An electrolytic micro-nano bubble pre-filtering system based on water quality parameter regulation

Hypochlorous acid is generated through the electrolytic micro-nano bubble pre-filtration system for tap water disinfection, which solves the problem of ineffective killing bacteria and viruses in the prior art, ensures water quality safety and extends the life of the equipment.

CN119490254BActive Publication Date: 2025-07-04ZHEJIANG JUBEI TECH GRP SHARE CO LTD
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Patent Information

Application Number
CN202411717504.5
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2024-11-27
Publication Date
2025-07-04
Estimated Expiration
2044-11-27

AI Technical Summary

Technical Problem

The existing pre-filtration system cannot effectively kill bacteria and viruses in tap water, resulting in secondary contamination of water quality.

Method used

The electrolytic micro-nano bubble pre-filtration system based on water quality parameters is adopted. The electrolytic component produces chlorine and reacts with tap water to form hypochlorous acid for disinfection and sterilization, and the filter component is combined with the filter component to remove impurities.

Benefits of technology

Effective disinfection and sterilization of tap water is achieved, water quality is safe, and the service life of subsequent water purification equipment is extended.

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Abstract

The present invention relates to the field of filtration, and provides an electrolytic micro-nano bubble pre-filtration system based on water quality parameter regulation, which includes a device body. A water inlet pipe and a water outlet pipe are fixedly connected to the device body. A purification chamber and a treatment chamber are formed in the device body, and a filtration component is arranged in the purification chamber; an electrolysis component is arranged in the treatment chamber. The electrolysis component includes a toothed anode rod, a toothed cathode rod, an electrolysis box, an electric controller, a first conductive sheet, a first elastic member, a second conductive sheet, and a second elastic member. The electric controller and the electrolysis box are both fixedly connected to the inner wall of the treatment chamber. A power supply is arranged in the electric controller. The first conductive sheet and the second conductive sheet are both rotatably connected to the electric controller. The first conductive sheet is connected to the electric controller through the first elastic member. The electrolysis chamber is filled with an electrolyte. The present invention can generate chlorine gas by electrolyzing the electrolyte, so that tap water in the purification chamber combines with chlorine gas to generate hypochlorous acid, effectively disinfecting and sterilizing the tap water.
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Description

Technical Field

[0001] The present invention relates to the technical field of filtration, and particularly to an electrolytic micro-nano bubble pre-filtering system based on water quality parameter regulation. Background Art

[0002] Although tap water has been strictly treated and purified at the factory, it may be secondarily polluted for various reasons during the process of reaching users' homes, such as pipeline aging, water tank pollution, heavy metal pollution, etc. Therefore, it is necessary to further purify it with the help of a filtration system before use.

[0003] A pre-filtering system is a filtering device installed at the front end of a household water pipeline, mainly used to remove impurities in water, protect the safety of household water use, and extend the service life of subsequent water purification devices.

[0004] The current pre-filtering system only uses simple means such as a filter screen for filtration and cannot effectively kill bacteria and viruses in tap water. Summary of the Invention

[0005] In view of the above technical problems, the present invention aims to provide an electrolytic micro-nano bubble pre-filtering system based on water quality parameter regulation. To solve the above technical problems, the present invention adopts the following technical solutions to achieve:

[0006] An electrolytic micro-nano bubble pre-filtering system based on water quality parameter regulation, comprising a device body, an inlet pipe and an outlet pipe are fixedly connected to the device body, a purification chamber and a treatment chamber are provided in the device body, and a filtering component is provided in the purification chamber;

[0007] A electrolytic component is provided in the treatment chamber, and the electrolytic component includes a toothed anode rod, a toothed cathode rod, an electrolytic tank, an electronic controller, a first conductive sheet, a first elastic member, a second conductive sheet and a second elastic member.

[0008] The electronic controller and the electrolytic tank are both fixedly connected to the inner wall of the treatment chamber. A power supply is provided in the electronic controller. The first conductive sheet and the second conductive sheet are both rotatably connected to the electronic controller. The first conductive sheet is connected to the electronic controller through the first elastic member, and the second conductive sheet is connected to the electronic controller through the second elastic member. The first conductive sheet abuts against the toothed anode rod, and the second conductive sheet abuts against the toothed cathode rod. An electrolytic chamber is provided on the electrolytic tank, and the electrolytic chamber is filled with an electrolytic solution. A gas baffle is fixedly connected to the top wall of the electrolytic chamber. The top wall of the electrolytic chamber is communicated with the top wall of the electrolytic tank through a third channel and a fourth channel. The toothed anode rod is slidably connected to the inner wall of the fourth channel, and the lower end of the toothed anode rod extends into the electrolytic solution. The toothed cathode rod is slidably connected to the inner wall of the third channel, and the lower end of the toothed cathode rod extends into the electrolytic solution. The top wall of the electrolytic chamber is connected to a gas collection box through a first air pipe, the gas collection box is installed in the device body, and the top wall of the electrolytic chamber is connected to the purification chamber through a second air pipe.

