A green building sewage treatment device

By designing wastewater treatment equipment suitable for green buildings, the problems of heavy burden on wastewater treatment plants and transportation congestion have been solved, achieving flexible and efficient wastewater treatment results.

CN121318069BActive Publication Date: 2026-04-28SHANDONG FAR EAST CONSTR ENG CO LTD +1
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
SHANDONG FAR EAST CONSTR ENG CO LTD
Filing Date
2025-12-10
Publication Date
2026-04-28

AI Technical Summary

Technical Problem

In existing green building wastewater treatment, wastewater is generated intermittently and at unpredictable times, resulting in a heavy workload for wastewater treatment plants and easy blockage during transportation, which affects the treatment effect.

Method used

Design a wastewater treatment device that includes a filtration structure, a planting structure, a crushing structure, a feeding structure, a dosing structure, and a mixing structure. The device treats wastewater through steps such as filtration, crushing, storage, dosing, and mixing, adapting to wastewater with different compositions and reducing transportation time and the risk of blockage.

Benefits of technology

It enables flexible handling of different wastewater components, reduces the pressure on wastewater treatment plants, improves treatment efficiency, prevents pipe blockage, ensures wastewater treatment effect, and expands the scope of application.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The green building sewage treatment equipment disclosed by the present application comprises a treatment box, a filter structure is arranged on the top of the treatment box, a planting structure is arranged on the filter structure, a sewage tank is arranged in the treatment box, and a solid-liquid separation structure is arranged on one side of the treatment box; a sewage storage structure is arranged in the sewage tank, a sewage treatment structure is further arranged in the sewage tank, a crushing structure and a feeding structure are arranged in the sewage storage structure, and the feeding structure corresponds to the sewage treatment structure. In the green building sewage treatment equipment disclosed by the present application, different pretreatment actions can be performed on different sewage according to the specific components of the sewage, so that the device is more flexible to use, the application range of the device is expanded, so that the device can treat sewage with different components, and the crushing structure can crush larger impurities in the sewage, so as to prevent the larger impurities from causing blockage of the sewage pipe network.
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Description

Technical Field

[0001] This disclosure relates to the field of wastewater treatment technology, and more particularly to a wastewater treatment device for green buildings. Background Technology

[0002] Green buildings refer to buildings that achieve energy conservation and emission reduction. Throughout their entire life cycle, they conserve resources, protect the environment, reduce pollution, and provide people with healthy, suitable, and efficient living spaces, maximizing the harmonious coexistence of humans and nature. Since people's lives generate a certain amount of wastewater, wastewater treatment devices are used to treat building wastewater in order to achieve green environmental protection.

[0003] Currently, most wastewater treatment methods for green buildings involve directly feeding wastewater into the municipal sewage network for centralized treatment at wastewater treatment plants. However, since wastewater is not always generated but rather intermittently and at unpredictable times, centralized treatment can place a heavy burden on wastewater treatment plants. Furthermore, wastewater can easily cause blockages in the pipes during transportation, thus affecting the effectiveness of wastewater transportation and treatment. Summary of the Invention

[0004] This disclosure aims to at least partially address one of the technical problems in the related art.

[0005] Therefore, the purpose of this disclosure is to provide a wastewater treatment device for green buildings.

[0006] To achieve the above objectives, this disclosure provides a wastewater treatment device for green buildings, comprising: a treatment tank, wherein a filter structure is installed on the top of the treatment tank, a planting structure is installed on the filter structure, a wastewater tank is installed inside the treatment tank, and a solid-liquid separation structure is installed on one side of the treatment tank; a wastewater storage structure is installed inside the wastewater tank, and a wastewater treatment structure is also installed inside the wastewater tank, wherein a crushing structure and a feeding structure are installed inside the wastewater storage structure, the feeding structure corresponds to the wastewater treatment structure; a dosing structure is installed inside the treatment tank; a dispersing structure is slidably fitted inside the treatment tank; a connecting structure is installed between the dispersing structure and the dosing structure; and a stirring structure is installed inside the wastewater treatment structure, the stirring structure corresponding to the dispersing structure.

