A double console system for an oxygen cabin

The oxygen chamber design with a dual-control console system, integrated environmental parameter sensors and a mixing chamber, solves the problems of reduced oxygen purity and monitoring deviation caused by suspended particulate matter impurities, achieving uniform oxygen distribution and parameter stability, and improving the effectiveness of the oxygen chamber.

CN120131343BActive Publication Date: 2025-11-04YANTAI LANGE HYPERBARIC OXYGEN CHAMBER CO LTD
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Patent Information

Application Number
CN202510334087.4
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2025-03-20
Publication Date
2025-11-04
Estimated Expiration
2045-03-20

AI Technical Summary

Technical Problem

In existing oxygen chambers, suspended particulate matter impurities carried by personnel's clothing and body surface during entry and exit are deposited inside the chamber, causing secondary resuspension, reducing oxygen purity, and causing measurement deviations in the oxygen concentration monitoring system.

Method used

An oxygen chamber with a dual-control console system was designed. It adopts an integrated environmental parameter sensor and a mixing chamber. Through components such as a rotating rod, a guide plate, and an adsorption element, it can collect and clean airflow impurities, ensuring uniform oxygen distribution and stable parameters.

Benefits of technology

It significantly improves oxygen cleanliness in the oxygen chamber, reduces equipment failures, extends service life, improves treatment efficiency and comfort, and reduces maintenance costs.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application provides an oxygen cabin of a double-control console system, and relates to the technical field of medical equipment.The oxygen cabin comprises an oxygen cabin body, integrated environment parameter sensors and oxygen content sensors are installed on both sides of the inside of the oxygen cabin body, a load-bearing pedal is installed on the inner bottom of the oxygen cabin body, multiple filter grooves are arranged on the top of the load-bearing pedal, the bottom of the load-bearing pedal and the space above the bottom end of the inner side of the oxygen cabin body are collection grooves, extruded pieces are installed on the bottom of both ends of the inner side of the oxygen cabin body, and rotating rods are rotatably installed on both sides of the inside of the oxygen cabin body.Through the slotted side of the collection pipe, the airflow in the oxygen cabin body can be absorbed, and the impurities carried in the airflow can be introduced into the collection box through the collection pipe to be collected, so that the secondary suspension of the impurities in the oxygen cabin is effectively reduced, the cleanliness of the oxygen in the oxygen cabin is significantly improved, and the problem that the vortex is formed by the work air pressure and the convection air supply system, so that the secondary suspension of the deposited particulate impurities is caused.
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Description

TECHNICAL FIELD

[0001] The present application relates to the technical field of medical equipment, and particularly relates to an oxygen cabin with a double console system. BACKGROUND

[0002] The oxygen cabin is a manned pressure vessel, which uses air, oxygen or mixed gas as a pressure medium, and is used for personnel to perform treatment or adaptive training in the cabin. The oxygen content, temperature, pressure and other parameters of the oxygen cabin can be adjusted through the double console system to adapt to the needs of different personnel.

[0003] In the prior art, when the oxygen cabin is in use, suspended particulate impurities carried by clothes and body surfaces of personnel entering and exiting the cabin will deposit in the cabin environment. When oxygen is injected for oxygen therapy, the working air pressure forms a vortex with the convection air supply system, causing the deposited particulate impurities to produce secondary suspension. The suspended impurities not only reduce the purity of medical oxygen, but also cause measurement deviation of the oxygen concentration monitoring system. SUMMARY

[0004] Embodiments of the present application relate to an oxygen cabin with a double console system to solve the problem that suspended particulate impurities carried by clothes and body surfaces of personnel entering and exiting the cabin will deposit in the cabin environment. When oxygen is injected for oxygen therapy, the working air pressure forms a vortex with the convection air supply system, causing the deposited particulate impurities to produce secondary suspension. The suspended impurities not only reduce the purity of medical oxygen, but also cause measurement deviation of the oxygen concentration monitoring system.