[0009] Further, a first wedge-shaped block is fixedly connected to the toothed anode rod, a second permanent magnet is embedded in the toothed cathode rod, the top wall of the treatment chamber is communicated with the top wall of the device body through a first channel and a second channel, the upper end of the toothed anode rod is fixedly connected with a first insulating rod, the first insulating rod is slidably connected to the inner wall of the first channel, the upper end of the toothed cathode rod is fixedly connected with a second insulating rod, the second insulating rod is slidably connected to the inner wall of the second channel, and the upper ends of the first insulating rod and the second insulating rod both extend above the device body;

[0010] The inner wall of the treatment chamber is fixedly connected with a mounting piece and a limiting strip. The mounting piece is connected to the gear seat through a third elastic member. The gear seat is slidably connected to the inner wall of the treatment chamber. A first permanent magnet is embedded in the gear seat. A transmission gear is rotatably connected to the gear seat. The bottom wall of the electrolysis chamber is communicated with the bottom wall of the electrolysis tank through a fifth channel. A first partition plate is slidably connected to the bottom wall of the electrolysis tank. A first through hole is opened on the first partition plate. A connecting rod is fixedly connected to the first partition plate. A rack is fixedly connected to the connecting rod. The rack is engaged with the transmission gear.

[0011] The inner wall of the treatment chamber is fixedly connected with an acid storage tank. An acid storage cavity is opened on the acid storage tank. A scale removal liquid is filled in the acid storage cavity. The bottom wall of the acid storage cavity is communicated with the bottom wall of the acid storage tank through a sixth channel. A second partition plate is slidably connected to the bottom wall of the acid storage tank. A second through hole is opened on the second partition plate. An L-shaped rod is fixedly connected to the second partition plate. A second wedge-shaped block is fixedly connected to the L-shaped rod. The L-shaped rod is slidably connected to the top wall of the acid storage tank. A transmission rod is fixedly connected to the L-shaped rod. A liquid transmission pipe and a liquid suction pipe are fixedly connected to the inner wall of the electrolysis chamber. The upper end of the liquid transmission pipe is slidably connected to the second partition plate. A temporary storage box is slidably connected to the bottom wall of the treatment chamber. A temporary storage cavity is opened on the temporary storage box. A pump body is fixedly connected to the inner wall of the temporary storage cavity. One end of the pump body is fixedly connected to the liquid suction pipe. A connecting piece is fixedly connected to the outer wall of the temporary storage box. A fourth elastic member and a connecting block are fixedly connected to the inner wall of the treatment chamber. The fourth elastic member abuts against the top wall of the temporary storage box. A groove is opened on the connecting block. A push-button elastic self-locking mechanism adapted to the connecting piece is arranged in the groove. The outer wall of the temporary storage box is connected to the inner wall of the treatment chamber through the fourth elastic member. A recovery groove is opened on the bottom wall of the treatment chamber. A recovery pipe is fixedly connected to the bottom wall of the recovery groove. The recovery pipe extends to the outside of the device body.

[0012] Further, a gravity control box is slidably connected to the inner wall of the recovery groove. A liquid loading cavity is opened on the gravity control box. The bottom wall of the liquid loading cavity is communicated with the bottom wall of the gravity control box through a seventh channel. The bottom wall of the gravity control box is connected to the bottom wall of the recovery groove through a fifth elastic member. A controller is fixedly connected to the inner wall of the recovery groove. A control button is arranged on the controller.

[0013] Further, the transmission gear is rotatably connected to the gear seat through a rotating shaft.

[0014] Further, a water quality sensor is arranged in the purification chamber.

[0015] Further, a liquid flow sensor is arranged in the water inlet pipe.

[0016] Further, a temperature sensor is provided in the purification chamber.

[0017] Further, a display screen is fixedly connected to the outer wall of the device body.

[0018] Further, the descaling liquid is acetic acid descaling.

[0019] Further, a processing module is provided in the device body.

