Rotary riverway water quality purification system

By designing a rotary river water quality purification system and using the combined technology of a rotary reactor and a pump, the problems of low water quality purification effect and high labor cost in the existing river management methods are solved, and efficient water quality purification and cost reduction are achieved.

CN222989964UActive Publication Date: 2025-06-17SUZHOU WATER CONSERVANCY DESIGN & RES INST CO LTD
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Patent Information

Application Number
CN202421905617.3
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-08-07
Publication Date
2025-06-17
Estimated Expiration
2034-08-07

AI Technical Summary

Technical Problem

The current conventional river channel management methods have lower effects on river water quality purification, and the labor investment cost is relatively high.

Method used

A rotary river water quality purification system is designed, including a rotary reactor and a water pump. The rotary reactor is combined with a shell and a reaction vessel, and the reaction vessel is provided with spray holes and reactors, which accelerate the precipitation of impurities in the river water by using microbial decomposition. The pumping pump realizes forced circulation of river water and promotes water quality purification.

Benefits of technology

Through the rotation and spraying technology of the rotary reactor, the precipitation speed of impurities in river water is accelerated and the water purification effect is improved. The forced circulation of the pump further improves the purification efficiency and reduces the cost of labor investment.

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Abstract

The utility model relates to a rotary riverway water quality purification system, and relates to the field of water treatment, the rotary riverway water quality purification system comprises a riverway, riverway retaining walls are built on two sides of the riverway, a mud retaining wall is built at the bottom of the riverway to divide the riverway into a sedimentation tank, and a rotary reactor is arranged in the sedimentation tank and comprises a shell and a reaction container; a plurality of reactors are arranged in the reaction container, the reactors act with river water through microorganisms to accelerate precipitation of impurities in the river water, the reaction container is attached to the shell in a sliding fit mode, and the reaction container is connected with an output shaft of the rotating motor so that the reaction container can rotate. The method has the technical effect of evolving river water.
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Description

Technical Field

[0001] This application relates to the field of water treatment, and particularly to a rotary river water purification system. Background Art

[0002] River regulation refers to the comprehensive management of rivers through a series of measures and means to ensure the sustainable utilization of water resources and maintain the balance and stability of the ecological environment. River regulation is very important for the ecological environment. Rivers are an important part of the ecosystem and an important carrier of biodiversity. The quality of river water directly affects the survival and reproduction of aquatic organisms. If the river water quality is polluted, it will lead to the death of aquatic organisms and the destruction of habitats, thus affecting the balance and stability of the entire ecosystem. Most of the existing conventional river regulation methods are manual dredging or directly putting chemical agents and microorganisms into the river to purify sewage. The existing problems are that the actual purification effect of river water quality is low and the labor input cost is large. Summary of the Utility Model

[0003] To improve the water purification effect, this application provides a rotary river water purification system.

[0004] A rotary river water purification system provided by this application adopts the following technical solutions:

[0005] A rotary river water purification system includes a river. River retaining walls are built on both sides of the river, and a mud retaining wall is built at the bottom of the river. The mud retaining wall divides the river into a sedimentation tank. A rotary reactor is arranged in the sedimentation tank. The rotary reactor includes an outer shell and a reaction vessel. There are multiple outer shells, and the multiple outer shells are all sleeved outside the reaction vessel at intervals. The reaction vessel is slidably and fittingly attached to the outer shell. The interior of the reaction vessel is of a cavity structure. Multiple through holes are formed on the surface of the reaction vessel to form spray holes, and multiple reactors are arranged inside the reaction vessel.

[0006] By adopting the above technical solutions, through the setting of the rotary reactor, the rotary reactor includes an outer shell and a reaction vessel, and reactors are arranged in the reaction vessel. The reactors can accelerate the precipitation of impurities in the river water through the action of microorganisms.

[0007] In a specific feasible embodiment, a gap is left between the multiple outer shells, and the spray holes are arranged in the gap reserved by the outer shells.

[0008] By adopting the above technical solutions, by arranging the spray holes in the gap reserved by the outer shells, the spray holes are exposed outside, helping the spray holes to achieve the technical effect of spraying river water.

[0009] In a specific feasible implementation, two galvanized steel pipes are fixedly arranged at the bottom of the sedimentation tank through rivets, and two stainless steel wire ropes are fixedly arranged on the two galvanized steel pipes through wire rope clips.

