Oxidation treatment device for antibiotic pollutants in water
By designing an oxidation treatment system that includes an ozone reactor and multiple components, the problem of insufficient purification of antibiotic pollutants in water has been solved, achieving efficient and automated wastewater purification and ensuring environmental safety.
Patent Information
- Application Number
- CN202520251958.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-18
- Publication Date
- 2025-12-30
- Estimated Expiration
- 2035-02-18
AI Technical Summary
Existing technologies have limited capacity for oxidizing antibiotic pollutants in water, and these devices are often insufficient to fully purify the water, leading to severe water pollution and potentially threatening human health.
An oxidation treatment system was designed, comprising an ozone reactor, an air supply pipe, a shell, a stirring device, a water supply device, and an ozone treatment device. The system utilizes oxygen from the air to generate ozone, and achieves full contact and reaction between wastewater and ozone through components such as an aeration pipe, a stirring device, and a filter. Combined with ozone concentration detection and treatment, the system ensures purification effectiveness and environmental safety.
It improves the removal efficiency of antibiotic pollutants, enhances water cleanliness, achieves automated treatment, saves resources, avoids ozone pollution, and ensures a green production process.
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Figure CN223737816U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model relates to oxidation treatment device, concretely is antibiotic class pollutant oxidation treatment device in water. BACKGROUND
[0002] Antibiotic class pollutant in water mainly comes from the antibiotic use in agriculture and animal husbandry, also has medical waste, human activity, aquaculture etc., these pollutant sources continuously discharge low concentration antibiotic to the environment, make water resource be polluted, at present, the antibiotic pollution present situation in water body is very serious, long -term contact is polluted to water body possibly cause potential threat to human health, especially drink the polluted water source, therefore, need oxidation treatment device to clean antibiotic class pollutant in water.
[0003] Utilize ozone to clean antibiotic class pollutant in water, not only can kill virus and spore in water, and ozone is influenced less by sewage PH value and temperature, is relatively stable, also improve water quality, but the ozone type oxidation treatment device on the market is less at present, and cannot carry out sufficient purification to sewage, therefore, the utility model provides an antibiotic class pollutant oxidation treatment device in water can carry out sufficient removal to antibiotic class pollutant in water. UTILITY MODEL CONTENT
[0004] The utility model is directed to providing antibiotic class pollutant oxidation treatment device in water to solve the problems in the background art.
[0005] In order to solve the above technical problems, the utility model provides the following technical scheme:
[0006] Antibiotic class pollutant oxidation treatment device in water, oxidation treatment device includes ozone reaction device, gas feeding pipe, shell, stirring device, water supply device and ozone treatment device, ozone reaction device, gas feeding pipe, shell and ozone treatment device are sequentially arranged according to gas feeding direction, ozone reaction device and gas feeding pipe are connected by pipeline, shell and gas feeding pipe are fastened, stirring device, water supply device are all fastened with shell, ozone treatment device and gas feeding pipe are connected by pipeline, stirring device and water supply device are located at the top of shell, and gas feeding pipe is located at the bottom of shell.
[0007] The ozone reaction device is used for converting oxygen in nature into ozone, directly using oxygen in air as raw material, saving production cost and improving production efficiency; the gas conveying pipe is used for conveying ozone generated in the ozone reaction device into the shell; the shell is used as a container to provide a place for ozone and sewage reaction; the stirring device is used for stirring the sewage, so that the sewage and ozone can be fully contacted, the working efficiency is improved, and the antibiotic pollutants in the water are fully removed, the water cleanliness is improved; the water supply device is used for inputting water into the shell and preliminarily filtering the sewage; the ozone treatment device is used for detecting and treating the discharged ozone to prevent high-concentration ozone from polluting the environment and ensure the green production process.
[0008] Further, the ozone reaction device comprises an ozone reactor, an air inlet pipe and a controller, the ozone reactor and the air inlet pipe are connected by pipeline, the controller is fixedly connected with the ozone reactor, and the controller and the ozone reactor are electrically connected, and the air inlet pipe and the controller are located at the top of the ozone reactor.
