Mineral water impurity separator
Through reverse cleaning and multi-filter element design, the mineral water impurity separator solves the problem of cumbersome cleaning and pollution, online cleaning and efficient filtration are achieved, and water quality purity and system stability are ensured.
Patent Information
- Application Number
- CN202510671694.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-05-23
- Publication Date
- 2025-08-01
- Estimated Expiration
- Not applicable · inactive patent
AI Technical Summary
The existing mineral water impurity separator needs to be disassembled during the filter element cleaning process, which can easily damage the filter element or cause pollution, affecting the filtration effect and water quality.
A mineral water impurity separator is designed, using reverse cleaning technology, spraying water flow on the outer surface of the filter element through a spray tube to avoid disassembly, and multiple filter elements are set up to provide redundancy and independent filtration capabilities.
The filter element is cleaned online, avoiding disassembly damage and pollution, maintaining the permeability and water quality purity of the filter element, and improving filtration efficiency and system stability.
Smart Images

Figure CN120393524A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of impurity separators, and particularly to a mineral water impurity separator. Background Art
[0002] Natural mineral water refers to water containing minerals and trace elements obtained from natural underground sources. It is characterized by dissolving a certain amount of minerals such as calcium, magnesium, potassium, etc., and trace elements such as zinc, iron, selenium, etc., making it have high nutritional value and special taste. After being artificially filtered, disinfected and other processes, natural mineral water becomes drinking mineral water for daily consumption. While maintaining the natural mineral components and trace elements in the water, mineral water is usually relatively pure after strict purification and treatment, and can also avoid health problems caused by poor water quality to the human body.
[0003] When purifying natural mineral water, an impurity separator is usually used to remove impurities and unwanted substances in the mineral water. It removes suspended particles, sediment, algae, microorganisms and other impurities in natural mineral water to improve the quality and purity of the water and maintain the safety of the mineral water.
[0004] However, the following problems will occur during the use of the existing impurity separators:
[0005] The main function of the filter element in the impurity separator is to initially filter larger particles and impurities in the water. However, over time, the accumulation of impurities and mineral deposits on the filter element will gradually increase, affecting the filtering effect of the device. If the filter element is not cleaned in time, the water entering the device will be contaminated during filtration, thus affecting the quality of the filtered water. At the same time, excessive impurity deposition will also increase the pressure on the filter element, affecting the normal operation of the device. Therefore, the filter element in the mineral water impurity separator needs to be cleaned regularly. When cleaning the filter element of the existing device, it usually needs to be shut down, the filter element to be cleaned is removed and then cleaned, and after cleaning the impurities and mineral deposits on the filter element, the filter element is reinstalled into the device. This cleaning method makes the cleaning of the filter element more cumbersome, and if the operation is improper, it is easy to cause damage to the filter element or other components of the device, affecting the normal operation of the device.
[0006] In addition, when disassembling and cleaning it, if the cleaning environment is not disinfected properly, the filter element will be contaminated, causing bacteria and other microorganisms to grow on the filter element. When used again, the quality of the water filtered by the device will not meet the standard, affecting the quality of the filtered water.
[0007] Therefore, the present invention proposes a mineral water impurity separator to make up for and improve the deficiencies of the existing technology. Summary of the Invention
[0008] (1) Technical problem to be solved
[0009] In view of the deficiencies of the prior art, the present invention provides a mineral water impurity separator, which solves the problems raised in the above-mentioned background art.
