Water pollution treatment device with carbon reduction function
By integrating a wastewater reaction tank, inlet pump, mixing unit, and exhaust gas combustion chamber into the water pollution treatment device, the environmental pollution problem caused by uncollected exhaust gas is solved, and efficient wastewater purification and exhaust gas heat utilization are achieved.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- THIRD CONSTR (GUIZHOU) ENG CONSTR CO LTD OF XIAN CONSTR ENG GRP
- Filing Date
- 2025-06-17
- Publication Date
- 2026-05-29
AI Technical Summary
Existing water pollution treatment devices with carbon reduction functions do not collect waste gas during the chemical purification process in the wastewater reaction tank, resulting in serious environmental pollution caused by harmful substances.
A water pollution treatment device was designed, comprising a sewage reaction tank, an inlet pump, a pumping pipe, a mixing component, a dosing component, a gas conveying component, and an exhaust gas combustion chamber. Sewage is pumped into the reaction tank through the pumping pipe, and after adding reagents, it is mixed and purified. The purified exhaust gas is transported to the exhaust gas combustion chamber through the gas conveying component for combustion, and the heat of combustion is used to solve the exhaust gas pollution problem.
It effectively collects and treats waste gas, reduces environmental pollution, improves wastewater purification efficiency, and utilizes the heat from waste gas combustion, achieving environmentally friendly carbon reduction treatment.
Smart Images

Figure CN224298927U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of water pollution treatment technology, and in particular to a water pollution treatment device with carbon reduction function. Background Technology
[0002] Wastewater refers to wastewater discharged from domestic and industrial processes that has been polluted to a certain extent. If it is discharged into natural water bodies without treatment or with insufficient treatment, it will lead to eutrophication and the accumulation of toxins. Existing wastewater treatment facilities occupy a lot of space and are not convenient for reducing carbon emissions while reducing pollution.
[0003] The prior art (CN117509769A) discloses a water pollution treatment device and method with carbon reduction function, including a main body. The top of the main body is equipped with a control component. First, the sewage is stored in the sewage reaction tank. Then, a chemical agent is dripped in for mixing and purification treatment. Subsequently, the sewage to be treated is purified through a primary purifier, a secondary purifier and a tertiary purifier to improve the quality of the sewage after purification. The chemical agent is dripped into the sewage reaction tank through a dosing device to purify the sewage. After the purification treatment is complete, the sewage is discharged, which improves the sewage purification efficiency and makes it more convenient to use.
[0004] However, by using the above method, since the waste gas is not collected during the chemical purification process of the wastewater reaction tank, the harmful substances generated by the waste gas will cause serious pollution to the environment. Utility Model Content
[0005] The purpose of this invention is to provide a water pollution treatment device with carbon reduction function, which aims to solve the problem that existing water pollution treatment devices with carbon reduction function do not collect waste gas during the chemical purification process of the sewage reaction tank, resulting in harmful substances generated by the waste gas causing serious environmental pollution.
[0006] To achieve the above objectives, this utility model provides a water pollution treatment device with carbon reduction function, including a base, a water treatment component and a wastewater reaction component, wherein the water treatment component is disposed on one side of the base;
[0007] The wastewater reaction assembly includes a wastewater reaction tank, an inlet pump, a pumping pipe, a water conveying component, a mixing component, a dosing component, a gas conveying component, and an exhaust gas combustion box;
[0008] The wastewater reaction tank is fixedly connected to the base and located on one side of the base; the inlet pump is connected to the wastewater reaction tank and located on one side of the wastewater reaction tank; the pumping pipe is connected to the inlet pump and located on one side of the inlet pump; the water conveying component is located on one side of the wastewater reaction tank; the mixing component is located on one side of the wastewater reaction tank; the dosing component is located on one side of the wastewater reaction tank; the gas conveying component is located on one side of the wastewater reaction tank; the exhaust gas combustion box is connected to the gas conveying component and located on one side of the gas conveying component.
[0009] The water conveying component includes a water pump and a water pipe. The water pump is connected to the wastewater reaction tank and is located on one side of the wastewater reaction tank. The water pipe is connected to the water pump and also to the water treatment component, and is located on one side of the water pump.