[0007] Optionally, the filtration structure includes: a first filter plate and a second filter plate; wherein the first filter plate and the second filter plate are both fixed inside the treatment box; the planting structure includes a planting trough opened at the top of the treatment box, the planting trough being located above the first filter plate, and a filter layer is installed between the first filter plate and the second filter plate; wherein a guide plate is installed on the lower side of the second filter plate, the guide plate is fixedly connected to the treatment box, and the top of the guide plate has a sloping structure; wherein the planting trough is filled with soil, and water-purifying plants are planted in the soil; a first sewage pipe is installed in the planting trough, the first sewage pipe including a main pipe and multiple branch pipes fixed to the main pipe, and multiple sewage holes are opened on the branch pipes.

[0008] Optionally, the wastewater storage structure includes: a storage chamber located inside a wastewater tank; a wastewater treatment structure includes a reaction chamber, with a partition fixed between the reaction chamber and the storage chamber; wherein the wastewater discharged from the first drain pipe, after being filtered by water-purifying plants, soil, and a filter layer, enters the reaction chamber through a guide plate; wherein a second drain pipe is fixed to one side of the treatment tank, with one end of the second drain pipe located inside the storage chamber, and a pulverizing structure corresponding to the second drain pipe.

[0009] Optionally, the pulverizing structure includes: a pulverizing box, which is fixed inside the storage cavity. The top of the pulverizing box has a feed inlet connected to the second drain pipe, and the side of the pulverizing box has a discharge outlet. A pulverizing frame is fixed inside the pulverizing box, and a motor is fixed at the bottom of the pulverizing box. A pulverizing head is fixed at the output end of the motor, and the pulverizing head corresponds to the pulverizing frame. A dredging rod is fixed on the pulverizing head, and the dredging rod corresponds to the feed inlet and the second drain pipe.

[0010] Optionally, the feeding structure includes: a feeding box, which is fixed inside the storage cavity, a material pump is fixed inside the feeding box, a feeding pipe is fixed at the feeding end of the material pump, a discharging pipe is fixed at the discharging end of the material pump, the feeding pipe is connected to the storage cavity, and the discharging pipe is connected to the reaction cavity.

[0011] Optionally, the solid-liquid separation structure includes: a filter box, which is installed on one side of the processing box, and a first drain pipe is fixed between the filter box and the processing box. The first drain pipe is connected to the reaction chamber and the filter box, and an electric valve is installed on the first drain pipe; wherein, a sludge pump is fixed on the filter box, a third filter plate is fixed inside the filter box, and a second drain pipe is fixed on one side of the filter box.

[0012] Optionally, the dispersing structure includes: multiple dispersing rods; a sliding frame is slidably fitted inside the processing box; the sliding frame is fixedly connected to the dispersing rods; an electric slide rail is fixed inside the processing box; the output end of the electric slide rail is fixedly connected to the sliding frame; and the dispersing rods are located inside the storage cavity. The electric slide rail drives the sliding frame to slide, thereby causing the dispersing rods to slide within the storage cavity, thus driving the mud and water in the storage cavity to be stirred and mixed.

[0013] Optionally, the stirring structure includes: a stirring rod, with a rotating ball fixed at the end of the stirring rod, and a rotating groove corresponding to the rotating ball inside the processing chamber; wherein, a sliding ring is slidably fitted on the stirring rod, a first pull rod is fixed on the sliding frame, and a second pull rod is fixed between the first pull rod and the sliding ring, and the sliding frame is driven to slide by an electric slide rail, thereby pulling the stirring rod to rotate and stir the reaction chamber.

[0014] Optionally, the connecting structure includes: a connecting rod, which is a U-shaped structure, corresponding to the dosing structure. The dosing structure includes a medicine box, with a dosing chamber on the top of the medicine box. A piston is slidably fitted inside the dosing chamber, and the piston is fixedly connected to the connecting rod. A sliding groove is provided on the medicine box, corresponding to the connecting rod.

[0015] Optionally, the dosing structure further includes: a dosing pipe fixed inside the reagent tank; a dispensing pipe fixed to one side of the reagent tank; the dispensing pipe connected to the reaction chamber; both the dosing pipe and the dispensing pipe connected to the extraction chamber; and a one-way valve installed at the end of both the dosing pipe and the end of the dispensing pipe. By pulling the connecting rod, the piston slides, generating negative pressure in the extraction chamber, allowing the drug to be dispensed through the dispensing pipe. Then, the piston is pushed, pushing the drug out of the dispensing pipe into the reaction chamber.