[0010] By adopting the above technical solution, through the arrangement of the galvanized steel pipes and the stainless steel wire ropes, it is helpful to fix the rotary reactor.

[0011] In a specific feasible implementation, stainless steel cable ties are sleeved on the stainless steel wire ropes, a plurality of the stainless steel cable ties are arranged at intervals, and the stainless steel cable ties bundle and fix the outer shell on the stainless steel wire ropes.

[0012] By adopting the above technical solution, the outer shell can be fixed through the stainless steel cable ties.

[0013] In a specific feasible implementation, a rotary motor is fixedly arranged on the river channel retaining wall, and the output shaft of the rotary motor is fixedly connected to the reaction vessel.

[0014] By adopting the above technical solution, through the arrangement of the rotary motor, the output shaft of the rotary motor is fixedly connected to the reaction vessel, enabling the reaction vessel to rotate in the outer shell.

[0015] In a specific feasible implementation, a water delivery pipe is connected to one end of the rotary reactor close to the rotary motor, the water delivery pipe is communicated with the reaction vessel, and a right-angle elbow is arranged at one end of the water delivery pipe far from the rotary reaction vessel.

[0016] By adopting the above technical solution, through the arrangement of the water delivery pipe and the right-angle elbow, it plays a role in transporting river water.

[0017] In a specific feasible implementation, an activated carbon filter screen is filled in the right-angle elbow.

[0018] By adopting the above technical solution, through the arrangement of the activated carbon filter screen, tiny impurities in the river water can be filtered.

[0019] In a specific feasible implementation, a pumping pipeline is arranged at one end of the right-angle elbow far from the reaction vessel, the pumping pipeline is fixedly arranged on the river channel retaining wall through a pipe support, a water pump is connected to one end of the pumping pipeline far from the sedimentation tank, and a filter screen is fixedly arranged at one end of the water pump housing close to the pumping pipeline.

[0020] By adopting the above technical solution, through the arrangement of the water pump, the river water can be forced to circulate.

[0021] In summary, the present application includes the following beneficial technical effects:

[0022] 1. By setting up a rotary reactor, the rotary reactor includes a reaction vessel and a housing. The reaction vessel is provided with spray holes and can be driven by a rotary motor to rotate while spraying water, accelerating the precipitation rate of impurities in the river water. A plurality of reactors are arranged in the reaction vessel, and through the action of microorganisms in the reactors, the impurities in the river water can be precipitated.

[0023] 2. By setting up a water pump, the water pump can force the river water to circulate, contributing to the circulating flow of the river water and accelerating the purification efficiency of the river water. Brief Description of the Drawings

[0024] Figure 1 is the top view of the embodiment of the present application;

[0025] Figure 2 is the front view of the embodiment of the present application;

[0026] Figure 3 is Figure 2 the partial enlarged view at A in

[0027] Figure 4 is the structural schematic diagram of the reaction vessel;

[0028] Figure 5 is the structural schematic diagram of the right-angle elbow.

[0029] Description of the Reference Numerals: 1, river channel; 11, sedimentation tank; 12, rotary reactor; 121, housing; 122, stainless steel wire rope; 123, stainless steel tie; 124, rotary motor; 125, reaction vessel; 126, spray hole; 127, reactor; 13, galvanized steel pipe; 14, pumping pipeline; 15, water pump; 16, filter screen; 17, right-angle elbow; 171, activated carbon filter screen; 172, flange; 18, mudguard; 18, mud retaining wall; 19, water delivery pipe; 2, river channel retaining wall; 3, water level line; 4, river bottom. Detailed Description of the Embodiment

[0030] The following further elaborates on the present application in conjunction with the attached Figures 1 - 5 drawings.

[0031] In the description of the present application, it should be understood that for the orientation description, such as the orientation or positional relationship indicated by up, down, front, back, left, right, etc., is based on the orientation or positional relationship shown in the drawings, and is only for the convenience of describing the present application and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and thus should not be construed as a limitation to the present application.

[0032] The embodiment of the present application discloses a rotary river water purification system.