[0020] The present invention has the following beneficial effects:

[0021] The present invention can generate chlorine gas by electrolyzing the electrolyte, so that tap water in the purification chamber combines with chlorine gas to generate hypochlorous acid, effectively disinfecting and sterilizing the tap water. BRIEF DESCRIPTION OF THE DRAWINGS

[0022] The present invention will be further described with reference to the accompanying drawings, but the embodiments in the drawings do not constitute any limitation to the present invention. For those of ordinary skill in the art, other drawings can also be obtained according to the following drawings without creative efforts.

[0023] Figure 1 is a schematic structural diagram of an electrolytic micro-nano bubble pre-filtering system based on water quality parameter regulation according to the present invention;

[0024] Figure 2 is a front view of an electrolytic micro-nano bubble pre-filtering system based on water quality parameter regulation according to the present invention;

[0025] Figure 3 is the present invention Figure 2 a schematic internal structure diagram of the device body in;

[0026] Figure 4 is the present invention Figure 3 an enlarged view of part A in;

[0027] Figure 5 is the present invention Figure 3 an enlarged view of part B in;

[0028] Figure 6 is the present invention Figure 3 an enlarged view of part C in;

[0029] Figure 7 is the present invention Figure 3 a right view of the electrolytic cell, the toothed anode rod, and the toothed cathode rod in.

[0030] Reference numerals: 1, device body; 2, water inlet pipe; 3, water outlet pipe; 4, treatment chamber; 5, first channel; 6, second channel; 7, first insulating rod; 8, toothed anode rod; 9, toothed cathode rod; 10, second insulating rod; 11, electronic controller; 12, first conductive sheet; 13, first elastic member; 14, second conductive sheet; 15, second elastic member; 16, mounting piece; 17, third elastic member; 18, gear seat; 19, first permanent magnet; 20, transmission gear; 21, rotating shaft; 22, limiting strip; 23, second permanent magnet; 24, first wedge block; 25, electrolysis tank; 26, electrolysis chamber; 27, third channel; 28, fourth channel; 29, air baffle; 30, electrolyte; 31, fifth channel; 32, first partition; 33, first through hole; 34, connecting rod; 35, rack; 36, first air pipe; 37, second air pipe; 38, acid storage tank; 39, acid storage chamber; 40, sixth channel; 41, second partition; 42, second through hole; 43, L-shaped rod; 44, second wedge block; 45, transmission rod; 46, liquid transfer pipe; 47, liquid extraction pipe; 48, temporary storage tank; 49, temporary storage chamber; 50, connecting piece; 51, fourth elastic member; 52, connecting block; 53, groove; 54, recovery groove; 55, recovery pipe; 56, gravity control box; 57, liquid filling chamber; 58, seventh channel; 59, fifth elastic member; 60, controller; 61, control button; 62, display screen; 63, pump body; 64, scale removal liquid. Detailed implementation mode

[0031] 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 shall fall within the protection scope of the present invention.

[0032] In the description of the present invention, it should be noted that the orientation or positional relationship indicated by the terms "vertical", "upper", "lower", "horizontal", etc. is based on the orientation or positional relationship shown in the accompanying drawings, and is only for the convenience of describing the present invention and simplifying the description, rather than indicating or implying that the device or element referred to must have a specific orientation, be constructed and operated in a specific orientation, and thus cannot be understood as a limitation of the present invention. In addition, "first", "second", "third", and "fourth" are only used for descriptive purposes and cannot be understood as indicating or implying relative importance.

[0033] In the description of the present invention, it should also be noted that unless otherwise clearly specified and limited, the terms "set", "install", "connect", and "couple" should be understood in a broad sense. For example, it can be a fixed connection, a detachable connection, or an integral connection; it can be a mechanical connection or an electrical connection; it can be a direct connection or a connection through an intermediate medium; it can be the communication inside two components. For those of ordinary skill in the art, the specific meanings of the above terms in the present invention can be understood according to specific circumstances.

[0034] As Figures 1-7 shown, an electrolytic micro-nano bubble pre-filtering system based on water quality parameter regulation includes a device body 1, on which a water inlet pipe 2 and a water outlet pipe 3 are fixedly connected. A purification chamber and a treatment chamber 4 are provided inside the device body 1, and a filtering component is arranged in the purification chamber; the filtering component includes a filter screen and an activated carbon mesh. The filter screen can filter large particle impurities in tap water, and the activated carbon mesh can adsorb pigments and odors in tap water.

