Ozone sterilization device in mineral water production
By designing agitation and flow control components in mineral water production, the uniform distribution of ozone gas in mineral water was achieved, solving the problem of incomplete sterilization and improving sterilization efficiency and water purity.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-06
- Publication Date
- 2026-04-03
AI Technical Summary
In the production of mineral water, some mineral water has difficulty coming into full contact with ozone, resulting in incomplete sterilization.
An ozone sterilization device for mineral water production was designed. By setting up a fixed cylinder, a motor, a connecting rod, and connecting components, and employing a fixed cylinder, a motor, a movable cylinder, a movable shaft, a stirring plate, and a stirring component, the device achieves uniform distribution of ozone gas in the mineral water, increases the contact area and contact time, and improves sterilization efficiency.
It achieves uniform distribution of ozone gas in mineral water, improves the uniformity and efficiency of sterilization, prevents ozone gas backflow, protects the integrity of the equipment, and ensures the purity of the water.
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Figure CN224077155U_ABST
Abstract
Description
Technical Field
[0001] This utility model belongs to the field of mineral water production technology, specifically an ozone sterilization device for mineral water production. Background Technology
[0002] The trace elements and minerals in mineral water can participate in the metabolism of hormones and nucleic acids in the human body, and can provide the body with necessary nutrients. Moderate consumption can help maintain normal physiological activities, such as improving digestive function, promoting metabolism, and relieving fatigue.
[0003] During the production and processing of mineral water, workers use ozone to sterilize its interior. Ozone has strong oxidizing properties and can quickly and extensively kill a variety of microorganisms and pathogens, thus ensuring the safety of drinking mineral water.
[0004] Through long-term use and observation, it was found that during the ozone sterilization process of mineral water, some mineral water could not fully come into contact with ozone gas, resulting in the ineffective killing of microorganisms in the mineral water and thus incomplete sterilization.
[0005] Therefore, this utility model provides an ozone sterilization device for mineral water production. Utility Model Content
[0006] In order to overcome the shortcomings of the existing technology and solve at least one of the problems mentioned in the background technology, an ozone sterilization device for mineral water production is proposed.
[0007] The technical solution adopted by this utility model to solve its technical problem is as follows: An ozone sterilization device for mineral water production, comprising a treatment cylinder, a cylinder cover slidably fitted on the top side wall of the treatment cylinder, multiple sealing rings fitted on the bottom side wall of the cylinder cover, an air inlet pipe fixedly connected to the top side wall of the treatment cylinder, a stirring component provided on the top side wall of the cylinder cover, multiple air outlets opened in the middle of the side wall of the stirring component, the air outlets being located inside the treatment cylinder, a flow control component provided in the middle of the inner side wall of the air outlet, a microporous diffuser fitted in the middle of the side wall of the air outlet, multiple first sieve holes opened on the bottom side wall of the treatment cylinder, a discharge component provided on the inner side wall of the bottom of the treatment cylinder, the discharge component and the first sieve holes being correspondingly arranged, a water collection box fitted on the bottom side wall of the treatment cylinder, a filter component installed in the middle of the inner side wall of the water collection box, the stirring component including a fixed cylinder, the fixed cylinder being fixed to the bottom of the sealing rings, and the top side wall of the cylinder cover being fitted with... The system includes a motor with a connecting rod fixed to its output end. A movable cylinder is fixed to the bottom side wall of the connecting rod, and the movable cylinder and the fixed cylinder are rotatably connected. A movable shaft is mounted on the bottom side wall of the movable cylinder, and multiple stirring plates are fixed to the middle of the side wall of the movable shaft. The air inlet pipe, fixed cylinder, movable cylinder, movable shaft, stirring plates, and air outlet are all hollow and interconnected. This step, by setting up the fixed cylinder, motor, connecting rod, movable cylinder, movable shaft, and stirring plates, helps to evenly distribute ozone gas in the mineral water, reducing the situation where the concentration of ozone gas is too high in some areas and too low in others. This ensures that microorganisms in the mineral water can be effectively killed, improving the uniformity of sterilization. At the same time, this setting can increase the contact area and contact time between ozone gas and mineral water, allowing ozone gas to come into more complete contact with microorganisms in the water and undergo oxidation-reduction reactions, thereby rapidly killing a variety of microorganisms and pathogens and improving sterilization efficiency.
