Intelligent industrial wastewater treatment equipment and process

By introducing a multi-stage filtration unit cavity and liftable sterilization plate structure into industrial wastewater treatment equipment, combined with photovoltaic power generation and automatic detection system, the problem of low efficiency in traditional industrial wastewater treatment is solved, and efficient sterilization and purification effects are achieved.

CN119707195BActive Publication Date: 2025-08-22GUANGDONG HENRYDA ENVIRONMENTAL PROTECTION TECH CO LTD
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Patent Information

Application Number
CN202510097321.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-01-22
Publication Date
2025-08-22
Estimated Expiration
2045-01-22

AI Technical Summary

Technical Problem

Traditional industrial wastewater treatment methods are inefficient and have a long purification time. No sterilization measures are taken, resulting in poor purification results.

Method used

The multi-stage filter unit cavity structure is adopted, each cavity is equipped with an auxiliary filter mechanism, including a liftable sterilization plate and a sterilization lamp, combined with a photovoltaic power generation plate to supply power, and the motor drive crankshaft rotation is monitored and controlled in real time through the automatic water pollution detection system to achieve multiple sterilization and chemical reactions of wastewater.

Benefits of technology

Through multiple sterilization and chemical reactions, the purification efficiency of wastewater is significantly improved, the purification time is shortened, and efficient sterilization and purification effects are achieved.

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Abstract

The present invention relates to the field of industrial wastewater technology, and in particular, provides an intelligent industrial wastewater treatment device and process. The intelligent industrial wastewater treatment device includes a treatment tank, wherein a plurality of filter plates are provided in the treatment tank, a filter unit cavity is formed between each two adjacent filter plates, and each filter unit cavity is provided with a set of auxiliary filtering mechanisms. The top ends of all filter plates are close to the top of the treatment tank, and the bottom ends of all filter plates are connected to the bottom of the treatment tank. The water inlet end of the treatment tank is connected to a feed pipe, and the nozzle of the feed pipe extends into the first filter unit cavity. The top ends of all filter plates are provided with assembly holes, and bearings are installed in the assembly holes. All bearings are aligned in a straight line, so that the wastewater is sterilized. In addition, by lifting the wastewater and then allowing it to fall back into the filter unit cavity, the contact time between the wastewater and the first sterilization lamp is prolonged, thereby extending the sterilization time and improving the purification efficiency.
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Description

Technical Field

[0001] The present invention relates to the technical field of industrial wastewater treatment, and in particular to intelligent industrial wastewater treatment equipment and technology. Background Art

[0002] Industrial production generates a large amount of industrial wastewater. Due to environmental protection requirements, industrial wastewater cannot be discharged directly. Instead, it needs to go through a complete set of treatment processes to purify it before it can meet discharge standards. For heavy industrial production, wastewater treatment is an essential production link.

[0003] Traditional industrial wastewater treatment involves introducing wastewater into a sewage treatment tank and then purifying it by adding chemicals and using aeration. However, due to the high volume of industrial wastewater, aeration times are long, and purification solely relies on chemical additives without the use of sterilization methods. This results in long purification times and low efficiency. Summary of the Invention

[0004] In order to solve the above problems and improve the purification efficiency of wastewater, the present invention provides the following technical solutions:

[0005] An intelligent industrial wastewater treatment equipment includes a treatment pool, a plurality of filter plates are arranged in the treatment pool, a filter unit cavity is formed between each two adjacent filter plates, each filter unit cavity is provided with a set of auxiliary filtering mechanisms, the top ends of all filter plates are close to the top of the treatment pool, the bottom ends of all filter plates are connected to the bottom of the treatment pool, the water inlet end of the treatment pool is connected to a feed pipe, the nozzle of the feed pipe extends into the first filter unit cavity, the top ends of all filter plates are provided with assembly holes, bearings are installed in the assembly holes, all bearings are in the same straight line, and a crankshaft is installed on all bearings. Each curved section is distributed in a filter unit cavity. The auxiliary filtering mechanism includes a first sterilization plate and a suspension rod hinged on the top surface of the first sterilization plate. The first sterilization plate is placed flat in the filter unit cavity. The top surface of the first sterilization plate is connected to a curved portion of the crankshaft through the suspension rod. When the crankshaft rotates, the first sterilization plate is lifted and lowered along the filter unit cavity through the curved portion. A first sterilization lamp is also provided on the top surface of the first sterilization plate. A second sterilization lamp is provided on the surface of the filter plate on the side opposite to the filter unit cavity. When the first sterilization lamp rises and falls with the first sterilization plate, its two sides rise and fall and rotate relative to the second sterilization lamp.

