Anti-slip and anti-leakage pipe fitting and vertical pipe drainage system with the pipe fitting

Through the design of anti-slip and anti-leakage pipe fittings, the use of hydraulic cylinders and magnets to stabilize the valve, combined with the conveying mechanism to clean dust and moisture, and the support mechanism to increase the connection stability, the problems of valve vibration and rust are solved, and the safety and stability of the building drainage system are improved.

CN115822047BActive Publication Date: 2025-09-09SHENTONG SPONGE CITY TECH (JIANGSU) CO LTD
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Patent Information

Application Number
CN202211344792.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-10-31
Publication Date
2025-09-09
Estimated Expiration
2042-10-31

AI Technical Summary

Technical Problem

In existing building drainage pipe systems, valves vibrate due to the rapid flow of liquid, causing the bolts at the connections to loosen, posing a safety hazard. In addition, the valves are easily contaminated by dust and moisture, causing rust.

Method used

Anti-slip and anti-leakage fittings are used, including riser fittings and pipes. The guide rods and magnets are driven by hydraulic cylinders to repel each other and stabilize the valve. The conveying mechanism cleans dust and moisture through the nozzle. The support mechanism increases the stability of the connection.

Benefits of technology

It effectively avoids the potential safety hazards caused by valve vibration, prevents the connection from falling off, automatically cleans the stains on the valve surface, and improves the safety and stability of the drainage system.

✦ Generated by Eureka AI based on patent content.

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    Figure CN115822047B_ABST
Patent Text Reader

Abstract

A kind of anti-slip and anti-leakage pipe fitting includes a pipe and a vertical pipe fitting. The vertical pipe fitting is provided with a through cavity in the middle and at least two connection ports. The outer end surface of the connection port at the lower end of the vertical pipe fitting is provided with a first groove, and the upper end of the pipe is inserted into the first groove. The pipes are arranged vertically along the building wall, and the water collection tank is arranged on the eaves at the upper end of the building. On rainy days, rainwater is first collected in the water collection tank, and then falls along the pipe to the position of the anti-slip and anti-leakage pipe fitting. After passing through the anti-slip and anti-leakage pipe fitting, it continues to fall along the pipe to the ground. A valve is set in the middle of the two pipes to facilitate the control of the drainage opening. Moreover, the direction of the drainage pipe can be changed by the anti-slip and anti-leakage pipe fitting, and can be flexibly adjusted according to the structure of the building.
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Description

Technical Field

[0001] The present invention relates to the technical field of building drainage systems, and in particular to an anti-slip and anti-leakage pipe fitting and a vertical pipe drainage system having the pipe fitting. Background Art

[0002] Building drainage systems require components such as indoor PVC drainage pipes and exterior rainwater pipes. Regardless of the drainage system, valves must be installed in the pipes to control throttling and flexibly adjust the flow direction. However, if the liquid flows too quickly through the valve, the valve can vibrate and cause the connected pipes to shake as a whole, easily loosening the bolts at the connection and posing a safety hazard.

[0003] In order to solve the above problems, the present invention proposes an anti-slip and anti-leakage pipe fitting and a vertical pipe drainage system having the pipe fitting. Summary of the Invention

[0004] (1) Technical problems to be solved

[0005] The purpose of the present invention is to overcome the problems in the prior art, adapt to actual needs, and provide anti-slip and anti-leakage pipe fittings and a vertical pipe drainage system with the pipe fittings to solve the above technical problems.

[0006] (2) Technical solution

[0007] In order to achieve the purpose of the present invention, the technical solution adopted by the present invention is: an anti-slip and anti-leakage pipe fitting, including a pipe and a riser pipe fitting, the riser pipe fitting is provided with a through cavity in the middle part and at least two connection ports, and the outer end surface of the connection port located at the lower end of the riser pipe fitting is provided with a first groove, and the upper end part of the pipe is socketed in the first groove.