[0008] Preferably, the flow control assembly includes multiple fixed rods, which are respectively fixed to the inner wall of the air outlet. A pair of movable rods are fixed to the middle of the inner wall of the air outlet. The pair of movable rods are respectively arranged on both sides of the fixed rods. A flow limiting plate is rotatably connected to the middle of the side wall of the movable rod. A torsion spring is provided between the flow limiting plate and the movable rod. By setting the fixed rods, movable rods and flow limiting plate, when ozone gas is injected into mineral water through the air outlet, the liquid can flow in one direction, effectively preventing backflow of ozone gas when injection stops, which would affect the normal operation and lifespan of the equipment, and protecting the integrity and performance of the ozone sterilization equipment.
[0009] Preferably, the discharge assembly includes a slot, which is formed on the side wall of the processing cylinder. A connecting plate is slidably connected to the middle of the inner side wall of the slot. A discharge plate is assembled in the middle of the side wall of the connecting plate. A second sieve hole is formed in the middle of the side wall of the discharge plate. The second sieve hole and the first sieve hole are correspondingly arranged. This step, by setting the slot, connecting plate, discharge plate and second sieve hole, can easily collect the disinfected mineral water, making the production smoother and more efficient, improving production efficiency. Moreover, this setting can reduce problems such as improper operation and container contamination during manual water collection, ensure aseptic operation during the collection process, and thus reduce the possibility of contamination.
[0010] Preferably, the filtration assembly includes a storage box installed between the water collection box and the treatment cylinder. Activated carbon is installed in the middle of the inner wall of the storage box. This step, by setting up the storage box and activated carbon, can effectively adsorb and remove residual ozone in the treated water, further improving the purity of the mineral water and making it more in line with drinking water standards.
[0011] Preferably, an observation window is provided in the middle of the side wall of the treatment cylinder. The observation window is made of transparent material. This step allows the staff to directly observe the situation inside the treatment cylinder, including the water flow, ozone distribution and dissolution, etc., which helps the staff to monitor the treatment process in real time and improve the ozone sterilization effect.
[0012] Preferably, an ozone concentration detector is installed in the middle of the side wall of the treatment cylinder. The ozone concentration detector is located above the observation window. This step, by setting up an ozone concentration detector, can monitor the ozone concentration in the treatment cylinder in real time, keeping it within a safe and effective range, and reducing the possibility of the sterilization effect and water quality safety being affected by excessively high or low ozone concentrations.
[0013] The beneficial effects of this utility model are as follows:
[0014] 1. The ozone sterilization device for mineral water production described in this utility model, by setting up a fixed cylinder, a motor, a connecting rod, a movable cylinder, a movable shaft, and a stirring plate, helps to evenly distribute ozone gas in mineral water, reducing the situation where the concentration of ozone gas is too high in some areas and too low in others, so that all microorganisms in the mineral water can be effectively killed, improving the uniformity of sterilization. At the same time, this setting can increase the contact area and contact time between ozone gas and mineral water, allowing ozone gas to come into more complete contact with microorganisms in the water and undergo oxidation-reduction reactions, thereby rapidly killing a variety of microorganisms and pathogens and improving sterilization efficiency.
[0015] 2. The ozone sterilization device for mineral water production described in this utility model, by setting a fixed rod, a movable rod and a flow limiting plate, enables the liquid to flow in one direction when ozone gas is injected into mineral water through the gas outlet, effectively preventing backflow of ozone gas when injection stops, thus affecting the normal operation and lifespan of the equipment, and protecting the integrity and performance of the ozone sterilization equipment. Attached Figure Description
[0016] The present invention will be further described below with reference to the accompanying drawings.
[0017] Figure 1 This is a perspective view of the present invention;
[0018] Figure 2 This is a cross-sectional view of the processing cylinder in this utility model;
[0019] Figure 3 This is a schematic diagram of the cooperative structure of the stirring plate and the flow limiting plate in this utility model;
[0020] Figure 4 This is a schematic diagram of the combined structure of the storage box and the water collection box in this utility model;
[0021] Figure 5 yes Figure 3 Enlarged view of a portion of point A in the middle.
