Sewage treatment device and sewage treatment method
By designing a rotor-type hopper, a chemical regulating mechanism, and an automatic sampling and measurement water storage mechanism, the problems of easy clogging and low efficiency in sewage treatment devices were solved, achieving efficient and automated sewage treatment.
Patent Information
- Application Number
- CN202311763306.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-12-21
- Publication Date
- 2026-01-23
- Estimated Expiration
- 2043-12-21
AI Technical Summary
Existing sewage treatment facilities occupy a large area, are prone to clogging, have low treatment efficiency, lack automatic detection programs, and have poor treatment effects.
A wastewater treatment device was designed, which includes a debris handling mechanism, a chemical solution regulating mechanism, and a water storage mechanism. It adopts a rotor-type hopper for feeding, an integrated design of filtration and stirring in the chemical solution regulating mechanism, and a water storage mechanism for automatic sampling and measurement, which realizes uniform feeding of debris, full reaction of chemical solution, and automatic detection and adjustment of water quality.
It effectively avoids clogging problems, improves treatment efficiency and quality, and increases the automation level of the device and the water quality compliance rate.
Smart Images

Figure CN117550751B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to a wastewater treatment device and a wastewater treatment method. Background Technology
[0002] Wastewater treatment is the process of purifying wastewater to meet the water quality requirements for discharge into a water body or for reuse. Wastewater treatment is widely used in various fields such as construction, agriculture, transportation, energy, petrochemicals, environmental protection, urban landscaping, medical care, and catering, and is increasingly becoming a part of ordinary people's daily lives.
[0003] Existing wastewater treatment equipment occupies a large area and is prone to clogging when encountering wastewater containing a large amount of impurities. In addition, existing equipment has a slow reaction efficiency and sometimes fails to achieve the expected treatment effect. Furthermore, there is no automatic detection program before discharge. Therefore, we propose a wastewater treatment device and wastewater treatment method. Summary of the Invention
[0004] The purpose of this invention is to provide a wastewater treatment device and a wastewater treatment method to solve the problems mentioned in the background art.
[0005] To achieve the above objectives, the present invention provides the following technical solution: a wastewater treatment device, comprising a debris treatment mechanism, a water storage mechanism, a chemical adjustment mechanism, a biological reaction mechanism, and a mounting frame. The debris treatment mechanism is mounted on the upper left side of the mounting frame. The debris treatment mechanism includes an upper shell, a rotor, and a lower shell. The rotor is mounted in the middle of the upper shell and is rotatably connected to the upper shell via a rotating shaft. Hoppers are evenly distributed inside the rotor. A rotary reducer is mounted on one side of the upper shell and is connected to the input shaft of the rotor via a coupling. The lower shell is mounted below the upper shell. The lower housing and upper housing are connected by an internal conduit. An inclined filter plate is located on the right side of the lower housing. A waste pipe is installed on the lower housing to the lower left of the inclined filter plate. A drain pipe is installed on the lower right of the lower housing. The drain pipe is sealed to the inlet of the first water pump via a guide pipe. The outlet of the first water pump is sealed to the first inlet pipe inside the chemical regulating mechanism via a guide pipe. The chemical regulating mechanism is mounted on the right side of the debris treatment mechanism. The chemical regulating mechanism includes a treatment housing, a spray pipe, a conical filter cylinder, and a scraper. The first inlet pipe is installed on the side of the treatment housing. On the upper left side of the treatment housing, a rotary joint is installed above the treatment housing, and a spray pipe is installed below the rotary joint. The spray pipe is sealed to the rotary joint, and its lower end is located inside the treatment housing. A conical filter cartridge is installed in the middle of the treatment housing, and its upper and lower mounting plates are sealed to the treatment housing. A nozzle is installed on the spray pipe inside the conical filter cartridge. A first drain pipe is installed on the lower right side of the treatment housing, and it is sealed to the inlet of a second water pump via a water guide pipe. The outlet of the biological reaction mechanism is sealed to the inlet of the bioreactor via a water guide pipe. The bioreactor is mounted on the mounting bracket to the right of the drug adjustment mechanism. The outlet of the biological reaction mechanism is sealed to the inlet of the third water pump via a water guide pipe. The outlet of the third water pump is sealed to the inlet of the water storage mechanism. The water storage mechanism is mounted on the mounting bracket to the right of the biological reaction mechanism. The water storage mechanism includes a tank, a cylinder, a syringe sampler, and a sampling reversing valve. A water outlet electromagnetic reversing valve is installed on the outlet of the lower right side of the tank. One of the outlets of the water outlet electromagnetic reversing valve is sealed to the water outlet pipe.
