Ultraviolet and ozone synergistic disinfection equipment for livestock breeding

By synchronously moving and adjusting the angle of the ultraviolet ozone synergistic disinfection equipment, combined with the side-swing deflection mechanism, all-round disinfection in livestock farms is achieved, solving the problem of incomplete air purification and sterilization, and realizing dual attack on microorganisms and full-coverage disinfection.

CN121243435APending Publication Date: 2026-01-02广西壮族自治区动物疫病预防控制中心(广西壮族自治区屠宰技术中心)
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Patent Information

Application Number
CN202511663269.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-11-13
Publication Date
2026-01-02

AI Technical Summary

Technical Problem

Inadequate air purification and sterilization in livestock farms, coupled with the inability of traditional ventilation methods to effectively purify or kill pollutants and pathogens, leads to the risk of disease transmission. Furthermore, existing disinfection equipment cannot achieve comprehensive disinfection.

Method used

The device employs a combined ultraviolet and ozone disinfection system. Symmetrically arranged rails and translational components enable the synchronous movement and angle adjustment of the ultraviolet lamp assembly and the ozone spray nozzle. Combined with a side-swing deflection mechanism, it achieves all-round disinfection. The system utilizes ultraviolet light to inactivate microbial DNA/RNA and ozone to destroy cell membranes, providing a dual attack.

Benefits of technology

It achieves comprehensive disinfection within the farm, ensuring no blind spots, completely inactivating microorganisms, reducing the risk of disease transmission, and improving air quality and disinfection effectiveness.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses ultraviolet and ozone synergistic disinfection equipment for livestock breeding, relates to the technical field of disinfection equipment, and mainly aims to solve the problem of incomplete purification and sterilization in livestock farms, the ultraviolet and ozone synergistic disinfection equipment specifically comprises symmetrically arranged rail rods, a translation assembly is slidably mounted on the rail rods, and the translation assembly comprises a translation rod and a sliding rod; symmetrical rotating seats are mounted on the sliding rod in a sliding manner, and ultraviolet ozone boxes are rotationally arranged in the rotating seats; on one hand, in the disinfection process, real-time dynamic adjustment of the vertical position and the inclination angle of the ultraviolet ozone disinfection mechanism can be completed by utilizing the side-sway deflection mechanism, the irradiation range of ultraviolet disinfection and the eruption position of ozone disinfection are changed in a follow-up manner, no-omission disinfection is completed for dead angle positions in the farm shed, accurate disinfection in the farm shed is ensured, and the disinfection efficiency is improved. On the other hand, the real-time adjustment of the ozone spraying amount and the adjustment of the irradiation range of the ultraviolet disinfection can be synchronously carried out, and the ultraviolet irradiation ranges which are symmetrically arranged are overlapped to ensure the omnibearing disinfection in the farm shed.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of disinfection equipment, in particular to an ultraviolet ozone synergistic disinfection equipment for livestock breeding. BACKGROUND

[0002] With the high-scale and intensive development of livestock breeding industry, the number of livestock in a single farm has increased significantly. This intensive feeding mode improves production efficiency, but also brings serious challenges to animal disease prevention and control. The high-density environment greatly reduces the threshold of disease transmission. Once a contagious pathogen invades the farm, it can quickly spread in the closed or semi-closed barn, causing large-scale disease outbreaks and causing serious economic losses, and even threatening regional biological safety. Therefore, maintaining the hygiene and cleanliness of the internal environment of the farm, especially ensuring the excellent quality of air quality, has become a core element and basic requirement for the healthy and sustainable development of modern livestock industry.

[0003] Currently, many farms generally rely on traditional mechanical ventilation means (such as high-power ventilators) to try to improve the air quality in the barn. However, this conventional ventilation mode has significant defects. The essence is to directly discharge the dirty air in the barn, which may contain high concentrations of harmful gases (such as ammonia, hydrogen sulfide), dust and potential pathogenic microorganisms (bacteria, viruses, etc.), to the external environment through forced air exchange. Not only does it fail to effectively purify or kill pollutants and pathogens in the air from the source, achieving substantial improvement in air quality, but also directly transfers the pollution load inside the farm to the surrounding atmospheric environment, posing a potential risk of regional air pollution and disease transmission. At the same time, due to the lack of built-in air purification and sterilization devices, simple ventilation only stays at the physical dilution and transfer level in terms of "treatment" of air, and cannot completely degrade harmful substances or inactivate pathogenic microorganisms, so the purification effect is very limited and unsustainable, and it is difficult to meet the deep-seated needs of disease prevention and control for air cleanliness.