[0006] As a further preference, the auxiliary filtering mechanism further includes a photovoltaic power generation panel installed on the treatment pool, and the photovoltaic power generation panel is electrically connected to the first germicidal lamp and the second germicidal lamp.

[0007] As a further preferred embodiment, a third sterilization lamp facing above the filter unit cavity is provided on the bottom surface of the photovoltaic power generation panel, and the photovoltaic power generation panel covers above all the filter unit cavities.

[0008] As a further preferred embodiment, the left and right sides of the second germicidal lamp pass through the left and right sides of the filter plate, and the second germicidal lamp is arranged in a multi-bend shape along the length direction of the filter plate.

[0009] As a further preferred embodiment, the auxiliary filtering mechanism also includes a hinge shaft arranged on the left and right sides of the first sterilization plate, and also includes a second sterilization plate installed on the left and right sides of the first sterilization plate through the hinge shaft. A torsion spring is installed on the hinge shaft, one free end of the torsion spring is limited to the bottom surface of the second sterilization plate, and the other free end of the torsion spring is connected to the bottom surface of the first sterilization plate. The torsion spring is used to keep the second sterilization plate and the first sterilization plate on the same plane, and the hinge shaft is used to enable the second sterilization plate to rotate up and down relative to the first sterilization plate. The first sterilization lamp is divided into three parts, one part is arranged on the top surface of the first sterilization plate, and the other two parts are respectively arranged on the top surfaces of the two second sterilization plates.

[0010] As a further preferred embodiment, a vertically upward guide column is provided in the treatment pool. The guide column is vertically upward and has a downward-bending bending portion at the top. A guide hole is provided on the first sterilization plate. The first sterilization plate is slidably fitted on the guide column through the guide hole, so that the first sterilization plate can be raised and lowered smoothly. The bending portion bends downward above the second sterilization plate. When the first sterilization plate rises with the second sterilization plate so that the top surface of the second sterilization plate contacts the bottom end of the bending portion, the second sterilization plate automatically deflects downward when the bottom end of the bending portion touches it.

[0011] As a further preferred embodiment, a lifting gap is left between the outer edge of the second sterilization plate and the second sterilization lamp.

[0012] As a further preference, an aerator is provided in the cavity of the last filter unit, an automatic water pollution detection system is provided in the cavity of the last filter unit, a motor is installed outside the treatment tank, pulleys are installed on the action shaft of the motor and the outer end of the crankshaft, and the two pulleys are connected together by a conveyor belt. The automatic water pollution detection system includes at least an acidity detection sensor and a controller, the acidity detection sensor is electrically connected to the controller, and the controller is electrically connected to the motor.

[0013] The present invention also provides an intelligent industrial wastewater treatment process, comprising the following steps:

[0014] Step S01: adding a purifier into the treatment pool and installing an automatic water pollution detection system in the cavity of the last filter unit;

[0015] Step S02: connecting the feed pipe to the industrial equipment;

[0016] Step S03, connecting the water outlet of the treatment pool to the lower-level purification equipment;

[0017] Step S04: Industrial wastewater enters the treatment tank through the feed pipe, is sterilized and filtered in multiple filter unit cavities in sequence, and is then sent to the last filter unit cavity for detection by the automatic water pollution detection system. When the detected wastewater acidity is high, the auxiliary filtering mechanism is started to sterilize the water.

