Flood control system water pressure sealing test platform
By designing a water pressure sealing test platform for flood control systems and using components such as a test box, rotating plate, and sealing airbag ring, the accuracy problem of water pressure sealing test of flood control panels was solved, enabling precise testing and stable simulation of flood control panels and avoiding economic losses.
Patent Information
- Application Number
- CN202111344345.5
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2021-11-15
- Publication Date
- 2026-03-06
- Estimated Expiration
- 2041-11-15
AI Technical Summary
The lack of effective means to test the water pressure seal of flood control boards in the current technology leads to the possible use of substandard flood control boards, resulting in economic losses.
A water pressure sealing test platform for a flood control system was designed, including components such as a test box, a rotating plate, a moving plate, a sealing airbag ring, a water tank, a water pump, a spray head, a booster pump, and a solenoid valve. The platform tests the flood control plate by simulating the pressure of rising river water levels to ensure its sealing performance and pressure resistance.
This improves the accuracy and stability of flood control board testing, enabling it to simulate real-world usage scenarios, ensuring the accuracy and practicality of the testing, and preventing the use of substandard boards.
Smart Images

Figure CN115541141B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of flood control equipment testing technology, and in particular to a water pressure sealing testing platform for flood control systems. Background Technology
[0002] Currently, cities typically have flood control plans for the rainy season, especially in the south where there is a lot of rain and rivers run through the city. Flood control dams are usually required on both sides of the river to prevent river flooding. During the continuous rainy season, the water level of urban rivers will continue to rise. Therefore, municipal workers will build high flood control dams on both sides of the river in advance using flood control boards to prevent river water from rushing into the city and causing serious damage to buildings, roads and pedestrians on the banks.
[0003] When constructing flood control dams, it is necessary to use flood control panels that meet the standards for pressure resistance and sealing. This is to prevent the flood control panels from collapsing due to failure to withstand the high water pressure when the water level is high, which could lead to economic losses. Therefore, there is an urgent need for a flood control system water pressure sealing testing platform to test the flood control panels and prevent flood control panels that do not meet the standards from being put into use. Summary of the Invention
[0004] The purpose of this invention is to solve the problems mentioned in the background art, and to propose a water pressure sealing test platform for flood control systems.
[0005] To achieve the above objectives, the present invention adopts the following technical solution:
[0006] A flood control system water pressure sealing testing platform includes a platform body and further includes: a testing box; a rotating plate rotatably connected to the opening of the testing box; a moving plate connected to the lower end of the rotating plate via an electric cylinder; a sealing airbag ring fixedly connected to the outside of the moving plate; a water tank installed on the platform body; a water pump installed on the platform body with its inlet extending to the bottom of the water tank; and a diversion pipe installed inside the testing box near the flood control plate to be tested, with its inlet sealed to the outlet of the water pump. The diversion pipe is disposed on the flood control plate. Near the moving plate; spray nozzles, evenly distributed on the diversion pipe, are used to spray water onto the joints of the flood control plate; a pressure pump is installed on the platform body; a first three-way pipe is located at the end of the detection box away from the flood control plate, wherein a first electromagnetic switching valve is fixedly connected inside the first three-way pipe, the air inlet of the first three-way pipe is connected to the pressure pump through a first air pipe, the two air outlets of the first three-way pipe are respectively connected to a pressure pipe and a second air pipe, the pressure pipe extends into the detection box, and the air outlet of the second air pipe is connected to the air inlet of the sealing airbag ring.
[0007] To improve the stability of the flood control board, preferably, a sleeve is fixedly connected to the side of the detection box away from the pressurization pipe, a top column is slidably connected inside the sleeve, and a telescopic spring is installed inside the sleeve. The two ends of the telescopic spring are fixedly connected to the sleeve and the top column, respectively. A second three-way pipe is fixedly connected to the air outlet of the pressurization pump. One air outlet of the second three-way pipe is sealed to a first air pipe, and the other air outlet of the second three-way pipe is sealed to a third air pipe. The end of the third air pipe away from the second three-way pipe is connected to the air inlet of the sleeve. A second electromagnetic switching valve is fixedly connected inside the second three-way pipe, and a first one-way electromagnetic valve is fixedly connected to the exhaust port of the sleeve.
