Humidity adjusting device and plateau intelligent wet steam room

By installing an arc-shaped temporary storage box, humidification pipe assembly, and double-sided corner-following humidification assembly in the steam room, combined with gear rotation and water bath heating, uniform distribution of humidity and temperature in the steam room is achieved, solving the problem of uneven steam distribution and improving the user experience.

CN121498173BActive Publication Date: 2026-03-31JINJIANG MILITARY TRAINING EQUIP CO LTD +1
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2026-01-14
Publication Date
2026-03-31

AI Technical Summary

Technical Problem

Uneven steam distribution in a sauna room can lead to humidity differences, especially in rooms with complex layouts where localized humidity variations are significant, impacting the user experience.

Method used

A pumping unit delivers humid steam to an arc-shaped temporary storage box at the top of the inner liner of the chamber. A gear-driven rotating assembly drives the arc-shaped temporary storage box and the humidification pipe assembly to reciprocate in a circular motion. At the same time, a double-sided angle-following humidification assembly provides humidification near the door gaps. The water bath heating assembly regulates the temperature to achieve uniform control of humidity and temperature.

Benefits of technology

It effectively solves the problem of uneven humidity caused by fixed steam supply points, ensuring uniform and stable control of humidity and temperature in the steam room, and improving the user experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The application discloses a humidity adjusting device and a plateau intelligent wet steam room, relates to the technical field of indoor air humidification, and comprises a room body inner container, a top plate arranged at the top end of the room body inner container, an arc-shaped temporary holding box slidingly arranged at the top end of the room body inner container in a circumferential track, and a sliding support structure arranged at the bottom end of the top plate and guiding the circumferential sliding of the arc-shaped temporary holding box, wherein the bottom end of the arc-shaped temporary holding box is provided with a humidifying pipe group, and the bottom end of the room body inner container is provided with a pumping unit for conveying steam into the arc-shaped temporary holding box. The application utilizes steam accumulation of the arc-shaped temporary holding box, dynamic deflection of the gear swinging assembly and local humidification of the double-side angle following type humidification assembly, effectively solves the humidity uneven problem caused by fixed steam supply points, and realizes uniform and stable control of humidity and temperature in the wet steam room by cooperating with comprehensive adjustment of the temperature and humidity control panel.
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Description

Technical Field

[0001] This invention relates to the field of indoor air humidification technology, specifically to a humidity control device and a high-altitude intelligent steam room. Background Technology

[0002] A steam room is a facility that promotes health by creating a high-temperature and high-humidity environment. It utilizes the moist heat effect of steam to promote blood circulation and relieve muscle fatigue, and is widely used in health preservation, beauty, and rehabilitation fields. The basic structure of a steam room includes the room body, a steam generator, a humidity control device, a ventilation system, and a control system. The steam generator is responsible for heating water to produce steam and creating a humid environment, while the humidity control device monitors and regulates the humidity in the room to ensure a comfortable and safe environment. The humidity control device has a built-in humidity sensor that detects the humidity in the room in real time and feeds the data back to the central control system. The control system automatically adjusts the steam output and the operation of the ventilation system according to the set humidity target to keep the humidity stable within the ideal range.

[0003] In operation, a steam room typically uses electric heating elements to heat and vaporize the steam into dry steam, which is then piped into the room for release, or a humidifier can be used directly. During this process, temperature and humidity sensors continuously monitor the environmental conditions and feed the data back to the control system. The control system dynamically stabilizes the temperature and humidity within the user's preset comfort range by intermittently starting and stopping steam production, ensuring safe and stable operation throughout the process. However, during the process of supplying steam or humidifying the steam room, the steam supply point and humidification point are affected by preset points, resulting in humidification in the area directly above and near the steam outlet. High concentrations of steam quickly bring relative humidity to or near saturation, causing users to experience intense, even suffocating, humid heat. In contrast, in diagonal corners, bottom corners, and especially near vents or door gaps, the steam struggles to reach these areas effectively. Combined with potentially cold surfaces like insufficiently preheated floors or walls, the steam condenses into water droplets, consuming moisture from the air. This results in significantly lower humidity levels in these areas, leading to poorer temperature and comfort. This is particularly problematic in complex room layouts, where even distribution of steam becomes more difficult, resulting in more pronounced localized humidity differences and negatively impacting the user experience. Summary of the Invention

[0004] The purpose of this invention is to provide a humidity control device and a high-altitude intelligent humidification room. A pumping unit delivers humidified steam to an arc-shaped temporary storage box at the top of the inner chamber of the room, and supplies it to the humidification pipe assembly and the double-sided angle-following humidification assembly. The temperature and humidity control panel activates the gear rotation assembly, which drives the arc-shaped temporary storage box and the humidification pipe assembly to perform a certain angle of circular reciprocating swing. At the same time, the double-sided angle-following humidification assembly also receives the reciprocating rotational power of the gear rotation assembly and performs humidification near the door gap, thereby fully homogenizing the humidity in the room and solving the problems mentioned in the background art.

