Air energy far infrared sauna room

CN115853318BActive Publication Date: 2026-08-07HEFEI ROYALSTAR ELECTRONIC APPLIANCE GROUP CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
HEFEI ROYALSTAR ELECTRONIC APPLIANCE GROUP CO LTD
Filing Date
2022-11-28
Publication Date
2026-08-07

AI Technical Summary

Technical Problem

[0004]但是,其在使用过程中,仍然存在较为明显的缺陷:1、上述装置在进行空气净化时,驱动电机带动扇叶转动,扇叶转动会通过第一进气罩向导向管内吹风,再从出气管进入连接管内,最后从连接管上的通孔吹出,但是,上述换气操作并没有对该气体进行除尘灭菌处理,使得桑拿房内部更换的气体质量难以得到保证;2、上述装置直接将桑拿房外部的气体换入至屋内,但是,由于桑拿房内外往往存在温差,使得新换入的气体会快速降低桑拿房内部的温度,导致桑拿房的能耗增加

Benefits of technology

[0018]1、 本发明具有通风换气的功能,对于新换入的新风,能够进行除尘过滤和消毒,使得更换的气体更加纯净,桑拿房内部的空气质量更好;

✦ Generated by Eureka AI based on patent content.

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Abstract

The application provides an air energy far infrared sauna room, which comprises a heat preservation wallboard, a far infrared heating plate and an air energy heat pump are fixedly arranged in the heat preservation wallboard, an exhaust device is arranged in the heat preservation wallboard, the exhaust device can be driven by a power device to realize one-way exhaust, an operation box is fixedly arranged in the heat preservation wallboard, an air inlet pipe is communicatively arranged on the operation box, the exhaust device passes through the operation box to realize heat exchange, a disinfection lamp is fixedly arranged at the bottom of a mounting rod, a dehumidification scraper is fixedly arranged on the side of a bearing plate close to a gas temperature detection probe, a water storage tank is not in contact with the lower side of the mounting plate, and a flushing pipe is communicatively arranged on a hollow ring. The air energy far infrared sauna room can ventilate and exchange air during use, ensure the quality of the exchanged air, effectively filter and disinfect, and effectively exchange heat, so that the energy consumption of the sauna room is lower.
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Description

Technical Field

[0001] This invention relates to the field of sauna technology, specifically to an air-source far-infrared sauna. Background Technology

[0002] Far-infrared sauna rooms are a new generation of dry sauna equipment that uses far-infrared rays as the heating and emitting source and a wooden sauna chamber as the carrier. Existing sauna rooms are enclosed spaces, which can cause customers to feel chest tightness during long sauna sessions. In addition, the hot air inside the sauna room rarely exchanges directly with the outside air, resulting in poor air quality.

[0003] In the prior art, a far-infrared sauna with air purification function, disclosed in CN208518387U, includes a sauna body. Symmetrically arranged mounting frames are welded to the outer walls of both sides of the sauna body. Fixed rods are vertically welded to the top and bottom inner walls of the mounting frames. A horizontally arranged drive motor is bolted to one side of the two fixed rods that are close to each other. Fan blades are fixedly sleeved at the end of the output shaft of the drive motor. A first air intake hood connected to the sauna body is provided on one side of the two fan blades that are close to each other. A horizontally arranged air guide pipe is welded to one side of the two first air intake hoods that are close to each other. A sleeve is welded to the bottom of the air guide pipe, and a second air intake hood is welded to the top of the air guide pipe. This far-infrared sauna with air purification function has a novel design, is easy to operate, and facilitates ventilation within the sauna. Fresh air dilutes the stale air inside the sauna, and there is no need to worry about outside air affecting the temperature inside the sauna, providing customers with a good user experience.

