Hydrogen-rich water generating device
The hydrogen and oxygen in the water are separated by electrolysis and separation mechanism, and the dissolution mechanism is used to speed up the dissolution of hydrogen, which solves the problems of low hydrogen generation efficiency and the impact of oxygen in the existing equipment, and achieves efficient hydrogen-rich water for hydrogen generation.
Patent Information
- Application Number
- CN202510467060.2
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-04-15
- Publication Date
- 2025-07-04
- Estimated Expiration
- 2045-04-15
AI Technical Summary
The existing hydrogen-rich water generator cannot effectively use the electrolysis principle to generate hydrogen, and it is difficult to prevent oxygen from affecting the hydrogen content in the hydrogen-rich water, resulting in low hydrogen dissolution efficiency.
The electrolytic mechanism is used to decompose water by direct current to generate hydrogen and oxygen. The separation mechanism uses the characteristics of hydrogen density lower than oxygen to separate, and the hydrogen is uniformly sprayed into the water stream through the dissolution mechanism and stirred to prevent oxygen from affecting the hydrogen content.
It achieves efficient production of hydrogen-rich water, ensures stable hydrogen content, and improves the dissolution efficiency of hydrogen and the quality of hydrogen-rich water.
Smart Images

Figure CN120247221A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of water treatment, and specifically to a hydrogen-rich water generating device. Background Art
[0002] Hydrogen-rich water refers to water that has dissolved an appropriate amount of hydrogen gas. In recent years, it has received extensive attention due to its potential health care and medical value. Hydrogen gas is a colorless, odorless, and non-toxic gas with extremely strong permeability and antioxidant ability. Research shows that hydrogen gas can selectively neutralize harmful free radicals in the human body, such as hydroxyl radicals and peroxynitrite, thereby reducing the damage of oxidative stress to cells. This property makes hydrogen-rich water show potential in the prevention and adjuvant treatment of various diseases, such as cardiovascular diseases, metabolic syndrome, neurodegenerative diseases, and inflammation-related diseases. In addition, hydrogen-rich water is also considered helpful in relieving muscle fatigue after exercise, improving skin condition, and promoting overall health. The preparation of hydrogen-rich water is usually achieved through electrolysis or physical dissolution methods to ensure that the hydrogen concentration in the water is stable between 0.5 - 1.6 ppm. Although the health benefits of hydrogen-rich water have been supported by some scientific research, its specific mechanism of action and long-term effects still need to be further studied in depth.
[0003] In the existing Chinese invention patent publication number CN118666399B, a hydrogen-rich water generating device is proposed; it includes a tank body and support feet fixedly connected to the lower position of the outer wall of the tank body; the tank body is placed horizontally; a mesh cylinder is axially arranged at the center inside the tank body; a hydrogen water rod is arranged inside the mesh cylinder; a spiral plate is arranged between the outer wall of the mesh cylinder and the inner wall of the tank body; the spiral plate is sleeved on the outer wall of the mesh cylinder; the outer edge of the spiral plate is in contact with the inner wall of the tank body; the inner edge of the spiral plate is adapted to the outer wall of the mesh cylinder; a water inlet joint is communicatively arranged at the upper position of the outer wall of one end of the tank body; in the present invention, a spiral flow channel is formed by arranging a spiral plate inside the tank body, so that ordinary water forms hydrogen-rich water after contacting the hydrogen water rod in the mesh cylinder through the spiral flow channel. Compared with the existing contact methods, the contact time and contact path of ordinary water with the hydrogen water rod are extended, so that the quality of hydrogen-rich water is further improved, and the continuous production of hydrogen-rich water is realized. Although this scheme can realize the continuous production of hydrogen-rich water, it needs to use a hydrogen gas rod and cannot use the electrolysis principle 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 realized through the following technical solutions: A hydrogen-rich water generating device, including a base, and a support frame fixedly connected to the upper surface of the base; Electrolysis mechanism, which is used to decompose water into oxygen and hydrogen under the action of direct current. By setting up the electrolysis mechanism, when it works and is connected to the power supply, the internal water flow can be electrolyzed. Its 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; Separation mechanism, which is used to shunt the oxygen and hydrogen electrolyzed by the electrolysis mechanism, and a connecting frame fixedly connected to the outer side surface of the separation mechanism. By setting up the separation mechanism, the hydrogen and oxygen generated by the electrolysis mechanism can be separated. By using the fact that the density of hydrogen is much lower than that of oxygen, this characteristic can be used to separate hydrogen and oxygen by gravity, and thus prevent oxygen from affecting the hydrogen content in the hydrogen-rich water during subsequent production of hydrogen-rich water; Dissolution mechanism, which is used to dissolve the generated hydrogen in water. By setting up the dissolution mechanism, the separated hydrogen can be evenly sprayed into the water flow, and during the process of oxygen spraying, the internal water and hydrogen can be agitated, thereby accelerating the dissolution effect of hydrogen; 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 dissolution mechanism is fixedly connected to the inner wall of the support frame; The electrolysis mechanism includes fixing plates. The number of the fixing plates is two, and the two fixing plates are symmetrically and fixedly connected to the outer surface of the support frame. Between the opposite surfaces of the fixing plates, a cathode plate and an anode plate are arranged. By setting two fixing plates, the electrolytic cell can be wrapped. By setting the cathode plate and the anode plate, when direct current is connected, the cathode plate and the anode plate can electrolyze the internal water flow to generate hydrogen and oxygen.