[0005] To achieve the above objectives, the present invention provides the following technical solution: a humidity regulating device, comprising an inner chamber, a top plate disposed at the top of the inner chamber, an arc-shaped temporary storage box slidably mounted on the top of the inner chamber along a circumferential trajectory, and a sliding support structure disposed at the bottom of the top plate and guiding the arc-shaped temporary storage box to slide circumferentially. A humidification pipe assembly is installed at the bottom of the arc-shaped temporary storage box. A pumping unit for supplying steam to the arc-shaped temporary storage box is installed at the bottom of the inner chamber. A gear cranking assembly for driving the arc-shaped temporary storage box to reciprocate circumferentially and changing the steam ejection point of the humidification pipe assembly is installed on one side of the top of the inner chamber. A double-sided corner-following humidification assembly is installed at the two inner corners of the inner chamber away from the humidification pipe assembly. A water bath heating assembly is installed on both the left and right inner walls of the inner chamber. A temperature and humidity control panel electrically connected to the input terminals of the pumping unit, the gear cranking assembly, and the water bath heating assembly is installed on one inner wall of the inner chamber.

[0006] Preferably, the pumping unit includes a piston compressor installed at the bottom of the chamber's inner liner, a conduit vertically installed upward at the outlet of the piston compressor's pressure tank, and a corrugated pipe installed at the upper end of the conduit, one end of which is connected to the air inlet on the back of the arc-shaped temporary storage box.

[0007] Preferably, the humidification tube assembly includes a main switch valve installed on the left and right sides of the bottom of the arc-shaped temporary holding box, a U-shaped outer pipe installed between the outlet ends of the two main switch valves, and multiple risers arranged vertically side by side inside the U-shaped outer pipe. A regulating valve is installed at the lower end of each riser, and the bottom end of the regulating valve is connected to the U-shaped outer pipe. Multiple nozzles are installed at equal intervals along the vertical direction on the outer wall of the riser near the opening of the inner liner of the chamber. An arc-shaped sliding groove is provided at the top of the inner liner of the chamber for the main switch valve to move in a circular motion.

[0008] Preferably, the gear rocker assembly includes a primary gear shaft rotatably mounted on one side of the top of the chamber inner liner, an external gear ring fixed on the back wall of the arc-shaped temporary holding box, and a stepper motor mounted on one side of the top of the chamber inner liner. The output shaft of the stepper motor extends upward through to the outside of the chamber inner liner and is fixed with an L-shaped support arm. One end of the surface of the primary gear shaft is fixed with a rocker arm with a hole. A connecting rod is hinged to the upper surface of the rocker arm with the hole. One end of the connecting rod is connected to one end of the L-shaped support arm. The primary gear shaft and the external gear ring mesh with each other.

[0009] Preferably, the sliding support structure includes a plurality of support wheels distributed at equal intervals in a ring on the outside of the arc-shaped temporary holding box, and a support edge integrally formed on the back wall of the arc-shaped temporary holding box. The support edge and the plurality of support wheels are in sliding contact, and the support wheels are rotatably mounted on the bottom end of the top plate.

[0010] Preferably, the sliding support structure further includes an arc-shaped dovetail slider fixed to the top of the arc-shaped temporary holding box and an annular guide rail fixed to the bottom of the top plate, with the annular guide rail and the arc-shaped dovetail slider slidingly engaged.

[0011] Preferably, the dual-angle following humidification assembly includes two rotary joints fixed at the top corner of the chamber's inner liner, and corrugated pipes and nozzles respectively installed at the upper and lower ends of the rotary joints. One end of the corrugated pipes is connected to the arc-shaped temporary storage box. The dual-angle following humidification assembly also includes a secondary gear shaft rotatably installed on one side of the top of the chamber's inner liner and a drive gear fixed at the lower end of the primary gear shaft. The drive gear and the secondary gear shaft mesh with each other. A belt drive structure is installed between the secondary gear shaft and the upper ends of the two nozzles.