[0005] In a first aspect, the present application provides an oxygen cabin with a double console system, which specifically comprises: an oxygen cabin body, the top of the oxygen cabin body is in an arc-shaped structure, a sealed cabin door is installed at the front end of the oxygen cabin body, control panels are uniformly installed on both sides of the front end of the oxygen cabin body, and a fixed base is installed at the bottom of the oxygen cabin body; integrated environmental parameter sensors and oxygen content sensors are installed on both sides of the inside of the oxygen cabin body; a load-bearing pedal is installed at the inside bottom of the oxygen cabin body; a plurality of filter grooves are arranged on the top of the load-bearing pedal, and the space above the bottom of the load-bearing pedal and the inside bottom of the oxygen cabin body is a collection groove; extrusion pieces are installed at the bottom of both ends of the inside of the oxygen cabin body, wherein the side surface of the extrusion piece is in an arc-shaped structure; rotating rods are rotatably installed on both sides of the inside of the oxygen cabin body, a servo motor is installed at the rear end of the oxygen cabin body, and the output end of the servo motor is connected with the rear ends of the two rotating rods through a chain set.

[0006] Further, an environmental parameter adjusting assembly is installed on one side of the oxygen cabin body; a mixing box is installed on the other side of the oxygen cabin body; a driving cylinder is installed on the top of the mixing box, and a plurality of turbulence plates distributed in an up-down staggered manner are installed in the mixing box; an oxygen pump is installed on the other side of the oxygen cabin body.

[0007] Further, the output end of the oxygen pump is provided with an oxygen inlet pipe, wherein the side end of the oxygen inlet pipe is installed in the interior of the mixing box, and the side end of the oxygen inlet pipe is provided with a slot; the side end of the mixing box is further provided with an air inlet pipe; the slot is formed in the side end of the air inlet pipe inserted in the interior of the mixing box, and the outer end of the air inlet pipe is provided with an air pump, and the output end of the air pump is provided with a circulation pipe.

[0008] Further, the circulation pipe is installed outside the oxygen cabin body, the outer side of the circulation pipe is provided with a guide pipe, and the guide pipe is inserted in the inner side wall of the oxygen cabin body; the output end of the driving cylinder at the top of the mixing box penetrates the top of the mixing box and is provided with a limiting plate.

[0009] Further, the side surface of the limiting plate is provided with a slot, the limiting plate is slidingly installed in the slot at the side end of the oxygen inlet pipe and the air inlet pipe; the other side end of the mixing box is provided with an air outlet pipe; the side end of the air outlet pipe is connected with a collecting pipe; the side surface of the collecting pipe is connected with a plurality of evenly distributed branch pipes; the side surface of the branch pipe is provided with a nozzle, and the nozzle is installed at the top of the inner side wall of the oxygen cabin body.

[0010] Further, the top rear end of the fixed base is provided with a collecting box; the side surface of the collecting box is provided with a driving pump, the output end of the driving pump is provided with a collecting pipe; the side surface of the collecting pipe is connected with a plurality of evenly distributed collecting pipes.

[0011] Further, the side surface of the collecting pipe is provided with a slot, and the collecting pipe penetrates the side surface of the oxygen cabin body and is installed at the bottom of the collecting groove; the inner sides of the collecting groove are provided with guide rods, the rear end of the oxygen cabin body is provided with a driving motor, and the output end of the driving motor is provided with a driving rod.

[0012] Further, the driving rod is located in the interior of the collecting groove, and the driving rod is provided with a movable plate; the two ends of the movable plate are further slidingly installed outside the guide rods, and the two sides of the movable plate are both provided with a purple light sterilization lamp.

[0013] Further, the top of the movable plate is provided with an air pump, the output end of the air pump is provided with an air flow suction pipe, wherein the top of the air flow suction pipe is provided with a guide groove; the output end of the air pump at the top of the movable plate is provided with an air flow injection pipe; the air flow injection pipe is installed at the bottom of the movable plate, and the bottom of the air flow injection pipe is provided with a slot.

[0014] Further, the outer side of the rotating rod is provided with a collecting water tank; the top of the two collecting water tanks is provided with a guide plate; the guide plate is of an arc structure, and the inner side of the guide plate is provided with a suction accessory; the suction accessory is of a sponge material, the suction accessory is slidingly installed at the inner top of the oxygen cabin body, and the suction accessory is further movably installed at the side surface of the extruding piece.