[0004] Therefore, the present application proposes a solution. On the one hand, it uses ultraviolet disinfection to inactivate the DNA / RNA structure of microorganisms instantaneously, and on the other hand, it uses an ozone generator to achieve strong oxidative damage to cell membranes and enzyme systems. The combination of the two can achieve a double blow on drug-resistant pathogens and ensure complete disinfection. SUMMARY

[0005] The present application aims to provide an ultraviolet ozone synergistic disinfection equipment for livestock breeding, which solves the problem of incomplete purification and sterilization in livestock breeding farms.

[0006] The purpose of the application can be realized by the following technical scheme: the ultraviolet ozone synergistic disinfection equipment for livestock breeding, including the rail rod arranged symmetrically, the translation assembly is slidably installed on the rail rod, the translation assembly includes the translation rod and the sliding rod connected, the sliding rod is slidably installed with the rotating seat arranged symmetrically, the rotating seat is rotationally arranged with the ultraviolet ozone box; The bottom of the ultraviolet ozone box is uniformly distributed with the ultraviolet lamp group, and the two sides of the ultraviolet ozone box corresponding to the ultraviolet lamp group are respectively provided with the ozone spout and the fan; the bottom of the rotating seat is provided with an intermittent groove, and the ozone spout and the fan on the ultraviolet ozone box are intermittently exposed to the outside through the intermittent groove. The rotating disc is slidably connected with the sliding rod on the ultraviolet ozone box, and the rail rod is rotationally arranged with the side swing deflection mechanism for the axial rotation of the ultraviolet ozone box in the horizontal direction.

[0007] Further setting: the inside of the rail rod is provided with a rotating rod, the side swing deflection mechanism includes a gas cylinder rotationally installed on the rotating rod, the outside of the rotating disc is rotationally sleeved with a rotating ring, and the output end of the gas cylinder is connected with the rotating ring.

[0008] Further setting: the bottom of the rotating disc is provided with the fixed rod connected with the ultraviolet ozone box on both sides, the middle part of the rotating disc on both sides is provided with the moving block slidably connected with the sliding rod, the middle part of the sliding rod is provided with the moving hole, and the middle part of both sides of the moving hole is provided with the sliding groove slidably matched with the moving block.

[0009] Further setting: the middle part of one side of the ultraviolet ozone box is provided with a rotating hollow pipe, the outside of the rotating seat corresponding to the rotating hollow pipe is provided with an ozone inlet pipe, and the rotating hollow pipe is connected with the ozone inlet pipe.

[0010] Further setting: the ozone spout is embedded in the covering part of the ultraviolet ozone box corresponding to the rotating seat, the ozone spout is provided with the ozone spout hole arranged densely and uniformly, and the inside of the ozone spout is communicated with the rotating hollow pipe and the ozone inlet pipe.

[0011] Further setting: the middle part of one side of the rotating seat away from the ozone inlet pipe is provided with a motor one, the output end of the motor one is connected with the ultraviolet ozone box through the rotating seat, and the motor one is used for controlling the staggered exposure of the ozone spout and the fan.

[0012] Further setting: the middle part of the upper surface of the translation rod is provided with a rotary telescopic rod, and the upper side of the rotary telescopic rod is provided with a driving structure for controlling the telescopic rotation of the translation rod.

[0013] The translation assembly is further configured such that: the translation component also includes a wheel disk disposed on the outside of the translation rod, a wheel groove is provided in the middle of the upper side of the rail rod, a translation wheel matching the wheel groove is rotatably disposed in the wheel disk, and a motor for controlling the rotation of the translation wheel is embedded in the end of the translation rod.

[0014] The design further includes: a support connected to the ground is provided at the lower end of the rail rod, and the sliding rod is symmetrically and obliquely positioned below the translation rod, with the outer end of the sliding rod extending directly below the rail rod.