[0033] Refer toFigure 1 , including a river channel 1, with river channel retaining walls 2 built on both sides of the river channel 1, and a mud retaining wall 18 built at the bottom of the river channel 1. The mud retaining wall 18 is vertically arranged with the river channel retaining wall 2, and the river channel 1 is separated by the mud retaining wall 18 to form a sedimentation tank 11.

[0034] Refer to Figure 2 and Figure 3 , a rotary reactor 12 is arranged in the sedimentation tank 11. The rotary reactor 12 includes a housing 121 and a reaction vessel 125. The housing 121 is a thin-walled cylinder, and the reaction vessel 125 is arranged in a cylindrical shape. There are multiple housings 121, and multiple housings 121 are all sleeved outside the reaction vessel 125 at intervals. The surface of the reaction vessel 125 is slidably fitted and attached to the inner wall of the housing 121, so that the reaction vessel 125 can rotate inside the housing 121.

[0035] Refer to Figure 2 and Figure 4 , the inside of the reaction vessel 125 is set as a closed cavity structure, and multiple through holes are arranged at intervals along the length direction of the reaction vessel 125 to form spray holes 126. The spray holes 126 are communicated with the internal cavity structure of the reaction vessel 125. A distance is reserved between multiple housings 121 during installation, and the spray holes 126 are specifically arranged in the reserved distance between the housings 121, so that the spray holes 126 are exposed outside.

[0036] Multiple reactors 127 are arranged at intervals inside the reaction vessel 125. The reactors 127 can react with the river water to complete the treatment and purification of the river water. In the embodiment of the present application, the reactors 127 specifically decompose and precipitate the organic matter in the sewage through a conventionally set biological treatment method. Two galvanized steel pipes 13 are fixedly arranged at the river bottom 4 by rivets, and two stainless steel wire ropes 122 are fixedly arranged on the two galvanized steel pipes 13 by wire rope clips. The two stainless steel wire ropes 122 are arranged parallel to each other up and down and are perpendicular to the galvanized steel pipes 13, and the galvanized steel pipes 13 keep the stainless steel wire ropes 122 straight. Multiple stainless steel straps 123 are sleeved on the stainless steel wire ropes 122, and the stainless steel straps 123 are arranged at intervals and bundle and fix the housing 121 on the stainless steel wire ropes 122. In this embodiment, the rotary reactor 12 is arranged 10 cm below the water level line 3. A rotary motor 124 is fixedly arranged on the river channel retaining wall 2, and the rotary motor 124 is specifically a speed-regulating motor. The output shaft of the rotary motor 124 is fixedly connected to the reaction vessel 125, and by driving with the rotary motor 124, the reaction vessel 125 can rotate inside the housing 121.

[0037] Refer to Figure 1 and Figure 5, one end of the rotary reactor 12 close to the rotary motor 124 is connected with a water delivery pipe 19, and the water delivery pipe 19 is communicated with the reaction vessel 125 through a pipeline. One end of the water delivery pipe 19 away from the rotary reaction vessel 125 is provided with a right-angle elbow 17, and one end of the right-angle elbow 17 away from the reaction vessel 125 is provided with a water pumping pipeline 14. The right-angle elbow 17 is specifically fixedly connected with the water delivery pipe 19 and the water pumping pipeline 14 through a flange 172. The right-angle elbow 17 is filled with an activated carbon filter screen 171, and the right-angle elbow 17 is arranged at a 90-degree bend, which can extend the flow path of the river water and make the river water filter more fully when passing through the activated carbon filter screen 171.

[0038] The water pumping pipeline 14 is fixedly arranged on the river channel retaining wall 2 through a pipe support. One end of the water pumping pipeline 14 away from the right-angle elbow 17 extends out of the sedimentation tank 11. One end of the water pumping pipeline 14 away from the sedimentation tank 11 is connected with a water pump 15. The water pump 15 is fixedly arranged on the river channel 1 retaining wall, and the river water outside the sedimentation tank 11 can be pumped into the water pumping pipeline 14 through the water pump 15. A filter screen 16 is fixedly arranged at one end of the water pump 15 close to the water pumping pipeline 14, and the river water is preliminarily filtered through the filter screen 16 to prevent the water pumping pipeline 14 from being blocked.