[0016] The technical solution provided in this disclosure may include the following beneficial effects:

[0017] 1. Wastewater can be pretreated through filtration, planting, and pulverizing structures. Different pretreatment actions can be performed on different types of wastewater based on their specific composition, making the device more flexible and expanding its application range. This allows the device to treat wastewater with different compositions. Furthermore, the pulverizing structure can crush larger impurities in the wastewater, preventing them from clogging the wastewater pipe network and ensuring the effective transportation and treatment of wastewater.

[0018] 2. It can be installed directly under green buildings, thereby directly treating the discharged sewage, reducing sewage transportation time, relieving the pressure on sewage treatment plants, saving sewage transportation time, reducing the risk of pipe blockage, and improving the efficiency of sewage treatment.

[0019] 3. The storage chamber can store sewage, allowing for the collection of intermittently discharged sewage. This enables the treatment of smaller quantities of sewage at a time, ensuring effective sewage treatment and reducing the pressure on larger sewage treatment processes. Additionally, the dispersed structure prevents sludge residue from remaining in the sewage tank, facilitating sludge collection and treatment.

[0020] Additional aspects and advantages of this disclosure will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of this disclosure. Attached Figure Description

[0021] The above and / or additional aspects and advantages of this disclosure will become apparent and readily understood from the following description of the embodiments taken in conjunction with the accompanying drawings, in which:

[0022] Figure 1 This is a schematic diagram of the overall assembled three-dimensional structure of a wastewater treatment device for a green building according to an embodiment of this disclosure;

[0023] Figure 2 This is a schematic diagram of the overall assembly cross-sectional structure of a wastewater treatment device for a green building according to an embodiment of this disclosure;

[0024] Figure 3 This is a schematic cross-sectional view of the filter box assembly in a wastewater treatment device for a green building according to an embodiment of this disclosure;

[0025] Figure 4 This is a schematic cross-sectional view of the pulverizing box assembly in a wastewater treatment device for a green building according to an embodiment of this disclosure;

[0026] Figure 5 This is a schematic diagram of the assembled three-dimensional structure of the sewage tank in a green building sewage treatment device according to an embodiment of this disclosure;

[0027] Figure 6 This is a schematic cross-sectional view of the assembly structure of the reagent tank in a wastewater treatment device for a green building according to an embodiment of this disclosure;

[0028] Figure 7 This is a schematic cross-sectional view of the assembly structure of the treatment tank and the sewage tank in the wastewater treatment equipment of a green building according to an embodiment of this disclosure;

[0029] Figure 8 This is a schematic diagram of the assembly structure of the treatment tank and reaction chamber in a wastewater treatment device for a green building according to an embodiment of this disclosure;

[0030] Figure 9 yes Figure 8 A schematic diagram at point A in the middle;

[0031] Figure 10 This is a schematic diagram of the assembly structure of the treatment tank and stirring rod in a wastewater treatment device for a green building according to an embodiment of this disclosure;

[0032] As shown in the figure: 101, processing box; 102, planting trough; 103, first filter plate; 104, second filter plate; 105, filter layer; 106, guide plate; 107, first drain pipe; 108, main pipe; 109, branch pipe; 110, drain hole;

[0033] 201. Wastewater tank; 202. Partition; 203. Storage chamber; 204. Reaction chamber; 205. Second drain pipe;

[0034] 301. Crushing box; 302. Motor; 303. Crushing head; 304. Feed inlet; 305. Crushing frame; 306. Discharge outlet; 307. Unclogging rod;

[0035] 401. Feeding box; 402. Material pump; 403. Feed pipe; 404. Discharge pipe;

[0036] 501. First drain pipe; 502. Electric valve; 503. Filter box; 504. Sewage pump; 505. Third filter plate; 506. Second drain pipe;

[0037] 601. Stirring rod; 602. Rotating ball; 603. Rotating groove; 604. First pull rod; 605. Sliding ring; 606. Second pull rod;

[0038] 701. Electric slide rail; 702. Sliding frame; 703. Dispersing rod;

[0039] 801. Medicine tank; 802. Medicine inlet pipe; 803. Medicine outlet pipe; 804. One-way valve; 805. Medicine extraction chamber; 806. Piston; 807. Sliding groove; 808. Connecting rod. Detailed Implementation

[0040] Embodiments of this disclosure are described in detail below, examples of which are illustrated in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and are used only to explain this disclosure, and should not be construed as limiting this disclosure. Rather, embodiments of this disclosure include all variations, modifications, and equivalents falling within the spirit and scope of the appended claims.

