Ozone sterilization and disinfection device for producing drinking natural spring water
By designing separation components and filtering units in the ozone sterilization and disinfection device, the combination of the rotating shaft and quantitative joint assembly can be used to filter and intercept mineral precipitates and scales in the sewage, solving the problem of accumulation of dirt and scales in the device, and improving treatment efficiency and water quality safety.
Patent Information
- Application Number
- CN202510625842.4
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-15
- Publication Date
- 2025-06-27
Smart Images

Figure CN120208482A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of water resource treatment, and particularly to an ozone sterilization and disinfection device for the production of drinking natural spring water. Background Art
[0002] With the continuous improvement of people's requirements for the quality of drinking water, especially for directly drinkable natural spring water, strict treatment is required to ensure the health of consumers.
[0003] Ozone is a widely recognized broad-spectrum and highly efficient sterilization and disinfection agent in the world, which can quickly kill bacteria in the air and liquid. In addition to bacteria, natural spring water also contains various minerals, such as salts of calcium, magnesium, iron, etc. During the disinfection process, ozone reacts with the minerals in the water to form insoluble precipitates. The precipitates will adhere to the inner wall of the device, the surface of pipes and components. After long-term use, dirt, scale and other impurities will accumulate in the device. The impurities will hinder the full contact between ozone and water, reduce the mass transfer efficiency of ozone, and then affect the disinfection effect and water quality safety.
[0004] In order to ensure the disinfection effect of the ozone sterilization and disinfection device and the water quality safety of the spring water after disinfection, a large amount of water resources are required to remove the dirt inside the equipment.
[0005] In addition, if the sewage generated for cleaning the equipment is directly discharged, it will pollute the environment. Usually, the sewage needs to be discharged into the sewage system for purification treatment. However, due to the large amount of mineral precipitates and scale in the sewage, and the mineral precipitates and scale generally have irregular shapes and a certain hardness, they are easy to gradually accumulate in the sewage pipes, resulting in poor water flow or blockage. The blockage of the pipes is prone to the overflow of sewage, which is not conducive to environmental protection and sewage recycling and reuse. At the same time, a large amount of water bodies need to be frequently used to flush and dredge the blocked parts of the pipes, increasing the use of fresh water and the generation of sewage. Summary of the Invention
[0006] The purpose of the present invention is to provide an ozone sterilization and disinfection device for the production of drinking natural spring water to solve the problems mentioned in the above process.
[0007] To achieve the above purpose, the present invention provides the following technical solution: an ozone sterilization and disinfection device for the production of drinking natural spring water, including an ozone sterilization and disinfection device body and a filtering unit. A hose is connected to the filtering unit, and one end of the hose far away from the filtering unit is connected to the sewage discharge end of the ozone sterilization and disinfection device body.
[0008] The filtering unit includes a separation component. The separation component includes a separation tank. A flocculation component is arranged on the separation component. A compression component is arranged above the flocculation component. The flocculation component includes a pressure tank. A pressure pipe is connected to the pressure tank. One end of the pressure pipe away from the pressure tank is provided with a stirring tank. A discharge pipe is arranged at the lower end of the stirring tank. One end of the discharge pipe away from the stirring tank is connected to the separation tank;
[0009] The separation component further includes a rotating shaft. Quantitative clamping components are symmetrically sleeved at both ends of the rotating shaft. The quantitative clamping components are arranged outside the separation tank. The quantitative clamping components are used to limit the single rotation angle of the rotating shaft. Filter plates are arranged in an array on the outer side of the rotating shaft. A drainage plate is arranged at the lower end of the filter plate. There is a spacing between the filter plate and the drainage plate. A counterweight block is clamped and slidably arranged on the filter plate. The counterweight block is arranged between the filter plate and the drainage plate. A water collection tank is arranged at one end of the separation tank. Conveying grooves are formed on both sides of the separation tank. The water collection tank and the separation tank are communicated through a conveying pipe.
[0010] As a preferred scheme of the ozone sterilization and disinfection device for the production of drinking natural spring water of the present invention, wherein: baffles are symmetrically arranged inside the side walls on both sides of the separation tank. The baffles are arranged at the area position of the conveying groove. One end of the baffle is hinged with a contact block.
[0011] As a preferred scheme of the ozone sterilization and disinfection device for the production of drinking natural spring water of the present invention, wherein: the quantitative clamping component includes an outer cylinder. An inner cylinder is arranged inside the outer cylinder. A clamping ring is clamped and slidably arranged inside the outer cylinder.
