Efficient cross-flow water catchment device of sequencing batch sewage reactor

By designing the storage, mixing, and cleaning structures of the sequencing batch reactor (SBR), the problem of low mixing efficiency between wastewater and cleaning agents in wastewater treatment devices was solved, achieving efficient mixing and impurity sedimentation, and reducing the waste of cleaning agents.

CN223586962UActive Publication Date: 2025-11-25HENAN GUOJIN ENVIRONMENTAL PROTECTION ENG CO LTD
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Patent Information

Application Number
CN202520246490.7
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-02-17
Publication Date
2025-11-25
Estimated Expiration
2035-02-17

AI Technical Summary

Technical Problem

Existing wastewater treatment equipment is inefficient when mixing wastewater with cleaning agents, resulting in waste of cleaning agents.

Method used

Design a sequencing batch reactor for wastewater treatment, comprising a storage structure, a mixing structure, and a cleaning structure. Wastewater and cleaning agents are mixed via a transfer drum connected by pipes and valves, and impurities are settled using an aeration device.

Benefits of technology

It achieves efficient mixing of wastewater and cleaning agents and rapid sedimentation of impurities, reducing waste of cleaning agents.

✦ Generated by Eureka AI based on patent content.

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    Figure CN223586962U_ABST
Patent Text Reader

Abstract

The utility model relates to the technical field of sewage treatment, in particular to an efficient cross-flow water catchment device of a sequencing batch sewage reactor, which comprises a storage structure, a mixing structure and a cleaning structure, one side of a first storage tank in the storage structure is connected with a first pipeline through bolts, and one side of the first pipeline is welded with a second pipeline; one side of the second pipeline is connected with a conveying roller through a bolt, a rotating rod is movably connected into the conveying roller, flow limiting can be conducted on sewage through a first valve, and the sewage and a cleaning agent can be mixed through the rotating rod in the conveying roller; the cleaning agent conveying device can be connected with a fourth pipeline through a second connector so that the cleaning agent can be conveyed into the conveying roller, the cleaning agent can be conveyed through a conveying pump, and the cleaning agent can be conveyed through a fifth pipeline and a sixth pipeline.
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Description

TECHNICAL FIELD

[0001] The utility model relates to sewage treatment technical field, concretely is a kind of sequencing batch reactor high-efficiency cross-flow water collection device. BACKGROUND

[0002] Sewage treatment is the process of purification of wastewater to meet the water quality requirements for discharge into a water body or reuse. Sewage treatment is widely used in construction, agriculture, transportation, energy, petrochemical, environmental protection, urban landscape, medical treatment, catering and other fields, and is increasingly entering the daily life of ordinary people.

[0003] However, the existing sewage treatment device cannot mix the sewage and the cleaning agent well when mixing the sewage and the cleaning agent, which is relatively wasteful of the cleaning agent.

[0004] Therefore, in order to solve the above problems, a sequencing batch reactor high-efficiency cross-flow water collection device is proposed. UTILITY MODEL CONTENT

[0005] The utility model aims at providing a sequencing batch reactor high-efficiency cross-flow water collection device to solve the problem of the prior art that the sewage and the cleaning agent cannot be mixed well when mixing the sewage and the cleaning agent, which is relatively wasteful of the cleaning agent.

[0006] To achieve the above object, the utility model provides the following technical scheme: a sequencing batch reactor high-efficiency cross-flow water collection device, comprising: a storage structure, a mixing structure and a cleaning structure, a first storage tank in the storage structure is connected to a first pipeline on one side by bolts, a second pipeline is welded to one side of the first pipeline, a transmission roller is connected to one side of the second pipeline by bolts, a rotating rod is movably connected inside the transmission roller, a tank in the mixing structure is connected to the first storage tank in the storage structure on one side by bolts, a second interface is connected to a fourth pipeline on the upper end of the tank, a fifth pipeline is connected to the lower end of the fourth pipeline by bolts, a second storage tank in the cleaning structure is connected to a third pipeline in the storage structure on one side by bolts, and an aeration device is connected to the second storage tank inside by bolts.

[0007] Preferably, the first storage tank in the storage structure is connected to a first interface on the upper end by bolts.

[0008] Preferably, the first storage tank is connected to the first pipeline on one side by bolts, the first pipeline is connected to a first valve inside by bolts, and the first valve is connected to the second pipeline on one side by bolts.

[0009] Preferably, the second pipeline is connected to the transmission roller on one side by bolts, the transmission roller is connected to the rotating rod by a driving motor and a coupling inside, and the transmission roller is connected to the third pipeline on one side by bolts.

[0010] Preferably, the upper end of the tank in the mixing structure is bolted with a second interface, and one side of the second interface is bolted with a fourth pipeline.

[0011] Preferably, the inside of the fourth pipeline is bolted with a delivery pump, the lower end of the fourth pipeline is bolted with a fifth pipeline, one side of the fifth pipeline is bolted with a second valve, and one side of the second valve is bolted with a sixth pipeline.

