A hydrogen-rich water generating device
By using electrolysis and gravity separation technologies, the problem of separating oxygen and hydrogen in existing hydrogen-rich water devices has been solved, enabling efficient production and stable hydrogen content of hydrogen-rich water.
Patent Information
- Application Number
- CN202510467060.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-15
- Publication Date
- 2025-12-30
- Estimated Expiration
- 2045-04-15
AI Technical Summary
Existing hydrogen-rich water generators cannot produce hydrogen using the principle of electrolysis, and cannot effectively separate oxygen and hydrogen, which affects the hydrogen content and production efficiency of hydrogen-rich water.
An electrolysis mechanism is used to decompose water into hydrogen and oxygen. The density difference between hydrogen and oxygen is used to separate them by gravity. The hydrogen is then uniformly dissolved in the water by a dissolving mechanism, and the dissolution effect is accelerated by a stirring mechanism.
It achieves efficient separation of oxygen and hydrogen, ensures stable hydrogen content in hydrogen-rich water, and improves production efficiency and hydrogen dissolution rate.
Smart Images

Figure CN120247221B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of water treatment technology, specifically to a hydrogen-rich water generator. Background Technology
[0002] Hydrogen-rich water, also known as hydrogen-rich water, refers to water with a suitable amount of dissolved hydrogen gas. In recent years, it has received widespread attention due to its potential health and medical benefits. Hydrogen is a colorless, odorless, and non-toxic gas with extremely strong permeability and antioxidant capacity. Studies have shown that hydrogen can selectively neutralize harmful free radicals in the body, such as hydroxyl radicals and peroxynitrite, thereby reducing oxidative stress damage to cells. This property makes hydrogen-rich water potentially effective in preventing and assisting in the treatment of various diseases, such as cardiovascular disease, metabolic syndrome, neurodegenerative diseases, and inflammation-related diseases. Furthermore, hydrogen-rich water is believed to help relieve muscle fatigue after exercise, improve skin condition, and promote overall health. Hydrogen-rich water is typically prepared through electrolysis or physical dissolution methods, ensuring a stable hydrogen concentration between 0.5 and 1.6 ppm. Although the health benefits of hydrogen-rich water are supported by some scientific research, its specific mechanisms of action and long-term effects still require further in-depth investigation.
[0003] A Chinese invention patent publication (CN118666399B) discloses a device for generating hydrogen-rich water. The device includes a tank and a support leg fixed to the lower part of the outer wall of the tank. The tank is placed horizontally. An axial mesh cylinder is provided at the center of the tank's interior. A hydrogen-water rod is installed inside the mesh cylinder. A spiral plate is provided between the outer wall of the mesh cylinder and the inner wall of the tank. The spiral plate is fitted onto the outer wall of the mesh cylinder. The outer edge of the spiral plate contacts the inner wall of the tank. The inner edge of the spiral plate adapts to the outer wall of the mesh cylinder. One end of the tank's outer wall is positioned at the upper part... The device is equipped with a water inlet connector. This invention forms a spiral flow channel by setting a spiral plate inside the tank, so that ordinary water comes into contact with the hydrogen water rod in the mesh cylinder after passing through the spiral flow channel to form hydrogen-rich water. Compared with the existing contact method, it prolongs the contact time and contact path between ordinary water and hydrogen water rod, thereby further improving the quality of hydrogen-rich water and realizing continuous production of hydrogen-rich water. Although this solution can realize continuous production of hydrogen-rich water, it requires the use of hydrogen rods and cannot use the principle of electrolysis to generate hydrogen to realize the production of hydrogen-rich water. Summary of the Invention
[0004] To achieve the above objectives, the present invention is implemented through the following technical solution: a hydrogen-rich water generator, comprising a base and a support frame fixedly connected to the upper surface of the base;
[0005] An electrolysis mechanism is used to decompose water into oxygen and hydrogen under the action of direct current. By setting up an electrolysis mechanism, the internal water flow can be electrolyzed when the machine is working and connected to a power source. The principle is to use direct current to decompose water into hydrogen and oxygen. During the electrolysis process, a reduction reaction occurs at the cathode to generate hydrogen, and an oxidation reaction occurs at the anode to generate oxygen. The overall reaction is the decomposition of water into hydrogen and oxygen.
[0006] The separation mechanism is used to separate the oxygen and hydrogen produced by the electrolysis mechanism, and the connecting frame is fixedly connected to the outer side of the separation mechanism. By setting the separation mechanism, the hydrogen and oxygen produced by the electrolysis mechanism can be separated. By taking advantage of the fact that the density of hydrogen is much lower than that of oxygen, the hydrogen and oxygen can be separated by gravity. This prevents oxygen from affecting the hydrogen content of hydrogen-rich water when it is subsequently produced.
[0007] The dissolving mechanism is used to dissolve the generated hydrogen in water. By setting up the dissolving mechanism, the separated hydrogen can be evenly sprayed into the water flow, and the internal water and hydrogen can be stirred during the oxygen spraying process, thereby accelerating the hydrogen dissolution effect.