[0041] like Figures 1 to 10As shown in the figure, this disclosure proposes a wastewater treatment device for green buildings, including: a treatment tank 101, the top of which is equipped with a filter structure and a planting structure; a wastewater tank 201 inside the treatment tank 101; a solid-liquid separation structure on one side of the treatment tank 101; a wastewater storage structure installed inside the wastewater tank 201; a wastewater treatment structure installed inside the wastewater tank 201; a crushing structure and a feeding structure inside the wastewater storage structure, the feeding structure corresponding to the wastewater treatment structure; a dosing structure inside the treatment tank 101; a dispersing structure slidingly fitted inside the treatment tank 101; a connecting structure between the dispersing structure and the dosing structure; and a stirring structure inside the wastewater treatment structure, the stirring structure corresponding to the dispersing structure.

[0042] In this embodiment, the filtration structure includes a first filter plate 103 and a second filter plate 104. Both the first filter plate 103 and the second filter plate 104 are fixed inside the treatment box 101. The planting structure includes a planting trough 102 located on the top of the treatment box 101, above the first filter plate 103. A filter layer 105 is installed between the first filter plate 103 and the second filter plate 104. A guide plate 106 is installed below the second filter plate 104 and is fixedly connected to the treatment box 101. The top of the guide plate 106 has a sloping structure. The planting trough 102 is filled with soil, and water-purifying plants are planted in the soil. A first drain pipe 107 is installed inside the planting trough 102. The first drain pipe 107 includes a main pipe 108 and multiple branch pipes 109 fixed to the main pipe 108. Multiple drain holes 110 are opened on the branch pipes 109.

[0043] Specifically, for some wastewater that can be directly filtered and purified, it can be discharged directly through the first sewage pipe 107, allowing the wastewater to flow onto the water-purifying plants. The plants will then preliminarily process the wastewater. As the wastewater permeates downwards, it can be filtered through the soil and filter layer 105, thus achieving a good filtration and purification effect. The wastewater can then flow through the guide plate 106 into the reaction chamber 204 for further treatment, ensuring the treatment effect. Furthermore, the more even discharge of wastewater through multiple branch pipes 109 can prevent large water flows from causing significant impact on the plants and soil, thereby preventing rapid soil erosion and providing a better protection for the soil. This decentralized discharge also improves the efficiency of wastewater purification.

[0044] The wastewater storage structure includes a storage cavity 203, which is located inside the wastewater tank 201. The wastewater treatment structure includes a reaction chamber 204, and a partition 202 is fixed between the reaction chamber 204 and the storage cavity 203. The wastewater discharged from the first drain pipe 107 is filtered by water-purifying plants, soil, and a filter layer 105, and then flows into the reaction chamber 204 through a guide plate 106. A second drain pipe 205 is fixed to one side of the treatment tank 101, and one end of the second drain pipe 205 is located inside the storage cavity 203. The pulverizing structure corresponds to the second drain pipe 205.

[0045] Specifically, wastewater can be collected and treated through the storage chamber 203, and the pretreated wastewater can be further treated with chemicals through the reaction chamber 204, thereby improving the wastewater treatment effect. In addition, wastewater that is discharged intermittently can be collected through the storage chamber 203, so that a small portion of the collected wastewater can be treated with chemicals each time. This can prevent the device from being overloaded by treating a large amount of wastewater at once, thus ensuring the wastewater treatment effect. Furthermore, different types of wastewater can be treated separately. For example, after the filtered wastewater is treated with chemicals, the wastewater in the storage chamber 203 can be treated with chemicals, making the device more flexible to use and expanding its application range.