[0010] (2) Technical solution
[0011] To achieve the above object, the present invention is realized through the following technical solutions: a mineral water impurity separator, including a first fixing frame, the upper surface of the first fixing frame is fixedly connected with a housing, the inside of the housing is rotatably connected with a filter block, the inside of the filter block is uniformly provided with filter grooves, the inside of the filter grooves are all inserted with second fixing frames, the outer surfaces of the second fixing frames are all detachably connected with filter elements, the lower surfaces of the second fixing frames are all provided with bases, the upper surfaces of the bases are uniformly fixedly connected with first clamping blocks, the bases are clamped with the second fixing frames through the first clamping blocks, the inside of the bases and at the center of the bases are all slidably connected with pushing blocks, the lower surface of the housing is communicated with a first water outlet pipe, the first water outlet pipe is communicated with the filter grooves, the end of the first water outlet pipe away from the housing is communicated with an auxiliary pipe, the outer surface of the auxiliary pipe is communicated with a conveying pipe, the upper surfaces of the second fixing frames are all provided with water inlets through holes, the inside of the second fixing frames are slidably connected with pressing blocks, the pressing blocks are distributed in a circumferential array with reference to the center point of the water inlet through holes opened on the upper surfaces of the second fixing frames, both ends of the pressing blocks extend to the outside of the second fixing frames, the end of the pressing block extending below the second fixing frame is fixedly connected with a first baffle, the outer surface of the pressing block is fixedly connected with a first spring, and the lower end of the first spring is fixedly connected with the second fixing frame.
[0012] Preferably, the lower surface of the housing is rotatably connected with a first rotating shaft, the top end of the first rotating shaft penetrates through the housing and extends into the housing, and the end of the first rotating shaft extending into the housing is fixedly connected with the filter block, the outer surface of the first rotating shaft is uniformly provided with arc-shaped grooves, the upper surface of the first fixing frame is rotatably connected with a second rotating shaft, the outer surface of the second rotating shaft is fixedly connected with a first shifting plate, and the first shifting plate can be slidably connected inside the arc-shaped grooves.
[0013] Preferably, the outer surface of the second rotating shaft is fixedly connected with a second shifting plate and a third shifting plate respectively, the second shifting plate and the first shifting plate are located in the same horizontal section plane, the lower surface of the housing is fixedly connected with a third fixing frame, the third fixing frame is fixedly connected with the first fixing frame, a first rotating plate is rotatably connected to one side of the third fixing frame close to the second rotating shaft, a top column is slidably connected to one side of the third fixing frame close to the second rotating shaft, a first clamping groove is opened on the outer surface of the top column and close to the first rotating plate, an auxiliary rod is fixedly connected to the outer surface of the top column and close to the first rotating plate, the auxiliary rod and the second shifting plate are located in the same vertical section plane, the end of the top column away from the housing is fixedly connected with a second spring, and the lower end of the second spring is fixedly connected with the third fixing frame.
[0014] Preferably, auxiliary blocks are fixedly connected to the inner walls of the filtering tank. Circular grooves are evenly formed in the auxiliary blocks. Spring three is fixedly connected to the inside of each circular groove. One end of spring three close to the center line of the filtering tank is fixedly connected to a second clamping block. Clamping grooves two are evenly formed in the outer surface of the base. The second clamping block can be clamped inside the clamping groove two.
[0015] Preferably, both the auxiliary block and the base are arranged in a frustum shape with a high middle and a low periphery.
[0016] Preferably, a water storage tank is fixedly connected to the upper surface of the housing and above the third fixing frame. A water inlet pipe is communicated with the outer surface of the water storage tank. A cleaning tank is formed in the lower surface of the water storage tank. A spraying pipe is fixedly connected to the inner wall of the cleaning tank. The spraying pipes are distributed in a ring shape. Connecting pipes are evenly communicated with the upper surface of the spraying pipe. One end of each connecting pipe far away from the spraying pipe is communicated with the water storage tank. Spraying holes are evenly formed in the outer surface of the spraying pipe.
[0017] Preferably, the spraying holes are formed at different inclination angles.
[0018] Preferably, a second baffle is slidably connected to the inside of each connecting pipe at the position communicated with the water storage tank. The diameter of the second baffle is the same as the inner diameter of the connecting pipe. A connecting rod is fixedly connected to the upper surface of each second baffle. One end of the connecting rod far away from the second baffle penetrates through the water storage tank and extends into the cleaning tank.
[0019] Preferably, a second water outlet pipe is communicated with the outer surface of the housing and below the water storage tank. The second water outlet pipe penetrates through the filtering block and is communicated with the filtering tank.