[0008] To prevent the flood control plate from tilting under high water pressure, four sets of sleeves and top columns are provided, located around the flood control plate, with each sleeve connected in series via a connecting pipe.
[0009] To facilitate precise control of water pressure, preferably, a pressure gauge is fixedly connected to the side of the testing box near the pressurization pipe, and the testing end of the pressure gauge extends into the testing box.
[0010] To facilitate staff in determining the maximum pressure bearing capacity of the flood control plate, a main controller is fixedly connected to the rotating plate. A row of rangefinders is installed at one end of the rotating plate near the flood control plate. The rangefinders are located on the side of the flood control plate away from the diversion pipe. The main controller is electrically connected to the rangefinders and pressure gauges.
[0011] To facilitate increasing the water pressure of the spray nozzles, a booster is further fixedly connected to the lower end of the platform body near the diversion pipe. The inlet and outlet of the booster are respectively sealed to the outlet of the water pump and the inlet of the diversion pipe.
[0012] To further improve the sealing of the connections between the pressure gauge, the pressurizing pipe, the shunt pipe and the test box, the connections between the pressure gauge and the test box, the pressurizing pipe and the test box, and the shunt pipe and the test box are all sealed with sealing components.
[0013] To facilitate water spray testing of the bottom seal of the flood control plate by the lowest water nozzle, preferably, the row of water nozzles at the lowest end of the diversion pipe is inclined downwards.
[0014] To facilitate staff in quickly locating leaks, preferably, the detection box is equipped with a U-shaped groove. The U-shaped groove is located on the side of the flood control plate away from the diversion pipe and is in close contact with the flood control plate. A moisture test strip is slidably connected inside the U-shaped groove.
[0015] To facilitate water recycling, preferably, the detection box is provided with a drain outlet near the top of the water tank, and a second one-way solenoid valve is fixedly connected inside the drain outlet.
[0016] Compared with the prior art, the present invention provides a water pressure sealing test platform for flood control systems, which has the following advantages:
[0017] 1. The water pressure sealing test platform of this flood control system, through the setting of electric cylinder, moving plate, sealing airbag ring and second air pipe, can improve the sealing of the test chamber when pressurizing the water in the test chamber, thereby effectively improving the stability when pressurizing the flood control plate.
[0018] 2. The water pressure sealing test platform of this flood control system can simulate the pressure on the flood control plate when the river water level rises continuously by continuously increasing the water pressure in the test chamber, thus restoring the actual situation on the field and effectively improving the accuracy of the test of the flood control plate.
[0019] The parts not covered in this device are the same as or can be implemented using existing technologies. This invention can simultaneously and accurately test the pressure resistance and sealing performance of flood control boards, and can simulate the scenario when the flood control boards are in use, maximizing the restoration of the actual situation. This effectively improves the accuracy of testing the water pressure and sealing performance of flood control boards, making it highly practical and meeting the needs of use. Attached Figure Description
[0020] Figure 1 This is a schematic diagram of the structure of the flood control system water pressure sealing test platform proposed in this invention;
[0021] Figure 2 The water pressure sealing test platform for flood control systems proposed in this invention Figure 1 A schematic diagram of the structure of part A;
[0022] Figure 3 The water pressure sealing test platform for flood control systems proposed in this invention Figure 1 A structural diagram of section B;
[0023] Figure 4 The water pressure sealing test platform for flood control systems proposed in this invention Figure 1 A structural diagram of section C;
[0024] Figure 5 This is a schematic diagram of the structure of the testing box, flood control plate, rangefinder, and sleeve in the water pressure sealing testing platform for the flood control system proposed in this invention.
[0025] Figure 6 This is a schematic diagram of the structure of the testing box, flood control plate, and U-shaped chute in the water pressure sealing testing platform for the flood control system proposed in this invention;
[0026] Figure 7 This is a schematic diagram of the structure of the diversion pipe, spray head, and sealing component in the water pressure sealing test platform of the flood control system proposed in this invention.
[0027] Figure 8 This is a schematic diagram of the moving plate and sealing airbag ring in the water pressure sealing test platform of the flood control system proposed in this invention;
[0028] Figure 9 This is a schematic diagram of the sleeve, the support, and the telescopic spring in the water pressure sealing test platform of the flood control system proposed in this invention.