[0008] A vertical pipe drainage system includes an anti-slip and anti-leakage pipe fitting, a water collecting trough, a valve and a bottom plate, wherein the water collecting trough is connected to the upper end of the anti-slip and anti-leakage pipe fitting, the valve is connected to the lower end of the anti-slip and anti-leakage pipe fitting, and the bottom plate is located below the valve. One end surface of the bottom plate is connected to a pushing mechanism, one end surface of the pushing mechanism is connected to a conveying mechanism and a supporting mechanism, and a valve is provided above the pushing mechanism. The pushing mechanism includes a hydraulic cylinder, the lower end of the hydraulic cylinder is connected to the upper end surface of the bottom plate, and the output end of the hydraulic cylinder is connected to a guide rod, the upper end surface of the guide rod abuts against a compressed air pipe, connecting holes are provided on both sides of the lower side of the compressed air pipe, and a first spring body is connected to the bottom of the compressed air pipe, the upper end of the first spring body is connected to an output rod, the output rod is slidably matched with the compressed air pipe, and the upper end surface of the output rod is connected to a first magnet, the first magnet is provided with a second magnet opposite to the first magnet, and the second magnet is internally sleeved on the lower end of the valve; the upper end surface of the valve is provided with a second groove, and a sealing ring is provided inside the second groove.

[0009] Preferably, the conveying mechanism includes a conveying pipe, one end of the conveying pipe is connected to the connecting hole, and the other end of the conveying pipe is connected to a first shell, nozzles are evenly connected to the inner side of the first shell, and a first protective shell is connected in the middle of the inner side of the first shell, and a second shell is arranged on both sides of the first shell relative to each other, and a second protective shell is connected in the middle of the inner side of the second shell, and slide grooves are equidistantly provided on both sides of the first protective shell, and a second spring body is connected to the outer periphery of the slide groove, one end of the second spring body is connected to both sides of the second protective shell, and a sliding rod is equidistantly connected to both sides of the second protective shell, the sliding rod is wound around the inside of the second spring body, and the sliding rod is slidably matched with the slide groove, the outer surfaces of the first shell and the second shell are sleeved with a first arc plate and a second arc plate, the first arc plate is supported on the second arc plate by a third spring body, and one end of the nozzle is inclined upward to the valve.

[0010] Preferably, the support mechanism includes a support plate, which is connected to the outer surface of the lower end of the compressed air pipe, and the upper ends of both sides of the support plate are connected to support rods, the upper ends of the support rods are connected to a card shell, and rotating grooves are opened on both sides of the upper end of the card shell, and the rotating grooves are connected to the card wheels through the rotating shaft.

[0011] Preferably, both sides of the valve are connected with a first connecting pipe and a second connecting pipe, the upper outer surface of the second connecting pipe abuts against the outer side of the blade of the card wheel, and the lower outer surface of the second connecting pipe abuts against the inner surface of the card shell.

[0012] (3) Beneficial effects:

[0013] A. The pipes are arranged vertically along the building walls, and the trough is arranged on the eaves of the building. On rainy days, rainwater is first collected in the trough, and then falls along the pipes to the position of the anti-drop and anti-leakage pipe fittings. After passing through the anti-drop and anti-leakage pipe fittings, it continues to fall along the pipes to the ground. The valve is set in the middle of the two pipes to facilitate the control of the drainage opening. Moreover, the anti-drop and anti-leakage pipe fittings can change the direction of the drainage pipe and can be flexibly adjusted according to the structure of the building;

[0014] B. The valve will still vibrate when diverting flow through the emergency pipeline, which will also cause the first connecting pipe and the second connecting pipe to vibrate slightly as a whole. The hydraulic cylinder on the pushing mechanism can drive the guide rod upward. The compressed air pipe, the output rod, and the first magnet will move upward under the push of the guide rod. The first magnet repels the lower end surface of the second magnet, thereby ensuring the stability of the valve and preventing the first and second connecting pipes from vibrating as a whole due to valve vibration, thereby improving safety and security.