[0004] However, it still has some obvious defects in use: 1. When the above device is purifying the air, the drive motor drives the fan blades to rotate. The rotation of the fan blades blows air into the guide tube through the first air inlet hood, then into the connecting pipe through the air outlet pipe, and finally blows it out through the through hole on the connecting pipe. However, the above air exchange operation does not perform dust removal and sterilization treatment on the air, making it difficult to guarantee the quality of the air exchanged inside the sauna. 2. The above device directly exchanges the air outside the sauna into the room. However, since there is often a temperature difference between the inside and outside of the sauna, the newly exchanged air will quickly lower the temperature inside the sauna, resulting in increased energy consumption of the sauna. Summary of the Invention

[0005] The purpose of this invention is to provide an air-source far-infrared sauna room to solve the problems mentioned in the background art.

[0006] To achieve the above objectives, the present invention provides the following technical solution:

[0007] An air-source far-infrared sauna includes an insulated wall panel, in which a far-infrared heating plate and an air-source heat pump are fixedly installed. An exhaust device is installed inside the insulated wall panel, which can be driven by a power device to achieve unidirectional exhaust.

[0008] An operating box is fixedly installed inside the thermal insulation wall panel. An air inlet pipe is connected to the operating box, and an air pump is installed on the air inlet pipe. A dust filter is installed inside the air inlet pipe. An air inlet hood is connected to the bottom of the operating box. An exhaust device passes through the inside of the operating box to achieve heat exchange. An installation rod is fixedly installed inside the operating box, and a disinfection lamp is fixedly installed at the bottom of the installation rod. An installation plate is fixedly installed inside the thermal insulation wall panel, and a gas temperature detection probe is embedded in the side of the installation plate. A support plate is fixedly installed at the bottom of the power unit, and a dehumidifying scraper is fixedly installed on the side of the support plate near the gas temperature detection probe.

[0009] A water storage tank is provided below the mounting plate without contact with it. The exhaust pipe is connected to the water storage tank through a connecting pipe. A valve is provided on the connecting pipe. A water suction pipe for absorbing water is provided in the water storage tank. A water pump is provided on the water suction pipe. The water suction pipe is connected to a hollow ring, and the hollow ring is sleeved on the outside of the mounting rod. A flushing pipe is connected to the hollow ring. A sewage pipe is connected to the side of the operation box and is connected to the storage tank.

[0010] Preferably, a lighting lamp is fixedly installed on the inner wall of the insulated wall panel.

[0011] Preferably, the exhaust device includes a ventilation cylinder, which is connected to the top of the insulation wall panel. A movable plate is movably installed inside the ventilation cylinder. A connecting rod is fixedly installed on the top of the movable plate. A horizontal plate is fixedly installed on the top of the connecting rod. A compression spring is connected between the movable plate and the inner top wall of the ventilation cylinder. An air suction hood is connected to the bottom of the ventilation cylinder. A first one-way valve is installed between the ventilation cylinder and the air suction hood. An exhaust pipe is connected to the ventilation cylinder, and a second one-way valve is installed in the exhaust pipe.

[0012] Preferably, multiple heat exchange fins are fixedly installed on the outer wall of a section of the exhaust pipe inside the control box.

[0013] Preferably, the power unit includes a rotary motor, a transmission rod is fixedly mounted on the output end of the rotary motor, a cam is fixedly mounted on the end of the transmission rod, the cam can press down on the cross plate when rotating, the rotary motor is fixedly mounted inside the outer casing, and the outer casing is fixedly mounted outside the ventilation cylinder.

[0014] Preferably, the water storage tank is fixed to the outer wall of the control box.

[0015] Preferably, multiple rinsing pipes are provided, and the outlet ends of all pipes are inclined toward the disinfection lamp.

[0016] Preferably, a baffle is fixedly installed inside the control box, and a guide plate is provided on the side of the baffle near the air intake pipe.

[0017] Compared with the prior art, the beneficial effects of the present invention are:

[0018] 1. This invention has a ventilation function. It can filter and disinfect the newly introduced air, making the replaced air purer and the air quality inside the sauna room better.

[0019] 2. During the ventilation process, the exhaust gas carries heat, which can preheat the incoming fresh air at the same time as the exhaust, reducing the temperature difference and thus reducing the energy consumption of the sauna.

