An energy-saving sterilization device for mineral water production
Through two-stage filtration and two-stage sterilization mechanisms combined with ozone and ultraviolet sterilization methods, the problems of single sterilization method and low efficiency of mineral water production equipment are solved, and continuous treatment and efficient sterilization of mineral water are achieved.
Patent Information
- Application Number
- CN202411820234.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-11
- Publication Date
- 2025-09-19
- Estimated Expiration
- 2044-12-11
AI Technical Summary
The existing mineral water production device has a single sterilization method during sterilization treatment, low efficiency, and cannot achieve continuous transportation of mineral water.
It adopts two-stage filtration components and two-stage sterilization mechanism, combines ozone and ultraviolet sterilization methods, and realizes intermittent water filling and mixing of the mixing tank through the driving component to ensure the full mixing of ozone and water, and ultraviolet rays for secondary sterilization.
It realizes the continuous treatment of mineral water, improves the treatment effect of filtration and sterilization, improves the sterilization efficiency and work efficiency, and reduces the waste of ozone.
Smart Images

Figure CN119370941B_ABST
Abstract
Description
Technical Field
[0001] The invention relates to the technical field of mineral water production, in particular to an energy-saving sterilization device for mineral water production. Background Art
[0002] Mineral water is uncontaminated underground water that emerges naturally or is artificially exposed from deep underground. It contains a certain amount of mineral salts, trace elements, and carbon dioxide gas. During the production and packaging process, mineral water must be sterilized to ensure it can be packaged, transported, and sold aseptically.
[0003] Patent publication number CN215559209U is a disinfection device for mineral water production. Its structure mainly includes a shell, a water inlet pipe and a water outlet pipe. An ozone generator is provided on the outside of the shell. The ozone generator is connected to a pipe and a nozzle, and the nozzle is located inside the shell. A drive motor, a shaft, a scraper and a water leakage frame are also provided in the shell. Through the mutual cooperation of the shaft, scraper and water leakage frame, the purpose of fully mixing ozone and water can be achieved, thereby improving the sterilization effect of ozone.
[0004] However, when the above device disinfects and sterilizes mineral water, it only uses ozone sterilization, which is a relatively simple sterilization method. After each sterilization, the water inside the shell needs to be discharged before the mineral water can be transported into the shell again for sterilization. The mineral water cannot be transported continuously, and the treatment efficiency is low.
[0005] Based on this, the present invention designs an energy-saving sterilization device for mineral water production to solve the above problems. Summary of the Invention
[0006] The object of the present invention is to provide an energy-saving sterilization device for mineral water production to solve the problems raised in the above background technology.
[0007] To achieve the above object, the present invention provides the following technical solutions:
[0008] An energy-saving sterilization device for mineral water production, comprising a cylindrical sterilization box, a filter box mounted on the top of the sterilization box, and a cover plate mounted on the top of the filter box, wherein a first vertical drain pipe is fixed at the center of the bottom of the filter box, and a second vertical drain pipe is fixed at the center of the bottom of the sterilization box;
[0009] The filter box is provided with a two-stage filter assembly, and the sterilization box is provided with a two-stage sterilization mechanism. The two-stage sterilization mechanism includes a fixed platform fixed in the middle of the inner cavity of the sterilization box, an ultraviolet treatment component is provided at the bottom of the fixed platform, and a plurality of fan-shaped mixing grooves are evenly provided along the circumferential direction on the top, and a mixing component is provided in the mixing groove. An ozone delivery component is provided on the side wall of the sterilization box, and the ozone delivery component is correspondingly connected to the mixing groove.
[0010] A vertical central tube is fixed at the center of the fixed platform. The bottom end of the first drain pipe is located at the top of the inner cavity of the central tube, and the ultraviolet treatment component is fixed to the bottom end of the central tube. A mixing inlet pipe is fixed at the upper part of one end of the mixing tank close to the central tube, and a mixing outlet pipe is fixed at the lower part. Both the mixing inlet pipe and the mixing outlet pipe are fixedly connected to the central tube.
[0011] Sealing assemblies are provided at positions corresponding to multiple mixing inlet pipes and mixing outlet pipes in the central tube. A driving assembly is connected to one side of the sealing assembly, and the driving assembly is correspondingly connected to the mixing assembly. Multiple water flow grooves are evenly arranged on the bottom of the side wall of the central tube along the circumferential direction, and are connected to the ultraviolet treatment assembly through the water flow grooves.
[0012] Preferably, the sealing assembly includes a fixed circular plate fixed to the upper part of the inner cavity of the central cylinder, and a cylindrical first sealing plug is provided at the top of the fixed circular plate corresponding to the position of the multiple mixing inlet pipes, and the circumferential side wall of the first sealing plug contacts the inner side wall of the central cylinder, a vertical rotating shaft is fixed at the bottom center of the first sealing plug, the rotating shaft is rotatably connected to the fixed circular plate, and the bottom end passes through the fixed ring plate, the lower part of the rotating shaft is correspondingly connected to the driving assembly, and a cylindrical second sealing plug is fixed at the bottom end corresponding to the position of the multiple mixing outlet pipes, and the circumferential side wall of the second sealing plug contacts the inner side wall of the central cylinder;
[0013] A water supply port is provided at the top center of the first sealing plug and the bottom center of the second sealing plug. A water supply channel connected to the water supply port is provided inside the first sealing plug and the second sealing plug. The water supply channels in the first sealing plug and the second sealing plug are staggered in the circumferential direction and are respectively connected to the mixing inlet pipe and the mixing outlet pipe at the corresponding positions.
