Oxygen Room

The oxygen room addresses water generation issues by incorporating a water storage and drainage system, and noise reduction, ensuring user safety and comfort.

JP7742128B2Active Publication Date: 2025-09-19WORLD NET INT CO LTD
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Patent Information

Application Number
JP2021169464
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2021-10-15
Publication Date
2025-09-19
Estimated Expiration
2041-10-15

AI Technical Summary

Technical Problem

Oxygen rooms generate water due to pressure differences, leading to rust and mold, which can harm user health.

Method used

An oxygen room with a water storage device connected to the air pressure control system to collect and drain water, and a silencer to reduce noise from the compressor.

Benefits of technology

Prevents rust and mold, protecting user health and reducing noise levels.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

To provide an oxygen room capable of preventing an accommodation part from rusting and deteriorating and preventing the user's health from being impaired.SOLUTION: An oxygen room 1 comprises a box body 100 including an accommodation part 100a in which a user is accommodated, and a compressor 200 for controlling an atmospheric pressure of the accommodation part 100a. Further, the oxygen room comprises a water storage device 300 for storing water W generated by controlling the atmospheric pressure of the accommodation part 100a by the compressor 200. The oxygen room can thus prevent the accommodation part 100a from rusting and prevent health of a user of the oxygen room 1 from being impaired.SELECTED DRAWING: Figure 2
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Description

[Technical Field]

[0001] The present invention relates to an oxygen room. [Background technology]

[0002] Conventionally, oxygen rooms are known that perform control to pressurize the air to a pressure higher than standard atmospheric pressure (specifically, 1.0 atmospheric pressure) and control to depressurize the air to a pressure lower than standard atmospheric pressure (for example, Patent Document 1). Such oxygen rooms are expected to have health and beauty benefits for the user by pressurizing the air pressure inside the storage section in which the user is accommodated to a pressure higher than standard atmospheric pressure. On the other hand, by depressurizing the air pressure inside the storage section to a pressure lower than standard atmospheric pressure, the room can be used as a training room for high-altitude training. [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2003-210637 Summary of the Invention [Problem to be solved by the invention]

[0004] Here, the higher the air pressure inside the storage unit of such an oxygen room, the more health and beauty benefits can be expected for the user.Similarly, the lower the air pressure inside the storage unit, the more effective the training can be.

[0005] However, in such oxygen rooms, the greater the difference in pressure between the air pressure outside the storage unit (standard air pressure) and the air pressure inside the storage unit, the more water will be generated in the storage unit. Water generated in the storage unit may cause the storage unit to rust and deteriorate. It may also cause mold to grow in the storage unit, potentially harming the user's health.

[0006] In view of the above problems, the present invention aims to provide an oxygen room that can prevent the storage section from rusting and deteriorating, and can prevent the user's health from being damaged. [Means for solving the problem]

[0007] In order to solve such problems, the oxygen room according to the present invention includes a box body having a storage section in which a user is stored, an air pressure control device that controls the air pressure in the storage section, and Installed in the housing, a water storage device that stores water generated by controlling the air pressure of the storage section by the air pressure control device; a hose connecting the air pressure control device and the water storage device; Equipped with The air pressure control device has an attachment part to which one end of the hose is attached, and the box body has an insertion hole into which the other end of the hose attached to the attachment part is inserted, and the hose attached to the attachment part is inserted into the insertion hole and connected to the water storage device installed in the storage part. It is characterized by:

[0008] In addition, in the oxygen room of the present invention, the water storage device is characterized by having a water storage section that stores water accumulated in the hose, and a drainage section that drains the water stored in the water storage section.