[0012] Preferably, the belt drive structure includes a synchronous pulley, a drive belt, and a tension pulley. The synchronous pulley is installed at the lower end of the secondary gear shaft and the upper end of the nozzle. The tension pulley is rotatably installed on one side of the top of the chamber liner. The drive belt is installed between the three synchronous pulleys and the tension pulley.

[0013] The present invention also provides a high-altitude intelligent steam room, including the humidity regulating device described above. A steam chamber is provided on the outside of the inner liner of the room. The top plate is fixed to the top of the steam chamber. A lower chamber for arranging a pumping unit is provided between the bottom of the inner liner of the room and the bottom of the steam chamber. A cavity is provided between the outer wall of the inner liner of the room and the inner wall of the steam chamber. Rectangular recesses are provided on the left and right inner walls of the inner liner of the room.

[0014] Preferably, the water bath heating assembly includes a plate-shaped hollow water tank installed in a rectangular cavity, an electric heating rod installed inside the plate-shaped hollow water tank, and an inlet / outlet valve installed on the lower part of one side of the outer wall of the plate-shaped hollow water tank. The inlet / outlet valve is located on the outside of the wet steam chamber, and the input end of the electric heating rod is electrically connected to the output end of the temperature and humidity control panel.

[0015] Compared with the prior art, the beneficial effects of the present invention are as follows: This humidity control device and high-altitude intelligent steam room are equipped with a pumping unit, an inner chamber, a sliding support structure, a gear rotating assembly, an arc-shaped temporary storage box, a humidification pipe assembly, and a double-sided corner following humidification assembly, etc., which cooperate with each other. The pumping unit delivers humid steam to the arc-shaped temporary storage box at the top of the inner chamber and supplies it to the humidification pipe assembly and the double-sided corner following humidification assembly. Then, the gear rotating assembly is activated through the temperature and humidity control panel. The gear rotating assembly drives the arc-shaped temporary storage box and the humidification pipe assembly to perform a certain angle of circular reciprocating motion. The oscillation mechanism, along with the reciprocating rotational power of the gear-driven assembly, provides humidification near the door seam, thereby fully homogenizing the humidity inside the room. During this process, the water bath heating assembly raises the temperature inside the room based on the signal from the temperature and humidity control panel. By utilizing the steam accumulation in the arc-shaped temporary storage box, the dynamic oscillation of the gear-driven assembly, and the localized humidification of the double-sided angle-driven humidification assembly, the problem of uneven humidity caused by a fixed steam supply point is effectively solved. In conjunction with the comprehensive adjustment of temperature and humidity by the temperature and humidity control panel, uniform and stable control of humidity and temperature inside the steam room is achieved.

[0016] The arc-shaped temporary steam chamber located at the top of the inner liner of the steam room serves as the initial steam distribution area. A gear-driven assembly drives the arc-shaped temporary steam chamber and the humidification tube assembly to reciprocate at a certain angle, causing the humidification tube assembly to continuously and slowly sweep within its operating range. This allows steam to be actively pushed to every corner of the room, including dead zones far from the initial steam outlet and areas difficult for airflow to reach. This effectively breaks down the uneven humidity caused by hot air stratification, forcing a gentle and thorough mixing of the air throughout the room. Secondly, in all steam rooms, the door seams are insulated. The weakest point is the damp area, where heat loss and cold air infiltration are most likely to cause localized low temperatures and steam condensation, thus forming uncomfortable cold spots and low humidity zones. The dual-sided corner following humidification assembly is deployed near the door gap and also receives power from the gear rotation assembly, so that its humidification action is synchronized with the swaying rhythm of the humidification tube assembly, thereby dynamically replenishing steam and further improving the uniformity and stability of humidity in the room. This ensures that every corner inside the steam room can obtain suitable humidity and avoids discomfort caused by uneven humidity.

[0017] Finally, the water bath heating assembly also raises the room temperature according to the signal from the temperature and humidity control panel, ensuring that the steam maintains a suitable temperature during supply and diffusion, and improving the steam's humidity carrying capacity and diffusion efficiency. Attached Figure Description

[0018] Figure 1 This is a schematic diagram of the three-dimensional cross-sectional structure of the inner chamber bladder of the present invention. Figure 1 ;

[0019] Figure 2 This is a schematic diagram of the three-dimensional cross-sectional structure of the inner chamber bladder of the present invention. Figure 2 ;

[0020] Figure 3 This is a schematic diagram of the three-dimensional cross-sectional structure of the inner chamber bladder of the present invention. Figure 3 ;

[0021] Figure 4 This is a three-dimensional cross-sectional structural diagram of the inner chamber and the steam chamber of the present invention in their combined state.

