Rich hydrogen extraction and storage all-in-one machine
By designing an integrated hydrogen extraction and storage machine, the problem of existing equipment being unable to store hydrogen-rich water was solved, enabling multiple hydrogen additions and hydrogen content adjustment of hydrogen-rich water, thus improving the preparation effect.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- ZHEJIANG WOHYDRIN BIOTECHNOLOGY CO LTD
- Filing Date
- 2025-04-28
- Publication Date
- 2026-04-17
AI Technical Summary
Most existing hydrogen-rich extraction equipment only has the function of extraction, but does not have a mechanism to store hydrogen-rich water. As a result, the extracted hydrogen needs to be discharged into the storage device immediately, which is not conducive to the subsequent adjustment of the hydrogen content in the hydrogen-rich water.
Design a hydrogen-rich extraction and storage integrated machine, including a water source pipe, a hydrogen pipe, a hydrogen addition mechanism and a storage tank. By connecting multiple hydrogen addition mechanisms in series with the storage tank, temporary storage of hydrogen-rich water and multiple hydrogen addition operations can be realized to adjust the hydrogen content.
It enables temporary storage and multiple hydrogen addition operations of hydrogen-rich water, and allows for adjustment of hydrogen content as needed, thereby improving the preparation efficiency of hydrogen-rich water.
Smart Images

Figure CN224132823U_ABST
Abstract
Description
Technical Field
[0001] This utility model relates to the field of hydrogen-rich extraction technology, and in particular to an integrated machine for hydrogen-rich extraction and storage. Background Technology
[0002] With people's pursuit of a healthy life and the deepening research on the biomedical effects of hydrogen, hydrogen-rich products have gradually gained widespread attention in the market. Hydrogen-rich water, as a beverage with potential health benefits, has hydrogen as its core component, which can neutralize free radicals in the body and has preventative and ameliorative effects on various diseases. The preparation of hydrogen-rich water requires hydrogen extraction equipment.
[0003] Currently, most existing hydrogen-rich extraction equipment achieves its effects through the following technologies;
[0004] Electrolysis of water technology uses direct current to electrolyze water through electrodes, producing hydrogen gas at the cathode;
[0005] Physical hydrogen dissolution technologies include pressurized hydrogen dissolution, aeration hydrogen dissolution, and ultrasonic hydrogen dissolution;
[0006] Hydrogen production technologies through chemical reactions include metal-water reactions and chemical reagent reactions.
[0007] Nano-gas-liquid mixing technology uses a special device to disperse hydrogen gas into nano-sized tiny bubbles and mix it with water.
[0008] Currently, existing hydrogen-rich extraction equipment has been found to have at least the following technical problems in actual use;
[0009] Most existing hydrogen-rich extraction equipment only has the ability to extract hydrogen, but it does not have a mechanism to store hydrogen-rich water. The extracted hydrogen needs to be discharged into the storage device immediately, which is not conducive to the subsequent adjustment of the hydrogen content in the hydrogen-rich water. Utility Model Content
[0010] To address the shortcomings of existing technologies, this utility model provides an integrated hydrogen-rich extraction and storage machine, which solves the problem that most existing hydrogen-rich extraction equipment only has the extraction effect but does not have a mechanism for storing hydrogen-rich water. The extracted hydrogen-rich water needs to be discharged into the storage device immediately, which is not conducive to the subsequent adjustment of the hydrogen content in the hydrogen-rich water.
[0011] To achieve the above objectives, this utility model provides the following technical solution:
[0012] A hydrogen-rich extraction and storage integrated machine includes a water source pipe and a hydrogen pipe. The water source pipe is connected to a water source, and the hydrogen pipe is connected to a hydrogen tank. It also includes a hydrogen filling mechanism for enriching water with hydrogen. The hydrogen filling mechanism is connected to a storage tank for storing hydrogen-rich water. A liquid guide pipe and a liquid drain pipe are provided between the hydrogen filling mechanism and the storage tank. One of the hydrogen filling mechanisms is fixedly connected to a discharge pipe. The hydrogen filling mechanism includes a frame, a water pump, a C-shaped pipe, and a jet cutter.
[0013] Preferably, the water pump is fixedly installed on the inner bottom surface of the frame, the side wall of the frame is equipped with a control panel, and the top of the frame is equipped with a PLC controller.
[0014] Preferably, the number of hydrogenation units is four, one of which has a water pump that is fixedly connected to a water source pipe via a pipeline, and a guide pipe is fixedly connected to the outlet of the water pump. The end of the guide pipe away from the water pump is fixedly connected to the inlet of the jet cutter.
