Multi-stage rotating wheel dehumidification device and air treatment system

The design of a multi-stage rotary dehumidifier solves the problem of insufficient adjustment capacity of the rotary dehumidifier in the face of seasonal changes and fluctuations in user humidity demand, achieving efficient, flexible and energy-saving air treatment. It is suitable for a variety of places and has intelligent control and environmental protection characteristics.

CN223331862UActive Publication Date: 2025-09-12TSINGHUA UNIVERSITY +1
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Patent Information

Application Number
CN202422636240.2
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-10-30
Publication Date
2025-09-12
Estimated Expiration
2034-10-30

AI Technical Summary

Technical Problem

Existing rotary dehumidification devices and systems have insufficient adjustment capabilities when facing seasonal changes and fluctuations in user humidity demands, resulting in low operating efficiency.

Method used

A multi-stage rotary dehumidification device is designed. By setting at least three coaxial rotary wheels, a regeneration air valve, a regeneration air switching assembly, a regeneration air bypass valve and a working air bypass valve, flexible air path switching and precise control are achieved. Heat exchange is combined with a heat exchanger to optimize air treatment.

Benefits of technology

It improves dehumidification efficiency and energy efficiency, reduces energy consumption, adapts to different climate and humidity requirements, provides stable and efficient air treatment, reduces operating costs, and has intelligent control and environmental protection.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The utility model relates to the field of air treatment, and provides a multi-stage rotating wheel dehumidification device and an air treatment system. The multi-stage rotating wheel dehumidification device comprises at least three rotating wheels, an interval is formed between every two adjacent rotating wheels, the axes of the at least three rotating wheels are coaxially arranged, the interval located on the first side of the axis forms a working air channel, and the interval located on the second side of the axis forms a regeneration air channel. The first side of the axis and the second side of the axis are oppositely arranged; the heat exchanger is arranged in the working air channel; the regeneration air valve is arranged in the regeneration air channel between at least one pair of adjacent rotating wheels and is used for switching connection and disconnection between the regeneration air channel and the rotating wheels; and the regeneration air switching assembly communicates with the regeneration air channel fluid so as to switch outdoor fresh air and / or working air to serve as regeneration air. According to the multi-stage rotating wheel dehumidification device, the system structure can be adjusted according to the outdoor air state, the indoor wet load and the low-humidity requirement of a user, and the humidity adjusting range is expanded.
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Description

Technical Field

[0001] The utility model relates to the field of air treatment and provides a multi-stage rotary dehumidification device and an air treatment system. Background Art

[0002] After selecting existing rotary dehumidification devices and systems, seasonal fluctuations in outdoor air conditions cause the regeneration air inlet to fluctuate accordingly. Simultaneously, the user's indoor humidity load fluctuates due to various factors, and even the user's low humidity requirements may change. While the device and system's built-in automatic control system can adjust to these changes to a certain extent, its adjustment capabilities are limited due to the fixed overall architecture of the device and system. This ultimately makes it difficult for the existing device and system to operate efficiently throughout the year. Utility Model Content

[0003] The embodiment of the present utility model provides a multi-stage rotary dehumidification device to solve the defect of low adjustment capability in the related art.

[0004] An embodiment of the present utility model also provides an air treatment system.

[0005] The first embodiment of the present invention provides a multi-stage rotary dehumidification device, comprising:

[0006] At least three rotors, a gap is formed between two adjacent rotors, the axes of the at least three rotors are coaxially arranged, the gap located on a first side of the axis forms a working air channel, the gap located on a second side of the axis forms a regeneration air channel, and the first side of the axis and the second side of the axis are arranged opposite to each other;

[0007] a heat exchanger, disposed in the working air channel;

[0008] a regeneration air valve, provided in the regeneration air channel between at least one pair of adjacent two of the rotors, for switching the regeneration air channel and the rotor on and off;

[0009] The regeneration air switching component is in fluid communication with the regeneration air channel to switch outdoor fresh air and / or working air as the regeneration air.

[0010] According to one embodiment of the present invention, a regeneration air bypass valve is further included, and the regeneration air bypass valve is used to control the fluid connection and disconnection between the regeneration air and the runner.

[0011] According to one embodiment of the present invention, the regeneration air bypass valve is provided in the regeneration air channel.