[0020] 3. During ventilation, the present invention can scrape off water droplets adhering to the surface of the gas temperature detection probe, thereby avoiding affecting the accuracy of temperature measurement and making the temperature regulation inside the sauna more precise.

[0021] 4. This invention can collect water droplets condensed during the exhaust process and water droplets adhering to the surface of the gas temperature detection probe, and use the steam condensate to clean the disinfection lamp, preventing dust from adhering to the surface of the disinfection lamp, reducing the disinfection irradiation range, and ensuring ventilation quality.

[0022] This invention provides an air-source far-infrared sauna room that can ventilate during use, ensure the quality of the incoming air, effectively filter and disinfect it, and achieve effective heat exchange, reducing temperature differences and thus lowering the energy consumption of the sauna room. Attached Figure Description

[0023] Figure 1 This is a front sectional view of the overall structure of the present invention;

[0024] Figure 2 For the present invention Figure 1 Enlarged view of point A in the image.

[0025] In the diagram: 1. Insulated wall panel, 2. Far-infrared heating plate, 3. Air source heat pump, 4. Lighting lamp, 5. Ventilation cylinder, 6. Movable plate, 7. Connecting rod, 8. Horizontal plate, 9. Compression spring, 10. Suction hood, 11. First one-way valve, 12. Exhaust pipe, 121. Second one-way valve, 13. Heat exchange fins, 14. Outer casing, 15. Rotary motor, 16. Transmission rod, 17. Cam, 18. Control box, 19. Inlet pipe, 20. Air pump, 21. Dust filter, 22. Inlet hood, 23. Mounting rod, 24. Disinfection lamp, 25. Mounting plate, 26. Gas temperature detection probe, 27. Bearing plate, 28. Dehumidifying scraper, 29. Water storage tank, 30. Connecting pipe, 31. Valve, 32. Suction pipe, 33. Water pump, 34. Hollow ring, 35. Flushing pipe, 36. Baffle plate, 37. Guide plate, 38. Sewage pipe, 39. Storage box. Detailed Implementation

[0026] The technical solutions of the embodiments of the present invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only some embodiments of the present invention, and not all embodiments. Based on the embodiments of the present invention, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of the present invention.

[0027] Please see Figures 1 to 2 The present invention provides a technical solution:

[0028] Example 1:

[0029] An air-source far-infrared sauna includes an insulated wall panel 1. The insulated wall panel 1 is equipped with a far-infrared heating plate 2 and an air-source heat pump 3. When in use, the heat is generated to maintain a certain temperature inside the sauna. The insulated wall panel 1 is equipped with an exhaust device, which can be driven by a power device to achieve one-way exhaust, thereby expelling the polluted gas inside the sauna and preventing the user from experiencing discomfort due to excessive carbon dioxide concentration.

[0030] An operating box 18 is fixedly installed inside the insulated wall panel 1. An air inlet pipe 19 is connected to the operating box 18, and an air pump 20 is installed on the air inlet pipe 19. When the air pump 20 is turned on, it can pump external air into the sauna room through the air inlet pipe 19. A dust filter 21 is installed inside the air inlet pipe 19 to intercept solid dirt in the pumped air. An air inlet hood 22 is connected to the bottom of the operating box 18. An exhaust device passes through the inside of the operating box 18 to achieve heat exchange. This is because the exhaust steam usually carries a lot of heat, and direct discharge would waste heat. The exhaust device is inside the operating box 18 and comes into contact with the pumped fresh air to achieve heat exchange, preheating the fresh air, reducing the temperature difference between the fresh air and the air inside the sauna room, and also reducing the heating energy consumption of the sauna room. An installation rod 23 is fixedly installed inside the operating box 18. A disinfection lamp 24 is fixedly installed at the bottom of the mounting rod 23. In this embodiment, the disinfection lamp 24 is a cylindrical ultraviolet lamp. When turned on, it can kill germs in the air, making the sauna room cleaner. An installation plate 25 is fixedly installed inside the heat-insulating wall panel 1. A gas temperature detection probe 26 is embedded in the side of the installation plate 25. The gas temperature detection probe 26 can monitor the temperature inside the sauna room in real time, thereby providing a numerical reference for temperature adjustment. A support plate 27 is fixedly installed at the bottom of the power device. The power device can drive the support plate 27 to move downward. A dehumidifying scraper 28 is fixedly installed on the side of the support plate 27 near the gas temperature detection probe 26. During the downward movement, the dehumidifying scraper 28 can scrape off the water droplets attached to the surface of the gas temperature detection probe 26, thereby avoiding the water droplets from interfering with the accuracy of gas temperature monitoring.