[0010] The oxygen room according to the present invention is characterized by including a silencer that suppresses noise generated when the air pressure control device is driven. [Effects of the Invention]

[0011] According to the present invention, it is possible to provide an oxygen room that can prevent the storage section from rusting and deteriorating, and can prevent the health of the user from being damaged. [Brief explanation of the drawings]

[0012] [Figure 1] FIG. 2 is a front view of the appearance of the oxygen room. [Figure 2] FIG. [Figure 3] FIG. [Figure 4] FIG. 10 is a diagram showing a method for installing an oxygen room. [Figure 5] 10A and 10B are diagrams illustrating how to use the oxygen room. [Figure 6] 1 is a graph showing noise levels. [Figure 7] FIG. 10 is a view showing a storage section in a second embodiment. [Figure 8] FIG. 10 is an exploded view of the silencer according to the second embodiment. [Figure 9] FIG. 10 is a diagram showing a method for installing an oxygen room in the second embodiment. [Figure 10] 10A and 10B are diagrams illustrating how to use the oxygen room in the second embodiment. DETAILED DESCRIPTION OF THE INVENTION

[0013] Hereinafter, an embodiment of the present invention will be described in detail with reference to the drawings.

[0014] (First embodiment) A first embodiment of the present invention will be described with reference to FIGS.

[0015] (Perspective view of the exterior of oxygen room 1) First, the configuration of an oxygen room 1 according to the present invention will be described with reference to FIG.

[0016] (Oxygen Room 1) As shown in FIG. 1, the oxygen room 1 includes a box body 100 and a compressor 200.

[0017] (Box 100) The box 100 is made of a metal such as steel, and has a storage section 100a in which a user of the oxygen room 1 is accommodated. The box 100 also has a door section 110 for opening and closing the entrance to the storage section 100a, and an insertion hole 120 into which the hose H is inserted.

[0018] (Compressor 200) The compressor 200 has an exhaust pump (not shown) and is able to control the air pressure in the storage section 100a to a pressure (e.g., 1.9 atmospheres) higher than standard air pressure (1.0 atmospheres) by supplying gas (e.g., air) to the storage section 100a.

[0019] Here, compressor 200 comprises a body 210, a power button 220 that is operated when powering on compressor 200, two handles 230 that are gripped when transporting compressor 200, a pressure display unit 240 that displays the pressure of the gas supplied to storage unit 100a, an operating unit 250 for adjusting the gas supplied to storage unit 100a, an insertion unit 260 through which one end of hose H is inserted, and a power plug 270 for supplying power to compressor 200.

[0020] (Storage section 100a) Next, the housing section 100a will be described with reference to FIG.

[0021] A mat 140 is laid on the floor 130 of the storage section 100a, and a spacer 150 is provided between the floor 130 and the mat 140 to ensure a space for arranging the hose H.

[0022] Furthermore, in the accommodation section 100a, a water storage device 300 is installed that stores water generated by driving the compressor 200. Here, the water storage device 300 is connected to the compressor 200 via a hose H.

[0023] (Water storage device 300) Next, the water storage device 300 will be described with reference to Fig. 3. Fig. 3 is a front view of the water storage device 300.

[0024] As shown in FIG. 3, the water storage device 300 includes a main body 310 , an insertion portion 320 , a water level display portion 330 , an exhaust portion 340 , and a drain portion 350 .

[0025] (Main body 310) The main body 310 is hollow inside and has a water reservoir 310a in which water produced after the exhaust pump of the compressor 200 is driven is stored.

[0026] (insertion part 320) The insertion portion 320 is provided for inserting the other end of the hose H that is inserted into the insertion portion 260 of the compressor 200. Note that although two insertion portions 320 are shown in FIG. 3, in this embodiment, one of the insertion portions 320 is sealed.

[0027] (Water amount display section 330) Water level display unit 330 is provided to display the amount of water stored in water storage unit 310a. Here, water level display unit 330 includes communication unit 330a that communicates with water storage unit 310a, and transmission unit 330b that transmits and displays the amount of water stored in water storage unit 310a.

[0028] (Exhaust section 340) The exhaust unit 340 is provided to exhaust the gas supplied from the exhaust pump of the compressor 200. Here, the exhaust unit 340 is configured by a filter.