[0012] According to one embodiment of the present invention, it also includes a regeneration air bypass channel, the regeneration air bypass channel is arranged in the regeneration air channel, the regeneration air bypass valve is arranged between the regeneration air channel and the regeneration air bypass channel, and the regeneration air bypass valve is used to control the fluid flow between the regeneration air channel and the regeneration air bypass channel.

[0013] According to one embodiment of the present invention, a working air bypass valve is further included, and the working air bypass valve is used to control the fluid connection and disconnection between the working air and the runner and the heat exchanger.

[0014] According to one embodiment of the present invention, the working air bypass valve is arranged in the working air channel.

[0015] According to one embodiment of the present invention, it also includes a working air bypass channel, which is arranged in the working air channel, and the working air bypass valve is arranged between the working air channel and the working air bypass channel, and the working air bypass valve is used to control the fluid flow between the working air channel and the working air bypass channel.

[0016] According to one embodiment of the present invention, it also includes a regeneration air bypass valve and a working air bypass valve, the regeneration air bypass valve is used to control the fluid connection and disconnection between the regeneration air and the wheel, and the working air bypass valve is used to control the fluid connection and disconnection between the working air and the wheel.

[0017] According to one embodiment of the present invention, the heat exchanger is fitted with at least one of the rotating wheels.

[0018] According to one embodiment of the present invention, the outdoor fresh air is heated and / or cooled and / or filtered before entering the regeneration air channel.

[0019] A second embodiment of the present invention provides an air treatment system, comprising the above-mentioned multi-stage rotary dehumidification device.

[0020] According to the first aspect of the present invention, a multi-stage rotor dehumidification device is provided, with at least three rotors arranged coaxially, forming an effective multi-stage dehumidification structure. Each rotor stage can dehumidify the air to a certain degree, thereby improving overall dehumidification efficiency. The regeneration air valve allows the regeneration air channel to be switched on and off as needed. This helps determine whether one regeneration air channel serves multiple rotors based on actual needs, thereby improving the energy efficiency of the dehumidification process. The regeneration air switching assembly can switch between outdoor fresh air and / or working air as regeneration air, providing greater flexibility for users. When outdoor air humidity is low, outdoor fresh air can be used for regeneration to reduce energy consumption; when outdoor air humidity is high, working air can be used for regeneration to ensure dehumidification effectiveness. The regeneration air bypass valve allows the flow of regeneration air between the rotors to be controlled as needed. This helps, when one regeneration air channel serves multiple rotors, allow the regeneration air to be directed to bypass the unused rotors, reducing wind resistance and improving the energy efficiency of the dehumidification process. The provision of a working air bypass valve allows for controlled flow between the working air, the rotor, and the heat exchanger when needed. This helps control the working air's flow around unused rotors, reducing wind resistance and improving the energy efficiency of the dehumidification process. The heat exchanger facilitates heat exchange within the working air duct. The heat exchanger can be fitted to at least one rotor, further regulating the air's temperature and humidity, improving the controllability of the dehumidification process. Outdoor fresh air can be heated and / or cooled and / or filtered before entering the regeneration air duct. By arranging the axes of at least three rotors coaxially and creating gaps between adjacent rotors to form working and regeneration air ducts, the device of the present invention achieves a more compact structure and efficient use of space. This compact structure not only reduces floor space but also facilitates installation and maintenance. The multi-stage rotor dehumidification device of the present invention features a rational structural design, with tight and reliable connections between its components, ensuring stable operation. Furthermore, precise control of the regeneration air valve and regeneration air switching assembly allows for precise regulation of the dehumidification process, further improving device reliability.

[0021] According to the second aspect of the present invention, an air treatment system, using a multi-stage rotary dehumidifier, can efficiently remove moisture from the air while maintaining air circulation. This helps create a dry, comfortable, and healthy indoor environment, and is particularly suitable for locations that are sensitive to humidity or require strict humidity control, such as data centers, hospitals, and laboratories. The design of the multi-stage rotary dehumidifier enables the system to adjust the dehumidification process according to actual needs, thereby maximizing energy utilization. By precisely controlling the regeneration air valve, regeneration air switching assembly, regeneration air bypass valve, and working air bypass valve, the system can minimize energy consumption and operating costs while ensuring dehumidification effectiveness. The multi-stage rotary dehumidifier in the system is highly flexible and can automatically adjust its operating mode based on factors such as different climate conditions, indoor humidity requirements, and outdoor air quality. This makes the system widely applicable to various climates and geographical conditions, as well as different building types and uses. Integrating modern intelligent control technologies such as the Internet of Things, big data analysis, and artificial intelligence algorithms, the air treatment system can implement functions such as remote monitoring, automatic adjustment, and fault warning. This not only improves system efficiency, but also reduces maintenance costs and provides users with a more convenient and intelligent user experience. Through efficient dehumidification and intelligent control, the system helps reduce energy consumption and greenhouse gas emissions, thereby positively impacting the environment. Furthermore, the design of the multi-stage rotary dehumidifier takes into account material recyclability and environmental friendliness, in line with the concept of sustainable development. BRIEF DESCRIPTION OF THE DRAWINGS