[0035] An electrolysis component is arranged in the treatment chamber 4, and the electrolysis component includes a toothed anode rod 8, a toothed cathode rod 9, an electrolysis tank 25, an electric controller 11, a first conductive sheet 12, a first elastic member 13, a second conductive sheet 14, and a second elastic member 15. The electric controller 11 and the electrolysis tank 25 are both fixedly connected to the inner wall of the treatment chamber 4. A power supply is provided inside the electric controller 11. The first conductive sheet 12 and the second conductive sheet 14 are both rotatably connected to the electric controller 11. The first conductive sheet 12 is connected to the electric controller 11 through the first elastic member 13, and the second conductive sheet 14 is connected to the electric controller 11 through the second elastic member 15. The first conductive sheet 12 abuts against the toothed anode rod 8, and the second conductive sheet 14 abuts against the toothed cathode rod 9. An electrolysis chamber 26 is provided on the electrolysis tank 25, and an electrolytic solution 30 is filled in the electrolysis chamber 26. A gas baffle 29 is fixedly connected to the top wall of the electrolysis chamber 26. The top wall of the electrolysis chamber 26 is communicated with the top wall of the electrolysis tank 25 through a third channel 27 and a fourth channel 28. The toothed anode rod 8 is slidably connected to the inner wall of the fourth channel 28, and the lower end of the toothed anode rod 8 extends into the electrolytic solution 30. The toothed cathode rod 9 is slidably connected to the inner wall of the third channel 27, and the lower end of the toothed cathode rod 9 extends into the electrolytic solution 30. The top wall of the electrolysis chamber 26 is connected to a gas collection box through a first air pipe 36. The gas collection box is installed inside the device body 1. The top wall of the electrolysis chamber 26 is connected to the purification chamber through a second air pipe 37.

[0036] As Figures 3-7As shown, in an alternative embodiment of the present invention, a first wedge block 24 is fixedly connected to the toothed anode rod 8, a second permanent magnet 23 is embedded in the toothed cathode rod 9, the top wall of the processing chamber 4 is communicated with the top wall of the device body 1 through a first channel 5 and a second channel 6. The upper end of the toothed anode rod 8 is fixedly connected to a first insulating rod 7, the first insulating rod 7 is slidably connected to the inner wall of the first channel 5, the upper end of the toothed cathode rod 9 is fixedly connected to a second insulating rod 10, the second insulating rod 10 is slidably connected to the inner wall of the second channel 6, the upper ends of the first insulating rod 7 and the second insulating rod 10 both extend above the device body 1, and both the toothed anode rod 8 and the toothed cathode rod 9 are electrically conductive.

[0037] An installation piece 16 and a limiting strip 22 are fixedly connected to the inner wall of the processing chamber 4. The installation piece 16 is connected to a gear seat 18 through a third elastic member 17. The gear seat 18 is slidably connected to the inner wall of the processing chamber 4. A first permanent magnet 19 is embedded in the gear seat 18. A transmission gear 20 is rotatably connected to the gear seat 18. The bottom wall of the electrolysis chamber 26 is communicated with the bottom wall of the electrolysis tank 25 through a fifth channel 31. A first partition plate 32 is slidably connected to the bottom wall of the electrolysis tank 25. A first through hole 33 is opened on the first partition plate 32. A connecting rod 34 is fixedly connected to the first partition plate 32. A rack 35 is fixedly connected to the connecting rod 34. The rack 35 meshes with the transmission gear 20. A storage acid tank 38 is fixedly connected to the inner wall of the processing chamber 4. A storage acid cavity 39 is opened on the storage acid tank 38. A scale removal liquid 64 is filled in the storage acid cavity 39. The bottom wall of the storage acid cavity 39 is communicated with the bottom wall of the storage acid tank 38 through a sixth channel 40. A second partition plate 41 is slidably connected to the bottom wall of the storage acid tank 38. A second through hole 42 is opened on the second partition plate 41. An L-shaped rod 43 is fixedly connected to the second partition plate 41. A second wedge block 44 is fixedly connected to the L-shaped rod 43. The L-shaped rod 43 is slidably connected to the top wall of the storage acid tank 38. A transmission rod 45 is fixedly connected to the L-shaped rod 43. A liquid transmission pipe 46 and a liquid extraction pipe 47 are fixedly connected to the inner wall of the electrolysis chamber 26. The upper end of the liquid transmission pipe 46 is slidably connected to the second partition plate 41. A temporary storage box 48 is slidably connected to the bottom wall of the processing chamber 4. A temporary storage cavity 49 is opened on the temporary storage box 48. A pump body 63 is fixedly connected to the inner wall of the temporary storage cavity 49. The pump body 63 is fixedly connected to one end of the liquid extraction pipe 47. A connecting piece 50 is fixedly connected to the outer wall of the temporary storage box 48. A fourth elastic member 51 and a connecting block 52 are fixedly connected to the inner wall of the processing chamber 4. The fourth elastic member 51 abuts against the top wall of the temporary storage box 48. A groove 53 is opened on the connecting block 52. A push-button elastic self-locking mechanism adapted to the connecting piece 50 is arranged in the groove 53. The outer wall of the temporary storage box 48 is connected to the inner wall of the processing chamber 4 through the fourth elastic member 51. A recovery groove 54 is opened on the bottom wall of the processing chamber 4. A recovery pipe 55 is fixedly connected to the bottom wall of the recovery groove 54. The recovery pipe 55 extends to the outside of the device body 1. The push-button elastic self-locking mechanism can be realized by using the existing technology. For example, the push-button elastic self-locking mechanism in the memory card slot of an MP4. The connecting piece 50 can be locked by pressing on the push-button elastic self-locking mechanism, and the connecting piece 50 can be unlocked by pressing a short distance on the push-button elastic self-locking mechanism again.

