Purification equipment for treating and recycling fur wastewater
By designing a fur wastewater treatment equipment including a water inlet bucket, an ozone generator, an activated carbon filter box and a regeneration component, the problem of the existing technology being unable to effectively treat fur wastewater is solved, the water quality optimization and multiple reuse of activated carbon are achieved, and the effective utilization and sustainable development of resources are promoted.
Patent Information
- Application Number
- CN202421862037.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-08-02
- Publication Date
- 2025-05-16
- Estimated Expiration
- 2034-08-02
AI Technical Summary
The prior art cannot effectively treat fur wastewater, remove suspended matter and debris in the wastewater, perform preliminary decolorization and secondary oxidation treatment, and cannot detect whether the wastewater is qualified for recycling, and multiple reuse of activated carbon cannot be achieved.
A purification equipment for fur wastewater treatment and recycling is designed, including water inlet buckets, filtration components, ozone generators, activated carbon filter boxes, water quality measuring instruments and regeneration components. The equipment removes suspended substances through the inlet bucket, the ozone generator performs oxidation and decolorization, the activated carbon filter box adsorbs organic matter, the water quality meter detects the water quality, and reuses activated carbon through the regeneration component.
Effective removal of suspended matter and debris for fur wastewater, preliminary decolorization treatment and secondary oxidation treatment are achieved, ensuring that the treated water quality is qualified for recycling, and through multiple reuse of activated carbon, resources are saved, the demand for new raw materials is reduced, the pressure of resource mining is reduced, and the effective utilization and sustainable development of resources are achieved.
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Figure CN222877766U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of wastewater treatment, in particular to a purification device for treating and recycling fur wastewater. Background Art
[0002] Wastewater treatment is the use of physical, chemical and biological methods to treat wastewater, purify it, reduce pollution, and even recycle and reuse wastewater to make full use of water resources. Wastewater generally includes domestic wastewater and industrial wastewater. Domestic sewage refers to wastewater discharged by people in their daily life activities. This wastewater is mainly polluted by domestic waste and human excrement. The quantity, composition and concentration of pollutants are related to people's living habits and water consumption. Domestic sewage generally does not contain toxic substances, but it has conditions suitable for the reproduction of microorganisms and contains a large number of bacteria and pathogens. From a health point of view, it has certain hazards. Industrial wastewater will produce many kinds of pollutants in industrial production. The types and concentrations of pollutants produced by different industries are significantly different.
[0003] The water jet loom wastewater treatment device disclosed in the Chinese utility model patent application disclosure CN217148809U, although the water jet loom wastewater treatment device, the stirring motor runs on the top cover, drives the stirring shaft to rotate through the reducer, so that the stirring shaft rotates in the wastewater treatment tank, and the stirring shaft drives the stirring and filtering assembly to rotate in the wastewater treatment inner cylinder, and can stir the wastewater and filter the fiber fabric at the same time. Compared with the prior art, it can not only stir the wastewater treatment, but also filter the fiber fabric, thereby improving its wastewater treatment efficiency; the stepped inner pipe at the bottom of the wastewater treatment inner cylinder is set in the annular support plate, At the same time, the positioning block and the positioning groove are adapted for installation, which is not only convenient for supporting the inner cylinder of the wastewater treatment, but also for positioning and installing it. However, the existing device only improves the wastewater treatment efficiency and is convenient for supporting and positioning the inner cylinder of the wastewater treatment. It is unable to treat the wastewater generated by fur, and is unable to remove suspended matter and debris in the wastewater when the wastewater enters. It is unable to perform preliminary decolorization and secondary oxidation treatment on the dyed wastewater, and is unable to detect whether the treated wastewater is qualified for recycling. It is unable to perform multiple treatments on the activated carbon during filtration to achieve reusability. Therefore, a utility model is proposed to solve the above problems. Utility Model Content
[0004] 1. Technical issues to be resolved
[0005] In view of the shortcomings of the prior art, the utility model provides a purification device for treating and recycling fur wastewater, which solves the problems of treating fur wastewater, removing suspended matter and debris in the wastewater when it enters, multiple treatments of wastewater that cannot be dyed, multiple treatments of activated carbon during filtration, and detecting whether the wastewater can be recycled.