[0022] Legend:
[0023] 1. Processing cylinder; 11. Cylinder cover; 12. Sealing ring; 13. Air inlet pipe; 14. Air outlet; 15. Microporous diffuser; 16. First sieve hole; 17. Water collection box; 2. Fixed cylinder; 21. Motor; 22. Connecting rod; 23. Movable cylinder; 24. Movable shaft; 25. Stirring plate; 3. Fixed rod; 31. Movable rod; 32. Flow limiting plate; 4. Groove; 41. Connecting plate; 42. Discharge plate; 43. Second sieve hole; 5. Storage box; 51. Activated carbon; 6. Observation window; 7. Ozone concentration detector. Detailed Implementation
[0024] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those skilled in the art without creative effort are within the protection scope of the present utility model.
[0025] Specific implementation examples are given below.
[0026] like Figures 1 to 4As shown in the figure, an ozone sterilization device for mineral water production according to an embodiment of the present invention includes a treatment cylinder 1. A cylinder cover 11 is slidably fitted on the top side wall of the treatment cylinder 1. Multiple sealing rings 12 are assembled on the bottom side wall of the cylinder cover 11. An air inlet pipe 13 is fixedly connected to the top side wall of the treatment cylinder 1. An agitation component is provided on the top side wall of the cylinder cover 11. Multiple air outlets 14 are opened in the middle of the side wall of the agitation component. The air outlets 14 are located inside the treatment cylinder 1. A flow control component is provided in the middle of the inner side wall of the air outlet 14. A microporous diffuser 15 is assembled in the middle of the side wall of the air outlet 14. Multiple first sieve holes 16 are opened on the bottom side wall of the treatment cylinder 1. A discharge component is provided on the inner side wall of the bottom of the treatment cylinder 1. The discharge component and the first sieve holes 16 are correspondingly arranged. A water collection box 17 is assembled on the bottom side wall of the treatment cylinder 1. A filter component is installed in the middle of the inner side wall of the water collection box 17. During operation, the operator pulls out the cylinder cover 11 and puts the mineral water to be processed into the cylinder. Water is poured into the treatment cylinder 1, and then the cylinder cover 11 is placed on top of the treatment cylinder 1, at which point the treatment cylinder 1 is in a sealed state. Then, the air inlet pipe 13 is connected to the ozone cylinder, and ozone gas is injected into the treatment cylinder 1 through the air inlet pipe 13. When the ozone gas enters the treatment cylinder 1, the ozone gas will first enter the stirring component, and under the action of the flow control component, it will pass through multiple air outlets 14 and microporous diffusers 15 and be injected into the mineral water. At the same time, the stirring component will continuously stir the mineral water, so that the mineral water and ozone gas are fully mixed. At this time, the ozone gas will sterilize the mineral water. After the treatment is completed, the staff will rotate the discharge component, so that the treated mineral water passes through multiple first sieve holes 16 and enters the water collection box 17, where it is collected. At the same time, the filter component in the water collection box 17 will adsorb the residual ozone gas in the mineral water, thereby ensuring the purity of the mineral water.