[0015] The present invention has the following beneficial effects: 1. Addressing the issue of incomplete purification and sterilization in livestock farms; on one hand, the disinfection process utilizes a side-swing deflection mechanism to dynamically adjust the vertical position and tilt angle of the ultraviolet ozone disinfection unit in real time, dynamically changing the irradiation range of ultraviolet disinfection and the spray position of ozone disinfection, ensuring thorough disinfection of even the most obscure corners in the farm sheds, and guaranteeing accurate and comprehensive disinfection within the farm sheds. On the other hand, the real-time adjustment of the ozone spray volume can also be synchronized with the adjustment of the irradiation range of ultraviolet disinfection, ensuring all-round disinfection within the farm sheds by symmetrically setting the ultraviolet irradiation range to overlap.

[0016] 2. During each disinfection stage, the ultraviolet ozone disinfection mechanism is reversing using a drive structure. Specifically, the hydraulic cylinder in the drive structure pulls the translation rod away from the rail, and then the drive motor A rotates the translation rod 180° via the telescopic rod. At this time, the orientation of the pair of ultraviolet ozone boxes below the translation rod changes. More importantly, the orientation of the ozone spray nozzle changes. When the second disinfection operation is performed, the spray direction of the ozone spray nozzle is opposite to the spray direction of the same position in the previous operation, which facilitates all-round disinfection of obstructed areas in the farm shed. After two disinfection operations with opposite directions, a rotation reversal is performed again to complete the disinfection and ensure complete disinfection. Attached Figure Description

[0017] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0018] Figure 1 This is a schematic diagram of the structure of the present invention; Figure 2 This is a bottom-view structural diagram of the present invention; Figure 3 This is a bottom view of the main structure of the present invention; Figure 4This is an exploded view of the installation structure of the ultraviolet ozone box of the present invention; Figure 5 This is a schematic diagram of the installation of the fan in the ultraviolet ozone box of the present invention; Figure 6 This is a side sectional view of the ultraviolet ozone box of the present invention; Figure 7 This is an exploded view of the mounting structure of the side-swing deflection mechanism of the present invention; Figure 8 This is a schematic diagram of the installation structure of the translation component of the present invention; Figure 9 This is a front view of the present invention.

[0019] In the diagram: 1. Rail; 2. Support; 3. Translation rod; 4. Sliding rod; 5. Rotating seat; 6. Ultraviolet ozone box; 7. Ultraviolet lamp assembly; 8. Ozone emission tube; 9. Rotating rod; 10. Moving hole; 11. Sliding groove; 12. Rotating telescopic rod; 13. Motor 1; 14. Rotating hollow tube; 15. Ozone emission hole; 16. Ozone inlet pipe; 17. Intermittent groove; 18. Fan; 19. Cylinder; 20. Rotating disk; 21. Moving block; 22. Rotating ring; 23. Wheel; 24. Wheel groove; 25. Motor 2; 26. Translation wheel. Detailed Implementation

[0020] The technical solution of the present invention will be clearly and completely described below with reference to the embodiments. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the scope of protection of the present invention.

[0021] Example 1: To address the problem of incomplete purification and sterilization in livestock farms, the following technical solution is proposed: Reference Figure 1 - Figure 9 As shown, the ultraviolet ozone synergistic disinfection equipment for livestock farming in this embodiment includes symmetrically arranged rails 1, the lower end of the rails 1 is provided with a support 2 connected to the ground, and the sliding rods 4 are symmetrically arranged below the translation rods 3. The outer end of the sliding rods 4 extends to the direct below the rails 1, and a translation component is slidably installed on the rails 1. For the phased disinfection process in livestock farms, it is necessary to move the livestock out of the farm shed before carrying out ultraviolet ozone disinfection. In this invention, by using the heightening setting of the bracket 1, the ultraviolet ozone disinfection mechanism is set above the farm shed without affecting the daily feeding. Then, the ultraviolet ozone disinfection mechanism is moved by the translation component to complete the all-round disinfection treatment.

