Multi-level ozone treatment structure based on pulsed ultraviolet air sterilizer

By employing a multi-level ozone treatment structure, combined with water-passing, constant temperature heating, and absorption technologies, the problem of low ozone treatment efficiency in existing pulsed ultraviolet air sterilizers has been solved. This achieves efficient and safe ozone treatment, reduces maintenance costs, and protects human health.

CN224108328UActive Publication Date: 2026-04-10SICHUAN KELIAN TECH CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-21
Publication Date
2026-04-10

AI Technical Summary

Technical Problem

Existing pulsed ultraviolet air sterilizers suffer from low processing efficiency, insufficient capacity, poor safety, high maintenance costs, and secondary pollution in ozone treatment. There is an urgent need for a more efficient, reliable, environmentally friendly, and economical multi-stage ozone treatment structure.

Method used

It adopts a multi-level ozone treatment structure, including an ozone treatment chamber, a condenser section, and an exhaust filtration section. It uses a triple treatment method of increasing air humidity through water flow, constant temperature rise, and absorption. It utilizes a gas distribution pipe, heating pipe, water storage tank, condenser structure, and manganese dioxide filter to treat ozone.

Benefits of technology

It significantly improves ozone treatment efficiency and continuous absorption capacity, ensuring that ozone levels in enclosed spaces meet regulatory requirements, protecting human health and reducing maintenance costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model discloses a multi-level ozone treatment structure based on a pulsed ultraviolet air sterilizer, which comprises an ozone treatment box, an inlet part arranged on the left side surface of the ozone treatment box, a condensation part arranged on the upper side surface of the ozone treatment box, an exhaust filtering part arranged on the right side surface of the ozone treatment box, and a power supply controller electrically connected with the ozone treatment box, the power supply is connected with the power supply controller; and the inlet part is connected with an exhaust port of the pulsed ultraviolet air sterilizer through a pipeline. The utility model provides a multi-level ozone treatment structure based on a pulsed ultraviolet air disinfection machine, which can be effectively connected and matched with the pulsed ultraviolet air disinfection machine in series, and the ozone treatment efficiency and continuous absorption capacity are greatly improved through a triple treatment mode of increasing the air humidity through water, raising the temperature at constant temperature and absorbing; and the development and progress of the industry are better promoted.
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Description

TECHNICAL FIELD

[0001] The present application relates to the field of air disinfection equipment accessories, in particular to a multi-level ozone treatment structure based on a pulse ultraviolet air disinfection machine. BACKGROUND

[0002] In the field of air disinfection, pulse ultraviolet air disinfection technology is increasingly widely used due to its high sterilization capacity. However, ozone is inevitably generated during the process of pulse ultraviolet disinfection. If the ozone in a closed space cannot be properly treated, it will have a negative impact on human health and the environment.

[0003] The common way today is to set an activated carbon adsorption layer inside the disinfection machine to adsorb ozone. It fixes ozone molecules in activated carbon through physical adsorption, thereby reducing the concentration of ozone in the air.

[0004] However, this prior art has many shortcomings: (1) The adsorption capacity of the activated carbon adsorption layer is limited. As the use time increases, activated carbon can easily reach the adsorption saturation state, resulting in a sharp decline in its ozone treatment efficiency, and thus it cannot continuously and effectively control the ozone concentration; (2) The activated carbon adsorption layer has insufficient processing capacity for high-concentration ozone. When a large amount of ozone is generated by high-intensity pulse ultraviolet operation, its single-layer structure cannot process a large amount of ozone in a short time, which can easily cause ozone leakage, posing a threat to the surrounding environment and human health; (3) In the process of adsorbing ozone, activated carbon adsorption layer may cause safety hazards due to adsorption heat and other problems, and the regeneration of saturated activated carbon is difficult and costly, which is not conducive to the long-term stable operation of the equipment and the reduction of use cost.

[0005] In addition, a simple chemical reaction method can also be used to treat ozone, such as adding a small amount of chemical reagent layer that can react with ozone in the disinfection machine. However, this method also has problems. The chemical reagent is consumed quickly and needs to be replaced frequently, increasing the use cost and maintenance workload. Moreover, some chemical reagents may produce secondary pollution during the reaction process, causing new adverse effects on the air.