[0029] In the diagram: 1. Platform body; 2. Detection box; 201. U-shaped chute; 202. Second one-way solenoid valve; 3. Rotating plate; 4. Main controller; 5. Electric cylinder; 6. Moving plate; 7. Sealing airbag ring; 8. Flood control plate; 9. Water tank; 10. Water pump; 11. Booster; 12. Diverter pipe; 13. Pressurizing pump; 14. Third air pipe; 15. Sleeve; 16. Top column; 17. Telescopic spring; 18. Spray head; 19. Seal; 20. Second tee pipe; 22. Second solenoid switching valve; 23. First air pipe; 25. First tee pipe; 26. Second air pipe; 27. Pressurizing pipe; 28. First solenoid switching valve; 29. Pressure gauge; 30. First one-way solenoid valve; 31. Rangefinder. Detailed Implementation
[0030] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings of the embodiments of the present invention. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments.
[0031] In the description of this invention, it should be understood that the terms "upper", "lower", "front", "rear", "left", "right", "top", "bottom", "inner", "outer", etc., indicate the orientation or positional relationship based on the orientation or positional relationship shown in the accompanying drawings. They are only for the convenience of describing this invention and simplifying the description, and do not indicate or imply that the device or element referred to must have a specific orientation, or be constructed and operated in a specific orientation. Therefore, they should not be construed as limitations on this invention.
[0032] Example 1:
[0033] Reference Figures 1-9The flood control system water pressure sealing test platform includes a platform body 1, and further includes: a test box 2; a rotating plate 3 rotatably connected to the opening of the test box 2; a moving plate 6 connected to the lower end of the rotating plate 3 via an electric cylinder 5; a sealing airbag ring 7 fixedly connected to the outside of the moving plate 6; a water tank 9 installed on the platform body 1; a water pump 10 installed on the platform body 1, with its inlet extending to the bottom of the water tank 9; and a diversion pipe 12 installed inside the test box 2 near the flood control plate 8 to be tested, with its inlet sealed to the outlet of the water pump 10. The diversion pipe 12 is positioned on the flood control plate 8 near the moving plate 6. One side; water nozzles 18, evenly distributed on the diversion pipe 12, are used to spray water onto the joints of the flood control plate 8; a pressure pump 13 is installed on the platform body 1; a first three-way pipe 25 is set at the end of the detection box 2 away from the flood control plate 8, wherein a first electromagnetic conversion valve 28 is fixedly connected inside the first three-way pipe 25, the air inlet of the first three-way pipe 25 is connected to the pressure pump 13 through the first air pipe 23, and the two air outlets of the first three-way pipe 25 are respectively connected to a pressure pipe 27 and a second air pipe 26. The pressure pipe 27 extends into the detection box 2, and the air outlet of the second air pipe 26 is connected to the air inlet of the sealing airbag ring 7.
[0034] In use, the operator first moves the testing platform to the designated working position, then fixes the platform body 1 to improve the stability of the testing box 2 when testing the flood control plate 8. Next, water is poured into the water tank 9, and then power is supplied to the electrical equipment on the testing platform. After preparation, the flood control plate 8 to be tested is installed in the designated position inside the testing box 2. Then, the rotating plate 3 is rotated, causing the moving plate 6 to be positioned inside the testing box 2. Then, the electric cylinder 5 is activated, causing the moving plate 6 to move downwards until its upper surface is level with the upper surface of the flood control plate 8. Finally, the loading is started... The pressure pump 13 connects the second air pipe 26 to the first three-way pipe 25 via the first electromagnetic switching valve 28. The gas produced by the pressure pump 13 then enters the first three-way pipe 25 through the first air pipe 23, then the second air pipe 26 through the first three-way pipe 25, and finally is delivered into the sealing airbag ring 7 via the second air pipe 26. This causes the sealing airbag ring 7 to inflate, sealing the connection between the moving plate 6 and the inner wall of the detection box 2 and the flood control plate 8, thus forming a sealed detection chamber between the detection box 2, the flood control plate 8, and the moving plate 6. Then, the operator starts the water pump 10 to deliver water from the water tank 9 into the diversion pipe 12, which then distributes the water... The water is distributed to each of the spray nozzles 18, and finally sprayed onto the connection of the flood control plate 8 by the spray nozzles 18 for preliminary sealing testing. When the test chamber is full of water, the pressurization pump 13 is restarted. Then, the first electromagnetic switching valve 28 connects the pressurization pipe 27 to the first three-way pipe 25, and the second air pipe 26 is closed. The gas produced by the pressurization pump 13 then enters the pressurization pipe 27 through the first three-way pipe 25 and is delivered into the test chamber through the pressurization pipe 27 to pressurize the water in the test chamber, continuously increasing the pressure exerted by the water on the flood control plate 8. This simulates the pressure exerted on the flood control plate 8 as the river water level rises, enabling the test platform to... The system simulates the forces that the flood control board 8 will withstand during use to improve the accuracy of its testing. As the water pressure increases, the system stops pressurizing when the flood control board 8 deforms. The staff then measures the water pressure at this point to determine whether the pressure resistance of the flood control board 8 meets the standards. By checking whether water flows out of the flood control board 8, the system can determine whether the sealing performance of the flood control board 8 is good. This testing platform can accurately test the pressure resistance and sealing performance of the flood control board 8 simultaneously, simulating the scenario in which the flood control board 8 is used and maximizing the reproduction of the actual situation. This effectively improves the accuracy of the water pressure sealing test of the flood control board 8 and makes it highly practical.