[0015] Preferably, the C-shaped tube is fixedly installed on the inner bottom surface of the frame, and the jet cutter is fixedly installed on one end of the C-shaped tube. The nozzle of the jet cutter penetrates the outer shell of the C-shaped tube and faces the inside of the storage tank. A metal gasket is attached to the inner wall of the C-shaped tube to buffer the high-speed water jet sprayed by the jet cutter when the device is started. After the C-shaped tube is filled with water, the water itself can play a buffering role to prevent the C-shaped tube from being damaged.
[0016] Preferably, a one-way air inlet valve is fixedly connected to the side wall of the C-shaped tube, and an air pump is fixedly connected to the end of the one-way air inlet valve away from the C-shaped tube. An air guide pipe is fixedly connected to the air inlet of the air pump, and the end of the air guide pipe away from the air pump is connected to a hydrogen pipe.
[0017] Preferably, the end of the C-shaped tube away from the jet cutter is fixedly connected to a water outlet connector, which is fixedly connected to the liquid guide tube.
[0018] Preferably, the top of the storage tank is fixedly connected to a water inlet connector, the bottom of the storage tank is fixedly connected to a drain connector, and the end of the liquid guide pipe away from the water outlet connector is fixedly connected to the water inlet connector.
[0019] Preferably, the end of the drain connector away from the storage tank is fixedly connected to the drain pipe, the end of the drain pipe away from the drain connector is fixedly connected to the water pump of another hydrogenation unit, the water outlet connector of one of the hydrogenation units is fixedly connected to the discharge pipe, the end of the discharge pipe away from the water outlet connector is connected to an external storage device, and a pressure relief valve is provided on the top surface of the storage tank, with a dustproof net connected to the pressure relief valve.
[0020] Compared with the prior art, the present invention has the following beneficial effects:
[0021] I. This application, by setting up a storage tank, allows the hydrogen-rich water that has undergone the first hydrogenation to be guided through the water outlet connector to the liquid guide pipe, and then injected into the inside of the storage tank through the liquid guide pipe and the water inlet connector. This allows the hydrogen-rich water to be temporarily stored in the storage tank. In conjunction with multiple subsequent hydrogenation mechanisms, the content of the hydrogen-rich water can be adjusted as needed, thus solving the problem that existing hydrogen-rich extraction equipment is not conducive to subsequent adjustment of the hydrogen content in the hydrogen-rich water.
[0022] Second, by connecting four hydrogenation mechanisms in series with three storage tanks, this application can perform four hydrogenation operations through the four hydrogenation mechanisms, thereby enabling the preparation of hydrogen-rich water with a high hydrogen content and thus achieving a higher preparation effect. Attached Figure Description
[0023] The above description is only an overview of the technical solution of this utility model. In order to better understand the technical means of this utility model and to implement it in accordance with the contents of the specification, the preferred embodiments of this utility model are described in detail below with reference to the accompanying drawings.
[0024] Figure 1 This is an overall structural diagram of the present invention;
[0025] Figure 2 This is a front view of the hydrogenation mechanism of this utility model;
[0026] Figure 3 This is a rear view of the hydrogenation mechanism of this utility model;
[0027] Figure 4 This is a structural diagram of the C-shaped tube and jet cutter of this utility model;
[0028] Figure 5 This is a structural diagram of the storage tank of this utility model.
