Fresh air conditioning system for micro hyperbaric oxygen chamber and control method

By integrating high-efficiency filters, purification modules, precision control systems, and intelligent control, the system solves the problems of insufficient air collection, incomplete purification, and inaccurate control in traditional micro hyperbaric oxygen chamber fresh air systems, achieving a highly efficient, energy-saving, and personalized oxygen therapy environment, and improving user comfort and safety.

CN120991387APending Publication Date: 2025-11-21HUNAN WUMI SUNSHINE INTELLIGENT TECHNOLOGY CO LTD
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Patent Information

Application Number
CN202511172722.X
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-21
Publication Date
2025-11-21

AI Technical Summary

Technical Problem

Traditional micro-hyperbaric oxygen chamber fresh air systems are not efficient enough in collecting fresh air, do not purify air thoroughly, and do not accurately control temperature, humidity and pressure. They also lack intelligent control, which affects the quality of the oxygen chamber environment and the effect of oxygen therapy for users, and has high energy consumption.

Method used

It employs a high-efficiency particulate filter, a harmful gas adsorption layer, a temperature and humidity control module, and an intelligent airflow adjustment device for fresh air collection and pretreatment. It combines a HEPA high-efficiency filter, an activated carbon adsorption layer, a photocatalytic sterilization layer, and a pulsed ultraviolet sterilization device for multi-stage air purification. It integrates high-precision temperature and humidity sensors and pressure sensors for precise control, and combines AI algorithms and big data analysis to achieve intelligent control. It provides user interaction and remote monitoring, and introduces an energy recovery and energy-saving optimization system.

Benefits of technology

It achieves efficient collection and deep purification of fresh air, ensuring a clean and stable environment inside the oxygen chamber, reducing energy consumption, providing personalized oxygen therapy services and convenient user operation, and improving the comfort and safety of the oxygen therapy process.

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Abstract

A fresh air conditioning system for a micro-hyperbaric oxygen chamber is provided with an efficient particulate filter, a harmful gas adsorption layer, a temperature and humidity adjusting module and an intelligent wind direction adjusting device, fresh air can be collected from the external environment, preliminary filtration, harmful gas adsorption and temperature and humidity adjustment are conducted on the fresh air, and the angle of an air inlet is intelligently adjusted according to the wind speed and the wind direction of the external environment; fresh air resources are utilized to the maximum extent, particles, harmful gas, bacteria and viruses in fresh air are deeply purified, it is ensured that air entering the oxygen cabin is clean and sterile, the temperature, humidity and pressure in the oxygen cabin are monitored in real time and automatically adjusted, it is ensured that the environment in the cabin is within the ideal range set by a user all the time, and meanwhile safety and stability of the micro-high-pressure environment are ensured. The fresh air collection and pretreatment unit serves as an inlet of the system, fresh air can be collected from the external environment, large-particle pollutants can be effectively removed through preliminary filtration, and meanwhile harmful gas in the fresh air can be adsorbed through the harmful gas adsorption layer.
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Description

Technical Field

[0001] This invention belongs to the field of hyperbaric oxygen chamber control technology, specifically a fresh air conditioning system and control method for a micro hyperbaric oxygen chamber. Background Technology

[0002] The micro-hyperbaric oxygen chamber originated in the 1960s. With the development of technology, the micro-hyperbaric oxygen chamber has gradually been used as a health care device in the home, where users enter the chamber for health care and treatment.

[0003] In existing technologies, traditional micro-hyperbaric oxygen chamber ventilation systems often suffer from problems such as inefficient fresh air collection, incomplete air purification, and imprecise temperature, humidity, and pressure control. These technical issues not only affect the quality of the environment inside the oxygen chamber but may also negatively impact the user's oxygen therapy effect. Furthermore, traditional systems lack intelligent control mechanisms and cannot adjust in real time according to user preferences and changes in the external environment, resulting in high energy consumption. Summary of the Invention

[0004] In order to overcome the shortcomings of the prior art, the present invention provides a fresh air conditioning system and control method for a micro hyperbaric oxygen chamber, so as to at least partially solve the above-mentioned technical problems.