[0020] (III) Beneficial effects
[0021] The mineral water impurity separator provided by the present invention has the following beneficial effects:
[0022] 1. By arranging the spraying pipes on the inner wall of the cleaning tank, during use, the water inside the spraying pipes is sprayed onto the outer surface of the filter element through the spraying holes, and the filter element is periodically cleaned in the reverse direction. The impurities, particles and dirt intercepted inside the filter element are removed through the reverse water flow, the accumulations and particles on the filter element are removed, the blockage of the filter element is prevented, and the filter element is kept with good permeability and flow rate. Compared with the cleaning in the normal water flow direction, the reverse cleaning flushes the water from the outside of the filter element to the inside of the filter element in the reverse direction, which can more conveniently wash away the impurities, particles and dirt intercepted by the filter element completely from the filter element. At the same time, the damage of the filter element caused by disassembly and cleaning and the pollution of the filter element are avoided, so as to prevent bacteria and other microorganisms from breeding on the filter element and ensure the quality of the filtered water.
[0023] 2. When in use, the filter elements provided in multiple filter tanks can each independently filter impurities and particulate matters in water, increasing the filtration area so that more water can be processed simultaneously. Moreover, the simultaneous operation of multiple filter elements can provide redundancy, that is, when one filter element fails or needs to be cleaned and maintained, the other filter elements can still continue to operate, ensuring the stability and reliability of the system.
[0024] 3. By providing a baffle 1 at the water inlet of the second fixing frame, when the water to be filtered is not injected into the filter element, the baffle 1 blocks the water inlet of the second fixing frame, preventing external impurities such as dust, dirt, foreign objects, etc. from entering the interior of the equipment, breeding bacteria on the surface of the filter element, and generating odors inside the equipment. It also avoids the influence of impurities on the filtration effect of the filter element after entering the filter element, reduces the possibility of the filter element being contaminated, extends the service life of the filter element, and ensures the purity of the filtered water. BRIEF DESCRIPTION OF THE DRAWINGS
[0025] Figure 1 It is a schematic diagram of the main structure of the present invention;
[0026] Figure 2 It is a schematic diagram of the sectional structure of the main body of the present invention;
[0027] Figure 3 For the present invention Figure 2 An enlarged schematic diagram of A in it;
[0028] Figure 4 For the present invention Figure 2 An enlarged schematic diagram of B in it;
[0029] Figure 5 It is a schematic diagram of the partial sectional structure of the filter tank of the present invention;
[0030] Figure 6 It is a schematic diagram of the sectional structure of the filter tank and the cleaning tank of the present invention;
[0031] Figure 7 For the present invention Figure 6 An enlarged schematic diagram of C in it;
[0032] Figure 8 For the present invention Figure 6 An enlarged schematic diagram of D in it;
[0033] Figure 9 It is a schematic diagram of the partial sectional structure of the filter tank and the cleaning tank of the present invention;
[0034] Figure 10 For the present invention Figure 9 An enlarged schematic diagram of E in it.
[0035] The reference numerals in the drawings respectively represent:
[0036] 1. Fixing frame 1; 2. Housing; 3. Filter block; 4. Filter slot; 5. Fixing frame 2; 6. Filter element; 7. Base; 8. Clamping block 1; 9. Thrust block; 10. Outlet pipe 1; 11. Auxiliary pipe; 12. Delivery pipe; 13. Pressing block; 14. Baffle plate 1; 15. Spring 1; 16. Rotating shaft 1; 17. Arc-shaped groove; 18. Rotating shaft 2; 19. Dial plate 1; 20. Dial plate 2; 21. Dial plate 3; 22. Fixing frame 3; 23. Rotating plate 1; 24. Thrust column; 25. Clamping slot 1; 26. Auxiliary rod; 27. Spring 2; 28. Auxiliary block; 29. Circular groove; 30. Spring 3; 31. Clamping block 2; 32. Clamping slot 2; 33. Water storage tank; 34. Inlet pipe; 35. Cleaning tank; 36. Spraying pipe; 37. Connecting pipe; 38. Spraying hole; 39. Baffle plate 2; 40. Connecting rod; 41. Outlet pipe 2. Detailed implementation
[0037] Next, the technical solutions in the embodiments of the present invention will be clearly and completely described in conjunction with the accompanying drawings in the embodiments of the present invention. Obviously, the described embodiments are only a 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 those of ordinary skill in the art without creative work belong to the protection scope of the present invention.