[0029] Legend: 1. Water source pipe; 2. Hydrogen pipe; 3. Hydrogen refueling mechanism; 4. Storage tank; 5. Discharge pipe; 6. Liquid guide pipe; 7. Drain pipe; 301. Frame; 302. Control panel; 303. Water pump; 304. C-shaped pipe; 305. Jet cutter; 306. Air pump; 307. One-way air inlet valve; 308. Water outlet connector; 401. Water inlet connector; 402. Drain connector. Detailed Implementation
[0030] This application provides an integrated hydrogen-rich extraction and storage machine, which effectively solves the problem that most existing hydrogen-rich extraction devices only have the extraction effect but do not have a mechanism for storing hydrogen-rich water. The extracted hydrogen needs to be discharged into the storage device immediately, which is not conducive to the subsequent adjustment of the hydrogen content in the hydrogen-rich water. Example
[0031] like Figure 1 , Figure 2 , Figure 3 , Figure 4 and Figure 5 As shown, the technical solution in this application effectively solves the problem that most existing hydrogen-rich extraction devices only have the extraction effect but lack a mechanism for storing hydrogen-rich water. The extracted hydrogen needs to be immediately discharged into the storage device, which is not conducive to subsequent adjustment of the hydrogen content in the hydrogen-rich water. The overall idea is as follows:
[0032] To address the problems existing in the prior art, this utility model provides an integrated hydrogen extraction and storage machine, including a water source pipe 1 and a hydrogen pipe 2. The water source pipe 1 is connected to a water source, and the hydrogen pipe 2 is connected to a hydrogen tank. It also includes a hydrogen filling mechanism 3 for enriching water with hydrogen. The hydrogen filling mechanism 3 is connected to a storage tank 4 for storing hydrogen-rich water. A liquid guide pipe 6 and a liquid drain pipe 7 are provided between the hydrogen filling mechanism 3 and the storage tank 4. One of the hydrogen filling mechanisms 3 is fixedly connected to a discharge pipe 5. The hydrogen filling mechanism 3 includes a frame 301, a water pump 303, a C-shaped pipe 304, and a jet cutter 305.
[0033] The water pump 303 is fixedly installed on the inner bottom surface of the frame 301. The side wall of the frame 301 is equipped with a control panel 302, and the top of the frame 301 is equipped with a PLC controller.
[0034] There are four hydrogenation units 3. One of the hydrogenation units 3 has a water pump 303 that is fixedly connected to the water source pipe 1 through a pipe. The outlet of the water pump 303 is fixedly connected to a guide pipe. The end of the guide pipe away from the water pump 303 is fixedly connected to the inlet of the jet cutter 305.
[0035] The C-shaped tube 304 is fixedly installed on the inner bottom surface of the frame 301. The jet cutter 305 is fixedly installed on one end of the C-shaped tube 304. The nozzle of the jet cutter 305 penetrates the outer shell of the C-shaped tube 304 and faces the inner side of the storage tank 4. A metal gasket is attached to the inner wall of the C-shaped tube 304 to buffer the high-speed water jet sprayed by the jet cutter 305 when the device is started. After the C-shaped tube 304 is filled with water, the water itself can play a buffering role to prevent the C-shaped tube 304 from being damaged.
[0036] A one-way air inlet valve 307 is fixedly connected to the side wall of the C-shaped tube 304. An air pump 306 is fixedly connected to the end of the one-way air inlet valve 307 away from the C-shaped tube 304. An air guide pipe is fixedly connected to the air inlet of the air pump 306. The end of the air guide pipe away from the air pump 306 is connected to the hydrogen pipe 2.
[0037] A water outlet connector 308 is fixedly connected to one end of the C-shaped tube 304 away from the jet cutter 305, and the water outlet connector 308 is fixedly connected to the liquid guide tube 6.
[0038] The top of the storage tank 4 is fixedly connected to a water inlet connector 401, and the bottom of the storage tank 4 is fixedly connected to a drain connector 402. The end of the liquid guide pipe 6 away from the water outlet connector 308 is fixedly connected to the water inlet connector 401. The water inlet connector 401 and the drain connector 402 of this application can be replaced with multi-port connectors as needed, so that users can collect hydrogen-rich water with different hydrogen contents from different storage tanks 4.
[0039] The end of the drain connector 402 away from the storage tank 4 is fixedly connected to the drain pipe 7. The end of the drain pipe 7 away from the drain connector 402 is fixedly connected to the water pump 303 of another hydrogenation mechanism 3. The water outlet connector 308 of one of the hydrogenation mechanisms 3 is fixedly connected to the discharge pipe 5. The end of the discharge pipe 5 away from the water outlet connector 308 is connected to an external storage device. A pressure relief valve is provided on the top surface of the storage tank 4. The pressure relief valve is connected to a dustproof net.
[0040] Water source pipe 1: Connected to the water source, it provides water to the entire device and is the water source channel.
[0041] Hydrogen pipe 2: Connected to the hydrogen tank, it provides hydrogen to the device and serves as the hydrogen input channel.
[0042] Hydrogenation mechanism 3: Used to enrich water with hydrogen. It mixes water and hydrogen through various internal components to improve the solubility of hydrogen in water. It includes components such as frame 301, control panel 302, water pump 303, C-shaped tube 304, jet cutter 305, air pump 306, one-way air inlet valve 307, and water outlet connector 308.