[0006] Preferably, a raw water inlet pipe is installed at the upper position of the upper housing, the inclined filter plate forms a 45-degree angle with the horizontal plane, the waste pipe is sealed to the sewage pipe on the mounting frame, and a brush is installed on the side wall of the rotor near the upper housing, the brush being in contact with the inner wall of the upper housing.
[0007] Preferably, a stirring reducer is installed on the right side above the processing housing, and a drive wheel is installed on the output shaft of the stirring reducer. The drive wheel on the stirring reducer is rotatably connected to the drive wheel on the spray pipe through a drive belt. A scraper is installed on the spray pipe inside the conical filter cylinder, and the outer surface of the scraper is in contact with the inner wall of the conical filter cylinder.
[0008] Preferably, the conical filter cartridge has an opening at its lower part, and the position of the opening at the lower part of the conical filter cartridge corresponds to the position of the first sewage pipe at the lower part of the treatment housing. The first sewage pipe is sealed to the sewage pipe.
[0009] Preferably, one end of the piston rod of the cylinder is connected to the connecting plate, and the other end of the connecting plate is connected to the syringe sampler. A pull rope displacement sensor is installed on the cylinder, and the pull rope of the pull rope displacement sensor is connected to the connecting plate. A sampling reversing valve is installed on the feed port below the syringe sampler, and the sampling reversing valve is sealed to the tank through a water guide pipe.
[0010] Preferably, a dosing pump is installed on the mounting bracket, and the outlet of the dosing pump is sealed to a rotary joint via a water pipe.
[0011] Preferably, a reflux pump is installed at the lower right position of the mounting bracket. The inlet of the reflux pump is connected to the outlet solenoid valve through a water guide pipe. The outlet solenoid valve is sealed to the medicine tank solenoid valve and the biological tank solenoid valve through the water guide pipe.
[0012] Preferably, the solenoid valve of the drug inlet tank is sealed to the first water inlet pipe through a water guide pipe, and the solenoid valve of the biological tank is sealed to the water inlet of the biological reaction mechanism through a water guide pipe.
[0013] A wastewater treatment method includes the following steps:
[0014] (A) Debris treatment: External raw water is transported to the hopper inside the upper shell through the raw water inlet pipe. At this time, the reducer drives the rotor to rotate. The hopper inside the rotor rotates to the position of the inner guide tube. The raw water and debris inside the hopper fall into the lower shell. The inclined filter plate inside the lower shell filters the raw water. The water flows down through the inclined filter plate, and the debris flows into the waste pipe through the inclined filter plate.
[0015] (B) Chemical dosing: The treated water is transported into the treatment shell by the first water pump. At this time, the water is transported into the conical filter. The dosing pump transports the external agent into the rotary joint. The stirring reducer drives the spray pipe to rotate through the transmission wheel. The liquid is sprayed out from the nozzle of the spray pipe. At the same time, the scraper plays a stirring role, so that the water inside the treatment shell can react fully.
[0016] (C) Biological reaction: The water after the reaction is transported to the biological reaction mechanism through the first drain pipe under the action of the second water pump, where the fungi inside the biological reaction mechanism react with the water again.
[0017] (D) Inspection, Storage and Discharge: Water inside the bioreactor is pumped to the water storage unit by the third water pump. The piston of the cylinder drives the piston of the syringe sampler to move. The pull rope displacement sensor senses the movement of the connecting plate. At this time, the amount of material taken can be controlled. After the syringe sampler takes the sample, the sampling reversing valve is switched to the external inspection equipment for inspection. When the dosing treatment fails the inspection, the solenoid valve of the drug tank is opened. The return pump pumps the water inside the tank back to the drug water adjustment mechanism for readjustment. When the bioreactor fails the test, the solenoid valve of the bioreactor is opened. The return pump pumps the water back to the bioreactor.
[0018] Compared with the prior art, the beneficial effects of the present invention are:
[0019] 1. The present invention designs the debris treatment mechanism as a rotor-type hopper feeding method, which enables the wastewater to be fed evenly. It is suitable for wastewater containing a lot of debris and avoids the problem of excessive feeding at one time, which can cause blockage and affect the treatment quality.
[0020] This invention integrates the drug adjustment mechanism with filtration, stirring and drug addition. Stirring is performed during the drug addition process, which can increase the reaction efficiency and reaction quality. At the same time, the conical filter can play a secondary filtration role to avoid foreign matter residue.