[0015] The application provides an oxygen cabin of a double-control console system, which has the following beneficial effects:

[0016] In use, the slotted side of the collecting pipe can absorb the airflow in the oxygen cabin body, and the impurities carried in the airflow are guided into the collecting box through the collecting pipe for centralized collection, thereby effectively reducing the secondary suspension of impurities in the oxygen cabin, significantly improving the cleanliness of oxygen in the oxygen cabin, reducing equipment failure or performance decline caused by impurity accumulation by effectively removing impurities and reducing impurity adhesion, thereby prolonging the service life of the equipment, reducing maintenance costs, and providing a more pure and healthy oxygen environment for the user.

[0017] In addition, the two control panels are used to accurately control the oxygen content, temperature, pressure and other parameters in the oxygen cabin, the integrated environmental parameter sensor detects the environmental state in real time, and the environmental parameter adjusting assembly is automatically adjusted to a constant condition, and the other control panel controls the oxygen pump and the air pump to work, so that the oxygen is input as needed, the oxygen and the airflow in the cabin are fully mixed in the mixing box through the spoiler, the uneven problem caused by direct injection of oxygen is avoided, the drunken oxygen phenomenon is effectively prevented, the mixed oxygen is uniformly distributed to each place in the cabin, the temperature and other parameter deviations caused by oxygen injection are reduced, and the treatment efficiency and comfort of the personnel in the oxygen cabin are improved. BRIEF DESCRIPTION OF DRAWINGS

[0018] In order to more clearly illustrate the technical solutions of the embodiments of the application, the drawings of the embodiments will be briefly introduced below.

[0019] The drawings in the following description only relate to some embodiments of the application, and are not a limitation of the application.

[0020] In the drawings:

[0021] Figure 1 A schematic view showing the overall structure of the present application is shown;

[0022] Figure 2 A schematic view showing the three-dimensional structure of the environmental parameter adjusting assembly of the present application is shown;

[0023] Figure 3 A schematic view showing the cross-sectional structure of the oxygen cabin body of the present application is shown;

[0024] Figure 4 A schematic view showing the cross-sectional structure of the mixing box of the present application is shown;

[0025] Figure 5 A schematic view showing the cross-sectional structure of the bearing pedal of the present application is shown;

[0026] Figure 6 A schematic view showing the enlarged structure of part A of the present application is shown; Figure 5 ​

[0027] Figure 7 The application shows the schematic diagram of the movable plate three-dimensional structure;

[0028] Figure 8 The application shows the schematic diagram of the extrusion piece three-dimensional structure;

[0029] Figure 9 The application shows the schematic diagram of the deflector three-dimensional structure.

[0030] List of reference signs

[0031] 1, oxygen cabin body; 101, fixed base; 102, integrated environmental parameter sensor; 103, oxygen content sensor; 104, environmental parameter adjusting assembly; 105, mixing box; 106, spoiler; 107, oxygen pump; 108, oxygen inlet pipe; 109, air inlet pipe; 1010, circulating pipe; 1011, limiting plate; 1012, outlet pipe; 1013, collecting pipe; 1014, shunt pipe;

[0032] 2, bearing pedal; 201, collecting groove; 202, collecting box; 203, collecting pipe; 204, collecting pipe; 205, guide rod; 206, drive rod; 207, movable plate; 208, air suction pipe; 209, air injection pipe;

[0033] 3, extrusion piece; 301, rotating rod; 302, collecting water tank; 303, deflector; 304, suction accessory. DETAILED DESCRIPTION

[0034] In order to make the purpose, technical scheme and advantages of the embodiments of the present application clearer, the technical scheme of the embodiments of the present application will be described clearly and completely below with reference to the drawings of the embodiments of the present application. Obviously, the described embodiments are part of the embodiments of the present application, rather than all the embodiments. Based on the described embodiments of the present application, all other embodiments obtained by those skilled in the art without creative labor fall within the scope of protection of the present application.