[0010] The mixing component includes a frame, a drive motor, a bearing housing, a coupling, and a mixing paddle. The frame is connected to the wastewater reaction tank and is located on one side of the wastewater reaction tank. The drive motor is fixedly connected to the frame and is located on one side of the frame. The bearing housing is fixedly connected to the output end of the drive motor and is located on one side of the drive motor. The coupling is fixedly connected to the bearing housing and is located on one side of the bearing housing. The mixing paddle is fixedly connected to the coupling and is located inside the wastewater reaction tank.
[0011] The dosing device includes a dosing pipe, a solenoid valve, and a storage tank. The dosing pipe is connected to the wastewater reaction tank and is located on one side of the wastewater reaction tank. The solenoid valve is connected to the dosing pipe and is located on one side of the dosing pipe. The storage tank is connected to the solenoid valve and is located on one side of the solenoid valve.
[0012] The gas supply component includes a vacuum pump and a gas supply pipe. The vacuum pump is connected to the wastewater reaction tank and is located on one side of the wastewater reaction tank. The gas supply pipe is connected to the vacuum pump and also to the waste gas combustion box, and is located on one side of the vacuum pump.
[0013] This utility model discloses a water pollution treatment device with carbon reduction function. During wastewater treatment, the pumping pipe, in conjunction with the inlet pump, draws wastewater into the wastewater reaction tank. The dosing device is then opened to inject the purification reaction agent into the wastewater reaction tank. The agent is rapidly mixed by the mixing device, and then the wastewater inside the reaction tank undergoes reaction purification treatment. After purification, the wastewater is transported to the water treatment component for multi-stage purification, thus completing the wastewater purification process. The waste gas generated during the reaction process is transported to the waste gas combustion chamber through the gas conveying device, where it is burned. The heat from the combustion is then utilized. This solves the problem of existing water pollution treatment devices with carbon reduction function failing to collect waste gas during the chemical purification process in the wastewater reaction tank, resulting in serious environmental pollution from the harmful substances produced. Attached Figure Description
[0014] To more clearly illustrate the technical solutions in the embodiments of this application or the prior art, the accompanying drawings used in the description of the embodiments or the prior art will be briefly introduced below.
[0015] Figure 1 This is a schematic diagram of the overall structure of this utility model.
[0016] Figure 2 This is a front view of the entire utility model.
[0017] Figure 3 This is a structural schematic diagram of the entire utility model from another angle.
[0018] Figure 4 This is a cross-sectional view of the entire utility model.
[0019] 101-Base, 102-Water treatment components, 103-Sewage reaction tank, 104-Inlet pump, 105-Pump pipe, 106-Water delivery component, 107-Mixing component, 108-Dosing component, 109-Gas delivery component, 110-Exhaust gas combustion box, 111-Water pump, 112-Water pipe, 113-Frame, 114-Drive motor, 115-Bearing housing, 116-Coupling, 117-Mixing paddle, 118-Dosing pipe, 119-Solenoid valve, 120-Drug storage tank, 121-Air pump, 122-Gas delivery pipe. Detailed Implementation
[0020] The embodiments of this utility model are described in detail below. Examples of these embodiments are shown in the accompanying drawings. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain this utility model, and should not be construed as limiting this utility model.
[0021] Please see Figures 1-4 ,in, Figure 1 This is a schematic diagram of the overall structure of this utility model. Figure 2 This is a front view of the entire utility model. Figure 3 This is a structural schematic diagram of the entire utility model from another angle. Figure 4 This is a cross-sectional view of the entire utility model.
[0022] This utility model provides a water pollution treatment device with carbon reduction function: it includes a base 101, a water treatment component 102, and a wastewater reaction component. The wastewater reaction component includes a wastewater reaction tank 103, an inlet pump 104, a pumping pipe 105, a water conveying component 106, a mixing component 107, a dosing component 108, a gas conveying component 109, and a waste gas combustion chamber 110. The water conveying component 106 includes a water pump 111 and a water conveying pipe 112. The mixing component 107 includes a frame 113 and a drive motor. 114, bearing housing 115, coupling 116, and mixing paddle 117; the dosing component 108 includes a dosing pipe 118, a solenoid valve 119, and a chemical storage tank 120; the gas supply component 109 includes a vacuum pump 121 and a gas supply pipe 122. The aforementioned solution solves the problem that existing water pollution treatment devices with carbon reduction functions do not collect waste gas during the chemical purification process of the wastewater reaction tank, resulting in serious environmental pollution caused by harmful substances generated from the waste gas.