[0012] As a preferred scheme of the ozone sterilization and disinfection device for the production of drinking natural spring water of the present invention, wherein: clamping grooves are arranged in an array at one end of the clamping ring facing the opening of the outer cylinder. The rotating shaft is rotatably arranged inside the inner cylinder. Clamping shafts are symmetrically arranged at both ends of the rotating shaft.
[0013] As a preferred scheme of the ozone sterilization and disinfection device for the production of drinking natural spring water of the present invention, wherein: a lifting plate is slidably arranged inside the pressure tank. An opening and closing plate is slidably arranged on one side wall of the pressure tank.
[0014] As a preferred scheme of the ozone sterilization and disinfection device for the production of drinking natural spring water of the present invention, wherein: the flocculation component further includes a fluid box. A driving shaft is rotatably arranged inside the fluid box. A driving wheel is arranged on the outer side of the driving shaft. A storage tank is arranged at the upper end of the fluid box.
[0015] As a preferred embodiment of the ozone sterilization and disinfection device for the production of drinking natural spring water according to the present invention, wherein: one end of the drive shaft is provided with a stirring paddle, centrifugal tubes are arranged on both sides of the stirring paddle, outflow holes are arranged in an array on the centrifugal tubes, the end of the drive shaft with the stirring paddle penetrates through the stirring tank, and the stirring paddle is arranged inside the stirring tank.
[0016] As a preferred embodiment of the ozone sterilization and disinfection device for the production of drinking natural spring water according to the present invention, wherein: scraping plates are symmetrically arranged on the stirring paddle, the scraping plates are slidably arranged on the stirring paddle, and the scraping plates are attached to the outer surfaces of the stirring paddle and the centrifugal tubes.
[0017] As a preferred embodiment of the ozone sterilization and disinfection device for the production of drinking natural spring water according to the present invention, wherein: the compression assembly includes a crank, the crank is sleeved on the end of the drive shaft away from the stirring paddle, a crankshaft is arranged at the end of the crank away from the drive shaft, the compression assembly further includes a key block, a key groove is formed in the key block, piston rods are symmetrically arranged on the key block, air cylinders are symmetrically arranged at the upper end of the stirring tank, and the ends of the piston rods away from the key block are slidably arranged in the air cylinders.
[0018] As a preferred embodiment of the ozone sterilization and disinfection device for the production of drinking natural spring water according to the present invention, wherein: an exhaust plate is slidably arranged in the counterweight block, exhaust holes are arranged in an array on the exhaust plate, anti-punching holes are arranged in an array on the counterweight block, an air cavity is formed in the counterweight block, the anti-punching holes are communicated with the air cavity, and a magnetic block is arranged on the counterweight block.
[0019] Compared with the prior art, the beneficial effects of the present invention are:
[0020] 1. By arranging filter plates and drainage plates in an array on the rotating shaft and setting a quantitative clamping assembly to control the rotation angle of the rotating shaft, when the filter plates are blocked during the filtering process, the filter plates drive the rotating shaft to rotate under the action of the gravity of the water body, so that the unblocked filter plates rotate to the area position where the sewage can be filtered, thereby realizing continuous filtering and interception of mineral precipitates and water scale in the sewage, so that the content of solid impurities in the water body discharged into the sewage system after filtering is low, avoiding the blockage of the pipes inside the sewage system by impurities, and further avoiding the use of fresh water when flushing and dredging the pipes, thus saving a large amount of water resources;
[0021] 2. The driving shaft is rotated by the water body, so that the sewage entering the mixing tank can be stirred by the stirring paddle, enabling the solid impurities to be evenly distributed in the water body, avoiding the accumulation of impurities. Meanwhile, during the stirring process of the stirring paddle, the flocculant will come into contact with the sewage under the action of centrifugal force, and under the stirring action of the stirring paddle, the flocculant is fully mixed with the sewage. As a result, the fine impurities in the sewage flocculate into flocs under the action of the flocculant, thereby improving the filtration accuracy and separation effect of the filter plate, and further preventing the impurities in the sewage from accumulating and blocking the pipeline when the sewage is discharged into the sewage system.
[0022] 3. The rotation of the driving shaft drives the crank to rotate, causing the piston rod to compress the gas in the air cylinder into the air duct. The compressed gas is temporarily stored by the airbag. When the rotating shaft rotates, the counterweight slides linearly along the filter plate under the action of gravity. At this time, the exhaust hole coincides with the counter-punching hole, causing the compressed gas to spray out towards the back of the filter plate. As a result, the impurities attached to the front of the filter plate are washed off by the gas and separated from the surface of the filter plate, thus ensuring the cleanliness of the filter plate surface and improving the filtration effect and filtration efficiency of the filter plate. BRIEF DESCRIPTION OF THE DRAWINGS
[0023] Figure 1 It is a schematic structural diagram of the overall ozone sterilization and disinfection device for the production of drinking natural spring water according to the present invention.