[0018] The beneficial effects of the present invention compared to the prior art are:

[0019] The wastewater flows into the first filter unit cavity through the feed pipe, enters the second filter unit cavity after being filtered by the first filter plate, and then enters the third filter unit cavity after being filtered by the second filter plate. After detection by the acidity detection sensor in the water pollution automatic detection system, data is obtained. When the acidity still exceeds the standard, the signal is fed back to the controller, and the controller sends the signal to the motor to automatically power on the motor. The motor drives the crankshaft to rotate. According to the crankshaft drive principle, when the crankshaft rotates, the curved part on each section is used to lift the boom, and these booms lift each first sterilization plate, and these first sterilization plates lift their respective second sterilization plates. Since these second sterilization plates follow the first sterilization plates in the filter unit cavity, as they rise in the filter unit cavity, the wastewater in the filter unit cavity is lifted upward, and as it is lifted to the top , these wastewaters will also flow downward along the top surfaces of the first sterilization plate and the second sterilization plate, and under the action of gravity, the wastewater will fall back into the filter unit cavity through the lifting gap between the second sterilization plate and the second sterilization lamp. As the first sterilization plate and the second sterilization plate are lifted upward, the wastewater will stay on the top surfaces of the first sterilization plate and the second sterilization plate for a period of time, and then fall back into the filter unit cavity through the lifting gap. Since the first sterilization plate and the second sterilization plate are installed with the first sterilization lamp, the wastewater can be sterilized in this way. Moreover, since the wastewater is lifted and then falls back into the filter unit cavity, the contact time between the wastewater and the first sterilization lamp is prolonged, the sterilization time is extended, and the sterilization efficiency is improved. Since the first sterilization plate and the second sterilization plate of these structures are arranged in multiple filter unit cavities, the bacteria in the wastewater will be efficiently killed as the wastewater is discharged to the discharge side. BRIEF DESCRIPTION OF THE DRAWINGS

[0020] Figure 1 A schematic diagram of the external structure of an intelligent industrial wastewater treatment device provided by an embodiment of the present invention;

[0021] Figure 2 A schematic plan view of an intelligent industrial wastewater treatment device provided by an embodiment of the present invention;

[0022] Figure 3A schematic diagram of an intelligent industrial wastewater treatment device provided by an embodiment of the present invention when removing a dry photovoltaic power generation panel;

[0023] Figure 4 An intelligent industrial wastewater treatment equipment provided by the embodiment of the present invention is composed of Figure 3 The resulting top-down plan view;

[0024] Figure 5 An intelligent industrial wastewater treatment equipment provided by the embodiment of the present invention is composed of Figure 4 Schematic diagram of the section A after it is drawn out;

[0025] Figure 6 A schematic diagram of an intelligent industrial wastewater treatment device provided by an embodiment of the present invention with a set of auxiliary filtering mechanisms removed;

[0026] Figure 7 A schematic diagram of only some components of the auxiliary filtering mechanism in an intelligent industrial wastewater treatment device provided by an embodiment of the present invention;

[0027] Figure 8 An intelligent industrial wastewater treatment equipment provided by the embodiment of the present invention is composed of Figure 7 The disassembled schematic diagram is introduced;

[0028] Figure 9 An intelligent industrial wastewater treatment equipment provided by the embodiment of the present invention is composed of Figure 7 Schematic diagram from an upward perspective.

[0029] In the figure: 1. Treatment tank; 2. Filter plate; 3. Filter unit cavity; 4. Auxiliary filtration mechanism; 5. Feed pipe; 6. Bearing; 7. Crankshaft; 8. Bending part; 9. First sterilization plate; 10. First sterilization lamp; 11. Second sterilization lamp; 12. Photovoltaic power generation panel; 13. Third sterilization lamp; 14. Second sterilization plate; 15. Torsion spring; 16. Guide column; 17. Bending part; 18. Guide hole; 19. Lifting gap; 20. Motor; 21. Pulley; 22. Conveyor belt; 23. Hanging rod; 24. Articulated shaft; 25. Automatic water pollution detection system. DETAILED DESCRIPTION

[0030] The above and other embodiments and advantages of the present invention are clearly and completely described below in conjunction with the accompanying drawings. Obviously, the embodiments described are only some embodiments of the present invention, not all embodiments.