[0009] The ozone reactor is used for chemical reaction to generate ozone, the air inlet pipe is used for inputting atmosphere to generate ozone by chemical reaction of oxygen in the atmosphere, resources are saved, and production efficiency is improved; the controller is used for controlling and adjusting the ozone reactor to obtain ozone with a concentration required for removing antibiotic pollutants in water and can be adjusted in real time according to the work requirement, and the practicability of the equipment is improved.
[0010] Further, the gas conveying pipe is provided with aeration pipes, the aeration pipes are provided in plurality, and the plurality of aeration pipes are uniformly distributed on the inner bottom of the shell.
[0011] The plurality of aeration pipes are arranged on the gas conveying pipe and are uniformly arranged on the inner bottom of the shell, so that the aeration pipes can uniformly aerate in the shell, the ozone can fully react with the sewage, the cleaning speed is improved, and the quality of the cleaned water is improved.
[0012] Further, the stirring device comprises a motor and a stirring rod, the motor fixed end is fixedly connected with the shell, and the motor output end is fixedly connected with the stirring rod.
[0013] The motor serves as a power source and is used for outputting torque to the stirring rod to make the stirring rod rotate, the stirring rod is in a multi-layer paddle type, can fully stir the sewage in the shell, drives the sewage to flow, and makes the sewage fully react with the ozone, which is more efficient for removing antibiotic pollutants in water.
[0014] Further, the water supply device comprises a water pump and a water conveying pipeline, the water pump fixed end is fixedly connected with the shell, the water pump input end is connected with the water conveying pipeline by pipeline, and the water pump output end is connected with the shell by pipeline.
[0015] The water pump is used as a power source to provide negative pressure, so that the sewage from the outside needs to be purified is pumped into the shell, and the water conveying pipeline is used to convey the sewage into the shell, so that the automation of conveying is realized, the work efficiency is improved, and the manpower and material resources are saved.
[0016] Further, the water supply device further comprises a filter screen, the filter screen is fixedly connected with the water conveying pipeline, and the filter screen is located at the end of the water conveying pipeline away from the water pump.
[0017] The filter screen is used for filtering impurities in the sewage, preliminarily filtering and cleaning the sewage, facilitating further oxidation treatment of the sewage, and improving the work efficiency.
[0018] Further, the ozone treatment device comprises an ozone concentration detector and a processor, the ozone concentration detector is connected with the gas conveying pipeline, the ozone concentration detector is fixedly connected with the processor, and the ozone concentration detector is electrically connected with the processor.
[0019] The ozone concentration detector is used for detecting the concentration of discharged ozone, if the ozone concentration is low and reaches the emission standard, the ozone is directly discharged into the atmosphere, if the ozone concentration is high and does not reach the emission standard, in order to avoid pollution to the environment, the processor is used for destroying the ozone that does not reach the standard, reducing the ozone concentration, and discharging the ozone until the ozone does not pollute the atmosphere.
[0020] Compared with the prior art, the beneficial effects achieved by the utility model are that: the utility model is provided with a plurality of aeration pipes, the aeration pipes are evenly arranged at the bottom of the shell, the aeration pipes can uniformly aerate in the shell, the ozone can fully react with the sewage, the cleaning speed is improved, the quality of the clean water is improved, the stirring rod is arranged as a multi-layer paddle type, the sewage in the shell can be fully stirred, the sewage is driven to flow, the sewage can fully react with the ozone, the removal of antibiotic pollutants in water is more efficient, the filter screen is arranged to filter impurities in the sewage, preliminarily filter and clean the sewage, facilitate further oxidation treatment of the sewage, improve the work efficiency, the processor is arranged to destroy the ozone that does not reach the standard, reduce the ozone concentration, and avoid pollution to the environment. BRIEF DESCRIPTION OF DRAWINGS
[0021] The drawings are used to provide a further understanding of the utility model, and constitute a part of the specification, are used together with the embodiments of the utility model to explain the utility model, and do not constitute the limitation to the utility model. In the drawings:
[0022] Figure 1 It is the overall structure schematic view of the utility model;
[0023] Figure 2 is the ozone reaction device structure schematic view of the utility model;
[0024] Figure 3 is the shell section structure schematic view of the utility model;
[0025] Figure 4 is the ozone treatment device structure schematic view of the utility model.