[0022] Figure 5 This is a three-dimensional structural diagram of the humidification tube assembly of the present invention;

[0023] Figure 6 This is a schematic diagram of the main structure of the present invention;

[0024] Figure 7 This is a schematic diagram of the sliding support structure and the arc-shaped temporary holding box in the mating state of the present invention. Figure 1 ;

[0025] Figure 8 For the present invention Figure 1 Enlarged structural diagram at point A in the middle;

[0026] Figure 9 This is a schematic diagram of the sliding support structure and the arc-shaped temporary holding box in the mating state of the present invention. Figure 2 ;

[0027] Figure 10 This is a schematic diagram of the three-dimensional structure of the double-sided corner following humidification system of the present invention;

[0028] Figure 11 This is a three-dimensional structural diagram of the steam chamber of the present invention;

[0029] Figure 12 This is a schematic diagram of the three-dimensional cross-sectional structure of the steam chamber of the present invention;

[0030] Figure 13 This is a schematic diagram of the three-dimensional cross-sectional structure of the water bath heating system of the present invention.

[0031] In the diagram: 1. Inner chamber liner; 101. Arc-shaped sliding groove; 102. Rectangular cavity; 2. Top plate; 3. Arc-shaped temporary holding box; 4. Sliding support structure; 401. Circular guide rail; 402. Support wheel; 403. Arc-shaped dovetail slider; 404. Support edge; 5. Humidification pipe assembly; 501. Main switch valve; 502. U-shaped outer pipe; 503. Regulating valve; 504. Riser pipe one; 505. Nozzle; 6. Gear crank assembly; 601. First stage gear shaft; 602. External gear ring; 603. Stepper motor; 604. L-shaped support arm; 605. Connecting rod; 606. Perforated crank. 7. Pumping unit; 701. Piston compressor; 702. Conduit; 703. Bellows I; 8. Double-sided angle-following humidification assembly; 801. Rotary joint; 802. Bellows II; 803. Nozzle; 804. Synchronous pulley; 805. Drive belt; 806. Tensioner; 807. Secondary gear shaft; 808. Drive gear; 9. Temperature and humidity control panel; 10. Steam chamber; 1001. Lower chamber; 1002. Cavity; 11. Water bath heating assembly; 1101. Plate-type hollow water tank; 1102. Electric heating rod; 1103. Inlet and outlet valves. Detailed Implementation

[0032] The technical solutions of the present invention will be clearly and completely described below with reference to the accompanying drawings in the embodiments of the present invention.

[0033] 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.

[0034] Example 1, by Figures 1 to 6 as well as Figures 11 to 13 The present invention includes an inner chamber 1, a top plate 2 disposed at the top of the inner chamber 1, an arc-shaped temporary storage box 3 slidably mounted at the top of the inner chamber 1 along a circumferential trajectory, and a sliding support structure 4 disposed at the bottom of the top plate 2 and guiding the arc-shaped temporary storage box 3 to slide circumferentially. A humidification tube assembly 5 is installed at the bottom of the arc-shaped temporary storage box 3. A pumping unit 7 for conveying steam into the arc-shaped temporary storage box 3 is installed at the bottom of the inner chamber 1. A gear cranking assembly 6 for driving the arc-shaped temporary storage box 3 to slide reciprocally in a circular motion and changing the steam ejection point of the humidification tube assembly 5 is installed on one side of the top of the inner chamber 1. A double-sided corner following humidification assembly 8 is installed at the two inner corners of the inner chamber 1 away from the humidification tube assembly 5. A water bath heating assembly 11 is installed on both the left and right inner walls of the inner chamber 1. A temperature and humidity control panel 9 is installed on one inner wall of the inner chamber 1 and electrically connected to the input terminals of the pumping unit 7, the gear cranking assembly 6, and the water bath heating assembly 11.

[0035] The temperature and humidity control panel 9 continuously collects room temperature and humidity data through its built-in sensors, and performs intelligent analysis based on preset parameters to issue corresponding control commands. This adjusts the output intensity of the pumping unit 7, the movement frequency of the gear rotation assembly 6, and the heating power of the water bath heating assembly 11, enabling the steam system to operate automatically and reducing human intervention.