[0008] The electrolysis mechanism is fixedly connected to the outer surface of the support frame, the connecting frame is fixedly connected to the upper surface of the support frame, the separation mechanism is fixedly connected to the upper surface of the support frame through the connecting frame, and the dissolving mechanism is fixedly connected to the inner wall of the support frame.
[0009] The electrolysis mechanism includes two fixed plates, which are symmetrically fixed to the outer surface of the support frame. A cathode plate and an anode plate are arranged between the opposite faces of the fixed plates. By setting two fixed plates, the electrolysis cell can be enclosed. By setting the cathode plate and anode plate, when direct current is applied, the cathode plate and anode plate can electrolyze the water inside, thereby producing hydrogen and oxygen.
[0010] Preferably, an exhaust pipe is passed through the top of the outer surface of the fixing plate, a first water inlet pipe is passed through the bottom of the outer surface of the fixing plate, a first electrical terminal is fixedly connected to the upper surface of the cathode plate, and a second electrical terminal is fixedly connected to the upper surface of the anode plate.
[0011] Preferably, a first sealing ring is fixedly connected to the outer side of the cathode plate, and the first sealing ring is squeezed and adapted to the outer surface of the fixed plate. A diaphragm is provided on the side of the cathode plate away from the fixed plate, and a second sealing ring is fixedly connected to the outer ring of the diaphragm. A bipolar plate is provided on the side of the diaphragm away from the cathode plate. The number of diaphragms and bipolar plates is several, and the several diaphragms and bipolar plates are spaced apart.
[0012] Preferably, a positioning ring is fixedly connected to the outer ring of the bipolar plate, and a threaded rod is movably connected to the inner ring of the positioning ring. The threaded rod passes through the fixed plate, and a nut is threadedly connected to the end of the threaded rod. A water outlet pipe passes through the diaphragm and the outer surface of the bipolar plate, and the end of the water outlet pipe is fixedly connected to the bottom end of the first water inlet pipe.
[0013] Preferably, the separation mechanism includes a separation box, which is fixedly connected to the top of the connecting frame. An inclined plate is fixedly connected to the inner wall of the separation box. A hydrogen exhaust pipe passes through the top of the outer side of the separation box, and an oxygen exhaust pipe passes through the bottom of the outer side of the separation box. A connecting cover is fixedly connected to the opening of the separation box, and a first connecting pipe passes through the opening of the connecting cover. A wrapping tube is fixedly connected to the end of the first connecting pipe.
[0014] Preferably, the separation mechanism further includes a first merging pipe, which is fixedly connected to the end of the exhaust pipe. A horizontal pipe is fixedly connected to the end of the first merging pipe. A flow regulating mechanism is provided on the outer surface of the horizontal pipe. The flow regulating mechanism includes a track bar, which is fixedly connected to the outer surface of the horizontal pipe. A sliding ring is slidably connected to the outer surface of the track bar.
[0015] Preferably, a support rod is fixedly connected to the outer surface of the sliding ring, and a sliding tube is fixedly connected to the end of the support rod. The sliding tube is sleeved on the end of the horizontal tube, and a blocking tube is fixedly connected to the inner cavity of the sliding tube. The blocking tube is rubbed and adapted to the inner wall of the wrapping tube. A first vent plate is fixedly connected to the inner wall of the horizontal tube, and a first blocking rod is fixedly connected to the outer surface of the first vent plate. A first sealing gasket is fixedly connected to the end of the first blocking rod, and the first sealing gasket is squeezed and adapted to the inner wall of the blocking tube.
[0016] Preferably, the dissolving mechanism includes a dissolving tank, which is fixedly connected to the inner wall of the support frame. A second water inlet pipe passes through the upper surface of the dissolving tank, and a second confluence pipe passes through the lower surface of the dissolving tank. A drain valve passes through the lower surface of the second confluence pipe. An exhaust mechanism is provided at the opening of the dissolving tank. The exhaust mechanism includes a connecting cover, and a third sealing ring is fixedly connected to the outer surface of the connecting cover. The third sealing ring is squeezed and adapted to the inner wall of the dissolving tank. A connecting box passes through the outer surface of the connecting cover, and a diverter pipe passes through the outer surface of the connecting box. A second connecting pipe passes through the upper surface of the diverter pipe, and the top end of the second connecting pipe is fixedly connected to the end of the hydrogen exhaust pipe.
[0017] Preferably, an air outlet pipe is fixedly connected to the inner cavity of the connecting box, a vent pipe is fixedly connected to the end of the air outlet pipe, a second vent plate is fixedly connected to the inner wall of the air outlet pipe, a first spring is fixedly connected to the outer surface of the second vent plate, a blocking block is fixedly connected to the end of the first spring, a second sealing gasket is fixedly connected to the outer surface of the blocking block, a blocking ring is sleeved on the outer surface of the second sealing gasket, and the blocking ring is fixedly connected to the inner wall of the air outlet pipe.