[0038] Refer to Figures 1 to 10 , a mineral water impurity separator according to a preferred embodiment of the present invention will be elaborated in detail below. A mineral water impurity separator includes a fixing frame 1. The upper surface of the fixing frame 1 is fixedly connected with a housing 2. The inside of the housing 2 is rotatably connected with a filter block 3. The inside of the filter block 3 is evenly provided with filter slots 4. The inside of the filter slots 4 are all inserted with a fixing frame 2. The outer surface of the fixing frame 2 is detachably connected with a filter element 6. When in use, except for the filter element 6 directly below the cleaning tank 35, the remaining filter elements 6 can filter water simultaneously, increasing the filtering area, enabling it to process more water at the same time, increasing the processing capacity of the separator, improving the efficiency of water treatment, and the simultaneous operation of multiple filter elements 6 can provide redundancy, that is, when one filter element 6 fails, the other filter elements 6 can still continue to operate, ensuring the stability and reliability of the system;
[0039] The lower surfaces of the second fixing frames 5 are both provided with bases 7. The upper surfaces of the bases 7 are evenly and fixedly connected with first clamping blocks 8. The bases 7 are clamped to the second fixing frames 5 through the first clamping blocks 8. Inside the bases 7 and at the centers of the bases 7, there are slidingly connected pushing blocks 9. The lower surface of the housing 2 is communicated with a first water outlet pipe 10. The first water outlet pipe 10 is communicated with the filtering tank 4. There are three first water outlet pipes 10, and all of them are communicated with the filtering tank 4 above the first water outlet pipe 10. One end of the first water outlet pipe 10 away from the housing 2 is communicated with an auxiliary pipe 11. The outer surface of the auxiliary pipe 11 is communicated with a conveying pipe 12. Water inlets are respectively formed through the upper surfaces of the second fixing frames 5. Inside the second fixing frames 5, there are slidingly connected pressing blocks 13. The pressing blocks 13 are distributed in a circular array with reference to the center points of the water inlets formed through the upper surfaces of the second fixing frames 5. Both ends of the pressing blocks 13 extend outside the second fixing frames 5. One end of the pressing block 13 extending below the second fixing frame 5 is fixedly connected with a first baffle 14. The outer surface of the pressing block 13 is fixedly connected with a first spring 15. The lower end of the first spring 15 is fixedly connected with the second fixing frame 5.
[0040] The lower surface of the housing 2 is rotatably connected with a first rotating shaft 16. The top end of the first rotating shaft 16 penetrates through the housing 2 and extends into the housing 2. And one end of the first rotating shaft 16 extending into the housing 2 is fixedly connected with the filtering block 3. The outer surface of the first rotating shaft 16 is evenly provided with arc-shaped grooves 17. The total arc length of a single arc-shaped groove 17 is one-fourth of the first rotating shaft 16. The first shifting plate 19 on the surface of the second rotating shaft 18 drives the first rotating shaft 16 to rotate 90 degrees each time through the arc-shaped groove 17. The upper surface of the first fixing frame 1 is rotatably connected with a second rotating shaft 18. The second rotating shaft 18 is fixedly connected with the output shaft of the motor. The outer surface of the second rotating shaft 18 is fixedly connected with the first shifting plate 19. The first shifting plate 19 can be slidingly connected inside the arc-shaped groove 17.
[0041] The outer surface of the second rotating shaft 18 is respectively fixedly connected with a second shifting plate 20 and a third shifting plate 21. The second shifting plate 20 and the first shifting plate 19 are located in the same horizontal section plane. The lower surface of the housing 2 is fixedly connected with a third fixing frame 22. The third fixing frame 22 is fixedly connected with the first fixing frame 1. One side of the third fixing frame 22 close to the second rotating shaft 18 is rotatably connected with a first rotating plate 23. A torsion spring is arranged at the connection of the first rotating plate 23 and the third fixing frame 22. The torsion spring drives the first rotating plate 23 to rotate towards the direction close to the third fixing frame 22. One side of the third fixing frame 22 close to the second rotating shaft 18 is slidingly connected with a top column 24. A first clamping groove 25 is formed on the outer surface of the top column 24 and on the side close to the first rotating plate 23. An auxiliary rod 26 is fixedly connected to the outer surface of the top column 24 and on the side close to the first rotating plate 23. The auxiliary rod 26 and the second shifting plate 20 are located in the same vertical section plane. One end of the top column 24 away from the housing 2 is fixedly connected with a second spring 27. The lower end of the second spring 27 is fixedly connected with the third fixing frame 22.
