Wastewater treatment equipment

By designing the diversion and detection components in the wastewater treatment equipment, the problem of excessive chemical dosage in the wastewater treatment of the spraying line was solved, realizing the continuity and automation of wastewater treatment and ensuring that the effluent quality meets the standards.

CN224056901UActive Publication Date: 2026-03-31DONGGUAN DANENG ENVIRONMENTAL TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-10
Publication Date
2026-03-31

AI Technical Summary

Technical Problem

Existing wastewater treatment methods for spray painting lines require the addition of large amounts of cleaning agents, resulting in intense reactions that may damage the equipment.

Method used

A wastewater treatment device was designed, including a frame, a sedimentation tank, a filter assembly, a diversion assembly, and an outlet assembly. The diversion assembly connects the filter assembly and the outlet assembly to achieve smooth wastewater transfer, and a detection assembly is provided to monitor water quality in real time.

Benefits of technology

It simplifies operation complexity, improves the continuity and automation level of wastewater treatment, ensures that effluent indicators meet standards and environmental protection emission requirements, and has a compact structure and strong practicality.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to the technical field of wastewater treatment, in particular to wastewater treatment equipment which comprises a rack, a sedimentation tank, a filtering assembly, a drainage assembly and a guide-out assembly, the sedimentation tank is arranged on one side of the rack, the filtering assembly is arranged on one side of the sedimentation tank and filters wastewater in the sedimentation tank, one end of the drainage assembly is arranged on the filtering assembly, the other end of the drainage assembly is arranged on the leading-out assembly, and the detection assembly is arranged at the end, close to the drainage assembly, of the leading-out assembly and detects the wastewater filtered by the filtering assembly. The drainage assembly serves as a connecting link, one end of the drainage assembly is ingeniously connected into the filtering assembly, the other end of the drainage assembly is connected with the leading-out assembly, smooth transfer of waste water is achieved, operation complexity is simplified, continuity and automation level of waste water treatment are improved, the detection assembly is arranged on the leading-out assembly, the quality of filtered water can be monitored in real time, and it is ensured that the effluent index reaches the standard. The environment-friendly emission requirement is met, the structure is compact, and practicability is high.
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Description

Technical Field

[0001] This utility model relates to the technical field of wastewater treatment, specifically to a wastewater treatment device. Background Technology

[0002] With increasingly stringent environmental regulations, the importance of wastewater treatment equipment is becoming increasingly apparent. Businesses need to adopt efficient and cost-effective solutions to meet environmental requirements and reduce their negative impact on the environment.

[0003] Existing wastewater treatment methods for spray painting lines require the addition of large amounts of cleaning agents, which in turn leads to more intense reactions and can cause serious damage to the equipment in severe cases. Utility Model Content

[0004] To address the aforementioned problems, this utility model provides a wastewater treatment device that solves the problem that existing wastewater treatment in spray painting lines requires the addition of large amounts of cleaning agents, which leads to more intense reactions and, in severe cases, can cause serious damage to the equipment.

[0005] The technical solution adopted by this utility model is: a wastewater treatment device, including a frame, a sedimentation tank, a filter assembly, a diversion assembly, and an outlet assembly; the sedimentation tank is disposed on one side of the frame, the filter assembly is disposed on one side of the sedimentation tank, and the filter assembly is used to filter the wastewater in the sedimentation tank; one end of the diversion assembly is disposed on the filter assembly, and the other end is disposed on the outlet assembly; the diversion assembly is used to divert the wastewater in the sedimentation tank into the filter assembly for filtration, and diverts the filtered wastewater to the outlet assembly through the other end; a detection assembly is disposed on the end of the outlet assembly near the diversion assembly, and the detection assembly is used to detect the wastewater filtered by the filter assembly.

[0006] A further improvement to the above solution is that a crawling frame is mounted on the frame, and two sets of crawling frames are provided. One set of crawling frames is located on one side of the filter assembly, and the other set of crawling frames is located on one side of the outlet assembly.

[0007] A further improvement to the above scheme is that a sedimentation baffle is provided in the sedimentation tank, the sedimentation baffle is used to divide the sedimentation tank into multiple sedimentation tanks, the sedimentation tank has a sedimentation baffle on its outer periphery, and a sedimentation interface is provided in the sedimentation tank near the sedimentation baffle.

