Active hydrogen water generator and equipment and production method of active hydrogen water
By using the coordination of push blocks, push rods and movable blocks in the active hydrogen water generator and the coordination of connecting the top plate and the card block, the problem of low installation efficiency of electrode plates and diaphragms is solved, rapid clamping and stable installation of components are achieved, and the operation efficiency of the equipment and water quality stability are improved.
Patent Information
- Application Number
- CN202510044213.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-01-11
- Publication Date
- 2025-05-13
AI Technical Summary
When replacing the electrode plate, the existing active hydrogen water generator has low operational convenience and efficiency, and the internal space is small and the tool activity space is poor.
An active hydrogen water generator is designed, using the coordination of push blocks, push rods and movable blocks to fix the electrode plates through clamps to achieve rapid clamping and precise fixation; at the same time, the coordination function of connecting the top plate and the clamps is used to stabilize the installation of the diaphragm.
It significantly improves the convenience and efficiency of component installation, reduces installation steps, improves electrolytic efficiency and water quality stability, and ensures long-term stable operation of the equipment through the combination of condenser and heat dissipation fins.
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Figure CN119977080A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of water treatment equipment, in particular to an active hydrogen water generator and equipment and a production method of active hydrogen water. Background Art
[0002] Active hydrogen water is a kind of functional water rich in hydrogen produced by introducing hydrogen or by special electrolysis. It has good antioxidant properties and health-promoting effects, and has been widely used in the fields of healthy drinking, food processing, and medical assistance. Compared with ordinary drinking water, active hydrogen water has a higher functional value because it can effectively neutralize free radicals due to the high concentration of hydrogen dissolved in it. In the current active hydrogen water production technology, pure water is often used for electrolysis to produce hydrogen to ensure the purity of water quality and electrolysis efficiency. However, some research and applications point out that mineral-rich groundwater as a water source, combined with weak electrical action to produce hydrogen, can not only retain the natural mineral elements in the water, but also improve the activity and functionality of the water through synergy with the mineralization device; When installing electrode plates and diaphragms, active hydrogen water generators in the prior art mostly rely on manual adjustment or bolt fixing, which requires many steps and is time-consuming. In addition, some generators have small internal spaces and poor tool movement space, so more steps are required for installation, and the operator is required to have high precision. When replacing electrode plates, some traditional fixing methods still have room for improvement in terms of operational convenience and efficiency. Therefore, the present invention proposes an active hydrogen water generator, an active hydrogen water device and a production method to solve the shortcomings of the prior art. Summary of the invention
[0003] In view of the deficiencies in the prior art, the present invention provides an active hydrogen water generator, an active hydrogen water device and a production method, which solve the problem that some traditional fixing methods are low in operational convenience and efficiency when replacing electrode plates.
[0004] To achieve the above objectives, the present invention is implemented through the following technical solutions: an active hydrogen water generator and active hydrogen water equipment, including a hydrogen water generator and a water tank, the hydrogen water generator and the water tank are fixed, a water storage bottle is arranged at the front end of one side of the hydrogen water generator close to the water tank, a cover plate is rotatably connected to the top of the hydrogen water generator, an electrolytic cell is arranged inside the hydrogen water generator, a protective frame is arranged on the periphery of the electrolytic cell, a cooling mechanism is arranged on the periphery of the protective frame, electrode plates are slidably connected to the left and right sides of the electrolytic cell, two diaphragms are slidably connected to the middle of the electrolytic cell, a connecting mechanism is arranged on the side of the diaphragm away from the electrolytic cell, a fixing mechanism is arranged on the front and rear sides of the electrode plate, and a protective plate is arranged on the rear side of the hydrogen water generator; The fixing mechanism includes a protective shell 1, which is fixed to a side of the electrolytic cell close to the cover plate, a push rod is slidably connected to the inner side of the protective shell 1 away from the electrolytic cell, a push block 1 is fixed to the end of the push rod away from the electrolytic cell, a moving block is fixed to the side of the push rod close to the electrolytic cell, movable blocks are slidably provided on the left and right sides of the moving block, a slide plate 1 is fixed to the outer periphery of the push rod, a spring 1 is fixed to the side of the slide plate close to the electrolytic cell, connecting components are provided on both sides of the moving block close to the two movable blocks, a connecting rod is fixed to the side of the movable block close to the electrolytic cell, a splint is fixed to the side of the connecting rod close to the electrode plate, an air guide mechanism is provided on the side of the electrolytic cell close to the cover plate, a filtering mechanism is provided on the side of the electrolytic cell away from the cover plate, and a plurality of flow guide mechanisms are provided inside the electrolytic cell.