[0035] Please refer to Figures 1 to 9 :

[0036] Embodiment one: the application provides an oxygen cabin of a double console system, comprising: an oxygen cabin body 1, the top of the oxygen cabin body 1 is arc-shaped structure, and the front end of the oxygen cabin body 1 is installed with a sealed cabin door, and the front end of the oxygen cabin body 1 is installed with a control panel on both sides, and the bottom of the oxygen cabin body 1 is installed with a fixed base 101; the inside of the oxygen cabin body 1 is installed with an integrated environmental parameter sensor 102 and an oxygen content sensor 103 on both sides; the side of the oxygen cabin body 1 is installed with an environmental parameter adjusting assembly 104; the other side of the oxygen cabin body 1 is installed with a mixing box 105; the top of the mixing box 105 is installed with a driving cylinder, and the inside of the mixing box 105 is installed with multiple upper and lower staggered distribution spoilers 106; the other side of the oxygen cabin body 1 is installed with an oxygen pump 107; the output end of the oxygen pump 107 is installed with an oxygen inlet pipe 108, wherein the side end of the oxygen inlet pipe 108 is installed in the inside of the mixing box 105, and the side end of the oxygen inlet pipe 108 is provided with a slot; the side end of the mixing box 105 is also installed with an air inlet pipe 109; the slot is opened on the side end inserted in the inside of the mixing box 105, and the outer end of the air inlet pipe 109 is installed with an air pump, and the output end of the air pump is installed with a circulating pipe 1010; the circulating pipe 1010 is installed on the outside of the oxygen cabin body 1, and the outside of the circulating pipe 1010 is provided with a guide pipe inserted in the inside wall of the oxygen cabin body 1; the output end of the driving cylinder on the top of the mixing box 105 penetrates the top of the mixing box 105 and is installed with a limit plate 1011; the side of the limit plate 1011 is provided with a slot, and the limit plate 1011 is slidingly installed in the slot on the side end of the oxygen inlet pipe 108 and the air inlet pipe 109; the other side end of the mixing box 105 is installed with an air outlet pipe 1012; the side end of the air outlet pipe 1012 is connected with a concentrating pipe 1013; the side of the concentrating pipe 1013 is connected with multiple evenly distributed shunt pipes 1014; the side of the shunt pipe 1014 is provided with a nozzle, and the nozzle is installed on the top of the inside wall of the oxygen cabin body 1.

[0037] In the embodiments of the present disclosure, when the oxygen cabin is in use, the oxygen content and the temperature, pressure and other parameters of the oxygen injected into the oxygen cabin body 1 are controlled and adjusted through two control panels on the front side of the oxygen cabin body 1. The integrated environmental parameter sensor 102 is integrated with temperature, pressure, humidity and other sensors. According to the detection result of the integrated environmental parameter sensor 102, one control panel can drive the environmental parameter adjusting assembly 104 to work. The environmental parameter adjusting assembly 104 adjusts the temperature, pressure and other parameters in the oxygen cabin body 1, so that the personnel in the oxygen cabin body 1 are in a constant environment. The other control panel can drive the oxygen pump 107, the driving cylinder at the top of the mixing box 105 and the air pump at the outer end of the air inlet pipe 109 to work, control the input of the oxygen content, detect the oxygen content in the oxygen cabin body 1 through the oxygen content sensor 103, then the pure oxygen generated by the oxygen pump 107 enters the inside of the mixing box 105 through the oxygen inlet pipe 108, at the same time, the airflow in the oxygen cabin body 1 is absorbed through the air inlet pipe 109 by the duct on the side of the circulating pipe 1010 and enters the inside of the mixing box 105, the driving pump drives the limiting plate 1011 to move in the slot at the side end of the oxygen inlet pipe 108 and the air inlet pipe 109, so that the two gases flow into the inside of the mixing box 105 at a suitable flow rate, the spoiler 106 mixes the two gases flowing in, so that the oxygen is mixed with the airflow in the oxygen cabin body 1, ensures that the temperature and humidity of the injected oxygen will not have too much difference, and prevents the problem that the direct injection of oxygen causes uneven mixing and causes some personnel to appear drunk oxygen, so that the mixed oxygen enters the collecting pipe 1013 through the air outlet pipe 1012 and is then distributed to each distribution pipe 1014, and is uniformly injected into the inside of the oxygen cabin body 1, so that the oxygen is uniformly distributed and will not have a large difference value, ensures that the oxygen content inhaled by the personnel at different positions is the same, at the same time, reduces the problem of parameter deviation such as temperature caused by oxygen, and improves the treatment efficiency of the personnel in the oxygen cabin.