[0027] like Figures 1 to 3As shown, the agitation assembly includes a fixed cylinder 2, which is fixed to the bottom of the sealing ring 12. A motor 21 is mounted on the top side wall of the cylinder cover 11. A connecting rod 22 is fixedly connected to the output end of the motor 21. A movable cylinder 23 is fixed to the bottom side wall of the connecting rod 22. The movable cylinder 23 and the fixed cylinder 2 are rotatably connected. A movable shaft 24 is mounted on the bottom side wall of the movable cylinder 23. Multiple stirring plates 25 are fixedly connected to the middle of the side wall of the movable shaft 24. The assembly includes an air inlet pipe 13, a fixed cylinder 2, a movable cylinder 23, a movable shaft 24, stirring plates 25, and an air outlet. All outlets 14 are hollow and interconnected. During operation, the operator injects ozone gas into the fixed cylinder 2 through the air inlet pipe 13. Because the air inlet pipe 13, fixed cylinder 2, movable cylinder 23, movable shaft 24, stirring plate 25, and outlet 14 are connected, the ozone gas in the fixed cylinder 2 enters the movable cylinder 23 and movable shaft 24, flows to the stirring plate 25, and then flows into the mineral water through multiple outlets 14. At this time, the operator starts the motor 21, which drives the connecting rod 22 to rotate. When the connecting rod 22 rotates, it drives the movable cylinder 23 to rotate inside the fixed cylinder 2. When the movable cylinder 23 rotates, it drives the movable shaft 24 to rotate. When the movable shaft 24 rotates, it drives multiple stirring plates 25 to rotate. At this time, the stirring plates 25 agitate the mineral water inside the treatment cylinder 1. Simultaneously, the ozone gas inside the stirring plates 25 injects ozone gas into the mineral water during the rotation of the stirring plates 25. This step, by setting up the fixed cylinder 2, motor 21, connecting rod 22, movable cylinder 23, movable shaft 24, and stirring plates 25, helps to evenly distribute ozone gas in the mineral water, reducing the situation where the concentration of ozone gas is too high in some areas and too low in others. This ensures that all microorganisms in the mineral water can be effectively killed, improving the uniformity of sterilization. At the same time, this setting can increase the contact area and contact time between ozone gas and mineral water, allowing ozone gas to come into more complete contact with microorganisms in the water and undergo oxidation-reduction reactions, thereby rapidly killing a variety of microorganisms and pathogens and improving sterilization efficiency.
[0028] like Figure 3As shown, the flow control assembly includes multiple fixed rods 3, which are respectively fixed to the inner wall of the air outlet 14. A pair of movable rods 31 are fixed to the middle of the inner wall of the air outlet 14. The pair of movable rods 31 are respectively arranged on both sides of the fixed rods 3. A flow limiting plate 32 is rotatably connected to the middle of the side wall of the movable rod 31. A torsion spring is provided between the flow limiting plate 32 and the movable rod 31. During operation, when ozone gas passes through the air outlet 14, the ozone gas will squeeze the multiple flow limiting plates 32, causing the flow limiting plates 32 to rotate on the side wall of the movable rod 31, allowing the ozone gas to pass smoothly through the outlet. When ozone gas enters the mineral water through outlet 14, a torsion spring is provided between the flow-limiting plate 32 and the movable rod 31. When the ozone gas stops compressing the flow-limiting plate 32, the flow-limiting plate 32 will return to its original position, isolating the mineral water outside the stirring plate 25. This step, through the setting of the fixed rod 3, the movable rod 31, and the flow-limiting plate 32, enables the liquid to flow in one direction when ozone gas is injected into the mineral water through outlet 14. This effectively prevents backflow of ozone gas when injection stops, thus avoiding affecting the normal operation and lifespan of the equipment and protecting the integrity and performance of the ozone sterilization equipment.
[0029] like Figure 1 , Figure 2 and Figure 4 As shown, the discharge assembly includes a slot 4, which is located on the side wall of the processing cylinder 1. A connecting plate 41 is slidably connected to the middle of the inner side wall of the slot 4. A discharge plate 42 is mounted on the middle of the side wall of the connecting plate 41. A second screen hole 43 is provided in the middle of the side wall of the discharge plate 42. The second screen hole 43 is correspondingly set with the first screen hole 16. During operation, because the second screen hole 43 and the first screen hole 16 are correspondingly set, after the ozone gas sterilizes the mineral water, the operator pushes the connecting plate 41, causing the connecting plate 41 to move inside the slot 4. At this time, the connecting plate 41 will drive the discharge plate 42 in the processing cylinder. 1. The internal rotation continues until the second sieve hole 43 and the first sieve hole 16 overlap. At this point, the sterilized mineral water will pass through the second sieve hole 43 and the first sieve hole 16 into the water collection box 17 and be collected by the water collection box 17. This step, by setting the slot 4, connecting plate 41, discharge plate 42 and second sieve hole 43, can easily collect the sterilized mineral water, making production smoother and more efficient, improving production efficiency. Moreover, this setting can reduce problems such as improper operation and container contamination during manual water collection, ensure aseptic operation during the collection process, and thus reduce the possibility of contamination.