[0022] In order to more clearly illustrate the technical solutions in the present invention or the prior art, a brief introduction will be given below to the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.

[0023] Figure 1 This is a schematic diagram of the first rotary dehumidification device provided by an embodiment of the present utility model.

[0024] Figures 2 to 23 This is a schematic diagram of operating states 1 to 22 of the first rotary dehumidification device provided by an embodiment of the present invention.

[0025] Figure 24 This is a schematic diagram of the second rotary dehumidification device provided in an embodiment of the present utility model.

[0026] Figures 25 to 26 This is a schematic diagram of operating states 1 to 2 of the second rotary dehumidification device provided by an embodiment of the present invention.

[0027] Figure 27This is a schematic diagram of a third rotary dehumidification device provided in an embodiment of the present utility model.

[0028] Figures 28 to 34 This is a schematic diagram of operating states 1 to 7 of the second rotary dehumidification device provided by an embodiment of the present invention.

[0029] Figure 35 This is a schematic diagram of the fourth rotary dehumidification device provided by an embodiment of the present utility model.

[0030] Reference numerals:

[0031] 100. Rotor; 102. Heat exchanger; 104. Regeneration air valve; 106. Regeneration air switching assembly; 108. Regeneration air bypass valve; 110. Working air bypass valve. DETAILED DESCRIPTION

[0032] The following embodiments of the present invention are described in further detail with reference to the accompanying drawings and examples. The following examples are used to illustrate the present invention, but are not intended to limit the scope of the present invention.

[0033] like Figures 1 to 23 As shown, the first embodiment of the present invention provides a first multi-stage rotary dehumidification device, comprising:

[0034] At least three rotors 100 are provided, with a gap formed between two adjacent rotors 100. The axes of the at least three rotors 100 are coaxially arranged, the gap located on a first side of the axis forms a working air channel, and the gap located on a second side of the axis forms a regeneration air channel. The first side of the axis and the second side of the axis are arranged opposite to each other.

[0035] The heat exchanger 102 is provided in the working air channel;

[0036] The regeneration air valve 104 is provided in the regeneration air channel between at least one pair of adjacent rotors 100 and is used to switch the regeneration air channel and the rotor 100 on and off;

[0037] The regeneration air switching component 106 is in fluid communication with the regeneration air channel to switch outdoor fresh air and / or working air as the regeneration air.