[0006] In summary, the existing ozone treatment structure of pulse ultraviolet air disinfection machines has obvious shortcomings in terms of treatment efficiency, treatment capacity, safety, maintenance cost, and secondary pollution, and there is an urgent need for a more efficient, reliable, environmentally friendly, and economical multi-level ozone treatment structure to solve these problems. CONTENT OF THE INVENTION

[0007] In view of the deficiencies of the prior art, the present application provides a multi-level ozone treatment structure based on a pulse ultraviolet air sterilizer, which can be effectively connected with the pulse ultraviolet air sterilizer, greatly improves the ozone treatment efficiency and continuous absorption capacity through the triple processing mode of water passing, air humidity increasing, and constant temperature heating, and better promotes the development and progress of the industry.

[0008] The multi-level ozone treatment structure based on the pulse ultraviolet air sterilizer comprises an ozone treatment box, an inlet part arranged on the left side of the ozone treatment box, a condensation part arranged on the upper side of the ozone treatment box, an exhaust gas filtering part arranged on the right side of the ozone treatment box, a power supply controller electrically connected with the ozone treatment box, and a power supply connected with the power supply controller; the inlet part is connected with the exhaust port of the pulse ultraviolet air sterilizer through a pipeline.

[0009] Further, the ozone treatment box comprises a cuboid-shaped box body, an air inlet arranged on the left side of the lower end of the box body, a gas distribution pipe arranged in the box body and connected with the air inlet, a heating pipe arranged in the box body, a water storage tank arranged in the box body, a condensation matching structure arranged on the upper side of the box body, and an air outlet arranged on the upper end of the right side wall of the box body and connected with the condensation matching structure; a plurality of air outlets penetrating through the side of the gas distribution pipe are arranged on the gas distribution pipe; a sensor module is further arranged on the right side wall of the box body.

[0010] As a preferred, the air inlet is arranged with an inner protrusion on the inner side of the box body for interference fit with the gas distribution pipe.

[0011] As a preferred, the water storage tank is arranged below the left end of the upper side of the box body, the water storage tank is arranged with a water inlet penetrating through the box body upwards, and the lower side of the water storage tank is further arranged with an electromagnetic valve connecting the internal space of the water storage tank with the internal space of the box body; the electromagnetic valve is electrically connected with the power supply controller.

[0012] As a preferred, the condensation matching structure comprises a square groove penetrating through the upper side of the box body, a ring groove bearing step arranged around the upper half of the side wall of the square groove, a plurality of circular grooves arranged on the upper side of the box body and matched with the ring groove bearing step, a rotating clip arranged in the circular groove and rotatable in the circular groove, and an inclined plate groove arranged on the lower side of the square groove.

[0013] The inclined plate groove comprises a bottom plate arranged obliquely left and right, and side plates arranged on the front and rear sides of the bottom plate and fixed at the top end with the upper side of the box body; the right end of the bottom plate and the two side plates are fixed with the right side of the box body, and the air outlet is arranged in the area enclosed by the bottom plate, the two side plates, and the upper side of the box body on the right side of the box body.

[0014] Preferably, the sensor module is composed of a liquid level sensor and a temperature sensor; the sensor module, the heating pipe and the power supply controller are electrically connected respectively.

[0015] Further, the inlet part is composed of an anti-overflow channel arranged on the outer wall of the box body and an air inlet pipe interface arranged on the anti-overflow channel and connected with the inner space of the anti-overflow channel; the lowest position of the air inlet pipe interface is at least 4 cm away from the bottom of the anti-overflow channel; the inner space of the anti-overflow channel is connected with the air distribution pipe through the air inlet interface.

[0016] Further, the condensing part is composed of a plurality of upper heat dissipation plates arranged on the upper side of the heat conducting sheet in parallel with the heat conducting sheet, the thickness, shape and size of the upper heat dissipation plates being matched with the ring groove bearing step, and a plurality of lower heat dissipation columns arranged in an array on the lower side of the heat conducting sheet; the bottom of the lower heat dissipation column abuts against the upper side of the bottom plate of the inclined plate groove.