[0030] like Figure 2 and Figure 4As shown, the filter assembly includes a storage box 5, which is installed between the water collection box 17 and the treatment cylinder 1. Activated carbon 51 is installed in the middle of the inner wall of the storage box 5. During operation, as the mineral water passes through the first sieve hole 16 into the water collection box 17, the activated carbon 51 placed inside the storage box 5 adsorbs residual ozone gas in the mineral water. This step, by setting up the storage box 5 and the activated carbon 51, can effectively adsorb and remove residual ozone in the treated water, further improving the purity of the mineral water and making it more in line with drinking water standards.
[0031] like Figure 1 and Figure 4 As shown, an observation window 6 is provided in the middle of the side wall of the treatment cylinder 1. The observation window 6 is made of transparent material. By setting the observation window 6, the staff can directly observe the situation inside the treatment cylinder 1, including the water flow, ozone distribution and dissolution, etc., which helps the staff to monitor the treatment process in real time and improve the ozone sterilization effect.
[0032] like Figure 1 and Figure 4 As shown, an ozone concentration detector 7 is installed in the middle of the side wall of the treatment cylinder 1. The ozone concentration detector 7 is located above the observation window 6. By setting the ozone concentration detector 7, the ozone concentration in the treatment cylinder 1 can be monitored in real time, keeping it within a safe and effective range, and reducing the impact of excessively high or low ozone concentrations on sterilization effect and water quality safety.
[0033] Working principle: The operator removes the cap 11 and pours the mineral water to be treated into the treatment cylinder 1. Then, the cap 11 is closed on top of the treatment cylinder 1, sealing it. The inlet pipe 13 is then connected to the ozone cylinder, and ozone gas is injected into the treatment cylinder 1 through the inlet pipe 13. When the ozone gas enters the treatment cylinder 1, it first enters the stirring component and, under the action of the flow control component, passes through multiple outlets 14 and the microporous diffuser 15 before being injected into the mineral water. Simultaneously, the stirring component continuously agitates the mineral water, ensuring thorough mixing of the mineral water and ozone gas. At this point, the ozone gas sterilizes the mineral water. After treatment, the operator rotates the discharge component to... The treated mineral water passes through multiple first sieve holes 16 into the water collection box 17, where it is collected. Simultaneously, the filter components within the water collection box 17 adsorb residual ozone gas in the mineral water, ensuring its purity. Workers inject ozone gas into the fixed cylinder 2 through the air inlet pipe 13. Because the air inlet pipe 13, fixed cylinder 2, movable cylinder 23, movable shaft 24, stirring plate 25, and air outlet 14 are connected, the ozone gas in the fixed cylinder 2 enters the movable cylinder 23 and movable shaft 24, flows towards the stirring plate 25, and then flows into the mineral water through multiple air outlets 14. At this time, the worker starts the motor 21, which drives the connecting rod 22 to rotate. When the cylinder rotates, it drives the movable cylinder 23 to rotate inside the fixed cylinder 2. The rotation of the movable cylinder 23 drives the movable shaft 24 to rotate, which in turn drives multiple stirring plates 25 to rotate. At this time, the stirring plates 25 agitate the mineral water inside the treatment cylinder 1. Simultaneously, ozone gas inside the stirring plates 25 injects ozone gas into the mineral water as the stirring plates 25 rotate. When the ozone gas passes through the outlet 14, it compresses multiple flow-limiting plates 32, causing the flow-limiting plates 32 to rotate on the side wall of the movable rod 31, allowing the ozone gas to smoothly pass through the outlet 14 and enter the mineral water. Because a torsion spring is provided between the flow-limiting plate 32 and the movable rod 31, when the ozone gas no longer compresses the flow-limiting plate 32, the flow-limiting plate 32 rotates. The flow plate 32 will return to its original position, isolating the mineral water outside the stirring plate 25. Because the second sieve hole 43 and the first sieve hole 16 are set accordingly, after the ozone gas sterilizes the mineral water, the staff will push the connecting plate 41, causing the connecting plate 41 to move inside the slot 4. At this time, the connecting plate 41 will drive the discharge plate 42 to rotate inside the processing cylinder 1 until the second sieve hole 43 and the first sieve hole 16 overlap. At this time, the sterilized mineral water will pass through the second sieve hole 43 and the first sieve hole 16 and enter the water collection box 17, where it will be collected. During the process of the mineral water passing through the first sieve hole 16 and entering the water collection box 17, the activated carbon 51 placed inside the storage box 5 will adsorb the residual ozone gas in the mineral water.