[0031] In one embodiment, Figures 1-9As shown: This embodiment provides an intelligent industrial wastewater treatment equipment, including a treatment pool 1, wherein a plurality of filter plates 2 are arranged in the treatment pool 1, a filter unit cavity 3 is formed between each two adjacent filter plates 2, and a set of auxiliary filtering mechanisms 4 is arranged in each filter unit cavity 3, the top ends of all filter plates 2 are close to the top of the treatment pool 1, and the bottom ends of all filter plates 2 are connected to the bottom of the treatment pool 1, and the water inlet end of the treatment pool 1 is connected to a feed pipe 5, and the mouth of the feed pipe 5 extends into the first filter unit cavity 3, and the top ends of all filter plates 2 are provided with assembly holes, and bearings 6 are installed in the assembly holes, and all bearings 6 are in the same straight line, and a crankshaft 7 is installed on all bearings 6. Each curved portion 8 is distributed in a filter unit cavity 3. The auxiliary filtering mechanism 4 includes a first sterilization plate 9 and a hanger 23 hinged on the top surface of the first sterilization plate 9. The first sterilization plate 9 is placed flat in the filter unit cavity 3. The top surface of the first sterilization plate 9 is transferred to a curved portion 8 of the crankshaft 7 through the hanger 23. When the crankshaft 7 rotates, the first sterilization plate 9 is lifted and lowered along the filter unit cavity 3 through the curved portion 8. A first sterilization lamp 10 is also provided on the top surface of the first sterilization plate 9. A second sterilization lamp 11 is provided on the surface of the filter plate 2 on the side opposite to the filter unit cavity 3. When the first sterilization lamp 10 rises and falls with the first sterilization plate 9, its two sides rise and fall and rotate relative to the second sterilization lamp 11.

[0032] The auxiliary filtering mechanism 4 further includes a photovoltaic power generation panel 12 installed on the treatment pool 1 . The photovoltaic power generation panel 12 is electrically connected to the first germicidal lamp 10 and the second germicidal lamp 11 .

[0033] A third sterilization lamp 13 facing above the filter unit cavity 3 is provided on the bottom surface of the photovoltaic power generation panel 12 , and the photovoltaic power generation panel 12 covers above all the filter unit cavities 3 .

[0034] The left and right sides of the second germicidal lamp 11 pass through the left and right surfaces of the filter plate 2 . The second germicidal lamp 11 is arranged in a multi-bend shape along the length direction of the filter plate 2 .

[0035] The auxiliary filtering mechanism 4 also includes a hinge shaft 24 arranged on the left and right sides of the first sterilization plate 9, and also includes a second sterilization plate 14 installed on the left and right sides of the first sterilization plate 9 through the hinge shaft 24. A torsion spring 15 is installed on the hinge shaft 24. One free end of the torsion spring 15 is limited to the bottom surface of the second sterilization plate 14, and the other free end of the torsion spring 15 is connected to the bottom surface of the first sterilization plate 9. The torsion spring 15 is used to keep the second sterilization plate 14 and the first sterilization plate 9 on the same plane. The hinge shaft 24 also enables the second sterilization plate 14 to rotate up and down relative to the first sterilization plate 9. The first sterilization lamp 10 is divided into three parts, one part is provided on the top surface of the first sterilization plate 9, and the other two parts are respectively provided on the top surfaces of the two second sterilization plates 14.

[0036] A vertically upward guide column 16 is provided in the treatment pool 1. The guide column 16 is vertically upward and has a downwardly bent portion 17 at the top. A guide hole 18 is provided on the first sterilization plate 9. The first sterilization plate 9 is slidably fitted on the guide column 16 through the guide hole 18, so that the first sterilization plate 9 can be raised and lowered smoothly. The bent portion 17 is bent downward above the second sterilization plate 14. When the first sterilization plate 9 rises with the second sterilization plate 14 so that the top surface of the second sterilization plate 14 contacts the bottom end of the bent portion 17, the second sterilization plate 14 automatically deflects downward when the bottom end of the bent portion 17 touches it.