[0005] Preferably, an exhaust pipe penetrates through the top of the outer surface of the fixing plate, a first water inlet pipe penetrates through the bottom of the outer surface of the fixing plate, a first electric connection post is fixedly connected to the upper surface of the cathode plate, and a second electric connection post is fixedly connected to the upper surface of the anode plate.
[0006] Preferably, a first sealing ring is fixedly connected to the outer side surface of the cathode plate. The first sealing ring is in extrusion fit with the outer surface of the fixing plate. A diaphragm is arranged on the side of the cathode plate away from the fixing plate. A second sealing ring is fixedly connected to the outer ring of the diaphragm. A bipolar plate is arranged on the side of the diaphragm away from the cathode plate. The number of the diaphragms and the bipolar plates is several, and several of the diaphragms and the bipolar plates are arranged at intervals.
[0007] Preferably, a positioning ring is fixedly connected to the outer ring of the bipolar plate. A threaded rod is movably connected to the inner ring of the positioning ring. The threaded rod penetrates through the fixing plate, and a nut is threadedly connected to the end of the threaded rod. A water outlet pipe penetrates through the outer surface of the diaphragm and the bipolar plate, and the end of the water outlet pipe is fixedly connected to the bottom end of the first water inlet pipe.
[0008] Preferably, the separation mechanism includes a separation box 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 discharge pipe penetrates through the top of the outer side of the separation box, and an oxygen discharge pipe penetrates 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 penetrates through the opening of the connecting cover. The end of the first connecting pipe is fixedly connected to a wrapping pipe.
[0009] Preferably, the separation mechanism further includes a first confluence pipe fixedly connected to the end of the exhaust pipe. A horizontal pipe is fixedly connected to the end of the first confluence pipe. A flow rate regulating mechanism is arranged on the outer surface of the horizontal pipe. The flow rate regulating mechanism includes a track bar fixedly connected to the outer surface of the horizontal pipe, and a sliding ring is slidably connected to the outer surface of the track bar.
[0010] Preferably, a support rod is fixedly connected to the outer surface of the sliding ring. The end of the support rod is fixedly connected to a sliding pipe sleeved on the end of the horizontal pipe. A blocking pipe is fixedly connected to the inner cavity of the sliding pipe, and the blocking pipe is frictionally and adaptively engaged with the inner wall of the wrapping pipe. A first air-permeable plate is fixedly connected to the inner wall of the horizontal pipe, and a first blocking rod is fixedly connected to the outer surface of the first air-permeable plate. A first sealing pad is fixedly connected to the end of the first blocking rod, and the first sealing pad is extrusion-fitted with the inner wall of the blocking pipe.
[0011] Preferably, the dissolving mechanism includes a dissolving box fixedly connected to the inner wall of the support frame. A second water inlet pipe penetrates through the upper surface of the dissolving box, and a second confluence pipe penetrates through the lower surface of the dissolving box. A drain valve penetrates through the lower surface of the second confluence pipe. An air outlet mechanism is arranged at the opening of the dissolving box. The air outlet mechanism includes a connecting cover, and a third sealing ring is fixedly connected to the outer surface of the connecting cover and is extrusion-fitted with the inner wall of the dissolving box. A connecting box penetrates through the outer surface of the connecting cover, and a shunt pipe penetrates through the outer surface of the connecting box. A second connecting pipe penetrates through the upper surface of the shunt pipe, and the top end of the second connecting pipe is fixedly connected to the end of the hydrogen discharge pipe.
[0012] Preferably, an air outlet pipe is fixedly connected to the inner cavity of the connection box. The end of the air outlet pipe is fixedly connected to a breathable pipe. A second breathable 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 breathable plate. The end of the first spring is fixedly connected to a blocking block. 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. The blocking ring is fixedly connected to the inner wall of the air outlet pipe.