[0015] C. The conveying mechanism pushes the compressed air pipe upward through the hydraulic cylinder. (Before starting the conveying mechanism, the second spring body on the first protective shell and the second protective shell will be pressed against the upper outer surface of the valve in advance. During the pressing, the slide rod slides inside the slide groove and can be limited to effectively prevent the first protective shell and the second protective shell from deviating and causing unstable fixation. The first protective shell and the second protective shell are supported on the first shell and the second shell. Because the first magnetic part repels the second magnetic part, the output rod will not move to one side, allowing the output rod under force to slide inside the compressed air pipe and be squeezed to one side by the first spring body. The output rod moves downward to generate pressurized gas, which will be delivered to the inside of the first shell and the second shell through the conveying pipe on the connecting hole. The first shell and the second shell are The gas inside will be guided to the outer surface of the valve through the nozzle. As the nozzle guides the gas upward, the dust and moisture on the outer surface of the valve will be blown off, thus avoiding the valve from being rusted due to stains, and then the gas will be blown into the filter bag (the filter bag is first sleeved on the outer surfaces of the first and second shells by the filter bag opening, and then the filter bag is pulled outward by the first arc plate, the second arc plate, and the third spring body until it exceeds the diameter of the first and second shells, and can be sleeved on the lower ends of the outer surfaces of the first and second shells, and then tightened by the third spring body and pressed tightly against the outer surfaces of the first and second shells, so that the filter bag can be easily removed and replaced). The effect of the first magnet repelling the second magnet can clean the dust and moisture on the outer surface of the valve, thus avoiding the valve from being rusted due to stains, and the filter bag can be automatically cleaned.

[0016] D. In the hydraulic cylinder driving the guide rod, the support plate on the support mechanism is started to move upward at the same time, and the support rod and the card shell are driven, so that the card wheel on the card shell contacts the outer surface of the lower part of the second connecting tube. The multiple blades on the card wheel will move upward through the hydraulic cylinder, allowing the card wheel to rotate on the rotating shaft on the rotating groove. The blades allow the second connecting tube to enter the card shell, which can effectively increase the stability and safety of the second connecting tube during operation, and cooperate with the pushing mechanism to avoid excessive limitation of the second connecting tube or causing the second connecting tube to fall off. BRIEF DESCRIPTION OF THE DRAWINGS

[0017] Figure 1 A three-dimensional diagram of the anti-slip and anti-leakage pipe fitting of the present invention;

[0018] Figure 2 A schematic diagram of the first groove of the anti-slip and anti-leakage pipe of the present invention;

[0019] Figure 3 It is a schematic diagram of the standpipe drainage system of the present invention;

[0020] Figure 4 This is a schematic structural diagram of the support rod of the anti-slip and anti-leakage pipe fitting of the present invention;

[0021] Figure 5It is a structural schematic diagram of the driving mechanism of the standpipe drainage system of the present invention;

[0022] Figure 6 It is a structural schematic diagram of the conveying mechanism of the standpipe drainage system of the present invention;

[0023] Figure 7 A partial enlarged view of the chute and the second spring body of the vertical pipe drainage system of the present invention;

[0024] Figure 8 A partial enlarged view of the first curved plate and the second curved plate of the vertical pipe drainage system of the present invention;

[0025] Figure 9 A partial enlarged view of the support mechanism of the standpipe drainage system of the present invention;

[0026] Figure 10 This is a partial enlarged view of the valve of the standpipe drainage system of the present invention.

[0027] The reference numerals are as follows:

[0028] 1-base plate, 2-propelling mechanism, 21-hydraulic cylinder, 22-guide rod, 23-compressed air pipe, 24-connecting hole, 240-first spring body, 25-output rod, 26-first magnetic member, 27-second magnetic member, 3-conveying mechanism, 31-conveying pipe, 32-first shell, 321-second shell, 33-nozzle, 34-first protective shell, 341-chute, 342-second spring body, 35-second protective shell, 351 -sliding rod, 36-first arc plate, 361-second arc plate, 362-third spring body, 4-support mechanism, 41-support plate, 42-support rod, 43-card shell, 44-rotation groove, 45-card wheel, 5-valve, 51-first connecting pipe, 52-second connecting pipe, 53-second groove, 54-sealing ring, 100-pipe, 200-riser pipe fitting, 300-connecting port, 301-first groove, 400-water collecting tank. DETAILED DESCRIPTION

[0029] The technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments.