[0022] Reference Figure 4 ,Figure 5 and Figure 6 As shown, the translation component includes a translation rod 3 and a sliding rod 4 connected to each other. A symmetrically arranged rotating seat 5 is slidably installed on the sliding rod 4, and an ultraviolet ozone box 6 is rotatably installed inside the rotating seat 5. Ultraviolet lamp groups 7 are evenly distributed at the bottom of the ultraviolet ozone box 6. Ozone emission tubes 8 and fans 18 are respectively arranged on both sides of the ultraviolet ozone box 6 corresponding to the ultraviolet lamp groups 7. The operation of the translation component includes the horizontal movement of the translation rod 3 on the rail 1, which drives the ultraviolet ozone box 6 to move inside the breeding shed. The ultraviolet lamp groups 7 in the ultraviolet ozone box 6 complete ultraviolet irradiation and ozone emission from the ozone emission tube 8 at the same time, so as to achieve the purpose of ultraviolet-ozone synergistic disinfection.

[0023] Reference Figure 4 and Figure 6 As shown, the bottom of the rotating seat 5 is provided with an intermittent slot 17, and the ozone emission tube 8 and fan 18 on the ultraviolet ozone box 6 are intermittently exposed to the outside through the intermittent slot 17; a rotating disk 20 is installed on the ultraviolet ozone box 6 and is slidably connected to the sliding rod 4; a side-swing deflection mechanism for axial rotation of the ultraviolet ozone box 6 in the horizontal direction is rotatably provided on the rail rod 1; a rotating rod 9 is provided on the inner side of the rail rod 1; the side-swing deflection mechanism includes a cylinder 19 rotatably installed on the rotating rod 9; a rotating ring 22 is rotatably sleeved on the outer side of the rotating disk 20; and the output end of the cylinder 19 is connected to the rotating ring 22. Reference Figure 3 As shown, a motor 13 is installed in the middle of the side of the rotating base 5 away from the ozone inlet pipe 16. The output end of the motor 13 passes through the rotating base 5 and is connected to the ultraviolet ozone box 6. The motor 13 is used to control the staggered exposure of the ozone ejector tube 8 and the fan 18. The difference between the synergistic disinfection process of ultraviolet ozone and the step-by-step disinfection process using ozone in existing technologies lies in the fact that ultraviolet irradiation and ozone emission are carried out simultaneously. Furthermore, the disinfection process can utilize a side-swing deflection mechanism to dynamically adjust the vertical position and tilt angle of the ultraviolet ozone disinfection mechanism in real time. This allows the irradiation range of ultraviolet disinfection and the emission position of ozone disinfection to be changed accordingly, thereby achieving thorough disinfection of dead corners in the farm sheds and ensuring accurate disinfection within the farm sheds. It is also important to note that in the synchronous disinfection process of ultraviolet and ozone, motor 13 controls the rotation of the ultraviolet ozone box 6. During rotation, the ultraviolet ozone box 6 is exposed through the intermittent slot 17 on the rotating seat 5, which gradually exposes the ozone spraying tube 8 and thus gradually increases the ozone spray volume. Correspondingly, different spray volumes are adjusted for different locations in livestock farm sheds. At the same time, the adjustment of the spray volume is based on the rotation of the ultraviolet ozone box 6. At this time, the angle of the irradiation range of the ultraviolet lamp group 7 also changes accordingly. After the ends of the irradiation ranges of the ultraviolet lamp groups 7 on the symmetrically arranged ultraviolet ozone box 6 overlap, a full-range irradiation without dead angles is formed.

[0024] Reference Figure 4 and Figure 9 As shown, fixed rods connected to the ultraviolet ozone box 6 are installed on both sides of the bottom of the rotating disk 20. Moving blocks 21 that are slidably connected to sliding rods 4 are installed in the middle of both sides of the rotating disk 20. A moving hole 10 is opened in the middle of the sliding rod 4. Sliding grooves 11 that are slidably matched with the moving blocks 21 are opened in the middle of both sides inside the moving hole 10. The longitudinal movement process of the ultraviolet ozone disinfection mechanism applied in the breeding farm shed is achieved through a side-swing deflection mechanism. Specifically, the cylinder 19 drives the rotating disk 20 and the ultraviolet ozone box 6 to move longitudinally on the sliding rod 4. The moving block 21 on the rotating disk 20 matches the sliding groove 11 in the moving hole 10 on the sliding rod 4 to move. Since the cylinder 19 directly acts on the rotating ring 22, and the cylinder bottom of the cylinder 19 is rotatably connected to the rotating rod 9, the ultraviolet ozone box 6 at the bottom of the rotating disk 20 completes the longitudinal movement according to the inclined sliding rod 4. For the lateral movement of the ultraviolet ozone disinfection mechanism used in the breeding farm shed, the following is added: the translation component also includes a wheel 23 set on the outside of the translation rod 3, a wheel groove 24 is opened in the middle of the upper side of the rail rod 1, a translation wheel 26 matching the wheel groove 24 is rotatably set in the wheel 23, and a motor 25 for controlling the rotation of the translation wheel 26 is embedded in the end of the translation rod 3. Specifically, the motor 25 drives the translation wheel 26 to rotate, and the translation wheel 26 moves on the rail 1, causing the translation rod 3 to move laterally. At this time, the ultraviolet lamp group 7 on the ultraviolet ozone box 6 completes ultraviolet irradiation and ozone spraying from the ozone spraying tube 8, ensuring that even dead corners can be completely disinfected.