[0014] Preferably, the mixing assembly includes a stirring shaft rotatably connected to the mixing tank, a plurality of stirring plates are evenly fixed on the stirring shaft, and the end of the stirring shaft close to the center tube extends out of the mixing tank and is fixed with a bevel gear, and the plurality of bevel gears are correspondingly connected to the drive assembly.
[0015] Preferably, the driving assembly includes a motor fixed on the inner wall of the central tube, a driving shaft is connected to the bottom of the motor, a dial is fixed to the middle of the driving shaft, a driving gear is fixed to the bottom end, a groove wheel is fixed on the rotating shaft, and the groove wheel is correspondingly connected to the dial, a rotating ring plate is rotatably connected to the outer wall of the central tube, a bevel gear ring is fixed on the outer wall of the rotating ring plate, multiple bevel gears are engaged with the bevel gear ring, a transmission gear ring is fixed on the inner side of the rotating ring plate, a notch is provided on the side wall of the central tube corresponding to the position of the driving gear, and one side of the driving gear has a transmission notch and engages with the transmission gear ring.
[0016] Preferably, the ultraviolet treatment component includes a circular guide plate fixed to the bottom end of the central tube, and a plurality of ultraviolet lamps are evenly fixed along the circumferential direction at the bottom of the fixed platform corresponding to the position of the guide plate, and the plurality of ultraviolet lamps are electrically connected to a power supply and a switch, and the outer edge of the guide plate is slidably connected to a vertical water retaining ring plate, and the upper part of the water retaining ring plate is evenly provided with a plurality of overflow holes along the circumferential direction, and the bottom end of the water retaining ring plate is connected to the bottom surface of the guide plate through a lifting structure.
[0017] Preferably, the lifting structure includes a lifting plate fixed to the bottom end of the water retaining ring plate, a fixed base plate is connected to the middle of the lower part of the lifting plate through a plurality of evenly arranged springs, a plurality of vertical guide shafts are evenly fixed to the top of the fixed base plate, the top end of the guide shaft passes through the lifting plate and is fixedly connected to the bottom surface of the guide plate, a first electromagnet is fixed in the middle of the bottom of the lifting plate, a second electromagnet is fixed in the middle of the top surface of the fixed base plate, and the first electromagnet and the second electromagnet are electrically connected to a power supply and a switch.
[0018] Preferably, the ozone delivery assembly includes an ozone generator fixed on the outer wall of the sterilization box, the top of the ozone generator is connected to an air inlet pipe, the top end of the air inlet pipe is bent and extends into the interior of the sterilization box, and is fixed with an annular air pipe, the annular air pipe is fixedly connected to the bottom surface of the filter box, and two exhaust main pipes are symmetrically fixed on the inner side of the annular air pipe corresponding to the position of each mixing tank, and a plurality of vertical exhaust branches are evenly fixed on the bottom of the exhaust main pipe.
[0019] Preferably, the two-stage filtration assembly includes a vertical water inlet cylinder located at the center of the cover plate, a vertical filter screen cylinder is fixed to the bottom end of the water inlet cylinder, a horizontal partition is fixed to the lower part of the inner cavity of the filter box, the bottom end of the filter screen cylinder is in contact with the top surface of the partition, and a plurality of vertical filter elements are evenly arranged on the top surface of the partition in a circumferential direction. The bottom and top ends of the filter elements are respectively connected to the partition and the cover plate, a drain outlet is provided at the center of the bottom end of each filter element on the partition, and a sewage outlet is provided on the side wall of the filter box at the position corresponding to the partition.
[0020] Preferably, the water inlet cylinder is slidingly connected to the center of the cover plate, and the top end extends out of the cover plate, and an annular spring plate is fixed on the outer wall of the extended section, the bottom of the spring plate is connected to the cover plate through a plurality of evenly arranged springs, and a third electromagnet is fixed at the relative position of the spring plate and the cover plate, respectively, the third electromagnet is electrically connected to a power supply and a switch, and a plurality of vertical limit shafts are evenly fixed at the position of the cover plate corresponding to the spring plate, and the top end of the limit shaft passes through the spring plate.
[0021] Preferably, a backwash ring tube is fixed on the top of the cover plate, a backwash inlet pipe is connected to one side of the backwash ring tube, and a backwash port is provided at the bottom of the backwash ring tube corresponding to the position of each filter element, and the bottom end of the backwash port passes through the cover plate and extends into the filter element at the corresponding position.
