Oxygen-driven airway system and oxygen therapy and salt therapy integrated device

CN224777231UActive Publication Date: 2026-09-22NANJING KUANCHENG SCI & TECH CO LTD
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Patent Information

Application Number
CN202520850625.0
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2025-04-30
Publication Date
2026-09-22
Estimated Expiration
2035-04-30

AI Technical Summary

Technical Problem

[0004]为解决上述盐疗、盐疗无法同时使用、成本高、操作难度大的问题,本实用新型提供了一种气路系统及氧疗盐疗一体设备,通过设计一套气路系统,使得用户能够同时进行氧疗和盐疗,降低了使用成本,且氧浓度稳定、操作简单

Benefits of technology

1、本实用新型的气路系统将制氧气路和盐气溶胶支路进行结合,解决了用户在使用制氧机吸氧时无法同时进行盐疗的问题,使患者在吸氧的时可同时进行盐疗,有效促进呼吸道疾病的治疗,同时盐气溶胶可促进患者排痰、缓解气道粘膜水肿,对患者吸氧治疗具有积极的作用,氧疗和氧疗可起到相互协同的作用,达到1加1大于2的效果;

✦ Generated by Eureka AI based on patent content.

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Abstract

The utility model relates to medical apparatus and instruments field discloses oxygen drive's air path system and oxygen therapy salt therapy integrated equipment, including gas source, oxygen making air path, salt aerosol branch and mixed part, gas source communicates with oxygen making air path, provides compressed air for oxygen making air path, oxygen making air path includes oxygen making unit and the oxygen storage part of oxygen storage, oxygen making unit communicates with gas source, carries out nitrogen oxygen separation to the compressed air of gas source, one end of salt aerosol branch communicates oxygen storage part, the other end communicates mixed part, is used for generating dry salt aerosol, the mixed part communicates oxygen making air path and salt aerosol branch respectively, is used for the oxygen of oxygen making air path with the salt aerosol of salt aerosol branch generation mixes, supplies user inhale treatment. Through the utility model, oxygen making and salt aerosol are combined, realize integral control, can carry out salt aerosol inhalation treatment while carrying out oxygen therapy, improve treatment effect, simplify equipment structure, reduce cost, reduce operation difficulty, and use oxygen drive salt aerosol, can provide high concentration oxygen therapy for user while carrying out salt therapy.
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Description

Technical Field

[0001] This utility model relates to the field of medical devices, and in particular to an oxygen-driven gas path system and an integrated oxygen therapy and saline therapy device. Background Technology

[0002] Rock salt aerosol therapy (salt aerosol therapy) is a non-drug therapy that uses salt aerosols to treat respiratory diseases. It increases the concentration of ions in the respiratory tract, changes the osmotic pressure of mucus, improves the rheology of respiratory mucus, activates the innate immunity of lung tissue, and enhances the activity of pulmonary macrophages. This achieves the goals of antibacterial and anti-inflammatory effects, relieving edema, enhancing clearance and expectoration, and boosting immunity and resistance, thereby preventing, improving, and treating respiratory diseases.

[0003] When a patient with respiratory disease has impaired lung capacity and oxygenation, the primary need is to treat the hypoxia by administering oxygen therapy to improve the patient's partial pressure of oxygen and blood oxygen saturation. For patients requiring oxygen therapy, especially critically ill patients needing oxygen via a breathing mask, current oxygen therapy and saline therapy equipment are separate devices; there is no equipment that simultaneously supports both functions. Oxygen and saline therapy cannot be performed concurrently, requiring repeated switching, which is cumbersome, leads to a poor patient experience, and fails to achieve the desired therapeutic effect. Furthermore, oxygen therapy and saline therapy require purchasing two sets of equipment and using two separate operating methods, increasing treatment costs, time costs, and operational complexity. Summary of the Invention

[0004] To address the aforementioned issues of saline therapy, the inability to use saline therapy simultaneously, high costs, and operational difficulties, this invention provides a gas path system and an integrated oxygen and saline therapy device. By designing a gas path system, users can simultaneously perform oxygen and saline therapy, reducing usage costs, while ensuring stable oxygen concentration and simple operation.

[0005] To achieve the above objectives, the specific technical solution of this utility model is as follows: an oxygen-driven gas path system, comprising a gas source, an oxygen production path, a salt aerosol branch path, and a mixing section; The gas source is connected to the oxygen production line to provide compressed air to the oxygen production line. The oxygen generation circuit includes an oxygen generation unit and an oxygen storage unit for storing oxygen. The oxygen generation unit is connected to a gas source and performs nitrogen-oxygen separation on the compressed air provided by the gas source to provide oxygen to the user. One end of the salt aerosol branch is connected to the oxygen storage section, and the other end is connected to the mixing section, which is used to generate dry salt aerosol to provide salt aerosol therapy for users. The mixing section is connected to the oxygen generating circuit and the saline aerosol branch, respectively, and is used to mix the oxygen generated by the oxygen generating circuit with the saline aerosol generated by the saline aerosol branch for the user to inhale for treatment.