[0039] The implementation principle of a rotary river channel 1 water purification system according to an embodiment of the present application is as follows: The river water of the river channel 1 is pumped into the water pumping pipeline 14 through the water pump 15, and the river water is preliminarily filtered through the filter screen 16 to prevent the water pumping pipeline 14 from being blocked. The river water reaches the right-angle elbow 17 through the water pumping pipeline 14, and the river water is filtered through the activated carbon filter screen 171 in the right-angle elbow 17 to remove the fine impurities in the river water. The river water passing through the right-angle elbow 17 flows into the reaction vessel 125 and contacts the reactor 127 in the reaction vessel 125. Through the action of the microorganisms in the reactor 127, the precipitation speed of the impurities in the river water can be increased. The river water passing through the reactor 127 will flow to the spray holes 126, and the river water will be sprayed out from the spray holes 126 under the action of pressure. The operator can adjust the rotation speed of the rotary motor 124 according to the flow rate of the river water in the river channel 1. Through the rotational movement of the reaction vessel 125 and the cooperation of microbial decomposition, the suspended substances and impurities in the water can be accelerated to precipitate into the sedimentation tank 11. The impurities precipitate to the bottom of the sedimentation tank 11 and are blocked by the mud retaining wall 18, so that the precipitated impurities are gathered in the sedimentation tank 11 for centralized cleaning. The purified clear water will remain on the surface of the sedimentation tank 11, and when the height of the clear water is higher than the river water level line 3, it will flow out of the sedimentation tank 11, thereby achieving the purification effect of the river water.

[0040] The above are all the preferred embodiments of the present application, and the protection scope of the present application is not limited by this. Therefore, all equivalent changes made according to the structure, shape, and principle of the present application should be covered within the protection scope of the present application.

Claims

1. A rotary river water purification system, characterized in that: The invention comprises a river channel (1), river channel retaining walls (2) are constructed on both sides of the river channel (1), a mud retaining wall (18) is constructed at the bottom of the river channel (1), the mud retaining wall (18) separates the river channel (1) to form a sedimentation tank (11), a rotary reactor (12) is arranged in the sedimentation tank (11), the rotary reactor (12) comprises an outer shell (121) and a reaction container (125), a plurality of the outer shells (121) are arranged, the plurality of outer shells (121) are sleeved on the outside of the reaction container (125) at intervals, the reaction container (125) and the outer shell (121) are slidably fitted, the interior of the reaction container (125) is arranged as a cavity structure, a plurality of through holes are opened on the surface of the reaction container (125) to form a spray hole (126), and a plurality of reactors (127) are arranged in the reaction container (125).

2. A rotary river water purification system according to claim 1, characterized in that: There is a spacing between the multiple shells (121), and the spray holes (126) are arranged within the spacing reserved in the shells (121).

3. The rotary river water purification system according to claim 1, characterized in that: Two galvanized steel pipes (13) are fixedly arranged at the bottom of the sedimentation tank (11) by means of rivets, and two stainless steel wire ropes (122) are fixedly arranged on the two galvanized steel pipes (13) by means of steel wire rope buckles.

4. A rotary river water purification system according to claim 3, characterized in that: A stainless steel tie (123) is sleeved on the stainless steel wire rope (122), and a plurality of the stainless steel tie (123) are arranged at intervals. The stainless steel tie (123) binds and fixes the housing (121) to the stainless steel wire rope (122).

5. The rotary river water purification system according to claim 1, characterized in that: A rotating motor (124) is fixedly arranged on the river channel retaining wall (2), and an output shaft of the rotating motor (124) is fixedly connected to the reaction container (125).

6. A rotary river water purification system according to claim 5, characterized in that: The end of the rotary reactor (12) close to the rotary motor (124) is connected to a water pipe (19), the water pipe (19) is in communication with the reaction container (125), and the end of the water pipe (19) away from the reaction container (125) is provided with a right-angle elbow (17).

7. A rotary river water purification system according to claim 6, characterized in that: The right-angle elbow (17) is filled with an activated carbon filter (171).

8. A rotary river water purification system according to claim 6, characterized in that A pumping pipe (14) is arranged at one end of the right-angle elbow (17) away from the reaction container (125); the pumping pipe (14) is fixedly arranged on the river retaining wall (2) through a pipe bracket; a pumping pump (15) is connected to one end of the pumping pipe (14) away from the sedimentation tank (11); a filter screen (16) is fixedly arranged at one end of the pumping pump (15) housing (121) close to the pumping pipe (14).