[0022] Compared with the prior art, the present invention has the following beneficial effects:
[0023] 1. The present invention performs two-stage filtration on mineral water through a two-stage filtration component to remove solid impurities contained in the water, and sterilizes the water through a two-stage sterilization treatment mechanism, thereby achieving continuous treatment of the mineral water and improving the treatment effects of filtration and sterilization;
[0024] 2. The present invention uses a driving assembly to intermittently rotate the sealing assembly and drive multiple mixing assemblies to move, thereby achieving intermittent water filling and mixing in the mixing tank, so that the mineral water and ozone can be fully mixed, thereby improving the ozone sterilization effect;
[0025] 3. The present invention uses an ultraviolet component to perform secondary sterilization on the mineral water after ozone sterilization, and accelerates the decomposition of residual ozone in the mineral water by ultraviolet rays, thereby improving the mineral water treatment effect;
[0026] 4. The present invention sets up multiple mixing tanks, which take turns to take in and drain water. Thus, during ozone sterilization, water intake, sterilization and drainage can be carried out simultaneously, thereby improving treatment efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0027] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following briefly introduces the drawings required for describing the embodiments. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without creative work.
[0028] Figure 1 It is a schematic diagram of the structure of the present invention;
[0029] Figure 2 This is a schematic structural diagram of the cover plate and the partition plate of the present invention;
[0030] Figure 3 It is a structural schematic diagram of the mixing tank of the present invention;
[0031] Figure 4 for Figure 1 Schematic diagram of the structure at A in the middle;
[0032] Figure 5 for Figure 1 Schematic diagram of the structure at B in the middle;
[0033] Figure 6 for Figure 2 Schematic diagram of the structure at C in the middle;
[0034] Figure 7 for Figure 4 Schematic diagram of the structure at D in the middle;
[0035] Figure 8Schematic diagram of the structure of the first sealing plug and the second sealing plug of the present invention;
[0036] Figure 9 It is a schematic structural diagram of the groove wheel and the dial of the present invention;
[0037] Figure 10 Schematic diagram of the structure of the annular trachea of the present invention.
[0038] In the accompanying drawings, the components represented by the reference numerals are as follows:
[0039] 100 - cover plate, 101 - water inlet cylinder, 102 - filter cylinder, 103 - spring plate, 104 - limit shaft, 105 - backwash inlet pipe, 106 - backwash ring pipe, 107 - backwash port, 108 - third electromagnet;
[0040] 200-filter box, 201-first drain pipe, 202-drain outlet, 203-partition plate, 204-drain outlet, 205-filter element;
[0041] 300- sterilization box, 301- second drain pipe, 302- ozone generator, 302- air inlet pipe, 303- annular air pipe, 304- exhaust branch pipe, 305- exhaust main pipe;
[0042] 400-fixed table, 401-ultraviolet lamp, 402-mixing tank, 403-stirring shaft, 404-stirring plate, 405-bevel gear, 406-mixing inlet pipe, 407-mixing outlet pipe;
[0043] 500- guide plate, 501- water retaining ring plate, 502- overflow hole, 503- lifting plate, 504- guide shaft, 505- fixed bottom plate, 506- first electromagnet, 507- second electromagnet;
[0044] 600-Center tube, 601-Water channel, 602-First sealing plug, 603-Second sealing plug, 604-Water channel, 605-Water port, 606-Fixed circular plate, 607-Rotating shaft, 608-Groove pulley;
[0045] 700-drive shaft, 701-drive gear, 702-dial, 703-rotating ring plate, 704-transmission ring gear, 705-bevel ring gear. DETAILED DESCRIPTION
[0046] The technical solutions in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, rather than all the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative work are within the scope of protection of the present invention.
[0047] Example 1
[0048] Please refer to the accompanying drawings, the present invention provides a technical solution:
[0049] An energy-saving sterilization device for mineral water production includes a cylindrical sterilization box 300, a filter box 200 mounted on the top of the sterilization box 300, and a cover plate 100 mounted on the top of the filter box 200. A vertical first drain pipe 201 is fixed at the bottom center of the filter box 200, and a vertical second drain pipe 301 is fixed at the bottom center of the sterilization box 300.
[0050] The filter box 200 is provided with a two-stage filter assembly, and the sterilization box 300 is provided with a two-stage sterilization mechanism. The two-stage sterilization mechanism includes a fixed platform 400 fixed in the middle of the inner cavity of the sterilization box 300. The bottom of the fixed platform 400 is provided with an ultraviolet treatment component, and the top is evenly provided with a plurality of fan-shaped mixing grooves 402 along the circumferential direction. The mixing grooves 402 are provided with mixing components. The side walls of the sterilization box 300 are provided with ozone delivery components, and the ozone delivery components are correspondingly connected to the mixing grooves 402.
[0051] A vertical central tube 600 is fixed at the center of the fixing platform 400. The bottom end of the first drain pipe 201 is located at the top of the inner cavity of the central tube 600, and the ultraviolet treatment component is fixed to the bottom end of the central tube 600. A mixing inlet pipe 406 is fixed to the upper part of the end of the mixing tank 402 close to the central tube 600, and a mixing outlet pipe 407 is fixed to the lower part. The mixing inlet pipe 406 and the mixing outlet pipe 407 are both fixedly connected to the central tube 600.