[0013] Preferably, a stirring mechanism penetrates through the upper surface of the dissolution tank. The stirring mechanism includes a first limiting pipe which penetrates through the upper surface of the dissolution tank. A second limiting pipe penetrates through the top end of the first limiting pipe. The end of the second limiting pipe is fixedly connected to a third connecting pipe. The end of the third connecting pipe is fixedly connected to the opening of the oxygen discharge pipe. A third breathable plate is fixedly connected to the inner wall of the second limiting pipe. A second spring is fixedly connected to the outer surface of the third breathable plate. The end of the second spring is fixedly connected to a second blocking rod. A third sealing gasket is fixedly connected to the outer surface of the second blocking rod. The third sealing gasket is in pressing fit with the inner wall of the second limiting pipe. A third blocking rod is slidably connected to the inner cavity of the first limiting pipe. A fourth sealing gasket is fixedly connected to the outer surface of the third blocking rod. The bottom end of the third blocking rod is fixedly connected to a support plate. A third spring is fixedly connected to the upper surface of the support plate. The top end of the third spring is fixedly connected to a fixing block. The fixing block is fixedly connected to the top surface of the inner cavity of the dissolution tank. A stirring plate is fixedly connected to the lower surface of the support plate.
[0014] The present invention provides a hydrogen-rich water generating device, which has the following beneficial effects: First, in this hydrogen-rich water generating device, by setting an electrolysis mechanism, when it works and is connected to a power source, the water flow inside can be electrolyzed. The principle is to decompose water into hydrogen and oxygen by using direct current. 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.
[0015] Second, in this hydrogen-rich water generating device, by setting a separation mechanism, the hydrogen and oxygen generated by the electrolysis mechanism through electrolysis can be separated. By utilizing the fact that the density of hydrogen is much lower than that of oxygen, this characteristic can be used to separate hydrogen and oxygen by gravity, thereby preventing oxygen from affecting the hydrogen content in the hydrogen-rich water during subsequent production of hydrogen-rich water.
[0016] Third, in this hydrogen-rich water generating device, through a dissolution mechanism, the separated hydrogen can be evenly sprayed into the water flow, and during the process of oxygen spraying, the water and hydrogen inside can be stirred, thereby accelerating the dissolution effect of hydrogen.
[0017] IV. In this hydrogen-rich water generating device, by setting an inclined plate, since the density of hydrogen is much lower than that of oxygen, this property can be utilized to separate hydrogen and oxygen by gravity, enabling the hydrogen and oxygen entering the inner cavity of the separation box through the connecting cover to be separated. The hydrogen enters the inner cavity of the hydrogen discharge pipe above the inclined plate, while the oxygen enters the inner cavity of the oxygen discharge pipe below the inclined plate due to its greater density.
[0018] V. In this hydrogen-rich water generating device, by setting a first limiting pipe and a second limiting pipe, when the oxygen discharge pipe enters the second limiting pipe through the third connecting pipe, the oxygen can enter the inner cavities of the first limiting pipe and the second limiting pipe, thereby squeezing the second blocking rod and the third blocking rod inside. By setting the second blocking rod and the third blocking rod, the interiors of the first limiting pipe and the second limiting pipe can be blocked, thus preventing air from flowing out. Then, when oxygen continuously enters the inner cavity of the second limiting pipe, the second blocking rod moves to the right, enabling air to be discharged. During the discharge process, the air pressure inside the first limiting pipe returns to balance, causing the third blocking rod to drive the support plate and the stirring plate to move upward, achieving the effect of stirring the water flow in the inner cavity of the dissolution tank. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] Figure 1 is a schematic external structure diagram of a hydrogen-rich water generating device according to the present invention; Figure 2 is a front view of the structure of a hydrogen-rich water generating device according to the present invention; Figure 3 is a schematic structural diagram of the electrolysis mechanism of the present invention; Figure 4 is a schematic disassembled structural diagram of the electrolysis mechanism of the present invention; Figure 5 is a schematic partial structural diagram of the electrolysis mechanism of the present invention; Figure 6 is a schematic structural diagram of the separation mechanism of the present invention; Figure 7 is a schematic structural diagram of the flow rate regulating mechanism of the present invention; Figure 8 is a schematic sectional structural diagram of the separation mechanism of the present invention; Figure 9 is a schematic structural diagram of the dissolution mechanism of the present invention; Figure 10 is a schematic disassembled structural diagram of the dissolution mechanism of the present invention; Figure 11 is a schematic structural diagram of the air outlet mechanism of the present invention; Figure 12 of the present invention Figure 11 is an enlarged schematic diagram of structure A; Figure 13This is a schematic structural diagram of the stirring mechanism of the present invention.