[0046] The crushing structure includes: a crushing box 301, which is fixed inside the storage cavity 203. The top of the crushing box 301 has a feed inlet 304, which is connected to the second drain pipe 205. The side of the crushing box 301 has a discharge outlet 306. A crushing frame 305 is fixed inside the crushing box 301. A motor 302 is fixed at the bottom of the crushing box 301. A crushing head 303 is fixed at the output end of the motor 302. The crushing head 303 corresponds to the crushing frame 305. A dredging rod 307 is fixed on the crushing head 303. The dredging rod 307 corresponds to the feed inlet 304 and the second drain pipe 205.

[0047] Specifically, for the sewage discharged from the second sewage pipe 205, the motor 302 can drive the pulverizing head 303 to rotate, so that the pulverizing head 303 and the pulverizing frame 305 can crush and pulverize the larger impurities in the sewage. This can prevent the larger impurities from clogging the pipe and the feed pump 402, thus ensuring smooth sewage treatment and transportation. Furthermore, the pulverizing head 303 can drive the unblocking rod 307 to rotate, thereby achieving a better unblocking effect on the second sewage pipe 205, preventing the second sewage pipe 205 from becoming blocked, and ensuring that the second sewage pipe 205 can discharge sewage relatively smoothly.

[0048] The feeding structure includes: a feeding box 401, which is fixed inside the storage cavity 203. A material pump 402 is fixed inside the feeding box 401. A feeding pipe 403 is fixed at the feeding end of the material pump 402, and a discharge pipe 404 is fixed at the discharge end of the material pump 402. The feeding pipe 403 is connected to the storage cavity 203, and the discharge pipe 404 is connected to the reaction cavity 204.

[0049] Specifically, when further treatment of the wastewater stored in the storage chamber 203 is required, the feed pump 402 can be started, so that the feed pump 402 draws the material in the storage chamber 203 through the feed pipe 403 and sends the material out through the discharge pipe 404 into the reaction chamber 204 for further reaction treatment, thereby ensuring the effectiveness of wastewater treatment.

[0050] The solid-liquid separation structure includes: a filter box 503, which is installed on one side of the processing box 101. A first drain pipe 501 is fixed between the filter box 503 and the processing box 101. The first drain pipe 501 is connected to the reaction chamber 204 and the filter box 503. An electric valve 502 is installed on the first drain pipe 501. A sludge pump 504 is fixed on the filter box 503. A third filter plate 505 is fixed inside the filter box 503. A second drain pipe 506 is fixed on one side of the filter box 503.

[0051] Specifically, for the wastewater after the reaction treatment is completed, the electric valve 502 is opened, and the wastewater can automatically flow out from the first drain pipe 501 into the filter box 503. After being filtered by the third filter plate 505, the wastewater is discharged through the second drain pipe 506, thereby achieving the filtration of mud and water. The sludge can be pumped out by the sludge pump 504, which facilitates the treatment of sludge and prevents sludge accumulation from clogging the third filter plate 505, thus ensuring the filtration effect of the third filter plate 505.

[0052] The dispersing structure includes: multiple dispersing rods 703; a sliding frame 702 is slidably fitted inside the processing box 101; the sliding frame 702 is fixedly connected to the dispersing rods 703; an electric slide rail 701 is fixed inside the processing box 101; the output end of the electric slide rail 701 is fixedly connected to the sliding frame 702; and the dispersing rods 703 are located inside the storage cavity 203. The electric slide rail 701 drives the sliding frame 702 to slide, thereby causing the dispersing rods 703 to slide within the storage cavity 203, thus mixing the mud and water within the storage cavity 203.

[0053] Specifically, when the stored wastewater is pumped out for further treatment, the electric slide rail 701 is activated. The electric slide rail 701 drives the sliding frame 702 to slide, which in turn drives the dispersing rod 703 to slide. This can stir the wastewater in the storage chamber 203, prevent the crushed impurities from settling, and allow the impurities to be pumped out together. This prevents sludge from remaining in the wastewater tank 201, making it easier to clean the sludge and preventing sludge from settling and causing the water level to rise, which would affect subsequent wastewater treatment.

[0054] The stirring structure includes: a stirring rod 601, with a rotating ball 602 fixed to the end of the stirring rod 601; a rotating groove 603 is provided inside the processing box 101, and the rotating groove 603 corresponds to the rotating ball 602; wherein, a sliding ring 605 is slidably fitted on the stirring rod 601; a first pull rod 604 is fixed on the sliding frame 702; a second pull rod 606 is fixed between the first pull rod 604 and the sliding ring 605; the sliding frame 702 is driven to slide by the electric slide rail 701, thereby pulling the stirring rod 601 to rotate and stir the reaction chamber 204.