[0042] The inner walls of the filter tank 4 are fixedly connected with auxiliary blocks 28. Circular grooves 29 are evenly formed inside the auxiliary blocks 28. Spring threes 30 are fixedly connected inside the circular grooves 29. One ends of the spring threes 30 close to the center line of the filter tank 4 are fixedly connected with second clamping blocks 31. Second clamping grooves 32 are evenly formed on the outer surface of the base 7. The second clamping blocks 31 can be clamped inside the second clamping grooves 32.
[0043] Both the auxiliary blocks 28 and the base 7 are arranged in a frustum shape with a higher middle part and lower surrounding parts, which is convenient for the water flushing the filter element 6 and the impurities, particulate matters and dirt flushed out inside the filter element 6 to flow from the upper surface of the base 7 to above the auxiliary blocks 28, and then flow to the outside of the housing 2 through the second water outlet pipe 41.
[0044] A water storage tank 33 is fixedly connected above the fixing frame three 22 on the upper surface of the housing 2. A water inlet pipe 34 is communicated with the outer surface of the water storage tank 33. Under the action of a water pump, the water used for cleaning the filter element 6 is conveyed into the water storage tank 33 through the water inlet pipe 34. A cleaning tank 35 is formed on the lower surface of the water storage tank 33. The first water outlet pipe 10 is not arranged at the bottom of the housing 2 below the cleaning tank 35 to prevent the water for cleaning the filter element 6 from flowing into the auxiliary pipe 11 through the first water outlet pipe 10. A spraying pipe 36 is fixedly connected to the inner wall of the cleaning tank 35. The spraying pipe 36 is distributed in a ring shape. Connecting pipes 37 are evenly communicated with the upper surface of the spraying pipe 36. One ends of the connecting pipes 37 far away from the spraying pipe 36 are all communicated with the water storage tank 33. Spraying holes 38 are evenly formed on the outer surface of the spraying pipe 36.
[0045] The spraying holes 38 are formed at different inclined angles to flush and clean the filter element 6 at different angles.
[0046] Second baffles 39 are slidably connected to the connecting pipes 37 at the positions communicated with the water storage tank 33. The diameters of the second baffles 39 are the same as the inner diameters of the connecting pipes 37. Connecting rods 40 are fixedly connected to the upper surfaces of the second baffles 39. One ends of the connecting rods 40 far away from the second baffles 39 penetrate through the water storage tank 33 and extend into the cleaning tank 35.
[0047] A second water outlet pipe 41 is communicated with the outer surface of the housing 2 below the water storage tank 33. The second water outlet pipe 41 penetrates through the filter block 3 and is communicated with the filter tank 4.
[0048] The following is the entire working process and working principle of the above embodiment:
[0049] During use, first, the user injects the water to be filtered into the interior of the second fixing frame 5 through the water inlet formed on the upper surface of the second fixing frame 5. When injecting the water into the interior of the second fixing frame 5 through the water inlet on the surface of the second fixing frame 5, the user needs to press down the pressing block 13. When the pressing block 13 is pressed down, the first spring 15 is compressed, driving the first baffle 14 fixedly connected to the pressing block 13 below to move downward. After the first baffle 14 moves downward, it no longer blocks the water inlet of the second fixing frame 5. At this time, the water to be filtered can be injected into the interior of the second fixing frame 5 through the water inlet. After the water injection is completed, the user no longer presses down the pressing block 13, and the first spring 15 is no longer compressed. The resilience of the first spring 15 drives the pressing block 13 to move upward. After the pressing block 13 moves upward, it drives the first baffle 14 fixedly connected to the pressing block 13 below to move upward. After the first baffle 14 moves upward, it blocks the water inlet of the second fixing frame 5, preventing external impurities such as dust, dirt, foreign objects, etc. from entering the interior of the device and breeding bacteria on the surface of the filter element 6, as well as the generation of peculiar smell inside the device, avoiding the influence of impurities on the filtering effect of the filter element 6 after entering the filter element 6, reducing the possibility of the filter element 6 being contaminated, extending the service life of the filter element 6, and ensuring the purity of the filtered water.