[0006] Furthermore, the air source is an air compressor, and the air compressor is equipped with a filter at its air inlet to filter the air entering the air compressor and provide clean air for the oxygen generation circuit.

[0007] Furthermore, the air compressor outlet is connected to a cooling device, the other end of which is connected to an oxygen generating unit, for cooling the compressed air output by the air compressor and delivering the cooled compressed air to the oxygen generating unit.

[0008] Specifically, the cooling device is any one of a transducer, a condenser, or a heat dissipation pipeline.

[0009] When the air compressor outputs compressed air, it generates heat. The compressed air needs to be cooled down by a cooling device before it is introduced into the oxygen generating unit to avoid the compressed air entering the oxygen generating unit being too hot and reducing the oxygen generating efficiency.

[0010] One technical solution is that the cooling device uses a condenser, which can condense and discharge the moisture in the compressed air, thereby drying the compressed air. On the one hand, this can improve the oxygen production efficiency of the oxygen generation unit; on the other hand, the dry air is beneficial for the drying of salt aerosols.

[0011] In another technical solution, the cooling device is a transducer, the air inlet of which is connected to an air compressor, the air outlet of which is connected to an oxygen generation circuit, and it is also connected to a mixing section or a salt aerosol branch.

[0012] In another technical solution, the cooling device can also use heat dissipation pipes to reduce the temperature of the compressed air.

[0013] Specifically, the oxygen generating unit is at least one molecular sieve or nitrogen-oxygen separation membrane.

[0014] Specifically, when the oxygen generating unit consists of two or more molecular sieves, an electromagnetic reversing valve is installed between the cooling device and the molecular sieves. Taking two molecular sieves as an example, when the nitrogen adsorbed by the first molecular sieve becomes saturated, the reversing valve is used to switch the direction so that the second molecular sieve can start working. At the same time, the first molecular sieve discharges the adsorbed nitrogen to restore its adsorption function. When the nitrogen adsorbed by the second molecular sieve becomes saturated, the reversing valve is used to switch the direction so that the first molecular sieve can start working. At the same time, the second molecular sieve discharges the adsorbed nitrogen to restore its adsorption function. The two molecular sieves alternate in sequence, so that oxygen can be generated continuously.

[0015] Specifically, the oxygen storage unit is an oxygen storage tank, a gas storage tank, or a gas collection chamber, or other devices used for storing oxygen.

[0016] Furthermore, one end of the oxygen storage unit is connected to the oxygen generation unit, and the other end is sequentially connected to the first pressure regulating component for adjusting the oxygen output pressure, the first one-way valve, and then connected to the mixing unit.

[0017] Furthermore, a first flow sensor, an oxygen concentration sensor, and a first one-way valve are provided between the first pressure regulating component and the mixing section.

[0018] The first one-way valve allows oxygen to flow only from the oxygen generating unit to the mixing section, and not in the reverse direction; the first flow sensor is used to detect the oxygen flow rate after pressure regulation; and the oxygen concentration sensor is used to detect the oxygen concentration before mixing with the salt aerosol.

[0019] Furthermore, a three-way valve connects the oxygen storage unit to the first pressure regulating component. One outlet of the three-way valve is connected to the first pressure regulating component, and the other outlet is connected to the salt aerosol branch after passing through the second pressure regulating component and the second one-way valve in sequence. The salt aerosol branch includes a salt particle component, and a third one-way valve is provided between the salt particle component and the mixing unit.

[0020] The second one-way valve only allows oxygen to flow from the oxygen storage section to the salt aerosol branch, and does not allow salt aerosol generated in the salt aerosol branch to flow back into the oxygen storage section.

[0021] The third one-way valve only allows salt aerosol to flow from the salt aerosol branch to the mixing section, and does not allow oxygen to flow back into the salt aerosol branch.

[0022] Furthermore, a second flow sensor and a concentration sensor are provided between the salt particle assembly and the third one-way valve.

[0023] Furthermore, the salt microparticle assembly is a salt box, which stores pre-made salt microparticles and is provided with an air inlet and an air outlet. The oxygen output from the oxygen storage section to the salt aerosol branch blows the salt microparticles in the salt box to form salt aerosol, and carries the salt aerosol into the mixing section. Alternatively, the salt microparticle assembly is a grinding chamber, including a chamber body and grinding tools. The chamber body has an air inlet and an air outlet. The grinding tools are located inside the chamber body and can cut and grind the rock salt ingredients inside the chamber body into tiny salt particles. The oxygen output from the oxygen storage section to the salt aerosol branch blows out the ground salt particles to form a salt aerosol, and carries the salt aerosol into the mixing section.

[0024] Alternatively, the salt particle assembly may be a salt spray generator and an evaporator. The salt spray generator atomizes the salt solution into a liquid mist of tiny droplets, and the evaporator evaporates and dries the liquid mist into dry salt particles. The oxygen stored in the oxygen storage section blows the salt particles out to form a salt aerosol, and carries the salt aerosol into the mixing section.