[0052] Sealing assemblies are provided at positions corresponding to the multiple mixing inlet pipes 406 and the mixing outlet pipes 407 in the central tube 600. A driving assembly is connected to one side of the sealing assembly, and the driving assembly is connected to the mixing assembly accordingly. A plurality of water flow slots 601 are evenly arranged at the bottom of the side wall of the central tube 600 along the circumferential direction, and are connected to the ultraviolet treatment assembly through the water flow slots 601.
[0053] When filtering and sterilizing mineral water, the mineral water is transported to the filter box 200 through external conveying pipes and other structures, and is filtered through two-stage filter components to remove solid impurities contained in the water. It then enters the two-stage sterilization treatment mechanism of the sterilization box 300 through the first drain pipe 201 for two-stage sterilization treatment to improve the filtering and sterilization treatment effects.
[0054] When the driving assembly in the sterilization box 300 is in operation, it drives the mixing assemblies in the multiple mixing tanks 402 to move, and at the same time intermittently drives the sealing assembly to move. Each time the sealing assembly moves, the mixing inlet pipe 406 of one mixing tank 402 is connected to the upper part of the central cylinder 600, and the mixing outlet pipe 407 of the mixing tank 402 on the other side is connected to the middle and lower part of the central cylinder 600.
[0055] Therefore, during the intermittent movement of the sealing component, water is sequentially introduced into multiple mixing tanks 402, so that the filtered water is discharged into the corresponding mixing tank 402 through the first drain pipe 201, the central tube 600 and the mixing inlet pipe 406, and the mixing component is driven to move by the driving component. When the ozone delivery component delivers ozone to the corresponding mixing tank 402, the mineral water and ozone are fully stirred and mixed through the mixing component, thereby improving the ozone sterilization effect.
[0056] Multiple mixing tanks 402 are filled with water and discharged in sequence. Therefore, the mixing inlet pipe 406 and the mixing outlet pipe 407 of the same mixing tank 402 will be closed at the same time between the filling and drainage, so that the mineral water can stay in the mixing tank 402 for a period of time and undergo sufficient ozone mixing and sterilization to ensure the sterilization effect.
[0057] While water is being taken into one of the mixing tanks 402, water is drained from the mixing tank 402 on the other side through the action of the sealing assembly, so that the water sterilized by ozone is discharged into the ultraviolet treatment assembly through the mixing outlet pipe 407 and the middle and lower part of the central tube 600, and undergoes secondary sterilization treatment by ultraviolet irradiation. At the same time, ultraviolet irradiation can also accelerate the decomposition of residual ozone in the mineral water.
[0058] The present invention can continuously perform two-stage filtration and ozone and ultraviolet two-stage sterilization treatment on mineral water, thereby improving the treatment effect. Moreover, the mixing tanks 402 at different positions on the fixed platform 400 can simultaneously perform water intake, ozone mixing sterilization and water discharge, thereby improving work efficiency.
[0059] A water level sensor may be provided on the inner wall of each mixing tank 402. When the water level in the mixing tank 402 reaches a set height, the ozone delivery component delivers ozone to the mixing tank 402 for mixing. When the mixing tank 402 is drained and the water level is lower than the set height, the ozone delivery component stops delivering ozone to the mixing tank 402, thereby reducing ozone waste.
[0060] The sealing assembly includes a fixed circular plate 606 fixed to the upper part of the inner cavity of the central tube 600, and a cylindrical first sealing plug 602 is provided at the top of the fixed circular plate 606 corresponding to the position of the multiple mixing inlet pipes 406, and the circumferential side wall of the first sealing plug 602 contacts the inner wall of the central tube 600, and a vertical rotating shaft 607 is fixed at the bottom center of the first sealing plug 602, the rotating shaft 607 is rotatably connected to the fixed circular plate 606, and the bottom end passes through the fixed ring plate, the lower part of the rotating shaft 607 is connected to the driving assembly, and a cylindrical second sealing plug 603 is fixed at the bottom end corresponding to the position of the multiple mixing outlet pipes 407, and the circumferential side wall of the second sealing plug 603 contacts the inner wall of the central tube 600;
[0061] A water inlet 605 is provided at the top center of the first sealing plug 602 and the bottom center of the second sealing plug 603. A water supply channel 604 connected to the water inlet 605 is provided inside the first sealing plug 602 and the second sealing plug 603. The water supply channels 604 in the first sealing plug 602 and the second sealing plug 603 are staggered in the circumferential direction and are respectively connected to the mixing inlet pipe 406 and the mixing outlet pipe 407 at the corresponding positions.