[0024] Figure 2 It is a schematic structural diagram of a half-sectional view of the separation tank of the ozone sterilization and disinfection device for the production of drinking natural spring water according to the present invention.
[0025] Figure 3 It is a schematic structural diagram of the baffle and contact block of the ozone sterilization and disinfection device for the production of drinking natural spring water according to the present invention.
[0026] Figure 4 It is a schematic structural diagram of a partial half-sectional view of the quantitative clamping assembly of the ozone sterilization and disinfection device for the production of drinking natural spring water according to the present invention.
[0027] Figure 5 It is a schematic structural diagram of a partial sectional view of the pressure tank of the ozone sterilization and disinfection device for the production of drinking natural spring water according to the present invention.
[0028] Figure 6 It is a schematic top view of a partial explosion of the flocculation assembly of the ozone sterilization and disinfection device for the production of drinking natural spring water according to the present invention.
[0029] Figure 7 It is a schematic bottom view of a partial explosion of the flocculation assembly of the ozone sterilization and disinfection device for the production of drinking natural spring water according to the present invention.
[0030] Figure 8Ozone sterilization and disinfection device for the production of natural drinking spring water according to the present invention Figure 7 Schematic diagram of the enlarged structure at position A in
[0031] Figure 9 Schematic diagram of the partial structure of the compression component of the ozone sterilization and disinfection device for the production of natural drinking spring water according to the present invention
[0032] Figure 10 Schematic diagram of the exhaust plate and magnetic block of the ozone sterilization and disinfection device for the production of natural drinking spring water according to the present invention
[0033] In the figure:
[0034] 1. Ozone sterilization and disinfection device body;
[0035] 2. Separation component; 21. Separation box; 211. Conveyor trough; 212. Baffle; 213. Contact block; 22. Rotating shaft; 221. Filter plate; 222. Drainage plate; 223. Counterweight; 224. Clamping shaft; 23. Quantitative clamping component; 231. Outer cylinder; 232. Inner cylinder; 233. Snap ring; 234. Card slot; 24. Water collection tank;
[0036] 3. Flocculation component; 31. Pressure box; 311. Lifting plate; 312. Opening and closing plate; 32. Pressure pipe; 33. Stirring tank; 34. Discharge pipe; 35. Fluid box; 351. Storage tank; 36. Driving shaft; 361. Driving wheel; 37. Stirring paddle; 371. Centrifugal tube; 38. Scraper;
[0037] 4. Compression component; 41. Crank; 42. Key block; 43. Piston rod; 44. Cylinder; 45. Exhaust plate; 46. Magnetic block. Detailed implementation mode
[0038] The features and exemplary embodiments of various aspects of the present invention will be described in detail below. In the following detailed description, many specific details are set forth in order to provide a comprehensive understanding of the present invention. However, it will be apparent to those skilled in the art that the present invention can be practiced without some of these specific details. The following description of the embodiments is only intended to provide a better understanding of the present invention by showing examples of the present invention. The present invention is in no way limited to any specific configuration and algorithm set forth below, but covers any modification, replacement, and improvement of elements, components, and algorithms without departing from the spirit of the present invention. Well-known structures and technologies are not shown in the drawings and the following description in order to avoid unnecessarily obscuring the present invention.