[0043] Storage tank 4: Used to store hydrogen-rich water. The top water inlet connector 401 is used to connect to the hydrogen-rich water, and the bottom drain connector 402 can discharge the hydrogen-rich water to other hydrogen refueling units 3 or drain pipe 7.
[0044] Discharge pipe 5: Connects the hydrogenation mechanism 3 and the external storage device, and discharges the hydrogen-rich water after multiple hydrogenation operations into the external storage device for collection.
[0045] Liquid guide pipe 6: connects the water outlet connector 308 of the hydrogenation mechanism 3 and the water inlet connector 401 of the storage tank 4, and introduces the hydrogen-rich water after hydrogenation into the storage tank 4.
[0046] Drain pipe 7: Connects the drain connector 402 of storage tank 4 and the water pump 303 of hydrogenation mechanism 3, and is used to extract hydrogen-rich water from storage tank 4 to other hydrogenation mechanisms 3 for re-hydrogenation operation.
[0047] Frame 301: Serves as the supporting structure for hydrogenation mechanism 3, and is used to fix components such as water pump 303 and C-shaped pipe 304. Control panel 302 is installed on the side wall, and PLC controller is installed on the top.
[0048] Control panel 302: Installed on the side wall of the frame 301, used to control the operation of the device, which may include the operation control of components such as water pump 303 and air pump 306.
[0049] Water pump 303: Fixedly installed on the bottom surface of the frame 301, it draws water from the water source pipe 1 and directs the water through the guide pipe to the jet cutter 305. It can also draw hydrogen-rich water from the storage tank 4 for re-hydrogenation.
[0050] C-shaped pipe 304: It is fixedly installed on the bottom surface of the frame 301. It can be filled with water to act as a buffer and prevent the high-speed water jet from the jet cutter 305 from damaging the pipe. Its side wall is connected to a one-way air inlet valve 307, one end is connected to the jet cutter 305, and the other end is connected to the water outlet connector 308.
[0051] Jet cutter 305: Fixedly installed at one end of C-shaped tube 304, it converts the water delivered by water pump 303 into a jet and sprays it into C-shaped tube 304, so that water and hydrogen are mixed in a gas-liquid mixture. It can also cut larger hydrogen bubbles in hydrogen water into nano-sized bubbles, thereby improving the solubility of hydrogen in water.
[0052] Gas pump 306: It is connected to hydrogen pipe 2 through gas delivery pipe and injects hydrogen into C-shaped pipe 304 through one-way gas inlet valve 307, so that hydrogen mixes with water and increases the hydrogen content in hydrogen-rich water.
[0053] One-way inlet valve 307: connects C-shaped tube 304 and gas pump 306 to ensure that hydrogen can only enter C-shaped tube 304 in one direction, preventing water or gas in C-shaped tube 304 from flowing back.
[0054] Water outlet connector 308: Fixed at the end of the C-shaped tube 304 away from the jet cutter 305, connected to the liquid guide tube 6 or the discharge tube 5, to discharge the hydrogen-rich water in the C-shaped tube 304.
[0055] Water inlet connector 401: Fixed to the top of storage tank 4, connected to liquid guide pipe 6, so that hydrogen-rich water can be injected into storage tank 4.
[0056] Drain connector 402: Fixed to the bottom of storage tank 4, connected to drain pipe 7, to facilitate the drainage of hydrogen-rich water in storage tank 4 for re-hydrogenation or other operations.
[0057] Working principle:
[0058] In the first step, this application uses a water pump 303 of the first hydrogenation mechanism 3 to draw water from the water source pipe 1 and a gas pump 306 to draw hydrogen from the hydrogen pipe 2. The water pump 303 draws water from the water source pipe 1 and guides the water through a guide pipe to the jet cutter 305. The jet cutter 305 turns the water into a jet and sprays it into the C-shaped tube 304. During this process, the gas pump 306 injects hydrogen into the C-shaped tube 304 through a one-way air inlet valve 307, so that the hydrogen mixes with the high-speed water jet. The water jet contains more tiny bubbles, making the hydrogen-water mixture more uniform and increasing the solubility of hydrogen in water.