[0038] As Figure 6 shown, in an alternative embodiment of the present invention, a gravity control box 56 is slidably connected to the inner wall of the recovery tank 54. A liquid loading cavity 57 is formed on the gravity control box 56. The bottom wall of the liquid loading cavity 57 communicates with the bottom wall of the gravity control box 56 through a seventh channel 58. The bottom wall of the gravity control box 56 is connected to the bottom wall of the recovery tank 54 through a fifth elastic member 59. A controller 60 is fixedly connected to the inner wall of the recovery tank 54. A control button 61 is provided on the controller 60. After the control button 61 is pressed, the water pump 63 will operate after a period of time.

[0039] As Figure 7 shown, in an alternative embodiment of the present invention, the transmission gear 20 is rotatably connected to the gear seat 18 through a rotating shaft 21.

[0040] In an alternative embodiment of the present invention, a water quality sensor is provided in the purification cavity. The water quality sensor can monitor the water quality of the tap water in the purification cavity in real time so as to control the disinfection and sterilization time.

[0041] In an alternative embodiment of the present invention, a liquid flow sensor is provided in the water inlet pipe 2. The liquid flow sensor can monitor the water inlet flow rate of the water inlet pipe 2 in real time.

[0042] In an alternative embodiment of the present invention, a temperature sensor is provided in the purification cavity. The temperature sensor can monitor the water temperature in the purification cavity in real time.

[0043] As Figures 1-2 shown, in an alternative embodiment of the present invention, a display screen 62 is fixedly connected to the outer wall of the device body 1. The display screen 62 can display various parameters.

[0044] In an alternative embodiment of the present invention, the descaling liquid 64 is acetic acid. The acidity of acetic acid is not too strong, and it can effectively remove dirt and is harmless to the human body.

[0045] In an alternative embodiment of the present invention, a processing module is provided in the device body 1. The processing module is used for data analysis and controlling the operation of each component.

[0046] Implementation process:

[0047] Tap water enters the water purification chamber from the water inlet pipe 2, and the filter component can filter impurities and some bacteria in the tap water. When hypochlorous acid needs to be generated to sterilize the tap water in the water purification chamber, the processing module controls the power supply in the electric controller 11 to be energized, and the power supply provides current to the toothed anode rod 8 and the toothed cathode rod 9 respectively through the first conductive sheet 12 and the second conductive sheet 14, so that the electrolyte 30 undergoes an oxidation reaction at the toothed anode rod 8 to generate chlorine gas with micro-nano bubbles, and the electrolyte 30 undergoes a reduction reaction at the toothed cathode rod 9 to generate hydrogen. The electrolyte 30 can be salt water. Under the obstruction of the air baffle 29, the chlorine enters the water purification chamber through the second air pipe 37 and reacts with the tap water to generate hypochlorous acid. The hypochlorous acid disinfects and sterilizes the tap water, inhibits bacterial reproduction and mucus secretion in the tap water, and regulates the water quality parameters of the tap water. The hydrogen is drained to the gas recovery box through the first air pipe 36 for recovery.

