Environmental ecological wardrobe system and assembling method thereof
Through the integration of modular top-down architecture and core technologies, the complex line layout, lack of interconnection and insufficient user experience of the smart wardrobe system is solved, and high integration, scalability and user experience are achieved, providing an integrated intelligent solution for smart homes.
Patent Information
- Application Number
- CN202510374778.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-27
- Publication Date
- 2025-05-27
AI Technical Summary
The existing smart wardrobe system has problems such as complex line layout, lack of interconnection mechanism, single industry, complex installation and high cost, and insufficient user experience.
The intelligent wardrobe system is designed using a modular top-down architecture, integrating core technologies such as AI environmental ecology, precise object search, partitioned wind path control, magnetic levitation drive, including hanging frame integrated system, back frame integrated system, building block assembly integrated system and magnetic levitation electric lying door system.
It achieves higher integration, scalability and user experience, provides a healthy and comfortable living environment, and significantly improves the quality of life through intelligent adjustment and personalized care and reduces maintenance workload.
Smart Images

Figure CN120036592A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the field of intelligent wardrobes, and particularly to an environmental ecological wardrobe system and an assembly method thereof. Background Art
[0002] At present, traditional intelligent wardrobes on the market, whether they are made of wood, aluminum or steel, often have a complex integration with intelligent module products, with cumbersome wiring, a large number of complex circuits, and a lack of an effective interconnection mechanism; these intelligent wardrobe systems usually have the problem of industrial singleness, unable to provide highly integrated solutions, with cumbersome operations and relatively expensive single product prices. The installation process of traditional intelligent wardrobes is complex, requiring a large amount of on-site wiring and debugging, resulting in high installation costs, and the after-sales service system is imperfect, with a large gap in technical level and service ability. Therefore, the existing intelligent wardrobe products still have obvious deficiencies in terms of user experience, function expansion, system interconnection, etc.
[0003] Based on this, the present invention reconstructs the intelligent wardrobe system through a modular top-down architecture, deeply integrating core technologies such as AI environmental ecology, precise item finding, partition air duct control, and magnetic levitation drive, breaking through the limitations of traditional designs in terms of integration, scalability, and user experience, and providing an integrated intelligent solution for the field of smart home. Summary of the Invention
[0004] In view of this, embodiments of the present invention provide an environmental ecological wardrobe system and an assembly method thereof to solve one or more technical problems existing in the prior art, and provide at least one beneficial choice or create conditions.
[0005] On the one hand, embodiments of the present invention provide an environmental ecological wardrobe system, including: A hanger integration system, including an air duct module for realizing air exchange and environmental purification functions, and the air duct module is respectively connected to an environmental ecological host and a fresh air switching air duct module through pipelines; A back frame integration system for realizing independent air volume adjustment in the upper and lower partitions through the linkage of a regional main air valve and a temperature sensor; A building block stacking integration system for automatically identifying and updating the control interface by completing physical connection through plugging and magnetic attraction according to the user's instructions; A magnetic levitation electric reclining door system for real-time feedback of the door panel position and dynamically adjusting the electromagnetic field intensity to maintain a stable suspension gap.
[0006] Optionally, the air duct module is respectively connected to an environmental ecological host and a fresh air switching air duct module through pipelines, including: The environmental ecological host conducts collaborative work with other modules through data transmission; The fresh air switching air duct module is connected to the air duct module, used to regulate the introduction of fresh air, control the direction and intensity of the air flow, and is connected to the back frame integrated system and the regional fresh air outlet module through air ducts and pipes to ensure the air fluidity and quality.
[0007] Optionally, the back frame integrated system further includes: An in-cabinet air outlet heating module, used to heat the air in the wardrobe, provide temperature regulation function, and is connected to the air duct module through an air duct to distribute the heated air inside the wardrobe; An in-cabinet return air module, used to collect the air in the wardrobe and return it to the environmental ecological host through an air duct for treatment to keep the air fresh and circulating; A regional fresh air outlet module, used to provide external fresh air to the inside of the wardrobe, is connected to the air duct module, and distributes the fresh air to each area of the wardrobe; A regional main air valve, used to regulate the air flow of different air ducts in the region to ensure the air circulation and air quality control in different areas of the air duct system; A regional main return air valve, used to regulate the return air volume of each area to ensure the balance and efficient operation of the air circulation system; A fresh air duct, used to introduce fresh air, combined with the return air system to maintain the indoor air quality; An upper area circulation air duct, used to connect the air supply and return air modules in the upper area, promote air circulation, and ensure the balance of temperature and humidity; A lower area circulation air duct, used to connect the air supply and return air modules in the lower area, work together with the upper area circulation air duct to optimize the air distribution.
[0008] Optionally, the back frame integrated system further includes; A lifting shelf assembly, used to adjust the height of the shelf through an electric lifting device to meet the storage requirements of different-sized items; A lifting clothes hanger assembly, used to provide an adjustable-height clothes hanging space, facilitating users to adjust the hanger position according to their height or needs.
[0009] Optionally, the building block integrated system further includes; Side panel assembly: Constitutes the vertical panels on both sides of the wardrobe, used to ensure structural support and stability; Top panel assembly: Located at the top of the wardrobe, used to ensure the overall structural stability; Bottom panel assembly: Located at the bottom of the wardrobe, used to support the entire structure and connect to the ground; Shelf assembly, used for adjusting and / or fixing horizontal plates, dividing the internal space, and providing storage and display functions; Drawer assembly: Includes a slide rail assembly, used as a storage unit that can be integrated and adjusted according to user instructions, facilitating access to items; A lifting and sweeping robot component for automatically cleaning the ground.