[0025] Furthermore, the cooling device is a transducer: If the salt microparticle assembly is a salt box or grinding chamber, the transducer is also connected to a mixing section, which cools the compressed air and removes moisture while collecting the heat from the compressed air output by the air compressor and transferring it to the mixing section to heat the mixed gas in the mixing section. If the salt particle assembly is a salt spray generator and an evaporator, the transducer is also connected to the evaporator. While cooling the compressed air and removing moisture, it can also collect and transfer the heat from the compressed air output by the air compressor to the evaporator, providing additional heat to the evaporator to dry the liquid mist.

[0026] Furthermore, one technical solution for the mixing section is as follows: the mixing section is a section of ventilation pipeline where oxygen output from the oxygen production line and salt aerosol output from the salt aerosol branch converge. Another technical solution for the mixing section: the mixing section is a separately designed mixing section on the ventilation pipeline; Another technical solution for the mixing section: the mixing section is the space between the breathing mask and the user's nasal cavity and / or oral cavity; Another technical solution for the mixing section: the mixing section is a relatively enclosed treatment space.

[0027] Specifically, the relatively enclosed treatment space includes an oxygen chamber, a treatment compartment, a treatment room, etc. Oxygen generated by the oxygen generation circuit and salt aerosol generated by the salt aerosol branch are diffused and mixed in the treatment space, and the user inhales the mixed air in the treatment space for treatment.

[0028] Furthermore, a third flow sensor, a second oxygen concentration sensor, and a second concentration sensor are also provided between the mixing unit and the patient's inhalation end; the third flow sensor is used to detect the flow rate of the mixed gas at the user's inhalation end, the second oxygen concentration sensor is used to detect the oxygen concentration at the user's inhalation end, and the second concentration sensor is used to detect the concentration of salt aerosol at the user's inhalation end.

[0029] Furthermore, the first pressure regulating component and the second pressure regulating component are respectively a first pressure regulating valve and a second pressure regulating valve, and may also be a first stepper motor, a second stepper motor, or other devices used to regulate gas flow or pressure.

[0030] An integrated oxygen therapy and saline therapy device was also disclosed, including a power module, a control module, and the aforementioned single-source airway system, which allows users to inhale saline aerosols for saline therapy while receiving oxygen therapy, in order to treat hypoxia, respiratory diseases, promote expectoration, and relieve airway mucosal edema.

[0031] The beneficial effects of this utility model are: 1. The gas path system of this utility model combines the oxygen generation path and the saline aerosol branch, which solves the problem that users cannot perform saline therapy at the same time when using an oxygen concentrator to inhale oxygen. This allows patients to perform saline therapy at the same time as inhaling oxygen, effectively promoting the treatment of respiratory diseases. At the same time, saline aerosol can promote patients to expectorate sputum and relieve airway mucosal edema, which has a positive effect on patients' oxygen therapy. Oxygen therapy and oxygen therapy can play a synergistic role, achieving a 1+1 greater than 2 effect. 2. The oxygen production line branches off to provide the gas source for the salt aerosol line. The oxygen drives the generation and drying of salt aerosol. The oxygen concentration will not decrease when mixed at the user end, making the oxygen concentration at the user's inhalation end more stable. At the same time, it simplifies the equipment structure, reduces costs, and simplifies the control program. 3. When the liquid mist is dried and evaporated in the salt aerosol branch, the water vapor generated by the liquid mist is mixed with oxygen together with the salt aerosol to humidify the oxygen. There is no need to use an additional humidifier to humidify the oxygen, which improves the patient's comfort. 4. In the saline aerosol branch, after the liquid mist is dried and evaporated to form saline aerosol, the saline aerosol carries the heat from the evaporator and mixes with oxygen to heat the oxygen. There is no need to set up an additional heating component to heat the oxygen, which improves the patient's comfort. 5. The saline aerosol branch uses the oxygen output from the oxygen generating branch as the driving gas for the saline aerosol. When mixed with the oxygen output from the oxygen generating branch, no new air is introduced, so that the oxygen concentration output by the integrated device is basically the same as the oxygen concentration output by the oxygen generating branch, and the final output oxygen concentration will not be reduced. This allows the user to receive high-concentration oxygen therapy during saline therapy. 6. The cooling device uses a transducer to collect the heat generated by the compressor and use it to heat the gas after the oxygen and salt aerosol are mixed, eliminating the need for a separate heating component to heat the gas; or it can collect the heat generated by the compressor and use it to dry the liquid mist in the salt aerosol branch, which can reduce energy consumption. Attached Figure Description

[0032] To more clearly illustrate the technical solutions in the embodiments of this application, the accompanying drawings used in the description of the embodiments will be briefly introduced below. The drawings are used to provide a further understanding of the present utility model and constitute a part of the specification. They are used together with the embodiments of the present utility model to explain the present utility model and do not constitute a limitation on the present utility model. For those skilled in the art, other drawings can be obtained based on the drawings without creative effort.