[0038] According to the multi-stage rotor dehumidification device provided by the embodiment of the first aspect of the present invention, an effective multi-stage dehumidification structure is formed by setting at least three rotors 100 and setting their axes coaxially. Each stage of the rotor 100 can dehumidify the air to a certain extent, thereby improving the overall dehumidification efficiency. The setting of the regeneration air valve 104 allows the on-off switching of the regeneration air channel when needed, which helps to confirm whether one regeneration air channel serves multiple rotors 100 according to actual needs, so as to improve the energy efficiency of the dehumidification process. The regeneration air switching component 106 can switch outdoor fresh air and / or working air as regeneration air, which provides users with greater flexibility. When the outdoor air humidity is low, you can choose to use outdoor fresh air for regeneration to reduce energy consumption; when the outdoor air humidity is high, you can choose to use working air for regeneration to ensure the dehumidification effect. The setting of the regeneration air bypass valve 108 allows the fluid flow between the regeneration air and the rotor 100 to be controlled when needed. This helps when one regeneration air channel serves multiple rotors 100, so that the regeneration air can be controlled to bypass the rotors 100 that do not need to work, reducing wind resistance and improving the energy efficiency of the dehumidification process. The setting of the working air bypass valve 110 allows the fluid flow between the working air and the rotor 100 and the heat exchanger 102 to be controlled when needed. This helps control the working air to bypass the rotors 100 that do not need to work, reducing wind resistance and improving the energy efficiency of the dehumidification process. The setting of the heat exchanger 102 helps to exchange heat with the air in the working air channel. The heat exchanger 102 can be attached to at least one rotor 100 to further adjust the temperature and humidity of the air, thereby improving the controllability of the dehumidification process. The outdoor fresh air can be heated and / or cooled and / or filtered before entering the regeneration air channel. By arranging the axes of at least three rotors 100 coaxially and forming intervals between adjacent rotors 100 to form a working air channel and a regeneration air channel, the device of the present invention is more compact in structure and effectively utilizes space. This compact structure not only reduces the floor space, but also facilitates the installation and maintenance of the equipment. The multi-stage rotor dehumidification device of the present invention is rationally designed in structure, and the connections between the various components are tight and reliable, ensuring the stable operation of the equipment. At the same time, by precisely controlling the switching of the regeneration air valve 104 and the regeneration air switching assembly 106, precise regulation of the dehumidification process can be achieved, further improving the reliability of the equipment.

[0039] It is understandable that Figures 1 to 23 It shows different operating states of the first rotary dehumidification device provided by the embodiment of the present invention. For example, the regeneration air switching component 106 can switch different regeneration air sources. When the regeneration air valves 104 at different positions are in different working states, they can correspond to different operating states of the first rotary dehumidification device provided by the embodiment of the present invention.

[0040] Please continue to see Figures 24 to 26The first embodiment of the present invention provides a second multi-stage rotary dehumidification device, and the specific technical solution is as follows:

[0041] The multi-stage rotary dehumidification device further includes a regeneration air bypass valve 108 .

[0042] Setting of regeneration air bypass valve 108:

[0043] The regeneration air bypass valve 108 is provided in the regeneration air passage.

[0044] The design of the valve allows for controlling the fluid flow between the regeneration air and the rotor 100 when necessary. This helps when one regeneration air path serves multiple rotors 100, by controlling the regeneration air to bypass the rotors 100 that do not need to work, thereby reducing wind resistance and improving the energy efficiency of the dehumidification process.

[0045] Control of regeneration air bypass valve 108:

[0046] The regeneration air bypass valve 108 can be remotely or locally controlled by a control system.

[0047] According to actual operating requirements, such as the dehumidification efficiency of the wheel 100, the air volume of the regeneration air, outdoor climate conditions, etc., the control system can send a signal to the regeneration air bypass valve 108 to open or close the bypass channel.

[0048] According to one embodiment of the present invention, it also includes a regeneration air bypass channel, which is arranged in the regeneration air channel. The regeneration air bypass valve 108 is arranged between the regeneration air channel and the regeneration air bypass channel. The regeneration air bypass valve 108 is used to control the fluid flow between the regeneration air channel and the regeneration air bypass channel.

[0049] According to a specific embodiment of the present invention, a regeneration air bypass channel and a corresponding regeneration air bypass valve 108 are further provided in the multi-stage rotary dehumidification device on the original basis.

[0050] Setting of regeneration air bypass channel:

[0051] The regeneration air bypass channel is carefully designed and arranged in the regeneration air channel to form a bypass parallel to the main regeneration air path.

[0052] This bypass allows the regeneration air to bypass the rotor 100 and flow directly under certain conditions without going through the dehumidification process of the rotor 100.

[0053] Installation and function of regeneration air bypass valve 108:

[0054] The regeneration air bypass valve 108 is installed at the connection between the regeneration air channel and the regeneration air bypass channel to control the flow of fluid.

[0055] The valve is highly reliable and flexible and can be opened or closed quickly and accurately according to the instructions of the control system.

[0056] When the control system sends an open signal, the regeneration air bypass valve 108 will open, allowing the regeneration air to flow through the bypass channel; when the control system sends a close signal, the regeneration air bypass valve 108 will close, and the regeneration air will pass through the wheel 100 normally for dehumidification treatment.

[0057] Integration of control systems:

[0058] The regeneration air bypass valve 108 is tightly integrated with the control system of the multi-stage rotary dehumidification device, ensuring precise control according to actual needs and environmental conditions.