[0026] In the drawing: 1 - ozone reaction device, 2 - gas conveying pipe, 3 - shell, 4 - stirring device, 5 - water supply device, 6 - ozone treatment device, 11 - ozone reactor, 12 - gas inlet pipe, 13 - controller, 21 - aeration pipe, 41 - motor, 42 - stirring rod, 51 - water pump, 52 - water conveying pipeline, 53 - filter screen, 61 - ozone concentration detector, 62 - processor. DETAILED DESCRIPTION
[0027] The technical solutions in the embodiments of the utility model will be clearly and completely described below with reference to the drawings in the embodiments of the utility model. Obviously, the described embodiments are only part of the embodiments of the utility model, not all the embodiments. Based on the embodiments in the utility model, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the utility model.
[0028] Please refer to Figures 1-4 The utility model provides technical scheme:
[0029] As Figure 1 shown, the water antibiotic pollution oxidizing treatment device, the oxidizing treatment device includes ozone reaction device 1, gas conveying pipe 2, shell 3, stirring device 4, water supply device 5 and ozone treatment device 6, ozone reaction device 1, gas conveying pipe 2, shell 3 and ozone treatment device 6 are arranged in turn according to the gas conveying direction, ozone reaction device 1 and gas conveying pipe 2 are connected by pipeline, shell 3 and gas conveying pipe 2 are fastenedly connected, stirring device 4, water supply device 5 are all fastenedly connected with shell 3, ozone treatment device 6 and gas conveying pipe 2 are connected by pipeline, stirring device 4 and water supply device 5 are located at the top of shell 3, and gas conveying pipe 2 is located at the bottom of shell 3.
[0030] Ozone reactor 1 converts oxygen from nature into ozone, directly using oxygen in the air as a raw material, saving production costs and improving production efficiency. Gas supply pipe 2 transports the ozone generated in ozone reactor 1 to shell 3. Shell 3 serves as a container, providing a place for ozone and wastewater to react. Stirring device 4 stirs the wastewater, allowing the wastewater and ozone to fully contact, improving work efficiency and effectively removing antibiotic pollutants from the water, thus improving water cleanliness. Water supply device 5 feeds water into shell 3 and performs initial filtration of the wastewater, automating the oxidation process. Ozone treatment device 6 detects and treats the discharged ozone concentration to prevent excessive ozone concentration from polluting the environment, ensuring a green production process.
[0031] like Figures 1-3 As shown, the ozone reaction device 1 includes an ozone reactor 11, an air inlet pipe 12, and a controller 13. The ozone reactor 11 and the air inlet pipe 12 are connected by pipes. The controller 13 is fastened to the ozone reactor 11 and electrically connected to the ozone reactor 11. The air inlet pipe 12 and the controller 13 are located on top of the ozone reactor 11.
[0032] The ozone reactor 11 is used to carry out chemical reactions to produce ozone. The air inlet pipe 12 is used to input the atmosphere and use the oxygen in the atmosphere to carry out chemical reactions to produce ozone, which saves resources and improves production efficiency. The controller 13 is used to control and adjust the ozone reactor 11 to obtain the ozone concentration required to remove antibiotic pollutants from the water. It can also be adjusted in real time according to the needs of the operation, which improves the practicality of the equipment.
[0033] like Figures 2-3 As shown, the air supply pipe 2 is provided with an aeration pipe 21, and there are several aeration pipes 21, which are evenly distributed on the bottom of the inner side of the shell 3.