[0035] Example 2:
[0036] Reference Figure 1 , Figure 3 , Figure 5 , Figure 9The flood control system water pressure sealing test platform is basically the same as in Example 1, but with a further improvement: a sleeve 15 is fixedly connected to the side of the test box 2 away from the pressurization pipe 27, a top column 16 is slidably connected inside the sleeve 15, and a telescopic spring 17 is installed inside the sleeve 15. The two ends of the telescopic spring 17 are fixedly connected to the sleeve 15 and the top column 16, respectively. A second three-way pipe 20 is fixedly connected to the air outlet of the pressurization pump 13. One of the air outlets of the second three-way pipe 20 is sealed to the first air pipe 23, and the other air outlet of the second three-way pipe 20 is sealed to the third air pipe 14. The end of the third air pipe 14 away from the second three-way pipe 20 is connected to the air inlet of the sleeve 15. A second electromagnetic conversion valve 22 is fixedly connected inside the second three-way pipe 20. The exhaust port of the sleeve 15 contains... A first one-way solenoid valve 30 is fixedly connected. When testing the flood control plate 8, the pressurization pump 13 is started first, and then the second solenoid switching valve 22 is started. The gas output by the pressurization pump 13 enters the sleeve 15 through the third air pipe 14. Then, the top column 16 moves towards the flood control plate 8 under the push of the gas until it is in close contact with the flood control plate 8. This simulates the rear support column of the flood control plate 8 during use and provides fixed support for the flood control plate 8. After the test is completed, the first one-way solenoid valve 30 in the exhaust port of the sleeve 15 is opened. At this time, the gas in the sleeve 15 will be discharged, and the top column 16 will separate from the flood control plate 8 under the tension of the telescopic spring 17. This makes it easier for the staff to remove the flood control plate 8 and effectively improves the practicality of the testing platform.
[0037] There are four sets of sleeves 15 and top columns 16, which are located around the flood control plate 8. Each sleeve 15 is connected in series with a connecting pipe. By setting four sets of sleeves 15 and top columns 16, and connecting each sleeve 15 in series with a connecting pipe, when supporting the flood control plate 8, the top columns 16 can support the four corners of the flood control plate 8 at the same time, which improves the stability of the flood control plate 8 and prevents the flood control plate 8 from tilting under the action of large water pressure, thus affecting the detection accuracy.
[0038] Example 3:
[0039] Reference Figure 1 , Figure 4 , Figure 5 The flood control system water pressure sealing test platform is basically the same as that in Example 1, but with a further improvement: a pressure gauge 29 is fixedly connected to the side of the test box 2 near the pressurization pipe 27, and the test end of the pressure gauge 29 extends into the test box 2. By setting the pressure gauge 29, it is convenient for staff to intuitively detect the water pressure in the test box 2, thereby facilitating precise control of the water pressure.