[0031] A water storage tank 29 is installed below the mounting plate 25 without contact with it. Therefore, water droplets scraped from the surface of the gas temperature detection probe 26 will fall into the water storage tank 29 for storage. The exhaust pipe 12 is connected to the water storage tank 29 through a connecting pipe 30. Therefore, when liquid condenses inside the exhaust pipe 12, it can be discharged through the connecting pipe 30. A valve 31 is installed on the connecting pipe 30 to control whether the connecting pipe 30 is open or closed, which can realize periodic drainage. A water suction pipe 32 for water intake is installed in the water storage tank 29. A water pump 33 is installed on the water suction pipe 32. The hollow ring 34 is connected to the outside of the mounting rod 23. A rinsing pipe 35 is connected to the hollow ring 34. The water stored in the water tank 29 can be attracted by the suction pipe 32 and finally used to rinse the disinfection lamp 24 at the bottom of the mounting rod 23. This prevents the disinfection lamp 24 from affecting the sterilization coverage of the gas after it is covered with dust. A drain pipe 38 is connected to the side of the operation box 18. The drain pipe 38 is connected to the storage box 39. The drain pipe 38 can divert the water after cleaning the disinfection lamp 24 to the storage box 39 for temporary storage, which is convenient for subsequent centralized treatment.

[0032] Example 2:

[0033] An air-source far-infrared sauna includes an insulated wall panel 1. An insulated wall panel 1 has a far-infrared heating plate 2 and an air-source heat pump 3 fixedly installed inside. During use, these generate heat, maintaining a certain temperature inside the sauna. The insulated wall panel 1 also has an exhaust device that can be driven by a power unit to achieve one-way exhaust, thereby expelling polluted air from the sauna and preventing excessive carbon dioxide concentration from causing discomfort to the user. A lighting lamp 4 is fixedly installed on the inner wall of the insulated wall panel 1 to provide auxiliary lighting inside the sauna.

[0034] An operating box 18 is fixedly installed inside the insulated wall panel 1. An air inlet pipe 19 is connected to the operating box 18, and an air pump 20 is installed on the air inlet pipe 19. When the air pump 20 is turned on, it can pump external air into the sauna room through the air inlet pipe 19. A dust filter 21 is installed inside the air inlet pipe 19 to intercept solid dirt in the pumped air. An air inlet hood 22 is connected to the bottom of the operating box 18. An exhaust device passes through the inside of the operating box 18 to achieve heat exchange. This is because the exhaust steam usually carries a lot of heat, and direct discharge would waste heat. The exhaust device is inside the operating box 18 and comes into contact with the pumped fresh air to achieve heat exchange, preheating the fresh air, reducing the temperature difference between the fresh air and the air inside the sauna room, and also reducing the heating energy consumption of the sauna room. An installation rod 23 is fixedly installed inside the operating box 18. A disinfection lamp 24 is fixedly installed at the bottom of the mounting rod 23. In this embodiment, the disinfection lamp 24 is a cylindrical ultraviolet lamp. When turned on, it can kill germs in the air, making the sauna room cleaner. An installation plate 25 is fixedly installed inside the heat-insulating wall panel 1. A gas temperature detection probe 26 is embedded in the side of the installation plate 25. The gas temperature detection probe 26 can monitor the temperature inside the sauna room in real time, thereby providing a numerical reference for temperature adjustment. A support plate 27 is fixedly installed at the bottom of the power device. The power device can drive the support plate 27 to move downward. A dehumidifying scraper 28 is fixedly installed on the side of the support plate 27 near the gas temperature detection probe 26. During the downward movement, the dehumidifying scraper 28 can scrape off the water droplets attached to the surface of the gas temperature detection probe 26, thereby avoiding the water droplets from interfering with the accuracy of gas temperature monitoring.