[0048] When the toothed anode rod 8 and the toothed cathode rod 9 need to be replaced after being used for a long time, the second insulating rod 10 is first moved upward, and then the first insulating rod 7 is moved upward. The second insulating rod 10 drives the toothed cathode rod 9 to separate from the processing chamber 4, and the first insulating rod 7 drives the toothed anode rod 8 to separate from the first channel 5. During the upward movement of the toothed cathode rod 9, the toothed cathode rod 9 will first mesh with the transmission gear 20 to drive the transmission gear 20 to rotate, and the transmission gear 20 drives the rack 35 to move horizontally. The rack 35 drives the first baffle plate 32 to move horizontally through the connecting rod 34, so that the first baffle plate 32 is moved horizontally. A through hole 33 is connected to the fifth channel 31, and the electrolyte 30 passes through the fifth channel 31 and the first through hole 33 and falls into the temporary storage chamber 49 for temporary storage. Then the second permanent magnet 23 moves up to above the first permanent magnet 19. After the first permanent magnet 19 loses the magnetic attraction of the second permanent magnet 23, the gear seat 18, the first permanent magnet 19, and the transmission gear 20 move toward the mounting plate 16 under the elastic force of the third elastic member 17. The transmission gear 20 rotates on the rack 35, and the rack 35 does not move, so as to facilitate the subsequent engagement of the transmission gear 20 and the toothed anode rod 8.

[0049] During the upward movement of the toothed anode rod 8, the toothed anode rod 8 and the transmission gear 20 are meshed, so that the transmission gear 20 is reversed, and the transmission gear 20 drives the rack 35 and the first baffle plate 32 to move in the opposite direction, so that the first baffle plate 32 blocks the fifth channel 31, and then the first wedge block 24 pushes the second wedge block 44 to move horizontally, so that the second baffle plate 41, the acid storage chamber 39, and the temporary storage box 48 move horizontally, the connecting piece 50 is inserted into the groove 53 and locked with the push-type elastic self-locking mechanism, the second through hole 42 and the sixth channel 40 are connected, the descaling liquid 64 in the acid storage chamber 39 passes through the sixth channel 40 and the second through hole 42 into the liquid transfer tube 46, the descaling liquid 64 enters the electrolytic chamber 26 through the drainage of the liquid transfer tube 46, and the descaling liquid 64 eliminates the dirt in the electrolytic chamber 26.

[0050] After removing the old toothed anode rod 8 and toothed cathode rod 9, the first conductive sheet 12 rotates counterclockwise under the elastic force of the first elastic member 13, and the second conductive sheet 14 rotates clockwise under the elastic force of the second elastic member 15.

[0051] First, insert a new toothed anode rod 8 into the first channel 5 and the fourth channel 28. The first wedge block 24 pushes the second wedge block 44, so that the connecting piece 50 moves a short distance into the groove 53 again. The connecting piece 50 and the pressing elastic self-locking mechanism are unlocked. To prevent the detergent solution 64 from falling into the temporary storage cavity 49, the fourth elastic member 51 presses on the temporary storage box 48. The temporary storage box 48 slowly moves leftward and resets under the elastic force of the fourth elastic member 51. The toothed anode rod 8 drives the transmission gear 20 to rotate, so that the first through hole 33 and the fifth channel 31 are communicated. The detergent solution 64 in the electrolysis cavity 26 passes through the fifth channel 31 and the first through hole 33 and falls into the recovery tank 54. After the detergent solution 64 in the electrolysis cavity 26 is drained, the temporary storage box 48 moves leftward and resets below the fifth channel 31.

[0052] The lower end of the toothed anode rod 8 pushes the first conductive sheet 12 to rotate clockwise against the elastic force of the first elastic member 13. The first conductive sheet 12 abuts against the toothed anode rod 8 for electrical connection. The lower end of the toothed cathode rod 9 pushes the second conductive sheet 14 to rotate counterclockwise against the elastic force of the second elastic member 15. The second conductive sheet 14 is electrically connected to the toothed cathode rod 9. Then, insert a new toothed cathode rod 9 into the second channel 6 and the third channel 27. When the toothed cathode rod 9 moves downward, first, the second permanent magnet 23 magnetically attracts the first permanent magnet 19, so that the gear seat 18 moves against the elastic force of the third elastic member 17 to abut against the limiting strip 22. Then, the toothed cathode rod 9 drives the transmission gear 20 to rotate, so that the first partition plate 32 blocks the fifth channel 31.

[0053] When the detergent solution 64 enters the recovery tank 54, part of the detergent solution 64 enters the liquid filling cavity 57, and part of the detergent solution 64 directly drains away through the recovery pipe 55. The weight of the gravity control box 56 increases, so that it moves downward against the elastic force of the fifth elastic member 59. The gravity control box 56 presses the control button 61, so that the controller 60 controls the pump body 63 to operate after a period of time (because it is necessary to wait for the detergent solution 64 in the electrolysis cavity 26 to be drained and the first partition plate 32 to block the fifth channel 31). The pump body 63 operates to pump the electrolyte 30 in the temporary storage cavity 49 back into the electrolyte 30 for subsequent electrolysis.