[0005] Preferably, the connecting mechanism includes a connecting top plate, which is fixed on the top of the two diaphragms, and a protective shell 2 is fixed to both the front and rear ends of the connecting top plate. A connecting rod is slid inside the protective shell 2, a push block 2 is fixed to the end of the connecting rod away from the electrolytic cell, and a clamping block is fixed to the end of the connecting rod close to the electrolytic cell, and a support assembly is provided on the periphery of the connecting rod.
[0006] Preferably, the cooling mechanism includes two condensers, which are respectively fixed on the front and rear sides of the protective frame away from the electrolytic cell, and a plurality of condensing tubes evenly distributed in horizontal straight lines are fixed to the outside of the condenser. Two cooling fans are fixed to the side of the condenser away from the protective frame, and the front and rear sides of the electrolytic cell close to the protective frame are provided with a plurality of cooling fins evenly distributed in horizontal straight lines.
[0007] Preferably, the gas guide mechanism includes two gas collecting hoppers, which are respectively fixed on the left and right sides of the top of the electrolytic cell, wherein a hydrogen conduit is fixed to the end of one of the gas collecting hoppers away from the electrolytic cell, and an oxygen conduit is fixed to the end of the other gas collecting hopper away from the electrolytic cell, and an gas guide plate is installed at the end of the oxygen conduit away from the gas collecting hoppers, and the gas guide plate is installed on the side of the hydrogen water generator close to the protective plate.
[0008] Preferably, the filtering mechanism includes a filter box, which is installed on a side of the electrolytic cell away from the cover plate, a water pump 1 is provided on the side of the filter box close to the water tank, a filter plate 1 and a filter plate 2 are provided on the side of the filter box close to the water pump 1, two water pumps 2 are installed on the side of the filter box close to the electrolytic cell, and the side of the water pump 2 away from the filter box is fixed to the bottom of the electrolytic cell.
[0009] Preferably, the guide mechanism includes a fixed block, the fixed block is fixed to the inner wall of the electrolytic cell, a movable rod is rotatable on the side of the fixed block close to the electrode plate, a guide block is fixed on the side of the movable rod away from the fixed block, a rotating shaft is fixed on the side of the movable rod close to the fixed block, the rotating shaft rotates inside the fixed block, a rotating block is fixed on the outer periphery of the rotating shaft, a spring three is fixed on one side of the rotating block, the spring three is fixed to the inside of the fixed block on the side away from the rotating block, and a through hole is opened inside the guide block.
[0010] Preferably, the two connecting components each include a wedge block, the two wedge blocks are respectively fixed on both sides of the moving block close to the two movable blocks, the two movable blocks are each provided with a wedge groove inside, and the wedge blocks slide in the wedge groove.
[0011] Preferably, the support assembly includes a second slide plate, the second slide plate is fixed to the outer periphery of the connecting rod, a second spring is fixed to a side of the second slide plate close to the block, and the second spring is sleeved on the outer periphery of the connecting rod.
[0012] Preferably, one end of the hydrogen conduit away from the gas collecting hopper is fixed to the top of the water storage bottle.
[0013] The present invention also provides a method for producing active hydrogen water, comprising the following steps: S1. Inject mineral-rich groundwater into the water tank, fix the electrode plates with clamps, and insert the diaphragm into the top position of the electrolytic cell; S2, start water pump 1 and water pump 2, filter the mineral-rich groundwater in the water tank through filter plate 1 and filter plate 2, and then transport it to the electrolytic cell; S3, after the mineral-rich groundwater enters the electrolytic cell, it contacts the guide block, which guides the water flow by rotating to avoid water flow turbulence; S4, start the electrode plate to separate water molecules in the electrolytic cell to produce hydrogen and oxygen; S5, introducing the generated hydrogen into the water storage bottle through the gas collecting hopper and the hydrogen conduit, so that the hydrogen and water are fully mixed to form active hydrogen water; S6. Start the condenser and let the cooling water flow between the condenser tube and the heat sink fins to lower the temperature of the electrolytic cell and ensure stable operation of the equipment.