[0059] The control system can intelligently decide when to open or close the regeneration air bypass valve 108 based on factors such as the dehumidification efficiency of the wheel 100, the air volume of the regeneration air, outdoor climate conditions, and the dehumidification target set by the user.

[0060] The addition of the regeneration air bypass channel and the regeneration air bypass valve 108 enables the multi-stage rotary dehumidification device to flexibly adjust the processing method of the regeneration air according to actual needs and environmental conditions.

[0061] In summary, by adding the regeneration air bypass channel and regeneration air bypass valve 108, the multi-stage rotary dehumidifier of this utility model has significantly improved its flexibility, dehumidification effect, energy conservation and consumption reduction, equipment lifespan, and user experience. This innovative design enables the system to better adapt to different operating conditions and needs, providing users with a more efficient, reliable, and economical dehumidification solution.

[0062] It is understandable that Figures 24 to 26 It shows different operating states of the second rotary dehumidifier provided by the embodiment of the present invention. For example, the regeneration air switching component 106 can switch different regeneration air sources. When the regeneration air bypass valve 108 at different positions is in different working states, it can correspond to different operating states of the second rotary dehumidifier provided by the embodiment of the present invention.

[0063] Please continue to see Figures 27 to 34 The first embodiment of the present invention provides a third multi-stage rotary dehumidification device, and the specific technical solution is as follows:

[0064] According to a specific embodiment of the present invention, a working air bypass valve 110 is further provided in the multi-stage rotary dehumidification device on the original basis.

[0065] Installation and function of working air bypass valve 110:

[0066] The working air bypass valve 110 is cleverly installed in the working air channel of the multi-stage rotor dehumidification device, and is located on the path before the working air enters the rotor 100 and the heat exchanger 102 .

[0067] The valve's primary function is to control the flow of working air between the rotor 100 and the heat exchanger 102. When the valve is open, the working air can bypass the rotor 100 and heat exchanger 102 and flow directly. When the valve is closed, the working air passes through the rotor 100 for dehumidification and heat exchange through the heat exchanger 102.

[0068] Control of working air bypass valve 110:

[0069] The working air bypass valve 110 is tightly integrated with the control system of the multi-stage rotary dehumidification device and can be switched on and off by remote or local control.

[0070] The control system can intelligently decide when to open or close the working air bypass valve 110 based on actual operating requirements, such as the humidity and temperature of the working air and the status of the wheel 100 and the heat exchanger 102.

[0071] Overall coordination of the system:

[0072] The addition of the working air bypass valve 110 does not destroy the overall coordination of the multi-stage rotary dehumidification device. On the contrary, it enables the system to more flexibly adjust the processing mode of the working air according to actual needs.

[0073] When the humidity of the working air is low or the rotor 100 and the heat exchanger 102 are in a saturated state, opening the working air bypass valve 110 can avoid unnecessary energy consumption and wear while maintaining stable operation of the system.

[0074] The addition of the working air bypass valve 110 enables the multi-stage rotary dehumidifier to flexibly adjust the working air processing method according to actual needs and environmental conditions. By properly controlling the opening and closing of the working air bypass valve 110, unnecessary energy consumption can be reduced.

[0075] According to one embodiment of the present invention, the working air bypass valve 110 is disposed in the working air channel.

[0076] According to a specific embodiment of the present invention, the multi-stage rotary dehumidification device is further optimized, in particular, a working air bypass valve 110 is added to the working air channel.

[0077] Installation position of working air bypass valve 110:

[0078] The working air bypass valve 110 is precisely installed in the working air channel of the multi-stage rotor dehumidification device, and is located on the path before the working air enters the rotor 100 .

[0079] The position design of the valve ensures that when necessary, the working air can be quickly and effectively bypassed around the runner 100 and the heat exchanger 102 without undergoing dehumidification and heat exchange processing.

[0080] Structure and function of working air bypass valve 110:

[0081] The working air bypass valve 110 is made of high-quality materials and advanced manufacturing technology to ensure its stability and reliability in long-term operation.

[0082] The valve has two states, open and closed, and can be controlled remotely or locally through the control system.

[0083] When the control system sends an open signal, the working air bypass valve 110 will open, allowing the working air to flow directly through the bypass channel; when the control system sends a close signal, the working air bypass valve 110 will close, and the working air will pass through the wheel 100 normally for dehumidification and undergo heat exchange through the heat exchanger 102.