[0006] (II) Technical solution
[0007] To achieve the above objectives, the utility model is implemented through the following technical solutions: a purification device for treating and recycling fur wastewater, comprising a device bottom plate, a wastewater tank is plugged into the upper surface of the device bottom plate, a wastewater pipe is sleeved on one side of the wastewater tank, a filter assembly is plugged into one side of the wastewater pipe, a water storage tank is plugged into the upper surface of the device bottom plate, a circulation pump is plugged into one side of the water storage tank, a water quality meter is plugged into the upper surface of the water storage tank, a regeneration assembly is plugged into the upper surface of the device bottom plate, a detector is sleeved on the surface of the regeneration assembly, a wastewater pump is plugged into one side of the wastewater tank, an electric valve is sleeved on one end of the electric valve, a water inlet bucket is sleeved on one end of the electric valve, a filter box is arranged inside the water inlet bucket, the upper surface of the water inlet bucket is connected to a water inlet cover through the rotation of a water inlet motor, and an agitator is inserted into the water inlet cover.
[0008] Optionally, a support frame is provided on the surface of the water inlet barrel, an ozone generator is plugged into the upper surface of the support frame, and a connecting pump is plugged into one side of the ozone generator.
[0009] Optionally, the filter assembly includes a discharge box, a filter base plate, a filter box, a discharge plate, and a filter pump. The upper surface of the discharge box is plugged with the filter base plate, the upper surface of the filter base plate is plugged with the filter box, the inner part of the filter base plate is slidably connected with the discharge plate, and a filter pump is plugged with a filter pump on one side of the filter box.
[0010] Optionally, the regeneration component includes a regeneration base, a cleaner, a heating plate, a regeneration barrel, a regeneration motor, and a regeneration cover. The cleaner is plugged into the interior of the regeneration base, the heating plate is plugged into the upper surface of the regeneration base, the regeneration barrel is plugged into the upper surface of the regeneration base, and the upper surface of the regeneration barrel is connected to the regeneration cover through the rotation of the regeneration motor.
[0011] Optionally, the cleaning device includes a cleaning motor and a cleaning brush, a reagent valve and a water injection head are plugged into the upper surface of the regeneration cover, and a regeneration drain valve is provided at the bottom of the regeneration barrel surface.
[0012] Optionally, a water storage hole is opened on the side of the water storage tank away from the circulating pump, and a water storage plate is provided on the upper surface of the water storage tank. The water storage plate of the water storage tank fixes the water quality meter to prevent it from falling off.
[0013] Optionally, a wastewater hole is provided on a side of the wastewater tank away from the wastewater pipe, and the wastewater hole of the wastewater tank is interconnected with a wastewater pump.
[0014] Optionally, a fixing frame is provided on the surface of the regeneration component, and the fixing frame fixes the detector to prevent it from falling.
[0015] In summary, the technical effects and advantages of the utility model are:
[0016] 1. The utility model has a reasonable structure. By opening the water inlet cover on the water inlet barrel, wastewater is put into the water inlet barrel to remove suspended matter and sundries in the wastewater, thereby avoiding clogging of equipment used in subsequent work. A decolorizing agent is added to the water inlet barrel, and the agitator rotates to stir and mix, so that the wastewater is quickly decolorized to avoid the presence of dyes in the wastewater affecting subsequent wastewater treatment. The wastewater flows into the wastewater tank, and the ozone generator oxidizes and decolorizes the wastewater in the wastewater tank. Activated carbon is put into the filter box, and the wastewater first flows into the filter box during the process of flowing into the water storage tank. The activated carbon adsorbs the oxidized small molecular organic matter in the wastewater and then flows into the water storage tank. The oxidized small molecular organic matter is more conducive to the adsorption of activated carbon. Ozone oxidation combined with activated carbon can more effectively improve the treatment effect of wastewater.