[0014] The present invention provides an active hydrogen water generator, an active hydrogen water device and a production method thereof. The present invention has the following beneficial effects: 1. The present invention achieves rapid clamping and precise fixation of the electrode plates by clamping and fixing the electrode plates through the cooperation of the push block, the push rod and the movable block during the installation of the electrode plates. At the same time, the partition is installed by connecting the top plate and the card block, and the card block is inserted into the electrolytic cell, so that the partition can be stably matched with the electrolytic cell. Compared with the traditional multi-step fixing method, the present invention significantly improves the convenience and efficiency of component installation.
[0015] 2. The present invention uses the mutual coordination between the guide block, the rotating shaft, the spring and other parts. After the water flows into the electrolytic cell, the guide block automatically rotates to accurately guide the water flow, thereby reducing the turbulence of the water flow in the cell and ensuring the uniform distribution of the electrolyte. The rotation angle can be changed accordingly according to the flow rate of the water flow. Compared with the existing fixed guide design and the technology of easy displacement of the partition, the water flow disorder is solved and the electrolysis efficiency and water quality stability are improved.
[0016] 3. The present invention forms a comprehensive heat dissipation and separation system through the efficient combination of the cooling water circulation system of the condenser and the heat dissipation fins. The cooling water circulation in the condenser takes away the heat from the high-temperature area, and the heat dissipation fins further expand the heat dissipation area, effectively controlling the temperature of the electrolytic cell, solving the electrode aging caused by poor heat dissipation in traditional electrolytic devices, and ensuring the safety and reliability of the equipment for long-term operation. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] Figure 1 A perspective view of the present invention; Figure 2 It is a structural schematic diagram of the cover plate of the present invention; Figure 3 It is a schematic diagram of the structure of the protective plate of the present invention; Figure 4 It is a structural schematic diagram of the protection frame of the present invention; Figure 5 It is a schematic structural diagram of the electrolytic cell of the present invention; Figure 6 It is a schematic diagram of the structure of the diaphragm of the present invention; Figure 7 This is a schematic diagram of the structure of the push block 2 of the present invention; Figure 8 It is a structural schematic diagram of the guide block of the present invention; Fig. 9 It is a schematic diagram of the structure of the push rod of the present invention; Fig.10 It is a structural schematic diagram of the movable block of the present invention; Fig.11 It is a structural schematic diagram of filter plate 1 of the present invention.
[0018] Among them, 1. hydrogen water generator; 2. water tank; 3. fixing mechanism; 301. protective shell 1; 302. push block 1; 303. push rod; 304. slide plate 1; 305. spring 1; 306. moving block; 307. movable block; 308. connecting rod; 309. clamp; 4. connecting assembly; 401. wedge block; 402. wedge groove; 5. connecting mechanism; 501. connecting top plate; 502. protective shell 2; 503. push block 2; 504. connecting rod; 505. clamping block; 6. cooling mechanism; 601. condenser; 602. cooling fan; 603. condenser tube; 604. cooling fin; 7. supporting assembly; 701. slide Plate 2; 702, spring 2; 8, flow guide mechanism; 801, flow guide block; 802, movable rod; 803, fixed block; 804, rotating shaft; 805, rotating block; 806, spring 3; 807, through hole; 9, water storage bottle; 10, gas guide mechanism; 1001, gas collecting hopper; 1002, hydrogen duct; 1003, oxygen duct; 1004, gas guide plate; 11, protective plate; 12, cover plate; 13, electrolytic cell; 14, protective frame; 15, filtering mechanism; 1501, filtering box; 1502, water pump 1; 1503, water pump 2; 1504, filter plate 1; 1505, filter plate 2; 16, electrode plate; 17, diaphragm. DETAILED DESCRIPTION