[0021] This invention designs the water storage mechanism as an automatic sampling and measurement mechanism. When the measurement fails, the water inside the tank can be transported to the corresponding reaction mechanism through a return pump, thereby increasing the pass rate of the discharged water from the device. Attached Figure Description
[0022] Figure 1 This is an overall appearance drawing of the invention;
[0023] Figure 2 For the present invention Figure 1 Internal structure diagram of the waste handling mechanism;
[0024] Figure 3 For the present invention Figure 2 Rotor assembly drawing;
[0025] Figure 4 For the present invention Figure 1 Internal structure diagram of the herbal medicine water regulating mechanism;
[0026] Figure 5 For the present invention Figure 1 Diagram of the structure of the central water storage facility;
[0027] Figure 6For the present invention Figure 5 Assembly drawing of the middle cylinder.
[0028] In the diagram: 1. Waste disposal mechanism; 2. Solenoid valve for inlet tank; 3. Water guide pipe; 4. Solenoid valve for inlet tank; 5. Water storage mechanism; 6. Chemical regulation mechanism; 7. Biological reaction mechanism; 8. Outlet pipe; 9. Outlet solenoid reversing valve; 10. Sewage pipe; 11. Mounting frame; 12. First water pump; 13. Second water pump; 14. Third water pump; 15. Return pump; 16. Dosing pump; 101. Raw water inlet pipe; 102. Upper shell; 103. Rotor; 104. Inner guide tube; 105. Inclined filter plate; 106. Waste material Pipe; 107. Drain pipe; 108. Rotary reducer; 109. Lower housing; 110. Brush; 501. Tank; 502. Cylinder; 503. Cable displacement sensor; 504. Connecting plate; 505. Syringe sampler; 506. Sampling reversing valve; 601. First water inlet pipe; 602. Processing housing; 603. Rotary joint; 604. Stirring reducer; 605. Spraying pipe; 605. First drain pipe; 607. Nozzle; 608. Conical filter cartridge; 609. First sewage pipe; 610. Scraper. Detailed Implementation
[0029] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.
[0030] Please see Figure 1-6This invention provides a technical solution: a wastewater treatment device, including a debris treatment mechanism 1, a water storage mechanism 5, a chemical adjustment mechanism 6, a biological reaction mechanism 7, and a mounting frame 11. The debris treatment mechanism 1 is installed at the upper left position of the mounting frame 11. The debris treatment mechanism 1 includes an upper shell 102, a rotor 103, and a lower shell 109. The rotor 103 is installed at the middle position inside the upper shell 102. The rotor 103 is rotatably connected to the upper shell 102 via a rotating shaft. Hoppers are evenly arranged inside the rotor 103. A rotary reducer 108 is installed on one side of the upper shell 102. The rotary reducer 108 is connected to the input shaft of the rotor 103 via a coupling. The lower shell 109 is installed at the lower position of the upper shell 102. 09 is connected to the upper housing 102 via an inner conduit 104. An inclined filter plate 105 is located on the right side inside the lower housing 109. A waste pipe 106 is installed on the lower housing 109 to the lower left of the inclined filter plate 105. A drain pipe 107 is installed on the lower right side of the lower housing 109. The drain pipe 107 is sealed to the inlet of the first water pump 12 via a water guide pipe 3. The outlet of the first water pump 12 is sealed to the first inlet pipe 601 inside the chemical regulating mechanism 6 via the water guide pipe 3. The chemical regulating mechanism 6 is mounted on the right mounting bracket 11 of the waste treatment mechanism 1. The chemical regulating mechanism 6 includes a treatment housing 602, a spray pipe 605, a conical filter cylinder 608, and a scraper 610. The first inlet pipe 601 is installed on... On the upper left side of the treatment housing 602, a rotary joint 603 is installed above the treatment housing 602. A spray pipe 605 is installed below the rotary joint 603, and the spray pipe 605 is sealed to the rotary joint 603. The lower end of the spray pipe 605 is located inside the treatment housing 602. A conical filter cartridge 608 is installed in the middle of the interior of the treatment housing 602. Both the upper and lower mounting plates of the conical filter cartridge 608 are sealed to the treatment housing 602. A nozzle 607 is installed on the spray pipe 605 inside the conical filter cartridge 608. On the lower right side of the treatment housing 602, a first drain pipe 606 is installed. The first drain pipe 606 is connected to the inlet of the second water pump 13 via a water guide pipe 3. The outlet of the second water pump 13 is sealed to the inlet of the biological reaction mechanism 7 through the water guide pipe 3. The biological reaction mechanism 7 is installed on the mounting bracket 11 on the right side of the drug adjustment mechanism 6. The outlet of the biological reaction mechanism 7 is sealed to the inlet of the third water pump 14 through the water guide pipe 3. The outlet of the third water pump 14 is sealed to the inlet of the water storage mechanism 5. The water storage mechanism 5 is installed on the mounting bracket 11 on the right side of the biological reaction mechanism 7. The water storage mechanism 5 includes a tank 501, a cylinder 502, a syringe sampler 505, and a sampling reversing valve 506. A water outlet electromagnetic reversing valve 9 is installed on the outlet of the lower right side of the tank 501. One of the outlets of the water outlet electromagnetic reversing valve 9 is sealed to the water outlet pipe 8.