[0059] In the second step, the hydrogen-rich water after the first hydrogenation will be guided to the liquid guide pipe 6 through the water outlet connector 308, and injected into the inside of the storage tank 4 through the liquid guide pipe 6 and the water inlet connector 401. The water pump 303 of the second hydrogenation mechanism 3 can draw the hydrogen-rich water in the first storage tank 4 through the liquid outlet pipe 7 and perform hydrogenation operation again. After the first gas-liquid mixing, the hydrogen water will be transformed into a jet by the jet cutter 305. This jet state can cut the large-diameter hydrogen bubbles in the hydrogen water into nano-sized bubbles with high concentration and high flow rate. The large specific surface area of nano-sized bubbles increases the contact area with water, thereby improving the solubility of hydrogen in water and effectively reducing hydrogen escape. This allows the hydrogen-rich water to maintain a high hydrogen concentration for a short period of time. At the same time, the pump 306 of the second hydrogenation mechanism 3 starts and adds hydrogen into the C-shaped tube 304 through the one-way air inlet valve 307, further increasing the hydrogen content in the hydrogen-rich water. This process can be repeated, allowing for four hydrogenation operations through the four hydrogenation mechanisms 3, with the hydrogen discharged through the discharge pipe 5 into an external storage device for collection.
[0060] Finally, it should be noted that the above embodiments are merely examples for clearly illustrating the present invention and are not intended to limit the implementation. Those skilled in the art can make other variations or modifications based on the above description. It is neither necessary nor possible to exhaustively list all possible implementations. However, obvious variations or modifications derived therefrom are still within the protection scope of this invention.
Claims
1. A hydrogen-rich extraction and storage integrated machine, comprising a water source pipe (1) and a hydrogen pipe (2), characterized in that, It also includes a hydrogenation mechanism (3) for enriching water with hydrogen, the hydrogenation mechanism (3) is connected to a storage tank (4) for storing hydrogen-rich water, and a liquid guide pipe (6) and a liquid drain pipe (7) are provided between the hydrogenation mechanism (3) and the storage tank (4), and one of the hydrogenation mechanisms (3) is fixedly connected to a discharge pipe (5). The hydrogenation mechanism (3) includes a frame (301), a water pump (303), a C-shaped tube (304), and a jet cutter (305).
2. The hydrogen-rich extraction and storage integrated machine according to claim 1, characterized in that: The water pump (303) is fixedly installed on the inner bottom surface of the frame (301), the side wall of the frame (301) is provided with a control panel (302), and the top of the frame (301) is provided with a PLC controller.
3. The hydrogen-rich extraction and storage integrated machine according to claim 2, characterized in that: The number of hydrogenation mechanisms (3) is four. One of the hydrogenation mechanisms (3) has a water pump (303) that is fixedly connected to a water source pipe (1) through a pipe. The outlet of the water pump (303) is fixedly connected to a guide pipe. The end of the guide pipe away from the water pump (303) is fixedly connected to the inlet of the jet cutter (305).
4. The hydrogen-rich extraction and storage integrated machine according to claim 3, characterized in that: The C-shaped tube (304) is fixedly installed on the inner bottom surface of the frame (301), and the jet cutter (305) is fixedly installed on one end of the C-shaped tube (304). The nozzle of the jet cutter (305) penetrates the outer shell of the C-shaped tube (304) and faces the inside of the storage tank (4).
5. The hydrogen-rich extraction and storage integrated machine according to claim 4, characterized in that: A one-way air inlet valve (307) is fixedly connected to the side wall of the C-shaped tube (304). An air pump (306) is fixedly connected to the end of the one-way air inlet valve (307) away from the C-shaped tube (304). An air guide pipe is fixedly connected to the air inlet of the air pump (306). The end of the air guide pipe away from the air pump (306) is connected to the hydrogen pipe (2).
6. The hydrogen-rich extraction and storage integrated machine according to claim 5, characterized in that: The C-shaped tube (304) is fixedly connected to a water outlet connector (308) at the end away from the jet cutter (305), and the water outlet connector (308) is fixedly connected to the liquid guide tube (6).
7. The hydrogen-rich extraction and storage integrated machine according to claim 6, characterized in that: The top of the storage tank (4) is fixedly connected to a water inlet connector (401), the bottom of the storage tank (4) is fixedly connected to a drain connector (402), and the end of the liquid guide pipe (6) away from the water outlet connector (308) is fixedly connected to the water inlet connector (401).
8. The hydrogen-rich extraction and storage integrated machine according to claim 7, characterized in that: The end of the drain connector (402) away from the storage tank (4) is fixedly connected to the drain pipe (7), and the end of the drain pipe (7) away from the drain connector (402) is fixedly connected to the water pump (303) of another hydrogenation mechanism (3). The water outlet connector (308) of one of the hydrogenation mechanisms (3) is fixedly connected to the discharge pipe (5).