[0039] Embodiment 1
[0040] Refer to Figures 1-10, which is the first embodiment of the present invention, provides an ozone sterilization and disinfection device for the production of drinking natural spring water. This ozone sterilization and disinfection device for the production of drinking natural spring water includes an ozone sterilization and disinfection device body 1 and a filtration unit. The ozone disinfection and sterilization device body includes an ozone generator and a disinfection reaction tank. A hose is connected to the filtration unit, and one end of the hose away from the filtration unit is connected to the sewage discharge end of the ozone sterilization and disinfection device body 1, and one end of the hose away from the filtration unit is connected to the disinfection reaction tank;
[0041] The filtration unit includes a separation component 2. The separation component 2 includes a separation tank 21. A flocculation component 3 is arranged on the separation component 2. A compression component 4 is arranged above the flocculation component 3. The flocculation component 3 includes a pressure tank 31. A pressure pipe 32 is connected to the pressure tank 31. One end of the pressure pipe 32 away from the pressure tank 31 is provided with a stirring tank 33. A discharge pipe 34 is arranged at the lower end of the stirring tank 33. One end of the discharge pipe 34 away from the stirring tank 33 is connected to the separation tank 21. The pressure tank 31 is arranged at the upper end of the separation tank 21. One end of the hose away from the disinfection reaction tank is connected to the pressure tank 31 so that the disinfection reaction tank can communicate with the inside of the pressure tank 31. A water pump is arranged in the middle area of the hose. The sewage in the disinfection reaction tank can enter the pressure tank 31 through the hose under the action of the water pump;
[0042] The pressure pipe 32 is arranged at one end of the pressure tank 31 away from the hose. The pressure tank 31 can communicate with the inside of the stirring tank 33 under the action of the pressure pipe 32. The discharge pipe 34 is arranged at the bottom of the stirring tank 33. The sewage in the stirring tank 33 can enter the separation tank 21 through the discharge pipe 34;
[0043] The separation component 2 further includes a rotating shaft 22. Quantitative clamping components 23 are symmetrically sleeved at both ends of the rotating shaft 22. The quantitative clamping components 23 are arranged on the outside of the separation tank 21. The quantitative clamping components 23 are used to limit the single rotation angle of the rotating shaft 22. Under the limiting action of the quantitative clamping components 23, the rotating shaft 22 can rotate 90° once. Filter plates 221 are arranged in an array on the outside of the rotating shaft 22. A drainage plate 222 is arranged at the lower end of the filter plate 221. There is a distance between the filter plate 221 and the drainage plate 222. A counterweight 223 is clamped and slidably arranged on the filter plate 221. The counterweight 223 is arranged between the filter plate 221 and the drainage plate 222. A water collection tank 24 is arranged at one end of the separation tank 21. Conveyor grooves 211 are opened on both sides of the separation tank 21. The water collection tank 24 is communicated with the separation tank 21 through a conveyor pipe. A sintered metal filter screen is arranged in the middle area of the filter plate 221. The filter plate 221 is attached to the inner wall of the separation tank 21. The conveyor pipe is arranged at the area position of the conveyor groove 211. The water body in the separation tank 21 can enter the conveyor pipe through the conveyor groove 211 and then enter the water collection tank 24 from the conveyor pipe.
[0044] Baffles 212 are symmetrically arranged in the side walls on both sides of the separation box 21. The baffles 212 are arranged in the area of the conveying trough 211. A contact block 213 is hingedly arranged at one end of the baffle 212. Slide grooves are opened in the side walls on both sides of the separation box 21. The baffle 212 is slidably set in the slide grooves. A spring piece 1 is arranged at one end of the slide groove, and the spring piece 1 is connected to the baffle 212. The contact block 213 is arranged at the end of the baffle 212 away from the spring piece 1. A torsion spring is arranged at the connection between the contact block 213 and the baffle 212. The baffle 212 can block the conveying trough 211. A clearance groove is opened at the end of the slide groove away from the spring piece 1, and the contact block 213 can be rotated into the clearance groove.
[0045] The quantitative snap-fit assembly 23 includes an outer cylinder 231, an inner cylinder 232 is arranged inside the outer cylinder 231, a snap ring 233 is arranged inside the outer cylinder 231 for snap-fitting and sliding, a spring 1 is arranged at one end of the snap ring 233 away from the slot 234, a spring set is arranged on the outside of the inner cylinder 232, and one end of the spring 1 away from the snap ring 233 is connected to the outer cylinder 231.
[0046] An array of clamping grooves 234 are arranged at one end of the clamping ring 233 that opens toward the outer cylinder 231 . The rotating shaft 22 is rotatably arranged in the inner cylinder 232 . Clamping shafts 224 are symmetrically arranged at both ends of the rotating shaft 22 . The clamping grooves 234 can limit the clamping shaft 224 .
[0047] During use, when the ozone sterilization and disinfection device is used and starts to be cleaned, the sewage generated by cleaning in the disinfection reaction tank will enter the pressure box 31 through the hose under the action of the water pump, and then the sewage in the pressure box 31 will enter the stirring tank 33 through the pressure pipe 32, and then the sewage in the stirring pipe will enter the separation box 21 through the discharge pipe 34, and the sewage entering the separation box 21 will contact the separation plate, and then the water will pass through the sintered metal filter under the action of gravity, and then fall onto the drainage board 222, and then the water on the drainage board 222 can enter the water collecting tank 24 through the delivery pipe, so as to collect the filtered water;
[0048] At this time, since the mineral precipitates and scale in the sewage are intercepted on the surface of the sintered metal filter, as these impurities gradually accumulate, the filter holes of the sintered metal filter are blocked, and then the sewage entering the separation box 21 gradually accumulates on the filter plate 221. Under the pressure of the water weight on the filter plate 221, the rotating shaft 22 is driven to rotate. At this time, the rotation of the rotating shaft 22 drives the clamping shaft 224 to move synchronously, causing the clamping shaft 224 to slide along the clamping groove 234, the clamping ring 233 is displaced as a whole, and the spring is deformed. When the clamping shaft 224 is When the filter 24 is separated from the first slot 234, the snap ring 233 will be reset under the action of the restoring elastic force of the spring 1, and the clamping shaft 224 will slide into the second slot 234. At this time, the second slot 234 will limit the clamping shaft 224, and the second slot 234 will push the clamping shaft 224, so that the rotating shaft 22 rotates. At this time, the blocked first filter plate 221 will rotate from a horizontal posture to a vertical posture. At this time, the impurities on the filter plate 221 will fall to the bottom of the separation box 21 under the action of gravity.