[0017] Further, the exhaust gas filtering part is composed of an exhaust pipe matched with the air outlet interface through threads and a plurality of manganese dioxide filter screens vertically arranged in the exhaust pipe.

[0018] Compared with the prior art, the embodiments of the present application have the following beneficial effects:

[0019] The pulse ultraviolet air sterilizer can be effectively connected in series with the pulse ultraviolet air sterilizer, the air humidity is increased by passing water, the constant temperature heating and the absorption are three processing modes, the processing efficiency and the continuous absorption capacity of ozone are greatly improved, and the development and progress of the industry are better promoted.

[0020] Some of the additional features of the present application can be described in the following description. Some of the additional features of the present application are obvious to those skilled in the art through inspection of the following description and corresponding drawings or through knowledge of the production or operation of the embodiments. The features disclosed in the present application can be realized and achieved through the practice or use of various methods, means and combinations of the specific embodiments described below. BRIEF DESCRIPTION OF DRAWINGS

[0021] The drawings described herein are used to provide further understanding of the present application, and constitute a part of the present application, the schematic embodiments of the present application and the description thereof are used to explain the present application, and do not constitute a limitation on the present application. In the drawings, the same reference numerals represent the same components. Among them,

[0022] Figure 1 It is a front view of the utility model.

[0023] Figure 2 It is a top view of the utility model.

[0024] Figure 3 It is a front view of the utility model.

[0025] Figure 4 It is the overhead structure schematic view of the ozone treatment box of the utility model.

[0026] Figure 5 It is the perspective view of the condensing part of the utility model.

[0027] Mark explanation:

[0028] 100, ozone treatment box; 101, box body; 102, gas inlet; 103, cloth gas pipe; 104, gas outlet hole; 105, water storage tank; 106, electromagnetic valve; 107, water injection port; 108, square groove; 109, ring groove bearing step; 110, round groove; 111, rotating clamp; 112, inclined plate groove; 113, gas outlet; 114, sensor module; 115, heating pipe;

[0029] 200, inlet; 201, anti-overflow channel; 202, gas pipe interface;

[0030] 300, condensing part; 301, upper heat sink; 302, heat conduction sheet; 303, lower heat dissipation column;

[0031] 400, exhaust filter part; 401, exhaust pipe body; 402, manganese dioxide filter screen. Specific implementation

[0032] In order to make the person skilled in the art better understand the scheme of the present application, the technical scheme in the embodiments of the present application will be described clearly and completely below in conjunction with the drawings in the embodiments of the present application. Obviously, the described embodiments are only a part of the embodiments of the present application, not all. Based on the embodiments in the present application, all other embodiments obtained by the person skilled in the art without creative labor should be within the scope of protection of the present application.

[0033] It should be noted that if the specification and claims of the present application and the above-mentioned drawings involve the terms "first", "second", etc., they are used to distinguish similar objects, and do not necessarily describe a specific order or sequence. It should be understood that the data used in this way can be interchanged under appropriate circumstances, so that the embodiments of the present application described herein. In addition, if the terms "include" and "have" and any variations thereof are involved, it is intended to cover non-exclusive inclusion, for example, a process, method, system, product or device including a series of steps or units does not necessarily limit to those steps or units clearly listed, but can include other steps or units not clearly listed or inherent to these processes, methods, products or devices.

[0034] In the present application, if the terms "upper", "lower", "left", "right", "front", "back", "top", "bottom", "inner", "outer", "middle", "vertical", "horizontal", "transverse", "longitudinal" and the like are involved, the indicated orientation or positional relationship is based on the orientation or positional relationship shown in the drawings. These terms are mainly used to better describe the present application and its embodiments, and are not intended to limit the indicated devices, elements or components to have a specific orientation, or to be constructed and operated in a specific orientation.

[0035] In addition, in addition to indicating the orientation or positional relationship, the above-mentioned terms can also be used to indicate other meanings, for example, the term "upper" can also be used to indicate a certain dependent relationship or connection relationship in some cases. For those skilled in the art, the specific meaning of these terms in the present application can be understood according to the specific situation.