[0005] The technical solution adopted in this invention is as follows: This invention proposes a fresh air conditioning system for a micro hyperbaric oxygen chamber, comprising: Fresh air collection and pretreatment unit: Equipped with a high-efficiency particulate filter, a harmful gas adsorption layer, a temperature and humidity control module and an intelligent air direction adjustment device, it can collect fresh air from the external environment, perform preliminary filtration, adsorb harmful gases, regulate temperature and humidity, and intelligently adjust the air inlet angle according to the external wind speed and direction to maximize the utilization of fresh air resources. Multi-stage air purification and sterilization module: includes HEPA high-efficiency filter, activated carbon adsorption layer, photocatalytic sterilization layer and pulsed ultraviolet sterilization device, deeply purifies particles, harmful gases, bacteria and viruses in fresh air, and ensures that the air entering the oxygen chamber is clean and sterile; Precision temperature, humidity and pressure control system: integrates high-precision temperature and humidity sensors, pressure sensors, intelligent regulating valves and intelligent temperature and humidity control modules, monitors and automatically adjusts the temperature, humidity and pressure inside the oxygen chamber in real time, ensuring that the environment inside the chamber is always within the ideal range set by the user, while ensuring the safety and stability of the micro-high pressure environment; Intelligent control system: It adopts AI algorithms and big data analysis technology to automatically optimize the operation strategy of the air conditioning system based on user preferences, external environment and actual conditions inside the oxygen chamber, so as to minimize energy consumption and maximize comfort; User interaction and remote monitoring platform: Provides an intuitive and easy-to-use touch screen interface, voice control function and mobile APP remote control function, supports user-customized settings, and has remote monitoring, fault diagnosis, health data analysis and personalized oxygen therapy suggestions. Energy recovery and energy-saving optimization system: Utilizing the principle of heat exchange, it preheats or precools the fresh air before it is introduced, reducing subsequent energy consumption. At the same time, it optimizes the operating parameters of the air conditioning system through intelligent algorithms to further reduce energy consumption.

[0006] In one embodiment of the present invention, the fresh air collection and pretreatment unit further includes: Intelligent wind speed sensing and adjustment device: Real-time monitoring of external wind speed, automatic adjustment of fresh air collection volume to ensure stable fresh air supply; Energy-saving fresh air preheating / precooling device: It adopts a high-efficiency heat exchanger to utilize the heat or cold energy during the exhaust process to preheat or precool the fresh air, thereby reducing energy consumption.

[0007] In one embodiment of the present invention, the pulsed ultraviolet sterilization device in the multi-stage air purification and sterilization module adopts intelligent timed start-up and shutdown technology, which reduces potential radiation damage to the human body while ensuring sterilization efficiency.

[0008] In one embodiment of the present invention, a fresh air conditioning system for a micro hyperbaric oxygen chamber, wherein the intelligent temperature and humidity control module of the precision temperature, humidity and pressure control system adopts frequency conversion regulation technology to achieve rapid response and stable control of temperature, as well as precise adjustment of humidity.

[0009] In one embodiment of the present invention, a fresh air conditioning system for a micro hyperbaric oxygen chamber is provided. In the intelligent control system, AI algorithms and big data analysis technology are also used to predict user behavior and health needs, adjust the air conditioning system operation strategy in advance, and provide personalized services.

[0010] In one embodiment of the present invention, the fresh air conditioning system for a micro hyperbaric oxygen chamber further includes, in the case of the user interaction and remote monitoring platform: Health data monitoring and analysis module: Based on user health data, it provides personalized oxygen therapy suggestions and air quality optimization solutions; Fault warning and emergency response system: Monitors the operating status of the air conditioning system in real time. When an abnormality is detected, it automatically issues a warning signal and initiates emergency response measures.

[0011] In one embodiment of the present invention, the fresh air conditioning system further includes an intelligent voice interaction system, which supports users to control various functions of the air conditioning system through voice commands, thereby improving the ease of operation.

[0012] In one embodiment of the present invention, the control method of the fresh air conditioning system includes the following steps: Step 1: Collect real-time data on the external environment and inside the oxygen chamber, including temperature, humidity, pressure, air quality, and wind speed; Step 2: The intelligent control system calculates and outputs the optimal control strategy based on the collected data, user-defined preferences, and user needs predicted by the AI ​​algorithm. Step 3: Implement control strategies to adjust the operating status of fresh air collection, air purification, temperature and humidity control, pressure stabilization, and various energy-saving optimization modules; Step 4: Monitor the system's operation in real time and make fine adjustments based on the feedback data to ensure that the oxygen chamber environment is always in the best condition. Step 5: Provide personalized services and health data analysis through user interaction and remote monitoring platforms.