[0033] Figure 1 This is a schematic diagram of the gas path system of this utility model; Figure 2 This is a schematic diagram of the oxygen generation circuit in an embodiment of the gas circuit system of this utility model; Figure 3This is a schematic diagram of the salt aerosol branch in an embodiment of the gas path system of this utility model; Figure 4 A schematic diagram of an embodiment of a salt aerosol branch; Figure 5 A schematic diagram of another embodiment of the salt aerosol branch; Figure 6 for Figure 5 A schematic diagram of the connection of the salt sol branch in the gas circuit system; Figure 7 This is a schematic diagram of another embodiment of the salt aerosol branch; Figure 8 This is a schematic diagram of an embodiment of the mixing section in the gas circuit system of this utility model; Figure 9 This is a schematic diagram of another embodiment of the mixing section in the gas circuit system of this utility model; Figure 10 This is a schematic diagram of another embodiment of the mixing section in the gas circuit system of this utility model; Figure 11 This is a schematic diagram of one embodiment of the cooling device of this utility model; Figure 12 This is a schematic diagram of another embodiment of the cooling device of this utility model; Figure 13 This is a schematic diagram of the overall connection of an embodiment of the pneumatic system of this utility model; Figure 14 This is a block diagram of the integrated oxygen therapy and saline therapy device of this utility model.

[0034] The components include: 1. Air source; 101. Air inlet; 102. Filter; 103. Air compressor; 104. Condenser; 2. Oxygen generating circuit; 201. Reversing valve; 202. First molecular sieve; 203. Second molecular sieve; 204. First three-way valve; 205. Oxygen storage tank; 206. Second three-way valve; 207. First pressure regulating valve; 208. First flow sensor; 209. Oxygen concentration sensor; 210. First check valve; 3. Salt aerosol branch; 301. Micro-mesh atomizer; 302. Evaporator; 303. Second flow sensor; 304. Salt aerosol concentration sensor; 305. Third check valve; 4. Mixing section; 501. Breathing mask; 601, Second pressure regulating valve; 602, Second check valve. Detailed Implementation

[0035] The technical solutions of the present utility model will be clearly and completely described below with reference to the accompanying drawings of the embodiments. Obviously, the described embodiments are only some embodiments of the present utility model, and not all embodiments. Based on the embodiments of the present utility model, all other embodiments obtained by those of ordinary skill in the art without creative effort are within the protection scope of the present utility model.

[0036] Reference Figure 1 As shown, an embodiment of a single-source gas path system includes a gas source 1, an oxygen generating path 2, a saline aerosol branch path 3, and a mixing section 4. The gas source 1 is connected to the oxygen generating path 2, providing compressed air to the oxygen generating path 2. The oxygen generating path 2 includes an oxygen generating unit and an oxygen storage section for storing oxygen. The oxygen generating unit is connected to the gas source and performs nitrogen-oxygen separation on the compressed air provided by the gas source to provide oxygen to the user. One end of the saline aerosol branch path 3 is connected to the oxygen storage section, and the other end is connected to the mixing section 4, used to generate dry saline aerosol to provide saline aerosol therapy to the user. The mixing section 4 connects the oxygen generating path 2 and the saline aerosol branch path 3, used to mix the oxygen generated by the oxygen generating path 2 with the saline aerosol generated by the saline aerosol branch path 3 for the user to inhale for therapy.

[0037] In this embodiment, the air source 1 is an air compressor. A filter is installed at the air inlet of the air compressor to filter the air entering the air compressor and provide clean air for the oxygen generation line 2 and the salt aerosol branch line 3. A cooling device is connected to the air outlet of the air compressor to cool the compressed air output by the air compressor and input the cooled compressed air into the oxygen generation line 2 and the salt aerosol branch line 3 respectively.

[0038] In some other embodiments, the gas source 1 may also be a central gas supply.

[0039] Specifically, the cooling device can be any of a transducer, condenser, or heat dissipation piping. When an air compressor outputs compressed air, it generates heat, which heats the compressed air. The temperature of the compressed air may exceed the operating temperature of the oxygen generator. Therefore, the temperature of the compressed air needs to be reduced by a cooling device before it is introduced into the oxygen generator to avoid the compressed air entering the oxygen generator being too hot, which would reduce the oxygen generation efficiency or even damage the oxygen generator.

[0040] In this embodiment, a condenser is used to cool the compressed air while condensing and discharging the moisture in the compressed air, thus drying the compressed air. The dried air can improve the oxygen production efficiency of the oxygen generation unit and the drying efficiency of the salt aerosol.

[0041] Reference Figure 1As shown, the oxygen generating circuit 2 includes an oxygen generating unit, an oxygen storage section for storing oxygen, and a first pressure regulating valve for adjusting the oxygen output pressure; one end of the oxygen generating unit is connected to the condenser, and the other end is connected to the oxygen storage section and the first pressure regulating valve in sequence through the air supply pipeline and then to the mixing section.

[0042] As can be seen, the oxygen storage unit referred to in this embodiment refers to a device for storing oxygen, which may be an oxygen storage tank, a gas storage tank, or a gas collection chamber, or other devices used for storing oxygen. In this embodiment, an oxygen storage tank is used.

[0043] In this embodiment, the oxygen generation unit is at least one molecular sieve or nitrogen-oxygen separation membrane.

[0044] Among them, molecular sieves use pressure swing adsorption to separate nitrogen and oxygen in compressed air to prepare high-concentration oxygen (i.e., oxygen). One molecular sieve can be used, or multiple molecular sieves can be used.