[0008] A further improvement to the above solution is that the filtration assembly includes a filter barrel, and a first filter plate, a filter stirring rack, and a second filter plate are sequentially arranged inside the filter barrel. The filter stirring rack is arranged on the first filter plate, and the second filter plate is arranged inside the filter barrel relative to the first filter plate.

[0009] A further improvement to the above solution is that a first interface is provided on the outer side of the filter barrel near the first filter plate, and a second interface is provided on the outer side of the filter barrel near the second filter plate.

[0010] A further improvement to the above solution is that multiple filter stirring racks are provided, and the multiple filter stirring racks are triangularly distributed on the inner wall of the first filter plate. The first filter plate is arc-shaped, and multiple filter holes are evenly distributed on the second filter plate.

[0011] A further improvement to the above solution is that the drainage assembly includes a drainage conduit, an auxiliary conduit, a conduit interface, and an adjustment element. The auxiliary conduit is disposed on one side of the drainage conduit, the conduit interface is disposed on the drainage conduit, and the adjustment element is disposed on the drainage conduit near the conduit interface. The adjustment element is used to control the opening or closing of the drainage conduit.

[0012] A further improvement to the above scheme is that the adjusting element is provided with a rotating handle, which is used to control the flow rate of the drainage tube.

[0013] A further improvement to the above solution is that the export component includes an export container, the bottom of which is provided with an export interface, which is a shortcut interface, and the export container is a funnel container.

[0014] A further improvement to the above scheme is that the detection component includes a detection box and a pre-storage box, which are arranged opposite to each other on both sides of the outlet tank; the detection box is provided with two sets of oppositely arranged detection elements, the pre-storage box is provided with a pre-storage box, and the pre-storage box is provided with multiple pre-storage partitions, which are used to divide the pre-storage box to form multiple pre-storage slots.

[0015] The beneficial effects of this utility model are:

[0016] Compared with existing wastewater treatment methods, this utility model uses a diversion component as a connecting link, with one end cleverly connected to the filter component and the other end connected to the outlet component, to achieve smooth transfer of wastewater, simplifying the operation complexity and improving the continuity and automation level of wastewater treatment. In addition, the outlet component is equipped with a detection component, which can monitor the water quality after filtration in real time to ensure that the effluent indicators meet the standards and environmental protection emission requirements. It has a compact structure and strong practicality. Attached Figure Description

[0017] Figure 1 This is a perspective view of the wastewater treatment equipment of this utility model;

[0018] Figure 2 This is a top view of the wastewater treatment equipment of this utility model;

[0019] Figure 3 for Figure 2 Sectional view at point AA.

[0020] Explanation of reference numerals in the attached drawings: Frame 10, Climbing frame 11;

[0021] Sedimentation tank 20, sedimentation baffle 21, sedimentation tank 22, sedimentation baffle 23, sedimentation interface 24;

[0022] Filter assembly 30, filter barrel 31, first filter plate 32, filter stirring rack 33, second filter plate 34, filter hole 341, first interface 35, second interface 36;

[0023] Drainage assembly 40, drainage catheter 41, auxiliary catheter 42, catheter interface 43, adjustment element 44, rotating handle 45;

[0024] Export component 50, export container 51, export interface 52;

[0025] Detection assembly 60, detection box 61, detection element 611, pre-storage box 62, pre-storage compartment 621, pre-storage partition 622, pre-storage slot 623. Detailed Implementation

[0026] To facilitate understanding of this utility model, a more complete description will be given below with reference to the accompanying drawings. Preferred embodiments of this utility model are shown in the drawings. However, this utility model can be implemented in many different forms and is not limited to the embodiments described herein. Rather, these embodiments are provided to provide a more thorough and complete understanding of the disclosure of this utility model.

[0027] It should be noted that when a component is said to be "fixed to" another component, it can be directly attached to the other component or there may be an intervening component. When a component is said to be "connected to" another component, it can be directly connected to the other component or there may be an intervening component.

[0028] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention pertains. The terminology used herein is for the purpose of describing particular embodiments only and is not intended to be limiting of the invention.

