Hydrogen and oxygen making machine with atomization function
By integrating hydrogen and oxygen production and nebulization functions, the device utilizes oxygen supply nebulization tubing and Venturi tubes to generate negative pressure for liquid absorption, combined with ultrasonic nebulizing pads, solving the problems of high equipment cost, high failure rate and complex operation of traditional hydrogen and oxygen generators, and achieving convenient, stable and diversified treatment.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- JIANGSU KUAILIAN INTERNET OF THINGS CO LTD
- Filing Date
- 2025-05-14
- Publication Date
- 2026-04-10
AI Technical Summary
Traditional hydrogen and oxygen generators require an additional nebulizer, increasing equipment costs and space requirements. Furthermore, electromagnetic pumps are energy-intensive, have a high failure rate, and are complex to operate, making it difficult to meet the diverse treatment needs of patients.
Design a device that integrates hydrogen and oxygen production and atomization functions. It uses an oxygen supply atomization pipeline and a venturi tube to generate negative pressure for liquid suction, eliminating the need for an electromagnetic pump. It combines ultrasonic atomizing plates to achieve liquid atomization. The flow rate is regulated by control valves, simplifying operation and reducing energy consumption and failure rate.
It enables convenient switching between oxygen inhalation and nebulization therapy, reduces equipment energy consumption and failure rate, simplifies operation procedures, and improves equipment stability and reliability.
Smart Images

Figure CN224099780U_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The utility model belongs to hydrogen oxygen generator technical field, concretely relates to a hydrogen oxygen generator with atomization function. BACKGROUND
[0002] At present, the traditional hydrogen oxygen generator only has the function of hydrogen oxygen production, and the user needs to additionally equip a special atomizer device if he needs atomization treatment. This not only increases the equipment purchase cost, but also occupies more space.
[0003] In addition, from the technical point of view, the traditional atomizer mostly uses electromagnetic pump to extract liquid medicine for atomization, which has certain disadvantages. As a power consumption component, the electromagnetic pump increases the overall energy consumption of the equipment. Moreover, in the long-term use process, the electromagnetic pump is prone to failure, such as pump body wear, circuit problem, etc., which leads to the failure of the atomizer to work normally, increases the maintenance cost and repair frequency of the equipment.
[0004] In addition, in clinical treatment, the patient often needs oxygen inhalation and atomization treatment. The traditional equipment needs medical staff to frequently change the equipment connection or adjust the parameters, which reduces the work efficiency and increases the complexity and risk of medical operation. Therefore, developing an equipment integrating hydrogen oxygen production function and atomization function, and capable of efficient and stable operation, has become a problem to be solved. Such equipment not only can meet the diversified treatment needs of patients, but also can simplify the operation process, reduce energy consumption and failure rate, and provide more convenient and reliable treatment means for medical workers and patients. UTILITY MODEL CONTENT
[0005] In view of the above problems, the purpose of the utility model is to provide a hydrogen oxygen generator with atomization function, which solves the problems of inconvenient use of existing equipment, inconvenient switching between oxygen inhalation and atomization treatment, high energy consumption and high failure rate of the equipment.
[0006] To achieve the above purpose, the utility model adopts the technical scheme: a hydrogen oxygen generator with atomization function, comprising a hydrogen oxygen generator shell, a hydrogen oxygen production module and an oxygen supply atomization pipeline are respectively installed on the inner and outer sides of the hydrogen oxygen generator shell, an oxygen pipe in the hydrogen oxygen production module is communicated with one end of a main pipeline in the oxygen supply atomization pipeline, a pagoda head is installed at the other end of the main pipeline, a valve two is installed on the main pipeline, the sides of the main pipeline on both sides of the valve two are respectively communicated with one end of a shunt pipe one and a shunt pipe two, the shunt pipe one and the shunt pipe two are respectively connected with two ends of a venturi tube, a valve one is installed between the shunt pipe one and the venturi tube, a throat pipe of the venturi tube is communicated with a top end of an atomization module, a bottom end of the atomization module penetrates and inserts into a bottom of a liquid medicine box, a one-way valve is installed on the liquid medicine box.