[0050] Next, after injecting the water to be filtered into the interior of the second fixing frame 5, the filter element 6 provided on the outer surface of the second fixing frame 5 filters out the particulate matters and impurities in the water to be filtered. The water filtered by the filter element 6 flows into the auxiliary pipe 11 through the first water outlet pipe 10 communicated with the filtering tank 4, and then flows to the next water treatment area through the conveying pipe 12 communicated with the auxiliary pipe 11 for disinfection and other operations.
[0051] Secondly, after the filter element 6 has been used for a period of time, the user turns on the switch of the motor. The output shaft end of the motor drives the second rotating shaft 18 fixedly connected thereto to rotate clockwise. When the second rotating shaft 18 rotates, it drives the first dial 19 fixedly connected to its surface to rotate. When the first dial 19 rotates to the arc-shaped groove 17 formed on the surface of the first rotating shaft 16, the first dial 19 drives the first rotating shaft 16 to rotate through the arc-shaped groove 17. When the first rotating shaft 16 rotates, it drives the filter block 3 fixedly connected to the first rotating shaft 16 to rotate. When the filter block 3 rotates, it drives the second fixing frame 5 located inside the filtering tank 4 to rotate through the filtering tank 4 formed inside the filter block 3. At this time, the second fixing frame 5 located near the cleaning tank 35 rotates to directly below the cleaning tank 35. When the second fixing frame 5 rotates, it drives the filter element 6 provided on the outer surface of the second fixing frame 5 and the base 7 clamped to the second fixing frame 5 through the first clamping block 8 to rotate;
[0052] When the second rotating shaft 18 continues to rotate later, the second rotating shaft 18 drives the third dial 21 fixedly connected to its surface to rotate. When the third dial 21 rotates, it drives the first rotating plate 23 to rotate counterclockwise with the connection point between the first rotating plate 23 and the third fixing frame 22 as the axis. After the first rotating plate 23 rotates, the first rotating plate 23 no longer engages with the first card slot 25 formed on the surface of the ejector pin 24. At this time, the second spring 27 below the ejector pin 24 drives the ejector pin 24 to move upward. When the ejector pin 24 moves upward, it pushes the base 7 directly below the cleaning tank 35 upward. When the base 7 moves upward, it drives the second fixing frame 5 and the filter element 6 above the base 7 to move upward. When the base 7 moves upward to the auxiliary block 28, the second latch 31 fixedly connected to the third spring 30 inside the auxiliary block 28 engages with the second card slot 32 formed on the surface of the base 7. At this time, the ejector pin 24 drives the second fixing frame 5 to continue moving upward through the push block 9, creating a gap between the lower edge of the second fixing frame 5 and the upper surface of the base 7. This allows the water flushing the filter element 6, as well as the impurities, particulate matters, and dirt flushed out inside the filter element 6, to flow from the upper surface of the base 7 to above the auxiliary block 28 and then flow out of the housing 2 through the second water outlet pipe 41;
[0053] When the second fixing frame 5 moves upward to the position where the connecting rod 40 extends into the cleaning tank 35, the top of the second fixing frame 5 pushes the connecting rod 40 upward. After the connecting rod 40 moves upward, it drives the second baffle 39 fixedly connected to the connecting rod 40 to move upward. After the second baffle 39 moves upward, it no longer blocks the connecting pipe 37. At this time, the water inside the water storage tank 33 can flow into the spraying pipe 36 through the connecting pipe 37 and then be sprayed onto the outer surface of the filter element 6 through the spraying holes 38 formed on the surface of the spraying pipe 36. The water inside the spraying pipe 36 flushes from the outside of the filter element 6 to the inside of the filter element 6, washing away the impurities, particulate matters, and dirt intercepted inside the filter element 6. By using reverse water flow to remove the impurities, particulate matters, and dirt intercepted inside the filter element 6, the accumulations and particulate matters on the filter element 6 are removed, preventing the filter element 6 from being blocked, maintaining good permeability and flow rate of the filter element 6, improving the filtering effect and water quality purity of the mineral water separator. Compared with cleaning in the normal water flow direction, reverse cleaning flushes the water from the outside of the filter element 6 to the inside of the filter element 6, which can more conveniently wash away all the impurities, particulate matters, and dirt intercepted by the filter element 6. At the same time, it avoids damage to the filter element 6 and contamination of the filter element 6 caused by disassembly and cleaning, preventing bacteria and other microorganisms from growing on the filter element 6 and ensuring the quality of the filtered water.