[0034] The foregoing has shown and described the basic principles, main features, and advantages of this utility model. Those skilled in the art should understand that this utility model is not limited to the above embodiments. The embodiments and descriptions in the specification are merely illustrative of the principles of this utility model. Various changes and modifications can be made to this utility model without departing from its spirit and scope, and all such changes and modifications fall within the scope of the claimed utility model. The scope of protection of this utility model is defined by the appended claims and their equivalents.
Claims
1. An ozone sterilization device in the production of mineral water, comprising a treatment cylinder (1), characterized in that: The processing barrel (1) top side wall sliding fit with barrel cover (11), the barrel cover (11) bottom side wall is equipped with a plurality of sealing ring (12), the processing barrel (1) top side wall is fixed with air inlet pipe (13), the barrel cover (11) top side wall is equipped with agitating assembly, the agitating assembly side wall middle part is equipped with a plurality of air outlet (14), the air outlet (14) is located in processing barrel (1) inside, the air outlet (14) inboard middle part is equipped with flow control assembly, the air outlet (14) side wall middle part is equipped with microporous diffuser (15), the processing barrel (1) bottom side wall is equipped with a plurality of first sieve hole (16), the processing barrel (1) bottom inboard is equipped with discharge assembly, the discharge assembly and first sieve hole (16) correspond to be provided, the processing barrel (1) bottom side wall is equipped with water collecting box (17), the water collecting box (17) inboard middle part is equipped with filter assembly.
2. The ozone sterilization device for mineral water production according to claim 1, characterized in that: The agitating assembly includes fixed cylinder (2), the fixed cylinder (2) is fixed in sealing ring (12) bottom, the barrel cover (11) top side wall is equipped with motor (21), the motor (21) output end is fixed with connecting rod (22), the connecting rod (22) bottom side wall is fixed with movable cylinder (23), the movable cylinder (23) and fixed cylinder (2) rotationally connected, the movable cylinder (23) bottom side wall is equipped with movable shaft (24), the movable shaft (24) side wall middle part is fixed with a plurality of stirring plate (25), the air inlet pipe (13), fixed cylinder (2), movable cylinder (23), movable shaft (24), stirring plate (25) and air outlet (14) are hollow and are communicated.
3. The ozone sterilization device for mineral water production according to claim 1, characterized in that: The flow control assembly includes a plurality of fixed rod (3), a plurality of the fixed rod (3) are fixed on the air outlet (14) inboard middle part respectively, the air outlet (14) inboard middle part is fixed with a pair of movable rod (31), a pair of the movable rod (31) is arranged on the fixed rod (3) both sides respectively, the movable rod (31) side wall middle part rotationally connected with flow limiting plate (32), the flow limiting plate (32) and movable rod (31) between being equipped with torsional spring.
4. The ozone sterilization device for mineral water production according to claim 1, characterized in that: The discharge assembly includes slot (4), the slot (4) is set up on the processing barrel (1) side wall, the slot (4) inboard middle part is slidably connected with connecting plate (41), the connecting plate (41) side wall middle part is equipped with discharge plate (42), the discharge plate (42) side wall middle part is equipped with second sieve hole (43), the second sieve hole (43) and first sieve hole (16) correspond to be provided.
5. The ozone sterilization device for mineral water production according to claim 1, characterized in that: The filter assembly includes storage box (5), the storage box (5) is installed between water collecting box (17) and processing barrel (1), the storage box (5) inboard middle part is equipped with activated carbon (51).
6. The ozone sterilization device for mineral water production according to claim 5, characterized in that: The processing barrel (1) side wall middle part is equipped with observation window (6), the observation window (6) is transparent material.
7. The ozone sterilization device for mineral water production according to claim 6, characterized in that: The processing barrel (1) side wall middle part is equipped with ozone concentration detector (7), the ozone concentration detector (7) is located above observation window (6).