[0040] A main controller 4 is fixedly connected to the rotating plate 3. A row of rangefinders 31 is installed on one end of the rotating plate 3 near the flood control plate 8. The rangefinders 31 are located on the side of the flood control plate 8 away from the diversion pipe 12. The main controller 4 is electrically connected to the rangefinders 31 and the pressure gauge 29. By installing a row of rangefinders 31 on the outer side of the rotating plate 3 near the flood control plate 8, the state of the flood control plate 8 can be detected in real time during the inspection. When the flood control plate 8 is deformed and bends outward under the action of water pressure, it will block the ranging beam emitted by the rangefinders 31, thereby shortening the distance measured by the rangefinders 31. Then, the rangefinders 31 transmit the detected data to the main controller 4 in real time. When the data detected by the rangefinders 31 changes, the main controller 4 will store the pressure reading displayed by the pressure gauge 29, so that the staff can know whether the maximum water pressure that the flood control plate 8 can withstand meets the specified value, so as to determine whether the flood control plate 8 is qualified, effectively improving the inspection efficiency of the inspection platform.
[0041] Example 4:
[0042] Reference Figure 1 , Figure 2 , Figure 4 The flood control system water pressure sealing test platform is basically the same as that in Example 3, but with a further improvement: a booster 11 is fixedly connected to the lower end of the platform body 1 near the diversion pipe 12. The inlet and outlet of the booster 11 are respectively sealed to the outlet of the water pump 10 and the inlet of the diversion pipe 12. By setting the booster 11, the water pressure of the water sprayed by the spray head 18 can be increased, which facilitates better sealing test of the gaps in the flood control plate 8 and effectively improves the practicality of the test platform.
[0043] The connection between pressure gauge 29 and test box 2, the connection between pressurizing pipe 27 and test box 2, and the connection between diverter pipe 12 and test box 2 are all sealed by sealing element 19. By setting sealing element 19, the connection between pressure gauge 29, pressurizing pipe 27, diverter pipe 12 and test box 2 can be sealed to prevent water and air leakage, effectively improving the accuracy of testing flood control board 8.
[0044] Example 5:
[0045] Reference Figure 1 , Figure 2 , Figure 7 The flood control system water pressure sealing test platform is basically the same as that in Example 1. However, the following is a further improvement: the row of water nozzles 18 at the bottom of the diversion pipe 12 is all set at an angle downward. By setting the row of water nozzles 18 at the bottom of the diversion pipe 12 at an angle downward, the bottom water nozzles 18 can spray water to test the bottom sealing of the flood control plate 8, which effectively improves the accuracy of the test.
[0046] Example 6:
[0047] Reference Figure 1 , Figure 2 , Figure 6 The water pressure sealing test platform for the flood control system is basically the same as that in Example 1, but with a further improvement: a U-shaped groove 201 is provided inside the test box 2. The U-shaped groove 201 is located on the side of the flood control plate 8 away from the diversion pipe 12 and is in close contact with the flood control plate 8. A moisture test strip is slidably connected inside the U-shaped groove 201. By setting the moisture test strip inside the U-shaped groove 201, when the flood control plate 8 leaks, the water leaking from the leaking point will cause the moisture test strip to change color, thus making it easier for staff to quickly find the leak point so that the flood control plate 8 can be reprocessed, providing convenience for the staff.
[0048] Example 7:
[0049] Reference Figure 1 The water pressure sealing test platform for the flood control system is basically the same as that in Example 1. However, the test box 2 is equipped with a drain outlet near the top of the water tank 9. A second one-way solenoid valve 202 is fixedly connected inside the drain outlet. After the flood control plate 8 is tested, the second one-way solenoid valve 202 inside the drain outlet is opened, so that the water in the test box 2 flows back into the water tank 9 for water recycling and reuse, which effectively reduces the waste of water resources and has high practicality.
[0050] This invention, through the arrangement of an electric cylinder 5, a moving plate 6, a sealing airbag ring 7, and a second air pipe 26, improves the sealing performance of the detection chamber when pressurizing the water inside, thereby effectively enhancing the stability during pressure testing of the flood control plate 8. This testing platform can simultaneously and accurately test the pressure resistance and sealing performance of the flood control plate 8, simulating the scenario of the flood control plate 8 in use and maximizing the reproduction of the actual situation. This effectively improves the accuracy of water pressure and sealing testing of the flood control plate 8, making it highly practical and meeting usage requirements.
[0051] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.