[0031] A raw water inlet pipe 101 is installed above the upper housing 102. The inclined filter plate 105 forms a 45-degree angle with the horizontal plane. The waste pipe 106 is sealed to the sewage pipe 10 on the mounting frame 11. A brush 110 is installed on the side wall of the rotor 103 near the upper housing 102. The brush 110 is in contact with the inner wall of the upper housing 102.
[0032] A mixing reducer 604 is installed on the right side above the processing housing 602. A drive wheel is installed on the output shaft of the mixing reducer 604. The drive wheel on the mixing reducer 604 is rotatably connected to the drive wheel on the spray pipe 605 through a drive belt. A scraper 610 is installed on the spray pipe 605 inside the conical filter cylinder 608. The outer surface of the scraper 610 is in contact with the inner wall of the conical filter cylinder 608.
[0033] An opening is provided at the bottom of the conical filter cartridge 608. The position of the opening at the bottom of the conical filter cartridge 608 corresponds to the position of the first sewage pipe 609 below the treatment housing 602. The first sewage pipe 609 is sealed to the sewage pipe 10.
[0034] One end of the piston rod of cylinder 502 is connected to connecting plate 504, and the other end of connecting plate 504 is connected to syringe sampler 505. A pull rope displacement sensor 503 is installed on cylinder 502. The pull rope of pull rope displacement sensor 503 is connected to connecting plate 504. A sampling reversing valve 506 is installed on the material port below syringe sampler 505. The sampling reversing valve 506 is sealed to tank 501 through water guide pipe 3.
[0035] A dosing pump 16 is installed on the mounting bracket 11. The outlet of the dosing pump 16 is sealed to the rotary joint 603 via a water pipe. A return pump 15 is installed on the lower right side of the mounting bracket 11. The inlet of the return pump 15 is connected to the outlet solenoid valve 9 via a water guide pipe 3. The outlet solenoid valve 9 is sealed to the inlet solenoid valve 2 and the biological tank solenoid valve 4 via the water guide pipe 3.
[0036] The solenoid valve 2 of the medicine tank is sealed to the first water inlet pipe 601 through the water guide pipe 3, and the solenoid valve 4 of the biological tank is sealed to the water inlet of the biological reaction mechanism 7 through the water guide pipe 3.
[0037] A wastewater treatment method includes the following steps:
[0038] (A) Debris treatment: External raw water is transported to the hopper of the upper shell 102 through the raw water inlet pipe 101. At this time, the reducer 108 drives the rotor 103 to rotate. The hopper inside the rotor 103 rotates to the position of the inner guide tube 104. The raw water and debris inside the hopper fall into the lower shell 109. The inclined filter plate 105 inside the lower shell 109 filters the raw water. The water flows down through the inclined filter plate 105, and the debris flows into the waste pipe 106 through the inclined filter plate 105.
[0039] (B) Chemical dosing: The treated water is transported into the treatment housing 602 by the first water pump 12. At this time, the water is transported into the conical filter cartridge 608. The dosing pump 16 transports the external agent into the rotary joint 603. The stirring reducer 604 drives the spray pipe 605 to rotate through the transmission wheel. The liquid is sprayed out from the nozzle 607 of the spray pipe 605. At the same time, the scraper 610 plays a stirring role, so that the water inside the treatment housing 602 can fully react.
[0040] (C) Biological reaction: The water after the reaction is transported to the biological reaction mechanism 7 through the first drain pipe 606 under the action of the second water pump 13, and the fungi inside the biological reaction mechanism 7 react the water again.