[0023] In this specific embodiment, the water treatment component 102 is disposed on one side of the base 101 and is used to cooperate with the wastewater reaction component to treat wastewater. The water treatment component 102 is prior art, and for details, please refer to the water treatment component 102 in the patent document with publication number CN117509769A.
[0024] The wastewater reaction tank 103 is fixedly connected to the base 101 and located on one side of the base 101; the inlet pump 104 is connected to the wastewater reaction tank 103 and located on one side of the wastewater reaction tank 103; the pumping pipe 105 is connected to the inlet pump 104 and located on one side of the inlet pump 104; the water conveying component 106 is located on one side of the wastewater reaction tank 103; the mixing component 107 is located on one side of the wastewater reaction tank 103; the dosing component 108 is located on one side of the wastewater reaction tank 103; the gas conveying component 109 is located on one side of the wastewater reaction tank 103; the exhaust gas combustion box 110 is connected to the gas conveying component 109 and located on one side of the gas conveying component 109. The pumping pipe 105, in conjunction with the inlet pump 104, pumps wastewater into the wastewater reaction tank 103, and the dosing component 108 is opened. The reagent for purification reaction is injected into the sewage reaction tank 103 to purify the sewage inside. After purification, the sewage is transported to the water treatment component 102 for multi-stage purification, thus completing the purification of the sewage. The waste gas generated during the reaction is transported to the waste gas combustion box 110 through the gas conveying component 109. The waste gas is burned in the waste gas combustion box 110, and the heat from the combustion is utilized. The waste gas combustion box 110 is an integrated waste gas combustion circulation box of the prior art, specifically referring to the patent document with publication number CN204611795U. This solves the problem that existing water pollution treatment devices with carbon reduction function do not collect waste gas during the reagent purification process of the sewage reaction tank, so the harmful substances generated by the waste gas will cause serious pollution to the environment.
[0025] Secondly, the water pump 111 is connected to the wastewater reaction tank 103 and is located on one side of the wastewater reaction tank 103; the water pipe 112 is connected to the water pump 111 and the water treatment component 102, and is located on one side of the water pump 111. The water pump 111 is used in conjunction with the water pipe 112 to transport the purified wastewater to the water treatment component 102 for further treatment of the wastewater after the reaction.
[0026] Meanwhile, the frame 113 is connected to the wastewater reaction tank 103 and is located on one side of the wastewater reaction tank 103; the drive motor 114 is fixedly connected to the frame 113 and is located on one side of the frame 113; the bearing seat 115 is fixedly connected to the output end of the drive motor 114 and is located on one side of the drive motor 114; the coupling 116 is fixedly connected to the bearing seat 115 and is located on one side of the bearing seat 115; the mixing paddle 117 is fixedly connected to the coupling 116 and is located inside the wastewater reaction tank 103. When the reagent for purification reaction is added into the wastewater reaction tank 103, the drive motor 114 on the frame 113 drives the coupling 116 through the bearing seat 115, thereby driving the mixing paddle 117 to fully mix the wastewater and reagent in the wastewater reaction tank 103, increasing the reaction effect of the wastewater and reagent.
[0027] In addition, the dosing pipe 118 is connected to the wastewater reaction tank 103 and is located on one side of the wastewater reaction tank 103; the solenoid valve 119 is connected to the dosing pipe 118 and is located on one side of the dosing pipe 118; the storage tank 120 is connected to the solenoid valve 119 and is located on one side of the solenoid valve 119. The storage tank 120 is used to store the reagents for the purification reaction. When the solenoid valve 119 is opened, the reagents are injected into the wastewater reaction tank 103 through the dosing pipe 118.
[0028] Furthermore, the vacuum pump 121 is connected to the wastewater reaction tank 103 and is located on one side of the wastewater reaction tank 103; the gas supply pipe 122 is connected to the vacuum pump 121 and the waste gas combustion box 110, and is located on one side of the vacuum pump 121. The waste gas generated inside the wastewater reaction tank 103 is transported to the waste gas combustion box 110 through the vacuum pump 121 and the gas supply pipe 122.