[0017] 2. In the utility model, the treated water is tested by a water quality meter to ensure whether the treated water is qualified and can be recycled, so as to avoid the weakening of the wastewater treatment effect due to long-term use of the equipment, resulting in other substances remaining in the wastewater affecting subsequent use. The taken out activated carbon is put into the regeneration barrel, and the heating plate heats the clean water in the regeneration barrel to warm water. The cleaning device scrubs the activated carbon. By heating the activated carbon to a high temperature, the adsorbed pollutants are removed by pyrolysis. The activated carbon is washed with a chemical solution on the surface of the activated carbon to dissolve or separate the adsorbed pollutants. The activated carbon can be quickly processed multiple times to achieve reuse, which greatly saves resources, reduces the demand for new raw materials, reduces the pressure of resource exploitation, realizes the effective utilization and sustainable development of resources, helps enterprises save production costs, improves economic benefits, reduces the generation and disposal of waste, and reduces the pressure on disposal facilities such as landfills. BRIEF DESCRIPTION OF THE DRAWINGS
[0018] Figure 1 It is a schematic diagram of the structure of the utility model;
[0019] Figure 2 This is an exploded schematic diagram of the bottom plate structure of the utility model equipment;
[0020] Figure 3 This is a schematic diagram of the water inlet bucket of the utility model structure;
[0021] Figure 4 This is an exploded schematic diagram of the filter box structure of the utility model;
[0022] Figure 5 It is an exploded schematic diagram of the regeneration barrel structure of the utility model.
[0023] In the figure: 1. Equipment base plate; 2. Wastewater tank; 3. Wastewater pipe; 4. Filter assembly; 401. Discharge box; 402. Filter base plate; 403. Filter box; 404. Discharge plate; 405. Filter pump; 5. Water storage tank; 6. Circulation pump; 7. Water quality meter; 8. Regeneration assembly; 801. Regeneration base; 802. Cleaner; 803. Heating plate; 804. Regeneration barrel; 805. Regeneration motor; 806. Regeneration cover; 9. Detector; 10. Wastewater pump; 11. Electric valve; 12. Water inlet barrel; 13. Filter box; 14. Water inlet motor; 15. Water inlet cover; 16. Agitator. DETAILED DESCRIPTION
[0024] The following will be combined with the drawings in the embodiments of the utility model to clearly and completely describe the technical solutions in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all of the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the utility model.
[0025] Example: Reference Figure 1-Figure 5 The fur wastewater treatment and recycling purification equipment shown in the figure includes an equipment base plate 1, a wastewater tank 2 is plugged into the upper surface of the equipment base plate 1, a wastewater pipe 3 is sleeved on one side of the wastewater tank 2, a filter component 4 is plugged into one side of the wastewater pipe 3, a water storage tank 5 is plugged into the upper surface of the equipment base plate 1, a circulation pump 6 is plugged into one side of the water storage tank 5, a water quality meter 7 is plugged into the upper surface of the water storage tank 5, a regeneration component 8 is plugged into the upper surface of the equipment base plate 1, a detector 9 is sleeved on the surface of the regeneration component 8, a wastewater pump 10 is plugged into one side of the wastewater tank 2, an electric valve 11 is sleeved on one end of the wastewater pump 10, a water inlet barrel 12 is sleeved on one end of the electric valve 11, a filter box 13 is arranged inside the water inlet barrel 12, and a water inlet cover 15 is connected to the upper surface of the water inlet barrel 12 through a water inlet motor 14 to rotate, and an agitator 16 is inserted into the water inlet cover 15.