[0013] In one embodiment of the present invention, the control method of the fresh air conditioning system for the micro hyperbaric oxygen chamber further includes: remote fault diagnosis and remote upgrade function: when the system detects an abnormality, it automatically uploads fault information to the service center, receives remote guidance or automatically downloads updated software, so as to realize the rapid resolution of faults and the continuous optimization of the system.

[0014] In one embodiment of the present invention, the control method for the fresh air conditioning system of the micro hyperbaric oxygen chamber further includes: intelligent learning and optimization function: by continuously collecting user behavior and preference data, as well as system operation data, continuously optimizing AI algorithms and control strategies to improve the intelligence level and operating efficiency of the system.

[0015] The beneficial effects of the technical solution of this invention are as follows: This invention uses a fresh air collection and pretreatment unit as the system's entry point. The integrated application of a high-efficiency particulate filter, a harmful gas adsorption layer, a temperature and humidity control module, and an intelligent airflow adjustment device enables the collection of fresh air from the external environment. The initial filtration effectively removes large particulate pollutants, while the harmful gas adsorption layer adsorbs harmful gases such as formaldehyde and benzene from the fresh air, ensuring the basic air quality entering the oxygen chamber. The temperature and humidity control module intelligently adjusts the temperature and humidity of the fresh air according to external environmental conditions, making it compatible with the internal environment of the oxygen chamber.

[0016] This invention utilizes a multi-stage air purification and sterilization module, which employs a HEPA high-efficiency filter, an activated carbon adsorption layer, a photocatalytic sterilization layer, and a pulsed ultraviolet sterilization device to deeply remove particles, harmful gases, bacteria, and viruses from fresh air, ensuring that the air entering the oxygen chamber is clean and sterile.

[0017] This invention integrates a high-precision temperature and humidity sensor, a pressure sensor, an intelligent regulating valve, and an intelligent temperature and humidity control module through a precision temperature, humidity, and pressure control system. It monitors and automatically adjusts the temperature, humidity, and pressure inside the oxygen chamber in real time to ensure that the environment inside the chamber is always within the ideal range set by the user.

[0018] This invention utilizes an intelligent control system, employing AI algorithms and big data analytics, to automatically optimize the air conditioning system's operating strategy based on user preferences, the external environment, and the actual conditions inside the oxygen chamber. This minimizes energy consumption and maximizes comfort, enabling the air conditioning system to intelligently adjust according to real-time environmental changes. This not only improves system efficiency but also reduces energy consumption, achieving a green and energy-efficient oxygen therapy process.

[0019] This invention provides users with an intuitive and easy-to-use interface and convenient control methods through a user interaction and remote monitoring platform. The touchscreen interface and voice control function allow users to easily set and adjust system parameters to meet personalized needs. The mobile APP remote control function allows users to monitor the environment inside the oxygen chamber anytime, anywhere, ensuring the safety and comfort of the oxygen therapy process.

[0020] Additional aspects and advantages of the invention will be set forth in part in the description which follows, and in part will be obvious from the description, or may be learned by practice of the invention. Attached Figure Description

[0021] The above and / or additional aspects and advantages of the present invention will become apparent and readily understood from the following description of the embodiments taken in conjunction with the accompanying drawings, wherein: Figure 1 This is a schematic diagram of the fresh air conditioning system for a micro hyperbaric oxygen chamber proposed in an embodiment of the present invention; Figure 2 This is a schematic diagram of the control method for the fresh air conditioning system for a micro hyperbaric oxygen chamber proposed in an embodiment of the present invention. Detailed Implementation

[0022] Embodiments of the present invention are described in detail below, examples of which are illustrated in the accompanying drawings, wherein the same or similar reference numerals denote the same or similar elements or elements having the same or similar functions throughout. The embodiments described below with reference to the accompanying drawings are exemplary and intended to explain the present invention, and should not be construed as limiting the present invention.