[0029] (Drainage section 350) Drainage section 350 is provided to drain the water stored in water storage section 310a. Here, as will be described in detail later, drainage section 350 is composed of drainage hole 351 that drains the water stored in water storage section 310a and drainage lid 352 that closes drainage hole 351.

[0030] (How to set up oxygen room 1) Next, a method for installing the oxygen room 1 will be described with reference to FIG.

[0031] 4(A), the power plug 270 is inserted into the outlet, and one end of the hose H is inserted into the insertion portion 260 of the compressor 200. As a result, one end of the hose H is attached to the compressor 200.

[0032] Next, as shown in Figure 4 (B), the other end of the hose H inserted into the insertion portion 260 is inserted into the insertion hole 120. As a result, the other end of the hose H enters the storage portion 100a, making it possible to install the water storage device 300 in the storage portion 100a.

[0033] 4(C), the other end of the hose H inserted into the insertion hole 120 is inserted into the insertion portion 320 of the water storage device 300. As a result, the other end of the hose H is attached to the water storage device 300.

[0034] (How to use Oxygen Room 1) Next, a method of using the oxygen room 1 will be described with reference to FIG.

[0035] 5(A), the power button 220 of the compressor 200 is operated to turn on the power of the compressor 200. When the power of the compressor 200 is turned on, gas is supplied from the exhaust pump of the compressor 200 to the water storage device 300 via the hose H.

[0036] As a result, the gas supplied to the water storage device 300 is exhausted from the exhaust section 340, and the air pressure in the storage section 100a is pressurized to a pressure higher than the standard air pressure. The air pressure in the storage section 100a is maintained at the set air pressure for the usage time, and when the usage time of the oxygen room 1 has elapsed, the air pressure in the storage section 100a is restored to the standard air pressure.

[0037] Next, as shown in Figure 5(B), when the air pressure in the storage unit 100a is restored to standard air pressure, the air in the hose H turns into mist, and water W accumulates in the hose H. The next time the oxygen room 1 is used, the water W accumulated in the hose H will flow into the water storage device 300 together with the gas supplied from the exhaust pump of the compressor 200. As described above, water W is likely to accumulate in the hose H when the air pressure in the storage unit 100a is restored, but it may also accumulate when the air pressure in the storage unit 100a is increased or when the air pressure in the storage unit 100a is maintained.

[0038] As a result, the water W accumulated in the hose H is stored in the water storage section 310a of the water storage device 300, and the water W does not flow into the storage section 100a, which prevents rusting of the box body 100. In addition, the generation of mold in the storage section 100a can be prevented, which prevents the health of users of the oxygen room 1 from being damaged.

[0039] Next, as shown in Figure 5(C), by removing drain cover 352 from main body 310 of water storage device 300, water W accumulated in water storage section 310a is drained through drain hole 351. This allows the water accumulated in water storage section 310a of water storage device 300 to be drained. The drained water W is received in drain container 500 and disposed of outside storage section 100a.

[0040] (Second embodiment) Next, a second embodiment of the present invention will be described with reference to FIGS.

[0041] (Noise level) Next, the graph showing the noise level will be explained with reference to FIG.

[0042] Conventionally manufactured and sold oxygen room compressors are generally capable of pressurizing up to 1.2 atmospheres or 1.5 atmospheres, and the driving noise of the compressor is not that much of a problem. On the other hand, if the compressor 200 of the oxygen room 1 in the first embodiment is capable of pressurizing up to 1.9 atmospheres, while it can be expected to have health and beauty benefits for the user compared to conventionally manufactured and sold oxygen room compressors, the driving noise of the compressor 200 becomes louder.

[0043] Fig. 6(A) is a graph showing the results of measuring the noise level of the housing section 100a for 30 seconds when the compressor 200 is not operating. As shown in Fig. 6(A), the noise level was generally below 40 dB, averaging 38.4 dB.