[0025] Basic principle: Ultraviolet irradiation and ozone emission are carried out simultaneously. On the one hand, the disinfection process can utilize a side-swing deflection mechanism to dynamically adjust the vertical position and tilt angle of the ultraviolet ozone disinfection mechanism in real time, thereby changing the irradiation range of ultraviolet disinfection and the emission position of ozone disinfection accordingly. This ensures thorough disinfection of even the most obscure corners in the farm shed, guaranteeing accurate and comprehensive disinfection. On the other hand, the real-time adjustment of the ozone emission volume can also be synchronized with the adjustment of the ultraviolet irradiation range. The symmetrically set ultraviolet irradiation range overlaps to ensure all-round disinfection within the farm shed. The combination of these two methods achieves synergistic ultraviolet-ozone disinfection. Ultraviolet disinfection inactivates the DNA structure of microorganisms, while ozone emission provides strong oxidative damage to cell membranes and enzyme systems, achieving a dual attack on drug-resistant pathogens and ensuring complete disinfection.

[0026] Example 2: Refer to Figure 1 - Figure 9 As shown, this embodiment is based on embodiment one, and adds the following structure to ensure stable ozone transmission during ozone emission: a rotating hollow tube 14 is installed in the middle of one side of the ultraviolet ozone box 6, an ozone inlet pipe 16 is installed on the outside of the rotating seat 5 corresponding to the rotating hollow tube 14, the rotating hollow tube 14 is connected to the ozone inlet pipe 16, the ozone emission tube 8 is embedded in the covering part of the ultraviolet ozone box 6 corresponding to the rotating seat 5, the ozone emission tube 8 is provided with dense and uniformly distributed ozone emission holes 15, and the ozone emission tube 8 is connected to the interior of the rotating hollow tube 14 and the ozone inlet pipe 16. During ozone emission, the output end of the ozone generator is connected to the ozone inlet pipe 16 via a flexible hose. The entire ozone generator is installed on the top of the farm shed, and the flexible hose is suspended and not disturbed by the movement of the ultraviolet ozone disinfection mechanism. Therefore, the generated ozone can enter the ultraviolet ozone box 6 in real time and stably through the ozone inlet pipe 16, and then be sprayed out from the ozone emission hole 15 on the ozone emission tube 8 to the corresponding position in the farm shed to complete ozone disinfection.

[0027] A rotating telescopic rod 12 is installed in the middle of the upper surface of the translation rod 3. A drive structure for controlling the extension and rotation of the translation rod 3 is provided above the rotating telescopic rod 12. The sliding rod 4 is obliquely and symmetrically arranged below the translation rod 3, and the outer end of the sliding rod 4 extends to the bottom of the rail rod 1. For the UV-ozone synergistic disinfection process for livestock farming, at least three cycles of disinfection are generally used. Therefore, in each disinfection stage, the UV-ozone disinfection mechanism is reversed using a drive structure (hydraulic cylinder and drive motor A). First, the hydraulic cylinder pulls the translation rod 3 away from the rail rod 1. Then, the drive motor A rotates the translation rod 3 180° via the rotating telescopic rod 12. At this time, the orientation of the pair of UV-ozone boxes 6 below the translation rod 3 changes. More importantly, the orientation of the ozone spraying tube 8 changes. When the second disinfection operation is carried out, the spraying direction of the ozone spraying tube 8 is opposite to the spraying direction of the same position in the previous operation, which facilitates the all-round disinfection of the obstructed areas in the farm shed. After two opposing disinfection operations, a rotation reversal is performed to complete the disinfection supplement and ensure complete disinfection.

