14), the inside of the sliding sleeve (7) is slidably guided with a driving block (17), the lower end of the lower hoop (4) is fixedly connected with the top of the sliding sleeve (7), the both sides of the upper end of the fixed frame (2) are provided with a fan-shaped sliding groove (10), the inside of the sliding groove (10) is slidably connected with a fan-shaped sliding block (9), the center of the sliding groove (10) and the sliding block (9) falls on the axis of the adjusting shaft (13), and the sliding displacement direction of the sliding block (9) is the displacement around the axis of the adjusting shaft (13), one of the sliding blocks (9) is threadedly connected with a second adjusting screw (6), and one end of the second adjusting screw (6) is rotatably connected with the side wall of the lower hoop (4), so that the rotation of the second adjusting screw (6) drives the lower hoop (4) to displace along the axial direction of the adjusting shaft (13).
6. The installation structure for an experimental pure water delivery pipe according to claim 5, characterized by: The side wall of the sliding block (9) away from the second adjusting screw (6) is fixedly provided with a telescopic rod (8), and one end of the telescopic rod (8) away from the sliding block (9) is fixedly connected with the side of the lower hoop (4) away from the second adjusting screw (6).
7. The installation structure for an experimental pure water delivery pipe according to claim 6, characterized by: The inner wall of the sliding groove (10) is provided with a first limiting convex strip (11), and the sliding block (9) is slidably guided with the first limiting convex strip (11).