Integrated intelligent integrated water purification equipment

CN224798697UActive Publication Date: 2026-09-25SHANGHAI EAST PUMP GRP NANTONG CO LTD
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Patent Information

Application Number
CN202521991870.X
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-09-16
Publication Date
2026-09-25
Estimated Expiration
2035-09-16

AI Technical Summary

Technical Problem

[0002]传统净水设备存在占地面积大、运输困难、自动化程度低、建造周期长等问题,难以适应景区、游乐场、大型水厂、山区村庄等场景

Benefits of technology

[0015]与现有技术相比,本实用新型的一种一体化智慧集成式净水设备,体积小,安装方便,适用于大型水厂、山区村庄等地的供水给水,具备日供水量大、易安装、低运营成本等特点。

✦ Generated by Eureka AI based on patent content.

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Abstract

An integrated intelligent integrated water purification equipment, including box, box is separated into flocculation tank, sedimentation tank and filter tank by setting up the partition plate in the box, the grid plate is installed in the flocculation tank, the water inlet is connected on one side of the flocculation tank, the other side is connected with the drain pipe, the drain pipe is communicated with the sedimentation tank, the filler is installed in the sedimentation tank, the first water collecting tank is arranged above the filler, the water inlet pipe is installed in the filter tank, the water inlet pipe is communicated with the first water collecting tank in the sedimentation tank, the support plate is connected in the filter tank, the filter tank bottom forms the filter bin, the filter material is arranged on the support plate, the baffle is arranged above the filter material, the water supply pipe is arranged in the filter tank, the water supply pipe is communicated with the upper half of the filter tank, the second water collecting tank is arranged above the filter tank, the drain outlet is connected with the second water collecting tank on the side of the filter tank. The device is small in size, easy to install, and suitable for water supply in large water plants, mountain villages and other places.
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Description

Technical Field

[0001] This utility model relates to the field of water treatment technology, specifically to an integrated intelligent water purification device. Background Technology

[0002] Traditional water purification equipment suffers from problems such as large footprint, transportation difficulties, low automation, and long construction cycles, making it unsuitable for scenarios such as scenic spots, amusement parks, large water plants, and mountainous villages. Many traditional water purification devices are made of concrete, which, due to geographical limitations, makes them unsuitable for construction in mountainous and hilly areas. Utility Model Content

[0003] The technical problem to be solved by this utility model is to provide an integrated intelligent water purification device that addresses the shortcomings of the existing technology.

[0004] To solve the above-mentioned technical problems, the technical solution adopted by this utility model is as follows:

[0005] An integrated intelligent water purification device includes a housing with a partition plate dividing the interior into a flocculation tank, a sedimentation tank, and a filter tank. The flocculation tank contains a grid plate, an inlet on one side, and a drain pipe on the other, which connects to the sedimentation tank. The sedimentation tank contains packing material, with a first water collection trough above the packing material. The filter tank contains an inlet pipe connected to the first water collection trough in the sedimentation tank. A support plate is connected to the filter tank, forming a filter chamber with the bottom of the filter tank. Filter media is placed on the support plate, with a baffle above the filter media. A water supply pipe is installed in the filter tank, its bottom passing through the support plate and connecting to the filter chamber, and its upper end passing through the baffle and connecting to the upper part of the filter tank. A second water collection trough is located above the filter tank, and a drain outlet is connected to the side of the filter tank corresponding to the second water collection trough.

[0006] Furthermore, the flocculation tank is provided with an inner partition plate, which divides the flocculation tank into multiple flocculation tank compartments. The inner partition plate is processed with a water outlet, and the grid plate is connected to the flocculation tank compartment.

[0007] Furthermore, a support net is installed above the drainage pipe inside the sedimentation tank, the packing material is placed on the support net, and a "V"-shaped sludge hopper is connected below the sedimentation tank.

[0008] Furthermore, the packing material is a regular hexagonal honeycomb tube packing material, with the regular hexagonal honeycomb tubes inside the packing material arranged obliquely upwards.

[0009] Furthermore, the bottom of the flocculation tank and the sedimentation tank are connected to sludge discharge pipes.