[0020] In the figure: 1, base; 2, support frame; 3, electrolysis mechanism; 4, connecting frame; 5, separation mechanism; 6, dissolution mechanism; 31, fixed plate; 32, exhaust pipe; 33, first water inlet pipe; 34, first sealing ring; 35, cathode plate; 36, first electrical connection post; 37, bipolar plate; 38, positioning ring; 39, diaphragm; 310, anode plate; 311, second electrical connection post; 312, threaded rod; 313, nut; 314, water outlet pipe; 315, second sealing ring; 51, first confluence pipe; 52, horizontal pipe; 53, flow regulating mechanism; 54, separation tank; 55, inclined plate; 56, hydrogen discharge pipe; 57, oxygen discharge 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 air-permeable plate; 537, first blocking rod; 538, first gasket; 61, dissolution tank; 62, second confluence pipe; 63, drain valve; 64, air outlet mechanism; 65, second connecting pipe; 66, third connecting pipe; 67, stirring mechanism; 68, second water inlet pipe; 641, connecting cover; 642, connecting box; 643, shunt pipe; 644, third sealing ring; 645, air outlet pipe; 646, air-permeable pipe; 647, second air-permeable plate; 648, first spring; 649, blocking block; 6410, second gasket; 6411, blocking ring; 671, first limiting pipe; 672, second limiting pipe; 673, third air-permeable plate; 674, second spring; 675, second blocking rod; 676, third gasket; 677, third blocking rod; 678, fourth gasket; 679, support plate; 6710, stirring plate; 6711, third spring; 6712, fixing block. Detailed implementation manners
[0021] The present invention will be further described in detail below with reference to the accompanying drawings and specific implementation manners. The embodiments of the present invention are given for the purpose of illustration and description, and are not exhaustive or limit the present invention to the disclosed form. Many modifications and variations are obvious to those of ordinary skill in the art. The embodiments are selected and described to better illustrate the principles and practical applications of the present invention, and enable those of ordinary skill in the art to understand the present invention and thus design various embodiments with various modifications suitable for specific purposes.
[0022] As Figures 1-13 shown, the present invention provides a technical solution: a hydrogen-rich water generating device, including a base 1 and a support frame 2 fixedly connected to the upper surface of the base 1.
[0023] The electrolysis mechanism 3 is used to decompose water into oxygen and hydrogen under the action of direct current. By setting up the electrolysis mechanism 3, when it is working and connected to the power supply, the water flow inside can be electrolyzed. Its 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.
[0024] The separation mechanism 5 is used to shunt the oxygen and hydrogen electrolyzed by the electrolysis mechanism 3, and the connecting frame 4 fixedly connected to the outer side surface of the separation mechanism 5. By setting up the separation mechanism 5, the hydrogen and oxygen generated by the electrolysis of the electrolysis mechanism 3 can be separated. By utilizing the fact that the density of hydrogen is much lower than that of oxygen, this characteristic can be used to separate hydrogen and oxygen by gravity, and thus prevent oxygen from affecting the hydrogen content in the hydrogen-rich water during subsequent production of hydrogen-rich water.
[0025] The dissolution mechanism 6 is used to dissolve the generated hydrogen in water. By setting up the dissolution mechanism 6, the separated hydrogen can be evenly sprayed into the water flow, and during the process of oxygen spraying, the water and hydrogen inside can be agitated, thereby improving the dissolution effect of hydrogen.
[0026] The electrolysis 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.
[0027] The electrolysis mechanism 3 includes fixing plates 31. The number of fixing plates 31 is two, and the two fixing plates 31 are symmetrically and fixedly connected to the outer surface of the support frame 2. A cathode plate 35 and an anode plate 310 are arranged between the opposite surfaces of the fixing plates 31. By setting two fixing plates 31, the electrolytic cell can be wrapped. By setting the cathode plate 35 and the anode plate 310, when direct current is connected, the cathode plate 35 and the anode plate 310 can electrolyze the water flow inside, thereby generating hydrogen and oxygen.