[0044] Fig. 6(B) is a graph showing the results of measuring the noise level of the storage unit 100a for 30 seconds when the compressor 200 of the oxygen room 1 in the first embodiment is driven. As shown in Fig. 6(B), the noise level generally fluctuates around 70 dB, averaging 71.9 dB. Here, if the air pressure in the storage unit 100a is increased for the duration of use (e.g., 30, 60, or 90 minutes), the user may feel stressed.

[0045] Fig. 6(C) is a graph showing the results of measuring the noise level of the accommodation section 100a for 30 seconds when the silencing device 400 described below is attached to the oxygen room 1 in the first embodiment and the compressor 200 is driven. As shown in Fig. 6(C), the noise level generally fluctuates around 60 dB, averaging 59.5 dB. As a result, the oxygen room 1 in the second embodiment is equipped with the silencing device 400, and therefore can suppress noise compared to the oxygen room 1 in the first embodiment.

[0046] (Storage section 100a in the second embodiment) Next, the storage section 100a in the second embodiment will be described with reference to FIG.

[0047] In the second embodiment, one end of a long hose Ha is inserted into the insertion portion 260 of the compressor 200, and the other end of the long hose Ha is attached to a noise suppression device 400 that suppresses noise generated by the compressor 200. As a result, one end of the long hose Ha is attached to the compressor 200, and the other end of the long hose Ha is attached to the noise suppression device 400. Furthermore, one end of a short hose Hb that is shorter than the long hose Ha is attached to the noise suppression device 400, and the other end of the short hose Hb is attached to the water storage device 300. As a result, one end of the short hose Hb is attached to the noise suppression device 400, and the other end of the short hose Hb is attached to the water storage device 300.

[0048] In the second embodiment, the spacer 150 is provided to ensure space for arranging the long hose Ha, the short hose Hb, and the silencer 400. Note that, in the second embodiment, for convenience of explanation, the long hose Ha and the short hose Hb are used, but the length of each hose can be set appropriately.

[0049] (Quiet device 400) Next, the silencing device 400 will be described with reference to Fig. 8. Fig. 8 is an exploded view of the silencing device 400.

[0050] As shown in FIG. 8, the silencer 400 includes a base portion 410, a left cylindrical portion 420, a right cylindrical portion 430, a left lid portion 440, a right lid portion 450, a left filter 460, and a right filter 470.

[0051] (Base part 410) The base portion 410 has a cylindrical shape and is hollow inside. The base portion 410 also includes a left outer threaded portion 411 that threadably engages with a left outer threaded portion 441 of the left cover portion 440, and a right outer threaded portion 412 that threadably engages with a right outer threaded portion 451 of the right cover portion 450.

[0052] (Left cylinder part 420) Left cylindrical portion 420 has left cylindrical hole 420a, left cylindrical main body 420b, and left cylindrical bottom 420c, and is a member for inserting and attaching left filter 460 into left cylindrical hole 420a. Left cylindrical portion 420 also has left inner screwed portion 421 that screws into left inner screwed portion 442, and left opening 422 is provided around left cylindrical main body 420b.

[0053] (Right cylinder part 430) Right cylindrical portion 430 has right cylindrical hole 430a, right cylindrical main body 430b, and right cylindrical bottom 430c, and is a member for inserting and attaching right filter 470 into right cylindrical hole 430a. Right cylindrical portion 430 also has right inner screwed portion 431 that screws into right inner screwed portion 452, and right opening 432 is provided around right cylindrical main body 430b.

[0054] (Left lid part 440) The left cover portion 440 has a left outer threaded portion 441 that threads into the left outer threaded portion 411, a left inner threaded portion 442 that threads into the left inner threaded portion 421, and a left insertion portion 443 through which the long hose Ha or the short hose Hb is inserted.

[0055] (Right lid part 450) The right cover portion 450 has a right outer threaded portion 451 that threads into the right outer threaded portion 412, a right inner threaded portion 452 that threads into the right inner threaded portion 431, and a right insertion portion 453 through which the long hose Ha or the short hose Hb is inserted.

