Water-free nose choking improvement system for oxyhydrogen machine
By designing a waterless nose-free improvement system for hydroxide machines, including the water tank body and oxygen absorption mechanism, the problem of inconvenient absorption and storage of traditional hydroxide machines is solved, and the convenient absorption of gas and simple storage of equipment is achieved, which improves the convenience and practicality of use.
Patent Information
- Application Number
- CN202421436214.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Utility models(China)
- Current Assignee / Owner
- Filing Date
- 2024-06-23
- Publication Date
- 2025-06-17
- Estimated Expiration
- 2034-06-23
AI Technical Summary
The exhaust components of traditional hydrogen and oxygen machines are generally pipes, which are not convenient for users to absorb the exhausted gas. Partially connected masks are discharged. Although it is convenient for users to absorb the gas, it is not convenient for people to store it after use.
A waterless nose-free improvement system for hydrogen and oxygen machine is designed, including the water tank body and oxygen absorption mechanism. The oxygen absorption mechanism includes a mask body, a fixing block, a length hose, a pipe joint, a limiting plate, a length block and a fixing mechanism. The gas is transported to the pipeline joint through the third oxygen discharge pipeline. The joint transports the gas to the length hose, and the hose is then transported to the mask body. The user fixes the mask through an elastic belt to facilitate the absorption of gas. The fixing mechanism can fix and suspend the oxygen absorbing mechanism through the coordination of the steering shaft and the steering wheel for easy storage.
The gas discharged from the hydrogen-oxygen machine can be easily transported into the mask, and the user can easily absorb the gas, and through the design of the fixing mechanism, it is easy to fix and suspend the equipment when not in use, it is easy to store, simple to operate and high practicality.
Smart Images

Figure CN222983500U_ABST
Abstract
Description
Technical Field
[0001] The utility model relates to the technical field of hydrogen-oxygen machines, in particular to a system for improving anhydrous nasal irritation for a hydrogen-oxygen machine. Background Technique
[0002] A hydrogen-oxygen machine, whose full name is a hydrogen-oxygen ion generator, is a small electrical device that can generate hydrogen and negative oxygen ions. Its main principle is to decompose water molecules into hydrogen and oxygen ions, filter the air through a particle filter, and release the generated hydrogen and negative oxygen ions into the air, playing a role in purifying the air and promoting physical health. Hydrogen-oxygen gas can increase the blood oxygen saturation, improve the function of the respiratory system, and improve the symptoms of patients in the acute exacerbation stage of chronic obstructive pulmonary disease and anhydrous nasal irritation.
[0003] However, traditional hydrogen-oxygen machines have the following disadvantages:
[0004] The exhaust components of traditional hydrogen-oxygen machines are generally pipes, which are not convenient for users to absorb the discharged gas. Some are connected to a mask for discharge. Although it is convenient for users to absorb the gas, it is not convenient for people to store it after use. Content of the Utility Model
[0005] The purpose of the utility model is to provide a system for improving anhydrous nasal irritation for a hydrogen-oxygen machine, so as to solve the problem that the exhaust components of traditional hydrogen-oxygen machines are generally pipes, which are not convenient for users to absorb the discharged gas. Some are connected to a mask for discharge. Although it is convenient for users to absorb the gas, it is not convenient for people to store it after use as mentioned in the above background technique.
[0006] To achieve the above object, the present utility model provides the following technical solution: An anhydrous choking improvement system for a hydrogen-oxygen machine, comprising a water tank body. One side of the top of the water tank body is fixedly communicated with an oxygen outlet pipe, and the other side of the top of the water tank body is fixedly communicated with a feed pipe. One side of the bottom of the water tank body is fixedly communicated with a heat dissipation pipe, and the other side of the bottom of the water tank body is fixedly communicated with a circulation pipe. A first three-way connection pipe is provided at the top of the water tank body, and an oxygen inhalation mechanism is provided on one side of the water tank body. The oxygen inhalation mechanism includes a mask body and two fixing blocks. The two ends of one side of the mask body are respectively fixedly connected to one end of the two fixing blocks. A length hose is fixedly communicated with the middle of the mask body. One end of the length hose is fixedly communicated with a pipe joint. A limiting plate is fixedly installed in the middle of the length hose. A length block is fixedly installed on one side of the limiting plate. A fixing mechanism is rotatably installed at the top of the length block. An elastic band is fixedly installed between the two fixing blocks. Two exhaust ports are opened on the mask body on both sides of the length hose. Gas is transported to the pipe joint through the third oxygen discharge pipe. The pipe joint transports the gas into the length hose and then into the mask body. The mask body is fixed on the user's face through the elastic band, facilitating the user to breathe the gas in the mask body.