Claims
1. A flood control system water pressure seal detection platform, comprising a platform body (1), characterized in that, Also include: Detection box (2); Rotary plate (3), rotatingly connected at the opening of the detection box (2); Moving plate (6), connected to the lower end of the rotary plate (3) by electric cylinder (5); Sealing air bag ring (7), fixedly connected to the outer side of the moving plate (6); Water tank (9), mounted on the platform body (1); Water pump (10), mounted on the platform body (1), and the water inlet extends to the bottom of the water tank (9); Shunt pipe (12), installed in the detection box (2) near the position to be detected flood prevention plate (8), and the water inlet is sealingly connected with the water outlet of the water pump (10), wherein the shunt pipe (12) is arranged on the side of the flood prevention plate (8) close to the moving plate (6); Water spray head (18), uniformly distributed on the shunt pipe (12), for spraying water to the joint of the flood prevention plate (8); Pressure pump (13), mounted on the platform body (1); First three-way pipe (25), arranged at one end of the detection box (2) away from the flood prevention plate (8), Wherein, the first three-way pipe (25) is fixedly connected with a first electromagnetic conversion valve (28), the air inlet of the first three-way pipe (25) is connected with the pressure pump (13) through a first air pipe (23), two air outlets of the first three-way pipe (25) are respectively connected with a pressure pipe (27) and a second air pipe (26), the pressure pipe (27) extends into the detection box (2), and the air outlet of the second air pipe (26) is connected with the air inlet of the sealing air bag ring (7); The side of the detection box (2) away from the pressure pipe (27) is fixedly connected with a sleeve (15), the sleeve (15) is slidingly connected with a jacking post (16), the sleeve (15) is provided with a telescopic spring (17), both ends of the telescopic spring (17) are fixedly connected with the sleeve (15) and the jacking post (16), the air outlet of the pressure pump (13) is fixedly connected with a second three-way pipe (20), one of the air outlets of the second three-way pipe (20) is sealingly connected with the first air pipe (23), the other air outlet of the second three-way pipe (20) is sealingly connected with a third air pipe (14), one end of the third air pipe (14) away from the second three-way pipe (20) is connected with the air inlet of the sleeve (15), the second three-way pipe (20) is fixedly connected with a second electromagnetic conversion valve (22), and the air outlet of the sleeve (15) is fixedly connected with a first one-way electromagnetic valve (30).
2. The flood control system water pressure seal detection platform of claim 1, wherein, The sleeve (15) and the jacking post (16) are provided with four groups, and are located around the flood prevention plate (8), respectively.
3. The flood system water pressure seal detection platform of claim 1, wherein, The side of the detection box (2) close to the pressure pipe (27) is fixedly connected with a pressure gauge (29), and the detection end of the pressure gauge (29) extends into the detection box (2).
4. The flood control system water pressure seal detection platform of claim 3, wherein, The rotating plate (3) is fixedly connected with a main controller (4), one end of the rotating plate (3) close to the flood control plate (8) is provided with a row of range finders (31), the range finders (31) are located on the side of the flood control plate (8) away from the shunt pipe (12), and the main controller (4) is electrically connected with the range finders (31) and the pressure gauge (29).
5. The flood control system water pressure seal detection platform of claim 3, wherein, The lower end of the platform body (1) close to the shunt pipe (12) is fixedly connected with a booster (11), and the water inlet and outlet of the booster (11) are respectively in sealing connection with the water outlet of the water pump (10) and the water inlet of the shunt pipe (12).
6. The flood control system water pressure seal detection platform of claim 5, wherein, The connection between the pressure gauge (29) and the detection box (2), the connection between the pressurizing pipe (27) and the detection box (2) and the connection between the shunt pipe (12) and the detection box (2) are all in sealing connection through sealing elements (19).
7. The flood system water pressure seal detection platform of claim 1, wherein, The row of water spray heads (18) at the lowermost end of the shunt pipe (12) are all arranged in a downward inclination.
8. The flood system water pressure seal detection platform of claim 1, wherein, The detection box (2) is provided with a U-shaped sliding groove (201), the U-shaped sliding groove (201) is located on the side of the flood control plate (8) away from the shunt pipe (12) and closely adheres to the flood control plate (8), and a water content detection test paper strip is slidably connected in the U-shaped sliding groove (201).
9. The flood system water pressure seal detection platform of claim 1, wherein, The upper side of the detection box (2) close to the water tank (9) is provided with a drain port, and the drain port is fixedly connected with a second one-way electromagnetic valve (202).
Citation Information
Patent Citations
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CN106706228A
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CN110133224A