[0036] The pumping unit 7 includes a piston compressor 701 installed at the bottom of the inner liner 1 of the chamber, a conduit 702 installed vertically upward at the outlet of the pressure tank of the piston compressor 701, and a corrugated pipe 703 installed at the upper end of the conduit 702. One end of the corrugated pipe 703 is connected to the air inlet on the back of the arc-shaped temporary storage box 3. The corrugated pipe 703 ensures that when the arc-shaped temporary storage box 3 is in operation, the steam in the piston compressor 701 and the conduit 702 can also be normally sent into the arc-shaped temporary storage box 3.

[0037] Steam from the external boiler room is compressed by the piston compressor 701 and then sent into the conduit 702. The conduit 702 then delivers the pressurized wet steam to the arc-shaped temporary storage box 3. At this time, the conduit 702 can also serve as a heating pipe to exchange heat with the inner liner 1 of the chamber. The piston compressor 701 and the conduit 702 provide the necessary power for the directional and stable delivery of steam. Even if the delivery distance is long or the path is complex, the steam can still have enough kinetic energy to reach the arc-shaped temporary storage box 3, avoiding insufficient power and uneven distribution of steam caused by natural rise and diffusion.

[0038] The humidification tube assembly 5 includes a main switch valve 501 installed on the left and right sides of the bottom of the arc-shaped temporary storage box 3, a U-shaped outer tube 502 installed between the outlet ends of the two main switch valves 501, and multiple vertically arranged risers 504 inside the U-shaped outer tube 502. A regulating valve 503 is installed at the lower end of the riser 504. The bottom end of the regulating valve 503 is connected to the U-shaped outer tube 502. Multiple nozzles 505 are installed at equal intervals in the vertical direction on the outer wall of the riser 504 near the opening of the inner liner 1 of the chamber. An arc-shaped slide groove 101 is provided at the top of the inner liner 1 of the chamber for the main switch valve 501 to move in a circular motion.

[0039] When using the humidification tube assembly 5 for humidification, users or staff can open the main switch valve 501, regulating valve 503 and their opening degree as needed. At this time, the pressurized steam inside the arc-shaped temporary storage box 3 enters the U-shaped outer tube 502 and riser 504, and is sprayed into the inner liner 1 of the room through the nozzle 505. During this process, the U-shaped outer tube 502 and riser 504 can also be used as heat exchange pipes. At this time, the arrangement of multiple vertical pipes can effectively avoid steam concentration and ensure uniform humidity throughout the room.

[0040] This embodiment of a high-altitude intelligent steam room includes the humidity regulating device described above. A steam chamber 10 is provided on the outside of the inner liner 1 of the room. A top plate 2 is fixed to the top of the steam chamber 10. A lower chamber 1001 for arranging a pumping unit 7 is provided between the bottom of the inner liner 1 and the bottom of the steam chamber 10. A cavity 1002 is provided between the outer wall of the inner liner 1 and the inner wall of the steam chamber 10. Rectangular recesses 102 are provided on the left and right inner walls of the inner liner 1.

[0041] The cavity 1002 forms an interlayer between the wet steam chamber 10 and the inner liner 1 of the chamber, and the interlayer is used as an insulation layer. Meanwhile, the lower chamber 1001 and the cavity 1002 are respectively used for the arrangement of the piston compressor 701 and the duct 702.

[0042] The water bath heating assembly 11 includes a plate-shaped hollow water tank 1101 installed in a rectangular cavity 102, an electric heating rod 1102 installed inside the plate-shaped hollow water tank 1101, and an inlet / outlet valve 1103 installed on the lower part of the outer wall of the plate-shaped hollow water tank 1101. The inlet / outlet valve 1103 is located on the outside of the steam chamber 10. The input end of the electric heating rod 1102 is electrically connected to the output end of the temperature and humidity control panel 9. Cold water is supplied to the plate-shaped hollow water tank 1101 through the inlet / outlet valve 1103, and the electric heating rod 1102 is turned on through the temperature and humidity control panel 9. The electric heating rod 1102 heats the water in the plate-shaped hollow water tank 1101, so that the left and right inner walls of the steam chamber 10 and the inner liner 1 of the chamber are heated, ensuring that the temperature inside the chamber is raised.