[0038] The bottom of the oxygen cabin body 1 is provided with a bearing pedal 2, the top of the bearing pedal 2 is provided with a plurality of filter grooves, the bottom of the bearing pedal 2 and the space above the bottom end of the inner side of the oxygen cabin body 1 are a collection groove 201, the top of the fixed base 101 is provided with a collection box 202, the side of the collection box 202 is provided with a drive pump, the output end of the drive pump is provided with a collection pipe 203, the side of the collection pipe 203 is connected with a plurality of collection pipes 204 which are uniformly distributed, the side of the collection pipe 204 is provided with a groove, the collection pipe 204 penetrates through the side of the oxygen cabin body 1 and is installed at the bottom of the collection groove 201, the two sides of the inside of the collection groove 201 are provided with guide rods 205, the bottom of the rear end of the oxygen cabin body 1 is provided with a drive motor, the output end of the drive motor is provided with a drive rod 206, the drive rod 206 is in the inside of the collection groove 201, the drive rod 206 is provided with a movable plate 207, the two ends of the movable plate 207 are slidably installed on the outside of the guide rod 205, the two sides of the movable plate 207 are provided with a purple light sterilization lamp, the top of the movable plate 207 is provided with an air pump, the output end of the air pump is provided with an air suction pipe 208, the top of the air suction pipe 208 is provided with a guide groove, the output end of the air pump on the top of the movable plate 207 is provided with an air jet pipe 209, the air jet pipe 209 is installed at the bottom of the movable plate 207, the bottom of the air jet pipe 209 is provided with a groove, when the oxygen cabin is used, the particulate impurities carried by the personnel are deposited and fall into the inside of the collection groove 201 below through the filter grooves on the bearing pedal 2, the drive pump on the collection box 202 at the top of the rear end of the fixed base 101 works, the air flow in the inside of the oxygen cabin body 1 is absorbed through the groove on the side of the collection pipe 204, at the same time, the impurities are collected into the collection box 202 through the collection pipe 203, because the mass of carbon dioxide and part of the gas components is greater than the mass of oxygen, the content of other gases in the inside of the oxygen cabin body 1 is large, the excess gas is collected through the collection pipe 204 in the inside of the oxygen cabin body 1 and is discharged, at the same time, the impurities are cleaned out, the problem of secondary suspension of the impurities is reduced, the cleanliness of the oxygen in the oxygen cabin is improved, the problem of the impurities adhering to the integrated environmental parameter sensor 102 is reduced, the drive motor at the rear end of the oxygen cabin body 1 drives the drive rod 206 to rotate, the drive rod 206 drives the movable plate 207 to move along the guide rod 205, the purple light sterilization lamp on the movable plate 207 performs sterilization treatment, the air pump on the top of the movable plate 207 works, the air flow above is absorbed through the air suction pipe 208, the air flow flows out through the groove at the bottom of the air jet pipe 209 after the action of the air pump, the problem of the accumulation of the impurities is reduced, after cooperation with the collection pipe 204, the cleaning effect of the impurities is greatly improved, the workload of cleaning in the later period is reduced.

[0039] The embodiment three is based on the embodiment one, the both ends of the inside of the oxygen cabin body 1 are equipped with the extrusion piece 3, wherein the side of the extrusion piece 3 is the arc structure; the both sides of the inside of the oxygen cabin body 1 are rotatably equipped with the rotating rod 301, the rear end of the oxygen cabin body 1 is equipped with the servo motor, the output end of the servo motor is connected with the rear end of the two rotating rods 301 through the chain group; the outside of the rotating rod 301 is equipped with the collecting water tank 302; the top of the two collecting water tanks 302 is equipped with the flow guide plate 303; the flow guide plate 303 is the arc structure, and the inside of the flow guide plate 303 is equipped with the suction accessory 304; the suction accessory 304 is the sponge material, and the suction accessory 304 is slidably equipped in the inside of the top of the oxygen cabin body 1, and the suction accessory 304 is also movably equipped in the side of the extrusion piece 3, when the oxygen cabin is used, with the long time use of the oxygen cabin, the water vapor produced by the personnel breathing and the water evaporation in the part of the oxygen carrying gather in the inside of the bottom of the oxygen cabin body 1, then the servo motor of the rear end of the oxygen cabin body 1 drives the two rotating rods 301 to rotate at the same time through the chain group, the rotating rod 301 drives the collecting water tank 302 and the flow guide plate 303 above to move on the inside wall of the oxygen cabin body 1, the suction accessory 304 in the inside of the flow guide plate 303 wipes and cleans the water gathered on the inside wall of the oxygen cabin body 1, reduces the problem that the water droplets gather too much to gather on the part of the detection sensor to cause the detection data to exist the larger error, when the flow guide plate 303 drives the suction accessory 304 to move to the one end of the inside of the oxygen cabin body 1, the suction accessory 304 is extruded in the side of the extrusion piece 3, so that the water droplets wiped on the suction accessory 304 are extruded to the inside of the collecting water tank 302, which is convenient for the collected water to be concentrated and treated.