[0012] Preferably, the second storage tank in the cleaning structure is bolted with an aeration device inside, one side of the second storage tank is bolted with an observation window, one side of the second storage tank is bolted with a seventh pipeline, and the inside of the seventh pipeline is bolted with a third valve.

[0013] Compared with the prior art, the utility model has the beneficial effects that:

[0014] 1. The first storage tank, the first interface, the first pipeline, the first valve, the second pipeline, the transmission roller, the rotating rod, the third pipeline, the tank, the second interface, the fourth pipeline, the delivery pump, the fifth pipeline, the second valve and the sixth pipeline are arranged, the sewage can be stored in the first storage tank and transmitted to the cleaning structure, the first pipeline and the second pipeline can transmit the sewage, the first valve can limit the flow of the sewage, the rotating rod in the transmission roller can mix the sewage and the cleaning agent, the second interface can be connected with the fourth pipeline to transmit the cleaning agent into the transmission roller, the delivery pump can transmit the cleaning agent, and the fifth pipeline and the sixth pipeline can transmit the cleaning agent.

[0015] 2. The second storage tank, the aeration device, the observation window, the seventh pipeline and the third valve are arranged, the sewage can be stored in the second storage tank, the aeration device can aerate the sewage to quickly precipitate the impurities in the sewage, the observation window can observe the sewage being treated, and the third valve can limit the flow of the sewage. BRIEF DESCRIPTION OF DRAWINGS

[0016] Figure 1 It is a structure three-dimensional schematic view of the utility model;

[0017] Figure 2 It is a structure three-dimensional schematic view of the utility model;

[0018] Figure 3 It is a structure three-dimensional sectional schematic view of the utility model;

[0019] Figure 4 It is a structure three-dimensional schematic view of the storage structure of the utility model.

[0020] In the figure: 1, storage structure; 101, first storage tank; 102, first interface; 103, first pipeline; 104, first valve; 105, second pipeline; 106, transmission roller; 107, rotating rod; 108, third pipeline; 2, mixing structure; 201, material tank; 202, second interface; 203, fourth pipeline; 204, conveying pump; 205, fifth pipeline; 206, second valve; 207, sixth pipeline; 3, cleaning structure; 301, second storage tank; 302, aeration device; 303, observation window; 304, seventh pipeline; 305, third valve. DETAILED DESCRIPTION

[0021] The technical solutions in the embodiments of the utility model will be clearly and completely described below with reference to the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, rather than all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the utility model.

[0022] Please refer to Figures 1-4 An embodiment provided by the utility model:

[0023] The high-efficiency cross-flow water collecting device of the sequencing batch reactor for sewage comprises a storage structure 1, a mixing structure 2 and a cleaning structure 3. The first storage tank 101 in the storage structure 1 is connected to the first pipeline 103 on one side through bolts. The first pipeline 103 is welded to the second pipeline 105 on one side. The second pipeline 105 is connected to the transmission roller 106 on one side through bolts. The transmission roller 106 is movably connected to the rotating rod 107 inside. The first storage tank 101 in the storage structure 1 is connected to the material tank 201 in the mixing structure 2 on one side through bolts. The material tank 201 is connected to the fourth pipeline 203 through the second interface 202 at the upper end. The fourth pipeline 203 is connected to the fifth pipeline 205 at the lower end through bolts. The third pipeline 108 in the storage structure 1 is connected to the second storage tank 301 in the cleaning structure 3 on one side through bolts. The second storage tank 301 is connected to the aeration device 302 inside through bolts.

[0024] Further, the first storage tank 101 in the storage structure 1 is connected to the first interface 102 at the upper end through bolts. The first storage tank 101 is used to store sewage so that the sewage can be transmitted to the cleaning structure 3 through the first storage tank 101.

[0025] Further, the first storage tank 101 is connected to the first pipeline 103 on one side through bolts. The first pipeline 103 is connected to the first valve 104 inside through bolts. The first valve 104 is connected to the second pipeline 105 on one side through bolts. The first pipeline 103 and the second pipeline 105 are used to transmit sewage. The first valve 104 is used to limit the flow of sewage.

[0026] Further, the second pipeline 105 is bolted to one side of the transmission roller 106, the transmission roller 106 is internally connected with the driving motor and the shaft coupling with the rotating rod 107, the transmission roller 106 is bolted to one side of the third pipeline 108, the rotating rod 107 inside the transmission roller 106 is used to mix the sewage and the cleaning agent.

[0027] Further, the second interface 202 is bolted to the upper end of the tank 201 in the mixing structure 2, the second interface 202 is bolted to one side of the fourth pipeline 203, the second interface 202 is used to connect with the fourth pipeline 203 so that the cleaning agent can be transmitted into the transmission roller 106.