[0018] Preferably, the upper surface of the dissolving tank is permeated by a stirring mechanism, which includes a first limiting tube penetrating the upper surface of the dissolving tank, a second limiting tube penetrating the top end of the first limiting tube, a third connecting tube fixedly connected to the end of the second limiting tube, the end of the third connecting tube fixedly connected to the opening of the oxygen discharge pipe, a third vent plate fixedly connected to the inner wall of the second limiting tube, a second spring fixedly connected to the outer surface of the third vent plate, a second blocking rod fixedly connected to the end of the second spring, a third sealing gasket fixedly connected to the outer surface of the second blocking rod, the third sealing gasket being squeezed and adapted to the inner wall of the second limiting tube, a third blocking rod slidably connected to the inner cavity of the first limiting tube, a fourth sealing gasket fixedly connected to the outer surface of the third blocking rod, a support plate fixedly connected to the bottom end of the third blocking rod, a third spring fixedly connected to the upper surface of the support plate, a fixing block fixedly connected to the top end of the third spring, the fixing block being fixedly connected to the top surface of the inner cavity of the dissolving tank, and a stirring plate fixedly connected to the lower surface of the support plate.
[0019] This invention provides a hydrogen-rich water generator. It has the following beneficial effects:
[0020] I. This hydrogen-rich water generator, by incorporating an electrolysis mechanism, can electrolyze the internal water flow when it is in operation and connected to a power source. Its principle is to use direct current to decompose water into hydrogen and oxygen. During electrolysis, a reduction reaction occurs at the cathode to generate hydrogen, and an oxidation reaction occurs at the anode to generate oxygen. The overall reaction is the decomposition of water into hydrogen and oxygen.
[0021] Second, this hydrogen-rich water generator, by setting up a separation mechanism, can separate hydrogen and oxygen generated by electrolysis. By taking advantage of the fact that the density of hydrogen is much lower than that of oxygen, hydrogen and oxygen can be separated by gravity. This prevents oxygen from affecting the hydrogen content in the hydrogen-rich water during subsequent production.
[0022] Third, this hydrogen-rich water generator, through a dissolution mechanism, can evenly spray the separated hydrogen into the water flow, and can agitate the water and hydrogen inside during the oxygen spraying process, thereby accelerating the hydrogen dissolution effect.
[0023] IV. This hydrogen-rich water generator, by setting up an inclined plate, can utilize the fact that the density of hydrogen is much lower than that of oxygen. By taking advantage of this characteristic, hydrogen and oxygen can be separated by gravity. Hydrogen and oxygen entering the separation chamber through the connecting cover are separated, so that hydrogen enters the inner cavity of the hydrogen discharge pipe through the top of the inclined plate, while oxygen, due to its higher density, enters the inner cavity of the oxygen discharge pipe through the bottom of the inclined plate.
[0024] V. This hydrogen-rich water generator, by setting up a first limiting tube and a second limiting tube, allows oxygen to enter the inner cavities of the first and second limiting tubes when the oxygen discharge pipe enters the second limiting tube through the third connecting pipe. This oxygen then compresses the second and third blocking rods inside, blocking the interior of the first and second limiting tubes and preventing air from flowing out. As oxygen continues to enter the inner cavity of the second limiting tube, the second blocking rod moves to the right, allowing air to escape. During the escaping process, the air pressure inside the first limiting tube returns to equilibrium, causing the third blocking rod to move the support plate and stirring plate upwards, thus agitating the water flow in the dissolving tank. Attached Figure Description
[0025] Figure 1 This is a schematic diagram of the external structure of a hydrogen-rich water generator according to the present invention;
[0026] Figure 2 This is a front view of the structure of a hydrogen-rich water generator according to the present invention;
[0027] Figure 3 This is a schematic diagram of the electrolysis mechanism of the present invention;
[0028] Figure 4 This is a schematic diagram of the disassembled structure of the electrolysis mechanism of the present invention;
[0029] Figure 5 This is a partial structural diagram of the electrolysis mechanism of the present invention;
[0030] Figure 6 This is a schematic diagram of the separation mechanism of the present invention;
[0031] Figure 7 This is a schematic diagram of the flow regulation mechanism of the present invention;
[0032] Figure 8 This is a schematic cross-sectional view of the separation mechanism of the present invention;
[0033] Figure 9 This is a schematic diagram of the dissolving mechanism of the present invention;
[0034] Figure 10 This is a schematic diagram of the dissolution mechanism of the present invention.
[0035] Figure 11 This is a schematic diagram of the air outlet mechanism of the present invention;
[0036] Figure 12 For the present invention Figure 11 Enlarged schematic diagram of structure A in the middle;
[0037] Figure 13 This is a schematic diagram of the stirring mechanism of the present invention.