[0026] As a preferred implementation in this embodiment, Figures 2 to 4As shown, a waste water tank 2 is plugged into the upper surface of the equipment bottom plate 1, a waste water pipe 3 is sleeved on one side of the waste water tank 2, a filter assembly 4 is plugged into one side of the waste water pipe 3, and the filter assembly 4 includes a discharge box 401, a filter bottom plate 402, a filter box 403, a discharge plate 404, and a filter pump 405. The upper surface of the discharge box 401 is plugged with the filter bottom plate 402, the upper surface of the filter bottom plate 402 is plugged with the filter box 403, the inner part of the filter bottom plate 402 is slidably connected with the discharge plate 404, a filter pump 405 is plugged into one side of the filter box 403, and a filter cover is provided on the upper surface of the filter box 403. A water storage tank 5 is plugged into the upper surface of the equipment bottom plate 1, a circulation pump 6 is plugged into one side of the water storage tank 5, and a water quality measuring device is plugged into the upper surface of the water storage tank 5. Instrument 7, a water storage hole is provided on the side of the water storage tank 5 away from the circulation pump 6, and a water storage plate is provided on the upper surface of the water storage tank 5. The water storage plate of the water storage tank 5 fixes the water quality measuring instrument 7 to prevent it from falling off. The water quality measuring instrument 7 is an instrument used to monitor various components in the water. As for the water quality measuring instrument 7, it is generally required to be intuitive, highly sensitive, lightweight and portable. The water quality measuring instrument 7 is a relatively general name. The requirements of people in different industries are different, and the indicators required for this instrument are also different. A regeneration component 8 is plugged into the upper surface of the equipment bottom plate 1, and a detector 9 is sleeved on the surface of the regeneration component 8. A wastewater pump 10 is plugged into one side of the wastewater tank 2, and a wastewater hole is provided on the side of the wastewater tank 2 away from the wastewater pipe 3. The wastewater hole of the wastewater tank 2 is connected to the wastewater pump 10. One end of the wastewater pump 10 is sleeved with an electric valve 11, which is an electric gate valve. The electric gate valve is simply an electric actuator that controls the valve to open and close the valve. It can be divided into two parts, the upper part is the electric actuator, and the lower part is the valve. The action torque is larger than that of the electric valve. The switching action speed of the electric gate valve can be adjusted. It has a simple structure and is easy to maintain. During the action, due to the buffering characteristics of the gas itself, it is not easy to be damaged by getting stuck. However, there must be an air source, and its control system is more complicated than that of the electric valve. The electric gate valve is sensitive to response, safe and reliable. Many factories with high control requirements set up compressed air stations specifically for pneumatic instrument control components. Electric requires electricity and can control its flow rate. One end of the electric valve 11 is sleeved with There is a water inlet barrel 12, and a filter box 13 is arranged inside the water inlet barrel 12. The filter box 13 and the water inlet barrel 12 are not fixedly connected. A filter net is arranged at the inner bottom of the filter box 13. The upper surface of the water inlet barrel 12 is connected to a water inlet cover 15 through a water inlet motor 14. An agitator 16 is inserted inside the water inlet cover 15. A support frame is arranged on the surface of the water inlet barrel 12. An ozone generator 17 is inserted on the upper surface of the support frame. A connecting pump is inserted on one side of the ozone generator 17. A connecting pipe is arranged at one end of the connecting pump. One end of the connecting pipe is connected to the wastewater hole on one side of the wastewater tank 2. The ozone generator is a device for producing ozone gas. Ozone is easy to decompose and cannot be stored. It needs to be produced on site and used on site. Therefore, an ozone generator is required in all places where ozone can be used.Ozone generators are widely used in the fields of drinking water, sewage, industrial oxidation, food processing and preservation, pharmaceutical synthesis, space sterilization, etc. The ozone gas generated by the ozone generator can be used directly, or it can be mixed with liquid through a mixing device to participate in the reaction. During use, the water inlet motor 14 drives the water inlet cover 15 to flip, so that the water inlet cover 15 is flipped open and closed on the water inlet barrel 12. When in use, the water inlet cover 15 on the water inlet barrel 12 is opened, and the filter box 