[0084] Integration of control systems:

[0085] The working air bypass valve 110 is tightly integrated with the control system of the multi-stage rotary dehumidification device, ensuring precise control according to actual needs and environmental conditions.

[0086] The control system can intelligently decide when to open or close the working air bypass valve 110 based on factors such as the humidity and temperature of the working air, the dehumidification efficiency of the wheel 100, the heat exchange efficiency of the heat exchanger 102, and the dehumidification target set by the user.

[0087] According to one embodiment of the present invention, it also includes a working air bypass channel, which is arranged in the working air channel. The working air bypass valve 110 is arranged between the working air channel and the working air bypass channel. The working air bypass valve 110 is used to control the fluid flow between the working air channel and the working air bypass channel.

[0088] According to a specific embodiment of the present invention, the multi-stage rotary dehumidification device is further optimized on the original basis, and a working air bypass channel and a corresponding working air bypass valve 110 are added.

[0089] Setting of working air bypass channel:

[0090] The working air bypass channel is carefully designed and arranged in the working air channel of the multi-stage rotary dehumidification device, forming a bypass parallel to the main working air path.

[0091] This bypass allows the working air to bypass the rotor 100 and the heat exchanger 102 and flow directly under certain conditions without going through the dehumidification and heat exchange processes.

[0092] Installation and function of working air bypass valve 110:

[0093] The working air bypass valve 110 is installed at the connection between the working air channel and the working air bypass channel to control the flow of fluid.

[0094] The valve is highly reliable and flexible and can be opened or closed quickly and accurately according to the instructions of the control system.

[0095] When the control system sends an open signal, the working air bypass valve 110 will open, allowing the working air to flow through the bypass channel; when the control system sends a close signal, the working air bypass valve 110 will close, and the working air will normally pass through the wheel 100 for dehumidification and undergo heat exchange through the heat exchanger 102.

[0096] Integration of control systems:

[0097] The working air bypass valve 110 is tightly integrated with the control system of the multi-stage rotary dehumidification device, ensuring precise control according to actual needs and environmental conditions.

[0098] The control system can intelligently decide when to open or close the working air bypass valve 110 based on factors such as the humidity and temperature of the working air, the dehumidification efficiency of the wheel 100, the heat exchange efficiency of the heat exchanger 102, outdoor climate conditions, and the dehumidification target set by the user.

[0099] Overall coordination of the system:

[0100] The addition of the working air bypass channel and the working air bypass valve 110 does not destroy the overall coordination of the multi-stage rotary dehumidification device. On the contrary, they enable the system to more flexibly adjust the working air processing method according to actual needs.

[0101] When the working air humidity is low, the wheel 100 and the heat exchanger 102 are in a saturated state, or the outdoor climate conditions are suitable, opening the working air bypass valve 110 can avoid unnecessary dehumidification and heat exchange processing while maintaining stable operation of the system.

[0102] The addition of the working air bypass channel and working air bypass valve 110 allows the multi-stage rotary dehumidifier to flexibly adjust its working air processing method based on actual needs and environmental conditions. By properly controlling the opening and closing of the working air bypass valve 110, unnecessary dehumidification and heat exchange processes can be reduced, thereby reducing system energy consumption. This helps reduce operating costs and improve the economic benefits of the system.

[0103] It is understandable that Figures 27 to 34It shows different operating states of the third rotary dehumidifier provided by the embodiment of the present invention. For example, when the working air bypass valve 110 at different positions is in different working states, it can correspond to different operating states of the third rotary dehumidifier provided by the embodiment of the present invention.

[0104] Please continue to see Figure 35 The first embodiment of the present invention provides a fourth multi-stage rotary dehumidification device, and the specific technical solution is as follows:

[0105] According to a specific embodiment of the present invention, the multi-stage rotor dehumidification device has been further optimized based on the existing system by adding a regeneration air bypass valve 108 and a working air bypass valve 110. These two valves are used to control the flow of regeneration air and working air to the rotor 100, respectively, thereby improving the flexibility and operating efficiency of the system.

[0106] The setting and function of the regeneration air bypass valve 108:

[0107] The regeneration air bypass valve 108 is installed at the connection between the regeneration air channel and the rotor 100 to control whether the regeneration air flows through the rotor 100 for regeneration processing.