[0007] Preferably, the fixing mechanism includes a direction shaft and a steering wheel. The top of the direction shaft is fixedly connected to the bottom of the steering wheel. A direction seat is fixedly installed at the top of the steering wheel. A hanging ring is rotatably connected inside the direction seat. The user rotates the steering wheel to adjust the hanging direction of the hanging ring. The user rotates the hanging ring along the direction seat to adjust the hanging angle of the hanging ring. The hanging ring hangs at the fixed place, thereby fixing the oxygen inhalation mechanism.
[0008] Preferably, the bottom of the direction shaft is rotatably connected to the length block, and the fixing mechanism is installed in the length block through the direction shaft.
[0009] Preferably, one side of the first three-way connecting pipe is fixedly communicated with an assembly pipe, the other end of the assembly pipe is connected with a second three-way connecting pipe, one end of the second three-way connecting pipe is connected with an air injection pipe, a first one-way valve is fixedly installed in the middle of the air injection pipe, a water inlet pump is arranged at the bottom end of the second three-way connecting pipe, the water inlet of the water inlet pump is fixedly communicated with a water injection pipe, the water outlet of the water inlet pump is fixedly communicated with a water delivery pipe, one end of the water delivery pipe far away from the water inlet pump is fixedly communicated with the end opposite to the second three-way connecting pipe, one end of the first three-way connecting pipe opposite to the feeding pipe is fixedly communicated, a reflux pipe is fixedly communicated with the surface of the first three-way connecting pipe, a third one-way valve is fixedly installed in the middle of the reflux pipe, a drainage pump is arranged at the bottom end of the water inlet pump, the liquid inlet of the drainage pump is fixedly communicated with the end opposite to the reflux pipe, the liquid outlet of the drainage pump is fixedly communicated with a drainage pipe, and an electromagnet is fixedly installed in the middle of the drainage pipe. After the water inlet pump is powered on and started, the water inlet pump extracts water through the water injection pipe, and the water is transported to the inside of the water tank body through the water delivery pipe to supply water to the inside of the water tank body, and air is transported to the inside of the water tank body through the air injection pipe.
[0010] Preferably, one end of the oxygen outlet pipe is fixedly communicated with a first oxygen discharge pipe, the end of the first oxygen discharge pipe far away from the oxygen outlet pipe is fixedly communicated with a first heat dissipation coil pipe, one side of the first heat dissipation coil pipe is in contact connection with a fan, the end of the first heat dissipation coil pipe far away from the first oxygen discharge pipe is fixedly communicated with a second oxygen discharge pipe, the end of the second oxygen discharge pipe far away from the first heat dissipation coil pipe is fixedly communicated with a third three-way connecting pipe, a second one-way valve is fixedly installed in the middle of the second oxygen discharge pipe, one end of the third three-way connecting pipe is fixedly communicated with a third oxygen discharge pipe, the end of the third oxygen discharge pipe far away from the third three-way connecting pipe is fixedly communicated with an oxygen inhalation mechanism, a pressure switch is fixedly installed in the middle of the third oxygen discharge pipe, and a check valve is installed on the third oxygen discharge pipe on one side of the pressure switch. After the fan is powered on and started, the fan blows the first heat dissipation coil pipe from one side to cool down the oxygen in the oxygen discharge pipe, the pressure switch adjusts the pressure discharged from the third oxygen discharge pipe, and the installation of the check valve prevents oxygen from flowing back along the third oxygen discharge pipe.
[0011] Preferably, one end of the heat dissipation pipe is fixedly communicated with a second heat dissipation coil pipe, the end of the second heat dissipation coil pipe far away from the heat dissipation pipe is fixedly communicated with a water vapor separator, and the surface of the water vapor separator is fixedly communicated with the end opposite to the third three-way connecting pipe. The water vapor separator separates water vapor from the discharged gas.