[0043] Example 2, based on Example 1, is... Figure 7 , Figure 8 and Figure 9The gear-rotating assembly 6 includes a primary gear shaft 601 rotatably mounted on one side of the top of the inner chamber 1, an external gear ring 602 fixed to the back wall of the arc-shaped temporary holding box 3, and a stepper motor 603 mounted on one side of the top of the inner chamber 1. The output shaft of the stepper motor 603 extends upward through to the outside of the inner chamber 1 and is fixed with an L-shaped support arm 604. One end of the surface of the primary gear shaft 601 is fixed with a perforated rocker arm 606. A connecting rod 605 is hinged to the upper surface of the perforated rocker arm 606. One end of the connecting rod 605 is connected to one end of the L-shaped support arm 604. The primary gear shaft 601 and the external gear ring 602 mesh with each other. When the gear-rotating assembly 6 is opened, the stepper motor... The output shaft of 603 drives the L-shaped support arm 604 to rotate. Since the perforated rocker arm 606 is fixed on the first-stage gear shaft 601 and connected to the upper end of the L-shaped support arm 604 through the connecting rod 605, when the L-shaped support arm 604 rotates around the output shaft axis of the stepper motor 603, the connecting rod 605 and the perforated rocker arm 606 force the first-stage gear shaft 601 to rotate forward and reverse at a certain angle. That is, the first-stage gear shaft 601 drives the arc-shaped temporary storage box 3 and the humidification tube group 5 to perform a circular reciprocating oscillating motion through the external gear ring 602, so that the steam injection point changes continuously, avoiding excessive local humidity caused by concentrated steam injection, and breaking the inherent humidity stratification and dead corners of the static steam room.

[0044] The sliding support structure 4 includes a number of support wheels 402 that are evenly distributed in a ring on the outside of the arc-shaped temporary storage box 3 and a support edge 404 integrally formed on the back wall of the arc-shaped temporary storage box 3. The support edge 404 and the number of support wheels 402 are in sliding contact. The support wheels 402 are rotatably mounted on the bottom end of the top plate 2. The sliding support structure 4 also includes an arc-shaped dovetail slider 403 fixed to the top of the arc-shaped temporary storage box 3 and an annular guide rail 401 fixed to the bottom end of the top plate 2. The annular guide rail 401 and the arc-shaped dovetail slider 403 are in sliding cooperation.

[0045] When the arc-shaped temporary holding box 3 performs a circular reciprocating oscillating motion, multiple support wheels 402 distributed on the circular trajectory of the arc-shaped temporary holding box 3 are used to support the support edge 404, ensuring smooth sliding of the arc-shaped temporary holding box 3 and the sliding support structure 4. In addition, the annular guide rail 401 at the bottom of the top plate 2 and the arc-shaped dovetail slider 403 at the top of the arc-shaped temporary holding box 3 slide in cooperation, thereby providing reliable motion guidance and load-bearing for the arc-shaped temporary holding box 3 and ensuring its smooth operation.

[0046] Example 3, based on Example 2, by Figure 10The dual-corner following humidification assembly 8 includes two rotary joints 801 fixed at the top corner of the inner liner 1 of the chamber, and a corrugated pipe 802 and a spray pipe 803 respectively installed at the upper and lower ends of the rotary joints 801. One end of the corrugated pipe 802 is connected to the arc-shaped temporary storage box 3. The corrugated pipe 802 sends the steam in the arc-shaped temporary storage box 3 into the spray pipe 803 through the rotary joints 801. The spray pipe 803 performs humidification treatment at the door gap. The rotary joints 801 allow the spray pipe 803 to rotate around its own axis and ensure normal steam flow.

[0047] The dual-angle following humidification assembly 8 also includes a secondary gear shaft 807 rotatably installed on one side of the top of the inner chamber 1 and a drive gear 808 fixed at the lower end of the primary gear shaft 601. The drive gear 808 and the secondary gear shaft 807 mesh with each other, and a belt drive structure is installed between the secondary gear shaft 807 and the upper ends of the two nozzles 803.

[0048] The belt drive structure includes a synchronous pulley 804, a drive belt 805, and a tension pulley 806. The synchronous pulley 804 is installed at the lower end of the secondary gear shaft 807 and the upper end of the nozzle 803. The tension pulley 806 is rotatably installed on one side of the top of the inner liner 1 of the chamber. The drive belt 805 is installed between the three synchronous pulleys 804 and the tension pulley 806. The tension pulley 806 ensures that the drive belt 805 is in a taut state, ensuring the stability of the power transmission.