[0045] The nitrogen-oxygen separation membrane uses membrane separation to separate nitrogen and oxygen in compressed air to produce high-concentration oxygen (i.e., oxygen). One or multiple separation membranes can be used.

[0046] When the oxygen generation unit has two or more molecular sieves, an electromagnetic reversing valve is installed between the cooling device and the molecular sieves.

[0047] For example, this embodiment uses two molecular sieves, referring to... Figure 13 As shown, when oxygen production begins, the reversing valve opens the first molecular sieve, allowing compressed air to enter and separate nitrogen and oxygen. The first molecular sieve adsorbs nitrogen and delivers oxygen. When the first molecular sieve is saturated with adsorbed nitrogen, the reversing valve switches to allow compressed air to flow to the second molecular sieve, which then begins to work. Simultaneously, the first molecular sieve discharges the adsorbed nitrogen to restore its adsorption function. When the second molecular sieve is saturated with adsorbed nitrogen, the reversing valve switches to allow compressed air to flow to the first molecular sieve, which then begins to work. Simultaneously, the second molecular sieve discharges the adsorbed nitrogen to restore its adsorption function. The two molecular sieves alternately perform nitrogen and oxygen separation, allowing for uninterrupted oxygen production.

[0048] Reference Figure 1 and Figure 13 As shown, a first three-way valve connects the oxygen storage unit and the first pressure regulating valve. The inlet end of the first three-way valve is connected to the oxygen storage unit, one outlet end is connected to the first pressure regulating valve, and the other outlet end is connected to the salt aerosol branch 3 after passing through the second pressure regulating valve and the second one-way valve in sequence.

[0049] In this embodiment, the salt aerosol branch 3 includes a salt microparticle assembly, and a third one-way valve is provided between the salt microparticle assembly and the mixing section. The salt aerosol branch 3 includes a salt microparticle assembly, one end of which is connected to the second one-way valve, and the other end is connected to the mixing section 4 through the third one-way valve.

[0050] The second one-way valve only allows oxygen to flow from the oxygen storage section to the salt aerosol branch 3, and does not allow the salt aerosol generated by the salt aerosol branch 3 to flow back into the oxygen storage section.

[0051] The third one-way valve only allows salt aerosol to flow from salt aerosol branch 3 to mixing section 4, and does not allow oxygen to flow back into salt aerosol branch 3.

[0052] Reference Figure 2 In one embodiment of the oxygen generating circuit 2 shown, a first flow sensor, an oxygen concentration sensor, and a first check valve are provided between the first pressure regulating valve and the mixing section; The first one-way valve only allows oxygen to flow from the oxygen storage section to the mixing section, and the mixed gas in the mixing chamber cannot flow back into the oxygen storage section; the first flow sensor is used to detect the oxygen flow rate after pressure regulation; and the oxygen concentration sensor is used to detect the oxygen concentration before mixing with the salt aerosol. Reference Figure 3 In one embodiment of the salt aerosol branch 3 shown, a second flow sensor and a salt aerosol concentration sensor are provided between the salt particle assembly and the third check valve.

[0053] The second flow sensor is used to detect the flow rate of the salt aerosol branch 3, and the salt aerosol concentration sensor is used to detect the concentration of the salt aerosol.

[0054] Reference Figure 4 An embodiment of the salt particle assembly in the salt aerosol branch 3 shown is a salt box, which stores pre-made salt particles and is provided with an air inlet and an air outlet. The oxygen supplied to the salt aerosol branch 3 by the oxygen storage section is regulated by the second pressure regulating valve and blows out the salt particles in the salt box to form a salt aerosol. Another embodiment of the salt microparticle assembly is a grinding chamber, which includes a chamber body and grinding tools. The chamber body has an air inlet and an air outlet. The grinding tools are located inside the chamber body and can cut and grind the rock salt ingredients inside the chamber body into tiny salt particles. The oxygen in the oxygen storage section is introduced into the salt aerosol branch 3 and then regulated by the second pressure regulating valve to blow out the ground salt particles to form a salt aerosol.

[0055] Reference Figure 5 In another embodiment of the salt microparticle assembly shown, the salt microparticle assembly comprises a salt spray generator and an evaporator. The salt spray generator is a micro-mesh atomizer. The evaporator is connected to both the micro-mesh atomizer and the oxygen storage unit. The micro-mesh atomizer atomizes the salt solution into tiny droplets of liquid mist and sprays the liquid mist into the evaporator. The evaporator evaporates and dries the liquid mist into dry salt microparticles. Oxygen from the salt aerosol branch 3 is introduced into the evaporator after being regulated by the second pressure regulating valve to accelerate the drying speed of the liquid mist generated by the micro-mesh atomizer and carry away the dried salt microparticles.

[0056] In this embodiment, there is no need to introduce a humidifier to humidify the mixed gas after mixing oxygen and salt aerosol, nor is it necessary to set up a heating component to heat the mixed gas.

[0057] In this embodiment, since the temperature of the salt microparticle assembly is high, reaching 75°C to 100°C, and there is a risk of fire in the oxygen-rich environment, it is necessary to isolate, flame-retard, or seal the circuit and heating components in the salt sol path.