[0019] The following will be combined with the drawings in the specification of the present invention to clearly and completely describe the technical solutions in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0020] Please see attached Figure 1 - Attachment Figure 6The embodiment of the present invention provides an active hydrogen water generator and an active hydrogen water device and a production method, including a hydrogen water generator 1 and a water tank 2, the hydrogen water generator 1 and the water tank 2 are fixed, the hydrogen water generator 1 is used to produce hydrogen water, the water tank 2 is used to store mineral-rich groundwater, a water storage bottle 9 is arranged at the front end of one side of the hydrogen water generator 1 near the water tank 2, the water storage bottle 9 contains mineral-rich groundwater, after hydrogen enters the water storage bottle 9, it can be dissolved in the mineral-rich groundwater to form active hydrogen water, the top of the hydrogen water generator 1 is rotatably connected with a cover plate 12, the cover plate 12 is used to protect the components inside the hydrogen water generator 1, the hydrogen water generator 1 is provided with an electrolytic cell 13, the electrolytic cell 13 is used In order to provide a space for separating hydrogen and oxygen, a protective frame 14 is provided on the periphery of the electrolytic cell 13, and the protective frame 14 is used to prevent the electrolytic cell 13 from directly contacting the inner wall of the hydrogen water generator 1 to prevent the hydrogen water generator 1 from being overheated. A cooling mechanism 6 is provided on the periphery of the protective frame 14. Electrode plates 16 are slidably connected to the left and right sides of the inside of the electrolytic cell 13. The two electrode plates 16 are respectively an anode plate and a cathode plate, which are used to decompose hydrogen and oxygen. Two diaphragms 17 are slidably connected to the middle of the electrolytic cell 13. The diaphragms 17 are used to prevent the two gases from mixing. A connecting mechanism 5 is provided on the side of the diaphragm 17 away from the electrolytic cell 13. A fixing mechanism 3 is provided on the front and rear sides of the electrode plate 16. The rear protective plate 11 of the hydrogen water generator 1; Please see attached Figure 5 , Attachment Figure 6 , Attachment Fig. 9The fixing mechanism 3 includes a protective shell 301, which is fixed to a side of the electrolytic cell 13 close to the cover plate 12 to protect the internal components and prevent them from being damaged by external factors. A push rod 303 is slidably connected to the side of the protective shell 301 away from the electrolytic cell 13. A push block 302 is fixed to the end of the push rod 303 away from the electrolytic cell 13. The push block 302 is connected to the push rod 303. When a force is applied to the push block 302, a force can be applied to the push rod 303 accordingly to control the movement of the push rod 303. A moving block 306 is fixed to the side of the push rod 303 close to the electrolytic cell 13. The push rod 303 is connected to the moving block 306. When the push rod 303 moves, the moving block 306 can be driven to move together. There are movable blocks 307 sliding on the left and right sides of the moving block 306. The moving block 306 is an isosceles trapezoid, and the movable block 307 is a right-angled trapezoid. When the moving block 306 moves, it will drive the movable block The push rod 303 moves together with the two movable blocks 307. A slide plate 304 is fixed on the outer periphery of the push rod 303. A spring 305 is fixed on the side of the slide plate 304 close to the electrolytic cell 13. The slide plate 304 is connected to the push rod 303. When the push rod 303 moves, the slide plate 304 will be driven to move together, thereby applying a force to the spring 305. Connecting components 4 are provided on both sides of the movable block 306 close to the two movable blocks 307. A connecting rod 308 is fixed on the side of the movable block 307 close to the electrolytic cell 13. A splint 309 is fixed on the side of the connecting rod 308 close to the electrode plate 16. The connecting rod 308 is used to connect the movable block 307 and the splint 309. When the movable block 307 moves, the splint 309 will be driven to move together through the connecting rod 308. An air guide mechanism 10 is provided on the side of the electrolytic cell 13 close to the cover plate 12, and a filtering mechanism 15 is provided on the side of the electrolytic cell 13 away from the cover plate 12. A plurality of flow guide mechanisms 8 are provided inside the electrolytic cell 13.
[0021] Please see attached Figure 5 - Attachment Figure 7 The connecting mechanism 5 includes a connecting top plate 501, which is fixed on the top of the two diaphragms 17. The connecting top plate 501 is used to connect the two diaphragms 17. Protective shells 502 are fixed to the front and rear ends of the connecting top plate 501. The protective shells 502 are the same as the protective shells 301, and are used to protect the internal parts. A connecting rod 504 slides inside the protective shell 502. A push block 503 is fixed to the end of the connecting rod 504 away from the electrolytic cell 13. The push block 503 is connected to the connecting rod 504. The connecting rod 504 can be moved by pulling the push block 503. A clamping block 505 is fixed to the end of the connecting rod 504 close to the electrolytic cell 13. The clamping block 505 is connected to the connecting rod 504. When the connecting rod 504 moves, the clamping block 505 will be driven to move. A supporting assembly 7 is provided on the periphery of the connecting rod 504.