[0028] Example 3: Refer to Figure 1 - Figure 9 As shown, this embodiment, combining the technical content of Embodiment 1 and Embodiment 2, proposes a method for synergistic disinfection of ultraviolet ozone for livestock farming, including the following steps: Step 1: Clear all people and livestock and seal all doors and windows of the farm shed; start the electric motor 25 to drive the translation wheel 26 to rotate, the translation wheel 26 moves on the rail 1 to drive the translation rod 3 to move laterally, the cylinder 19 drives the rotating disk 20 and the ultraviolet ozone box 6 to move on the sliding rod 4, the moving block 21 on the rotating disk 20 matches the sliding groove 11 in the moving hole 10 on the sliding rod 4 to move, then the ultraviolet ozone box 6 at the bottom of the rotating disk 20 completes the longitudinal movement according to the inclined sliding rod 4; Step 2: Motor 13 controls the ultraviolet ozone box 6 to rotate. During rotation, the ultraviolet ozone box 6 is exposed through the intermittent slot 17 on the rotating seat 5, so that the ozone emission tube 8 is gradually exposed, thereby gradually increasing the ozone emission volume. This is applied to different locations in the livestock farm shed to adjust the emission volume. At the same time, the emission volume adjustment process is based on the rotation of the ultraviolet ozone box 6. At this time, the ultraviolet lamp group 7 also changes the angle of its irradiation range. After the ends of the irradiation ranges of the symmetrically arranged ultraviolet ozone box 6 overlap, it forms an all-round irradiation without dead angles. Step 3: Steps 1 and 2 above constitute a one-way disinfection process. After completion, the hydraulic cylinder in the drive structure is used to lift the translation rod 3 to disengage it from the rail rod 1. Then, the drive motor A is used to rotate the translation rod 3 180° through the rotating telescopic rod 12. At this time, the orientation of the pair of ultraviolet ozone boxes 6 below the translation rod 3 changes. More importantly, the orientation of the ozone spraying tube 8 changes, and the second disinfection operation continues. Step 4: After the two opposing disinfection operations in Steps 1 and 2, and Step 3, continue the rotation and reversal action and repeat the disinfection supplement of Steps 1 and 2 to ensure complete disinfection; Step 5: After the ultraviolet-ozone disinfection is completed, open all doors and windows of the breeding shed, and stop the ultraviolet irradiation of the ultraviolet lamp group 7 and the ozone emission of the ozone spray tube 8. Start the motor 13 to drive the ultraviolet ozone box 6 to rotate and expose the fan blade 18. The fan blade 18 performs at least three cycles of blowing according to the spraying method of the ultraviolet ozone disinfection mechanism.

[0029] In summary, this invention, combined with embodiments one, two, and three, allows the disinfection process to utilize a side-swing deflection mechanism to dynamically adjust the vertical position and tilt angle of the ultraviolet ozone disinfection mechanism in real time. This dynamically changes the irradiation range of ultraviolet disinfection and the spray position of ozone disinfection, ensuring thorough disinfection of dead corners in the breeding sheds and guaranteeing accurate disinfection within the breeding sheds. On the other hand, the real-time adjustment of ozone emission volume can also be synchronized with the irradiation range of ultraviolet disinfection. The overlapping of the symmetrically set ultraviolet irradiation range ensures all-round disinfection in the breeding shed. The combination of the two can achieve ultraviolet-ozone synergistic disinfection. The ultraviolet disinfection method inactivates the DNA structure of microorganisms, and the ozone emission method achieves strong oxidative damage to cell membranes and enzyme systems, thus achieving a double blow against drug-resistant pathogens.

[0030] The above description is only a preferred embodiment of the present invention, but the scope of protection of the present invention is not limited thereto. Any equivalent substitutions or modifications made by those skilled in the art within the scope of the technology disclosed in the present invention, based on the technical solution and inventive concept of the present invention, should be covered within the scope of protection of the present invention.