[0041] (D) Inspection, Storage and Discharge: Water inside the bioreactor 7 is transported to the water storage mechanism 5 by the third water pump 14. The piston of the cylinder 502 drives the piston of the syringe sampler 505 to move. The rope displacement sensor 503 senses the movement of the connecting plate 504. At this time, the amount of material taken can be controlled. After the syringe sampler 505 takes a sample, the sampling reversing valve 506 switches to the external inspection equipment for inspection. When the dosing treatment is not qualified, the solenoid valve 2 of the inlet tank opens, and the return pump 15 transports the water inside the tank 501 back to the drug water regulating mechanism 6 for readjustment. When the bioreactor is not qualified, the solenoid valve 4 of the bioreactor opens, and the return pump 15 transports the water back to the bioreactor 7. When the water quality is qualified, the solenoid valve 9 of the outlet water reversing valve opens, and the return pump 15 transports the water inside the tank 501 to the outlet pipe 8 for discharge.
[0042] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.
Claims
1. A wastewater treatment device, comprising a debris handling mechanism (1), a water storage mechanism (5), a chemical adjustment mechanism (6), a biological reaction mechanism (7), and a mounting frame (11), characterized in that: A debris handling mechanism (1) is installed on the upper left side of the mounting frame (11). The debris handling mechanism (1) includes an upper housing (102), a rotor (103), and a lower housing (109). The rotor (103) is installed in the middle of the upper housing (102). The rotor (103) is rotatably connected to the upper housing (102) through a rotating shaft. The rotor (103) has hoppers evenly arranged inside. A rotary reducer (108) is installed on one side of the upper housing (102). The rotary reducer (108) is connected to the input shaft of the rotor (103) through a coupling. A lower housing (109) is installed below the upper housing (102). The lower housing (109) is connected to the upper housing (102) via an inner conduit (104). An inclined filter plate (105) is provided on the right side inside the lower housing (109). A waste pipe (106) is installed on the lower housing (109) to the lower left of the inclined filter plate (105). A drain pipe (107) is installed on the lower right side of the lower housing (109). The drain pipe (107) is sealed to the inlet of the first water pump (12) via a water guide pipe (3). The outlet of the first water pump (12) is connected to the first inlet pipe (601) inside the medicine regulating mechanism (6) via the water guide pipe (3). The chemical adjustment mechanism (6) is installed on the right mounting bracket (11) of the debris treatment mechanism (1). The chemical adjustment mechanism (6) includes a treatment housing (602), a spray pipe (605), a conical filter cartridge (608), and a scraper (610). The first water inlet pipe (601) is installed on the upper left side of the treatment housing (602). A rotary joint (603) is installed on the upper part of the treatment housing (602). A spray pipe (605) is installed on the lower part of the rotary joint (603). The spray pipe (605) and the rotary joint (603) are sealed together. The lower end of the spray pipe (605) is located inside the treatment housing (602). A conical filter cartridge (608) is installed in the middle of the interior of the treatment housing (602). The upper and lower mounting plates of the conical filter cartridge (608) are sealed to the treatment housing (602). A nozzle (607) is installed on the spray pipe (605) inside the conical filter cartridge (608). A first drain pipe (606) is installed on the lower right side of the side of the treatment housing (602). The first drain pipe (606) is sealed to the inlet of the second water pump (13) through a water guide pipe (3). The outlet of the second water pump (13) is sealed to the inlet of the biological reaction mechanism (7) through a water guide pipe (3). The biological reaction mechanism (7) is installed in the drug solution adjustment... On the mounting bracket (11) on the right side of the mechanism (6), the outlet of the bioreactor (7) is sealed to the inlet of the third water pump (14) through the water guide pipe (3). The outlet of the third water pump (14) is sealed to the inlet of the water storage mechanism (5). The water storage mechanism (5) is mounted on the mounting bracket (11) on the right side of the bioreactor (7). The water storage mechanism (5) includes a tank (501), a cylinder (502), a syringe sampler (505), and a sampling reversing valve (506). A water outlet electromagnetic reversing valve (9) is installed on the outlet on the lower right side of the tank (501). One of the outlets of the water outlet electromagnetic reversing valve (9) is sealed to the water outlet pipe (8). A raw water inlet pipe (101) is installed above the upper housing (102). The inclined filter plate (105) forms a 45-degree angle with the horizontal plane. The waste pipe (106) is sealed to the sewage pipe (10) on the mounting frame (11). A brush (110) is installed on the side wall of the rotor (103) near the upper housing (102). The brush (110) is in contact with the inner wall of the upper housing (102).