[0038] In the diagram: 1. Base; 2. Support frame; 3. Electrolysis mechanism; 4. Connecting frame; 5. Separation mechanism; 6. Dissolving mechanism; 31. Fixing plate; 32. Exhaust pipe; 33. First water inlet pipe; 34. First sealing ring; 35. Cathode plate; 36. First electrode post; 37. Bipolar plate; 38. Positioning ring; 39. Diaphragm; 310. Anode plate; 311. Second electrode post; 312. Threaded rod; 313. Nut; 314. Outlet... Water pipe; 315, Second sealing ring; 51, First confluence pipe; 52, Horizontal pipe; 53, Flow regulating mechanism; 54, Separation box; 55, Inclined plate; 56, Hydrogen exhaust pipe; 57, Oxygen exhaust pipe; 58, Connecting cover; 59, First connecting pipe; 510, Wrapping pipe; 531, Track bar; 532, Sliding ring; 533, Support rod; 534, Sliding pipe; 535, Blocking pipe; 536, First vent plate; 537 538. First blocking rod; 649. First sealing gasket; 65. Dissolving tank; 66. Second confluence pipe; 67. Drain valve; 68. Air outlet mechanism; 69. Second connecting pipe; 60. Third connecting pipe; 61. Stirring mechanism; 62. Second water inlet pipe; 63. Connecting cover; 64. Connecting box; 64. Diverter pipe; 64. Third sealing ring; 645. Air outlet pipe; 646. Vent pipe; 647. Second vent plate; 648. 649. First spring; 6410. Blocking block; 6411. Second sealing gasket; 671. Blocking ring; 672. First limiting tube; 673. Second limiting tube; 674. Third vent plate; 675. Second blocking rod; 676. Third sealing gasket; 677. Third blocking rod; 678. Fourth sealing gasket; 679. Support plate; 6710. Stirring plate; 6711. Third spring; 6712. Fixing block. Detailed Implementation
[0039] The present invention will now be described in further detail with reference to the accompanying drawings and specific embodiments. The embodiments of the present invention are given for illustrative and descriptive purposes only, and are not intended to be exhaustive or to limit the invention to the forms disclosed. Many modifications and variations will be apparent to those skilled in the art. The embodiments were chosen and described to better illustrate the principles and practical application of the invention, and to enable those skilled in the art to understand the invention and design various embodiments with various modifications suitable for a particular purpose.
[0040] like Figures 1-13 As shown, the present invention provides a technical solution: a hydrogen-rich water generator, including a base 1 and a support frame 2 fixedly connected to the upper surface of the base 1.
[0041] Electrolysis mechanism 3 is used to decompose water into oxygen and hydrogen under the action of direct current. By setting electrolysis mechanism 3, the internal water flow can be electrolyzed when it is working and connected to a power source. The principle is to use direct current to decompose water into hydrogen and oxygen. During the electrolysis process, a reduction reaction occurs at the cathode to generate hydrogen, and an oxidation reaction occurs at the anode to generate oxygen. The overall reaction is the decomposition of water into hydrogen and oxygen.
[0042] The separation mechanism 5 is used to separate the oxygen and hydrogen produced by the electrolysis unit 3, and the connecting frame 4 is fixedly connected to the outer side of the separation mechanism 5. By setting the separation mechanism 5, the hydrogen and oxygen produced by the electrolysis unit 3 can be separated. By taking advantage of the fact that the density of hydrogen is much lower than that of oxygen, the hydrogen and oxygen can be separated by gravity. This prevents oxygen from affecting the hydrogen content in the hydrogen-rich water during the subsequent production of hydrogen-rich water.
[0043] The dissolving mechanism 6 is used to dissolve the generated hydrogen in water. By setting the dissolving mechanism 6, the separated hydrogen can be sprayed evenly into the water flow, and the water and hydrogen inside can be stirred during the oxygen spraying process, thereby achieving a faster hydrogen dissolution effect.
[0044] Electrolysis mechanism 3 is fixedly connected to the outer surface of support frame 2, connecting frame 4 is fixedly connected to the upper surface of support frame 2, separation mechanism 5 is fixedly connected to the upper surface of support frame 2 through connecting frame 4, and dissolution mechanism 6 is fixedly connected to the inner wall of support frame 2.
[0045] The electrolysis mechanism 3 includes two fixing plates 31, which are symmetrically fixed to the outer surface of the support frame 2. A cathode plate 35 and an anode plate 310 are arranged between the opposite faces of the fixing plates 31. By setting two fixing plates 31, the electrolysis cell can be wrapped. By setting the cathode plate 35 and the anode plate 310, when a direct current is connected, the cathode plate 35 and the anode plate 310 can electrolyze the water inside, thereby producing hydrogen and oxygen.