[0056] Here, in the second embodiment, it is assumed that one end of the long hose Ha is inserted into the insertion portion 260 of the compressor 200, and the other end of the long hose Ha is inserted into the left insertion portion 443. Furthermore, in this embodiment, it is assumed that one end of the short hose Hb is inserted into the insertion portion 320 of the water storage device 300, and the other end of the short hose Hb is inserted into the right insertion portion 453. It is also possible to insert the other end of the long hose Ha into the right insertion portion 453, and the other end of the short hose Hb into the left insertion portion 443.

[0057] (Left filter 460) The left filter 460 is provided to filter the gas supplied from the exhaust pump of the compressor 200. Specifically, the gas supplied via the long hose Ha passes through the left filter 460 and then flows out from the left opening 422. This causes dust to accumulate inside the left filter 460, thereby preventing dust from flowing into the storage section 100a.

[0058] (Right filter 470) The right filter 470 is provided to filter the gas flowing out from the left opening 422. Specifically, the gas flowing out from the left opening 422 flows from the outside to the inside of the right filter 470 via the right opening 432, and then passes through the short hose Hb inserted into the right insertion portion 453. As a result, even if there is dust that cannot be completely removed by the left filter 460, the dust accumulates on the outside of the right filter 470, and therefore, it is possible to prevent the dust from flowing into the storage portion 100a.

[0059] Here, the gas supplied from the exhaust pump of the compressor 200 is supplied to the noise reduction device 400 via the long hose Ha. The gas supplied to the noise reduction device 400 passes through the left filter 460 and the right filter 470, thereby suppressing the driving noise of the compressor 200.

[0060] It should be noted that the noise suppressing device 400 shown in FIG. 8 is merely an example, and any device may be used as long as it is capable of suppressing the noise generated when the compressor 200 is driven.

[0061] (Installation method of oxygen room 1 in the second embodiment) Next, a method for installing the oxygen room 1 in the second embodiment will be described with reference to FIG.

[0062] 9(A), the power plug 270 is inserted into the outlet, and one end of the long hose Ha is inserted into the insertion portion 260 of the compressor 200. As a result, one end of the long hose Ha is attached to the compressor 200.

[0063] 9(B), the other end of the long hose Ha inserted into the insertion portion 260 is inserted into the insertion hole 120. As a result, the other end of the long hose Ha enters the storage portion 100a, making it possible to install the water storage device 300 and the silencer device 400 in the storage portion 100a.

[0064] 9(C), the other end of the long hose Ha inserted into the insertion hole 120 is inserted into the left insertion portion 443 of the silencer 400. This causes the other end of the long hose Ha to be attached to the silencer 400. Also, one end of the short hose Hb is inserted into the right insertion portion 453 of the silencer 400. This causes the one end of the short hose Hb to be attached to the silencer 400.

[0065] 9(D), the other end of the short hose Hb is inserted into the insertion portion 320 of the water storage device 300. As a result, the other end of the short hose Hb is attached to the water storage device 300.

[0066] (Method of using the oxygen room 1 in the second embodiment) Next, a method of using the oxygen room 1 in the second embodiment will be described with reference to FIG.

[0067] 10(A), the power button 220 of the compressor 200 is operated to turn on the power of the compressor 200. When the power of the compressor 200 is turned on, gas is supplied from the exhaust pump of the compressor 200 to the silencer 400 via the long hose Ha, and the gas supplied to the silencer 400 is supplied to the water storage device 300 via the short hose Hb.

[0068] As a result, the gas supplied to the water storage device 300 is exhausted from the exhaust section 340, and the air pressure in the storage section 100a is pressurized to a pressure higher than the standard air pressure. The air pressure in the storage section 100a is maintained at the set air pressure for the usage time, and when the usage time of the oxygen room 1 has elapsed, the air pressure in the storage section 100a is restored to the standard air pressure.