[0108] When the control system sends an open signal, the regeneration wind bypass valve 108 will open, allowing the regeneration wind to flow directly around the runner 100; when the control system sends a close signal, the regeneration wind bypass valve 108 will close, and the regeneration wind will pass through the runner 100 normally for regeneration processing.

[0109] The addition of the regeneration air bypass valve 108 enables the system to flexibly adjust the processing method of the regeneration air according to the demand for regeneration air and the regeneration efficiency of the runner 100, thereby improving the regeneration efficiency and energy utilization efficiency.

[0110] Setting and function of working air bypass valve 110:

[0111] The working air bypass valve 110 is installed at the connection between the working air channel and the rotor 100 to control whether the working air flows through the rotor 100 for dehumidification.

[0112] When the control system sends an open signal, the working air bypass valve 110 will open, allowing the working air to flow directly around the wheel 100; when the control system sends a close signal, the working air bypass valve 110 will close, and the working air will pass through the wheel 100 normally for dehumidification.

[0113] The addition of the working air bypass valve 110 enables the system to flexibly adjust the working air processing method according to the working air demand and the dehumidification efficiency of the wheel 100, thereby improving the dehumidification efficiency and energy utilization efficiency.

[0114] Integration and intelligent control of control systems:

[0115] The regeneration air bypass valve 108 and the working air bypass valve 110 are tightly integrated with the control system of the multi-stage rotary dehumidification device, ensuring that they can be precisely controlled according to actual needs and environmental conditions.

[0116] The control system can intelligently decide when to open or close the two valves based on factors such as the humidity and temperature of the regeneration air and working air, the regeneration and dehumidification efficiency of the wheel 100, outdoor climate conditions, and the dehumidification and regeneration targets set by the user.

[0117] The addition of the regeneration air bypass valve 108 and the working air bypass valve 110 enables the multi-stage rotary dehumidifier to flexibly adjust the processing of regeneration air and working air according to actual needs and environmental conditions. This helps the system better adapt to different operating scenarios and requirements, improving overall dehumidification and regeneration efficiency. By properly controlling the opening and closing of the regeneration air bypass valve 108 and the working air bypass valve 110, unnecessary regeneration and dehumidification processing can be reduced, thereby reducing system energy consumption. This helps reduce operating costs and improve the economic benefits of the system.

[0118] In addition to the four multi-stage rotary dehumidification devices provided in the first embodiment of the present invention, the present invention further includes:

[0119] According to one embodiment of the present invention, the heat exchanger 102 is fitted to at least one rotating wheel 100 .

[0120] According to a specific embodiment of the present invention, an innovative heat exchange system is proposed, in which a heat exchanger 102 is closely fitted with at least one rotor 100. This design aims to improve heat exchange efficiency, optimize energy utilization, and reduce system complexity and space occupation.

[0121] Fitting design between heat exchanger 102 and rotor 100:

[0122] The heat exchanger 102 is designed to fit closely with at least one rotor 100 to form an integrated heat exchange unit.

[0123] The bonding method can be direct contact, that is, the heat exchange surface of the heat exchanger 102 is in direct contact with the surface of the wheel 100, or indirect contact, where heat transfer is achieved through a thin layer of heat conduction medium (such as thermal oil, thermal glue, etc.).

[0124] The fitted design ensures efficient heat transfer between the rotor 100 and the heat exchanger 102, reduces heat loss, and improves the overall heat exchange efficiency of the system.

[0125] According to an embodiment of the present invention, the outdoor fresh air undergoes air processing steps such as heating and / or cooling and / or filtering before entering the regeneration air channel, thereby further increasing the diversity of the regeneration air intake state.

[0126] A second embodiment of the present invention provides an air treatment system, comprising the above-mentioned multi-stage rotary dehumidification device.