[0058] Reference Figure 6 The example shown is an embodiment of a gas path system in which the salt microparticle assembly is a micro-mesh atomizer and evaporator.

[0059] Reference Figure 7 As shown, another embodiment of the salt microparticle assembly is a salt spray generator and an evaporator, wherein the salt spray generator is a compression atomizing cup or an ultrasonic atomizer.

[0060] In one example of this embodiment, the salt spray generator is an ultrasonic atomizer. The oxygen, after being regulated by the second pressure regulating valve, first enters the ultrasonic atomizer and then connects to the evaporator. The ultrasonic atomizer atomizes the salt solution into a liquid mist of tiny droplets. The regulated oxygen carries the liquid mist out to the evaporator to evaporate and dry it into dry salt particles. The salt particles are then carried out to form a salt aerosol, which then passes through the second flow sensor, the salt aerosol concentration sensor, and the third one-way valve before being introduced into the mixing section 4 to mix with the oxygen.

[0061] In this embodiment, there is no need to introduce a humidifier to humidify the mixed gas after mixing oxygen and salt aerosol, nor is it necessary to set up a heating component to heat the mixed gas.

[0062] In another example of this embodiment, the salt spray generator is a compression atomizing cup. Oxygen, after being regulated by the second pressure regulating valve, is first introduced into the compression atomizing cup to atomize the salt solution into liquid mist. The liquid mist is then carried into the evaporator to evaporate and dry the liquid mist into tiny salt particles. The salt particles are then blown out to form a salt aerosol, which is then passed through the second flow sensor, the salt aerosol concentration sensor, and the third one-way valve before being introduced into the mixing section to mix with oxygen.

[0063] In this embodiment, there is no need to introduce a humidifier to humidify the mixed gas after mixing oxygen and salt aerosol, nor is it necessary to set up a heating component to heat the mixed gas.

[0064] In the above embodiments, the evaporator evaporates and dries the liquid mist by means of heating drying, microwave drying, infrared drying, etc.

[0065] Microwave drying and infrared drying can be used by placing the corresponding microwave generator or infrared generator on the cavity wall of the evaporator to dry the liquid mist entering the evaporator.

[0066] Heating and drying can be achieved by using heating wires or heating plates, which are installed on the cavity wall of the evaporator to heat the entire evaporator and dry the liquid mist entering the evaporator. When the salt spray generator is a micro-mesh atomizer, the heating wire or heating plate can also be set at the air inlet of the evaporator after the oxygen pressure is regulated by the second pressure regulating valve. When the regulated oxygen enters the evaporator, it is heated by the heating wire or heating plate to form hot air. The hot air enters the evaporator to dry the liquid mist.

[0067] like Figure 8 In one embodiment of the mixing section 4 shown, the mixing section 4 is a section of the ventilation line, or a mixing chamber designed separately on the ventilation line; after the oxygen generated by the oxygen generating line 2 and the salt aerosol generated by the salt aerosol branch line 3 are mixed in the mixing section 4, the mixture is supplied to the patient for inhalation through a breathing mask.

[0068] It is known that the oxygen-salt aerosol mixture is not limited to being inhaled by a breathing mask; it can also be a nasal tube, nasal plug, endotracheal tube, mouthpiece, or other device that can deliver the oxygen-salt aerosol mixture to the patient's airway.

[0069] like Figure 9 In another embodiment of the mixing section 4 shown, the mixing section 4 is the space between the breathing mask and the user's nasal cavity and / or oral cavity, that is, the oxygen generated by the oxygen generating line 2 and the salt aerosol generated by the salt aerosol branch line 3 are respectively delivered to the breathing mask, and after preliminary mixing in the breathing mask, they are inhaled into the lungs by the patient.

[0070] In this embodiment, the breathing mask is provided with two air inlets, one for oxygen and the other for salt aerosol.

[0071] Reference Figure 10 In another embodiment of the mixing unit 4 shown, the mixing unit 4 is a relatively enclosed treatment space, including an oxygen chamber, a treatment chamber, a treatment room, a bedroom, etc. The oxygen generated by the oxygen generating line 2 and the salt aerosol generated by the salt aerosol branch line 3 are diffused and mixed in the treatment space, and the user inhales the mixed gas of oxygen and salt aerosol in the treatment space for treatment.

[0072] In this invention, the mixing section 4 is not limited to the listed examples; any space for mixing oxygen generated by the oxygen production line 2 with salt aerosol generated by the salt aerosol branch line 3 can be called the mixing section 4.

[0073] like Figure 11As shown, in one embodiment where the cooling device is a transducer, the inlet end of the transducer is connected to an air compressor, the outlet end is connected to an oxygen generation line 2, and it is also connected to a mixing section 4. While cooling and removing water from the compressed air, it can collect the heat of the compressed air and transfer it to the mixing section to heat the mixed gas in the mixing section, eliminating the need for an additional heating device to heat the mixed gas.

[0074] This embodiment applies to situations where the salt microparticle assembly is a salt box or a grinding chamber.