[0069] 10(B), when the air pressure in the storage unit 100a is restored, the air in the short hose Hb turns into mist, and water W accumulates in the short hose Hb. The next time the oxygen room 1 is used, the water W accumulated in the short hose Hb will flow into the water storage device 300 together with the gas supplied from the exhaust pump of the compressor 200. As described above, water W is likely to accumulate in the short hose Hb when the air pressure in the storage unit 100a is restored, but it may also accumulate when the air pressure in the storage unit 100a is increased or when the air pressure in the storage unit 100a is maintained.

[0070] As a result, the water W accumulated in the short hose Hb is stored in the water storage section 310a of the water storage device 300, and the water W does not flow into the storage section 100a, which prevents rusting of the box body 100. In addition, the generation of mold in the storage section 100a can be prevented, which prevents the health of users of the oxygen room 1 from being damaged.

[0071] Next, as shown in Figure 10(C), by removing drain cover 352 from main body 310 of water storage device 300, water W accumulated in water storage section 310a is drained through drain hole 351. This allows the water accumulated in water storage section 310a of water storage device 300 to be drained. The drained water W is received in drain container 500 and disposed of outside storage section 100a.

[0072] (Other embodiments) Other embodiments will be described below.

[0073] In each of the above-described embodiments, the compressor 200 is provided with an exhaust pump, but an intake pump (not shown) may be provided instead of the exhaust pump. Alternatively, the compressor 200 may be provided with both an exhaust pump and an intake pump.

[0074] As a result, when the intake pump is driven, air is drawn into the storage section 100a, making it possible to control the air pressure in the storage section 100a to an air pressure lower than standard air pressure (for example, 0.8 atmospheres). In this case as well, water W is stored in the water storage section 310a of the water storage device 300, so rusting of the storage section 100a can be prevented. Furthermore, when the air pressure in the storage section 100a is set to an air pressure lower than standard air pressure, it is also possible to prevent the water W from entering the compressor 200.

[0075] Furthermore, a detection unit (e.g., a water level sensor) that detects the amount of water stored in water storage unit 310a may be provided separately from water level display unit 330. Then, an alarm unit that notifies the user that the amount of water stored in water storage unit 310a is equal to or greater than the predetermined amount when this detection unit detects that the amount of water stored in water storage unit 310a is equal to or greater than the predetermined amount may be provided. Here, the alarm unit may notify the user by sound or light, for example.

[0076] In the second embodiment described above, the insertion portion 260 and the left insertion portion 443 are connected by a long hose Ha, and the right insertion portion 453 and the plugging portion 320 are connected by a short hose Hb. However, the insertion portion 260 and one plugging portion 320 may be connected by a long hose Ha, and the other plugging portion 320 and the left insertion portion 443 may be connected by a short hose Hb. In this case, the exhaust portion 340 of the water storage device 300 is sealed, and a filter is attached to the right insertion portion 453, and air is exhausted through this filter. The filter may be attached directly to the right insertion portion 453, or one end of a hose may be inserted into the right insertion portion 453 and the filter may be attached to the other end of the hose.

[0077] Thus, according to the present invention, the compressor 200 controls the air pressure in the storage section 100a of the box body 100. The box body 100 is provided with a water storage device 300 that stores water W generated by controlling the air pressure in the storage section 100a. This makes it possible to provide an oxygen room 1 that can prevent the storage section 100a from rusting and the user's health from being damaged.

[0078] Furthermore, according to the present invention, the water storage device 300 includes a water storage section 310a that stores the water W accumulated in the hose H, and a drainage section 350 that drains the water W stored in the water storage section 310a. This allows the water W stored in the water storage section 310a to be discarded outside the storage section 100a.

[0079] Furthermore, according to the present invention, the compressor 200 is provided with an insertion portion 260 through which one end of the hose H is inserted, and the box 100 is provided with an insertion hole 120 through which the other end of the hose H is inserted. This allows the water storage device 300 to be installed in the storage portion 100a.