[0040] The working principle of the embodiment is as follows: the integrated environmental parameter sensor 102 detects the temperature, pressure, humidity and other parameters in the oxygen cabin body 1; one control panel drives the environmental parameter adjusting assembly 104 to adjust the temperature, pressure and other parameters; the other control panel can drive the oxygen pump 107 and the driving cylinder and the air pump to control the input of oxygen; the oxygen content in the oxygen cabin body 1 is detected by the oxygen content sensor 103; the pure oxygen generated by the oxygen pump 107 enters the mixing box 105 through the oxygen inlet pipe 108; the airflow in the oxygen cabin body 1 is sucked through the air inlet pipe 109 on the side of the circulating pipe 1010 and enters the mixing box 105; the driving pump drives the limiting plate 1011 to move in the slot on the side end of the oxygen inlet pipe 108 and the air inlet pipe 109; the two gases flow into the mixing box 105 at a suitable flow rate; the spoiler 106 mixes the two gases and then enters the central pipe 1013 through the air outlet pipe 1012 and is then distributed to the branch pipes 1014 to be uniformly injected into the oxygen cabin body 1, so that the temperature and humidity of the injected oxygen are constant; the particulate impurities carried by the personnel are deposited in the collection groove 201 below the filter groove on the bearing pedal 2; the driving pump on the collection box 202 works to suck the airflow through the slot on the side of the collection pipe 204, and the airflow carrying the impurities enters the collection box 202 through the collection pipe 203; the excess gas is discharged from the inside of the oxygen cabin body 1, and the impurities are cleaned out, thereby reducing the problem of secondary suspension of impurities; as the oxygen cabin is used for a long time, the servo motor at the rear end of the oxygen cabin body 1 drives the two rotating rods 301 through the chain set to move the collection water tank 302 and the flow guide plate 303 above, the suction member 304 on the inner side of the flow guide plate 303 wipes and cleans the water accumulated on the inner wall of the oxygen cabin body 1, thereby reducing the problem that too much water droplets accumulated on part of the detection sensor cause a large error in the detection data.

[0041] In this paper, the following points need to be noted:

[0042] 1. The drawings of the embodiments of the present disclosure only relate to the structures involved in the embodiments of the present disclosure, and other structures can refer to the general design.

[0043] 2. In the case of no conflict, the embodiments of the present disclosure and the features in the embodiments can be combined to obtain new embodiments.

[0044] The above is only a specific implementation of the present disclosure, but the protection scope of the present disclosure is not limited thereto, and any person skilled in the art can easily think of changes or replacements within the technical range disclosed by the present disclosure, which should be covered within the protection scope of the present disclosure. Therefore, the protection scope of the present disclosure should be subject to the protection scope of the claims.