[0055] Specifically, the sliding frame 702 is driven to slide by the electric slide rail 701, which in turn drives the second pull rod 606 to move via the first pull rod 604, thereby actuating the stirring rod 601. The stirring rod 601 stirs the sewage in the reaction chamber 204, thereby accelerating the mixing efficiency of sewage and reagents, preventing sludge from settling in the reaction chamber 204, and facilitating subsequent sludge cleaning.

[0056] The connecting structure includes a connecting rod 808, which is U-shaped and corresponds to the dosing structure. The dosing structure includes a medicine tank 801, with a suction chamber 805 at the top. A piston 806 is slidably fitted inside the suction chamber 805 and is fixedly connected to the connecting rod 808. A sliding groove 807 is provided on the medicine tank 801, corresponding to the connecting rod 808. The dosing structure also includes a dosing inlet pipe 802, which is fixed to the medicine tank 801. Inside 01, a dispensing pipe 803 is fixed on one side of the medicine tank 801. The dispensing pipe 803 is connected to the reaction chamber 204. Both the inlet pipe 802 and the dispensing pipe 803 are connected to the extraction chamber 805. One-way valves 804 are installed at the ends of the inlet pipe 802 and the dispensing pipe 803. By pulling the connecting rod 808, the piston 806 is driven to slide, and a negative pressure is generated in the extraction chamber 805. The medicine is fed through the dispensing pipe 803, and then the piston 806 is pushed to push the medicine out of the dispensing pipe 803 into the reaction chamber 204.

[0057] Specifically, when the electric slide rail 701 drives the sliding frame 702 to slide, the connecting rod 808 can drive the piston 806 to move, thereby realizing the action of extracting and injecting the medicine. The medicine tank 801 can be set with multiple upper and lower layered cavity structures, storing different medicines in different cavities for treating different types of sewage. Multiple medicine inlets are set around the periphery of the medicine inlet pipe 802 and connected to the wall. Electric valves are installed in the medicine inlets to improve the flexibility of the device, enabling it to treat sewage with different components, expanding the applicability of the device, and ensuring the treatment effect of sewage.

[0058] Workflow: For wastewater that can be directly filtered and purified, it can be discharged directly through the first drain pipe 107, allowing the wastewater to flow onto the water-purifying plants for initial purification. As the wastewater permeates downwards, it is filtered through the soil and filter layer 105, achieving a good filtration and purification effect. The wastewater then flows through the guide plate 106 into the reaction chamber 204 for further treatment. It can be collected and treated through the storage chamber 203. The pre-treated wastewater undergoes further chemical reaction treatment in the reaction chamber 204, improving the wastewater treatment efficiency. Additionally, the storage chamber 203 can collect indirectly discharged wastewater. Each time, a small portion of the collected wastewater is treated with chemicals, preventing the system from being overburdened by treating a large amount of wastewater at once. For wastewater discharged from the second drain pipe 205, the motor 302 drives the pulverizing head 303 to rotate, causing the pulverizing head 303 and pulverizing frame 305 to crush larger impurities in the wastewater. This prevents larger impurities from clogging the pipes and pump 402, ensuring smooth wastewater treatment and transportation. Furthermore, the pulverizing head 303 drives the unblocking rod 307 to rotate, effectively unblocking the second drain pipe 205 and preventing blockage. When further treatment of the wastewater stored in the storage chamber 203 is required... At this time, the material pump 402 can be started, so that the material pump 402 draws the material in the storage chamber 203 through the feed pipe 403 and sends the material out into the reaction chamber 204 for further reaction processing through the discharge pipe 404. When the electric slide rail 701 drives the sliding frame 702 to slide, the piston 806 can be driven to move through the connecting rod 808, thereby realizing the action of drawing out and injecting the medicine, sending the medicine into the reaction chamber 204. At the same time, the electric slide rail 701 drives the sliding frame 702 to slide, thereby driving the dispersing rod 703 to slide, which can play a certain role in stirring the sewage in the storage chamber 203 and prevent the crushed impurities from settling. The electric slide rail 701 drives the sliding frame 702 to slide, which can drive the first pull rod 604 to drive the second The movement of the second pull rod 606 drives the stirring rod 601 to agitate the wastewater in the reaction chamber 204, thereby accelerating the mixing efficiency of wastewater and reagents, preventing sludge sedimentation in the reaction chamber 204, and facilitating subsequent sludge cleaning. For wastewater that has completed the reaction treatment, opening the electric valve 502 allows the wastewater to automatically flow out from the first drain pipe 501 into the filter box 503. After being filtered by the third filter plate 505, the wastewater is discharged through the second drain pipe 506, thus achieving the filtration of mud and water. The sludge can also be pumped out by the sludge pump 504 for easy sludge treatment, preventing sludge accumulation from clogging the third filter plate 505, thereby ensuring the filtration effect of the third filter plate 505.