[0062] When the driving assembly drives the rotating shaft 607 to rotate intermittently, each time it rotates, one end of the water supply channel 604 of the first sealing plug 602 is connected to one of the mixing inlet pipes 406, so that the water in the filter box 200 enters the upper part of the central tube 600, enters the water supply channel 604 through the water supply port 605 at the top of the first sealing plug 602, and then enters the corresponding mixing tank 402 along the mixing inlet pipe 406, and water is added to the mixing tank 402 for subsequent ozone delivery and stirring and mixing; at the same time, one end of the water supply channel 604 of the second sealing plug 603 is connected to a mixing outlet pipe 407 on the other side, so that the corresponding mixing tank 402 is drained along the mixing outlet pipe 407 to the central tube 600 and the ultraviolet treatment component.
[0063] Among them, the mixing component includes a stirring shaft 403 rotatably connected to the mixing tank 402, and multiple stirring plates 404 are evenly fixed on the stirring shaft 403. The end of the stirring shaft 403 close to the central tube 600 extends out of the mixing tank 402 and is fixed with a bevel gear 405. The multiple bevel gears 405 are all connected to the driving component accordingly. The driving component drives the multiple bevel gears 405 to rotate, and then the stirring shaft 403 drives the stirring plates 404 to rotate, thereby improving the mixing effect of water and ozone in the mixing tank 402, and thereby improving the sterilization effect of mineral water.
[0064] Among them, the driving assembly includes a motor fixed on the inner wall of the central tube 600, the bottom of the motor is connected to the driving shaft 700, the middle of the driving shaft 700 is fixed with a dial 702, the bottom end is fixed with a driving gear 701, a groove wheel 608 is fixed on the rotating shaft 607, and the groove wheel 608 is correspondingly connected to the dial 702, and a rotating ring plate 703 is rotatably connected to the outer wall of the central tube 600, a bevel gear ring 705 is fixed on the outer wall of the rotating ring plate 703, and multiple bevel gears 405 are all engaged with the bevel gear ring 705, and a transmission gear ring 704 is fixed on the inner side of the rotating ring plate 703. A notch is provided on the side wall of the central tube 600 corresponding to the position of the driving gear 701, and one side of the driving gear 701 has a transmission notch and engages with the transmission gear ring 704.
[0065] When the driving assembly is working, the motor and the driving shaft 700 drive the dial 702 and the driving gear 701 to rotate. The dial 702 and the groove wheel 608 constitute an intermittent mechanism, and drive the rotating shaft 607 and the first sealing plug 602 and the second sealing plug 603 to rotate intermittently, so as to realize the alternating water inflow and outflow of multiple mixing tanks 402; at the same time, the driving gear 701 drives the transmission ring gear 704 and the rotating ring plate 703 to rotate, thereby rotating the bevel ring gear 705, and driving the multiple bevel gears 405 and the stirring shaft 403 to rotate, so as to perform stirring and mixing.
[0066] The first sealing plug 602 and the second sealing plug 603 are both provided with sealing gaskets on the circumferential side walls, and are connected to the inner wall of the central tube 600 through the sealing gaskets. A through hole is provided on the sealing gasket corresponding to the position of the water supply channel 604. The sealing gaskets are used to improve the sealing between the first sealing plug 602, the second sealing plug 603 and the central tube 600, thereby improving the sealing effect.
[0067] Among them, the ultraviolet treatment component includes a circular guide plate 500 fixed to the bottom end of the central tube 600, and a plurality of ultraviolet lamps 401 are evenly fixed along the circumferential direction at the bottom of the fixed platform 400 corresponding to the position of the guide plate 500, and the plurality of ultraviolet lamps 401 are electrically connected to a power supply and a switch. The outer edge of the guide plate 500 is slidably connected to a vertical water retaining ring plate 501, and the upper part of the water retaining ring plate 501 is evenly provided with a plurality of overflow holes 502 along the circumferential direction, and the bottom end of the water retaining ring plate 501 is connected to the bottom surface of the guide plate 500 through a lifting structure.
[0068] After the water in the mixing tank 402 flows onto the guide plate 500 through the central tube 600 and the water flow channel 601, it is distributed along the guide plate 500, so that it is fully irradiated and sterilized by multiple ultraviolet lamps 401, thereby improving the sterilization effect and accelerating the decomposition of residual ozone in the water; when the water on the guide plate 500 accumulates to a certain height, it flows out along the overflow hole 502 so as to be discharged through the second drain pipe 301 at the bottom of the sterilization box 300 for subsequent processing.
[0069] A sealing ring may be provided at the outer edge of the guide plate 500 , and the sealing ring may contact the inner side surface of the water retaining ring plate 501 to improve the sealing performance between the guide plate 500 and the water retaining ring plate 501 .
[0070] Among them, the lifting structure includes a lifting plate 503 fixed to the bottom end of the water retaining ring plate 501, and a fixed base plate 505 is connected to the middle of the bottom of the lifting plate 503 through multiple evenly arranged springs. Multiple vertical guide shafts 504 are evenly fixed on the top of the fixed base plate 505. The top of the guide shaft 504 passes through the lifting plate 503 and is fixedly connected to the bottom surface of the guide plate 500. A first electromagnet 506 is fixed in the middle of the bottom of the lifting plate 503, and a second electromagnet 507 is fixed in the middle of the top surface of the fixed base plate 505, and the first electromagnet 506 and the second electromagnet 507 are electrically connected to a power supply and a switch.