[0010] Furthermore, the inlet pipe is a U-shaped pipe, and a water collection hopper is provided on the side of the first water collection tank above the filter pool. One end of the U-shaped pipe is connected to the bottom of the water collection hopper, and the other end of the U-shaped pipe passes through the filter chamber at the bottom of the filter pool and extends out of the filter media surface.

[0011] Furthermore, the filter media includes a pebble support layer and a quartz sand filter media, and short-handled filter heads are evenly distributed on the support plate, with the pebble support layer and quartz sand filter media sequentially laid on top of the short-handled filter heads.

[0012] Furthermore, the baffle adopts a mushroom-top structure, and a cleaning drain pipe is connected above the mushroom-top structure.

[0013] Furthermore, an air vent is connected to the side of the filter chamber.

[0014] Furthermore, the filter tank is provided with inspection holes and ladders on its side, and the flocculation tank and sedimentation tank are provided with walking ladders above them.

[0015] Compared with existing technologies, the integrated smart water purification equipment of this utility model is small in size, easy to install, and suitable for water supply in large water plants, mountain villages and other places. It has the characteristics of large daily water supply, easy installation and low operating costs. Attached Figure Description

[0016] Figure 1 This is a schematic diagram of the structure of this utility model;

[0017] Figure 2 This is a schematic diagram of the flocculation tank of this utility model;

[0018] Figure 3 This is a perspective view of the present invention;

[0019] The components are as follows: 1. Flocculation tank, 2. Sedimentation tank, 3. Filter tank, 4. Mesh plate, 5. Inlet, 6. Drain pipe, 7. Flocculation tank compartment, 8. Support plate, 9. Water outlet, 10. Packing material, 11. First water collection tank, 12. "V" shaped sludge hopper, 13. Support net, 14. Sludge discharge pipe, 15. Inlet pipe, 16. Support plate, 17. Filter compartment, 18. Filter media, 19. Baffle, 20. Water supply pipe, 21. Second water collection tank, 22. Drain outlet, 23. Water collection hopper, 24. Short-handled filter head, 25. Cleaning drain pipe, 26. Drain outlet, 27. Inspection hole, 28. Ladder, 29. Walking ladder. Detailed Implementation

[0020] The technical solutions in the embodiments of this utility model will be clearly and completely described below.

[0021] like Figures 1-3As shown, an integrated intelligent water purification device includes a housing with a partition plate inside, dividing the housing into a flocculation tank 1, a sedimentation tank 2, and a filter tank 3. A grid plate 4 is installed inside the flocculation tank 1. An inlet 5 is connected to one side of the flocculation tank, and a drain pipe 6 is connected to the other side, communicating with the sedimentation tank 2. In this embodiment, the flocculation tank 1 is provided with horizontally and vertically connected internal partition plates, dividing the flocculation tank 1 into multiple flocculation tank compartments 7. The grid plate 4 is connected within each flocculation tank compartment 7. A support plate 8 is connected around the perimeter of each flocculation tank compartment 7, and the grid plate 4 is fixed to the support plate 8. Water outlets 9 are machined on the internal partition plates. The water outlets 9 on adjacent flocculation tank compartments 7 are staggered vertically. Water in the flocculation tank compartments 7 flows between compartments 7 through the water outlets 9, continuously shearing and enlarging the flocs through the grid plate 4, and then draining into the sedimentation tank through the drain pipe 6.

[0022] The sedimentation tank 2 is equipped with packing material 10, and a first water collection trough 11 is set above the packing material 10. A "V"-shaped sludge hopper 12 is connected to the bottom of the sedimentation tank 2. In this embodiment, a support net 13 is set above the drain pipe 6 in the sedimentation tank 2, and the packing material 10 is set on the support net 13. The packing material 13 is a regular hexagonal honeycomb tube packing material. The regular hexagonal honeycomb tubes in the packing material 13 are set obliquely upward. Under the action of the regular hexagonal honeycomb tubes, the particles in the water quickly settle and converge into the "V"-shaped sludge hopper 12. The lower layer of sediment is concentrated at the bottom under the action of the "V"-shaped sludge hopper 12.

[0023] The bottom of the flocculation tank 1 and the sedimentation tank 2 are connected to a sludge discharge pipe 14. By periodically opening the sludge discharge pipe 14, the sludge and water in the flocculation tank 1 and the sedimentation tank 2 are discharged.