[0035] A water storage tank 29 is installed below the mounting plate 25 without contact with it. The water storage tank 29 is fixed to the outer wall of the operating box 18 for greater stability. Therefore, water droplets scraped from the surface of the gas temperature detection probe 26 will fall into the water storage tank 29 for storage. The exhaust pipe 12 is connected to the water storage tank 29 through a connecting pipe 30. Therefore, when liquid condenses inside the exhaust pipe 12, it can be discharged through the connecting pipe 30. A valve 31 is installed on the connecting pipe 30 to control the flow of liquid through the connecting pipe 30. Whether connected or not, periodic drainage can be achieved. A suction pipe 32 for water intake is installed in the water storage tank 29, and a water pump 33 is installed on the suction pipe 32. The suction pipe 32 is connected to a hollow ring 34, which is fitted onto the outside of the mounting rod 23. Multiple flushing pipes 35 are connected to the hollow ring 34, and their outlets are all inclined towards the disinfection lamp 24 for greater flushing force. The surface of the disinfection lamp 24 is waterproof, allowing water accumulated in the water storage tank 29 to be drawn out. Water pipe 32 draws in water, which is ultimately used to rinse the disinfection lamp 24 at the bottom of the mounting rod 23, preventing the disinfection lamp 24 from affecting the sterilization coverage of the gas after dust adheres to it. A baffle 36 is fixedly installed inside the control box 18. The height of the baffle 36 is less than the height of the control box 18. Therefore, fresh air needs to flow from above the baffle 36, which extends the flow path and allows for more contact with the exhaust pipe 12, improving the heat exchange effect. On the other hand, the baffle 36 can also prevent the water after cleaning the disinfection lamp 24 from flowing back, thus achieving one-way drainage. A guide plate 37 is provided on the side of the baffle 36 near the air inlet pipe 19. The guide plate 37 is inclined downward on the side near the drain pipe 38 to guide the sewage. A drain pipe 38 is connected to the side of the control box 18 and is connected to the storage box 39. The drain pipe 38 can guide the water after cleaning the disinfection lamp 24 to the storage box 39 for temporary storage, which is convenient for subsequent centralized treatment.

[0036] Example 3:

[0037] This embodiment, based on the above-described Embodiment 1 or Embodiment 2, further discloses and defines the specific structure of the ventilation device. Specifically: the exhaust device includes a ventilation cylinder 5, which is connected to the top of the insulation wall panel 1. A movable plate 6 is movably installed inside the ventilation cylinder 5, capable of longitudinally moving against the inner wall of the ventilation cylinder 5. A connecting rod 7 is fixedly installed at the top of the movable plate 6, and a horizontal plate 8 is fixedly installed at the top of the connecting rod 7. A compression spring 9 is connected between the movable plate 6 and the inner top wall of the ventilation cylinder 5. The compression spring 9 has good elasticity and can automatically return to its original position without external force. A suction hood 10 is connected to the bottom of the ventilation cylinder 5, and the inner diameter of the bottom of the suction hood 10 gradually increases. A first one-way valve 11 is provided between the air cylinder 5 and the air suction hood 10. The first one-way valve 11 ensures that the gas inside the sauna can only be drawn into the air cylinder 5 through the air suction hood 10 and cannot flow backward. An exhaust pipe 12 is connected to the air cylinder 5, and a second one-way valve 121 is provided in the exhaust pipe 12. The second one-way valve 121 ensures that the gas inside the air cylinder 5 can only be discharged outward through the exhaust pipe 12 and cannot flow backward. In this embodiment, multiple heat exchange fins 13 are fixedly provided on the outer wall of a section of the exhaust pipe 12 located inside the operation box 18. The heat exchange fins 13 have high thermal conductivity and can conduct the temperature of the gas inside the exhaust pipe 12, thereby preheating the fresh air and reducing the temperature difference.