[0022] Please see attached Figure 5 - Attachment Figure 6The cooling mechanism 6 includes two condensers 601, which are respectively fixed on the front and rear sides of the protective frame 14 away from the electrolytic cell 13. The condensers 601 are used to provide refrigeration and cooling. A plurality of condensing tubes 603 evenly distributed in a horizontal straight line are fixed on the outside of the condenser 601. A refrigerant is stored in the condensing tubes 603. When the condenser 601 is working, the refrigerant will continuously flow in the condensing tubes 603, thereby absorbing the heat generated by the electrolytic cell 13 and reducing the temperature of the electrolytic cell 13. Two cooling fans 602 are fixed on the side of the condenser 601 away from the protective frame 14. The cooling fan 602 is used to cooperate with the condenser 601. The front and rear sides of the electrolytic cell 13 close to the protective frame 14 are provided with a plurality of cooling fins 604 evenly distributed in a horizontal straight line.
[0023] Please see attached Figure 2 , Attachment Figure 3 , Attachment Figure 5 The gas guide mechanism 10 includes two gas collecting hoppers 1001, which are respectively fixed on the left and right sides of the top of the electrolytic cell 13. The gas collecting hoppers 1001 are used to collect gas and guide the gas flow. A hydrogen conduit 1002 is fixed at one end of the gas collecting hoppers 1001 away from the electrolytic cell 13, and the end of the hydrogen conduit 1002 away from the gas collecting hopper 1001 is fixed on the top of the water storage bottle 9. The hydrogen conduit 1002 is used to guide the hydrogen to flow into the water storage bottle 9. An oxygen conduit 1003 is fixed at one end of the other gas collecting hopper 1001 away from the electrolytic cell 13. An air guide plate 1004 is installed at one end of the oxygen conduit 1003 away from the gas collecting hopper 1001. The oxygen conduit 1003 is used to discharge oxygen from the hydrogen water generator 1, and the air guide plate 1004 is installed on the side of the hydrogen water generator 1 close to the protective plate 11.
[0024] Please see attached Figure 5 and attached Fig.11 The filtering mechanism 15 includes a filter box 1501, which is installed on the side of the electrolytic cell 13 away from the cover plate 12. The filter box 1501 is used to filter the fluorine gas in the mineral-rich groundwater. A water pump 1502 is provided on the side of the filter box 1501 close to the water tank 2. The water pump 1502 is used to pump the water in the water tank 2 into the filter box 1501. A filter plate 1504 and a filter plate 2 1505 are respectively provided on the side of the filter box 1501 close to the water pump 1 1502. The filter plate 1504 and the filter plate 2 1505 are used to filter the fluorine gas. Two water pumps 2 1503 are installed on the side of the filter box 1501 close to the electrolytic cell 13. The side of the water pump 2 1503 away from the filter box 1501 is fixed to the bottom of the electrolytic cell 13. The water pump 2 1503 is used to transport the filtered mineral-rich groundwater to the electrolytic cell 13.
[0025] Please see attached Figure 6 and attached Figure 8The guide mechanism 8 includes a fixed block 803, which is fixed to the inner wall of the electrolytic cell 13. A movable rod 802 is rotatably arranged on the side of the fixed block 803 close to the electrode plate 16. The fixed block 803 is used to connect the movable rod 802 so that the movable rod 802 can be installed in the electrolytic cell 13. A guide block 801 is fixed on the side of the movable rod 802 away from the fixed block 803. The guide block 801 is used to guide the movement of water flow to avoid water flow turbulence. A rotating shaft 804 is fixed on the side of the movable rod 802 close to the fixed block 803. The rotating shaft 804 rotates inside the fixed block 803, and the rotating shaft 804 is used to allow the fixed block 803 to rotate. A rotating block 805 is fixed on the outer periphery of the rotating shaft 804, and a spring three 806 is fixed on one side of the rotating block 805. The side of the spring three 806 away from the rotating block 805 is fixed inside the fixed block 803. The rotating block 805 is connected to the spring three 806. When the rotating shaft 804 rotates, the rotating block 805 will rotate together, thereby stretching the spring three 806. A through hole 807 is opened inside the guide block 801.
[0026] Please see attached Fig.10 The two connecting components 4 each include a wedge block 401, which are respectively fixed on both sides of the moving block 306 close to the two movable blocks 307. The two movable blocks 307 are each provided with a wedge groove 402 inside, and the wedge block 401 slides in the wedge groove 402. Both the wedge block 401 and the wedge groove 402 are isosceles trapezoids. When the moving block 306 moves, the wedge block 401 slides in the wedge groove 402, thereby applying a force to the movable block 307 to control the movement of the movable block 307.
[0027] Please see attached Figure 7 The supporting assembly 7 includes a second slide plate 701, which is fixed on the outer periphery of the connecting rod 504. A second spring 702 is fixed on the side of the second slide plate 701 close to the block 505. The second spring 702 is sleeved on the outer periphery of the connecting rod 504. The second slide plate 701 is connected to the connecting rod 504. When the connecting rod 504 moves, the second slide plate 701 can be driven to move. The second spring 702 is used to provide elastic supporting force.