[0036] In addition, in the present application, the terms "installation", "setting", "provided with", "connection", "connected", "sleeved" and the like should be understood broadly. For example, it can be fixedly connected, detachably connected, or integrally constructed; it can be mechanically connected, or electrically connected; it can be directly connected, or indirectly connected through an intermediate medium, or it can be internal communication between two devices, elements or components. For those skilled in the art, the specific meaning of the above-mentioned terms in the present application can be understood according to the specific situation.

[0037] It should be noted that the embodiments in the present application and the features in the embodiments can be combined with each other without conflict. The present application will be described in detail below with reference to the drawings and in combination with the embodiments.

[0038] Embodiment 1

[0039] As shown in Figure 1 , 2 , the multi-level ozone treatment structure based on the pulse ultraviolet air sterilizer includes an ozone treatment box 100, an inlet part 200 arranged on the left side of the ozone treatment box 100, a condensation part 300 arranged on the upper side of the ozone treatment box 100, an exhaust filter part 400 arranged on the right side of the ozone treatment box 100, a power supply controller electrically connected with the ozone treatment box 100, and a power supply connected with the power supply controller; the inlet part 200 is connected with the exhaust port of the pulse ultraviolet air sterilizer through a pipeline.

[0040] Pulsed ultraviolet air sterilizers are existing technology. The product in this embodiment primarily introduces the discharged gas into the device via pipelines for further treatment. The connecting pipelines can be specially designed or ordinary pipelines sealed to the exhaust port of the pulsed ultraviolet air sterilizer. Both connection methods are existing technology in the field and are not within the scope of this application, therefore they will not be elaborated upon here.

[0041] like Figure 3 , 4 As shown, the ozone treatment box 100 consists of a rectangular box body 101, an air inlet 102 located at the lower left side of the box body, an air distribution pipe 103 located inside the box body 101 and connected to the air inlet 102, a heating pipe 115 located inside the box body 101, a water storage tank 105 located inside the box body 101, a condensation structure located on the upper side of the box body 101, and an air outlet 113 located on the upper right side wall of the box body 101 and connected to the condensation structure; the air distribution pipe 103 is provided with several air outlet holes 104 extending upward through the side of the air distribution pipe 103; a sensor module 114 is also provided on the right side wall of the box body 101.

[0042] When using the product, first, liquid needs to be injected into the tank. The liquid level should be maintained at approximately 4cm by coordinating the sensor module, power controller, and solenoid valve on the water tank. Purified water is the optimal choice for this liquid, but purified water or tap water can also be used. However, if tap water is used, the inside of the tank needs to be descaled regularly to prevent scale buildup on the inner walls, vents, and even the sensor module, ensuring the product functions properly.

[0043] The air vents on the air distribution pipe allow the incoming air to be discharged evenly, further increasing the contact area between the gas and the liquid inside the chamber.

[0044] The heating element heats the liquid inside the chamber, increasing its evaporation rate and thus raising the water content within the chamber. This increases the humidity, allowing ozone to decompose more quickly into oxygen and water in the high-temperature, high-humidity environment. Furthermore, passing gas through the liquid also filters out large dust particles, further purifying the gas.

[0045] The air inlet 102 is located on the inner side of the housing 101 and has an inner protrusion for interference fit with the air distribution pipe 103.

[0046] When fixing, the end of the air distribution tube can be directly fitted onto the inner protrusion. If it is easy to slip off during use, a thin iron wire can be wrapped around the outside of the air distribution tube as a cable tie to improve the stability of the fixation.

[0047] The box is generally selected as an integrated structure to ensure that no gas leaks from the gap during use. However, in order to reduce the difficulty of subsequent maintenance, the upper and lower two-layer assembled structure can also be selected as the box. When the upper and lower two-layer structure is selected, the stability and sealing of the connection position need to be ensured. The connection structure and sealing structure for improving stability and sealing are prior art, and the setting and use thereof can be completed by the skilled person in the art without creative labor. Therefore, no further description is given here. In addition, when the upper and lower two-layer assembled structure is selected as the box, the height of the lower assembled structure should be greater than 4.5 cm to ensure that the connection position is not immersed in the liquid for a long time.