[0028] At the top of the outer surface of the fixing plate 31, an exhaust pipe 32 penetrates through. At the bottom of the outer surface of the fixing plate 31, a first water inlet pipe 33 penetrates through. On the upper surface of the cathode plate 35, a first electric connection post 36 is fixedly connected. On the upper surface of the anode plate 310, a second electric connection post 311 is fixedly connected. By providing the exhaust pipe 32, the generated hydrogen and oxygen can be discharged. By providing the first water inlet pipe 33, it is convenient to pour water into the electrolytic cell. By providing the first electric connection post 36 and the second electric connection post 311, the cathode plate 35 and the anode plate 310 can be connected to the output end of the direct current respectively. On the outer side of the cathode plate 35, a first sealing ring 34 is fixedly connected. The first sealing ring 34 is in extrusion fit with the outer surface of the fixing plate 31. On the side of the cathode plate 35 away from the fixing plate 31, a diaphragm 39 is provided. At the outer ring of the diaphragm 39, a second sealing ring 315 is fixedly connected. On the side of the diaphragm 39 away from the cathode plate 35, a bipolar plate 37 is provided. The number of the diaphragms 39 and the bipolar plates 37 is several, and several diaphragms 39 and bipolar plates 37 are arranged at intervals. By providing the first sealing ring 34, it can prevent water from flowing out through the gaps between the cathode plate 35 and the fixing plate 31 and between the anode plate 310 and the fixing plate 31. By providing the diaphragm 39 and the second sealing ring 315, its main function is to separate the anode and cathode regions 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. At the outer ring of the bipolar plate 37, a positioning ring 38 is fixedly connected. Inside the inner ring of the positioning ring 38, a threaded rod 312 is movably connected. The threaded rod 312 penetrates through the fixing plate 31. At the end of the threaded rod 312, a nut 313 is threadedly connected. The outer surfaces of the diaphragm 39 and the bipolar plate 37 are penetrated by a water outlet pipe 314. The end of the water outlet pipe 314 is fixedly connected to the bottom end of the first water inlet pipe 33. By providing 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 at the end of the threaded rod 312, so that the fixing plate 31 positions and wraps several diaphragms 39, bipolar plates 37, anode plates 310 and cathode plates 35, and thus an electrolytic cell is formed inside. By providing the water outlet pipe 314 and the first water inlet pipe 33, water can be poured into several electrolytic cells.
[0029] 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 discharge pipe 56 penetrates through the top of the outer side surface of the separation box 54, and an oxygen discharge pipe 57 penetrates through the bottom of the outer side surface of the separation box 54. A connecting cover 58 is fixedly connected to the opening of the separation box 54. A first connecting pipe 59 penetrates through the opening of the connecting cover 58. The end of the first connecting pipe 59 is fixedly connected to a wrapping pipe 510. By setting the inclined plate 55, since the density of hydrogen is much lower than that of oxygen, this characteristic can be used to separate hydrogen and oxygen by gravity, so that the hydrogen and oxygen entering the inner cavity of the separation box 54 through the connecting cover 58 are separated. The hydrogen enters the inner cavity of the hydrogen discharge pipe 56 through the upper part of the inclined plate 55, while the oxygen enters the inner cavity of the oxygen discharge pipe 57 through the lower part of the inclined plate 55 due to its large density. The separation mechanism 5 further includes a first confluence pipe 51 which is fixedly connected to the end of the exhaust pipe 32. The end of the first confluence pipe 51 is fixedly connected to a horizontal pipe 52. A flow rate regulating mechanism 53 is arranged on the outer surface of the horizontal pipe 52. The flow rate 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, the hydrogen and oxygen electrolyzed by the electrolysis mechanism 3 can enter the inner cavity of the horizontal pipe 52 through the first confluence pipe 51. By setting the flow rate regulating mechanism 53, the flow rate of the hydrogen and oxygen discharged from the horizontal pipe 52 can be controlled and adjusted, 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 horizontally 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. The end of the support rod 533 is fixedly connected to a sliding pipe 534. The sliding pipe 534 is sleeved on the end of the horizontal pipe 52. A blocking pipe 535 is fixedly connected to the inner cavity of the sliding pipe 534. The blocking pipe 535 is frictionally adapted to the inner wall of the wrapping pipe 510. A first breathable plate 536 is fixedly connected to the inner wall of the horizontal pipe 52. A first blocking rod 537 is fixedly connected to the outer surface of the first breathable plate 536. The end of the first blocking rod 537 is fixedly connected to a first sealing pad 538. The first sealing pad 538 is extrusion-fitted to the inner wall of the blocking pipe 535. By setting the first breathable plate 536, the air flow can flow through the holes of the first breathable plate 536. By setting the sliding pipe 534, when the sliding ring 532 drives the support rod 533 to move horizontally on the outer surface of the horizontal pipe 52, the sliding pipe 534 can drive the blocking pipe 535 to move horizontally. By setting the first blocking rod 537 and the first sealing pad 538, when the sliding pipe 534 moves horizontally, the blocking pipe 535 can gradually separate from the first sealing pad 538, thereby increasing the size of the air outlet.