2. The wastewater treatment device according to claim 1, characterized in that: A stirring reducer (604) is installed on the right side above the processing housing (602). A drive wheel is installed on the output shaft of the stirring reducer (604). The drive wheel on the stirring reducer (604) is rotatably connected to the drive wheel on the spray pipe (605) through a drive belt. A scraper (610) is installed on the spray pipe (605) inside the conical filter cylinder (608). The outer surface of the scraper (610) is in contact with the inner wall of the conical filter cylinder (608).
3. The wastewater treatment device according to claim 1, characterized in that: An opening is provided at the bottom of the conical filter cylinder (608). The position of the opening at the bottom of the conical filter cylinder (608) corresponds to the position of the first sewage pipe (609) below the treatment housing (602). The first sewage pipe (609) is sealed to the sewage pipe (10).
4. The wastewater treatment device according to claim 1, characterized in that: One end of the piston rod of the cylinder (502) is connected to the connecting plate (504), and the other end of the connecting plate (504) is connected to the syringe sampler (505). A pull rope displacement sensor (503) is installed on the cylinder (502), and the pull rope of the pull rope displacement sensor (503) is connected to the connecting plate (504). A sampling reversing valve (506) is installed on the material port below the syringe sampler (505), and the sampling reversing valve (506) is sealed to the tank (501) through the water guide pipe (3).
5. A wastewater treatment device according to claim 1, characterized in that: A dosing pump (16) is installed on the mounting bracket (11), and the outlet of the dosing pump (16) is sealed to the rotary joint (603) through a water pipe.
6. A wastewater treatment device according to claim 1, characterized in that: A reflux pump (15) is installed on the lower right side of the mounting bracket (11). The inlet of the reflux pump (15) is connected to the outlet solenoid valve (9) through the water guide pipe (3). The outlet solenoid valve (9) is sealed to the medicine tank solenoid valve (2) and the biological tank solenoid valve (4) through the water guide pipe (3).
7. A wastewater treatment device according to claim 6, characterized in that: The solenoid valve (2) of the medicine tank is sealed to the first water inlet pipe (601) through the water guide pipe (3), and the solenoid valve (4) of the biological tank is sealed to the water inlet of the biological reaction mechanism (7) through the water guide pipe (3).
8. A wastewater treatment method based on a wastewater treatment device according to any one of claims 1-7, characterized in that: Includes the following steps: (A) Debris treatment: External raw water is transported to the hopper of the upper shell (102) through the raw water inlet pipe (101). At this time, the reducer (108) drives the rotor (103) to rotate. The hopper inside the rotor (103) rotates to the position of the inner guide pipe (104). The raw water and debris inside the hopper fall into the lower shell (109). The inclined filter plate (105) inside the lower shell (109) filters the raw water. The water flows down through the inclined filter plate (105), and the debris flows into the waste pipe (106) through the inclined filter plate (105). (B) Chemical treatment: The treated water is transported to the inside of the treatment shell (602) by the first water pump (12). At this time, the water is transported to the inside of the conical filter (608). The chemical pump (16) transports the external agent to the inside of the rotary joint (603). The stirring reducer (604) drives the spray pipe (605) to rotate through the transmission wheel. The liquid is sprayed out from the nozzle (607) of the spray pipe (605). At the same time, the scraper (610) plays a stirring role, so that the water inside the treatment shell (602) reacts fully. (C) Biological reaction: The water after the reaction is transported to the biological reaction mechanism (7) through the first drain pipe (606) under the action of the second water pump (13), and the fungi inside the biological reaction mechanism (7) react with the water again. (D) Inspection, storage and discharge: The water inside the bioreactor (7) is transported to the water storage mechanism (5) by the third water pump (14). The piston of the cylinder (502) drives the piston of the syringe sampler (505) to move. The rope displacement sensor (503) senses the movement of the connecting plate (504). At this time, the amount of material taken can be controlled. After the syringe sampler (505) takes the sample, the sampling reversing valve (506) is switched to the external inspection equipment for inspection. When the inspection and dosing treatment is not qualified, the solenoid valve (2) of the drug tank is opened. The return pump (15) transports the water inside the tank (501) back to the drug water adjustment mechanism (6) for readjustment. When the bioreactor is not qualified, the solenoid valve (4) of the bioreactor is opened. The return pump (15) transports the water back to the bioreactor (7).
Citation Information
Patent Citations
Sewage treatment tank capable of fully mixing liquid medicine
CN216106358U
Energy-saving reclaimed water recycling device
CN219860638U