[0038] Example 4:

[0039] Based on the above-described Embodiment 1 or Embodiment 2, this embodiment further discloses and defines the specific structure of the power device. Specifically, the power device includes a rotary motor 15, a transmission rod 16 is fixedly installed on the output end of the rotary motor 15, and a cam 17 is fixedly installed at the end of the transmission rod 16. After the rotary motor 15 is started, it can drive the cam 17 to rotate through the transmission rod 16. When the cam 17 rotates, it can press down on the horizontal plate 8. The rotary motor 15 is fixedly installed inside the outer cover 14, and the outer cover 14 is fixedly installed outside the air exchange cylinder 5. The outer cover 14 has a protective function and is more aesthetically pleasing overall.

[0040] Working principle:

[0041] During the use of a sauna, the air inside will gradually become polluted and the carbon dioxide concentration will gradually increase. At this time, in order to ensure the comfort of the user, it is necessary to ventilate in a timely manner.

[0042] Specifically, the rotary motor 15 in the power unit can be started. The rotary motor 15 can drive the cam 17 to rotate through the transmission rod 16. When the cam 17 rotates, it intermittently presses down the horizontal plate 8. The horizontal plate 8 drives the movable plate 6 through the connecting rod 7, so that the gas inside the ventilation cylinder 5 is discharged to the exhaust pipe 12. When the cam 17 moves away from the horizontal plate 8, the horizontal plate 8 will be lifted and restored under the action of the compression spring 9, thereby drawing the gas inside the sauna into the ventilation cylinder 5. Thus, as the cam 17 continues to rotate, the stale gas inside the sauna can be gradually discharged. At the same time, the air pump 20 can be turned on. The air pump 20 pumps the external gas into the control box 18 through the air inlet pipe 19, and finally blows it out from the air inlet hood 22 at the bottom of the control box 18, realizing the fresh air exchange of the sauna.

[0043] In the above-mentioned operation process, firstly, the exhaust pipe 12 in the exhaust device passes through the inside of the operating box 18, and the heat exchange fins 13 can also assist in heat exchange. This is because the exhaust steam usually carries a lot of heat, and direct discharge would result in heat waste. The exhaust device is inside the operating box 18 and comes into contact with the pumped fresh air, preheating the fresh air, reducing the temperature difference between the fresh air and the air inside the sauna, and also reducing the heating energy consumption of the sauna. Secondly, the combination of the dust filter 21 and the disinfection lamp 24 can remove dust and sterilize the fresh air, making the air breathed by the user cleaner and providing a better user experience. Thirdly, as the power device moves the support plate 27 downward, a dehumidifying scraper 28 is fixedly installed on the side of the support plate 27 near the gas temperature detection probe 26. The water droplets adhering to the surface of the gas temperature detection probe 26 can be scraped off, preventing water droplets from interfering with the accuracy of gas temperature monitoring, thus providing a more accurate reference for temperature regulation inside the sauna room; fourthly, the water droplets condensed in the exhaust pipe 12 can flow into the water storage tank 29 through the connecting pipe 30, and the water droplets adhering to the surface of the gas temperature detection probe 26 will also fall into the water storage tank 29 for collection. After a certain amount has been accumulated, the water pump 33 can be turned on, and the water can be pumped to the hollow ring 34 through the water suction pipe 32, and finally sprayed out from the flushing pipe 35. The steam condensate can then be used to clean the disinfection lamp 24, preventing dust from adhering to the surface of the disinfection lamp 24 and reducing the disinfection irradiation range, thus ensuring ventilation quality. Therefore, the various structures cooperate with each other, resulting in better performance.

[0044] Although embodiments of the invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and alterations can be made to these embodiments without departing from the principles and spirit of the invention, the scope of which is defined by the appended claims and their equivalents.