[0049] Since the first-stage gear shaft 601 receives a certain frequency of forward and reverse rotational power input, the lower end of the first-stage gear shaft 601 will also output forward and reverse reciprocating rotational power to the second-stage gear shaft 807 through the driving gear 808. At this time, the second-stage gear shaft 807 uses the synchronous pulley 804 and the transmission belt 805 to drive the two nozzles 803 at the door gap to rotate forward and reverse together, realizing the dynamic change of the steam injection point and compensating for the insufficient humidity in this area.

[0050] In this embodiment, the user first sets the desired humidity and temperature parameters on the temperature and humidity control panel 9, and then sends commands to each execution terminal. At this time, the pumping unit 7 compresses the wet steam generated by the external boiler and delivers it to the arc-shaped temporary storage box 3 located at the top of the inner liner 1 of the chamber. The arc-shaped temporary storage box 3 serves as a steam collection and buffer point, ensuring that the steam can be stably and evenly distributed to the downstream humidification pipe assembly 5 and the double-sided angle-following humidification assembly 8. After the gear rotation assembly 6 is started, it generates a slow and continuous circumferential reciprocating oscillation force to drive the arc-shaped temporary storage box 3 and its connected humidification pipe assembly 5 to reciprocate at a specific angle on the sliding support structure 4 as a whole, so that the steam released from the humidification pipe assembly 5... Instead of being fixed in one direction, the steam sweeps three-dimensionally throughout the entire ceiling space, actively pushing the steam to every corner of the room. This breaks the vertical gradient caused by the natural rise of hot steam, resulting in an overly humid upper layer and a dry lower layer. At the same time, the power of the gear cranking assembly 6 is also transmitted to the double-sided corner following humidification assembly 8. The double-sided corner following humidification assembly 8 ensures that the humidity in the door gap area, where there is more air circulation and steam is easily lost, is not lower than that in other parts of the room, eliminating the humidity dead zones that exist in traditional steam rooms. Throughout the humidification process, the water bath heating assembly 11 continuously and stably outputs heat energy based on the real-time signal fed back by the temperature and humidity control panel 9, providing a heat source for the manufacturing room and maintaining a stable rise in the basic temperature inside the room.

[0051] It should be noted that in this paper, relational terms such as first and second are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any such actual relationship or order between these entities or operations.

[0052] Moreover, the terms “comprising,” “including,” or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or apparatus that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such process, method, article, or apparatus.

[0053] 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. A humidity conditioning device, characterized by: The utility model provides a kind of humidification device, including room body inner pot (1), top plate (2) being arranged at the top end of room body inner pot (1), arc temporary tank (3) being installed in the circumferential track sliding in the top end of room body inner pot (1) and the sliding support structure (4) being arranged at the bottom end of top plate (2) and guiding arc temporary tank (3) to carry out circumferential sliding, the bottom end of arc temporary tank (3) is equipped with humidification pipe group (5), the bottom end of room body inner pot (1) is equipped with for sending steam to arc temporary tank (3) pumping unit (7), one side of the top end of room body inner pot (1) is equipped with for driving arc temporary tank (3) to carry out reciprocating circumferential sliding and change humidification pipe group (5) steam spray point gear swing assembly (6), double-edge angle follow-up type humidification assembly (8) is installed at two edge angle positions in the inside of the side of room body inner pot (1) away from humidification pipe group (5), water bath heating assembly (11) is installed on the left and right inner walls of room body inner pot (1), and the inside wall on one side of room body inner pot (1) is equipped with and the input end electric connection of pumping unit (7), gear swing assembly (6), water bath heating assembly (11) temperature and humidity control panel (9); The gear swing assembly (6) includes a primary gear shaft (601) rotatably installed on one side of the top end of the room body inner pot (1), an external gear ring (602) fixed on the back wall of the arc temporary tank (3), and a stepping motor (603) installed on one side of the top of the room body inner pot (1). The output shaft of the stepping motor (603) penetrates upward to the outside of the room body inner pot (1) and is fixed with an L-shaped support arm (604). One end of the surface of the primary gear shaft (601) is fixed with a hole rocking arm (606). The upper surface of the hole rocking arm (606) is hingedly installed with a connecting rod (605). One end of the connecting rod (605) is connected to one end of the L-shaped support arm (604). The primary gear shaft (601) and the external gear ring (602) are engaged with each other. The double-edge angle follow-up type humidification assembly (8) includes two rotary joints (801) fixed at the edge angle positions of the top end of the room body inner pot (1), and a corrugated pipe two (802) and a spray pipe (803) installed on the upper end and the lower end of the rotary joint (801) respectively. One end of the corrugated pipe two (802) is connected to the arc temporary tank (3). The double-edge angle follow-up type humidification assembly (8) further includes a secondary gear shaft (807) rotatably installed on one side of the top of the room body inner pot (1) and a driving gear (808) fixed on the lower end of the primary gear shaft (601). The driving gear (808) and the secondary gear shaft (807) are engaged. A belt transmission structure is installed between the secondary gear shaft (807) and the upper ends of the two spray pipes (803).