[0080] Furthermore, according to the present invention, there is provided a silencer 400 that suppresses noise generated when the compressor 200 is driven. This makes it possible to suppress noise even when the compressor 200, which can control the air pressure in the accommodation section 100a to a high pressure (for example, 1.9 atmospheres), is driven and the noise level increases.

[0081] (First invention) The first invention is an oxygen room comprising a box (e.g., box 100) having a storage section (e.g., storage section 100a) in which a user is stored, an air pressure control device (e.g., compressor 200) that controls the air pressure in the storage section, and a water storage device (e.g., water storage device 300) that stores water generated by the air pressure control device controlling the air pressure in the storage section, and the water storage device is connected to the air pressure control device by a hose (e.g., hose H).

[0082] (Second Invention) The second invention is the oxygen room according to the first invention, characterized in that the water storage device comprises a water storage section (e.g., water storage section 310a) for storing water accumulated in the hose, and a drainage section (e.g., drainage section 350) for draining the water stored in the water storage section.

[0083] (Third Invention) In the third invention, the air pressure control device is an oxygen room described in the first or second invention, characterized in that it has an attachment portion (e.g., insertion portion 260) to which one end of the hose is attached, and the box body has an insertion hole (e.g., insertion hole 120) to which the other end of the hose attached to the attachment portion is inserted.

[0084] (Fourth Invention) The fourth invention is an oxygen room described in any one of the first to third inventions, characterized in that it is equipped with a noise suppression device (e.g., noise suppression device 400) that suppresses noise generated when the air pressure control device is driven.

[0085] Although the present invention has been described using the drawings, the specific configuration is not limited to these embodiments, and the present invention also includes design changes and the like within the scope of the gist of the present invention. Furthermore, the embodiments shown in the drawings can be combined with each other as long as there are no contradictions or problems in their purpose, configuration, etc. Furthermore, the contents of each drawing can be independent embodiments, and the embodiment of the present invention is not limited to a single embodiment obtained by combining the drawings. [Explanation of symbols]

[0086] 1. Oxygen Room 100 box body 101 Opening 110 Door section 120 Insertion hole 130 Floor 140 Matt 150 spacer 200 Compressor 210 Body 220 Power Button 230 Toride 240 Pressure display unit 250 Operation section 260 Insertion part 270 power plug 300 Water storage device 310 Main body 310a Water storage section 320 Insertion part 330 Water amount display section 330a Communication part 330b Transparent part 340 Exhaust section 350 Drainage section 351 Drain hole 352 Drain lid 400 Silencer 410 Base 411 Left outer threaded part 412 Right outer threaded part 420 Left cylinder part 421 Left inner threaded part 422 Left opening 430 Right cylinder part 431 Right inner threaded part 432 Right opening 440 Left lid part 441 Left outer threaded part 442 Left inner screw joint 443 Left insertion part 450 Right lid part 451 Right outer threaded part 452 Right inner screw joint 453 Right insertion part 460 Left Filter 470 Right Filter 500 Drain container H hose Ha Long hose Hb short hose

Claims

1. a box having a storage section for storing a user; an air pressure control device for controlling the air pressure in the storage section; a water storage device that is installed in the storage unit and stores water generated by controlling the air pressure of the storage unit by the air pressure control device; a hose connecting the air pressure control device and the water storage device; Equipped with The air pressure control device includes an attachment portion to which one end of the hose is attached, the box body has an insertion hole into which the other end of the hose attached to the attachment portion is inserted, An oxygen room characterized in that a hose attached to the attachment portion is inserted into the insertion hole and connected to the water storage device installed in the storage portion.

2. The water storage device is a water storage section for storing water accumulated in the hose; a drainage section that drains the water stored in the water storage section; 2. The oxygen room according to claim 1, further comprising:

3. a noise suppressing device that suppresses noise generated when the air pressure control device is driven; 3. The oxygen room according to claim 1, further comprising:

Citation Information

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