[0030] The following is combined with Figure 1-10 The present invention is further described with examples:

[0031] In this embodiment, Figure 1-10As shown, an anti-slip and anti-leakage pipe fitting includes a pipe 100 and a riser pipe fitting 200. The riser pipe fitting 200 has a through cavity in the middle and at least two connection ports 300. The outer end surface of the connection port 300 located at the lower end of the riser pipe fitting 200 is provided with a first groove 301, and the upper end of the pipe 100 is socketed in the first groove 301. The connection port 300 at the lower part of the riser pipe fitting 200 will have a greater impact on the upper end surface of the pipe 100 below due to drainage impact or large-flow full-pipe drainage. Therefore, a first groove 301 is opened in the middle of the connection port 300. The upper end of the pipe 100 is inserted into the first groove 301, and then the inner wall of the connection port 300 is located on the inner side of the pipe 100. Therefore, water will flow into the pipe 100 along the inner wall of the connection port 300, avoiding impact on the pipe 100 and preventing the connection between the riser pipe fitting 200 and the pipe 100, which is the weakest and most easily impacted, from falling off and leaking during drainage.

[0032] A vertical pipe drainage system includes an anti-slip and anti-leakage pipe fitting, a water collection tank 400, a valve 5 and a bottom plate 1, wherein the water collection tank 400 is connected to the upper end of the anti-slip and anti-leakage pipe fitting, the valve 5 is connected to the lower end of the anti-slip and anti-leakage pipe fitting, and the bottom plate 1 is located below the valve 5. One end surface of the bottom plate 1 is connected to a pushing mechanism 2, and one end surface of the pushing mechanism 2 is connected to a conveying mechanism 3 and a supporting mechanism 4, and a valve 5 is provided above the pushing mechanism 2. The pushing mechanism 2 includes a hydraulic cylinder 21, the lower end of the hydraulic cylinder 21 is connected to the upper end surface of the bottom plate 1, and the output end of the hydraulic cylinder 21 is connected to a guide rod 22. The upper end of the guide rod 22 abuts against the compressed air pipe 23. Connection holes 24 are formed on both sides of the lower portion of the compressed air pipe 23. A first spring 240 is connected to the bottom of the compressed air pipe 23. The upper end of the first spring 240 is connected to an output rod 25, which slidably engages the compressed air pipe 23. A first magnet 26 is connected to the upper end of the output rod 25. Opposite to the first magnet 26 is a second magnet 27, which is internally sleeved around the lower end of the valve 5. A second groove 53 is formed on the upper end of the valve 5, housing a sealing ring 54. The lower end of the pipe 100 is inserted into the second groove 53, with a gap between the lower end of the pipe 100 and the bottom of the second groove 53. When rain falls, it will generate vibrations, and the hydraulic cylinder 21 on the pushing mechanism 2 will drive the guide rod 22 to move upward. The compressed air pipe 23, the output rod 25, and the first magnetic part 26 will move upward through the push of the guide rod 22. The first magnetic part 26 repels the lower end surface of the second magnetic part 27, thereby ensuring the stability of the valve 5 and avoiding the overall vibration of the first connecting pipe 51 and the second connecting pipe 52 caused by the vibration of the valve 5, thereby improving safety and security.