[0054] The present invention can generate chlorine gas by electrolyzing the electrolyte 30, so that tap water in the purification chamber combines with chlorine gas to generate hypochlorous acid, effectively disinfecting and sterilizing the tap water; when replacing the toothed anode rod 8 and the toothed cathode rod 9, the unused electrolyte 30 can be automatically temporarily stored in the temporary storage chamber 49, and the descaling liquid 64 in the acid storage chamber 39 is automatically added to the electrolysis chamber 26 to remove the dirt on the inner wall of the electrolysis chamber 26. Subsequently, the descaling liquid 64 after descaling can be automatically discharged from the electrolysis chamber 26, and the descaling liquid 64 can be recycled or directly discharged into the sewer. The electrolyte 30 temporarily stored in the temporary storage chamber 49 is automatically re-introduced into the electrolysis chamber 26 for subsequent electrolysis.

[0055] Components, modules, mechanisms, and devices whose structures are not described in detail in the present invention are all common standard parts or parts known to those skilled in the art, and their structures and principles can all be learned by those skilled in the art through technical manuals or by conventional experimental methods.

[0056] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, rather than limiting the protection scope of the present invention. Although the present invention has been described in detail with reference to the preferred embodiments, those of ordinary skill in the art should understand that the technical solutions of the present invention can be modified or equivalently replaced without departing from the essence and scope of the technical solutions of the present invention.

Claims

1. An electrolytic micro-nano bubble pre-filtering system based on water quality parameter regulation, characterized in that, It includes a device body (1), on which a water inlet pipe (2) and a water outlet pipe (3) are fixedly connected. A purification chamber and a treatment chamber (4) are provided inside the device body (1), and a filtering component is arranged in the purification chamber; An electrolysis component is arranged in the treatment chamber (4). The electrolysis component includes a toothed anode rod (8), a toothed cathode rod (9), an electrolysis tank (25), an electronic controller (11), a first conductive sheet (12), a first elastic member (13), a second conductive sheet (14), and a second elastic member (15). The electronic controller (11) and the electrolysis tank (25) are both fixedly connected to the inner wall of the treatment chamber (4). A power source is provided inside the electronic controller (11). The first conductive sheet (12) and the second conductive sheet (14) are both rotatably connected to the electronic controller (11). The first conductive sheet (12) is connected to the electronic controller (11) through the first elastic member (13), and the second conductive sheet (14) is connected to the electronic controller (11) through the second elastic member (15). The first conductive sheet (12) abuts against the toothed anode rod (8), and the second conductive sheet (14) abuts against the toothed cathode rod (9). An electrolysis chamber (26) is provided on the electrolysis tank (25), and an electrolytic solution (30) is filled in the electrolysis chamber (26). A gas baffle (29) is fixedly connected to the top wall of the electrolysis chamber (26). The top wall of the electrolysis chamber (26) is communicated with the top wall of the electrolysis tank (25) through a third channel (27) and a fourth channel (28). The toothed anode rod (8) is slidably connected to the inner wall of the fourth channel (28), and the lower end of the toothed anode rod (8) extends into the electrolytic solution (30). The toothed cathode rod (9) is slidably connected to the inner wall of the third channel (27), and the lower end of the toothed cathode rod (9) extends into the electrolytic solution (30). The top wall of the electrolysis chamber (26) is connected to a gas collection tank through a first air pipe (36). The gas collection tank is installed inside the device body (1). The top wall of the electrolysis chamber (26) is connected to the purification chamber through a second air pipe (37); A first wedge-shaped block (24) is fixedly connected to the toothed anode rod (8). A second permanent magnet (23) is embedded in the toothed cathode rod (9). The top wall of the treatment chamber (4) is communicated with the top wall of the device body (1) through a first channel (5) and a second channel (6). A first insulating rod (7) is fixedly connected to the upper end of the toothed anode rod (8), and the first insulating rod (7) is slidably connected to the inner wall of the first channel (5). A second insulating rod (10) is fixedly connected to the upper end of the toothed cathode rod (9), and the second insulating rod (10) is slidably connected to the inner wall of the second channel (6). The upper ends of the first insulating rod (7) and the second insulating rod (10) both extend above the device body (1); An installation piece (16) and a limiting strip (22) are fixedly connected to the inner wall of the processing chamber (4). The installation piece (16) is connected to a gear seat (18) through a third elastic member (17). The gear seat (18) is slidably connected to the inner wall of the processing chamber (4). A first permanent magnet (19) is embedded in the gear seat (18). A transmission gear (20) is rotatably connected to the gear seat (18). The bottom wall of the electrolysis chamber (26) communicates with the bottom wall of the electrolysis tank (25) through a fifth channel (31). A first partition plate (32) is slidably connected to the bottom wall of the electrolysis tank (25). A first through hole (33) is formed in the first partition plate (32). A connecting rod (34) is fixedly connected to the first partition plate (32). A rack (35) is fixedly connected to the connecting rod (34). The rack (35) meshes with the transmission gear (20). A storage acid tank (38) is fixedly connected to the inner wall of the processing chamber (4). A storage acid chamber (39) is formed in the storage acid tank (38). A detergent solution (64) is filled in the storage acid chamber (39). The bottom wall of the storage acid chamber (39) communicates with the bottom wall of the storage acid tank (38) through a sixth channel (40). A second partition plate (41) is slidably connected to the bottom wall of the storage acid tank (38). A second through hole (42) is formed in the second partition plate (41). An L-shaped rod (43) is fixedly connected to the second partition plate (41). A second wedge-shaped block (44) is fixedly connected to the L-shaped rod (43). The L-shaped rod (43) is slidably connected to the top wall of the storage acid tank (38). A transmission rod (45) is fixedly connected to the L-shaped rod (43). A liquid transmission pipe (46) and a liquid suction pipe (47) are fixedly connected to the inner wall of the electrolysis chamber (26). The upper end of the liquid transmission pipe (46) is slidably connected to the second partition plate (41). A temporary storage box (48) is slidably connected to the bottom wall of the processing chamber (4). A temporary storage chamber (49) is formed in the temporary storage box (48). A pump body (63) is fixedly connected to the inner wall of the temporary storage chamber (49). One end of the pump body (63) is fixedly connected to the liquid suction pipe (47). A connecting piece (50) is fixedly connected to the outer wall of the temporary storage box (48). A fourth elastic member (51) and a connecting block (52) are fixedly connected to the inner wall of the processing chamber (4). The fourth elastic member (51) abuts against the top wall of the temporary storage box (48). A groove (53) is formed in the connecting block (52). A push-button elastic self-locking mechanism adapted to the connecting piece (50) is arranged in the groove (53). The outer wall of the temporary storage box (48) is connected to the inner wall of the processing chamber (4) through the fourth elastic member (51). A recovery groove (54) is formed in the bottom wall of the processing chamber (4). A recovery pipe (55) is fixedly connected to the bottom wall of the recovery groove (54). The recovery pipe (55) extends to the outside of the device body (1).