13 is placed on the top of the water inlet barrel 12, and then wastewater is placed in the water inlet barrel 12, so that suspended matter and debris in the wastewater are removed through the filter box 13, so as to avoid clogging of equipment used in subsequent work. After the wastewater is added, a decolorant is added to the water inlet barrel 12, and the water inlet cover 15 on the water inlet barrel 12 is closed. The agitator 16 in the water inlet cover 15 is rotated to fully mix the decolorant and the wastewater, so as to quickly influent the wastewater after wool dyeing. Perform preliminary decolorization treatment to prevent the wool dyeing wastewater from having dyes that affect the subsequent wastewater treatment. After the wastewater is decolorized, open the electric valve 11, and use the wastewater pump 10 to rotate and draw the wastewater in the water inlet bucket 12 into the wastewater tank 2. The strong oxidizing property of the ozone generated by the ozone generator 17 further oxidizes and decolorizes the wastewater in the wastewater tank 2. After the wastewater in the wastewater tank 2 is treated, put activated carbon in the filter box 403, and rotate the filter 405 to draw the wastewater in the wastewater tank 2 into the water storage tank 5. In the process of the wastewater tank 2 flowing into the water storage tank 5, it first flows into the filter box 403. The activated carbon in the filter box 403 adsorbs the oxidized small molecular organic matter in the wastewater after the ozone generator 17 treatment and then flows into the water storage tank 5, so that the oxidized small molecular organic matter is more conducive to the adsorption of the activated carbon. The ozone oxidation combined with the activated carbon can more effectively improve the treatment effect of the wastewater.
[0027] like Figure 2 , Figure 4 and Figure 5As shown, in this embodiment, a waste water tank 2 is plugged into the upper surface of the equipment bottom plate 1, a waste water pipe 3 is sleeved on one side of the waste water tank 2, a filter assembly 4 is plugged into one side of the waste water pipe 3, and the filter assembly 4 includes a discharge box 401, a filter bottom plate 402, a filter box 403, a discharge plate 404, and a filter pump 405. The upper surface of the discharge box 401 is plugged into the filter bottom plate 402, the upper surface of the filter bottom plate 402 is plugged into the filter box 403, the inner part of the filter bottom plate 402 is slidably connected with the discharge plate 404, one side of the filter box 403 is plugged into the filter pump 405, and one end of the discharge plate 404 is provided with a discharge handle, a water storage tank 5 is plugged into the upper surface of the equipment bottom plate 1, a circulation pump 6 is plugged into one side of the water storage tank 5, and a water quality measuring device is plugged into the upper surface of the water storage tank 5. The upper surface of the bottom plate 1 of the equipment is plugged with a regeneration component 8, and the regeneration component 8 includes a regeneration base 801, a cleaning device 802, a heating plate 803, a regeneration barrel 804, a regeneration motor 805, and a regeneration cover 806. The cleaning device 802 is plugged into the interior of the regeneration base 801, and the upper surface of the regeneration base 801 is plugged with a heating plate 803. The upper surface of the regeneration base 801 is plugged with a regeneration barrel 804, and the upper surface of the regeneration barrel 804 is connected to the regeneration cover 806 through the rotation of the regeneration motor 805. The cleaning device 802 includes a cleaning motor and a cleaning brush. The upper surface of the regeneration cover 806 is plugged with a reagent valve and a water injection head. The bottom of the surface of the regeneration barrel 804 is provided with a regeneration drain valve, and the surface of the cleaning brush is provided with a number of brushes. The surface of the regeneration component 8 is covered with A detector 9 is connected, and a fixing frame is provided on the surface of the regeneration component 8. The fixing frame fixes the detector 9 to prevent it from falling. The detector 9 is a fully automatic physical adsorption instrument. The fully automatic physical adsorption instrument is a physical property testing instrument used in the fields of chemistry, biology, material science, and energy science and technology. The fully automatic physical adsorption instrument is a fully automatic system that can perform vacuum volume measurement and gas physical measurement. It has a high air flow rate and can independently degas two samples while measuring two samples. The system can be used to comprehensively measure the properties of microporous substances such as zeolite and activated carbon. According to the adsorption and desorption data, all surface areas and related parameters are determined and given. The system can prepare samples on site for