2. A humidity conditioning device according to claim 1, wherein: The pumping unit (7) includes a piston compressor (701) installed at the bottom end of the room body inner pot (1), a conduit (702) vertically upwardly installed at the outlet end of the pressure tank of the piston compressor (701), and a corrugated pipe one (703) installed at the upper end of the conduit (702). One end of the corrugated pipe one (703) is connected to the air inlet on the back of the arc temporary tank (3).

3. A humidity conditioning device according to claim 1, wherein: The humidification pipe group (5) comprises total switch valves (501) installed on the left and right sides of the bottom end of the arc-shaped temporary holding tank (3), a U-shaped outer pipe (502) installed between the outlet ends of the two total switch valves (501), and a plurality of vertical and side-by-side arranged vertical pipes I (504) inside the U-shaped outer pipe (502), the lower end of the vertical pipe I (504) is provided with an adjusting valve (503), the bottom end of the adjusting valve (503) is connected with the U-shaped outer pipe (502), a plurality of spray heads (505) are installed on the outer wall of the side of the vertical pipe I (504) close to the opening of the house body inner container (1) at equal intervals in the vertical direction, and the top end of the house body inner container (1) is provided with an arc-shaped sliding groove (101) for the circumferential movement of the total switch valve (501).

4. A humidity conditioning device according to claim 1, wherein: The sliding support structure (4) comprises a plurality of support wheels (402) arranged at equal intervals on the outer side of the arc-shaped temporary holding tank (3) in a ring shape, and a supporting edge (404) integrally formed on the back wall of the arc-shaped temporary holding tank (3), the supporting edge (404) and the plurality of support wheels (402) are in sliding contact, and the support wheel (402) is rotatably installed at the bottom end of the top plate (2).

5. A humidity conditioning device according to claim 4, wherein: The sliding support structure (4) further comprises an arc-shaped dovetail sliding block (403) fixed at the top end of the arc-shaped temporary holding tank (3) and a ring-shaped guide rail (401) fixed at the bottom end of the top plate (2), and the ring-shaped guide rail (401) and the arc-shaped dovetail sliding block (403) are in sliding fit.

6. A humidity conditioning device according to claim 5, wherein: The belt transmission structure comprises synchronous wheels (804), a transmission belt (805) and a tensioning wheel (806), the synchronous wheel (804) is installed at the lower end of the secondary gear shaft (807) and the upper end of the spray pipe (803), the tensioning wheel (806) is rotatably installed on one side of the top of the house body inner container (1), and the transmission belt (805) is installed between the three synchronous wheels (804) and the tensioning wheel (806).

7. A plateau intelligent wet steam room, comprising the humidity adjusting device as claimed in any one of claims 1-6, characterized in that: The outer side of the house body inner container (1) is provided with a wet steam cabin (10), the top plate (2) is fixed on the top of the wet steam cabin (10), a lower cabin (1001) for arranging the pumping unit (7) is arranged between the bottom end of the house body inner container (1) and the bottom of the wet steam cabin (10), a cavity (1002) is arranged between the outer wall of the house body inner container (1) and the inner wall of the wet steam cabin (10), and a rectangular recess (102) is formed in the left and right inner walls of the house body inner container (1).

8. The intelligent wet steam house at high altitude as claimed in claim 7 wherein: The water bath heating assembly (11) comprises a plate-shaped hollow water tank (1101) installed in the rectangular recess (102), an electric heating rod (1102) installed in the plate-shaped hollow water tank (1101), and a liquid inlet and outlet valve (1103) installed on the lower position of the outer wall of one side of the plate-shaped hollow water tank (1101), the liquid inlet and outlet valve (1103) is located on the outer side of the wet steam cabin (10), and the input end of the electric heating rod (1102) is electrically connected with the output end of the temperature and humidity control panel (9).

Citation Information

Patent Citations

  • Sauna room

    CN111764693A

  • Wet sauna room

    CN117860558A