[0029] like Figure 1-3As shown in the embodiment of this utility model, a wastewater treatment device includes: a frame 10, a sedimentation tank 20, a filter assembly 30, a diversion assembly 40, and an outlet assembly 50. The sedimentation tank 20 is disposed on one side of the frame 10, and the filter assembly 30 is disposed on one side of the sedimentation tank 20. The filter assembly 30 is used to filter the wastewater in the sedimentation tank 20. One end of the diversion assembly 40 is disposed on the filter assembly 30, and the other end is disposed on the outlet assembly 50. The diversion assembly 40 is used to divert the wastewater in the sedimentation tank 20 to the filter assembly 30 for filtration, and to divert the filtered wastewater to the outlet assembly 50 through the other end. A detection assembly 60 is disposed at one end of the outlet assembly 50 near the diversion assembly 40. The detection assembly 60 is used to detect the wastewater filtered by the filter assembly 30. In this embodiment, the diversion component 40 serves as a connecting link, with one end cleverly connected to the filter component 30 and the other end connected to the outlet component 50, enabling smooth transfer of wastewater. This simplifies the operation complexity, improves the continuity and automation level of wastewater treatment, and the outlet component 50 is equipped with a detection component 60, which can monitor the water quality after filtration in real time, ensuring that the effluent indicators meet the standards and environmental discharge requirements. The structure is compact and highly practical.

[0030] like Figure 1 As shown, a crawler frame 11 is mounted on the frame 10. Two sets of crawler frames 11 are provided; one set is located on one side of the filter assembly 30, and the other set is located on one side of the outlet assembly 50. In this embodiment, by mounting two sets of crawler frames 11 on the frame 10, efficient space utilization and optimized operation processes are achieved, facilitating observation of wastewater treatment by operators and ensuring high-quality completion of wastewater treatment.

[0031] like Figure 2 As shown, a sedimentation baffle 21 is provided inside the sedimentation tank 20. The sedimentation baffle 21 is used to divide the sedimentation tank 20 into multiple sedimentation tanks 22. A sedimentation baffle 23 is provided on the outer periphery of the sedimentation tank 20, and a sedimentation interface 24 is provided near the sedimentation baffle 23. In this embodiment, by using the sedimentation baffle 21 built into the sedimentation tank 20, the sedimentation space is effectively divided into multiple independent sedimentation tanks 22, which improves the wastewater treatment efficiency and sedimentation effect. The sedimentation baffle 21 slows down the water flow, which is conducive to the settling and separation of suspended solids. Furthermore, the sedimentation baffle 23 configured on the outer periphery of the sedimentation tank 20 effectively prevents the sediment from overflowing with the water flow, ensuring the stability of the treatment process.

[0032] like Figure 3As shown, the filter assembly 30 includes a filter barrel 31, within which a first filter plate 32, a filter stirring frame 33, and a second filter plate 34 are sequentially arranged. The filter stirring frame 33 is mounted on the first filter plate 32, and the second filter plate 34 is positioned relative to the first filter plate 32 within the filter barrel 31. In this embodiment, the first filter plate 32 initially intercepts impurities within the filter barrel 31, and the filter stirring frame 33 on the first filter plate 32 effectively promotes contact between wastewater and the filter medium, improving filtration efficiency and uniformity. The second filter plate 34 further refines the filtration, ensuring the quality of the effluent. With its compact structure and progressive layering, it not only effectively removes suspended solids and particulate matter from wastewater but also enhances treatment efficiency through stirring, achieving highly efficient wastewater purification.

[0033] A first interface 35 is provided on the outer side of the filter barrel 31 near the first filter plate 32, and a second interface 36 is provided on the outer side of the filter barrel 31 near the second filter plate 34. In this embodiment, by providing the first interface 35 on the outer side of the first filter plate 32 and the second interface 36 on the outer side near the second filter plate 34, this arrangement ensures that wastewater can pass through different filtration stages in an orderly and efficient manner. The precise positioning of the first interface 35 and the second interface 36 not only optimizes the water flow path but also facilitates flexible control and maintenance of the filtration process.