[0023] The following description, with reference to the accompanying drawings, illustrates a fresh air conditioning system and control method for a micro hyperbaric oxygen chamber according to an embodiment of the present invention.

[0024] like Figures 1 to 2 As shown, this embodiment of the invention provides a fresh air conditioning system for a micro hyperbaric oxygen chamber, including: a fresh air collection and pretreatment unit: equipped with a high-efficiency particulate filter, a harmful gas adsorption layer, a temperature and humidity adjustment module and an intelligent wind direction adjustment device, which can collect fresh air from the external environment, perform preliminary filtration, adsorb harmful gases, adjust temperature and humidity, and intelligently adjust the air inlet angle according to the external environment wind speed and wind direction to maximize the utilization of fresh air resources; Multi-stage air purification and sterilization module: includes HEPA high-efficiency filter, activated carbon adsorption layer, photocatalytic sterilization layer and pulsed ultraviolet sterilization device, deeply purifies particles, harmful gases, bacteria and viruses in fresh air, and ensures that the air entering the oxygen chamber is clean and sterile; Precision temperature, humidity and pressure control system: integrates high-precision temperature and humidity sensors, pressure sensors, intelligent regulating valves and intelligent temperature and humidity control modules, monitors and automatically adjusts the temperature, humidity and pressure inside the oxygen chamber in real time, ensuring that the environment inside the chamber is always within the ideal range set by the user, while ensuring the safety and stability of the micro-high pressure environment; Intelligent control system: It adopts AI algorithms and big data analysis technology to automatically optimize the operation strategy of the air conditioning system based on user preferences, external environment and actual conditions inside the oxygen chamber, so as to minimize energy consumption and maximize comfort; User interaction and remote monitoring platform: Provides an intuitive and easy-to-use touch screen interface, voice control function and mobile APP remote control function, supports user-customized settings, and has remote monitoring, fault diagnosis, health data analysis and personalized oxygen therapy suggestions. Energy recovery and energy-saving optimization system: Utilizing the principle of heat exchange, it preheats or precools the fresh air before it is introduced, reducing subsequent energy consumption. At the same time, it optimizes the operating parameters of the air conditioning system through intelligent algorithms to further reduce energy consumption.

[0025] In specific applications of this invention, the fresh air collection and pretreatment module is responsible for efficiently collecting fresh air from the external environment and performing preliminary purification through a high-efficiency particulate filter and a harmful gas adsorption layer. Simultaneously, it integrates a temperature and humidity control module and an intelligent airflow adjustment device to intelligently adjust the air inlet angle based on external wind speed and direction, thereby achieving temperature and humidity regulation of the fresh air and maximizing the utilization of fresh air resources. The multi-stage air purification and sterilization module performs deep purification of the fresh air. This module integrates a HEPA high-efficiency filter, an activated carbon adsorption layer, a photocatalytic sterilization layer, and a pulsed ultraviolet sterilization device, ensuring that the air entering the oxygen chamber meets a highly clean and sterile standard through multiple layers of checks.

[0026] Meanwhile, the precision temperature, humidity, and pressure control module monitors and automatically adjusts the temperature, humidity, and pressure inside the oxygen chamber in real time. By integrating high-precision sensors, intelligent regulating valves, and intelligent temperature and humidity control modules, it ensures that the environment inside the chamber is always within the ideal range set by the user, while also guaranteeing the safety and stability of the micro-high pressure environment. The intelligent control management module uses AI algorithms and big data analysis technology to comprehensively consider user preferences, the external environment, and the actual conditions inside the oxygen chamber. It automatically optimizes the operation strategy of the air conditioning system to minimize energy consumption and maximize comfort. This module not only improves the automation level of the system but also provides users with personalized oxygen therapy services.

[0027] The user-interactive remote monitoring module offers an intuitive and easy-to-use touchscreen interface, voice control, and mobile app remote control, allowing users to easily customize system parameters and monitor the real-time environmental conditions within the oxygen chamber. Simultaneously, this module also features remote monitoring, fault diagnosis, health data analysis, and personalized oxygen therapy recommendations, providing users with a comprehensive and convenient service experience.