[0034] Several aeration pipes 21 are installed on the gas supply pipe 2, and the aeration pipes 21 are evenly arranged at the bottom of the inner side of the shell 3, so that the aeration pipes 21 can aerate evenly in the shell 3, so that ozone can react fully with the sewage, improve the cleaning speed, and improve the quality of clean water.
[0035] like Figure 3 As shown, the stirring device 4 includes a motor 41 and a stirring rod 42. The fixed end of the motor 41 is fastened to the housing 3, and the output end of the motor 41 is fastened to the stirring rod 42.
[0036] The motor 41 serves as a power source and is configured to output torque to the stirring rod 42, so that the stirring rod 42 rotates. The stirring rod 42 is a multi-layer paddle type, and can fully stir the sewage in the shell 3, drive the sewage to flow, and make the sewage fully react with ozone, thereby being more efficient for removing antibiotic pollutants in water.
[0037] As shown in Figure 3 The water supply device 5 includes a water pump 51 and a water conveying pipe 52. The fixed end of the water pump 51 is fixedly connected to the shell 3, the input end of the water pump 51 is connected to the water conveying pipe 52 in a pipeline manner, and the output end of the water pump 51 is connected to the shell 3 in a pipeline manner.
[0038] The water pump 51 serves as a power source and is configured to provide negative pressure, so that the sewage to be purified from the outside is drawn into the shell 3. The water conveying pipe 52 is configured to convey the sewage into the shell 3. The entire process is automated, which improves work efficiency and saves manpower and material resources.
[0039] As shown in Figure 3 The water supply device 5 further includes a filter screen 53. The filter screen 53 is fixedly connected to the water conveying pipe 52, and is located at the end of the water conveying pipe 52 away from the water pump 51.
[0040] The filter screen 53 is configured to filter impurities in the sewage, so as to preliminarily filter and clean the sewage, facilitate further oxidation treatment of the sewage, and improve work efficiency.
[0041] As shown in Figure 4 The ozone treatment device 6 includes an ozone concentration detector 61 and a processor 62. The ozone concentration detector 61 is connected to the gas conveying pipe 2 in a pipeline manner, and is fixedly connected to the processor 62 in a pipeline manner. The ozone concentration detector 61 is electrically connected to the processor 62.
[0042] The ozone concentration detector 61 is configured to detect the concentration of discharged ozone. If the ozone concentration is low and reaches the emission standard, the ozone is directly discharged into the atmosphere. If the ozone concentration is high and does not reach the emission standard, the processor 62 is configured to destroy the ozone that does not meet the standard, so as to reduce the ozone concentration, until the ozone is discharged without causing pollution to the atmosphere.
[0043] The utility model discloses a working principle: open the water pump 51, provide negative pressure, make water pipeline 52 draw sewage, and the sewage of drawing is filtered off solid impurity by filter screen 53, and the sewage after filtering enters the shell 3 through water pipeline 52, open ozone reactor 11, and the concentration of required ozone is controlled through controller 13, and the air is inhaled through air inlet pipe 12, provides the oxygen required for producing ozone, makes ozone reactor 11 produce ozone, and the ozone produced is transported to the aeration pipe 21 in the shell 3 through gas delivery pipe 2, and the ozone is released through a plurality of evenly distributed aeration pipes 21, makes ozone and sewage react, and simultaneously open motor 41, provide the torque to stirring rod 42, make stirring rod 42 drive sewage to rotate, make ozone and sewage fully contact, and the ozone after reaction is transported to ozone concentration detector 61 through gas delivery pipe 2, if the ozone concentration is lower, reaches the discharge standard, then directly discharges to the atmosphere, if the ozone concentration is higher, does not reach the discharge standard, and the processor 62 destroys the ozone that does not reach the standard and reduces the ozone concentration, and is discharged until does not cause the pollution to the atmosphere, and thus completes the oxidation treatment to the antibiotic pollution in water.