[0012] Preferably, a circulation pump is provided at the bottom end of the water tank body. The liquid inlet of the circulation pump is fixedly communicated with a extraction pipeline, and the liquid outlet of the circulation pump is fixedly communicated with a delivery pipeline. One end of the extraction pipeline away from the circulation pump is fixedly communicated with one side of the circulation pipeline facing it. After the circulation pump is powered on, it starts. The circulation pump extracts the liquid in the circulation pipeline connected to the water tank body through the extraction pipeline, and the extracted liquid is transported to the filter element through the delivery pipeline for purification and then flows back into the water tank body.
[0013] Compared with the prior art, the beneficial effects of the present utility model are as follows: By providing an oxygen inhalation mechanism, the gas discharged from the hydrogen oxygen machine is transported into the mask body. The user fixes the mask through the elastic band, which is convenient for the user to inhale the gas discharged from the hydrogen oxygen machine. When not in use, it is fixed and suspended through the hanging ring on the fixing mechanism, which is convenient for the user to store it. The operation is simple and convenient, and the practicability is high. BRIEF DESCRIPTION OF THE DRAWINGS
[0014] Figure 1 is the pipeline diagram of the present utility model;
[0015] Figure 2 is the side view of the oxygen inhalation mechanism of the present utility model;
[0016] Figure 3 is the side view of the fixing mechanism of the present utility model.
[0017] In the figure: 1. Air injection pipeline; 2. First one-way valve; 3. Water injection pipeline; 4. Feed water pump; 5. Water delivery pipeline; 6. Second three-way connection pipeline; 7. Assembly pipeline; 8. First three-way connection pipeline; 9. Water tank body; 10. Oxygen outlet pipeline; 11. Feed pipeline; 12. First oxygen discharge pipeline; 13. First heat dissipation coil; 14. Fan; 15. Second oxygen discharge pipeline; 16. Second one-way valve; 17. Third three-way connection pipeline; 18. Pressure switch; 19. Check valve; 20. Oxygen inhalation mechanism; 201. Mask body; 202. Fixed block; 203. Elastic band; 204. Exhaust port; 205. Pipeline joint; 206. Limiting plate; 207. Length block; 208. Length hose; 209. Fixing mechanism; 2091. Direction shaft; 2092. Steering wheel; 2093. Direction seat; 2094. Hanging ring; 21. Third oxygen discharge pipeline; 22. Third one-way valve; 23. Return pipeline; 24. Drainage pump; 25. Electromagnet; 26. Drainage pipeline; 27. Heat dissipation pipeline; 28. Second heat dissipation coil; 29. Circulation pipeline; 30. Circulation pump; 31. Extraction pipeline; 32. Delivery pipeline; 33. Water vapor separator. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0018] Next, the technical solutions in the embodiments of the present utility model will be clearly and completely described in conjunction with the drawings in the embodiments of the present utility model.
[0019] Please refer to Figures 1-3 For this, the present utility model provides a system for improving waterless nasal choking for a hydrogen-oxygen machine, including a water tank body 9. One side of the top of the water tank body 9 is fixedly communicated with an oxygen outlet pipe 10, and the other side of the top of the water tank body 9 is fixedly communicated with a feeding pipe 11. One side of the bottom of the water tank body 9 is fixedly communicated with a heat dissipation pipe 27, and the other side of the bottom of the water tank body 9 is fixedly communicated with a circulation pipe 29. A first three-way connection pipe 8 is provided at the top of the water tank body 9, and an oxygen inhalation mechanism 20 is provided on one side of the water tank body 9. The oxygen inhalation mechanism 20 includes a mask body 201 and two fixing blocks 202. Both ends of one side of the mask body 201 are respectively fixedly connected to one end of the two fixing blocks 202. A length hose 208 is fixedly communicated with the middle of the mask body 201. One end of the length hose 208 is fixedly communicated with a pipe joint 205. A limiting plate 206 is fixedly installed in the middle of the length hose 208. A length block 207 is fixedly installed on one side of the limiting plate 206. A fixing mechanism 209 is rotatably installed at the top of the length block 207. An elastic band 203 is fixedly installed between the two fixing blocks 202. Two exhaust ports 204 are provided on the mask body 201 on both sides of the length hose 208. Gas is transported into the pipe joint 205 through a third oxygen discharge pipe 21. The pipe joint 205 transports the gas into the length hose 208 and then into the mask body 201. The mask body 201 is fixed on the user's face through the elastic band 203, facilitating the user to breathe the gas in the mask body 201.