[0034] Multiple filter stirring racks 33 are provided, and the multiple filter stirring racks 33 are triangularly distributed on the inner wall of the first filter plate 32. The first filter plate 32 is arc-shaped, and the second filter plate 34 has multiple filter holes 341 evenly distributed on it. In this embodiment, by using multiple filter stirring racks 33 and triangularly distributed on the inner wall of the first filter plate 32, the processing efficiency and stirring uniformity are effectively improved. The arc design of the first filter plate 32 not only enhances the structural strength but also optimizes the water flow path and reduces the risk of clogging. Furthermore, the multiple filter holes 341 evenly distributed on the second filter plate 34 ensure efficient filtration of wastewater and effective interception of impurities, improve the fineness of wastewater treatment, and also ensure the stability and smoothness of the treatment process.

[0035] The drainage assembly 40 includes a drainage conduit 41, an auxiliary conduit 42, a conduit interface 43, and an adjusting element 44. The auxiliary conduit 42 is disposed on one side of the drainage conduit 41, the conduit interface 43 is disposed on the drainage conduit 41, and the adjusting element 44 is disposed on the drainage conduit 41 near the conduit interface 43. The adjusting element 44 is used to control the opening and closing of the drainage conduit 41. In this embodiment, the auxiliary conduit 42 is disposed on one side of the drainage conduit 41 for flexible arrangement; the conduit interface 43 ensures a stable connection and facilitates fluid transmission; and the adjusting element 44 is installed close to the conduit interface 43 to precisely control the opening and closing state of the drainage conduit 41, effectively regulating the wastewater flow rate, improving treatment efficiency, and ensuring the stability and high efficiency of wastewater treatment.

[0036] The adjusting element 44 is equipped with a rotating handle 45, which is used to control the flow rate of the drainage conduit 41. In this embodiment, by rotating the handle 45, the flow rate of the drainage conduit 41 can be controlled intuitively and accurately, effectively meeting the specific requirements of water flow rate at different treatment stages, improving control accuracy, and optimizing treatment efficiency.

[0037] The export component 50 includes an export tank 51, with an export interface 52 at its bottom. The export interface 52 is a quick-connect interface, and the export tank 51 is a funnel-shaped tank. In this embodiment, the funnel-shaped design of the export tank 51 facilitates the smooth collection and export of wastewater, reduces the risk of clogging, and improves treatment efficiency. The quick-connect interface at its bottom allows for quick connection and disconnection, facilitating operation and maintenance, while also enhancing the flexibility and adaptability of the component.

[0038] The detection assembly 60 includes a detection box 61 and a pre-storage box 62, which are arranged opposite to each other on both sides of the outlet tank 51. The detection box 61 is provided with two sets of oppositely arranged detection elements 611. The pre-storage box 62 is provided with a pre-storage box 621, and the pre-storage box 621 is provided with multiple pre-storage partitions 622, which are used to divide the pre-storage box 621 into multiple sections. In this embodiment, the space is effectively utilized by the relative arrangement of the detection box 61 and the pre-storage box 62 on both sides of the outlet tank 51. The two sets of opposing detection elements 611 configured in the detection box 61 ensure accurate monitoring of wastewater treatment. The pre-storage box 62 has a built-in pre-storage box 621 and cleverly uses multiple pre-storage partitions 622 to divide the pre-storage box 621 into multiple pre-storage slots 623. This not only improves the storage efficiency and organization of wastewater treatment materials, but also helps with the classification management and rapid retrieval of materials, thereby enhancing the smoothness and operational efficiency of the entire wastewater treatment process and demonstrating the advanced nature and practicality of the equipment design.

[0039] A wastewater treatment device includes: a frame 10, a sedimentation tank 20, a filter assembly 30, a diversion assembly 40, and an outlet assembly 50. The sedimentation tank 20 is disposed on one side of the frame 10, and the filter assembly 30 is disposed on one side of the sedimentation tank 20. The filter assembly 30 is used to filter the wastewater in the sedimentation tank 20. One end of the diversion assembly 40 is disposed on the filter assembly 30, and the other end is disposed on the outlet assembly 50. The diversion assembly 40 is used to divert the wastewater in the sedimentation tank 20 to the filter assembly 30 for filtration, and to divert the filtered wastewater to the outlet assembly 50 through the other end. A detection assembly 60 is disposed on one end of the outlet assembly 50 near the diversion assembly 40, and the detection assembly 60 is used to detect the wastewater filtered by the filter assembly 30. In this embodiment, the diversion component 40 serves as a connecting link, with one end cleverly connected to the filter component 30 and the other end connected to the outlet component 50, enabling smooth transfer of wastewater. This simplifies the operation complexity, improves the continuity and automation level of wastewater treatment, and the outlet component 50 is equipped with a detection component 60, which can monitor the water quality after filtration in real time, ensuring that the effluent indicators meet the standards and environmental discharge requirements. The structure is compact and highly practical.