[0071] After the device completes the filtration and sterilization of mineral water, a portion of water will accumulate on the top of the guide plate 500 due to the action of the water retaining ring plate 501. At this time, the first electromagnet 506 and the second electromagnet 507 are energized and attract each other, so that the lifting plate 503 drives the water retaining ring plate 501 to move downward, and the overflow hole 502 moves downward to the side of the guide plate 500 so that the water accumulated on the guide plate 500 can be discharged.
[0072] Example 2
[0073] The structure of this embodiment is basically the same as that of embodiment 1, except that the ozone delivery assembly includes an ozone generator 302 fixed on the outer wall of the sterilization box 300, and the top of the ozone generator 302 is connected to an air inlet pipe 302. The top end of the air inlet pipe 302 is bent and extends into the interior of the sterilization box 300, and is fixed with an annular air pipe 303. The annular air pipe 303 is fixedly connected to the bottom surface of the filter box 200, and two exhaust main pipes 305 are symmetrically fixed on the inner side of the annular air pipe 303 corresponding to the position of each mixing tank 402, and a plurality of vertical exhaust branch pipes 304 are evenly fixed to the bottom of the exhaust main pipe 305. The exhaust branch pipes 304 are close to the inner wall of the mixing tank 402, and the bottom end is close to the bottom of the inner cavity of the mixing tank 402, which is staggered with the position of the mixing assembly.
[0074] After mineral water is added to the mixing tank 402, the ozone gas generated by the ozone generator 302 is transported along the air inlet pipe 302 and the annular air pipe 303, and is transported to the water in the mixing tank 402 through the exhaust main pipe 305 and the exhaust branch pipe 304 at the corresponding position. Under the action of the mixing assembly, the ozone is fully mixed with the mineral water; wherein, a valve can be provided in each exhaust main pipe 305 so that when the mixing tank 402 is drained, the corresponding exhaust main pipe 305 can be closed to avoid ozone waste.
[0075] Example 3
[0076] The structure of this embodiment is basically the same as that of embodiment 1, except that the two-stage filtration assembly includes a vertical water inlet cylinder 101 located at the center of the cover plate 100, a vertical filter screen cylinder 102 is fixed to the bottom end of the water inlet cylinder 101, a horizontal partition 203 is fixed to the lower part of the inner cavity of the filter box 200, the bottom end of the filter screen cylinder 102 is in contact with the top surface of the partition 203, and a plurality of vertical filter elements 205 are evenly arranged on the top surface of the partition 203 along the circumferential direction. The bottom and top ends of the filter elements 205 are respectively connected to the partition 203 and the cover plate 100, a drain outlet 204 is provided at the center of the bottom end of each filter element 205 on the partition 203, and a sewage outlet 202 is provided on the side wall of the filter box 200 at the position corresponding to the partition 203.
[0077] When the device is working, mineral water enters the water inlet cylinder 101, and the bottom end of the filter cylinder 102 is closed by the partition 203, so that the mineral water can be filtered through the filter cylinder 102, and then after secondary filtration through multiple filter elements 205, it enters the lower part of the filter box 200 through the drain port 204, completing the two-stage filtration treatment of the mineral water.
[0078] Example 4
[0079] The structure of this embodiment is basically the same as that of the third embodiment, except that the water inlet cylinder 101 is slidingly connected to the center of the cover plate 100, and the top end extends out of the cover plate 100, and an annular spring plate 103 is fixed on the outer side wall of the extended section, the bottom of the spring plate 103 is connected to the cover plate 100 through a plurality of evenly arranged springs, and a third electromagnet 108 is fixed at the relative position of the spring plate 103 and the cover plate 100, respectively, and the third electromagnet 108 is electrically connected to a power supply and a switch, and a plurality of vertical limit shafts 104 are evenly fixed at the position corresponding to the spring plate 103 on the cover plate 100, and the top end of the limit shaft 104 passes through the spring plate 103.
[0080] When the device is working, the third electromagnet 108 is energized and attracts each other, so that the spring plate 103 drives the water inlet cylinder 101 and the filter screen cylinder 102 to move downward, so that the bottom end of the filter screen cylinder 102 is pressed tightly against the partition 203, and the bottom end of the filter screen cylinder 102 is closed; when the device is not working, the third electromagnet 108 is de-energized, so that the spring plate 103, under the action of the spring, drives the water inlet cylinder 101 and the filter screen cylinder 102 to move upward, so that the filtered impurities fall onto the partition 203, so that they can be discharged through the sewage outlet 202 together with the impurities filtered by the filter element 205.
[0081] Example 5
[0082] The structure of this embodiment is basically the same as that of the third embodiment, except that a backwash ring pipe 106 is fixed to the top of the cover plate 100, a backwash inlet pipe 105 is connected to one side of the backwash ring pipe 106, and a backwash port 107 is provided at the bottom of the backwash ring pipe 106 corresponding to the position of each filter element 205. The bottom end of the backwash port 107 passes through the cover plate 100 and extends into the filter element 205 at the corresponding position. Flushing water is transported to the interior of the multiple filter elements 205 through the backwash inlet pipe 105 and the backwash ring pipe 106 to backwash the filter elements 205, and the sewage impurities on the partition 203 are flushed by the backwash water and discharged through the sewage outlet 202, thereby improving the cleaning effect of the two-stage filter assembly.