[0046] An exhaust pipe 32 passes through the top of the outer surface of the fixed plate 31, and a first water inlet pipe 33 passes through the bottom of the outer surface of the fixed plate 31. A first electrical terminal 36 is fixedly connected to the upper surface of the cathode plate 35, and a second electrical terminal 311 is fixedly connected to the upper surface of the anode plate 310. By setting the exhaust pipe 32, the generated hydrogen and oxygen can be discharged. By setting the first water inlet pipe 33, water can be easily poured into the electrolytic cell. By setting the first electrical terminal 36 and the second electrical terminal 311, the cathode plate 35 and the anode plate 310 can be connected to the DC power output, respectively. At the cathode plate 35, a first sealing ring 34 is fixedly connected to the outer side. The first sealing ring 34 is pressed and fitted against the outer surface of the fixed plate 31. A diaphragm 39 is provided on the side of the cathode plate 35 away from the fixed plate 31. A second sealing ring 315 is fixedly connected to the outer ring of the diaphragm 39. A bipolar plate 37 is provided on the side of the diaphragm 39 away from the cathode plate 35. There are several diaphragms 39 and bipolar plates 37, and these diaphragms 39 and bipolar plates 37 are spaced apart. By providing the first sealing ring 34, water flow can be prevented from flowing between the cathode plate 35 and the fixed plate 31, and between the anode plate 31 and the fixed plate 32. The gap between the diaphragm 39 and the fixed plate 31 is drained by a diaphragm 39 and a second sealing ring 315, the main function of which is to separate the anode and cathode areas and prevent hydrogen and oxygen from mixing. During the electrolysis of water, oxygen is generated at the anode and hydrogen is generated at the cathode. A positioning ring 38 is fixedly connected to the outer ring of the bipolar plate 37, and a threaded rod 312 is movably connected to the inner ring of the positioning ring 38. The threaded rod 312 passes through the fixed plate 31, and a nut 313 is threaded to the end of the threaded rod 312. A water outlet pipe 314 passes through the diaphragm 39 and the outer surface of the bipolar plate 37. The end of the water outlet pipe 314... The part is fixedly connected to the bottom end of the first water inlet pipe 33. By setting the positioning ring 38, the threaded rod 312 and the nut 313, several bipolar plates 37 and diaphragms 39 can be connected together. When the threaded rod 312 is inserted into the inner cavity of the positioning ring 38, the nut 313 is tightened to the end of the threaded rod 312, thereby positioning and wrapping several diaphragms 39, bipolar plates 37, anode plates 310 and cathode plates 35, thereby forming an electrolytic cell inside. By setting the water outlet pipe 314 and the first water inlet pipe 33, water can be poured into several electrolytic cells.
[0047] The separation mechanism 5 includes a separation box 54, which is fixedly connected to the top of the connecting frame 4. An inclined plate 55 is fixedly connected to the inner wall of the separation box 54. A hydrogen exhaust pipe 56 passes through the top of the outer side of the separation box 54, and an oxygen exhaust pipe 57 passes through the bottom of the outer side of the separation box 54. A connecting cover 58 is fixedly connected to the opening of the separation box 54, and a first connecting pipe 59 passes through the opening of the connecting cover 58. A wrapping tube 510 is fixedly connected to the end of the first connecting pipe 59. By setting the inclined plate 55, the density of hydrogen is much lower than that of oxygen. This characteristic can be used to separate hydrogen and oxygen by gravity, allowing the hydrogen to enter through the connecting cover 58. Hydrogen and oxygen in the inner cavity of the separation chamber 54 are separated, so that hydrogen enters the inner cavity of the hydrogen discharge pipe 56 through the upper part of the inclined plate 55, while oxygen, due to its higher density, enters the inner cavity of the oxygen discharge pipe 57 through the lower part of the inclined plate 55. The separation mechanism 5 also includes a first confluence pipe 51, which is fixedly connected to the end of the exhaust pipe 32. A horizontal pipe 52 is fixedly connected to the end of the first confluence pipe 51. A flow regulating mechanism 53 is provided on the outer surface of the horizontal pipe 52. The flow regulating mechanism 53 includes a track bar 531, which is fixedly connected to the outer surface of the horizontal pipe 52. A sliding ring 532 is slidably connected to the outer surface of the track bar 531. By setting the first confluence pipe 51, hydrogen and oxygen generated by electrolysis by the electrolysis unit 3 can enter the inner cavity of the horizontal pipe 52 through the first confluence pipe 51. By setting the flow regulating mechanism 53, the flow rate of hydrogen and oxygen discharged from the horizontal pipe 52 can be controlled, thereby controlling the separation effect of hydrogen and oxygen. By setting the track bar 531, the sliding ring 532 can be limited, so that the sliding ring 532 can move laterally on the outer surface of the horizontal pipe 52 without rotating. A support rod 533 is fixedly connected to the outer surface of the sliding ring 532. A sliding tube 534 is fixedly connected to the end of the support rod 533. The sliding tube 534 is sleeved on the end of the horizontal pipe 52. A blocking tube 535 is fixedly connected to the inner cavity of the sliding tube 534. The blocking tube 535 is rubbed and adapted to the inner wall of the wrapping tube 510. The inner cavity of the horizontal pipe 52... A first vent plate 536 is fixedly connected to the wall. A first blocking rod 537 is fixedly connected to the outer surface of the first vent plate 536. A first sealing gasket 538 is fixedly connected to the end of the first blocking rod 537. The first sealing gasket 538 is squeezed and adapted to the inner wall of the blocking tube 535. By setting the first vent plate 536, airflow can be generated through the holes of the first vent plate 536. By setting the sliding tube 534, when the sliding ring 532 drives the support rod 533 to move laterally on the outer surface of the horizontal tube 52, the sliding tube 534 can drive the blocking tube 535 to move laterally. By setting the first blocking rod 537 and the first sealing gasket 538, when the sliding tube 534 moves laterally, the blocking tube 535 can gradually detach from the first sealing gasket 538, thereby increasing the size of the air outlet.