2. The electrolytic micro-nano bubble pre-filtering system based on water quality parameter regulation according to claim 1, characterized in that A gravity control box (56) is slidably connected to the inner wall of the recovery groove (54). A liquid loading chamber (57) is formed in the gravity control box (56). The bottom wall of the liquid loading chamber (57) communicates with the bottom wall of the gravity control box (56) through a seventh channel (58). The bottom wall of the gravity control box (56) is connected to the bottom wall of the recovery groove (54) through a fifth elastic member (59). A controller (60) is fixedly connected to the inner wall of the recovery groove (54). A control button (61) is arranged on the controller (60).

3. The electrolytic micro-nano bubble pre-filtering system based on water quality parameter regulation according to claim 2, characterized in that, The transmission gear (20) is rotatably connected to the gear seat (18) through a rotating shaft (21).

4. A pre-filtering system for electrolytic micro-nano bubbles based on water quality parameter regulation according to claim 3, characterized in that, A water quality sensor is provided in the purification chamber.

5. The electrolytic micro-nano bubble pre-filtering system based on water quality parameter regulation according to claim 4, characterized in that, A liquid flow sensor is provided in the water inlet pipe (2).

6. The electrolytic micro-nano bubble pre-filtering system based on water quality parameter regulation according to claim 5, characterized in that, A temperature sensor is provided in the purification chamber.

7. An electrolytic micro-nano bubble pre-filtering system based on water quality parameter regulation according to claim 6, characterized in that, A display screen (62) is fixedly connected to the outer wall of the device body (1).

8. A pre-filtering system for electrolytic micro-nano bubbles based on water quality parameter regulation according to claim 7, characterized in that, The descaling liquid (64) is acetic acid for descaling.

9. A pre-filtering system for electrolytic micro-nano bubbles based on water quality parameter regulation according to any one of claims 1-8, characterized in that, A processing module is provided in the device body (1).

Citation Information

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