[0083] Throughout this specification, references to terms such as "one embodiment," "example," or "specific example" indicate that the specific features, structures, materials, or characteristics described in conjunction with that embodiment or example are included in at least one embodiment or example of the present invention. In this specification, schematic representations of these terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in any one or more embodiments or examples.
[0084] The preferred embodiments of the present invention disclosed above are intended only to help illustrate the present invention. These preferred embodiments do not exhaustively describe all details, nor do they limit the present invention to specific embodiments. Obviously, many modifications and variations are possible based on the contents of this specification. These embodiments are selected and described in detail in this specification to better explain the principles and practical applications of the present invention, thereby enabling those skilled in the art to better understand and utilize the present invention. The present invention is limited only by the claims and their full scope and equivalents.
Claims
1. An energy-saving sterilization device for mineral water production, comprising a cylindrical sterilization box (300), a filter box (200) mounted on the top of the sterilization box (300), and a cover plate (100) mounted on the top of the filter box (200), wherein a vertical first drain pipe (201) is fixed at the center of the bottom of the filter box (200), and a vertical second drain pipe (301) is fixed at the center of the bottom of the sterilization box (300), characterized in that: The filter box (200) is provided with a two-stage filter assembly, and the sterilization box (300) is provided with a two-stage sterilization mechanism, the two-stage sterilization mechanism includes a fixed platform (400) fixed to the middle of the inner cavity of the sterilization box (300), an ultraviolet treatment component is provided at the bottom of the fixed platform (400), and a plurality of fan-shaped mixing grooves (402) are evenly provided along the circumferential direction at the top, and a mixing component is provided in the mixing groove (402), and an ozone delivery component is provided at the side wall of the sterilization box (300), and the ozone delivery component is correspondingly connected to the mixing groove (402); A vertical central tube (600) is fixed at the center of the fixing platform (400), the bottom end of the first drain pipe (201) is located at the top of the inner cavity of the central tube (600), and the ultraviolet treatment component is fixed to the bottom end of the central tube (600), and a mixing inlet pipe (406) is fixed at the upper part of one end of the mixing tank (402) close to the central tube (600), and a mixing outlet pipe (407) is fixed at the lower part, and both the mixing inlet pipe (406) and the mixing outlet pipe (407) are fixedly connected to the central tube (600); Sealing assemblies are provided at positions corresponding to the plurality of mixing inlet pipes (406) and mixing outlet pipes (407) in the central tube (600); a driving assembly is connected to one side of the sealing assembly, and the driving assembly is correspondingly connected to the mixing assembly; a plurality of water notches (601) are uniformly provided on the bottom of the side wall of the central tube (600) along the circumferential direction, and are communicated with the ultraviolet treatment assembly through the water notches (601); The sealing assembly comprises a fixed circular plate (606) fixed to the upper part of the inner cavity of the central tube (600), and a cylindrical first sealing plug (602) is provided at the top of the fixed circular plate (606) corresponding to the position of the multiple mixing inlet pipes (406), a vertical rotating shaft (607) is fixed at the center of the bottom of the first sealing plug (602), the rotating shaft (607) is rotatably connected to the fixed circular plate (606), and the bottom end passes through the fixed ring plate, the lower part of the rotating shaft (607) is correspondingly connected to the driving assembly, and a cylindrical second sealing plug (603) is fixed at the bottom end corresponding to the position of the multiple mixing outlet pipes (407); A water delivery port (605) is provided at the top center of the first sealing plug (602) and the bottom center of the second sealing plug (603). A water delivery channel (604) communicating with the water delivery port (605) is provided inside the first sealing plug (602) and the second sealing plug (603). The water delivery channels (604) in the first sealing plug (602) and the second sealing plug (603) are staggered in the circumferential direction and are respectively communicated with the mixing inlet pipe (406) and the mixing outlet pipe (407) at corresponding positions.
2. The energy-saving sterilization device for mineral water production according to claim 1, characterized in that: The mixing assembly comprises a stirring shaft (403) rotatably connected to the mixing tank (402), a plurality of stirring plates (404) being evenly fixed on the stirring shaft (403), and an end of the stirring shaft (403) close to the central tube (600) extending out of the mixing tank (402) and being fixed with a bevel gear (405), and the plurality of bevel gears (405) are all correspondingly connected to the driving assembly.