[0024] The filter pool 3 is equipped with an inlet pipe 15, which is connected to the first water collection tank 11 in the sedimentation tank 2. The water after sedimentation in the sedimentation tank flows into the filter pool 3 through the first water collection tank 11 and the inlet pipe 15. The filter pool 3 is connected with a support plate 16, which forms a filter chamber 17 with the bottom of the filter pool 3. Filter media 18 is provided on the support plate 16, and a baffle 19 is provided above the filter media 18. The filter pool 3 is equipped with a water supply pipe 20, which passes through the support plate 16 and is connected to the filter chamber 17 at the bottom. The upper end of the water supply pipe 20 passes through the baffle 19 and is connected to the upper part of the filter pool 3. A second water collection tank 21 is provided above the filter pool 3, and a drain outlet 22 is connected to the side of the filter pool 3 corresponding to the second water collection tank 21.

[0025] In this embodiment, the inlet pipe 15 is a U-shaped pipe. A water collection hopper 23 is provided on the side of the first water collection tank 11 above the filter tank 3. One end of the U-shaped pipe is connected to the bottom of the water collection hopper 23. The first water collection tank 11 is a U-shaped component with a water collection hole on its side. Water enters the first water collection tank 11 through the water collection hole, then flows into the water collection hopper 23, and then into the U-shaped pipe. The filter media 18 includes a pebble support layer and a quartz sand filter media. Short-handled filter heads 24 are evenly distributed on the support plate 16. The pebble support layer and the quartz sand filter media are laid on top of the short-handled filter heads 24. The other end of the U-shaped pipe passes through the filter chamber 17 at the bottom of the filter tank 3 and extends out of the surface of the filter media 18. Water flows from top to bottom through the filter media 18 for filtration and then collects in the filter tank. Inside the filter chamber 17, the baffle 19 adopts a mushroom-top structure, which divides the filter pool 3 into upper and lower chambers. The bottom of the water supply pipe 20 is connected to the filter chamber 17, and the upper end of the water supply pipe 20 is connected to the upper half of the chamber in the filter pool 3. Under the action of water pressure, the clean water collected in the filter chamber 17 enters the upper half of the chamber through the water supply pipe 20. The second water collection tank 21 has the same structure as the first water collection tank 11. The filtered clean water enters the second water collection tank 21 through the water collection hole and is then discharged from the drain outlet 22.

[0026] A cleaning drain pipe 25 is connected to the top of the mushroom-shaped structure. After the equipment has been running for a period of time, the filter material is backwashed and the wastewater after washing is discharged through the cleaning drain pipe 25. An air vent 26 is connected to the side of the filter chamber 17, through which the water in the filter chamber 17 can be drained.

[0027] The filter tank is provided with an inspection hole 27 and a ladder 28 on its side. The inspection hole 27 allows for observation and maintenance of the interior of the filter tank. The flocculation tank 1 and sedimentation tank 2 are provided with a walking ladder 29 above them. The ladder 28 allows access to the top of the equipment, and the walking ladder 29 allows for direct observation of the working conditions inside the flocculation tank 1 and sedimentation tank 2, as well as the addition of chemicals to the flocculation tank 1 and sedimentation tank 2.

[0028] During operation, raw water is mixed with coagulant outside the equipment and enters the bottom of flocculation tank 1 through inlet 5. The water level rises evenly and flows sequentially through each flocculation compartment 7 inside flocculation tank 1. During this process, PAM is added to carry out a thorough coagulation reaction. The grid plates 4 inside the flocculation compartment 7 continuously shear and enlarge the flocs. Then, the flocs enter the sedimentation tank 2 through the drain pipe 6. Under the action of the hexagonal honeycomb tube packing, the particles in the water settle rapidly, and the lower layer of sludge settles in the "V"-shaped sludge hopper 12. The water is concentrated at the bottom, and the upper layer of clear water flows from the separation zone into the first collection tank 11. It then flows into the lower half of the chamber of the filter tank 3 through the inlet pipe 15. The water flows from top to bottom, passing through the quartz sand filter media, the pebble support layer, and the short-handled filter head. Through full contact with the filter media 18, it further removes small particulate impurities that failed to settle in the previous process, as well as iron and manganese in the water. After purification, the clear water enters the second collection tank 21 from bottom to top through the water delivery pipe 20, and finally is discharged into the clear water pool outside the equipment.