[0049] At this time, the second filter plate 221 completes the transition from the vertical posture to the horizontal posture, and then the second filter plate 221 will continue to filter impurities from the sewage entering the separation box 21;
[0050] During the rotation of the filter plate 221, the drain plate 222 will push the contact block 213, causing the contact block 213 to drive the baffle plate 212 to move along the slide groove. When the contact block 213 moves to the clearance groove, the baffle plate 212 has moved to the limit position. Then the filter plate 221 and the drain plate 222 will press the contact block 213 respectively, causing the contact block 213 to rotate into the clearance groove, thereby making way for the filter plate 221 and the drain plate 222. During the displacement of the baffle plate 212, the baffle plate 212 will block the conveying groove 211 to prevent the sewage that has not been filtered and impurities removed from leaking out through the conveying groove 211.
[0051] Example 2
[0052] Reference Figures 1-9 , which is the second embodiment of the present invention, and this embodiment is different from the first embodiment in that:
[0053] A lifting plate 311 is slidably provided in the pressure box 31, an opening and closing plate 312 is slidably provided on a side wall of one side of the pressure box 31, a guide shaft is symmetrically provided on the upper surface of the lifting plate 311, the guide shaft passes through the top of the pressure box 31, a spring 2 is sleeved on the outer side of the guide shaft, the spring 2 is provided in the pressure box 31, a hose is connected to one end of the pressure box 31 close to the separation box 21, and a pressure pipe 32 is provided at one end of the pressure box 31 away from the separation box 21;
[0054] The opening and closing plate 312 is arranged at the area where the pressure pipe 32 is connected to the pressure tank 31. A second elastic piece is arranged at one end of the opening and closing plate 312 away from the lifting plate 311. The end of the second elastic piece away from the opening and closing plate 312 is connected to the pressure tank 31. Initially, the opening and closing plate 312 can block the sewage in the pressure tank 31 from entering the mixing tank 33 through the pressure pipe 32. However, the displacement of the lifting plate 311 can contact and push the opening and closing plate 312 to shift, so that the water body in the pressure tank 31 can enter the mixing tank 33 through the pressure pipe 32.
[0055] The flocculation assembly 3 further includes a fluid box 35. A drive shaft 36 is rotatably arranged in the fluid box 35. A drive wheel 361 is arranged on the outer side of the drive shaft 36. A storage tank 351 is arranged at the upper end of the fluid box 35. The fluid box 35 is arranged in the middle area of the pressure pipe 32. The drive wheel 361 rotates synchronously with the drive shaft 36. A plurality of water storage grooves are arranged in an array on the side wall of the drive wheel 361. When the fluid flows through the pressure pipe 32, the fluid can drive the drive wheel 361 to rotate. A liquid flocculant is arranged in the storage tank. An outlet pipe is arranged at the opening end of the storage tank 351. The end of the outlet pipe away from the storage pipe is rotatably connected to the drive shaft 36. A cavity is formed in the axis of the drive shaft 36, and the flocculant can enter the cavity through the outlet pipe.
[0056] Blocking strips are arranged in an array on the upper surface of the drive wheel 361. Elastic blocking pieces are arranged in an array on the inner top of the fluid box 35. The blocking strips can contact the elastic blocking pieces. Under the mutual limiting action of the blocking strips and the elastic blocking pieces, the drive wheel 361 can only rotate in one direction.
[0057] One end of the drive shaft 36 is provided with a stirring paddle 37. Centrifugal tubes 371 are arranged on both sides of the stirring paddle 37. Outflow holes are arranged in an array on the centrifugal tubes 371. The end of the drive shaft 36 provided with the stirring paddle 37 penetrates through the mixing tank 33. The stirring paddle 37 is arranged inside the mixing tank 33. The centrifugal tubes 371 are connected to the drive shaft 36, and a centrifugal cavity is formed in the centrifugal tubes 371. The centrifugal cavity communicates with the cavity. The flocculant entering the cavity can enter the centrifugal cavity from the cavity and is finally discharged from the outflow holes. The mixing tank 33 is arranged at the lower end of the fluid box 35.