[0033] In this embodiment, the conveying mechanism 3 includes a conveying pipe 31, one end of the conveying pipe 31 is connected to the connecting hole 24, and the other end of the conveying pipe 31 is connected to a first shell 32, the inner side of the first shell 32 is evenly connected to the nozzle 33, and the middle of the inner side of the first shell 32 is connected to a first protective shell 34, and the two sides of the first shell 32 are opposite to each other. The middle of the inner side of the second shell 321 is connected to a second protective shell 35, and the two sides of the first protective shell 34 are equidistantly provided with a slide groove 341, and the outer periphery of the slide groove 341 is connected to The second spring body 342 has one end connected to the two side surfaces of the second protective shell 35. The two side surfaces of the second protective shell 35 are equidistantly connected with sliding rods 351. The sliding rod 351 is wound around the interior of the second spring body 342, and the sliding rod 351 slides in conjunction with the slide groove 341. The outer surfaces of the first shell 32 and the second shell 321 are sleeved with a first arc plate 36 and a second arc plate 361. The first arc plate 36 is supported on the second arc plate 361 by the third spring body 362. One end of the nozzle 33 is tilted upward toward the valve 5. The conveying mechanism 3 pushes the compressed air pipe 23 upward through the hydraulic cylinder 21. (Before starting the conveying mechanism 3, the second spring body 342 on the first protective shell 34 and the second protective shell 35 will be pressed against the upper outer surface of the valve 5 in advance. During the pressing, the sliding rod 351 slides inside the sliding groove 341, which can be limited to effectively prevent the first protective shell 34 and the second protective shell 35 from deviating and causing unstable fixation. The first protective shell 34 and the second protective shell 35 are supported on the first shell 32 and the second shell 321.) Because the first magnetic part 26 repels the second magnetic part 27, the output rod 25 will not move to one side anymore, allowing the output rod 25 under force to slide inside the compressed air pipe 23 and be squeezed to one side by the first spring body 240. The output rod 25 moves downward to generate pressurized gas, which will be transported to the inside of the first shell 32 and the second shell 321 through the conveying pipe 31 on the connecting hole 24. The gas in the first and second shells 32 and 321 will be directed to the outer surface of the valve 5 through the nozzle 33. Since the nozzle 33 directs the gas upward, the dust and moisture on the outer surface of the valve 5 will be blown into the filter bag to prevent the dust and moisture from being contaminated and causing valve corrosion. (The filter bag is first placed on the outer surface of the first and second shells 32 and 321, and then the first arc plate 36, the second arc plate 361, and the third spring body 362 are used to pull the filter bag outward to exceed the diameter of the first and second shells 32 and 321, so that it can be placed on the lower end of the outer surface of the first and second shells 32 and 321. The third spring body 362 is used to tighten the filter bag and press it against the outer surface of the first and second shells 32 and 321, so that the filter bag can be easily removed and replaced.) The effect of the first magnetic member 26 repelling the second magnetic member 27 can be used to clean the dust and moisture on the outer surface of the valve 5, prevent the dust from being contaminated and causing valve corrosion, and the filter bag can be automatically cleaned.

[0034] In this embodiment, the support mechanism 4 includes a support plate 41 connected to the lower outer surface of the compressed air pipe 23. Support rods 42 are connected to the upper ends of the support plate 41. A housing 43 is connected to the upper ends of the support rods 42. Rotation slots 44 are defined on both sides of the housing 43's upper ends. The rotation slots 44 are connected to a pulley 45 via a rotation axis. When the hydraulic cylinder 21 drives the guide rod 22, the support plate 41 on the support mechanism 4 is simultaneously activated to move upward, driving the support rods 42 and the housing 43. This causes the pulley 45 on the housing 43 to contact the lower outer surface of the second connecting pipe 52. Multiple blades on the pulley 45 are moved upward by the hydraulic cylinder 21, causing the pulley 45 to rotate about the rotation axis in the rotation slots 44. These blades allow the second connecting pipe 52 to enter the housing 43. This effectively increases stability and safety during operation of the second connecting pipe 52. Furthermore, the hydraulic cylinder 21 cooperates with the pushing mechanism 2 to prevent excessive restriction of the second connecting pipe 52 or the possibility of it falling off.

[0035] In this embodiment, the upper outer surface of the second connecting tube 52 contacts the outer side of the blades of the clamping wheel 45, while the lower outer surface of the second connecting tube 52 contacts the inner surface of the clamping housing 43. The second connecting tube 52 is suspended within the rotation groove 44, allowing the clamping wheel 45 to rotate about the rotation axis of the rotation groove 44. The blades allow the second connecting tube 52 to enter the clamping housing 43, effectively increasing the stability and safety of the second connecting tube 52 during operation.