chemical adsorption. And automatically perform chemical adsorption measurement to express the catalytic properties of the sample. During use, the treated water flowing into the water storage tank 5 is tested by the water quality meter 7, so as to ensure whether the treated water is qualified and can be recycled, to avoid the weakening of the wastewater treatment effect due to long-term use of the equipment, resulting in other substances remaining in the wastewater affecting subsequent use. Activated carbon is put into the filter box 403. The activated carbon in the filter box 403 has weakened adsorption effect after long-term use. The activated carbon in the filter box 403 is pulled out by pulling out the discharge plate 404 to make it fall into the discharge box 401. The activated carbon in the discharge box 401 is taken out and the regeneration cover 806 is driven to rotate by the regeneration motor 805, so that the regeneration cover 806 is rotated and opened on the regeneration barrel 804.The taken out activated carbon is put into the regeneration barrel 804, and clean water is added into the regeneration barrel 804, and the clean water in the regeneration barrel 804 is heated to warm water through the heating plate 803, and the activated carbon in the regeneration barrel 804 is scrubbed by rotating the cleaning device 802 in the regeneration base 801, and clean water is added into the regeneration barrel 804 through the water injection head on the regeneration cover 806, and the activated carbon in the regeneration barrel 804 that has been preliminarily scrubbed is rinsed with clean water, and the waste water inside is discharged through the regeneration drain valve of the regeneration barrel 804. After the drainage is completed, the regeneration drain valve is closed, and clean water is added into the regeneration barrel 804 through the water injection head on the regeneration cover 806, and the clean water in the regeneration barrel 804 is heated to high temperature through the heating plate 803, and the activated carbon is heated to high temperature, and the adsorbed pollutants are removed by pyrolysis, and clean water is added through the water injection head, and the activated carbon in the regeneration barrel 804 that has been treated with high temperature is rinsed with clean water, and the regeneration drain valve is closed. The water valve removes the internal waste water. After the activated carbon is subjected to high-temperature treatment, the reagent is added into the regeneration barrel 804 by opening the reagent valve. The surface of the activated carbon after high-temperature treatment is washed with a chemical solution to dissolve or separate the adsorbed pollutants. Clean water is added through the water injection head to rinse the activated carbon after high-temperature treatment in the regeneration barrel 804 with clean water. The internal waste water is removed through the regeneration drain valve. After the activated carbon is treated, a small part of the activated carbon is taken out and put into the detector 9 to detect whether the activated carbon is reusable. In this way, the activated carbon can be quickly treated multiple times to achieve reusability, which greatly saves resources, reduces the demand for new raw materials, reduces the pressure of resource exploitation, realizes the effective utilization and sustainable development of resources, helps enterprises save production costs, improves economic benefits, reduces the generation and disposal of waste, and reduces the pressure on disposal facilities such as landfills. ,
[0028] How this utility works:
[0029] During use, the water inlet motor 14 drives the water inlet cover 15 to flip, so that the water inlet cover 15 is flipped open and closed on the water inlet barrel 12. When in use, the water inlet cover 15 on the water inlet barrel 12 is opened, and the filter box 13 is placed on the top of the water inlet barrel 12, and then wastewater is added to the water inlet barrel 12. After the wastewater is added, a decolorant is added to the water inlet barrel 12, and the water inlet cover 15 on the water inlet barrel 12 is closed. The agitator 16 in the water inlet cover 15 is rotated to fully mix the decolorant and the wastewater. After the wastewater is decolorized, the electric valve 11 is opened, and the wastewater pump 10 is rotated to draw the wastewater in the water inlet barrel 12 into the wastewater tank 2, and the strong oxidizing property of the ozone generated by the ozone generator 17 further decolorizes the wastewater in the wastewater tank 2. Oxidation decolorization is performed. After the wastewater in the wastewater tank 2 is treated, activated carbon is placed in the filter box 403. The wastewater in the wastewater tank 2 is extracted by rotating the filter 405 and flows into the water storage tank 5. In the process of the wastewater tank 2 flowing into the water storage tank 5, it first flows into the filter box 403. The activated carbon in the filter box 403 adsorbs