[0058] Scraping plates 38 are symmetrically arranged on the stirring paddle 37. The scraping plates 38 are slidably arranged on the stirring paddle 37. The scraping plates 38 are attached to the outer surfaces of the stirring paddle 37 and the centrifugal tubes 371. Connecting plates are symmetrically arranged at one end of the drive shaft 36 close to the stirring paddle 37. The two scraping plates 38 are located on both sides of the connecting plates. A third spring is arranged on the connecting plates. The surface of the third spring is nickel-plated. The end of the third spring away from the connecting plates is connected to the scraping plates 38. The spraying direction of the sewage entering the mixing tank 33 from the pressure pipe 32 is towards the stirring paddle 37.
[0059] During use, when sewage is introduced into the pressure tank 31 through a hose, as the sewage continuously enters, the sewage in the pressure tank 31 will push up the lifting plate 311. At this time, the second spring deforms, and the water pressure in the pressure tank 31 increases;
[0060] When the lifting plate 311 is displaced to contact the opening and closing plate 312, at this time, the lifting plate 311 will push the opening and closing plate 312 to shift synchronously, and the sewage in the pressure tank 31 can enter the pressure pipe 32. When the sewage entering the pressure pipe 32 passes through the fluid box 35, the sewage will drive the drive shaft 36 and the drive wheel 361 to rotate. The sewage passing through the fluid box 35 enters the mixing tank 33 under the guiding action of the pressure pipe 32;
[0061] Since the water pressure of the sewage entering the pressure tank 31 is relatively high, the amount of sewage entering the mixing tank 33 is greater than the amount of sewage entering the separation tank 21 from the mixing tank 33, resulting in an increase in the liquid level in the mixing tank 33, and the liquid level in the mixing tank 33 will gradually submerge the mixing paddle 37;
[0062] Since the sewage flows in the pressure pipe 32, the drive shaft 36 rotates following the drive wheel 361. At this time, the drive will drive the mixing paddle 37 to rotate. During the rotation of the mixing paddle 37, the flocculant in the centrifugal tube 371 will be discharged from the outflow hole under the action of the centrifugal force generated when the mixing paddle 37 rotates. At this time, a negative pressure appears in the centrifugal tube 371, causing the flocculant in the storage tank 351 to gradually flow into the centrifugal tube 371 and finally be discharged through the outflow hole;
[0063] The flocculant discharged from the outflow hole will be fully mixed with the sewage in the mixing tank 33 under the agitation of the mixing paddle 37. At this time, the impurities in the sewage in the mixing tank 33 will gradually flocculate into flocs under the action of the flocculant, and finally the flocs will follow the sewage and enter the separation tank 21 through the discharge pipe 34;
[0064] When the mixing paddle 37 rotates, the two scraping plates 38 move away from each other under the action of centrifugal force, and the third spring deforms. When the sewage treatment is completed, the mixing paddle 37 stops rotating, and the two scraping plates 38 approach each other under the restoring elastic force of the third spring and return to the initial position. During the resetting process of the scraping plates 38, the scraping plates 38 will scrape the surface of the mixing paddle 37 and the surface of the centrifugal tube 371, thereby removing the residual flocs attached to the surfaces of the mixing paddle 37 and the centrifugal tube 371;
[0065] And when the sewage enters the mixing tank 33 from the pressure pipe 32, the sewage will spray towards the direction of the mixing paddle 37, and then the surface of the mixing paddle 37 is washed by the sewage with a certain flow rate, preventing flocs from adhering to the outer surfaces of the mixing paddle 37 and the centrifugal tube 371.
[0066] The remaining structure is the same as that of Embodiment 1.
[0067] Embodiment 3
[0068] Reference Figures 1-10 , which is the third embodiment of the present invention. The difference between this embodiment and the second embodiment is that:
[0069] The compression assembly 4 includes a crank 41. The crank 41 is sleeved on one end of the drive shaft 36 away from the stirring paddle 37. A crankshaft is provided at one end of the crank 41 away from the drive shaft 36. The compression assembly 4 further includes a key block 42. A key groove is provided on the key block 42. Piston rods 43 are symmetrically arranged on the key block 42. Air cylinders 44 are symmetrically arranged at the upper end of the mixing tank 33. One end of the piston rod 43 away from the key block 42 is slidably arranged in the air cylinder 44. The crank 41 rotates synchronously with the drive shaft 36. The crankshaft is engaged and slidably arranged in the key groove. Guide frames are symmetrically arranged at the upper end of the fluid box 35. The piston rod 43 is slidably arranged on the guide frames. The guide frames can support, limit and guide the piston rod 43. A one-way valve is provided at one end of the air cylinder 44 away from the piston rod 43.