[0036] A vertical pipe drainage system includes anti-slip and anti-leakage pipe fittings, a first water pipe 20, a water collection trough 30, and a second water pipe 40. The first water pipe 20 is connected to the upper end of the valve 5, the second water pipe 40 is connected to the outer end of the second connecting pipe 52, and the water collection trough 30 is connected to the upper end of the first water pipe 20. The pipes 100 are arranged vertically along the building walls, and the water collection trough 30 is arranged on the eaves at the upper end of the building. On rainy days, rainwater is first collected in the water collection trough 30, then falls along the pipes 100 to the position of the anti-slip and anti-leakage pipe fittings, passes through the anti-slip and anti-leakage pipe fittings, and then continues to fall along the pipes 100 to the ground. The valve 5 is set in the middle of the two pipes 100 to facilitate the control of the drainage opening. Moreover, the anti-slip and anti-leakage pipe fittings can change the direction of the drainage pipe, which can be flexibly adjusted according to the structure of the building.

[0037] Beneficial effects of the present invention:

[0038] The pipes 100 are arranged vertically along the walls of the building, and the trough 30 is arranged on the eaves of the upper end of the building. On rainy days, rainwater is first collected in the trough 30, and then falls along the pipes 100 to the position of the anti-detachment and anti-leakage fittings. After passing through the anti-detachment and anti-leakage fittings, it continues to fall along the pipes 100 to the ground. The valve 5 is set in the middle of the two pipes 100 to facilitate the control of the drainage opening. Moreover, the direction of the drainage pipe can be changed through the anti-detachment and anti-leakage fittings, and can be flexibly adjusted according to the structure of the building.

[0039] The conveying mechanism 3 pushes the compressed air pipe 23 upward through the hydraulic cylinder 21. (Before starting the conveying mechanism 3, the second spring body 342 on the first protective shell 34 and the second protective shell 35 will be pressed against the upper outer surface of the valve 5 in advance. During the pressing, the sliding rod 351 slides inside the sliding groove 341, which can be limited to effectively prevent the first protective shell 34 and the second protective shell 35 from deviating and causing unstable fixation. The first protective shell 34 and the second protective shell 35 are supported on the first shell 32 and the second shell 321.) Because the first magnetic part 26 repels the second magnetic part 27, the output rod 25 will not move to one side, allowing the output rod 25 under force to slide inside the compressed air pipe 23 and be squeezed to one side by the first spring body 240. The output rod 25 moves downward to generate pressurized gas, which will be transported to the inside of the first shell 32 and the second shell 321 through the conveying pipe 31 on the connecting hole 24. The gas within the first and second housings 32, 321 is directed through the nozzle 33 to the outer surface of the valve 5. Since the nozzle 33 directs the gas upward, dust and moisture on the outer surface of the valve 5 are blown into the filter bag (the filter bag is first placed on the outer surfaces of the first and second housings 32, 321, and then pulled outward by the first curved plate 36, the second curved plate 361, and the third spring 362 until it exceeds the diameter of the first and second housings 32, 321, and can be placed on the lower ends of the outer surfaces of the first and second housings 32, 321. The third spring 362 is then used to tighten the filter bag and press it against the outer surfaces of the first and second housings 32, 321, making it easy to remove and replace the filter bag). This is beneficial because the first magnet 26 repels the second magnet 27, thereby cleaning dust and moisture from the outer surface of the valve 5, preventing stains from causing valve corrosion, and enabling automatic cleaning.