the oxidized small molecular organic matter in the wastewater after the treatment by the ozone generator 17, and then flows into the water storage tank 5. The treated water flowing into the water storage tank 5 is tested by the water quality meter 7. Activated carbon is placed in the filter box 403. The activated carbon in the filter box 403 is used for a long time, and the adsorption effect is weakened. The activated carbon in the filter box 403 is dropped into the discharge box 401 by pulling out the discharge plate 404. By taking out the discharge box 4 01, the regeneration cover 806 is driven by the regeneration motor 805 to rotate, so that the regeneration cover 806 is rotated and opened on the regeneration barrel 804, and the taken out activated carbon is put into the regeneration barrel 804, and clean water is added into the regeneration barrel 804, and the clean water in the regeneration barrel 804 is heated to warm water by the heating plate 803, and the activated carbon in the regeneration barrel 804 is scrubbed by the rotation of the cleaning device 802 in the regeneration base 801, and clean water is added into the regeneration barrel 804 through the water injection head on the regeneration cover 806, and the activated carbon in the regeneration barrel 804 that has been preliminarily scrubbed is rinsed with clean water, and the waste water inside is discharged through the regeneration drain valve of the regeneration barrel 804, and the regeneration drain valve is closed after the drainage is completed, and the regeneration drain valve is closed on the regeneration cover 806. The water injection head adds clean water to the regeneration barrel 804, and the clean water in the regeneration barrel 804 is heated to a high temperature through the heating plate 803. The activated carbon is heated to a high temperature, and the adsorbed pollutants are removed by pyrolysis. Clean water is added through the water injection head, and the activated carbon in the regeneration barrel 804 that has been treated at high temperature is rinsed with clean water. The internal waste water is discharged through the regeneration drain valve. After the activated carbon is treated at high temperature, the reagent is added to the regeneration barrel 804 by opening the reagent valve. The surface of the activated carbon that has been treated at high temperature is washed with a chemical solution to dissolve or separate the adsorbed pollutants. Clean water is added through the water injection head, and the activated carbon in the regeneration barrel 804 that has been treated at high temperature is rinsed with clean water. The internal waste water is discharged through the regeneration drain valve.After the activated carbon is treated, a small part of the activated carbon is taken out and put into the detector 9 to detect whether the activated carbon is reusable. The device removes suspended matter and debris in the wastewater through the filter box 13 to avoid clogging the equipment used in subsequent work, and quickly performs preliminary decolorization treatment on the wastewater after wool dyeing to avoid the dye in the wastewater affecting the subsequent wastewater treatment. The adsorption of small molecular organic matter after oxidation is more conducive to the adsorption of activated carbon. The ozone oxidation combined with activated carbon can more effectively improve the treatment effect of wastewater, and ensure that the treated water is qualified and can be recycled. It is avoided that the treatment effect of the wastewater is weakened due to long-term use of the equipment, resulting in other substances remaining in the wastewater affecting subsequent use. The activated carbon can be quickly treated multiple times to achieve reusability, which greatly saves resources, reduces the demand for new raw materials, reduces the pressure of resource mining, realizes the effective utilization and sustainable development of resources, and helps enterprises save production costs, improve economic benefits, reduce the generation and disposal of waste, and reduce the pressure on disposal facilities such as landfills. ,
[0030] The electrical components mentioned in this article are all connected to an external main controller and 220V mains electricity, and the main controller can be a conventional known device for controlling a computer or the like.
[0031] Finally, it should be noted that the above is only a preferred embodiment of the present utility model and is not intended to limit the present utility model. Although the present utility model has been described in detail with reference to the aforementioned embodiments, it is still possible for those skilled in the art to modify the technical solutions described in the aforementioned embodiments, or to make equivalent substitutions for some of the technical features therein. Any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present utility model shall be included in the protection scope of the present utility model.