[0030] The dissolving mechanism 6 includes a dissolving tank 61, and the dissolving tank 61 is fixedly connected to the inner wall of the support frame 2. The upper surface of the dissolving tank 61 is penetrated by a second water inlet pipe 68, and the lower surface of the dissolving tank 61 is penetrated by a second confluence pipe 62. The lower surface of the second confluence pipe 62 is penetrated by a drain valve 63. An air outlet mechanism 64 is arranged at the opening of the dissolving tank 61. The air outlet mechanism 64 includes a connection cover 641. The outer surface of the connection cover 641 is fixedly connected with a third sealing ring 644, and the third sealing ring 644 is in extrusion fit with the inner wall of the dissolving tank 61. The outer surface of the connection cover 641 is penetrated by a connection box 642, and the outer surface of the connection box 642 is penetrated by a shunt pipe 643. The upper surface of the shunt pipe 643 is penetrated by a second connection pipe 65, and the top end of the second connection pipe 65 is fixedly connected to the end of the hydrogen discharge pipe 56. By arranging the second water inlet pipe 68, the water flow can be conveniently poured into the inner cavity of the dissolving tank 61. By arranging the second confluence pipe 62 and the drain valve 63, the water containing dissolved hydrogen in the dissolving tank 61 can be discharged through the second confluence pipe 62 and the drain valve 63. By arranging the drain valve 63, the outflow speed of the hydrogen-rich water in the second confluence pipe 62 can be controlled. By arranging the third sealing ring 644, the sealing performance of the connection between the connection cover 641 and the dissolving tank 61 can be increased. By arranging the second connection pipe 65, the shunt pipe 643 and the hydrogen discharge pipe 56 can be connected together. An air outlet pipe 645 is fixedly connected to the inner cavity of the connection box 642. The end of the air outlet pipe 645 is fixedly connected to a breathable pipe 646. A second breathable plate 647 is fixedly connected to the inner wall of the air outlet pipe 645. A first spring 648 is fixedly connected to the outer surface of the second breathable plate 647. The end of the first spring 648 is fixedly connected to a blocking block 649. A second sealing pad 6410 is fixedly connected to the outer surface of the blocking block 649. A blocking ring 6411 is sleeved on the outer surface of the second sealing pad 6410, and the blocking ring 6411 is fixedly connected to the inner wall of the air outlet pipe 645. By arranging the air outlet pipe 645 and the breathable pipe 646, the hydrogen discharged through the hydrogen discharge pipe 56 can be discharged, so that the hydrogen is discharged into the water flow in the inner cavity of the dissolving tank 61. By arranging the blocking ring 6411, when it is in contact with the blocking block 649 and the second sealing pad 6410, the hydrogen can be prevented from being discharged from the air outlet pipe 645. By arranging the first spring 648, the blocking block 649 can be extruded, so that when there is no hydrogen discharge, the blocking block 649 blocks the blocking ring 6411, thereby preventing the water flow from entering the inner cavity of the air outlet pipe 645.
[0031] The upper surface of the dissolution tank 61 is penetrated by a stirring mechanism 67. The stirring mechanism 67 includes a first limiting tube 671 which penetrates the upper surface of the dissolution tank 61. The top end of the first limiting tube 671 is penetrated by a second limiting tube 672. The end of the second limiting tube 672 is fixedly connected to a third connecting tube 66. The end of the third connecting tube 66 is fixedly connected to the opening of the oxygen discharge pipe 57. A third air-permeable 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 air-permeable plate 673. The end of the second spring 674 is fixedly connected to a second plugging rod 675. A third sealing gasket 676 is fixedly connected to the outer surface of the second plugging rod 675. The third sealing gasket 676 is in extrusion fit with the inner wall of the second limiting tube 672. A third plugging 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 plugging rod 677. The bottom end of the third plugging rod 677 is fixedly connected to a support plate 679. A third spring 6711 is fixedly connected to the upper surface of the support plate 679. The top end of the third spring 6711 is fixedly connected to a fixing block 6712. The fixing block 6712 is fixedly connected to the top surface of the inner cavity of the dissolution tank 61. A stirring plate 6710 is fixedly connected to the lower surface of the support plate 679. By providing 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 tube 66, oxygen can enter the inner cavities of the first limiting tube 671 and the second limiting tube 672, thereby squeezing the internal second plugging rod 675 and third plugging rod 677. By providing the second plugging rod 675 and the third plugging rod 677, the interiors of the first limiting tube 671 and the second limiting tube 672 can be plugged, thus preventing air from flowing out. Then, when oxygen continuously enters the inner cavity of the second limiting tube 672, the second plugging rod 675 moves to the right, enabling air to be discharged. During the discharging process, the air pressure inside the first limiting tube 671 returns to balance, causing the third plugging 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 dissolution tank 61.