[0054] Finally, when the cleaning of the filter element 6 is completed, when the second rotating shaft 18 continues to drive the second dial plate 20 fixedly connected to its surface to rotate to the auxiliary rod 26, the second rotating shaft 18 rotating clockwise presses the auxiliary rod 26 downward through the second dial plate 20. When the auxiliary rod 26 moves downward, it drives the ejector pin 24 fixedly connected to the auxiliary rod 26 to move downward, and the second spring 27 fixedly connected to the ejector pin 24 is compressed. When the ejector pin 24 moves downward, it drives the first clamping groove 25 formed on its surface to move downward. When the ejector pin 24 drives the first clamping groove 25 to move to the first rotating plate 23, since a torsion spring is provided at the connection between the first rotating plate 23 and the third fixing frame 22, the first rotating plate 23 is again clamped into the first clamping groove 25 to restrict the upward movement of the ejector pin 24. At the same time, after the ejector pin 24 moves downward, the base 7 no longer receives an upward pushing force, and the second fixing frame 5 and the filter element 6 move downward by pressing the base 7 under the action of gravity. After that, the first dial plate 19 fixedly connected to the surface of the second rotating shaft 18 drives the first rotating shaft 16 to rotate again through the arc-shaped groove 17. The first rotating shaft 16 drives the filter block 3 fixedly connected thereto to drive the filter groove 4 to rotate. When the filter groove 4 rotates, it drives the cleaned filter element 6 inside the filter groove 4 directly below the cleaning tank 35 to rotate. After the cleaned filter element 6 rotates, it can filter the water to be filtered smoothly again, ensuring the purity of the filtered water.
[0055] Although the embodiments of the present invention have been shown and described, it will be understood by those of ordinary skill in the art that various changes, modifications, substitutions and variations can be made in these embodiments without departing from the principles and spirit of the present invention. The scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. A mineral water impurity separator, comprising a first fixing frame (1), wherein the upper surface of the first fixing frame (1) is fixedly connected with a housing (2), a filter block (3) is rotatably connected inside the housing (2), filter grooves (4) are evenly formed inside the filter block (3), second fixing frames (5) are inserted into the filter grooves (4), filter elements (6) are detachably connected to the outer surfaces of the second fixing frames (5), bases (7) are arranged on the lower surfaces of the second fixing frames (5), first clamping blocks (8) are evenly fixedly connected to the upper surfaces of the bases (7), the bases (7) are clamped with the second fixing frames (5) through the first clamping blocks (8), push blocks (9) are slidably connected inside the bases (7) and located at the centers of the bases (7), a first water outlet pipe (10) is communicated with the lower surface of the housing (2), the first water outlet pipe (10) is communicated with the filter grooves (4), one end of the first water outlet pipe (10) far from the housing (2) is communicated with an auxiliary pipe (11), and a conveying pipe (12) is communicated with the outer surface of the auxiliary pipe (11), characterized in that, The upper surfaces of the second fixing frames (5) are all penetrated with water inlets. A pressing block (13) is slidably connected inside the second fixing frames (5). The pressing blocks (13) are distributed in a circumferential array with reference to the center point of the water inlets penetrated through the upper surfaces of the second fixing frames (5). Both ends of the pressing block (13) extend to the outside of the second fixing frames (5). One end of the pressing block (13) extending below the second fixing frames (5) is fixedly connected with a first baffle (14). A first spring (15) is fixedly connected to the outer surface of the pressing block (13). The lower end of the first spring (15) is fixedly connected with the second fixing frames (5).