[0028] In one possible implementation, the fresh air collection and pretreatment unit further includes: an intelligent wind speed sensing and adjustment device: which monitors the external environmental wind speed in real time, automatically adjusts the fresh air collection volume, and ensures a stable fresh air supply; Energy-saving fresh air preheating / precooling device: It adopts a high-efficiency heat exchanger to utilize the heat or cold energy during the exhaust process to preheat or precool the fresh air, thereby reducing energy consumption.

[0029] In the multi-stage air purification and sterilization module, the pulsed ultraviolet sterilization device adopts intelligent timed start and stop technology, which ensures sterilization efficiency while reducing potential radiation damage to the human body.

[0030] In specific applications of this invention, the fresh air collection and pretreatment unit, as the front end of the entire system, is responsible for efficiently and stably collecting fresh air from the external environment. This unit is equipped not only with a high-efficiency particulate filter and a harmful gas adsorption layer, but also innovatively incorporates an intelligent wind speed sensing and adjustment device. This device can monitor the external wind speed in real time and automatically adjust the fresh air collection volume according to wind speed changes, ensuring the stability and continuity of the fresh air supply. Furthermore, to reduce energy consumption, this unit also introduces an energy-saving fresh air preheating / precooling device. This device uses high-efficiency heat exchanger technology to fully utilize the heat or cold energy generated during the exhaust process to preheat or precool the fresh air, thereby effectively reducing the energy consumption of the subsequent air conditioning system. The multi-stage air purification and sterilization module integrates multiple purification methods, including a HEPA high-efficiency filter, an activated carbon adsorption layer, and a photocatalytic sterilization layer, ensuring that particulate matter, harmful gases, bacteria, and viral pollutants in the fresh air are effectively removed. In particular, the pulsed ultraviolet sterilization device in this module employs intelligent timed start-up and shutdown technology.

[0031] The intelligent control system is responsible for comprehensively coordinating the working status of each module, ensuring the overall efficiency and stability of the system. Utilizing AI algorithms and big data analytics, the system automatically optimizes the air conditioning system's operating strategy based on user preferences, the external environment, and the actual conditions inside the oxygen chamber, minimizing energy consumption and maximizing comfort. The user interaction and remote monitoring platform provides users with an intuitive and easy-to-use interface and convenient control methods. Users can easily customize system parameters and monitor the real-time environmental conditions inside the oxygen chamber through touchscreens, voice control, or mobile apps. Furthermore, the platform also features remote monitoring, fault diagnosis, health data analysis, and personalized oxygen therapy recommendations, providing users with a comprehensive and intelligent service experience.

[0032] In one possible implementation, the fresh air conditioning system for the micro hyperbaric oxygen chamber, in the precision temperature, humidity and pressure control system, uses variable frequency regulation technology in the intelligent temperature and humidity control modules to achieve rapid response and stable control of temperature, as well as precise adjustment of humidity. In the intelligent control system, AI algorithms and big data analysis technology are also used to predict user behavior and health needs, adjust the air conditioning system operation strategy in advance, and provide personalized services.

[0033] In practical applications, the intelligent temperature and humidity control modules of this invention employ variable frequency technology. By monitoring real-time changes in temperature, humidity, and pressure within the oxygen chamber, they intelligently adjust the operating status of the air conditioning system, achieving rapid temperature response and stable control, as well as precise humidity regulation. Specifically, the intelligent temperature control module can quickly adjust the output power of the cooling or heating system according to a preset temperature range, ensuring that the temperature inside the chamber remains within the ideal range set by the user. Simultaneously, the intelligent humidity control module precisely controls the operating status of the humidification or dehumidification devices to achieve dynamic humidity balance within the chamber, providing users with a comfortable and healthy oxygen therapy environment. This system incorporates AI algorithms and big data analytics to further enhance the intelligence level and personalized service capabilities of the air conditioning system. The system can collect and analyze user habits, health status, and external environmental data in real time. Through deep learning and predictive models, it accurately predicts users' future behaviors and health needs. Based on these predictions, the intelligent control system can adjust the operating strategy of the air conditioning system in advance, such as adjusting temperature and humidity setpoints and optimizing air purification processes, to meet users' personalized needs and provide more considerate and efficient oxygen therapy services.