[0020] The fixing mechanism 209 includes a direction shaft 2091 and a steering wheel 2092. The top of the direction shaft 2091 is fixedly connected to the bottom of the steering wheel 2092. A direction seat 2093 is fixedly installed at the top of the steering wheel 2092. A hanging ring 2094 is rotatably connected inside the direction seat 2093. The user rotates the steering wheel 2092 to adjust the hanging direction of the hanging ring 2094. The user rotates the hanging ring 2094 along the direction seat 2093 to adjust the hanging angle of the hanging ring 2094. The hanging ring 2094 hangs at the fixing place, thereby fixing the oxygen inhalation mechanism 20.
[0021] The bottom of the direction shaft 2091 is rotatably connected to the length block 207. The fixing mechanism 209 is installed in the length block 207 through the direction shaft 2091.
[0022] One side of the first three-way connecting pipe 8 is fixedly communicated with an assembly pipe 7. The other end of the assembly pipe 7 is connected with a second three-way connecting pipe 6. One end of the second three-way connecting pipe 6 is connected with an air injection pipe 1. A first one-way valve 2 is fixedly installed in the middle of the air injection pipe 1. A water inlet pump 4 is arranged at the bottom end of the second three-way connecting pipe 6. The water inlet of the water inlet pump 4 is fixedly communicated with a water injection pipe 3. The water outlet of the water inlet pump 4 is fixedly communicated with a water delivery pipe 5. The end of the water delivery pipe 5 far away from the water inlet pump 4 is fixedly communicated with the end of the second three-way connecting pipe 6 opposite thereto. The bottom end of the first three-way connecting pipe 8 is fixedly communicated with the end opposite to the feed pipe 11. A reflux pipe 23 is fixedly communicated with the surface of the first three-way connecting pipe 8. A third one-way valve 22 is fixedly installed in the middle of the reflux pipe 23. A drain pump 24 is arranged at the bottom end of the water inlet pump 4. The liquid inlet of the drain pump 24 is fixedly communicated with the end of the reflux pipe 23 opposite thereto. The liquid outlet of the drain pump 24 is fixedly communicated with a drain pipe 26. An electromagnet 25 is fixedly installed in the middle of the drain pipe 26. After the water inlet pump 4 is powered on and starts, the water inlet pump 4 extracts water through the water injection pipe 3. The water is transported to the water tank body 9 through the water delivery pipe 5 to supply water to the water tank body 9. Air is transported to the water tank body 9 through the air injection pipe 1.
[0023] One end of an oxygen outlet pipe 10 is fixedly communicated with a first oxygen discharge pipe 12. The end of the first oxygen discharge pipe 12 far away from the oxygen outlet pipe 10 is fixedly communicated with a first heat dissipation coil 13. A fan 14 is in contact connection with one side of the first heat dissipation coil 13. The end of the first heat dissipation coil 13 far away from the first oxygen discharge pipe 12 is fixedly communicated with a second oxygen discharge pipe 15. The end of the second oxygen discharge pipe 15 far away from the first heat dissipation coil 13 is fixedly communicated with a third three-way connecting pipe 17. A second one-way valve 16 is fixedly installed in the middle of the second oxygen discharge pipe 15. One end of the third three-way connecting pipe 17 is fixedly communicated with a third oxygen discharge pipe 21. The end of the third oxygen discharge pipe 21 far away from the third three-way connecting pipe 17 is fixedly communicated with an oxygen inhalation mechanism 20. A pressure switch 18 is fixedly installed in the middle of the third oxygen discharge pipe 21. A check valve 19 is installed on the third oxygen discharge pipe 21 on one side of the pressure switch 18. After the fan 14 is powered on and starts, the fan 14 blows the first heat dissipation coil 13 from one side to dissipate heat and cool the oxygen in the oxygen discharge pipe. The pressure switch 18 adjusts the pressure discharged from the third oxygen discharge pipe 21. The installation of the check valve 19 prevents oxygen from flowing back along the third oxygen discharge pipe 21.