2. The mineral water impurity separator according to claim 1, wherein: A first rotating shaft (16) is rotatably connected to the lower surface of the housing (2). The top end of the first rotating shaft (16) penetrates through the housing (2) and extends into the housing (2). One end of the first rotating shaft (16) extending into the housing (2) is fixedly connected with a filter block (3). Arc-shaped grooves (17) are evenly formed on the outer surface of the first rotating shaft (16). A second rotating shaft (18) is rotatably connected to the upper surface of the first fixing frame (1). A first dial (19) is fixedly connected to the outer surface of the second rotating shaft (18). The first dial (19) can be slidably connected inside the arc-shaped grooves (17).
3. The mineral water impurity separator according to claim 2, characterized in that: A second dial (20) and a third dial (21) are respectively fixedly connected to the outer surface of the second rotating shaft (18). The second dial (20) and the first dial (19) are located in the same horizontal section. A third fixing frame (22) is fixedly connected to the lower surface of the housing (2). The third fixing frame (22) is fixedly connected with the first fixing frame (1). A first rotating plate (23) is rotatably connected to one side of the third fixing frame (22) close to the second rotating shaft (18). A top column (24) is slidably connected to one side of the third fixing frame (22) close to the second rotating shaft (18). A first clamping groove (25) is formed on the outer surface of the top column (24) and close to the first rotating plate (23). An auxiliary rod (26) is fixedly connected to the outer surface of the top column (24) and close to the first rotating plate (23). The auxiliary rod (26) and the second dial (20) are located in the same vertical section. One end of the top column (24) away from the housing (2) is fixedly connected with a second spring (27). The lower end of the second spring (27) is fixedly connected with the third fixing frame (22).
4. A mineral water impurity separator according to claim 1, characterized in that: Auxiliary blocks (28) are fixedly connected to the inner walls of the filter grooves (4). Circular grooves (29) are evenly formed inside the auxiliary blocks (28). Third springs (30) are fixedly connected to the inside of the circular grooves (29). Second clamping blocks (31) are fixedly connected to one ends of the third springs (30) close to the center line of the filter grooves (4). Second clamping grooves (32) are evenly formed on the outer surface of the base (7). The second clamping blocks (31) can be clamped inside the second clamping grooves (32).
5. The mineral water impurity separator according to claim 4, characterized in that: Both the auxiliary blocks (28) and the base (7) are arranged in a frustum shape with a high middle and a low periphery.
6. The mineral water impurity separator according to claim 3, wherein: On the upper surface of the housing (2) and above the third fixing bracket (22), a water storage tank (33) is fixedly connected. A water inlet pipe (34) is communicated with the outer surface of the water storage tank (33). A cleaning groove (35) is formed in the lower surface of the water storage tank (33). A spraying pipe (36) is fixedly connected to the inner wall of the cleaning groove (35). The spraying pipe (36) is distributed in a ring shape. Connecting pipes (37) are uniformly communicated with the upper surface of the spraying pipe (36). One ends of the connecting pipes (37) far away from the spraying pipe (36) are all communicated with the water storage tank (33). Spraying holes (38) are uniformly formed in the outer surface of the spraying pipe (36).
7. A mineral water impurity separator according to claim 6, characterized in that: The spraying holes (38) are formed at different inclination angles.
8. A mineral water impurity separator according to claim 6, characterized in that: Slidingly connected to the inside of the connecting pipes (37) and communicated with the water storage tank (33) are second baffles (39). The diameter of the second baffles (39) is the same as the inner diameter of the connecting pipes (37). Fixedly connected to the upper surfaces of the second baffles (39) are connecting rods (40). One ends of the connecting rods (40) far away from the second baffles (39) penetrate through the water storage tank (33) and extend into the cleaning groove (35).
9. A mineral water impurity separator according to claim 6, characterized in that: Communicated with the outer surface of the housing (2) and below the water storage tank (33) is a second outlet pipe (41). The second outlet pipe (41) penetrates through the filter block (3) and is communicated with the filter groove (4).