[0048] The water storage tank 105 is arranged below the left end of the upper side of the box 101. The water storage tank 105 is provided with a water inlet 107 penetrating the box 101 upward. The lower side of the water storage tank 105 is further provided with an electromagnetic valve 106 connecting the internal space of the water storage tank 105 with the internal space of the box 101. The electromagnetic valve 106 is electrically connected with the power supply controller.

[0049] The setting and control mode of the electromagnetic valve are prior art in the field, and the skilled person in the art can complete the setting and use thereof without creative labor. Therefore, no further description is given here. However, it should be noted that when the line needs to penetrate the box, the sealing of the penetrated position of the box needs to be ensured to avoid the leakage of internal gas from this position.

[0050] The condensation cooperation structure is composed of a square groove 108 penetrating the upper side of the box 101, a ring groove bearing step 109 arranged around the upper half of the side wall of the square groove 108, a plurality of circular grooves 110 arranged on the upper side of the box 101 and cooperating with the ring groove bearing step 109, a rotating clip 111 rotatable in the circular groove 110 arranged in the circular groove 110, and an inclined plate groove 112 arranged on the lower side of the square groove 108.

[0051] The rotating clip is prior art. The rotating clip can change its state by rotating. In the clamping state, the rotating clip can press the heat-conducting sheet of the condensing part on the ring groove bearing step, thereby completing the fixation of the condensing part. In the relaxed state, the rotating clip is separated from the heat-conducting sheet of the condensing part, and no pressure is applied to the heat-conducting sheet, thereby allowing the condensing part to be taken out upward by the ring groove bearing step.

[0052] The inclined plate groove 112 is composed of a bottom plate arranged obliquely left and right, and side plates arranged on the front and rear sides of the bottom plate and fixed integrally with the upper side of the box 101 at the top end. The right ends of the bottom plate and the two side plates are integrally fixed with the right side of the box 101, and the gas outlet 113 is arranged in the area enclosed by the bottom plate, the two side plates and the upper side of the box 101 on the right side of the box 101.

[0053] The inclined plate groove has two functions, the first function is to guide the flow direction of the gas, so that the gas is guided to pass through the lower heat dissipation column of the condensing part, and then the water vapor in the gas is condensed at the lower heat dissipation column, thereby reducing the water content in the gas; the second function is to guide the condensed water, so that the condensed water can flow back to the bottom of the box.

[0054] The sensor module 114 is composed of a liquid level sensor and a temperature sensor; the sensor module 114 and the heating pipe 115 are respectively electrically connected with the power supply controller.

[0055] The sensor module is a prior art, wherein the liquid level sensor is mainly used for monitoring the liquid depth at the bottom of the box, and when the liquid depth is lower than 4 cm, the power supply controller is fed back, the electromagnetic valve is started according to the feedback of the liquid level sensor, so that the liquid in the water storage tank can be injected into the box through the electromagnetic valve, thereby ensuring the depth of the liquid in the box; and the temperature sensor is mainly used for monitoring the temperature of the liquid in the box, when the temperature of the liquid is higher than 75℃, the temperature sensor feeds back the high temperature signal to the power supply controller, the power supply controller interrupts the power supply to the heating pipe, so that the heating pipe stops heating the liquid, when the temperature of the liquid is lower than 70℃, the temperature sensor feeds back the low temperature signal to the power supply controller, the power supply controller restores the power supply to the heating pipe, so that the heating pipe heats the liquid, thereby effectively ensuring that the temperature of the liquid can be maintained in the range of 70-75℃.

[0056] The inlet part 200 is composed of an anti-overflow channel 201 arranged on the outer wall of the box 101, and a gas inlet pipe interface 202 arranged on the anti-overflow channel 201 and connected with the internal space of the anti-overflow channel 201; the lowest position of the gas inlet pipe interface 202 is at least 4 cm away from the bottom of the anti-overflow channel 201; the internal space of the anti-overflow channel 201 is connected with the air distribution pipe 103 through the gas inlet interface 102.

[0057] The anti-overflow channel can ensure that the liquid inside the product will not overflow from the air distribution pipe when not in use, and a rubber plug can be fitted on the gas inlet pipe interface during transfer to further reduce the probability of liquid overflow.