[0024] One end of a heat dissipation pipe 27 is fixedly communicated with a second heat dissipation coil 28. The end of the second heat dissipation coil 28 far away from the heat dissipation pipe 27 is fixedly communicated with a water vapor separator 33. The surface of the water vapor separator 33 is fixedly communicated with the end opposite to the third three-way connecting pipe 17. The water vapor separator 33 separates water vapor from the discharged gas.
[0025] A circulation pump 30 is provided at the bottom end of the water tank body 9. The liquid inlet of the circulation pump 30 is fixedly communicated with a extraction pipeline 31, and the liquid outlet of the circulation pump 30 is fixedly communicated with a delivery pipeline 32. One end of the extraction pipeline 31 far away from the circulation pump 30 is fixedly communicated with the side of the circulation pipeline 29 opposite to the water tank body 9. After the circulation pump 30 is powered on and starts, the circulation pump 30 extracts the liquid in the circulation pipeline 29 connected to the water tank body 9 through the extraction pipeline 31, and the extracted liquid is delivered to the filter element through the delivery pipeline 32 for purification and then flows back into the water tank body 9.
[0026] When the embodiment of the present application is in use: The water inlet pump 4 is powered on and starts. The water inlet pump 4 extracts water through the water injection pipeline 3, and the water is delivered to the water tank body 9 through the water delivery pipeline 5 to supply water to the water tank body 9. Air is delivered to the water tank body 9 through the air injection pipeline 1. The fan 14 is powered on and starts. The fan 14 blows the first heat dissipation coil 13 from one side to dissipate heat and cool down the oxygen in the oxygen discharge pipeline. The pressure switch 18 adjusts the pressure discharged from the third oxygen discharge pipeline 21. The installation of the check valve 19 prevents oxygen from flowing back along the third oxygen discharge pipeline 21. The gas is delivered to the pipe joint 205 through the third oxygen discharge pipeline 21. The pipe joint 205 delivers the gas into the length hose 208 and then to the mask body 201. The mask body 201 is fixed on the user's face through the elastic band 203, facilitating the user to breathe the gas in the mask body 201.
[0027] Although the present utility model has been described in detail with reference to the foregoing embodiments, for those skilled in the art, they can still modify the technical solutions recorded in the foregoing embodiments, or perform equivalent replacements for some of the technical features. Any modifications, equivalent replacements, improvements, etc. made within the spirit and principle of the present utility model shall be included within the protection scope of the present utility model.
Claims
1. A water-free nose choking improvement system for a hydrogen-oxygen machine, comprising a water tank body (9), characterized in that: One side of the top end of the water tank body (9) is fixedly connected to an oxygen outlet pipe (10), the other side of the top end of the water tank body (9) is fixedly connected to a feed pipe (11), one side of the bottom end of the water tank body (9) is fixedly connected to a heat dissipation pipe (27), the other side of the bottom end of the water tank body (9) is fixedly connected to a circulation pipe (29), the top end of the water tank body (9) is provided with a first three-way connecting pipe (8), one side of the water tank body (9) is provided with an oxygen absorption mechanism (20), the oxygen absorption mechanism (20) comprises a mask body (201) and two fixing blocks (202), the two ends of one side of the mask body (201) are respectively connected to the two fixing blocks ( The mask body (201) is fixedly connected to one end of the mask body (202), a length hose (208) is fixedly connected to the middle of the mask body (201), one end of the length hose (208) is fixedly connected to a pipe joint (205), a limit plate (206) is fixedly installed in the middle of the length hose (208), a length block (207) is fixedly installed on one side of the limit plate (206), a fixing mechanism (209) is rotatably installed on the top of the length block (207), an elastic band (203) is fixedly installed between the two fixing blocks (202), and two exhaust ports (204) are opened on the mask body (201) and are located on both sides of the length hose (208).