[0048] The dissolving mechanism 6 includes a dissolving tank 61, which is fixedly connected to the inner wall of the support frame 2. A second water inlet pipe 68 passes through the upper surface of the dissolving tank 61, and a second confluence pipe 62 passes through the lower surface of the dissolving tank 61. A drain valve 63 passes through the lower surface of the second confluence pipe 62. An air venting mechanism 64 is provided at the opening of the dissolving tank 61. The air venting mechanism 64 includes a connecting cover 641, and a third sealing ring 644 is fixedly connected to the outer surface of the connecting cover 641. The third sealing ring 644 is squeezed and adapted to the inner wall of the dissolving tank 61. A connecting box 642 passes through the outer surface of the connecting cover 641, and a diverter passes through the outer surface of the connecting box 642. A second connecting pipe 65 penetrates the upper surface of pipe 643, and the top end of the second connecting pipe 65 is fixedly connected to the end of hydrogen discharge pipe 56. A second water inlet pipe 68 allows water to be easily poured into the inner cavity of the dissolving tank 61. A second confluence pipe 62 and a drain valve 63 allow the dissolved hydrogen water inside the dissolving tank 61 to be discharged through these pipes. The drain valve 63 controls the outflow rate of the hydrogen-rich water inside the second confluence pipe 62. A third sealing ring 644 enhances the seal between the connecting cover 641 and the dissolving tank 61. By providing a second connecting pipe 65, the diversion pipe 643 can be connected to the hydrogen discharge pipe 56. An outlet pipe 645 is fixedly connected to the inner cavity of the connecting box 642. A vent pipe 646 is fixedly connected to the end of the outlet pipe 645. A second vent plate 647 is fixedly connected to the inner wall of the outlet pipe 645. A first spring 648 is fixedly connected to the outer surface of the second vent plate 647. A blocking block 649 is fixedly connected to the end of the first spring 648. A second sealing gasket 6410 is fixedly connected to the outer surface of the blocking block 649. A blocking ring 6411 is fitted onto the outer surface of the second sealing gasket 6410. 1. Fixedly connected to the inner wall of the vent pipe 645, the vent pipe 645 and the breather pipe 646 are provided to discharge the hydrogen gas discharged through the hydrogen discharge pipe 56, allowing the hydrogen gas to be discharged into the water flow in the inner cavity of the dissolving tank 61. By providing a blocking ring 6411, hydrogen gas can be prevented from being discharged from the vent pipe 645 when it comes into contact with the blocking block 649 and the second sealing gasket 6410. By providing a first spring 648, the blocking block 649 can be squeezed, so that when no hydrogen gas is discharged, the blocking block 649 blocks the blocking ring 6411, thereby preventing water from entering the inner cavity of the vent pipe 645.
[0049] A stirring mechanism 67 penetrates the upper surface of the dissolving tank 61. The stirring mechanism 67 includes a first limiting tube 671, which penetrates the upper surface of the dissolving tank 61. A second limiting tube 672 penetrates the top end of the first limiting tube 671. A third connecting tube 66 is fixedly connected to the end of the second limiting tube 672. The end of the third connecting tube 66 is fixedly connected to the opening of the oxygen discharge pipe 57. A third vent plate 673 is fixedly connected to the inner wall of the second limiting tube 672. A second spring 674 is fixedly connected to the outer surface of the third vent plate 673. A second blocking rod 675 is fixedly connected to the end of the second spring 674. A third sealing gasket 676 is fixedly connected to the outer surface of the second blocking rod 675. The third sealing gasket 676 is squeezed and adapted to the inner wall of the second limiting tube 672. A third blocking rod 677 is slidably connected to the inner cavity of the first limiting tube 671. A fourth sealing gasket 678 is fixedly connected to the outer surface of the third blocking rod 677. A support plate 679 is fixedly connected to the bottom end of the third blocking rod 677. A third spring 6711 is fixedly connected to the upper surface of the support plate 679. A fixing block 6712 is fixedly connected to the top of the 11, and the fixing block 6712 is fixedly connected to the top surface of the inner cavity of the dissolving tank 61. A stirring plate 6710 is fixedly connected to the lower surface of the support plate 679. By setting the first limiting tube 671 and the second limiting tube 672, when the oxygen discharge pipe 57 enters the second limiting tube 672 through the third connecting pipe 66, oxygen can enter the inner cavity of the first limiting tube 671 and the second limiting tube 672, thereby squeezing the second blocking rod 675 and the third blocking rod 677 inside. The second blocking rod 675 and the third blocking rod 677 can block the interior of the first limiting tube 671 and the second limiting tube 672, thereby preventing air from flowing out. When oxygen continues to enter the inner cavity of the second limiting tube 672, the second blocking rod 675 moves to the right, allowing the air to be discharged. During the discharge process, the air pressure inside the first limiting tube 671 returns to equilibrium, which causes the third blocking rod 677 to drive the support plate 679 and the stirring plate 6710 to move upward, achieving the effect of stirring the water flow in the inner cavity of the dissolving tank 61.