[0058] As shown in Figure 5 The condensing part 300 is composed of a plurality of upper heat dissipation plates 301 arranged on the upper side of the heat conducting sheet 302 in parallel with the heat conducting sheet 302, and a plurality of lower heat dissipation columns 303 arranged in an array on the lower side of the heat conducting sheet 302, the thickness, shape and size of the heat conducting sheet 302 are matched with the ring groove bearing step 109; the bottom of the lower heat dissipation column 303 abuts against the upper side of the bottom plate of the inclined plate groove 112.

[0059] The upper side of the condensing part is provided with an upper heat dissipation plate, which can effectively increase the effective heat dissipation area during heat dissipation and improve the heat dissipation effect, and the lower side of the condensing part is provided with a lower heat dissipation column, which can further increase the contact area of the gas flow with the condensing part and effectively provide a return channel for the liquid return.

[0060] By arranging the condensing part, the water content in the gas can be effectively reduced, the water consumption during product operation is effectively reduced, the excessive erosion of the exhaust gas filtering part by water can be avoided, and the service life of the exhaust gas filtering part is better ensured.

[0061] The exhaust gas filtering part 400 is composed of an exhaust pipe 401 matched with the gas outlet interface 113 through threads and a plurality of manganese dioxide filter screens 402 vertically arranged in the exhaust pipe 401.

[0062] The exhaust gas filtering part is matched with the gas outlet interface through threads, which can effectively reduce the replacement difficulty of the exhaust gas filtering part.

[0063] The threaded matching mode of the exhaust pipe and the gas outlet interface is prior art in the field, and a person skilled in the art can complete the arrangement and use without creative labor, and thus will not be described here. The arrangement of the filter screens in parallel in the exhaust pipe is prior art in the field, and the purpose of selecting the manganese dioxide filter screen in the embodiment is to enable it to react with ozone contained in the gas, thereby further reducing the ozone content in the exhaust gas.

[0064] The gas of the application is subjected to triple treatment of the constant-temperature liquid in the box body, the high-temperature and high-humidity box body space and the manganese dioxide filter screen, which can effectively reduce the ozone content in the gas, thereby ensuring that the ozone content discharged by the pulse ultraviolet air sterilizer during operation meets the relevant regulations, effectively reducing the ozone content in the enclosed space, thereby avoiding the potential influence on the relevant personnel in the enclosed space, and further ensuring the health of the relevant personnel.

[0065] It should be noted that all the features disclosed in the specification, or the steps in all the disclosed methods or processes, can be combined in any manner, except for mutually exclusive features and / or steps.

[0066] In addition, the above specific embodiments are exemplary, and those skilled in the art can think of various solutions under the inspiration of the disclosure of the application, and these solutions also belong to the disclosed scope of the application and fall within the protection scope of the application. Those skilled in the art should understand that the specification and drawings of the application are illustrative and do not constitute a limitation on the claims. The protection scope of the application is defined by the claims and their equivalents.

Claims

1. A multi-stage ozone treatment structure based on a pulse ultraviolet air sterilizer, characterized in that, The utility model relates to an ozone treatment box (100), the inlet part (200) of setting in the left side of ozone treatment box (100), the condensation part (300) of setting in the upper side of ozone treatment box (100), the exhaust filter part (400) of setting in the right side of ozone treatment box (100), the power supply controller of being connected with ozone treatment box (100) electricity and the power supply of being connected with power supply controller, the exhaust port of pulse ultraviolet air sterilizer is connected with the inlet part (200) through pipeline.

2. The multi-level ozone treatment structure based on the pulse ultraviolet air sterilizer according to claim 1, characterized in that, The utility model relates to an ozone treatment box (100), the inlet part (200) of setting in the left side of ozone treatment box (100), the condensation part (300) of setting in the upper side of ozone treatment box (100), the exhaust filter part (400) of setting in the right side of ozone treatment box (100), the power supply controller of being connected with ozone treatment box (100) electricity and the power supply of being connected with power supply controller, the exhaust port of pulse ultraviolet air sterilizer is connected with the inlet part (200) through pipeline.