[0044] It should be noted that in this document, relationship terms such as first and second are used merely to distinguish one entity or action from another, without necessarily requiring or implying any such actual relationship or order between such entities or actions. In addition, the terms "comprises", "comprising", or any other variations thereof are intended to cover non-exclusive inclusions, so that a process, method, article, or device including a series of elements not only includes those elements, but also includes other elements not explicitly listed or inherent to such a process, method, article, or device.
[0045] Finally, it should be noted that: the above only for the preferred embodiment of the utility model has been described, and does not limit the utility model, although the utility model is described in detail with reference to the foregoing embodiments, for the person skilled in the art, still can modify the technical scheme recorded in the foregoing each embodiment, or equivalent replacement to part technical features. Any modification, equivalent replacement, improvement etc. that is made within the spirit and principle of the utility model, should be included in the protection scope of the utility model.
Claims
1. An apparatus for the oxidative treatment of antibiotic pollutants in water, characterized by the fact that it comprises: The oxidation treatment device comprises an ozone reaction device (1), a gas conveying pipe (2), a shell (3), a stirring device (4), a water supply device (5) and an ozone treatment device (6), the ozone reaction device (1), the gas conveying pipe (2), the shell (3) and the ozone treatment device (6) are sequentially arranged in the gas conveying direction, the ozone reaction device (1) and the gas conveying pipe (2) are connected by pipelines, the shell (3) and the gas conveying pipe (2) are fixedly connected, the stirring device (4) and the water supply device (5) are both fixedly connected with the shell (3), the ozone treatment device (6) and the gas conveying pipe (2) are connected by pipelines, the stirring device (4) and the water supply device (5) are located at the top of the shell (3), and the gas conveying pipe (2) is located at the bottom of the shell (3).
2. The apparatus for oxidation treatment of antibiotic pollutants in water according to claim 1, characterized in that: The ozone reaction device (1) comprises an ozone reactor (11), an air inlet pipe (12) and a controller (13), the ozone reactor (11) and the air inlet pipe (12) are connected by pipelines, the controller (13) and the ozone reactor (11) are fixedly connected, the controller (13) and the ozone reactor (11) are electrically connected, and the air inlet pipe (12) and the controller (13) are located at the top of the ozone reactor (11).
3. The apparatus for oxidation treatment of antibiotic pollutants in water according to claim 1, characterized in that: The gas conveying pipe (2) is provided with aeration pipes (21), the aeration pipes (21) are provided in plurality, and the plurality of aeration pipes (21) are uniformly distributed on the inner bottom of the shell (3).
4. The apparatus for oxidation treatment of antibiotic pollutants in water according to claim 1, characterized in that: The stirring device (4) comprises a motor (41) and a stirring rod (42), the fixed end of the motor (41) is fixedly connected with the shell (3), and the output end of the motor (41) is fixedly connected with the stirring rod (42).
5. The apparatus for oxidation treatment of antibiotic pollutants in water according to claim 1, characterized in that: The water supply device (5) comprises a water pump (51) and a water conveying pipeline (52), the fixed end of the water pump (51) is fixedly connected with the shell (3), the input end of the water pump (51) is connected with the water conveying pipeline (52) by a pipeline, and the output end of the water pump (51) is connected with the shell (3) by a pipeline.
6. The apparatus for oxidation treatment of antibiotic pollutants in water according to claim 5, characterized in that: The water supply device (5) further comprises a filter screen (53), the filter screen (53) is fixedly connected with the water conveying pipeline (52), and the filter screen (53) is located at the end of the water conveying pipeline (52) away from the water pump (51).
7. The apparatus for oxidation treatment of antibiotic pollutants in water according to claim 1, characterized in that: The ozone treatment device (6) comprises an ozone concentration detector (61) and a processor (62), the ozone concentration detector (61) is connected with the gas conveying pipe (2) by a pipeline, the ozone concentration detector (61) and the processor (62) are fixedly connected, and the ozone concentration detector (61) and the processor (62) are electrically connected.