[0029] In using this invention, the pumping pipe 105, in conjunction with the inlet pump 104, pumps wastewater into the wastewater reaction tank 103. The solenoid valve 119 is opened, and the chemical agent is injected into the wastewater reaction tank 103 through the dosing pipe 118. The drive motor 114 on the frame 113 drives the coupling 116 through the bearing seat 115, causing the mixing paddle 117 to thoroughly mix the wastewater and chemical agent in the wastewater reaction tank 103, increasing the reaction effect between the wastewater and the chemical agent. After purification, the wastewater is then transported to the water treatment plant. The wastewater is purified through multi-stage purification by the treatment component 102. The waste gas generated during the reaction process is transported to the waste gas combustion chamber 110 by the exhaust pump 121 and the gas supply pipe 122. The waste gas is then burned in the waste gas combustion chamber 110, and the heat from the combustion is utilized. This solves the problem that existing water pollution treatment devices with carbon reduction functions do not collect waste gas during the chemical purification process of the wastewater reaction tank, resulting in serious environmental pollution caused by the harmful substances generated by the waste gas.
[0030] The above-disclosed embodiments are merely one or more preferred embodiments of this application and should not be construed as limiting the scope of this application. Those skilled in the art can understand that implementing all or part of the above embodiments and making equivalent changes in accordance with the claims of this application still fall within the scope of this application.
Claims
1. A water pollution treatment device with carbon reduction function, comprising a base and a water treatment component, wherein the water treatment component is disposed on one side of the base; characterized in that, It also includes wastewater reaction components; The wastewater reaction assembly includes a wastewater reaction tank, an inlet pump, a pumping pipe, a water conveying component, a mixing component, a dosing component, a gas conveying component, and an exhaust gas combustion box; The wastewater reaction tank is fixedly connected to the base and located on one side of the base; the inlet pump is connected to the wastewater reaction tank and located on one side of the wastewater reaction tank; the pumping pipe is connected to the inlet pump and located on one side of the inlet pump; the water conveying component is located on one side of the wastewater reaction tank; the mixing component is located on one side of the wastewater reaction tank; the dosing component is located on one side of the wastewater reaction tank; the gas conveying component is located on one side of the wastewater reaction tank; the exhaust gas combustion box is connected to the gas conveying component and located on one side of the gas conveying component.
2. A water pollution treatment device with carbon reduction function as described in claim 1, characterized in that, The water conveying component includes a water pump and a water pipe. The water pump is connected to the wastewater reaction tank and is located on one side of the wastewater reaction tank. The water pipe is connected to the water pump and also to the water treatment component, and is located on one side of the water pump.
3. A water pollution treatment device with carbon reduction function as described in claim 2, characterized in that, The mixing component includes a frame, a drive motor, a bearing housing, a coupling, and a mixing paddle. The frame is connected to the wastewater reaction tank and is located on one side of the wastewater reaction tank. The drive motor is fixedly connected to the frame and is located on one side of the frame. The bearing housing is fixedly connected to the output end of the drive motor and is located on one side of the drive motor. The coupling is fixedly connected to the bearing housing and is located on one side of the bearing housing. The mixing paddle is fixedly connected to the coupling and is located inside the wastewater reaction tank.
4. A water pollution treatment device with carbon reduction function as described in claim 3, characterized in that, The dosing device includes a dosing pipe, a solenoid valve, and a storage tank. The dosing pipe is connected to the wastewater reaction tank and is located on one side of the wastewater reaction tank. The solenoid valve is connected to the dosing pipe and is located on one side of the dosing pipe. The storage tank is connected to the solenoid valve and is located on one side of the solenoid valve.
5. A water pollution treatment device with carbon reduction function as described in claim 4, characterized in that, The gas supply component includes a vacuum pump and a gas supply pipe. The vacuum pump is connected to the wastewater reaction tank and is located on one side of the wastewater reaction tank. The gas supply pipe is connected to the vacuum pump and also to the waste gas combustion box, and is located on one side of the vacuum pump.