[0040] The above embodiments only illustrate several implementation methods of this utility model, and their descriptions are relatively specific and detailed, but they should not be construed as limiting the scope of this utility model patent. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of this utility model, and these all fall within the protection scope of this utility model. Therefore, the protection scope of this utility model patent should be determined by the appended claims.

Claims

1. A wastewater treatment device, characterized in that, Include: Frame, sedimentation tank, filter assembly, drainage assembly and export assembly; the sedimentation tank is arranged on one side of the frame, the filter assembly is arranged on one side of the sedimentation tank, the filter assembly is used for filtering wastewater in the sedimentation tank, one end of the drainage assembly is arranged on the filter assembly, and the other end is arranged on the export assembly; The drainage assembly is used for draining wastewater in the sedimentation tank to the filter assembly for filtering, and draining the filtered wastewater to the export assembly through the other end, and the detection assembly is arranged on one end of the drainage assembly close to the drainage assembly.

2. The wastewater treatment apparatus according to claim 1, characterized by: The frame is provided with a crawling frame, and the crawling frame is provided with two groups, one group of the crawling frame is arranged on one side of the filter assembly, and the other group of the crawling frame is arranged on one side of the export assembly.

3. The wastewater treatment apparatus according to claim 1, characterized by: The sedimentation tank is provided with a sedimentation partition plate, the sedimentation partition plate is used for separating the sedimentation tank to form a plurality of sedimentation tanks, the sedimentation tank is provided with a sedimentation interface close to the sedimentation baffle.

4. The wastewater treatment apparatus according to claim 1, characterized by: The filter assembly includes a filter barrel, the filter barrel is provided with a first filter plate, a filter stirring frame and a second filter plate in sequence, the filter stirring frame is arranged on the first filter plate, and the second filter plate is arranged in the filter barrel relative to the first filter plate.

5. The wastewater treatment apparatus according to claim 4, characterized by: The filter barrel is provided with a first interface close to the outer side of the first filter plate, and a second interface close to the outer side of the second filter plate.

6. The wastewater treatment apparatus according to claim 5, characterized by: The filter stirring frame is provided with a plurality of filter stirring frames, the filter stirring frames are distributed in a triangular manner on the inner wall of the first filter plate, the first filter plate is provided with an arc, and the second filter plate is uniformly provided with a plurality of filter holes.

7. The wastewater treatment apparatus according to claim 1, characterized by: The drainage assembly includes a drainage conduit, an auxiliary conduit, a conduit interface and an adjusting element, the auxiliary conduit is arranged on one side of the drainage conduit, the conduit interface is arranged on the drainage conduit, the adjusting element is arranged on the drainage conduit close to the conduit interface, and the adjusting element is used for controlling the opening or closing of the drainage conduit.

8. The wastewater treatment apparatus according to claim 7, characterized by: The adjusting element is provided with a rotating handle, and the rotating handle is used for controlling the flow rate of the drainage conduit.

9. The wastewater treatment apparatus of claim 1, wherein: The export assembly includes an export tank, the bottom of the export tank is provided with an export interface, the export interface is a quick interface, and the export tank is a funnel tank.

10. The wastewater treatment apparatus of claim 9, wherein: The detection assembly includes a detection box and a prestorage box, the detection box and the prestorage box are arranged opposite to each other on both sides of the export tank; the detection box is provided with two groups of detection elements arranged opposite to each other, the prestorage box is provided with a prestorage box, and the prestorage box is provided with a plurality of prestorage partitions, and the prestorage partitions are used for dividing the prestorage box into a plurality of prestorage slots.