[0029] After the equipment has been running for a certain period of time, the external electric valves automatically discharge the flocculent sludge that has settled into the sludge collection area in the flocculation tank 1 and sedimentation tank 2 through the signal given by the central control cabinet.

[0030] After the equipment has been running normally for a period of time, as the water passes through the filter media 18, the resistance of the filter media 18 gradually increases. When the water level rises to a certain height, the automatic backwashing system is activated by the signal given by the level gauge. Clean water is added from the upper chamber of the filter tank 3. The clean water enters the filter chamber 17 through the water supply pipe 20 to backwash the filter media 18. After the backwashing process lasts for 3-5 minutes, the backwashing stops automatically, and the sewage is discharged from the cleaning drain pipe 25. Then the equipment continues to run normally.

[0031] This utility model is not limited to the embodiments described. Those skilled in the art can still make some modifications or changes without departing from the spirit and scope of this utility model. Therefore, the scope of protection of this utility model shall be determined by the scope defined in the claims.

Claims

1. An integrated intelligent water purification device, characterized in that: The system includes a housing with a partition plate dividing the interior into a flocculation tank, a sedimentation tank, and a filter tank. The flocculation tank contains a mesh plate, with an inlet on one side and a drain pipe on the other, connecting to the sedimentation tank. The sedimentation tank contains packing material, with a first water collection trough above the packing material. The filter tank contains an inlet pipe connected to the first water collection trough in the sedimentation tank. A support plate is connected to the filter tank, forming a filter chamber with the bottom of the filter tank. Filter media is placed on the support plate, with a baffle above the filter media. A water supply pipe is installed in the filter tank, with its bottom passing through the support plate and connecting to the filter chamber, and its upper end passing through the baffle and connecting to the upper part of the filter tank. A second water collection trough is located above the filter tank, and a drain outlet is connected to the side of the filter tank corresponding to the second water collection trough.

2. The integrated intelligent water purification device according to claim 1, characterized in that: The flocculation tank is equipped with an inner partition plate, which divides the flocculation tank into multiple flocculation tank compartments. The inner partition plate is processed with a water outlet, and the grid plate is connected to the flocculation tank compartment.

3. The integrated intelligent water purification device according to claim 1, characterized in that: The sedimentation tank is equipped with a support net above the drainage pipe, and the packing material is placed on the support net. A "V"-shaped sludge hopper is connected to the bottom of the sedimentation tank.

4. An integrated intelligent water purification device according to claim 1 or 3, characterized in that: The packing material is a regular hexagonal honeycomb tube packing material, with the regular hexagonal honeycomb tubes inside the packing material arranged obliquely upwards.

5. The integrated intelligent water purification device according to claim 1, characterized in that: The bottom of the flocculation tank and sedimentation tank are connected to sludge discharge pipes.

6. The integrated intelligent water purification device according to claim 1, characterized in that: The inlet pipe is a U-shaped pipe. A water collection hopper is provided on the side of the first water collection tank above the filter pool. One end of the U-shaped pipe is connected to the bottom of the water collection hopper, and the other end of the U-shaped pipe passes through the filter chamber at the bottom of the filter pool and extends out of the filter media surface.

7. An integrated intelligent water purification device according to claim 1 or 6, characterized in that: The filter media includes a pebble support layer and a quartz sand filter media. Short-handled filter heads are evenly distributed on the support plate, and the pebble support layer and the quartz sand filter media are laid on top of the short-handled filter heads in sequence.

8. The integrated intelligent water purification device according to claim 1, characterized in that: The baffle has a mushroom-shaped top structure, and a cleaning drain pipe is connected to the top of the mushroom-shaped top structure.

9. The integrated intelligent water purification device according to claim 1, characterized in that: The filter chamber has an air vent connected to its side.

10. The integrated intelligent water purification device according to claim 1, characterized in that: The filter tank is equipped with inspection holes and ladders on its side, and the flocculation tank and sedimentation tank are equipped with walking ladders above them.