[0007] The utility model discloses beneficial effect is: through the pipeline design of oxygen supply atomization pipeline makes the user convenient according to use demand and carries out oxygen inhalation or atomization treatment, spares the electromagnetic pump of traditional atomizer, cooperates with the venturi tube and directly utilizes high -speed airflow to produce negative pressure and absorbs liquid, effectively reduces the energy consumption and failure rate of equipment.
[0008] In order to conveniently clean and maintain the inside of the atomization module,
[0009] As a further improvement of the above technical solution: the atomization module includes a base, the base is a variable diameter structure with a wide top and a narrow bottom, a suction pipe is connected to the bottom end of the base, the suction pipe is inserted into the inside of the liquid medicine box, a bracket is installed on the top of the base, a slot hole is formed on the bracket to fit the ultrasonic atomization piece, and the ultrasonic atomization piece is fixed on the bracket.
[0010] The beneficial effect of the improvement is that when the liquid medicine flows upward along the inside of the suction pipe under the action of negative pressure, the diameter of the pipe inside the base increases rapidly after entering the base, reducing the flow rate of the liquid medicine, and avoiding the influence of the flow rate on the atomization particle size of the ultrasonic atomization piece.
[0011] In order to conveniently clean and maintain the inside of the atomization module,
[0012] As a further improvement of the above technical solution: the top end of the base is threadedly connected with a cover, the cover is a variable diameter structure with a narrow top and a wide bottom, and the top end of the cover is connected with the throat of the venturi tube.
[0013] The beneficial effect of the improvement is that the cover and the base can be conveniently separated, making it convenient for personnel to replace or clean the ultrasonic atomization piece.
[0014] In order to conveniently control the flow of atomized liquid medicine,
[0015] As a further improvement of the above technical solution: a valve body is formed between the base and the suction pipe, a valve rod is rotatably inserted into the valve body, a dynamic sealing structure is provided at the connection between the valve rod and the valve body, the inner cavity of the valve body is connected with the inner cavities of the base and the suction pipe, and a through hole is formed in the part of the valve rod above the suction pipe.
[0016] The beneficial effect of the improvement is that the operator can adjust the size of the through hole and the valve body connection by rotating the valve rod, conveniently changing the liquid supply flow rate.
[0017] In order to conveniently supplement liquid to the inside of the liquid medicine box,
[0018] As a further improvement of the above technical solution: a liquid injection port is formed on the top side of the liquid medicine box, and an internally threaded cover structure is threadedly connected with the liquid injection port.
[0019] The improved beneficial effect is that the operator can conveniently supplement the liquid in the interior of the liquid medicine box through the liquid injection port.
[0020] In order to conveniently discharge the residual liquid medicine in the liquid medicine box;
[0021] As a further improvement of the above technical solution, the bottom of the liquid medicine box is provided with a liquid discharge port, and the liquid discharge port is threadedly connected with an internally threaded cover structure.
[0022] The improved beneficial effect is that the operator can conveniently discharge the residual liquid medicine in the liquid medicine box after removing the internally threaded cover installed on the liquid discharge port.
[0023] In order to ensure the stability of the equipment for preparing hydrogen and oxygen;
[0024] As a further improvement of the above technical solution, the hydrogen and oxygen preparation module comprises a water tank, an electrolytic cell, a power module, a control system, a gas-liquid separator, a gas cooler, a palladium membrane diffusion purifier, and a storage container.
[0025] The improved beneficial effect is that the water in the water tank is transported to the electrolytic cell to generate oxygen and hydrogen gas by electrolysis, and then the gas-liquid separation is preliminarily realized by the gas-liquid separator to obtain oxygen and hydrogen gas with reduced water content, the oxygen is cooled in the gas cooler to further reduce the water content in the gas, and then the palladium membrane diffusion purifier is used to differentiate the high-purity hydrogen and oxygen, which are transported to the storage container through the pipeline for standby use.