[0032] Working principle: When in use, the operator connects the first water inlet pipe 33 to the faucet and continuously fills the inner cavity of the electrolysis mechanism 3 with water flow. At the same time, the second water inlet pipe 68 is connected to the faucet and the water level completely submerges the air permeable pipe 646; then the first electrical connection post 36 and the second electrical connection post 311 are respectively connected to the DC power supply, and the power switch is turned on, so that the anode plate 310, the cathode plate 35 and several bipolar plates 37 are connected to the circuit. During the electrolysis of water, oxygen is generated at the anode and hydrogen is generated at the cathode. The generated hydrogen and oxygen will be discharged into the inner cavity of the first confluence pipe 51 through the exhaust pipe 32 and enter the inner cavity of the horizontal pipe 52. Then, through the first connecting pipe 59 and the connecting cover 58, they enter the inner cavity of the separation box 54. Due to the large difference in density 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 enters the inner cavity of the oxygen discharge pipe 57 through the lower part of the inclined plate 55 due to its large density. Finally, the hydrogen enters the shunt pipe 643 through the second connecting pipe 65 and enters the inner cavities of the connecting box 642 and the air outlet pipe 645, and is discharged into the inside of the dissolution box 61 filled with water flow through the air permeable 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, and then the third blocking rod 677 drives the support plate 679 and the stirring plate 6710 to move downward in the inner cavity of the dissolution box 61, and the second blocking rod 675 will move to the right, so that the third sealing gasket 676 no longer blocks the second limiting pipe 672, thus restoring the internal air pressure to balance. Under the action of the third spring 6711, the stirring plate 6710 rebounds upward, and works in such a cycle to achieve the stirring effect on the internal water flow and hydrogen, accelerate the mixing of hydrogen, and then open the drain valve 63 to discharge the hydrogen-rich water.
[0033] Obviously, the described embodiments are only a part of the embodiments of the present invention, rather than all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those of ordinary skill in the art and related fields without making creative efforts shall fall within the protection scope of the present invention. The structures, devices and operation methods not specifically described and explained in the present invention, unless otherwise specified and limited, shall be implemented according to the conventional means in the art.
Claims
1. A hydrogen-rich water generating device, characterized in that, Including: A base (1) and a support frame (2) fixedly connected to the upper surface of the base (1); An electrolysis mechanism (3) for decomposing water into oxygen and hydrogen under the action of direct current; A separation mechanism (5) for shunting the oxygen and hydrogen electrolyzed by the electrolysis mechanism (3), and a connecting frame (4) fixedly connected to the outer side surface of the separation mechanism (5); A dissolution mechanism (6) for dissolving the generated hydrogen in water; The electrolysis 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 electrolysis mechanism (3) includes fixing plates (31), the number of the fixing plates (31) is two, and the two fixing plates (31) are symmetrically and fixedly connected to the outer surface of the support frame (2), and a cathode plate (35) and an anode plate (310) are arranged between the opposite surfaces of the fixing plates (31).
2. The hydrogen-rich water generating device according to claim 1, characterized in that: An exhaust pipe (32) penetrates through the top of the outer surface of the fixing plate (31), a first water inlet pipe (33) penetrates through the bottom of the outer surface of the fixing plate (31), a first electric connection post (36) is fixedly connected to the upper surface of the cathode plate (35), and a second electric connection post (311) is fixedly connected to the upper surface of the anode plate (310).
3. The hydrogen-rich water generating device according to claim 2, characterized in that: A first sealing ring (34) is fixedly connected to the outer side surface of the cathode plate (35), the first sealing ring (34) is in extrusion fit with the outer surface of the fixing plate (31), a diaphragm (39) is arranged on the side of the cathode plate (35) away from the fixing plate (31), a second sealing ring (315) is fixedly connected to the outer ring of the diaphragm (39), a bipolar plate (37) is arranged on the side of the diaphragm (39) away from the cathode plate (35), the number of the diaphragm (39) and the bipolar plate (37) is several, and several diaphragms (39) and bipolar plates (37) are arranged at intervals.
4. A hydrogen-rich water generating device according to claim 3, characterized in that: A positioning ring (38) is fixedly connected to the outer ring of the bipolar plate (37), a threaded rod (312) is movably connected to the inner ring of the positioning ring (38), the threaded rod (312) penetrates through the fixing plate (31), a nut (313) is threadedly connected to the end of the threaded rod (312), a water outlet pipe (314) penetrates through the outer surfaces of the diaphragm (39) and the bipolar plate (37), and the end of the water outlet pipe (314) is fixedly connected to the bottom end of the first water inlet pipe (33).