[0037] A lifting gap 19 is left between the outer edge of the second sterilizing plate 14 and the second sterilizing lamp 11 .

[0038] An aerator is provided in the last filter unit cavity 3, and an automatic water pollution detection system 25 is provided in the last filter unit cavity 3. A motor 20 is installed on the outside of the treatment tank 1. Pulleys 21 are installed on the action shaft of the motor 20 and the outer end of the crankshaft 7. The two pulleys 21 are connected together by a conveyor belt 22. The automatic water pollution detection system 25 includes at least an acidity detection sensor and a controller. The acidity detection sensor is electrically connected to the controller, and the controller is electrically connected to the motor 20. After multi-stage sterilization and purification, the wastewater enters the last filter unit cavity 3, and after being treated by the aerator, it fully reacts with the added chemical agents to achieve the purpose of re-purification. In addition, the acidity detection sensor is used to detect the water quality. If the acidity is high, the motor 20 is intelligently controlled to rotate, and the motor 20 drives the crankshaft 7 to rotate. The multi-section curved portion 8 on the crankshaft 7 rotates, and the curved portion 8 drives the first sterilization plate 9 and the second sterilization plate 14 to frequently rise and fall in the filter unit cavity 3, so that the first sterilization lamp 10 on the first sterilization plate 9 and the second sterilization plate 14 frequently contacts the wastewater, and the wastewater is frequently lifted, so that the wastewater frequently receives the sterilization treatment of the first sterilization lamp 10 and then falls into the filter unit cavity 3 to assist the chemical agents to quickly purify the wastewater.

[0039] Working principle and effect: wastewater flows into the first filter unit cavity 3 through the feed pipe 5, enters the second filter unit cavity 3 after being filtered by the first filter plate 2, and then enters the third filter unit cavity 3 after being filtered by the second filter plate 2. After detection by the acidity detection sensor in the water pollution automatic detection system 25, data is obtained. When the acidity still exceeds the standard, the signal is fed back to the controller, and the controller sends the signal to the motor 20, so that the motor 20 is automatically powered on and works. The motor 20 drives the crankshaft 7 to rotate. According to the driving principle of the crankshaft 7, when the crankshaft 7 rotates, the curved part 8 on each section drives the suspension rod 23 to rise and fall. These suspension rods 23 drive each first sterilization plate 9 to rise and fall, and these first sterilization plates 9 drive their respective second sterilization plates 14 to rise and fall. Since these second sterilization plates 14 follow the first sterilization plates 9 in the corresponding filter unit cavity 3, as they rise in the filter unit cavity 3, the wastewater in the filter unit cavity 3 is lifted upward. After rising to the top, the wastewater will flow downward along the top surface of the first sterilization plate 9 and the second sterilization plate 14. Under the action of gravity, the wastewater falls back into the filter unit cavity 3 through the lifting gap 19 between the second sterilization plate 14 and the second sterilization lamp 11. As the first sterilization plate 9 and the second sterilization plate 14 are lifted upward, the wastewater will stay on the top surface of the first sterilization plate 9 and the second sterilization plate 14 for a period of time, and then fall back into the filter unit cavity 3 through the lifting gap 19. Since the first sterilization plate 9 and the second sterilization plate 14 are installed with the first sterilization lamp 10, the wastewater can be sterilized in this way. Moreover, by lifting the wastewater and then letting it fall back into the filter unit cavity 3, the contact time between the wastewater and the first sterilization lamp 10 is prolonged, thereby extending the sterilization time and improving the sterilization efficiency. Since the first sterilization plates 9 and the second sterilization plates 14 of these structures are arranged in multiple filter unit cavities 3, the bacteria in the wastewater will be efficiently killed as the wastewater is discharged to the discharge side. During wastewater treatment, chemical agents are added to the wastewater, so combined with the sterilization function, the purification efficiency of the wastewater is further improved.