[0040] When the hydraulic cylinder 21 drives the guide rod 22, the support plate 41 on the support mechanism 4 is started to move upward, and the support rod 42 and the card shell 43 are driven, so that the card wheel 45 on the card shell 43 is in contact with the lower outer surface of the second connecting tube 52. The multiple blades on the card wheel 45 will move upward through the hydraulic cylinder 21, allowing the card wheel 45 to rotate on the rotating shaft on the rotating groove 44. The blades allow the second connecting tube 52 to enter the card shell 43, which can effectively increase stability and improve safety when the second connecting tube 52 works, cooperate with the pushing mechanism 2, and avoid excessive limitation of the second connecting tube 52 or causing the second connecting tube 52 to fall off.

[0041] Working principle:

[0042] The pipes 100 are arranged vertically along the walls of the building, and the trough 30 is arranged on the eaves of the upper end of the building. On rainy days, rainwater is first collected in the trough 30, and then falls along the pipes 100 to the position of the anti-detachment and anti-leakage fittings. After passing through the anti-detachment and anti-leakage fittings, it continues to fall along the pipes 100 to the ground. The valve 5 is set in the middle of the two pipes 100 to facilitate the control of the drainage opening. Moreover, the direction of the drainage pipe can be changed through the anti-detachment and anti-leakage fittings, and can be flexibly adjusted according to the structure of the building.

[0043] The conveying mechanism 3 pushes the compressed air pipe 23 upward through the hydraulic cylinder 21. (Before starting the conveying mechanism 3, the second spring body 342 on the first protective shell 34 and the second protective shell 35 will be pressed against the upper outer surface of the valve 5 in advance. During the pressing, the sliding rod 351 slides inside the sliding groove 341, which can be limited to effectively prevent the first protective shell 34 and the second protective shell 35 from deviating and causing unstable fixation. The first protective shell 34 and the second protective shell 35 are supported on the first shell 32 and the second shell 321.) Because the first magnetic part 26 repels the second magnetic part 27, the output rod 25 will not move to one side, allowing the output rod 25 under force to slide inside the compressed air pipe 23 and be squeezed to one side by the first spring body 240. The output rod 25 moves downward to generate pressurized gas, which will be transported to the inside of the first shell 32 and the second shell 321 through the conveying pipe 31 on the connecting hole 24. The gas within the first and second housings 32, 321 is directed through the nozzle 33 to the outer surface of the valve 5. Since the nozzle 33 directs the gas upward, dust and moisture on the outer surface of the valve 5 are blown into the filter bag (the filter bag is first placed on the outer surfaces of the first and second housings 32, 321, and then pulled outward by the first curved plate 36, the second curved plate 361, and the third spring 362 until it exceeds the diameter of the first and second housings 32, 321, and can be placed on the lower ends of the outer surfaces of the first and second housings 32, 321. The third spring 362 is then used to tighten the filter bag and press it against the outer surfaces of the first and second housings 32, 321, making it easy to remove and replace the filter bag). This is beneficial because the first magnet 26 repels the second magnet 27, thereby cleaning dust and moisture from the outer surface of the valve 5, preventing stains from causing valve corrosion, and enabling automatic cleaning.

[0044] When the hydraulic cylinder 21 drives the guide rod 22, the support plate 41 on the support mechanism 4 is started to move upward, and the support rod 42 and the card shell 43 are driven, so that the card wheel 45 on the card shell 43 is in contact with the lower outer surface of the second connecting tube 52. The multiple blades on the card wheel 45 will move upward through the hydraulic cylinder 21, allowing the card wheel 45 to rotate on the rotating shaft on the rotating groove 44. The blades allow the second connecting tube 52 to enter the card shell 43, which can effectively increase stability and improve safety when the second connecting tube 52 works, cooperate with the pushing mechanism 2, and avoid excessive limitation of the second connecting tube 52 or causing the second connecting tube 52 to fall off.

[0045] The embodiments disclosed in the present invention are preferred embodiments, but are not limited to them. Ordinary technicians in this field can easily understand the spirit of the present invention based on the above embodiments and make different extensions and changes. As long as they do not deviate from the spirit of the present invention, they are all within the scope of protection of the present invention.