[0075] Reference Figure 12 As shown, the cooling device is another embodiment of the transducer. The air inlet of the transducer is connected to an air compressor, and the air outlet is connected to the oxygen generation line 2. It is also connected to the evaporator. While cooling and removing water from the compressed air, it can collect the heat of the compressed air and transfer it to the evaporator for use in liquid mist drying.

[0076] This embodiment applies to situations where the salt microparticle components are salt spray generators and evaporators.

[0077] In this embodiment, the particle size distribution of the salt aerosol is as follows: particles with a diameter of less than 5 μm account for more than 90%.

[0078] In this embodiment, the oxygen concentration generated by the oxygen generating circuit is greater than 90%.

[0079] An integrated oxygen therapy and saline therapy device includes a power supply module, a control module, and the single-source gas path system described in this invention. The power supply module simultaneously supplies power to the gas source 1, the oxygen generating path 2, the saline aerosol branch path 3, and the control module. The control module controls the operating parameters of the gas source 1, the oxygen generating path 2, and the saline aerosol branch path 3, allowing users to simultaneously inhale oxygen for oxygen therapy and inhale saline aerosol for saline therapy, treating hypoxia, respiratory diseases, promoting sputum expectoration, and relieving airway mucosal edema, etc.

[0080] For example, refer to Figure 13 As shown, the cooling device is a condenser 104, the salt particle assembly is a combination of a micro-mesh atomizer 301 and an evaporator 302, and a heating element is provided at the air inlet of the evaporator 302 after the oxygen is regulated by the second pressure regulating valve. The oxygen generation unit is a reversing valve 201, two molecular sieves (first molecular sieve 202 and second molecular sieve 203) and an oxygen storage tank 204. The mixing part 4 is a mixing chamber. The specific process of one embodiment of this utility model is as follows: When the power is turned on, the control module controls the air compressor 103, oxygen generator 2, and salt sol branch 3 to start working. Air enters the air compressor 103 after passing through the filter 102 from the air inlet 101. The air compressor 103 compresses the filtered air and delivers it to the condenser 104. The condenser 104 cools and removes moisture from the compressed air (i.e., cools and dries the compressed air). The compressed air is then delivered through the reversing valve 201 to the first molecular sieve 202 and / or the second molecular sieve 203 for nitrogen and oxygen separation. The first molecular sieve 202 and / or the second molecular sieve 203... The nitrogen adsorbed in molecular sieve 203 is discharged after nitrogen removal. The oxygen separated by the first molecular sieve 202 and / or the second molecular sieve 203 is transported to the oxygen storage tank 205 for storage through the first three-way valve 204. The oxygen (also known as oxygen-enriched gas) in the oxygen storage tank 205 is divided into two gas paths through the second three-way valve 206. One gas path is regulated by the first pressure regulating valve 207 and then enters the mixing section 4 (mixing chamber in this example) through the first one-way valve 210. At the same time, the first flow sensor 208, which is set between the first pressure regulating valve 207 and the first one-way valve 210, measures the oxygen flow rate after pressure regulation, and the oxygen concentration sensor 209 measures the oxygen concentration. The oxygen output from the oxygen storage tank 205 passes through the second three-way valve 206 and then through another gas path. After the pressure is adjusted by the second pressure regulating valve 601, it is connected to the evaporator 302 of the salt aerosol branch 3 via the second one-way valve 602. In the salt aerosol branch 3, the micro-mesh nebulizer 301 atomizes the salt solution into tiny droplets of liquid mist and sprays them into the evaporator 302. The oxygen, after the pressure is adjusted by the second pressure regulating valve 601, is heated by the heating element to form hot air. The hot air passes through the evaporator 302 to evaporate and dry the liquid mist into dry salt particles. The salt particles are then blown out of the evaporator 302 to form salt aerosol. The salt aerosol is then carried through the second flow sensor 303, the salt aerosol concentration sensor 304, and the third one-way valve 305 before entering the mixing section 4 to mix with the oxygen. The mixed oxygen-salt aerosol gas is then inhaled by the user through the breathing mask 501 to treat respiratory diseases.

[0081] It is understood that in this embodiment, not only can a pressure regulating valve be used to regulate the gas flow rate, but a stepper motor can also be used in conjunction with a screw structure to regulate the gas flow rate, or other devices capable of regulating the flow rate. The first pressure regulating component and the second pressure regulating component referred to in this utility model are not limited to pressure regulating valves, but also include other equivalent devices for regulating the flow rate.

[0082] In this invention, the terms "salt" and "rock salt" refer to sodium chloride; the term "salt solution" refers to a sodium chloride solution formed by dissolving sodium chloride in water, and may also contain trace amounts of elements such as magnesium and potassium; the term "salt aerosol" has the same meaning as "dry salt aerosol," "rock salt aerosol," and "salt sol," all of which are solid aerosols formed by dry salt particles suspended in the air; the term "salt mist generator" is a device that atomizes salt solution into tiny droplets, and "liquid mist" refers to the liquid mist formed by tiny droplets of salt solution suspended in the air; the term "compressor" refers to an air compressor; and the term "oxygen storage unit" is a device for storing oxygen.