Claims

1. An oxygen chamber with a dual-control console system, comprising: An oxygen chamber (1) is provided with a sealed door at its front end, control panels are evenly installed on both sides of the front end of the oxygen chamber (1), and a fixed base (101) is installed at the bottom of the oxygen chamber (1). The oxygen chamber (1) is characterized by having integrated environmental parameter sensors (102) and oxygen content sensors (103) installed on both sides of its interior. An environmental parameter adjustment assembly (104) is installed on one side of the oxygen chamber (1). A mixing chamber (105) is installed on the other side of the oxygen chamber (1). A drive cylinder is installed on the top of the mixing chamber (105), and multiple staggered baffles (106) are installed inside the mixing chamber (105). An oxygen pump (107) is installed on the other side of the oxygen chamber (1). The oxygen chamber (1) has a support pedal (2) installed on its inner bottom; the top of the support pedal (2) is provided with multiple filter slots, and the space above the bottom of the support pedal (2) and the inner bottom of the oxygen chamber (1) is a collection slot (201); the bottom of both ends of the oxygen chamber (1) is equipped with extrusion parts (3); rotating rods (301) are rotatably installed on both sides of the interior of the oxygen chamber (1), and a servo motor is installed at the rear end of the oxygen chamber (1). The output end of the servo motor is connected to the rear end of the two rotating rods (301) through a chain assembly; a collection device is installed at the top rear end of the fixed base (101). The collection box (202) is equipped with a drive pump on its side and a collection pipe (203) is installed on the output end of the drive pump. The side of the collection pipe (203) is connected to a number of evenly distributed collection pipes (204). The side of the collection pipe (204) is provided with a slot and the collection pipe (204) penetrates the side of the oxygen chamber (1) and is installed at the bottom of the collection trough (201). The inside of the collection trough (201) is equipped with guide rods (205) on both sides. The rear end of the oxygen chamber (1) is equipped with a drive motor and a drive rod (206) is installed on the output end of the drive motor.

2. The oxygen chamber of a dual-control console system according to claim 1, characterized in that, The output end of the oxygen pump (107) is equipped with an oxygen inlet pipe (108), wherein the side end of the oxygen inlet pipe (108) is installed inside the mixing box (105), and the side end of the oxygen inlet pipe (108) is provided with a slot; the side end of the mixing box (105) is also equipped with an air inlet pipe (109); the side end of the air inlet pipe (109) inserted inside the mixing box (105) is provided with a slot, and an air pump is installed at the outer end of the air inlet pipe (109), and a circulation pipe (1010) is installed at the output end of the air pump.

3. The oxygen chamber of a dual-control console system according to claim 2, characterized in that, The circulation pipe (1010) is installed on the outside of the oxygen chamber (1), and a conduit is provided on the outside of the circulation pipe (1010). The conduit is inserted into the inner wall of the oxygen chamber (1). The output end of the top drive cylinder of the mixing box (105) passes through the top of the mixing box (105) and is equipped with a limit plate (1011).

4. The oxygen chamber of a dual-control console system according to claim 3, characterized in that, The limiting plate (1011) has a slot on its side, and the limiting plate (1011) is slidably installed in the slot at the side end of the oxygen inlet pipe (108) and the air inlet pipe (109); the other side end of the mixing box (105) is equipped with an outlet pipe (1012); the side end of the outlet pipe (1012) is connected to a central pipe (1013); the side of the central pipe (1013) is connected to a plurality of evenly distributed diversion pipes (1014); the side of the diversion pipe (1014) is equipped with a nozzle, and the nozzle is installed on the top of the inner wall of the oxygen chamber (1).

5. The oxygen chamber of a dual-control console system according to claim 4, characterized in that, The drive rod (206) is located inside the collection trough (201), and a movable plate (207) is installed on the drive rod (206); both ends of the movable plate (207) are also slidably installed on the outside of the guide rod (205), and ultraviolet germicidal lamps are installed on both sides of the movable plate (207).

6. The oxygen chamber of a dual-control console system according to claim 5, characterized in that, An air pump is installed on the top of the movable plate (207), and an airflow suction pipe (208) is installed on the output end of the air pump. The top of the airflow suction pipe (208) is provided with a guide groove. An airflow jet pipe (209) is installed on the output end of the air pump on the top of the movable plate (207). The airflow jet pipe (209) is installed on the bottom of the movable plate (207), and the bottom of the airflow jet pipe (209) is provided with a groove.

7. The oxygen chamber of a dual-control console system according to claim 6, characterized in that, A water collection tank (302) is installed on the outside of the rotating rod (301); a guide plate (303) is installed on the top of the two water collection tanks (302); an adsorption component (304) is installed on the inside of the guide plate (303); the adsorption component (304) is slidably installed on the top inside of the oxygen chamber (1), and the adsorption component (304) is also movably installed on the side of the extrusion component (3).

Citation Information

Patent Citations

  • Movable emergency oxygen therapy rehabilitation cabin

    CN113425535A

  • Micro-pressure oxygen cabin

    CN211023692U