2. A water-free nasal irritation improvement system for an oxyhydrogen machine according to claim 1, characterized in that: The fixing mechanism (209) comprises a steering shaft (2091) and a steering wheel (2092); the top end of the steering shaft (2091) is fixedly connected to the bottom end of the steering wheel (2092); a steering seat (2093) is fixedly mounted on the top end of the steering wheel (2092); and a lifting ring (2094) is rotatably connected inside the steering seat (2093).
3. A water-free nasal irritation improvement system for an oxyhydrogen machine according to claim 2, characterized in that: The bottom end of the direction shaft (2091) is rotatably connected to the length block (207).
4. The water-free nasal irritation improvement system for an oxyhydrogen machine according to claim 1, characterized in that: One side of the first three-way connecting pipe (8) is fixedly connected to an assembly pipe (7), the other end of the assembly pipe (7) is connected to a second three-way connecting pipe (6), one end of the second three-way connecting pipe (6) is connected to an air injection pipe (1), a first non-return valve (2) is fixedly installed in the middle of the air injection pipe (1), a water inlet pump (4) is provided at the bottom end of the second three-way connecting pipe (6), the water inlet of the water inlet pump (4) is fixedly connected to a water injection pipe (3), the water outlet of the water inlet pump (4) is fixedly connected to a water delivery pipe (5), and one end of the water delivery pipe (5) away from the water inlet pump (4) is connected to the second three-way connecting pipe (1). The end opposite to the connecting pipe (6) is fixedly connected, the bottom end of the first three-way connecting pipe (8) is fixedly connected to the end opposite to the feed pipe (11), the surface of the first three-way connecting pipe (8) is fixedly connected to a return pipe (23), and a third one-way valve (22) is fixedly installed in the middle of the return pipe (23), the bottom end of the water inlet pump (4) is provided with a drainage pump (24), the liquid inlet of the drainage pump (24) is fixedly connected to the end opposite to the return pipe (23), the liquid outlet of the drainage pump (24) is fixedly connected to a drainage pipe (26), and an electromagnetic (25) is fixedly installed in the middle of the drainage pipe (26).
5. The water-free nasal irritation improvement system for hydrogen-oxygen machine according to claim 1, characterized in that: One end of the oxygen outlet pipe (10) is fixedly connected to a first oxygen exhaust pipe (12); one end of the first oxygen exhaust pipe (12) away from the oxygen outlet pipe (10) is fixedly connected to a first heat dissipation coil (13); one side of the first heat dissipation coil (13) is in contact with a fan (14); one end of the first heat dissipation coil (13) away from the first oxygen exhaust pipe (12) is fixedly connected to a second oxygen exhaust pipe (15); and one end of the second oxygen exhaust pipe (15) away from the first heat dissipation coil (13) is fixedly connected to a third three-way connection. A second one-way valve (16) is fixedly installed in the middle of the second oxygen discharge pipeline (15), one end of the third three-way connecting pipeline (17) is fixedly connected to a third oxygen discharge pipeline (21), one end of the third oxygen discharge pipeline (21) away from the third three-way connecting pipeline (17) is fixedly connected to an oxygen inhalation mechanism (20), a pressure switch (18) is fixedly installed in the middle of the third oxygen discharge pipeline (21), and a check valve (19) is installed on the third oxygen discharge pipeline (21) and is located on one side of the pressure switch (18).
6. A water-free nasal irritation improvement system for an oxyhydrogen machine according to claim 5, characterized in that: One end of the heat dissipation pipe (27) is fixedly connected to a second heat dissipation coil (28), and one end of the second heat dissipation coil (28) away from the heat dissipation pipe (27) is fixedly connected to a water vapor separator (33), and a surface of the water vapor separator (33) is fixedly connected to an end directly opposite to the third three-way connection pipe (17).
7. The water-free nasal irritation improvement system for an oxyhydrogen machine according to claim 1, characterized in that: A circulating pump (30) is provided at the bottom end of the water tank body (9); a liquid inlet of the circulating pump (30) is fixedly connected to an extraction pipe (31); a liquid outlet of the circulating pump (30) is fixedly connected to a delivery pipe (32); and an end of the extraction pipe (31) away from the circulating pump (30) is fixedly connected to a side directly opposite to the circulating pipe (29).