[0050] Working Principle: During use, the operator connects the first water inlet pipe 33 to a faucet and continuously pours water into the inner cavity of the electrolysis mechanism 3. Simultaneously, the second water inlet pipe 68 is connected to the faucet, ensuring the water level completely covers the vent pipe 646. Then, the first electrode post 36 and the second electrode post 311 are connected to a DC power supply, and the power switch is turned on. This connects the anode plate 310, cathode plate 35, and several bipolar plates 37 to the circuit. During water electrolysis, oxygen is produced at the anode, and hydrogen is produced at the cathode. The generated hydrogen and oxygen are discharged through the exhaust pipe 32 into the inner cavity of the first confluence pipe 51 and then into the inner cavity of the horizontal pipe 52. Afterward, they enter the inner cavity of the separation box 54 through the first connecting pipe 59 and the connecting cover 58. Due to the significant density difference between hydrogen and oxygen, hydrogen enters the inner cavity of the hydrogen discharge pipe 56 through the upper part of the inclined plate 55, while oxygen, due to its higher density, passes through the lower part of the inclined plate 55. The oxygen enters the inner cavity of the oxygen discharge pipe 57, and finally the hydrogen enters the inner cavity of the connecting box 642 and the outlet pipe 645 through the second connecting pipe 65 and the diversion pipe 643, and is discharged into the dissolving tank 61 filled with water through the vent pipe 646. When the oxygen is discharged into the inner cavity of the second limiting pipe 672 through the oxygen discharge pipe 57 and the third connecting pipe 66, the internal air pressure will increase, which will cause the third blocking rod 677 to drive the support plate 679 and the stirring plate 6710 to move downward in the inner cavity of the dissolving tank 61, while the second blocking rod 675 will move to the right, so that the third sealing gasket 676 will no longer block the second limiting pipe 672, thereby restoring the internal air pressure balance. Under the action of the third spring 6711, the stirring plate 6710 will rebound upward. This cycle works to achieve the effect of stirring the internal water and hydrogen, accelerating the mixing of hydrogen. Then, the drain valve 63 is opened to discharge the hydrogen-rich water.
[0051] Obviously, the described embodiments are only a part of the embodiments of the present invention, and not all of them. All other embodiments obtained by those skilled in the art and related fields based on the embodiments of the present invention without inventive effort should fall within the scope of protection of the present invention. Structures, devices, and operating methods not specifically described and explained in the present invention, unless otherwise specified or limited, shall be implemented according to conventional means in the art.
Claims
1. A hydrogen-rich water generating device characterized by comprising: Include: Base (1), and fixedly connected to the upper surface of the base (1) support frame (2); Electrolytic mechanism (3), the electrolytic mechanism (3) is used for decomposing water into oxygen and hydrogen under the action of direct current; Separation mechanism (5), the separation mechanism (5) is used for shunting the oxygen and hydrogen electrolyzed by the electrolytic mechanism (3), and the connecting frame (4) is fixedly connected to the outer side of the separation mechanism (5); Dissolution mechanism (6), the dissolution mechanism (6) is used for dissolving the generated hydrogen in water; The electrolytic mechanism (3) is fixedly connected to the outer surface of the support frame (2), the connecting frame (4) is fixedly connected to the upper surface of the support frame (2), the separation mechanism (5) is fixedly connected to the upper surface of the support frame (2) through the connecting frame (4), and the dissolution mechanism (6) is fixedly connected to the inner wall of the support frame (2); The electrolytic mechanism (3) includes a fixed plate (31), the number of the fixed plate (31) is two, and the two fixed plates (31) are symmetrically fixedly connected to the outer surface of the support frame (2), and the opposite surfaces of the fixed plate (31) are provided with a cathode plate (35) and an anode plate (310); The dissolution mechanism (6) includes a dissolution box (61), the dissolution box (61) is fixedly connected to the inner wall of the support frame (2), the upper surface of the dissolution box (61) penetrates a second water inlet pipe (68), the lower surface of the dissolution box (61) penetrates a second flow pipe (62), the lower surface of the second flow pipe (62) penetrates a drain valve (63), the opening of the dissolution box (61) is provided with an air outlet mechanism (64), the air outlet mechanism (64) includes a connecting cover (641), the outer surface of the connecting cover (641) is fixedly connected with a third sealing ring (644), the third sealing ring (644) is in extrusion fit with the inner wall of the dissolution box (61), the outer surface of the connecting cover (641) penetrates a connecting box (642), the outer surface of the connecting box (642) penetrates a shunt pipe (643), the upper surface of the shunt pipe (643) penetrates a second connecting pipe (65), and the top end of the second connecting pipe (65) is fixedly connected to the end of the hydrogen discharge pipe (56); The inner cavity of the connecting box (642) is fixedly connected with an air outlet pipe (645), the end of the air outlet pipe (645) is fixedly connected with a gas permeable pipe (646), the inner wall of the air outlet pipe (645) is fixedly connected with a second gas permeable plate (647), the outer surface of the second gas permeable plate (647) is fixedly connected with a first spring (648), the end of the first spring (648) is fixedly connected with a plug block (649), the outer surface of the plug block (649) is fixedly connected with a second sealing gasket (6410), the outer surface of the second sealing gasket (6410) is sleeved with a plug ring (6411), and the plug ring (6411) is fixedly connected to the inner wall of the air outlet pipe (645); The upper surface of the dissolving box (61) is penetrated through with an agitating mechanism (67), the agitating mechanism (67) comprises a first limiting pipe (671), the first limiting pipe (671) penetrates through the upper surface of the dissolving box (61), the top end of the first limiting pipe (671) is penetrated through with a second limiting pipe (672), the end of the second limiting pipe (672) is fixedly connected with a third connecting pipe (66), the end of the third connecting pipe (66) is fixedly connected at the opening of the oxygen discharge pipe (57), the inner wall of the second limiting pipe (672) is fixedly connected with a third air-permeable plate (673), the outer surface of the third air-permeable plate (673) is fixedly connected with a second spring (674), the end of the second spring (674) is fixedly connected with a second blocking rod (675), the outer surface of the second blocking rod (675) is fixedly connected with a third sealing gasket (676), the third sealing gasket (676) is extrudedly matched with the inner wall of the second limiting pipe (672), the inner cavity of the first limiting pipe (671) is slidingly connected with a third blocking rod (677), the outer surface of the third blocking rod (677) is fixedly connected with a fourth sealing gasket (678), the bottom end of the third blocking rod (677) is fixedly connected with a supporting plate (679), the upper surface of the supporting plate (679) is fixedly connected with a third spring (6711), the top end of the third spring (6711) is fixedly connected with a fixed block (6712), the fixed block (6712) is fixedly connected to the top surface of the inner cavity of the dissolving box (61), and the lower surface of the supporting plate (679) is fixedly connected with an agitating plate (6710).