[0026] The parts not involved in the device are the same as or can be realized by the prior art. BRIEF DESCRIPTION OF DRAWINGS
[0027] Figure 1 It is a structural schematic view of the utility model;
[0028] Figure 2 It is a sectional view of the utility model;
[0029] Figure 3 It is a structural schematic view of the oxygen supply atomization pipeline in the utility model;
[0030] Figure 4 It is a sectional view of the atomization module in the utility model;
[0031] In the figure: 1, hydrogen-oxygen generator shell; 2, hydrogen-oxygen generator module; 3, oxygen pipe; 4, oxygen supply atomization pipeline; 5, main pipeline; 6, shunt pipe one; 7, valve one; 8, valve two; 9, venturi; 10, shunt pipe two; 11, spigot; 12, atomization module; 121, cover; 122, base; 123, support; 124, ultrasonic atomization sheet; 125, valve body; 126, valve stem; 127, through hole; 128, suction pipe; 13, liquid medicine box; 14, liquid injection port; 15, liquid discharge port; 16, one-way valve. DETAILED DESCRIPTION
[0032] In order to make the skilled in the art better understand the technical solutions of the present application, the present application is described in detail below in conjunction with the drawings, and the description in this part is only exemplary and explanatory, and should not have any limiting effect on the protection scope of the present application.
[0033] Example 1:
[0034] As Figure 1-4 shown: a hydrogen oxygen machine with atomization function, including hydrogen oxygen machine shell 1, the inside and outside of the hydrogen oxygen machine shell 1 is respectively equipped with hydrogen oxygen module 2 and oxygen supply atomization pipeline 4, the oxygen pipe 3 in the hydrogen oxygen module 2 is communicated with one end of the main pipeline 5 in the oxygen supply atomization pipeline 4, the other end of the main pipeline 5 is equipped with pagoda head 11, the main pipeline 5 is equipped with valve two 8, the side of the main pipeline 5 on both sides of valve two 8 is respectively communicated with one end of the shunt pipe one 6 and the shunt pipe two 10, the shunt pipe one 6 and the shunt pipe two 10 are respectively connected with both ends of the venturi tube 9, the valve one 7 is installed between the shunt pipe one 6 and the venturi tube 9, the throat pipe of the venturi tube 9 is communicated with the top end of the atomization module 12, the bottom end of the atomization module 12 is inserted into the bottom of the liquid medicine box 13, the one-way valve 16 is installed on the liquid medicine box 13, the pipeline design of the oxygen supply atomization pipeline 4 makes the user convenient to carry out oxygen inhalation or atomization treatment according to the use demand.Eliminating the need for a traditional electromagnetic pump in nebulizers, this device utilizes a venturi tube to directly generate negative pressure for liquid suction using high-speed airflow, effectively reducing energy consumption and failure rate. The nebulization module 12 includes a base 122 with a variable diameter structure (wider at the top and narrower at the bottom). A suction tube 128 is connected to the bottom of the base 122 and is inserted into the liquid container 13. A bracket 123 is mounted on the top of the base 122, and the bracket 123 has slots for mounting an ultrasonic atomizing plate 124, which is then bonded to the bracket 123. When the liquid flows upwards along the inside of the suction tube 128 under negative pressure... After entering the base 122, the inner diameter of the tube rapidly increases, reducing the flow rate of the liquid medicine and preventing excessively fast flow from affecting the atomization particle size of the ultrasonic atomizing plate 124. A cover 121 is threadedly connected to the top of the base 122. The cover 121 has a variable diameter structure, narrower at the top and wider at the bottom. The top of the cover 121 is connected to the throat of the Venturi tube 9. The cover 121 and the base 122 can be easily separated, facilitating the replacement or cleaning of the ultrasonic atomizing plate 124. A valve body 125 is formed between the base 122 and the suction tube 128. A valve stem 126 is rotatably inserted into the valve body 125. The connection points between the valve stem 126 and both ends of the valve body 125 are... Equipped with a dynamic sealing structure, the inner cavity of the valve body 125 is connected to the inner cavities of the base 122 and the suction pipe 128. A through hole 127 is provided through the valve stem 126 located vertically above the suction pipe 128. The operator can easily