Claims

1. An air-source far-infrared sauna room, comprising insulated wall panels (1) and an exhaust pipe (12), characterized in that: The insulation wall panel (1) is fixedly equipped with a far-infrared heating plate (2) and an air source heat pump (3). The insulation wall panel (1) is equipped with an exhaust device, which can be driven by a power device to achieve unidirectional exhaust. An operating box (18) is fixedly installed inside the insulation wall panel (1). An air inlet pipe (19) is connected to the operating box (18). An air pump (20) is installed on the air inlet pipe (19). A dust filter (21) is installed inside the air inlet pipe (19). An air inlet cover (22) is connected to the bottom of the operating box (18). The exhaust device passes through the inside of the operating box (18) to achieve heat exchange. An installation rod (23) is fixedly installed inside the operating box (18). A disinfection lamp (24) is fixedly installed at the bottom of the installation rod (23). An installation plate (25) is fixedly installed inside the insulation wall panel (1). A gas temperature detection probe (26) is embedded in the side of the installation plate (25). A support plate (27) is fixedly installed at the bottom of the power device. A dehumidifying scraper (28) is fixedly installed on the side of the support plate (27) near the gas temperature detection probe (26). A water storage tank (29) is provided below the mounting plate (25) without contact. The exhaust pipe (12) is connected to the water storage tank (29) through a connecting pipe (30). A valve (31) is provided on the connecting pipe (30). A water suction pipe (32) for absorbing water is provided in the water storage tank (29). A water pump (33) is provided on the water suction pipe (32). The water suction pipe (32) is connected to a hollow ring (34). The hollow ring (34) is sleeved on the outside of the mounting rod (23). A flushing pipe (35) is connected to the hollow ring (34). A sewage pipe (38) is connected to the side of the operation box (18). The sewage pipe (38) is connected to the storage box (39).

2. The air-source far-infrared sauna room according to claim 1, characterized in that: A lighting lamp (4) is fixedly installed on the inner wall of the thermal insulation wall panel (1).

3. The air-source far-infrared sauna room according to claim 1, characterized in that: The exhaust device includes an air exchange cylinder (5), which is connected to the top of the insulation wall panel (1). A movable plate (6) is movably arranged inside the air exchange cylinder (5). A connecting rod (7) is fixedly arranged on the top of the movable plate (6). A horizontal plate (8) is fixedly arranged on the top of the connecting rod (7). A compression spring (9) is connected between the movable plate (6) and the inner top wall of the air exchange cylinder (5). An air suction hood (10) is connected to the bottom of the air exchange cylinder (5). A first one-way valve (11) is arranged between the air exchange cylinder (5) and the air suction hood (10). An exhaust pipe (12) is connected to the air exchange cylinder (5), and a second one-way valve (121) is arranged in the exhaust pipe (12).

4. The air-source far-infrared sauna room according to claim 3, characterized in that: The exhaust pipe (12) is located inside the control box (18) and has multiple heat exchange fins (13) fixedly installed on the outer wall of a section of the pipe.

5. The air-source far-infrared sauna room according to claim 1, characterized in that: The power unit includes a rotary motor (15), a transmission rod (16) is fixedly installed on the output end of the rotary motor (15), a cam (17) is fixedly installed at the end of the transmission rod (16), the cam (17) can press down the cross plate (8) when rotating, the rotary motor (15) is fixedly installed inside the outer cover (14), and the outer cover (14) is fixedly installed outside the air exchange cylinder (5).

6. The air-source far-infrared sauna room according to claim 1, characterized in that: The water storage tank (29) is fixed on the outer wall of the operation box (18).

7. The air-source far-infrared sauna room according to claim 1, characterized in that: Multiple rinsing tubes (35) are provided, and the outlet ends of all tubes are inclined toward the disinfection lamp (24).

8. The air-source far-infrared sauna room according to claim 1, characterized in that: A baffle plate (36) is fixedly installed inside the control box (18), and a guide plate (37) is provided on the side of the baffle plate (36) near the air intake pipe (19).

Citation Information

Patent Citations

  • Far infrared sauna room with air purification function

    CN208518387U

  • Far infrared sauna room with massage function

    CN211561035U