[0070] An exhaust plate 45 is slidably arranged in the counterweight 223. Exhaust holes are arranged in an array on the exhaust plate 45. Counter-punching holes are arranged in an array on the counterweight 223. The gas in the air cavity can be discharged through the counter-punching holes. An air cavity is provided in the counterweight 223. The counter-punching holes are communicated with the air cavity. The exhaust plate 45 can block the gas in the air cavity from being discharged through the counter-punching holes. A magnet 46 is provided on the counterweight 223. A magnetic strip is provided at one end of the filter plate 221 away from the rotating shaft 22. Elastic pieces three are symmetrically arranged at both ends of the exhaust plate 45. When the elastic pieces three are not affected by external forces, at this time, the exhaust holes on the exhaust plate 45 coincide with the counter-punching holes. At this time, the gas in the air cavity can be discharged through the exhaust holes and then through the counter-punching holes. When the elastic pieces three are deformed, the exhaust holes are misaligned with the counter-punching holes;
[0071] One end of the air cylinder 44 away from the piston rod 43 is connected with a guide pipe. The end of the guide pipe away from the air cylinder 44 penetrates through the outer cylinder 231 and is rotatably connected with the rotating shaft 22. A rotating groove is provided at the center of the rotating shaft 22. The piston rod 43 can compress the gas in the air cylinder 44 and transport it to the rotating groove through the guide pipe. A spring tube is connected to the middle area of the rotating shaft 22. The spring tube is communicated with the inside of the rotating groove. One end of the spring tube away from the rotating shaft 22 is communicated with the inside of the air cavity. The gas in the air cylinder 44 can flow into the air cavity. An airbag is provided in the middle area of the guide pipe.
[0072] During use, when the drive shaft 36 rotates, the crank 41 will rotate synchronously with the drive shaft 36. At this time, the crankshaft will slide along the keyway. At the same time, under the action of the guide frame, the piston rod 43 will perform a reciprocating linear motion. At this time, the air cylinder 44 in the air cylinder 44 will be introduced into the guide air duct. Since the rotation has not occurred at this time, the exhaust holes on the plurality of counterweight blocks 223 are misaligned with the counter-punched holes, and the pressure of the air cylinder 44 in the air duct increases, and the airbag gradually expands;
[0073] When the first filter plate 221 is blocked, causing the rotating shaft 22 to rotate, at this time, the counterweight block 223 on the first filter plate 221 slides along the filter plate 221 under the action of gravity. (During this process, the counterweight blocks 223 on the filter plates 221 parallel to the first filter plate 221 will also slide along the filter plate 221) At this time, the exhaust plate 45 makes the exhaust hole coincide with the counter-punched hole under the reset elastic force of the third elastic piece. At this time, the compressed gas in the airbag can be ejected through the counter-punched hole. Since the counterweight block 223 slides linearly along the filter plate 221, the ejected gas will backflush and clean the impurities attached to the filter plate 221.
[0074] The remaining structure is the same as that of Embodiment 2.
[0075] In different embodiments, different technical features can be combined to achieve beneficial effects. Those skilled in the art should be able to understand and implement other variations of the disclosed embodiments based on the study of the drawings, the description, and the claims. In the claims, the term "comprising" does not exclude other devices or steps; the indefinite article "a" does not exclude a plurality; the terms "first" and "second" are used to label names rather than to indicate any particular order. Any reference signs in the claims should not be construed as limiting the scope of protection. The functions of multiple parts in the claims can be implemented by a single hardware or software module. The fact that certain technical features appear in different dependent claims does not mean that these technical features cannot be combined to achieve beneficial effects.