[0034] The intelligent control system and the precision temperature, humidity, and pressure control system work together seamlessly to ensure a stable and comfortable environment within the oxygen chamber through real-time data exchange and intelligent algorithm optimization. For example, when the intelligent control system predicts that a user is about to enter the oxygen chamber, it activates the temperature and humidity control modules in advance, quickly bringing the environment inside to the user's desired state. Simultaneously, the intelligent control system intelligently adjusts air purification and sterilization strategies based on the user's health condition and preferences, providing more personalized health protection.

[0035] In one possible implementation, the fresh air conditioning system for the micro hyperbaric oxygen chamber, the user interaction and remote monitoring platform also includes: a health data monitoring and analysis module: combining user health data to provide personalized oxygen therapy suggestions and air quality optimization solutions; Fault warning and emergency response system: Monitors the operating status of the air conditioning system in real time. When an abnormality is detected, it automatically issues a warning signal and initiates emergency response measures.

[0036] It also includes an intelligent voice interaction system, which allows users to control various functions of the air conditioning system through voice commands, improving ease of operation.

[0037] In practical applications, this invention integrates a health data monitoring and analysis module into the user interaction and remote monitoring platform. This module can monitor and analyze user health data in real time, including but not limited to key physiological indicators such as heart rate, blood oxygen saturation, and respiratory rate. Based on this data, the system can intelligently identify the user's health status and provide personalized oxygen therapy recommendations. For example, for users with low blood oxygen saturation, the system will suggest increasing the oxygen concentration in the oxygen chamber or extending the oxygen therapy time. Simultaneously, the platform can intelligently adjust the air purification and sterilization strategies of the fresh air conditioning system based on the air quality of the user's environment, ensuring that the user breathes fresh, healthy air. To ensure the stable operation of the air conditioning system, this system can monitor various operating statuses of the air conditioning system in real time, including key parameters such as motor speed, refrigerant pressure, and filter clogging. Once any abnormality or potential fault is detected, the system will automatically issue a warning signal and notify relevant personnel through the user interface or remote monitoring platform. Furthermore, the system can initiate corresponding emergency response measures based on the fault type, such as automatic shutdown and switching to backup equipment, to minimize the impact of the fault on the user.

[0038] This system also incorporates an intelligent voice interaction system to further enhance user convenience. Users can control various functions of the air conditioning system, such as adjusting temperature, humidity, and fan speed, simply by using voice commands. The system adopts advanced voice recognition and natural language processing technology, which can accurately understand the user's intentions and quickly execute the corresponding operations. The interaction method not only simplifies the operation process but also improves user satisfaction and comfort.

[0039] In one possible implementation, the method for controlling the fresh air conditioning system includes the following steps: Step 1: Collect real-time data on the external environment and inside the oxygen chamber, including temperature, humidity, pressure, air quality, and wind speed; Step 2: The intelligent control system calculates and outputs the optimal control strategy based on the collected data, user-defined preferences, and user needs predicted by the AI ​​algorithm. Step 3: Implement control strategies to adjust the operating status of fresh air collection, air purification, temperature and humidity control, pressure stabilization, and various energy-saving optimization modules; Step 4: Monitor the system's operation in real time and make fine adjustments based on the feedback data to ensure that the oxygen chamber environment is always in the best condition. Step 5: Provide personalized services and health data analysis through user interaction and remote monitoring platforms.

[0040] In practical applications, the intelligent control system of this invention incorporates AI algorithms. Based on collected data, pre-set user preferences (such as temperature range, humidity preference, and air quality requirements), and AI-predicted future user needs (such as predictions based on historical user behavior patterns), it performs complex calculations and analyses. This not only considers the current environmental conditions but also incorporates personalized user needs and expectations, ensuring the accuracy and efficiency of the control strategy. After calculation, the intelligent control system outputs the optimal control strategy, which covers fresh air intake, air purification, temperature and humidity control, pressure stabilization, and adjustments to the operating status of various energy-saving optimization modules. The system automatically adjusts the fresh air intake to ensure the freshness of the air inside the oxygen chamber. Simultaneously, the air purification module intelligently turns on or off based on air quality data, effectively removing harmful substances. The temperature and humidity control module precisely controls the operation of heating, cooling, humidification, or dehumidification devices to maintain the environment inside the oxygen chamber within the user-defined ideal range. The pressure stabilization module monitors and adjusts the pressure inside the oxygen chamber to ensure its safety and stability. Furthermore, the energy-saving optimization module comprehensively considers various environmental factors and intelligently adjusts the system's operating status to achieve energy conservation and emission reduction.