[0028] The present invention also provides a method for producing active hydrogen water, comprising the following steps: S1, inject mineral-rich groundwater into the water tank 2, fix the electrode plate 16 by the clamping plate 309, and insert the diaphragm 17 into the top position of the electrolytic cell 13; S2, start water pump 1 1502 and water pump 2 1503, filter the mineral-rich groundwater in water tank 2 through filter plate 1 1504 and filter plate 2 1505, and then transport it to electrolytic cell 13; S3, after the mineral-rich groundwater enters the electrolytic cell 13, it contacts the guide block 801, which guides the water flow by rotating to avoid water flow turbulence; S4, start the electrode plate 16 to separate water molecules in the electrolytic cell 13 to produce hydrogen and oxygen; S5, introducing the generated hydrogen into the water storage bottle 9 through the gas collecting hopper 1001 and the hydrogen conduit 1002, so that the hydrogen and water are fully mixed to form active hydrogen water; S6. Start the condenser 601, and let the cooling water flow between the condenser tube 603 and the heat sink fins 604 to reduce the temperature of the electrolytic cell 13, thereby ensuring stable operation of the equipment.
[0029] Working principle: Before making active hydrogen water, it is necessary to first inject mineral-rich groundwater into the water tank 2, and then install the electrode plate 16 and the diaphragm 17 inside the electrolytic cell 13. First, place the electrode plate 16 on the top of the clamping plate 309, and then press the push block 1 302. When the push block 1 302 moves, it will drive the push rod 303 to move together, so that the push rod 303 will control the movement of the moving block 306. When the push rod 303 moves, the slide plate 1 304 on the periphery of the push rod 303 will apply pressure to the spring 1 305, so that the spring 1 305 contracts. When the moving block 306 moves, the wedge blocks 401 on both sides of the moving block 306 will open inside the movable block 307. The two movable blocks 307 slide in the wedge-shaped groove 402, thereby controlling the two movable blocks 307 to slide in opposite directions. When the two movable blocks 307 slide in opposite directions, the connecting rod 308 at the bottom of the movable block 307 drives the clamping plate 309 to move, so that the two clamping plates 309 move in opposite directions. At this time, the electrode plate 16 is inserted between the two clamping plates 309. After the electrode plate 16 enters between the two clamping plates 309, the push block 1 302 can be released. At this time, the spring 1 305 loses the slide plate 1 304 to generate a reset movement, thereby pushing the slide plate 1 304 to move. At this time, the movable block 306 moves upward, the two movable blocks 307 move toward each other, and then the two clamping plates 309 move toward each other to fix the electrode plate 16; Then, the push block 503 is pulled to control the connecting rod 504 to move. When the connecting rod 504 moves, the block 505 is driven to move together, and when the connecting rod 504 moves, the slide plate 701 is driven to move. When the slide plate 701 moves, the spring 702 is squeezed. Then, the connecting top plate 501 is plugged into the top of the electrolytic cell 13, and then the protective shell 502 is released. At this time, the spring 702 loses the squeezing of the slide plate 701 and generates a reset motion, thereby pushing the slide plate 701 to move, so that the connecting rod 504 moves, and then drives the block 505 to move, so that the block 505 is inserted into the electrolytic cell 13; After the electrode plate 16 and the diaphragm 17 are installed, the water pump 1502 can be started. After the water pump 1502 is started, the mineral-rich groundwater in the water tank 2 can be extracted. After the mineral-rich groundwater in the water tank 2 is extracted, the fluorine gas in the water will be filtered through the filter plate 1504 and the filter plate 2 1505, and the filtered mineral-rich groundwater is extracted and transported to the electrolytic cell 13 through the water pump 2 1503. After the mineral-rich groundwater enters the electrolytic cell 13, it will gradually rise, thereby contacting the guide block 801, and exerting a force on the guide block 801. After the guide block 801 is subjected to the force, it will rotate, thereby driving the rotating shaft 804 to rotate together in the fixed block 803. When the rotating shaft 804 rotates, the rotating block 805 will stretch the spring three 806, and the spring three 806 will provide a corresponding reaction force to prevent the guide block 801 from rotating excessively, guide the water flow through the guide block 801, and reduce the turbulence of the water flow; Start the two electrode plates 16 to separate hydrogen and oxygen. When the two electrode plates 16 are working, start the condenser 601. The condenser 601 controls the circulation of cooling water inside the condenser tube 603, and thereby takes away the high-temperature gas formed between the heat dissipation fins 604, thereby reducing the temperature of the electrolytic cell 13. In the process of generating hydrogen, hydrogen will enter the water storage bottle 9 through the gas collecting hopper 1001 and the hydrogen conduit 1002, and oxygen will be discharged through the oxygen conduit 1003 and the gas guide plate 1004.