2. The hydrogen-rich water generating device according to claim 1, characterized by: The top of the outer surface of the fixed plate (31) is penetrated through with an exhaust pipe (32), the bottom of the outer surface of the fixed plate (31) is penetrated through with a first water inlet pipe (33), the upper surface of the cathode plate (35) is fixedly connected with a first power connection column (36), and the upper surface of the anode plate (310) is fixedly connected with a second power connection column (311).
3. The hydrogen-rich water generating device according to claim 2, characterized by: The outer side of the cathode plate (35) is fixedly connected with a first sealing ring (34), the first sealing ring (34) is extrudedly matched with the outer surface of the fixed plate (31), the side, away from the fixed plate (31), of the cathode plate (35) is provided with a diaphragm (39), the outer ring of the diaphragm (39) is fixedly connected with a second sealing ring (315), the side, away from the cathode plate (35), of the diaphragm (39) is provided with a bipolar plate (37), the number of the diaphragm (39) and the bipolar plate (37) is several, and the several diaphragms (39) and bipolar plates (37) are arranged at intervals.
4. The hydrogen-rich water generating device according to claim 3, characterized by: The outer ring of the bipolar plate (37) is fixedly connected with a positioning ring (38), the inner ring of the positioning ring (38) is movably connected with a threaded rod (312), the threaded rod (312) penetrates through the fixed plate (31), the end of the threaded rod (312) is threadedly connected with a nut (313), the diaphragm (39) penetrates through the outer surface of the bipolar plate (37) with a water outlet pipe (314), and the end of the water outlet pipe (314) is fixedly connected with the bottom end of the first water inlet pipe (33).
5. The hydrogen-rich water generating device according to claim 4, characterized by: The separation mechanism (5) comprises a separation box (54) fixedly connected to the top end of the connecting frame (4), an inclined plate (55) fixedly connected to the inner wall of the separation box (54), a hydrogen gas discharge pipe (56) penetrating through the top of the outer side of the separation box (54), an oxygen gas discharge pipe (57) penetrating through the bottom of the outer side of the separation box (54), a connecting cover (58) fixedly connected to the opening of the separation box (54), a first connecting pipe (59) penetrating through the opening of the connecting cover (58), and a wrapping pipe (510) fixedly connected to the end of the first connecting pipe (59).
6. The hydrogen-rich water generating device according to claim 5, characterized by: The separation mechanism (5) further comprises a first converging pipe (51) fixedly connected to the end of the exhaust pipe (32), a cross pipe (52) fixedly connected to the end of the first converging pipe (51), a flow regulating mechanism (53) provided on the outer surface of the cross pipe (52), the flow regulating mechanism (53) comprising a track strip (531) fixedly connected to the outer surface of the cross pipe (52), and a sliding ring (532) slidingly connected to the outer surface of the track strip (531).
7. The hydrogen-rich water generating device according to claim 6, characterized by: The outer surface of the sliding ring (532) is fixedly connected with a support rod (533), the end of the support rod (533) is fixedly connected with a sliding pipe (534), the sliding pipe (534) is sleeved on the end of the cross pipe (52), a block pipe (535) is fixedly connected to the inner cavity of the sliding pipe (534), the block pipe (535) is frictionally adapted to the inner wall of the wrapping pipe (510), a first gas permeable plate (536) is fixedly connected to the inner wall of the cross pipe (52), a first block rod (537) is fixedly connected to the outer surface of the first gas permeable plate (536), a first sealing gasket (538) is fixedly connected to the end of the first block rod (537), and the first sealing gasket (538) is press-fitted to the inner wall of the block pipe (535).
Citation Information
Patent Citations
A device for generating hydrogen-rich water
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Equipment for producing hydrogen and oxygen by electrolyzing water
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