[0040] In addition, a second germicidal lamp 11 is provided on the surface of the filter plate 2. When the wastewater is purified into the filter unit cavity 3, it will be sterilized in advance by the second germicidal lamp 11. Under the repeated lifting action of the first germicidal lamp 10 and the combined action of the second germicidal lamp 11, the purification efficiency of the wastewater is further improved.

[0041] In addition, every time the first sterilization plate 9 and the second sterilization plate 14 are lifted to the point where the bottom end of the bent portion 17 contacts the top surfaces of the two second sterilization plates 14, the two second sterilization plates 14 will deflect downward relative to the two sides of the first sterilization plate 9, and the lifted wastewater will be discharged downward more smoothly relative to the second sterilization lamp 11. When the first sterilization plate 9 and the second sterilization plate 14 descend, the top surface of the second sterilization plate 14 is away from the bottom ends of the two bent portions 17, and one free end of the torsion spring 15 rebounds upward and pushes the second sterilization plate 14 to rotate upward until it is on the same horizontal plane as the first sterilization plate 9. When the first sterilization plate 9 and the two second sterilization plates 14 rise again, the wastewater can be lifted upward again.

[0042] The present invention also provides an intelligent industrial wastewater treatment process, comprising the following steps:

[0043] Step S01: Add a purifier into the treatment pool 1 and install a water pollution automatic detection system 25 in the last filter unit cavity 3;

[0044] Step S02: connecting the feed pipe 5 to the industrial equipment;

[0045] Step S03: Connect the water outlet of the treatment pool 1 to the lower purification equipment;

[0046] In step S04, industrial wastewater enters the treatment tank 1 through the feed pipe 5. After sterilization and filtration through multiple filter unit cavities 3, it is sent to the last filter unit cavity 3 for testing by the automatic water pollution detection system 25. If the detected wastewater acidity is high, the auxiliary filter mechanism 4 is activated to sterilize the water quality. At the same time, according to the operation of the auxiliary filter mechanism 4, a salty additive is added to the last filter unit cavity 3 to neutralize the wastewater acidity. The wastewater finally flows to the downstream purification equipment (such as a sewage treatment plant) for final treatment and is discharged after testing and meeting the standards. Of course, during actual assembly, a circuit can be set up with a switch to control the motor 20 to operate alone. When the motor 20 operates alone, it can rotate the crankshaft 7 continuously, and the crankshaft 7 drives all auxiliary filter mechanisms 4 to continuously sterilize the wastewater. The acidity detection sensor can re-test the acidity of the purified wastewater and, based on the detected data, add a salty additive to the wastewater to neutralize the wastewater acidity.

[0047] The above orientation designations do not represent the specific orientations of the components in this implementation scheme. This implementation scheme is only for the convenience of describing the scheme, and the orientations are described relatively with reference to the figures. In essence, the specific orientations of the components are described based on their actual installation and actual use, as well as the customary orientations of those skilled in the art. This is hereby explained.

[0048] The specific embodiments described above further illustrate the purpose of the present invention, technical solutions, and beneficial effects. It should be understood that the above description is merely a specific embodiment of the present invention and is not intended to limit the scope of protection of the present invention. In particular, it should be noted that for those skilled in the art, any modifications, equivalent substitutions, improvements, etc. made within the spirit and principles of the present invention should be included in the scope of protection of the present invention.