change the liquid supply flow rate by rotating the valve stem 126 to adjust the size of the connection between the through hole 127 and the valve body 125. A liquid inlet 14 is provided on the top side of the medicine container 13, and the liquid inlet 14 is threaded with an internal threaded cap structure, allowing the operator to easily replenish the medicine container 13 through the liquid inlet 14. A drain port 15 is provided at the bottom of the medicine container 13, and the drain port 15 is threaded with... The device features an internally threaded cap structure, allowing operators to easily drain the remaining liquid from the liquid container 13 after removing the internally threaded cap installed on the drain port 15. The hydrogen and oxygen production module 2 includes a water tank, an electrolytic cell, a power module, a control system, a gas-liquid separator, a gas cooler, a palladium membrane diffusion purifier, and a storage container. Water from the water tank is transported to the electrolytic cell and electrolyzed to produce hydrogen and oxygen gas. The gas-liquid separator then performs preliminary gas-liquid separation, resulting in hydrogen and oxygen gas with reduced water content. The oxygen gas enters the gas cooler for further cooling, further reducing its moisture content. Finally, the gas is further purified by the palladium membrane diffusion purifier into high-purity hydrogen and oxygen, which are then transported through pipelines to the storage container for later use.
[0035] The working principle of this technical solution is as follows: When using this hydrogen and oxygen generator with atomization function, the equipment preparation work is first carried out. An appropriate amount of atomized medicine is injected into the medicine box 13 through the injection port 14, and the injection port is sealed by tightening the inner thread cap. If oxygen therapy is required, the oxygen inhalation device can be connected to the main pipeline 5 through the pagoda head 11.
[0036] When the hydrogen-oxygen generator is turned on, module 2 begins operation. Water in the tank is transported to the electrolytic cell under the control of the system. Under the DC power provided by the power module, the electrolytic cell undergoes a water electrolysis reaction, producing oxygen at the anode and hydrogen at the cathode. The resulting hydrogen-oxygen mixture enters the gas-liquid separator, where the density difference between the gas and liquid is used to separate most of the liquid water, resulting in a hydrogen-oxygen mixture with reduced water content. Then, the oxygen enters the gas cooler, where heat exchange condenses the water vapor into liquid water, further reducing the water content. Subsequently, the cooled oxygen enters the palladium membrane diffusion purifier, where palladium's selective permeability to hydrogen further purifies the oxygen. The purified oxygen is then transported to a storage container for later use.
[0037] When nebulization therapy is needed, valve 28 is closed and valve 17 is opened. Oxygen in the storage container enters the Venturi tube 9 through the splitter tube 16. Due to the special structure of the Venturi tube 9, the gas flow rate increases and the pressure decreases when passing through the throat, generating negative pressure. Under the action of negative pressure, the liquid medicine in the medicine box 13 is sucked into the nebulization module 12 through the suction tube 128. The operator can control the suction flow rate of the liquid medicine by rotating the valve rod 126 to adjust the size of the connection between the through hole 127 and the valve body 125. The suction liquid medicine in the base 122, due to the increased inner diameter of the tube, has a reduced flow rate and reaches the ultrasonic nebulizer plate 124 stably. The ultrasonic nebulizer plate 124 vibrates at high frequency under the drive of the circuit, atomizing the liquid medicine into tiny particles. The atomized liquid medicine particles are driven by the high-speed airflow in the Venturi tube 9 and return to the main pipeline 5 through the splitter tube 210. They are then output through the pagoda head 11 for the patient to inhale for nebulization therapy.
[0038] When the atomizing module 12 needs to be cleaned and maintained, simply unscrew the cover 121 to easily remove the ultrasonic atomizing plate 124 for replacement or cleaning. After treatment, if there is any remaining medicine in the medicine box 13, the internal threaded cap of the drain outlet 15 can be unscrewed to release the remaining medicine.