[0041] During the execution of control strategies, the system also possesses real-time monitoring and fine-tuning capabilities. By continuously monitoring changes in the oxygen chamber environment and the operational status of each module, the system can promptly detect and correct any deviations, ensuring the accuracy and stability of the control effect. This not only improves the system's response speed but also enhances its ability to adapt to complex environmental changes. Finally, through the user interface, users can easily view environmental parameters, operational status, and historical data within the oxygen chamber. Simultaneously, the remote monitoring platform can receive and process early warning information or maintenance prompts issued by the system in real time, ensuring the long-term stable operation of the air conditioning system. Furthermore, the system can provide personalized health data analysis and service suggestions based on the user's health status and preferences, further enhancing user satisfaction and comfort.

[0042] In one possible implementation, the control method for the fresh air conditioning system of the micro hyperbaric oxygen chamber further includes: remote fault diagnosis and remote upgrade function: when the system detects an anomaly, it automatically uploads fault information to the service center, receives remote guidance or automatically downloads updated software, so as to realize rapid fault resolution and continuous system optimization.

[0043] The control method for the fresh air conditioning system of the micro hyperbaric oxygen chamber also includes: intelligent learning and optimization function: by continuously collecting user behavior and preference data, as well as system operation data, the AI ​​algorithm and control strategy are continuously optimized to improve the intelligence level and operating efficiency of the system.

[0044] In specific applications, the system utilizes AI algorithms for data analysis and prediction. Based on user-defined preferences and AI-predicted future user needs, it calculates and outputs the optimal control strategy. The strategy covers multiple aspects, including fresh air collection, air purification, temperature and humidity control, pressure stabilization, and energy-saving optimization, aiming to achieve precise control and efficient operation of the oxygen chamber environment.

[0045] Meanwhile, this system also features remote fault diagnosis and remote upgrade capabilities. When the system detects any anomaly or potential fault, it automatically uploads detailed fault information to the service center. The service center's professional technicians will then provide remote guidance based on this information, or automatically download and install updated software, thereby achieving rapid fault location and resolution. Furthermore, this system incorporates intelligent learning and optimization functions. By continuously collecting user behavior and preference data, as well as system operation data, the system can continuously optimize its AI algorithms and control strategies. For example, the system can predict future needs based on users' historical behavior patterns, thereby adjusting environmental parameters in advance to improve user comfort and satisfaction. Simultaneously, the system can also identify and correct control deviations based on operational data, further improving the system's intelligence and operational efficiency.

[0046] It should be noted that, in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, 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.

[0047] The present invention and its embodiments have been described above. This description is not restrictive, and the accompanying drawings are only one embodiment of the present invention; the actual structure is not limited thereto. In conclusion, if those skilled in the art are inspired by this description and design similar structures and embodiments without departing from the spirit of the invention, such designs should fall within the protection scope of the present invention.

Claims

1. A fresh air conditioning system for a micro-hyperbaric oxygen chamber, characterized in that, include: Fresh air collection and pretreatment unit: Equipped with a high-efficiency particulate filter, a harmful gas adsorption layer, a temperature and humidity control module and an intelligent air direction adjustment device, it can collect fresh air from the external environment, perform preliminary filtration, adsorb harmful gases, regulate temperature and humidity, and intelligently adjust the air inlet angle according to the external wind speed and direction to maximize the utilization of fresh air resources. Multi-stage air purification and sterilization module: includes HEPA high-efficiency filter, activated carbon adsorption layer, photocatalytic sterilization layer and pulsed ultraviolet sterilization device, deeply purifies particles, harmful gases, bacteria and viruses in fresh air, and ensures that the air entering the oxygen chamber is clean and sterile; Precision temperature, humidity and pressure control system: integrates high-precision temperature and humidity sensors, pressure sensors, intelligent regulating valves and intelligent temperature and humidity control modules, monitors and automatically adjusts the temperature, humidity and pressure inside the oxygen chamber in real time, ensuring that the environment inside the chamber is always within the ideal range set by the user, while ensuring the safety and stability of the micro-high pressure environment; Intelligent control system: It adopts AI algorithms and big data analysis technology to automatically optimize the operation strategy of the air conditioning system based on user preferences, external environment and actual conditions inside the oxygen chamber, so as to minimize energy consumption and maximize comfort; User interaction and remote monitoring platform: Provides an intuitive and easy-to-use touch screen interface, voice control function and mobile APP remote control function, supports user-customized settings, and has remote monitoring, fault diagnosis, health data analysis and personalized oxygen therapy suggestions. Energy recovery and energy-saving optimization system: Utilizing the principle of heat exchange, it preheats or precools the fresh air before it is introduced, reducing subsequent energy consumption. At the same time, it optimizes the operating parameters of the air conditioning system through intelligent algorithms to further reduce energy consumption.