Claims

1. A vertical pipe drainage system, comprising anti-slip and anti-leakage pipe fittings, a water collection tank (400), a valve (5) and a bottom plate (1), wherein: The water collecting tank (400) is connected to the upper end of the anti-slip and anti-leakage pipe fitting, the valve (5) is connected to the lower end of the anti-slip and anti-leakage pipe fitting, and the bottom plate (1) is located below the valve (5). The invention is characterized in that one end face of the bottom plate (1) is connected to a pushing mechanism (2), one end face of the pushing mechanism (2) is connected to a conveying mechanism (3) and a supporting mechanism (4), and a valve (5) is provided above the pushing mechanism (2), the pushing mechanism (2) includes a hydraulic cylinder (21), the lower end of the hydraulic cylinder (21) is connected to the upper end face of the bottom plate (1), and the output end of the hydraulic cylinder (21) is connected to a guide rod (22), the upper end face of the guide rod (22) is abutted against a compressed air pipe (23), and connecting holes (24) are provided on both sides below the compressed air pipe (23), and the compressed air pipe (2 3) The inner bottom is connected to a first spring body (240), the upper end of the first spring body (240) is connected to an output rod (25), the output rod (25) is slidably matched with the compressed air pipe (23), and the upper end surface of the output rod (25) is connected to a first magnet (26), the first magnet (26) is provided with a second magnet (27) opposite to the first magnet (26), and the second magnet (27) is sleeved on the lower end of the valve (5); the upper end surface of the valve (5) is provided with a second groove (53), and a sealing ring (54) is provided inside the second groove (53); the conveying mechanism (3) includes a conveying pipe (31), one end of the conveying pipe (31) is connected to the connecting hole (24), and the other end of the conveying pipe (31) is connected to the first shell (32) The first shell (32) is evenly connected to the inner side of the first shell (32), and the first protective shell (34) is connected to the middle of the inner side of the first shell (32), and the second shell (321) is opposite to the two side surfaces of the first shell (32), and the second protective shell (35) is connected to the middle of the inner side of the second shell (321), and the first protective shell (34) is equidistantly provided with a slide groove (341) on both sides of the first protective shell (34), and the outer periphery of the slide groove (341) is connected to a second spring body (342), one end of the second spring body (342) is connected to the two side surfaces of the second protective shell (35), and the two side surfaces of the second protective shell (35) are equidistantly connected to a slide rod (351), and the slide rod (351) is wound around the inside of the second spring body (342), and the slide rod (351) The first shell (32) and the second shell (321) are slidably matched with each other, and the outer surfaces of the first shell (32) and the second shell (321) are sleeved with a first arc plate (36) and a second arc plate (361), and the first arc plate (36) is supported on the second arc plate (361) by a third spring body (362). One end of the nozzle (33) is inclined upward to the valve (5); the anti-slip and anti-leakage pipe fitting comprises a pipe (100) and a vertical pipe fitting (200), and the vertical pipe fitting (200) is provided with a through cavity in the middle and at least two connection ports (300). The outer end surface of the connection port (300) at the lower end of the vertical pipe fitting (200) is provided with a first groove (301), and the upper end of the pipe (100) is socketed in the first groove (301).

2. The vertical pipe drainage system according to claim 1, characterized in that: The support mechanism (4) includes a support plate (41), the support plate (41) is connected to the outer surface of the lower end of the compressed air pipe (23), and the upper ends of both sides of the support plate (41) are connected to support rods (42), the upper ends of the support rods (42) are connected to a card shell (43), and the upper ends of the card shell (43) are provided with rotation grooves (44) on both sides, and the rotation grooves (44) are connected to a card wheel (45) through a rotation shaft.

3. The vertical pipe drainage system according to claim 2, characterized in that: The valve (5) is connected to a first connecting pipe (51) and a second connecting pipe (52) on both sides. The upper outer surface of the second connecting pipe (52) contacts the outer side of the blade of the clamping wheel (45), and the lower outer surface of the second connecting pipe (52) contacts the inner surface of the clamping shell (43).

Citation Information

Patent Citations

  • Leakage-proof pipeline system for building drainage

    CN113529877A