5. The hydrogen-rich water generating device according to claim 4, characterized in that: The separation mechanism (5) includes a separation box (54), the separation box (54) 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 discharge pipe (56) penetrates through the top of the outer side surface of the separation box (54), an oxygen discharge pipe (57) penetrates through the bottom of the outer side surface of the separation box (54), a connecting cover (58) is fixedly connected to the opening of the separation box (54), a first connecting pipe (59) penetrates through the opening of the connecting cover (58), and a wrapping pipe (510) is fixedly connected to the end of the first connecting pipe (59).
6. The hydrogen-rich water generating device according to claim 5, wherein: The separation mechanism (5) further includes a first confluence pipe (51), the first confluence pipe (51) is fixedly connected to the end of the exhaust pipe (32), a cross pipe (52) is fixedly connected to the end of the first confluence pipe (51), a flow rate regulating mechanism (53) is arranged on the outer surface of the cross pipe (52), the flow rate regulating mechanism (53) includes a track bar (531), the track bar (531) is fixedly connected to the outer surface of the cross pipe (52), and a sliding ring (532) is slidably connected to the outer surface of the track bar (531).
7. The hydrogen-rich water generating device according to claim 6, characterized in that: A support rod (533) is fixedly connected to the outer surface of the sliding ring (532), a sliding pipe (534) is fixedly connected to the end of the support rod (533), the sliding pipe (534) is sleeved on the end of the cross pipe (52), a blocking pipe (535) is fixedly connected to the inner cavity of the sliding pipe (534), the blocking pipe (535) is frictionally adapted to the inner wall of the wrapping pipe (510), a first breathable plate (536) is fixedly connected to the inner wall of the cross pipe (52), a first blocking rod (537) is fixedly connected to the outer surface of the first breathable plate (536), a first sealing pad (538) is fixedly connected to the end of the first blocking rod (537), and the first sealing pad (538) is extrusion-fitted to the inner wall of the blocking pipe (535).
8. The hydrogen-rich water generating device according to claim 7, wherein: 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), a second water inlet pipe (68) penetrates through the upper surface of the dissolution box (61), a second confluence pipe (62) penetrates through the lower surface of the dissolution box (61), a drain valve (63) penetrates through the lower surface of the second confluence pipe (62), an air outlet mechanism (64) is arranged at the opening of the dissolution box (61), the air outlet mechanism (64) includes a connection cover (641), a third sealing ring (644) is fixedly connected to the outer surface of the connection cover (641), the third sealing ring (644) is extrusion-fitted to the inner wall of the dissolution box (61), a connection box (642) penetrates through the outer surface of the connection cover (641), a shunt pipe (643) penetrates through the outer surface of the connection box (642), a second connecting pipe (65) penetrates through the upper surface of the shunt pipe (643), and the top end of the second connecting pipe (65) is fixedly connected to the end of the hydrogen discharge pipe (56).
9. The hydrogen-rich water generating device according to claim 8, characterized in that: An air outlet pipe (645) is fixedly connected to the inner cavity of the connection box (642). A breathable pipe (646) is fixedly connected to the end of the air outlet pipe (645). A second breathable plate (647) is fixedly connected to the inner wall of the air outlet pipe (645). A first spring (648) is fixedly connected to the outer surface of the second breathable 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 sleeved on the outer surface of the second sealing gasket (6410). The blocking ring (6411) is fixedly connected to the inner wall of the air outlet pipe (645).
10. The hydrogen-rich water generating device according to claim 9, wherein: A stirring mechanism (67) penetrates through the upper surface of the dissolution tank (61). The stirring mechanism (67) includes a first limiting pipe (671). The first limiting pipe (671) penetrates through the upper surface of the dissolution tank (61). A second limiting pipe (672) penetrates through the top end of the first limiting pipe (671). A third connecting pipe (66) is fixedly connected to the end of the second limiting pipe (672). The end of the third connecting pipe (66) is fixedly connected to the opening of the oxygen discharge pipe (57). A third breathable plate (673) is fixedly connected to the inner wall of the second limiting pipe (672). A second spring (674) is fixedly connected to the outer surface of the third breathable 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 in pressing fit with the inner wall of the second limiting pipe (672). A third blocking rod (677) is slidably connected to the inner cavity of the first limiting pipe (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). The top end of the third spring (6711) is fixedly connected to a fixing block (6712). The fixing block (6712) is fixedly connected to the top surface of the inner cavity of the dissolution tank (61). A stirring plate (6710) is fixedly connected to the lower surface of the support plate (679).
Citation Information
Patent Citations
Equipment for producing hydrogen and oxygen by electrolyzing water
CN114540850A
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