[0030] Although embodiments of the present invention have been shown and described, it will be appreciated by those skilled in the art that various changes, modifications, substitutions and variations may be made to the embodiments without departing from the principles and spirit of the present invention, and that the scope of the present invention is defined by the appended claims and their equivalents.
Claims
1. An active hydrogen water generator and an active hydrogen water device, comprising a hydrogen water generator (1) and a water tank (2), characterized in that: The hydrogen water generator (1) is fixed to the water tank (2); a water storage bottle (9) is provided at the front end of a side of the hydrogen water generator (1) close to the water tank (2); a cover plate (12) is rotatably connected to the top of the hydrogen water generator (1); an electrolytic cell (13) is provided inside the hydrogen water generator (1); a protective frame (14) is provided on the periphery of the electrolytic cell (13); a cooling mechanism (6) is provided on the periphery of the protective frame (14); electrode plates (16) are slidably connected to the left and right sides of the electrolytic cell (13); two diaphragms (17) are slidably connected to the middle of the electrolytic cell (13); a connecting mechanism (5) is provided on the side of the diaphragm (17) away from the electrolytic cell (13); fixing mechanisms (3) are provided on the front and rear sides of the electrode plate (16); and a rear protective plate (11) is provided on the hydrogen water generator (1); The fixing mechanism (3) comprises a protective shell (301), wherein the protective shell (301) is fixed to a side of the electrolytic cell (13) close to the cover plate (12), a push rod (303) is slidably connected to the inner side of the protective shell (301) away from the electrolytic cell (13), a push block (302) is fixed to the end of the push rod (303) away from the electrolytic cell (13), a moving block (306) is fixed to the side of the push rod (303) close to the electrolytic cell (13), movable blocks (307) are slidably provided on the left and right sides of the moving block (306), a slide plate (304) is fixed to the outer periphery of the push rod (303), and the slide plate (304) is fixed to the outer periphery of the push rod (303). 04) A spring (305) is fixed on the side close to the electrolytic cell (13), connecting components (4) are provided on both sides of the movable block (306) close to the two movable blocks (307), a connecting rod (308) is fixed on the side of the movable block (307) close to the electrolytic cell (13), a clamping plate (309) is fixed on the side of the connecting rod (308) close to the electrode plate (16), an air guide mechanism (10) is provided on the side of the electrolytic cell (13) close to the cover plate (12), a filtering mechanism (15) is provided on the side of the electrolytic cell (13) away from the cover plate (12), and a plurality of flow guide mechanisms (8) are provided inside the electrolytic cell (13).
2. The active hydrogen water generator and active hydrogen water equipment according to claim 1, characterized in that: The connecting mechanism (5) comprises a connecting top plate (501), wherein the connecting top plate (501) is fixed on the top of the two diaphragms (17), and a second protective shell (502) is fixed to both the front and rear ends of the connecting top plate (501), and a connecting rod (504) is slidably arranged inside the second protective shell (502), and a push block (503) is fixed to the end of the connecting rod (504) away from the electrolytic cell (13), and a clamping block (505) is fixed to the end of the connecting rod (504) close to the electrolytic cell (13), and a supporting assembly (7) is arranged on the periphery of the connecting rod (504).
3. The active hydrogen water generator and active hydrogen water equipment according to claim 1, characterized in that: The cooling mechanism (6) comprises two condensers (601), the two condensers (601) are respectively fixed on the front and rear sides of the protective frame (14) away from the electrolytic cell (13), a plurality of condensing tubes (603) evenly distributed in a horizontal straight line are fixed to the outside of the condenser (601), two cooling fans (602) are fixed to the side of the condenser (601) away from the protective frame (14), and a plurality of cooling fins (604) evenly distributed in a horizontal straight line are provided on the front and rear sides of the electrolytic cell (13) close to the protective frame (14).