3. The energy-saving sterilization device for mineral water production according to claim 1, characterized in that: The driving assembly includes a motor fixed on the inner wall of the central cylinder (600), the bottom of the motor is connected to a driving shaft (700), the middle of the driving shaft (700) is fixed with a dial (702), and the bottom end is fixed with a driving gear (701), a groove wheel (608) is fixed on the rotating shaft (607), and the groove wheel (608) is correspondingly connected to the dial (702), a rotating ring plate (703) is rotatably connected to the outer wall of the central cylinder (600), a bevel gear ring (705) is fixed on the outer wall of the rotating ring plate (703), and a plurality of bevel gears (405) are all meshed with the bevel gear ring (705), a transmission gear ring (704) is fixed on the inner side of the rotating ring plate (703), a notch is provided on the side wall of the central cylinder (600) at a position corresponding to the driving gear (701), and one side of the driving gear (701) transmits the notch and meshes with the transmission gear ring (704).
4. The energy-saving sterilization device for mineral water production according to claim 1, characterized in that: The ultraviolet treatment assembly includes a circular guide plate (500) fixed to the bottom end of the central tube (600), a plurality of ultraviolet lamps (401) are evenly fixed along the circumferential direction at the bottom of the fixed platform (400) corresponding to the position of the guide plate (500), and the plurality of ultraviolet lamps (401) are electrically connected to a power supply and a switch, and a vertical water retaining ring plate (501) is slidably connected to the outer edge of the guide plate (500), a plurality of overflow holes (502) are evenly provided on the upper part of the water retaining ring plate (501) along the circumferential direction, and the bottom end of the water retaining ring plate (501) is connected to the bottom surface of the guide plate (500) through a lifting structure.
5. The energy-saving sterilization device for mineral water production according to claim 4, characterized in that: The lifting structure comprises a lifting plate (503) fixed to the bottom end of the water retaining ring plate (501); a fixed base plate (505) is connected to the middle of the lower portion of the lifting plate (503) via a plurality of evenly arranged springs; a plurality of vertical guide shafts (504) are evenly fixed to the top of the fixed base plate (505); the top ends of the guide shafts (504) pass through the lifting plate (503) and are fixedly connected to the bottom surface of the guide plate (500); a first electromagnet (506) is fixed to the middle of the bottom of the lifting plate (503); a second electromagnet (507) is fixed to the middle of the top surface of the fixed base plate (505); and the first electromagnet (506) and the second electromagnet (507) are electrically connected to a power supply and a switch.
6. The energy-saving sterilization device for mineral water production according to claim 1, characterized in that: The ozone delivery assembly includes an ozone generator (302) fixed on the outer wall of the sterilization box (300), the top of the ozone generator (302) is connected to an air inlet pipe, the top end of the air inlet pipe is bent and extends into the interior of the sterilization box (300), and is fixed with an annular air pipe, the annular air pipe is fixedly connected to the bottom surface of the filter box, and two exhaust main pipes are symmetrically fixed on the inner side of the annular air pipe corresponding to the position of each mixing tank (402), and a plurality of vertical exhaust branch pipes are evenly fixed on the bottom of the exhaust main pipe.
7. The energy-saving sterilization device for mineral water production according to claim 1, characterized in that: The two-stage filter assembly comprises a vertical water inlet cylinder (101) located at the center of the cover plate (100), a vertical filter screen cylinder (102) is fixed at the bottom end of the water inlet cylinder (101), a horizontal partition (203) is fixed at the lower part of the inner cavity of the filter box (200), the bottom end of the filter screen cylinder (102) contacts the top surface of the partition (203), a plurality of vertical filter elements (205) are evenly arranged on the top surface of the partition (203) along the circumferential direction, the bottom end and top end of the filter element (205) are respectively connected to the partition (203) and the cover plate (100), a drain outlet (204) is provided at the center of the bottom end of each filter element (205) on the partition (203), and a sewage outlet (202) is provided on the side wall of the filter box (200) at a position corresponding to the partition (203).
8. The energy-saving sterilization device for mineral water production according to claim 7, characterized in that: The water inlet cylinder (101) is slidably connected to the center of the cover plate (100), and the top end extends out of the cover plate (100), and an annular spring plate (103) is fixed on the outer side wall of the extended section, the bottom of the spring plate (103) is connected to the cover plate (100) through a plurality of evenly arranged springs, and a third electromagnet (108) is fixed at the relative position of the spring plate (103) and the cover plate (100), and the third electromagnet (108) is electrically connected to a power supply and a switch, and a plurality of vertical limiting shafts (104) are evenly fixed at positions corresponding to the spring plates (103) on the cover plate (100), and the top ends of the limiting shafts (104) pass through the spring plate (103).
9. The energy-saving sterilization device for mineral water production according to claim 7, characterized in that: A backwashing ring pipe (106) is fixed on the top of the cover plate (100), one side of the backwashing ring pipe (106) is connected to a backwashing inlet pipe (105), and a backwashing port (107) is provided at the bottom of the backwashing ring pipe (106) at a position corresponding to each filter element (205), and the bottom end of the backwashing port (107) passes through the cover plate (100) and extends into the filter element (205) at the corresponding position.
Citation Information
Patent Citations
Disinfection device for mineral water production
CN215559209U
Sponge city rainwater collecting and recycling equipment
CN118724104A
Ozone mixed sterilization device for mineral water
CN220449959U