[0059] In the description of this disclosure, the terms "first," "second," etc., are used for descriptive purposes only and should not be construed as indicating or implying relative importance. Furthermore, in the description of this disclosure, unless otherwise stated, "a plurality of" means two or more.

[0060] Any process or method description in the flowchart or otherwise herein can be understood as representing a module, segment, or portion of code comprising one or more executable instructions for implementing a particular logical function or process, and the scope of preferred embodiments of this disclosure includes additional implementations in which functions may be performed not in the order shown or discussed, including substantially simultaneously or in reverse order depending on the function involved, as will be understood by those skilled in the art to which embodiments of this disclosure pertain.

[0061] In the description of this specification, the references to terms such as "one embodiment," "some embodiments," "example," "specific example," or "some examples," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of this disclosure. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples.

[0062] Although embodiments of the present disclosure have been shown and described above, it is understood that the above embodiments are exemplary and should not be construed as limiting the present disclosure. Those skilled in the art can make changes, modifications, substitutions and variations to the above embodiments within the scope of the present disclosure.

Claims

1. A wastewater treatment device for green buildings, characterized in that, include: The treatment box (101) is equipped with a filter structure on the top and a planting structure on the filter structure. The treatment box (101) is equipped with a sewage tank (201) and a solid-liquid separation structure is installed on one side of the treatment box (101). A wastewater storage structure is installed inside a wastewater tank (201). The wastewater tank (201) also contains a wastewater treatment structure. The wastewater storage structure includes a crushing structure and a feeding structure, with the feeding structure corresponding to the wastewater treatment structure. A dosing structure is installed inside a treatment tank (101), and a dispersing structure is slidably fitted inside the treatment tank (101). A connecting structure is installed between the dispersing structure and the dosing structure. A stirring structure is installed inside the wastewater treatment structure, with the stirring structure corresponding to the dispersing structure. The filtration structure includes: First filter plate (103), second filter plate (104); The first filter plate (103) and the second filter plate (104) are both fixed inside the processing box (101). The planting structure includes a planting trough (102) opened at the top of the processing box (101). The planting trough (102) is located on the upper side of the first filter plate (103). A filter layer (105) is installed between the first filter plate (103) and the second filter plate (104). Among them, the second filter plate (104) is equipped with a guide plate (106) on the lower side, the guide plate (106) is fixedly connected to the treatment box (101), and the top of the guide plate (106) is a sloping structure; The planting trough (102) is filled with soil, and water-purifying plants are planted in the soil. A first sewage pipe (107) is installed in the planting trough (102). The first sewage pipe (107) includes a main pipe (108) and multiple branch pipes (109) fixed to the main pipe (108). Multiple sewage holes (110) are opened on the branch pipes (109). The sewage storage structure includes: Storage chamber (203) is located inside sewage tank (201). The sewage treatment structure includes reaction chamber (204) and a partition (202) is fixed between reaction chamber (204) and storage chamber (203). Among them, the sewage discharged from the first sewage pipe (107) is filtered by water purification plants, soil and filter layer (105) and then enters the reaction chamber (204) through the guide plate (106); The processing box (101) has a second drain pipe (205) fixed on one side, one end of which is located inside the storage cavity (203). The pulverizing structure corresponds to the second drain pipe (205). The dispersing structure includes: Multiple dispersing rods (703) are provided. A sliding frame (702) is slidably fitted inside the processing box (101). The sliding frame (702) is fixedly connected to the dispersing rods (703). An electric slide rail (701) is fixedly installed inside the processing box (101). The output end of the electric slide rail (701) is fixedly connected to the sliding frame (702). The dispersing rods (703) are located inside the storage cavity (203). The connection structure includes: A connecting rod (808) is U-shaped and corresponds to a dosing structure. The dosing structure includes a medicine tank (801), a drug extraction chamber (805) is provided on the top of the medicine tank (801), a piston (806) is slidably fitted in the drug extraction chamber (805), the piston (806) is fixedly connected to the connecting rod (808), and a sliding groove (807) is provided on the medicine tank (801), which corresponds to the connecting rod (808).