3. The multi-level ozone treatment structure based on the pulse ultraviolet air sterilizer according to claim 2, characterized in that, The utility model relates to an ozone treatment box (100), the inlet part (200) of setting in the left side of ozone treatment box (100), the condensation part (300) of setting in the upper side of ozone treatment box (100), the exhaust filter part (400) of setting in the right side of ozone treatment box (100), the power supply controller of being connected with ozone treatment box (100) electricity and the power supply of being connected with power supply controller, the exhaust port of pulse ultraviolet air sterilizer is connected with the inlet part (200) through pipeline.

4. The multi-level ozone treatment structure based on the pulse ultraviolet air sterilizer according to claim 3, characterized in that, The utility model relates to an ozone treatment box (100), the inlet part (200) of setting in the left side of ozone treatment box (100), the condensation part (300) of setting in the upper side of ozone treatment box (100), the exhaust filter part (400) of setting in the right side of ozone treatment box (100), the power supply controller of being connected with ozone treatment box (100) electricity and the power supply of being connected with power supply controller, the exhaust port of pulse ultraviolet air sterilizer is connected with the inlet part (200) through pipeline.

5. The multi-level ozone treatment structure based on the pulse ultraviolet air sterilizer according to claim 4, characterized in that, The utility model relates to an ozone treatment box (100), the inlet part (200) of setting in the left side of ozone treatment box (100), the condensation part (300) of setting in the upper side of ozone treatment box (100), the exhaust filter part (400) of setting in the right side of ozone treatment box (100), the power supply controller of being connected with ozone treatment box (100) electricity and the power supply of being connected with power supply controller, the exhaust port of pulse ultraviolet air sterilizer is connected with the inlet part (200) through pipeline. The utility model relates to an ozone treatment box (100), the inlet part (200) of setting in the left side of ozone treatment box (100), the condensation part (300) of setting in the upper side of ozone treatment box (100), the exhaust filter part (400) of setting in the right side of ozone treatment box (100), the power supply controller of being connected with ozone treatment box (100) electricity and the power supply of being connected with power supply controller, the exhaust port of pulse ultraviolet air sterilizer is connected with the inlet part (200) through pipeline.

6. The multi-level ozone treatment structure based on the pulse ultraviolet air sterilizer according to claim 5, characterized in that, The utility model relates to an ozone treatment box (100), the inlet part (200) of setting in the left side of ozone treatment box (100), the condensation part (300) of setting in the upper side of ozone treatment box (100), the exhaust filter part (400) of setting in the right side of ozone treatment box (100), the power supply controller of being connected with ozone treatment box (100) electricity and the power supply of being connected with power supply controller, the exhaust port of pulse ultraviolet air sterilizer is connected with the inlet part (200) through pipeline.

7. The multi-level ozone treatment structure based on the pulse ultraviolet air sterilizer according to claim 6, characterized in that, The inlet part (200) is composed of an anti-overflow channel (201) arranged on the outer wall of the box (101), and an air inlet pipe interface (202) arranged on the anti-overflow channel (201) and communicating with the inner space of the anti-overflow channel (201); the lowest position of the air inlet pipe interface (202) is at least 4CM away from the bottom of the anti-overflow channel (201); the inner space of the anti-overflow channel (201) communicates with the air distribution pipe (103) through the air inlet interface (102).

8. The multi-level ozone treatment structure based on the pulse ultraviolet air sterilizer according to claim 7, characterized in that, The condensing part (300) is composed of a plurality of upper heat dissipation plates (301) arranged on the upper side of the heat conduction sheet (302) in parallel, the thickness, shape and size of which are matched with the ring groove bearing step (109), and a plurality of lower heat dissipation columns (303) arranged in an array on the lower side of the heat conduction sheet (302); the bottom of the lower heat dissipation column (303) abuts against the upper side of the bottom plate of the inclined plate groove (112).

9. The multi-level ozone treatment structure based on the pulse ultraviolet air sterilizer according to claim 8, characterized in that, The exhaust gas filtering part (400) is composed of an exhaust pipe (401) matched with the air outlet interface (113) through threads, and a plurality of manganese dioxide filter screens (402) vertically arranged in the exhaust pipe (401).