[0028] Further, the fourth pipeline 203 is internally bolted to the delivery pump 204, the fourth pipeline 203 is bolted to the lower end of the fifth pipeline 205, the fifth pipeline 205 is bolted to one side of the second valve 206, the second valve 206 is bolted to one side of the sixth pipeline 207, the delivery pump 204 is used to transmit the cleaning agent, the fifth pipeline 205 and the sixth pipeline 207 are used to transmit the cleaning agent.

[0029] Further, the second storage tank 301 in the cleaning structure 3, the second storage tank 301 is internally bolted to the aeration device 302, the second storage tank 301 is bolted to one side of the observation window 303, the second storage tank 301 is bolted to one side of the seventh pipeline 304, the seventh pipeline 304 is internally bolted to the third valve 305, the second storage tank 301 is used to store the sewage, the aeration device 302 is used to aerate the sewage so that the impurities inside the sewage can be quickly precipitated, the observation window 303 is used to observe the sewage being treated, the third valve 305 is used to limit the flow of the sewage.

[0030] Working principle: when in use, the sewage is first transmitted into the first storage tank 101 through the first interface 102, the sewage is transmitted into the transmission roller 106 through the first pipeline 103, when the sewage enters into the transmission roller 106, the cleaning agent in the tank 201 is transmitted into the transmission roller 106 through the fifth pipeline 205 and fully mixed with the sewage, after the sewage is fully mixed with the cleaning agent, the sewage is transmitted into the second storage tank 301 through the third pipeline 108, after the sewage transmitted into the second storage tank 301 is treated by the aeration device 302, the third valve 305 is opened so that the third valve 305 is transmitted into the sedimentation tank for treatment.

[0031] The above merely describes preferred embodiments of the present application, and is not intended to limit the present application in any form; any person skilled in the art can smoothly implement the present application according to the drawings shown in the specification and the above description; however, any person skilled in the art can make slight changes, modifications and equivalent changes of the present application within the scope of the technical scheme of the present application, and the equivalent embodiments of the present application are still within the protection scope of the technical scheme of the present application.

Claims

1. A high-efficiency cross-flow water collecting device for a sequencing batch reactor, comprising: The storage structure (1), the mixing structure (2) and the cleaning structure (3) are characterized in that: one side of the first storage tank (101) in the storage structure (1) is connected with the first pipeline (103) by bolts, one side of the first pipeline (103) is welded with the second pipeline (105), one side of the second pipeline (105) is connected with the transmission roller (106) by bolts, the transmission roller (106) is movably connected with the rotating rod (107) inside, one side of the first storage tank (101) in the storage structure (1) is connected with the material tank (201) in the mixing structure (2) by bolts, the upper end of the material tank (201) is connected with the fourth pipeline (203) by the second interface (202), the lower end of the fourth pipeline (203) is connected with the fifth pipeline (205) by bolts, one side of the third pipeline (108) in the storage structure (1) is connected with the second storage tank (301) in the cleaning structure (3) by bolts, and the inside of the second storage tank (301) is connected with the aeration device (302) by bolts.

2. The high-efficiency cross-flow water collecting device for a sequencing batch reactor according to claim 1, characterized in that: The upper end of the first storage tank (101) in the storage structure (1) is connected with the first interface (102) by bolts.

3. The high-efficiency cross-flow water collecting device for a sequencing batch reactor according to claim 2, characterized in that: One side of the first storage tank (101) is connected with the first pipeline (103) by bolts, the inside of the first pipeline (103) is connected with the first valve (104) by bolts, and one side of the first valve (104) is connected with the second pipeline (105) by bolts.

4. The high-efficiency cross-flow water collecting device of a sequencing batch reactor for sewage treatment according to claim 3, characterized in that: One side of the second pipeline (105) is connected with the transmission roller (106) by bolts, the inside of the transmission roller (106) is connected with the rotating rod (107) through a driving motor and a shaft coupling, and one side of the transmission roller (106) is connected with the third pipeline (108) by bolts.

5. The high-efficiency cross-flow water collecting device of a sequencing batch reactor for sewage treatment according to claim 1, characterized in that: The upper end of the material tank (201) in the mixing structure (2) is connected with the second interface (202) by bolts, and one side of the second interface (202) is connected with the fourth pipeline (203) by bolts.

6. The high-efficiency cross-flow water collecting device of a sequencing batch reactor for sewage treatment according to claim 5, characterized in that: The inside of the fourth pipeline (203) is connected with the conveying pump (204) by bolts, the lower end of the fourth pipeline (203) is connected with the fifth pipeline (205) by bolts, one side of the fifth pipeline (205) is connected with the second valve (206) by bolts, and one side of the second valve (206) is connected with the sixth pipeline (207) by bolts.

7. The high-efficiency cross-flow water collecting device of a sequencing batch reactor for sewage treatment according to claim 1, characterized in that: The second storage tank (301) in the cleaning structure (3) is connected with the aeration device (302) inside by bolts, one side of the second storage tank (301) is connected with the observation window (303) by bolts, one side of the second storage tank (301) is connected with the seventh pipeline (304) by bolts, and the inside of the seventh pipeline (304) is connected with the third valve (305) by bolts.