[0127] According to the second aspect of the present invention, the air treatment system provided by the embodiment utilizes a multi-stage rotary dehumidifier, enabling efficient removal of moisture from the air while maintaining air circulation. This helps create a dry, comfortable, and healthy indoor environment, and is particularly suitable for locations sensitive to humidity or requiring strict humidity control, such as data centers, hospitals, and laboratories. The design of the multi-stage rotary dehumidifier enables the system to adjust the dehumidification process according to actual needs, thereby maximizing energy utilization. By precisely controlling the regeneration air valve 104, the regeneration air switching assembly 106, the regeneration air bypass valve 108, and the working air bypass valve 110, the system can minimize energy consumption and operating costs while ensuring dehumidification effectiveness. The multi-stage rotary dehumidifier in the system is highly flexible, automatically adjusting its operating mode based on factors such as climate conditions, indoor humidity requirements, and outdoor air quality. This makes the system widely applicable to various climates and geographical conditions, as well as different building types and uses. Incorporating modern intelligent control technologies, such as the Internet of Things, big data analysis, and artificial intelligence algorithms, the air treatment system can implement functions such as remote monitoring, automatic adjustment, and fault warning. This not only improves system efficiency, but also reduces maintenance costs and provides users with a more convenient and intelligent user experience. Through efficient dehumidification and intelligent control, the system helps reduce energy consumption and greenhouse gas emissions, thereby positively impacting the environment. Furthermore, the design of the multi-stage rotary dehumidifier takes into account material recyclability and environmental friendliness, in line with the concept of sustainable development.

[0128] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of the present invention, rather than to limit it. Although the present invention has been described in detail with reference to the aforementioned embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the aforementioned embodiments, or make equivalent replacements for some of the technical features therein. However, these modifications or replacements do not deviate the essence of the corresponding technical solutions from the spirit and scope of the technical solutions of the various embodiments of the present invention.

Claims

1. A multi-stage rotary dehumidification device, characterized in that: include: At least three rotors (100), a gap is formed between two adjacent rotors (100), the axes of the at least three rotors (100) are coaxially arranged, the gap located on a first side of the axis forms a working air channel, the gap located on a second side of the axis forms a regeneration air channel, and the first side of the axis and the second side of the axis are arranged opposite to each other; A heat exchanger (102) is provided in the working air channel; a regeneration air valve (104), arranged in the regeneration air channel between at least one pair of adjacent two rotors (100), and used for switching the regeneration air channel and the rotor (100) on and off; A regeneration air switching component (106) is in fluid communication with the regeneration air channel to switch outdoor fresh air and / or working air as regeneration air.

2. The multi-stage rotary dehumidification device according to claim 1, characterized in that: It also includes a regeneration air bypass valve (108), which is used to control the flow of regeneration air and the rotor (100).

3. The multi-stage rotary dehumidification device according to claim 2, characterized in that: The regeneration air bypass valve (108) is arranged in the regeneration air channel.

4. The multi-stage rotary dehumidification device according to claim 2, characterized in that: It also includes a regeneration air bypass channel, the regeneration air bypass channel is arranged in the regeneration air channel, the regeneration air bypass valve (108) is arranged between the regeneration air channel and the regeneration air bypass channel, and the regeneration air bypass valve (108) is used to control the fluid connection and disconnection between the regeneration air channel and the regeneration air bypass channel.

5. The multi-stage rotary dehumidification device according to claim 1, characterized in that: It also includes a working air bypass valve (110), which is used to control the flow of working air, the runner (100), and the heat exchanger (102).

6. The multi-stage rotary dehumidification device according to claim 5, characterized in that: The working air bypass valve (110) is arranged in the working air channel.

7. The multi-stage rotary dehumidification device according to claim 5, characterized in that: It also includes a working air bypass channel, the working air bypass channel is arranged in the working air channel, the working air bypass valve (110) is arranged between the working air channel and the working air bypass channel, and the working air bypass valve (110) is used to control the fluid connection and disconnection between the working air channel and the working air bypass channel.

8. The multi-stage rotary dehumidification device according to claim 1, characterized in that: It also includes a regeneration air bypass valve (108) and a working air bypass valve (110), wherein the regeneration air bypass valve (108) is used to control the fluid connection and disconnection between the regeneration air and the rotor (100), and the working air bypass valve (110) is used to control the fluid connection and disconnection between the working air and the rotor (100).

9. The multi-stage rotary dehumidification device according to any one of claims 1 to 8, characterized in that: The heat exchanger (102) is fitted with at least one of the rotating wheels (100).

10. The multi-stage rotary dehumidification device according to any one of claims 1 to 8, characterized in that: The outdoor fresh air is heated and / or cooled and / or filtered before entering the regeneration air channel.

11. An air treatment system, characterized in that: The invention comprises the multi-stage rotary dehumidification device according to any one of claims 1 to 10.