2. The wastewater treatment equipment for green buildings according to claim 1, characterized in that, The pulverizing structure includes: The crushing box (301) is fixed in the storage cavity (203). The top of the crushing box (301) is provided with a feed inlet (304), which is connected to the second drain pipe (205). The side of the crushing box (301) is provided with a discharge port (306). The crushing frame (305) is fixed inside the crushing box (301). The bottom of the crushing box (301) is fixed with a motor (302). The output end of the motor (302) is fixed with a crushing head (303). The crushing head (303) corresponds to the crushing frame (305). A dredging rod (307) is fixed on the crushing head (303). The dredging rod (307) corresponds to the feed inlet (304) and the second drain pipe (205).

3. The wastewater treatment equipment for green buildings according to claim 1, characterized in that, The feeding structure includes: Feeding box (401) is fixed inside storage chamber (203). Feeding pump (402) is fixed inside feeding box (401). Feeding pipe (403) is fixed at the feed end of feeding pump (402). Discharge pipe (404) is fixed at the discharge end of feeding pump (402). Feeding pipe (403) is connected to storage chamber (203). Discharge pipe (404) is connected to reaction chamber (204).

4. The wastewater treatment equipment for green buildings according to claim 1, characterized in that, The solid-liquid separation structure includes: A filter box (503) is installed on one side of the processing box (101). A first drain pipe (501) is fixed between the filter box (503) and the processing box (101). The first drain pipe (501) is connected to the reaction chamber (204) and the filter box (503). An electric valve (502) is installed on the first drain pipe (501). The filter box (503) is equipped with a sludge pump (504), a third filter plate (505) is fixed inside the filter box (503), and a second drain pipe (506) is fixed on one side of the filter box (503).

5. The wastewater treatment equipment for green buildings according to claim 1, characterized in that, The sliding frame (702) is driven to slide by the electric slide rail (701), which in turn drives the dispersing rod (703) to slide in the storage cavity (203), thereby driving the mud and water in the storage cavity (203) to be stirred and mixed.

6. The wastewater treatment equipment for green buildings according to claim 5, characterized in that, The stirring structure includes: A stirring rod (601) is provided, and a rotating ball (602) is fixed at the end of the stirring rod (601). A rotating groove (603) is provided inside the processing box (101), and the rotating groove (603) corresponds to the rotating ball (602). The stirring rod (601) is slidably fitted with a sliding ring (605), and a first pull rod (604) is fixed on the sliding frame (702). A second pull rod (606) is fixed between the first pull rod (604) and the sliding ring (605). The sliding frame (702) is driven to slide by the electric slide rail (701), thereby pulling the stirring rod (601) to rotate and stir the reaction chamber (204).

7. The wastewater treatment equipment for green buildings according to claim 1, characterized in that, The dosing structure also includes: The inlet pipe (802) is fixed inside the medicine tank (801). The outlet pipe (803) is fixed on one side of the medicine tank (801). The outlet pipe (803) is connected to the reaction chamber (204). Both the inlet pipe (802) and the outlet pipe (803) are connected to the extraction chamber (805). Both the end of the inlet pipe (802) and the end of the outlet pipe (803) are equipped with a one-way valve (804). In this process, by pulling the connecting rod (808) to drive the piston (806) to slide, a negative pressure is generated in the drug extraction chamber (805), and the drug is introduced through the drug inlet pipe (802). Then, the piston (806) is pushed to push the drug out from the drug outlet pipe (803) into the reaction chamber (204).

Citation Information

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