Claims
1. An ozone sterilization and disinfection device for producing drinking natural spring water, comprising an ozone sterilization and disinfection device body (1) and a filter unit, characterized in that: The filter unit is connected to a hose, and one end of the hose away from the filter unit is connected to a sewage discharge end of the ozone sterilization and disinfection device body (1); The filtration unit comprises a separation component (2), the separation component (2) comprises a separation box (21), a flocculation component (3) is arranged on the separation component (2), a compression component (4) is arranged above the flocculation component (3), the flocculation component (3) comprises a pressure box (31), a pressure pipe (32) is connected to the pressure box (31), a stirring tank (33) is arranged at one end of the pressure pipe (32) away from the pressure box (31), a discharge pipe (34) is arranged at the lower end of the stirring tank (33), and the discharge pipe (34) is connected to the separation box (21) at one end away from the stirring tank (33); The separation component (2) further comprises a rotating shaft (22), two ends of the rotating shaft (22) are symmetrically sleeved with quantitative clamping components (23), the quantitative clamping components (23) are arranged on the outside of the separation box (21), and the quantitative clamping components (23) are used to limit the single rotation angle of the rotating shaft (22), the outer side of the rotating shaft (22) is provided with a filter plate (221) in an array, the lower end of the filter plate (221) is provided with a drain plate (222), there is a spacing between the filter plate (221) and the drain plate (222), a counterweight block (223) is provided on the filter plate (221) for clamping and sliding, and the counterweight block (223) is arranged between the filter plate (221) and the drain plate (222), a water collecting box (24) is provided at one end of the separation box (21), and conveying grooves (211) are provided on both sides of the separation box (21), and the water collecting box (24) is connected to the separation box (21) through a conveying pipe.
2. The ozone sterilization and disinfection device for producing drinking natural spring water according to claim 1 is characterized in that: Baffles (212) are symmetrically arranged in the side walls of both sides of the separation box (21), and the baffles (212) are arranged at the regional position of the conveying trough (211). A contact block (213) is hingedly arranged at one end of the baffle (212).
3. The ozone sterilization and disinfection device for producing drinking natural spring water according to claim 1 is characterized in that: The quantitative clamping assembly (23) comprises an outer cylinder (231), an inner cylinder (232) is arranged inside the outer cylinder (231), and a clamping ring (233) is slidably arranged inside the outer cylinder (231).
4. The ozone sterilization and disinfection device for producing drinking natural spring water according to claim 3 is characterized in that: An array of clamping grooves (234) is arranged at one end of the clamping ring (233) that opens toward the outer cylinder (231); the rotating shaft (22) is rotatably arranged in the inner cylinder (232); and clamping shafts (224) are symmetrically arranged at both ends of the rotating shaft (22).
5. The ozone sterilization and disinfection device for producing drinking natural spring water according to claim 1 is characterized in that: A lifting plate (311) is slidably disposed in the pressure box (31), and an opening and closing plate (312) is slidably disposed on a side wall of one side of the pressure box (31).
6. The ozone sterilization and disinfection device for producing drinking natural spring water according to claim 1, characterized in that: The flocculation assembly (3) further comprises a fluid box (35), a driving shaft (36) being rotatably arranged inside the fluid box (35), a driving wheel (361) being arranged outside the driving shaft (36), and a storage tank (351) being arranged at the upper end of the fluid box (35).
7. The ozone sterilization and disinfection device for producing drinking natural spring water according to claim 6, characterized in that: A stirring paddle (37) is provided at one end of the driving shaft (36), centrifuge tubes (371) are provided on both sides of the stirring paddle (37), outflow holes are arranged in an array on the centrifuge tubes (371), and one end of the driving shaft (36) provided with the stirring paddle (37) passes through the stirring tank (33), and the stirring paddle (37) is arranged inside the stirring tank (33).
8. The ozone sterilization and disinfection device for producing drinking natural spring water according to claim 7, characterized in that: The stirring paddle (37) is symmetrically provided with a scraper (38), and the scraper (38) is slidably provided on the stirring paddle (37). The scraper (38) is in contact with the outer surface of the stirring paddle (37) and the centrifuge tube (371).
9. The ozone sterilization and disinfection device for producing drinking natural spring water according to claim 1, characterized in that: The compression assembly (4) comprises a crank (41), the crank (41) being sleeved on one end of the drive shaft (36) away from the stirring paddle (37), the end of the crank (41) away from the drive shaft (36) being provided with a crankshaft, the compression assembly (4) further comprises a key block (42), the key block (42) being provided with a key slot, the key block (42) being symmetrically provided with a piston rod (43), the upper end of the stirring tank (33) being symmetrically provided with an air cylinder (44), the end of the piston rod (43) away from the key block (42) being slidably provided in the air cylinder (44).
10. The ozone sterilization and disinfection device for producing drinking natural spring water according to claim 1, characterized in that: An exhaust plate (45) is slidably arranged inside the counterweight block (223), exhaust holes are arranged in an array on the exhaust plate (45), recoil holes are arranged in an array on the counterweight block (223), an air cavity is opened inside the counterweight block (223), the recoil holes are connected to the air cavity, and a magnetic block (46) is arranged on the counterweight block (223).
Citation Information
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