Claims

1. A UV-ozone synergistic disinfection device for livestock farming, comprising symmetrically arranged rails (1), characterized in that, A translation component is slidably installed on the rail (1). The translation component includes a translation rod (3) and a sliding rod (4) connected to each other. A symmetrically arranged rotating seat (5) is slidably installed on the sliding rod (4). An ultraviolet ozone box (6) is rotatably arranged inside the rotating seat (5). The bottom of the ultraviolet ozone box (6) is evenly distributed with ultraviolet lamp groups (7). The ultraviolet ozone box (6) is provided with ozone ejector tubes (8) and fans (18) on both sides corresponding to the ultraviolet lamp groups (7). The bottom of the rotating seat (5) is provided with intermittent slots (17), and the ozone ejector tubes (8) and fans (18) on the ultraviolet ozone box (6) are intermittently exposed to the outside through the intermittent slots (17). The ultraviolet ozone box (6) is equipped with a rotating disk (20) that is slidably connected to the sliding rod (4), and the rail (1) is rotatably provided with a side-swing deflection mechanism for axial rotation of the ultraviolet ozone box (6) in the horizontal direction.

2. The ultraviolet ozone synergistic disinfection equipment for livestock farming according to claim 1, characterized in that, A rotating rod (9) is provided on the inner side of the rail (1). The side-swing deflection mechanism includes a cylinder (19) rotatably mounted on the rotating rod (9). A rotating ring (22) is rotatably sleeved on the outer side of the rotating disk (20). The output end of the cylinder (19) is connected to the rotating ring (22).

3. The ultraviolet-ozone synergistic disinfection equipment for livestock farming according to claim 2, characterized in that, The rotating disk (20) has fixed rods connected to the ultraviolet ozone box (6) installed on both sides of its bottom. The rotating disk (20) has moving blocks (21) slidably connected to sliding rods (4) installed in the middle of both sides. The sliding rods (4) have moving holes (10) in the middle. The moving holes (10) have sliding grooves (11) in the middle of both sides that slide and match the moving blocks (21).

4. The ultraviolet-ozone synergistic disinfection equipment for livestock farming according to claim 1, characterized in that, A rotating hollow tube (14) is installed in the middle of one side of the ultraviolet ozone box (6). An ozone inlet pipe (16) is installed on the outside of the rotating seat (5) corresponding to the rotating hollow tube (14). The rotating hollow tube (14) is connected to the ozone inlet pipe (16).

5. The ultraviolet-ozone synergistic disinfection equipment for livestock farming according to claim 4, characterized in that, The ozone ejector tube (8) is embedded in the covering part of the rotating seat (5) of the ultraviolet ozone box (6). The ozone ejector tube (8) has dense and uniformly distributed ozone ejection holes (15). The ozone ejector tube (8) is connected to the interior of the rotating hollow tube (14) and the ozone inlet tube (16).

6. The ultraviolet-ozone synergistic disinfection equipment for livestock farming according to claim 1, characterized in that, A motor (13) is installed in the middle of the side of the rotating seat (5) away from the ozone inlet pipe (16). The output end of the motor (13) passes through the rotating seat (5) and is connected to the ultraviolet ozone box (6). The motor (13) is used to control the staggered exposure of the ozone ejector (8) and the fan (18).

7. The ultraviolet-ozone synergistic disinfection equipment for livestock farming according to claim 1, characterized in that, A rotating telescopic rod (12) is installed in the middle of the upper surface of the translation rod (3), and a drive structure for controlling the extension and rotation of the translation rod (3) is provided above the rotating telescopic rod (12).

8. The ultraviolet-ozone synergistic disinfection equipment for livestock farming according to claim 1, characterized in that, The translation assembly also includes a wheel (23) disposed on the outside of the translation rod (3), a wheel groove (24) is provided in the middle of the upper side of the rail (1), a translation wheel (26) matching the wheel groove (24) is rotatably disposed in the wheel (23), and a motor (25) for controlling the rotation of the translation wheel (26) is embedded at the end of the translation rod (3).

9. The ultraviolet-ozone synergistic disinfection equipment for livestock farming according to claim 1, characterized in that, The lower end of the rail rod (1) is provided with a bracket (2) connected to the ground, and the sliding rod (4) is symmetrically arranged below the translation rod (3), with the outer end of the sliding rod (4) extending directly below the rail rod (1).