Claims

1. An intelligent industrial wastewater treatment equipment, characterized in that: The invention relates to a treatment pool, wherein a plurality of filter plates are provided in the treatment pool, a filter unit cavity is formed between each two adjacent filter plates, and a set of auxiliary filtering mechanisms is provided in each filter unit cavity, the top ends of all the filter plates are close to the top of the treatment pool, the bottom ends of all the filter plates are connected to the bottom of the treatment pool, the water inlet end of the treatment pool is connected to a feed pipe, the nozzle of the feed pipe extends into the first filter unit cavity, the top ends of all the filter plates are provided with assembly holes, bearings are installed in the assembly holes, all the bearings are in the same straight line, a crankshaft is commonly installed on all the bearings, each curved section on the crankshaft is distributed in one of the filter unit cavities, the auxiliary filtering mechanism includes a first sterilization plate, and also includes a suspension rod hinged on the top surface of the first sterilization plate; The first sterilization plate is placed flat in the filter unit cavity, and the top surface of the first sterilization plate is connected to a bent portion of the crankshaft via the suspension rod. When the crankshaft rotates, the first sterilization plate is lifted and lowered along the filter unit cavity via the bent portion. A first sterilization lamp is also provided on the top surface of the first sterilization plate, and a second sterilization lamp is provided on the surface of the filter plate on the side opposite to the filter unit cavity. When the first sterilization lamp is lifted and lowered along with the first sterilization plate, both sides thereof are lifted and lowered and rotated relative to the second sterilization lamp. The auxiliary filtering mechanism further includes a photovoltaic power generation panel mounted on the treatment pool, and the photovoltaic power generation panel is electrically connected to the first sterilization lamp and the second sterilization lamp. The auxiliary filtering mechanism further includes hinge shafts provided on the left and right sides of the first sterilization plate, and also includes second sterilization plates installed on the left and right sides of the first sterilization plate through the hinge shafts, a torsion spring is installed on the hinge shaft, one free end of the torsion spring is restricted to the bottom surface of the second sterilization plate, and the other free end of the torsion spring is connected to the bottom surface of the first sterilization plate, the torsion spring enables the second sterilization plate and the first sterilization plate to be maintained in the same plane, and the hinge shaft enables the second sterilization plate to rotate up and down relative to the first sterilization plate, the first sterilization lamp is divided into three parts, one part is provided on the top surface of the first sterilization plate, and the other two parts are respectively provided on the top surfaces of the two second sterilization plates; A vertically upward guide post is provided in the treatment pool. The guide post is vertically upward and has a downwardly bent portion at the top. A guide hole is provided on the first sterilization plate. The first sterilization plate is slidably fitted on the guide post through the guide hole, so that the first sterilization plate is smoothly raised and lowered. The bent portion is bent downward above the second sterilization plate. When the first sterilization plate and the second sterilization plate are raised until the top surface of the second sterilization plate contacts the bottom end of the bent portion, the second sterilization plate is automatically deflected downward by the contact of the bottom end of the bent portion. A lifting gap is left between the outer edge of the second sterilization plate and the second sterilization lamp.

2. The intelligent industrial wastewater treatment equipment according to claim 1 is characterized in that: A third sterilization lamp facing above the filter unit cavity is provided on the bottom surface of the photovoltaic power generation panel, and the photovoltaic power generation panel covers above all the filter unit cavities.

3. The intelligent industrial wastewater treatment equipment according to claim 2 is characterized in that: The left and right sides of the second germicidal lamp pass through the left and right sides of the filter plate, and the second germicidal lamp is arranged in a multi-bend shape along the length direction of the filter plate.

4. The intelligent industrial wastewater treatment equipment according to claim 3 is characterized in that: An aerator is provided in the cavity of the last filter unit, and an automatic water pollution detection system is provided in the cavity of the last filter unit. A motor is installed on the outside of the treatment tank, and pulleys are installed on the action shaft of the motor and the outer end of the crankshaft. The two pulleys are connected together by a conveyor belt. The automatic water pollution detection system includes at least an acidity detection sensor and a controller. The acidity detection sensor is electrically connected to the controller, and the controller is electrically connected to the motor.

5. An intelligent industrial wastewater treatment process, applicable to the intelligent industrial wastewater treatment equipment according to any one of claims 1 to 4, characterized in that: The following steps are involved: Step S01: adding a purifier into the treatment pool and installing an automatic water pollution detection system in the last filter unit cavity; Step S02: connecting the feed pipe to the industrial equipment; Step S03, connecting the water outlet of the treatment pool to the lower-level purification equipment; Step S04: Industrial wastewater enters the treatment tank through the feed pipe, is sterilized and filtered in multiple filter unit cavities in sequence, and is then sent to the last filter unit cavity for detection by the automatic water pollution detection system. When the detected wastewater acidity is high, the auxiliary filtering mechanism is started to sterilize the water.

Citation Information

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