Claims
1. A fur wastewater treatment and recycling purification device, comprising a device bottom plate (1), characterized in that: A wastewater tank (2) is plugged into the upper surface of the equipment bottom plate (1); a wastewater pipe (3) is sleeved on one side of the wastewater tank (2); a filter assembly (4) is plugged into one side of the wastewater pipe (3); a water storage tank (5) is plugged into the upper surface of the equipment bottom plate (1); a circulation pump (6) is plugged into one side of the water storage tank (5); a water quality measuring instrument (7) is plugged into the upper surface of the water storage tank (5); a regeneration assembly (8) is plugged into the upper surface of the equipment bottom plate (1); A detector (9) is sleeved on the surface of the wastewater tank (8); a wastewater pump (10) is plugged into one side of the wastewater tank (2); an electric valve (11) is sleeved on one end of the wastewater pump (10); a water inlet bucket (12) is sleeved on one end of the electric valve (11); a filter box (13) is provided inside the water inlet bucket (12); a water inlet cover (15) is rotatably connected to the upper surface of the water inlet bucket (12) via a water inlet motor (14); and a stirrer (16) is plugged into the inside of the water inlet cover (15).
2. The fur wastewater treatment and recycling purification equipment according to claim 1 is characterized by: A support frame is provided on the surface of the water inlet barrel (12), an ozone generator (17) is plugged into the upper surface of the support frame, and a connecting pump is plugged into one side of the ozone generator (17).
3. The fur wastewater treatment and recycling purification equipment according to claim 1 is characterized by: The filter assembly (4) comprises a discharge box (401), a filter bottom plate (402), a filter box (403), a discharge plate (404), and a filter pump (405); the filter bottom plate (402) is plugged into the upper surface of the discharge box (401); the filter box (403) is plugged into the upper surface of the filter bottom plate (402); the discharge plate (404) is slidably connected inside the filter bottom plate (402); and the filter pump (405) is plugged into one side of the filter box (403).
4. The fur wastewater treatment and recycling purification equipment according to claim 1 is characterized by: The regeneration component (8) comprises a regeneration base (801), a cleaning device (802), a heating plate (803), a regeneration barrel (804), a regeneration motor (805), and a regeneration cover (806); the cleaning device (802) is plugged into the interior of the regeneration base (801); the heating plate (803) is plugged into the upper surface of the regeneration base (801); the regeneration barrel (804) is plugged into the upper surface of the regeneration base (801); and the upper surface of the regeneration barrel (804) is rotatably connected to the regeneration cover (806) via the regeneration motor (805).
5. The fur wastewater treatment and recycling purification equipment according to claim 4 is characterized by: The cleaning device (802) comprises a cleaning motor and a cleaning brush, a reagent valve and a water injection head are plugged into the upper surface of the regeneration cover (806), and a regeneration drain valve is provided at the bottom of the surface of the regeneration barrel (804).
6. The fur wastewater treatment and recycling purification equipment according to claim 1, characterized in that: A water storage hole is provided on a side of the water storage tank (5) away from the circulation pump (6), and a water storage plate is provided on the upper surface of the water storage tank (5). The water storage plate of the water storage tank (5) fixes the water quality measuring instrument (7) to prevent it from falling off.
7. The fur wastewater treatment and recycling purification equipment according to claim 1 is characterized by: A wastewater hole is provided on a side of the wastewater tank (2) away from the wastewater pipe (3), and the wastewater hole of the wastewater tank (2) is connected to the wastewater pump (10).
8. The fur wastewater treatment and recycling purification equipment according to claim 1 is characterized by: A fixing frame is provided on the surface of the regeneration component (8), and the fixing frame fixes the detector (9) to prevent it from falling.
Citation Information
Patent Citations
Wastewater treatment device for water-jet loom
CN217148809U