2. The fresh air conditioning system for a micro-hyperbaric oxygen chamber according to claim 1, characterized in that, The fresh air collection and pretreatment unit also includes: Intelligent wind speed sensing and adjustment device: Real-time monitoring of external wind speed, automatic adjustment of fresh air collection volume to ensure stable fresh air supply; Energy-saving fresh air preheating / precooling device: It adopts a high-efficiency heat exchanger to utilize the heat or cold energy during the exhaust process to preheat or precool the fresh air, thereby reducing energy consumption.

3. The fresh air conditioning system for a micro-hyperbaric oxygen chamber according to claim 1, characterized in that, In the multi-stage air purification and sterilization module, the pulsed ultraviolet sterilization device adopts intelligent timed start and stop technology, which ensures sterilization efficiency while reducing potential radiation damage to the human body.

4. The fresh air conditioning system for a micro-hyperbaric oxygen chamber according to claim 1, characterized in that, In the precision temperature, humidity and pressure control system, the intelligent temperature control and humidity control modules adopt frequency conversion regulation technology to achieve rapid response and stable control of temperature, as well as precise adjustment of humidity.

5. The fresh air conditioning system for a micro-hyperbaric oxygen chamber according to claim 1, characterized in that, In the intelligent control system, AI algorithms and big data analysis technology are also used to predict user behavior and health needs, adjust the air conditioning system operation strategy in advance, and provide personalized services.

6. The fresh air conditioning system for a micro-hyperbaric oxygen chamber according to claim 1, characterized in that, The user interaction and remote monitoring platform also includes: Health data monitoring and analysis module: Based on user health data, it provides personalized oxygen therapy suggestions and air quality optimization solutions; Fault warning and emergency response system: Monitors the operating status of the air conditioning system in real time. When an abnormality is detected, it automatically issues a warning signal and initiates emergency response measures.

7. The fresh air conditioning system according to any one of claims 1 to 6, characterized in that, It also includes an intelligent voice interaction system, which allows users to control various functions of the air conditioning system through voice commands, improving ease of operation.

8. The control method for the fresh air conditioning system according to any one of claims 1 to 7, characterized in that, Includes the following steps: Step 1: Collect real-time data on the external environment and inside the oxygen chamber, including temperature, humidity, pressure, air quality, and wind speed; Step 2: The intelligent control system calculates and outputs the optimal control strategy based on the collected data, user-defined preferences, and user needs predicted by the AI ​​algorithm. Step 3: Implement control strategies to adjust the operating status of fresh air collection, air purification, temperature and humidity control, pressure stabilization, and various energy-saving optimization modules; Step 4: Monitor the system's operation in real time and make fine adjustments based on the feedback data to ensure that the oxygen chamber environment is always in the best condition. Step 5: Provide personalized services and health data analysis through user interaction and remote monitoring platforms.

9. The control method for the fresh air conditioning system for a micro-hyperbaric oxygen chamber according to claim 8, characterized in that, Also includes: Remote fault diagnosis and remote upgrade functions: When the system detects an anomaly, it automatically uploads fault information to the service center, receives remote guidance or automatically downloads updated software, and realizes rapid fault resolution and continuous system optimization.

10. The control method for the fresh air conditioning system for a micro-hyperbaric oxygen chamber according to claim 9, characterized in that, Also includes: Intelligent learning and optimization function: By continuously collecting user behavior and preference data, as well as system operation data, the AI ​​algorithm and control strategy are continuously optimized to improve the system's intelligence and operating efficiency.