[0083] Although the preferred embodiments of the present invention have been described above in conjunction with the accompanying drawings, the present invention is not limited to the specific embodiments described above. The specific embodiments described above are merely illustrative and not limiting. Those skilled in the art can make many specific modifications under the guidance of the present invention without departing from the spirit of the invention and the scope of protection of the claims, and these modifications all fall within the protection scope of the present invention.

Claims

1. An oxygen-driven gas path system, characterized in that: Includes gas source, oxygen production line, salt aerosol branch line and mixing section; The gas source is connected to the oxygen production line to provide compressed air to the oxygen production line. The oxygen generation circuit includes an oxygen generation unit and an oxygen storage unit for storing oxygen. The oxygen generation unit is connected to a gas source and performs nitrogen-oxygen separation on the compressed air provided by the gas source to provide oxygen to the user. One end of the salt aerosol branch is connected to the oxygen storage section, and the other end is connected to the mixing section, which is used to generate dry salt aerosol to provide salt aerosol therapy for users. The mixing section is connected to the oxygen generating circuit and the saline aerosol branch, respectively, and is used to mix the oxygen generated by the oxygen generating circuit with the saline aerosol generated by the saline aerosol branch for the user to inhale for treatment.

2. The oxygen-driven gas path system according to claim 1, characterized in that: The air source is an air compressor, and the air compressor is equipped with a filter at the air inlet to filter the air entering the air compressor and provide clean air for the oxygen generation circuit.

3. The oxygen-driven gas path system according to claim 2, characterized in that: The air compressor outlet is connected to a cooling device, and the other end of the cooling device is connected to an oxygen generating unit. The cooling device is used to cool the compressed air output by the air compressor and deliver the cooled compressed air to the oxygen generating unit.

4. The oxygen-driven gas path system according to claim 3, characterized in that: The cooling device is any one of a transducer, condenser, or heat dissipation pipeline. The oxygen generating unit is at least one molecular sieve or nitrogen-oxygen separation membrane. One end of the oxygen storage section is connected to the oxygen generating unit, and the other end is connected in sequence to a first pressure regulating component for adjusting the oxygen output pressure, a first one-way valve, and then connected to the mixing section.

5. The oxygen-driven gas path system according to claim 4, characterized in that: A first flow sensor, an oxygen concentration sensor, and a first one-way valve are provided between the first pressure regulating component and the mixing section. The oxygen storage section can be any one of an oxygen storage tank, a gas storage tank, or a gas collection chamber.

6. The oxygen-driven gas path system according to claim 4, characterized in that: The oxygen storage unit is connected to the first pressure regulating component by a three-way valve. One outlet of the three-way valve is connected to the first pressure regulating component, and the other outlet is connected to the salt aerosol branch after passing through the second pressure regulating component and the second one-way valve in sequence. The salt aerosol branch includes a salt particle component, and a third one-way valve is provided between the salt particle component and the mixing unit.

7. The oxygen-driven gas path system according to claim 6, characterized in that: The salt microparticle assembly is a salt box, which stores pre-made salt microparticles and is equipped with an air inlet and an air outlet. The oxygen output from the oxygen storage section to the salt aerosol branch blows the salt microparticles out of the salt box to form salt aerosol, and carries the salt aerosol into the mixing section. Alternatively, the salt microparticle assembly is a grinding chamber, including a chamber body and grinding blades. The chamber body has an air inlet and an air outlet. The grinding blades are located inside the chamber body and can cut and grind the rock salt ingredients inside the chamber body into tiny salt particles. The oxygen output from the oxygen storage section to the salt aerosol branch blows out the ground salt particles to form a salt aerosol and carries the salt aerosol into the mixing section. Alternatively, the salt particle assembly may be a salt spray generator and an evaporator. The salt spray generator atomizes the salt solution into a liquid mist of tiny droplets, and the evaporator evaporates and dries the liquid mist into dry salt particles. The oxygen stored in the oxygen storage section blows the salt particles out to form a salt aerosol, and carries the salt aerosol into the mixing section.

8. The oxygen-driven gas path system according to claim 7, characterized in that: It also includes, If the salt particle assembly is a salt box or a grinding chamber, the transducer is also connected to a mixing section to collect and transfer heat from the compressed air output by the air compressor to the mixing section to heat the mixed gas in the mixing section; If the salt particle assembly is a salt spray generator and an evaporator, the transducer is also connected to the evaporator to collect and transfer heat from the compressed air output by the air compressor to the evaporator, providing additional heat for the drying of the liquid mist.

9. The oxygen-driven gas path system according to any one of claims 1 to 8, characterized in that: The mixing section, This is a section of ventilation pipeline where the oxygen output from the oxygen production line and the salt aerosol output from the salt aerosol branch converge. Alternatively, it could be a separate mixing chamber designed for the ventilation line; Or, the space between the breathing mask and the user's nasal cavity and / or mouth; Alternatively, it could be a relatively enclosed treatment space.

10. An integrated oxygen therapy and saline therapy device, characterized in that: Includes the oxygen-driven gas path system as described in any one of claims 1 to 9.