4. The active hydrogen water generator and active hydrogen water equipment according to claim 1, characterized in that: The gas guide mechanism (10) comprises two gas collecting hoppers (1001), the two gas collecting hoppers (1001) are respectively fixed on the left and right sides of the top of the electrolytic cell (13), a hydrogen conduit (1002) is fixed to one end of the gas collecting hopper (1001) away from the electrolytic cell (13), an oxygen conduit (1003) is fixed to the other end of the gas collecting hopper (1001) away from the electrolytic cell (13), a gas guide plate (1004) is installed on the end of the oxygen conduit (1003) away from the gas collecting hopper (1001), and the gas guide plate (1004) is installed on the side of the hydrogen water generator (1) close to the protective plate (11).
5. The active hydrogen water generator and active hydrogen water equipment according to claim 1, characterized in that: The filtering mechanism (15) comprises a filtering box (1501), wherein the filtering box (1501) is installed on a side of the electrolytic cell (13) away from the cover plate (12); a water pump 1 (1502) is provided on a side of the filtering box (1501) close to the water tank (2); a filter plate 1 (1504) and a filter plate 2 (1505) are provided on a side of the filtering box (1501) close to the water pump 1 (1502); two water pumps 2 (1503) are installed on a side of the filtering box (1501) close to the electrolytic cell (13); and a side of the water pump 2 (1503) away from the filtering box (1501) is fixed to the bottom of the electrolytic cell (13).
6. The active hydrogen water generator and active hydrogen water equipment according to claim 1, characterized in that: The flow guiding mechanism (8) comprises a fixed block (803), wherein the fixed block (803) is fixed to the inner wall of the electrolytic cell (13); a movable rod (802) is rotatably provided on a side of the fixed block (803) close to the electrode plate (16); a flow guiding block (801) is fixed on a side of the movable rod (802) away from the fixed block (803); a rotating shaft (804) is fixed on a side of the movable rod (802) close to the fixed block (803); the rotating shaft (804) rotates inside the fixed block (803); a rotating block (805) is fixed on the periphery of the rotating shaft (804); a spring three (806) is fixed on one side of the rotating block (805); a side of the spring three (806) away from the rotating block (805) is fixed inside the fixed block (803); and a through hole (807) is provided inside the flow guiding block (801).
7. The active hydrogen water generator and active hydrogen water equipment according to claim 1, characterized in that: The two connecting assemblies (4) each comprise a wedge-shaped block (401), the two wedge-shaped blocks (401) being respectively fixed on two sides of the moving block (306) close to the two movable blocks (307), the two movable blocks (307) each having a wedge-shaped groove (402) formed therein, and the wedge-shaped blocks (401) slidingly sliding in the wedge-shaped groove (402).
8. The active hydrogen water generator and active hydrogen water equipment according to claim 2, characterized in that: The support assembly (7) comprises a second slide plate (701), wherein the second slide plate (701) is fixed to the outer periphery of the connecting rod (504), and a second spring (702) is fixed to a side of the second slide plate (701) close to the clamping block (505), wherein the second spring (702) is sleeved on the outer periphery of the connecting rod (504).
9. The active hydrogen water generator and active hydrogen water equipment according to claim 4, characterized in that: One end of the hydrogen conduit (1002) away from the gas collecting hopper (1001) is fixed to the top of the water storage bottle (9).
10. A method for producing active hydrogen water, according to any one of the active hydrogen water generators and active hydrogen water equipment according to claims 1-9, characterized in that: The following steps are involved: S1, injecting mineral-rich groundwater into the water tank (2), fixing the electrode plate (16) by means of the clamping plate (309), and inserting the diaphragm (17) into the top position of the electrolytic cell (13); S2, start water pump 1 (1502) and water pump 2 (1503), filter the mineral-rich groundwater in the water tank (2) through filter plate 1 (1504) and filter plate 2 (1505), and then transport it to the electrolytic cell (13); S3, after the mineral-rich groundwater enters the electrolytic cell (13), it contacts the guide block (801), and the guide block (801) guides the water flow by rotating to avoid turbulence of the water flow; S4, starting the electrode plate (16) to separate water molecules in the electrolytic cell (13) to generate hydrogen and oxygen; S5, introducing the generated hydrogen into the water storage bottle (9) through the gas collecting hopper (1001) and the hydrogen conduit (1002), so that the hydrogen and water are fully mixed to form active hydrogen water; S6. Start the condenser (601) and allow cooling water to flow between the condenser tube (603) and the heat sink fins (604) to reduce the temperature of the electrolytic cell (13) and ensure stable operation of the equipment.