[0039] When only oxygen therapy is needed, valve 7 is closed, allowing oxygen to be directly output from the pagoda head 11 through the main pipeline 5 for the patient to use. Throughout the entire process, the control system monitors various parameters of the hydrogen and oxygen production module 2 in real time, such as the voltage, current, and temperature of the electrolyzer, as well as the pressure and flow rate of the gas, to ensure the safe, stable, and efficient operation of the equipment.
[0040] It should be noted that, in this document, the terms “comprising,” “including,” or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.
[0041] The principles and implementations of the present application are described herein with specific examples. The above examples are only used to help understand the method of the present application and its core idea. The above description is only the preferred embodiments of the present application. It should be pointed out that due to the limited expression of the text, there are objectively infinite specific structures. For ordinary skilled persons in the art, without departing from the principles of the present application, some improvements, refinements or changes can be made, or the above technical features can be combined in an appropriate manner. These improvements, refinements, changes or combinations, or without improvement, the concept and technical solution of the present application are directly applied to other occasions, which should be regarded as the protection scope of the present application.
Claims
1. A hydrogen-oxygen generator with atomization function, characterized in that: The application relates to a hydrogen-oxygen generator shell (1), which is internally and externally provided with a hydrogen-oxygen module (2) and an oxygen supply atomization pipeline (4) respectively, an oxygen pipe (3) in the hydrogen-oxygen module (2) is communicated with one end of a main pipeline (5) in the oxygen supply atomization pipeline (4), the other end of the main pipeline (5) is provided with a tower head (11), a valve two (8) is arranged on the main pipeline (5), the side surfaces of the main pipeline (5) on the two sides of the valve two (8) are respectively communicated with one end of a shunt pipe one (6) and a shunt pipe two (10), the shunt pipe one (6) and the shunt pipe two (10) are respectively connected with two ends of a venturi (9), a valve one (7) is arranged between the shunt pipe one (6) and the venturi (9), a throat of the venturi (9) is communicated with a top end of an atomization module (12), a bottom end of the atomization module (12) is inserted into a bottom of a liquid medicine box (13), and a one-way valve (16) is arranged on the liquid medicine box (13).
2. The hydrogen-oxygen generator with atomization function according to claim 1, characterized in that: The atomization module (12) comprises a base (122), the base (122) is a variable-diameter structure which is wide at the top and narrow at the bottom, a suction pipe (128) is connected with a bottom end of the base (122), the suction pipe (128) is inserted into the inside of the liquid medicine box (13), a support (123) is arranged on a top of the base (122), and a groove hole for adaptively arranging an ultrasonic atomization piece (124) is formed in the support (123), and the ultrasonic atomization piece (124) is fixedly connected to the support (123).
3. The hydrogen-oxygen generator with atomization function according to claim 2, characterized in that: A cover (121) is threadedly connected with a top end of the base (122), the cover (121) is a variable-diameter structure which is narrow at the top and wide at the bottom, and a throat of the venturi (9) is connected with a top end of the cover (121).
4. The hydrogen-oxygen generator with atomization function according to claim 2, characterized in that: A valve body (125) is formed between the base (122) and the suction pipe (128), a valve rod (126) is rotatably inserted into the valve body (125), a dynamic sealing structure is arranged at the connection between the valve rod (126) and the valve body (125), an inner cavity of the valve body (125) is communicated with inner cavities of the base (122) and the suction pipe (128), and a through hole (127) is formed in a part of the valve rod (126) which is vertically above the suction pipe (128).
5. The hydrogen-oxygen generator with atomization function according to claim 1, characterized in that: An injection opening (14) is formed in a top side of the liquid medicine box (13), and an inner thread cover structure is threadedly connected with the injection opening (14).
6. The hydrogen-oxygen generator with atomization function according to claim 1, characterized in that: A liquid discharging opening (15) is formed in a bottom of the liquid medicine box (13), and an inner thread cover structure is threadedly connected with the liquid discharging opening (15).
7. The hydrogen-oxygen generator with atomization function according to claim 1, characterized in that: The hydrogen-oxygen module (2) comprises a water tank, an electrolytic cell, a power module, a control system, a gas-liquid separator, a gas cooler, a palladium membrane diffusion purifier and a storage container.