[0010] Optionally, the magnetic levitation electric reclining door system further includes: Magnetic levitation upper rail component: Using magnetic levitation technology to make the door body and the track have no contact and reduce friction, achieving smooth and quiet opening / closing operations of the door; Door panel module: Cooperating with the magnetic levitation upper rail component to ensure the stability and safety of the door body; Human-machine interface module: Providing an interface for users to interact with the system, supporting multiple control methods, and facilitating user operation and management.
[0011] Optionally, the system further includes: AI partitioned clothing care system for automatically providing functions of dust removal, disinfection, and heating care according to clothing types and environmental conditions; AI area precise clothing finding system for accurately locating the position of clothing through intelligent algorithms and sensor technologies, improving the efficiency of users finding clothing; AI personalized care system for automatically analyzing and providing reports on cleaning, maintenance, and storage suggestions according to the clothing characteristics and living habits of users.
[0012] Optionally, the system further includes: AI bedroom environmental ecological care system for adjusting bedroom environmental parameters through intelligent control to improve sleep quality and living comfort; AI healthy sleep environment system for real-time monitoring and adjusting the sleep environment, providing personalized health suggestions, and promoting the sleep quality and overall health of users.
[0013] Optionally, the system further includes: AI intelligent bedroom management system: For detecting the air quality parameters in each area of the cabinet and each area of the bedroom, regularly feeding back the changes in the air quality of the bedroom and the cabinet to users, and providing trend analysis and health suggestions.
[0014] On the other hand, an embodiment of the present invention provides an assembly method for an environmental ecological wardrobe system, and the method includes the following steps: S100, System installation: Install the magnetic levitation upper rail component at a predetermined position to ensure that there are no obstacles within the electromagnetic field coverage range; Connect the door panel module to the magnetic levitation upper rail component to ensure that the door body can levitate smoothly on the track; Install the human-machine interface module and connect it to the central control system to ensure that users can easily operate the system; Deploy the electric reclining door module to ensure that the modules are correctly connected through the 485 communication protocol to achieve data transmission and collaborative work; S200, System Debugging: After power-on, check the working status of each module to ensure stable electromagnetic field intensity and appropriate suspension height of the door body; through the human-machine interface, test the opening, closing and suspension adjustment of the door to ensure sensitive response and smooth operation; check the Bluetooth communication function to ensure that mobile devices can connect to the system for remote control.
[0015] In the embodiment of the present invention, through the modular top-down assembly design, the air duct module, the environmental ecological host, and the fresh air switching air duct module are integrated. The use of air duct zoning reduces the turbulent noise in the low-speed area and the impeller rotation noise, significantly reducing the noise of the fresh air system under a large fresh air volume and providing a quieter indoor environment. The magnetic levitation technology enables the door body to have no contact with the track, reducing friction, thus realizing the silent operation of the door body. Through the intelligent control system, multiple control methods such as remote control, induction control, and timing control are realized, which is convenient for users to control and manage the door; integrating the AI area precise clothing search system, the AI bedroom environmental ecological care system, the AI healthy sleep environment system, the AI partition clothing care system, the AI personalized care system, etc. provides users with a healthy and comfortable living environment. It also significantly improves the quality of life, reduces the maintenance workload, and brings a convenient and efficient living experience through intelligent adjustment, personalized care, and high energy efficiency. BRIEF DESCRIPTION OF THE DRAWINGS
[0016] In order to more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the following will briefly introduce the drawings required for use in the embodiments. Obviously, the drawings described below are only some embodiments of the present invention. For those of ordinary skill in the art, without creative efforts, other drawings can also be obtained based on these drawings.
[0017] Figure 1 It is a framework diagram of an environmental ecological wardrobe system provided by an embodiment of the present invention; Figure 2 It is a framework diagram of a backrest integration system provided by an embodiment of the present invention; Figure 3 It is a schematic flow chart of an assembly method of an environmental ecological wardrobe system provided by an embodiment of the present invention. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0018] In order to make the purpose, technical solutions and advantages of the present application clearer, the following will further elaborate on the present application in conjunction with the drawings and embodiments. It should be understood that the specific embodiments described herein are only used to explain the present application and are not used to limit the present application.
[0019] It should be noted that although the functional modules are divided in the schematic diagram of the device and the logical sequence is shown in the flowchart, in some cases, the steps shown or described may be executed in a different module division in the device or a different sequence in the flowchart. Terms such as "first" and "second" in the specification, claims, and the above-mentioned drawings are used to distinguish similar objects and do not necessarily have to be used to describe a specific order or sequence.
[0020] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by those of ordinary skill in the technical field to which this application belongs. The terms used herein are only for the purpose of describing the embodiments of this application and are not intended to limit this application.
[0021] In addition, the described features, structures, or characteristics may be combined in any suitable manner in one or more embodiments. In the following description, numerous specific details are provided to give a thorough understanding of the embodiments of this application. However, those skilled in the art will realize that the technical solutions of this application can be practiced without one or more of the specific details, or other methods, components, devices, steps, etc. may be adopted. In other cases, well-known methods, devices, implementations, or operations are not shown or described in detail to avoid obscuring aspects of this application.
[0022] The block diagrams shown in the drawings are only functional entities and do not necessarily correspond to physically independent entities. That is, these functional entities can be implemented in software form, or implemented in one or more hardware modules or integrated circuits, or implemented in different networks and / or processor devices and / or microcontroller devices.
[0023] The flowcharts shown in the drawings are only exemplary illustrations and do not necessarily include all the content and operations / steps, nor do they necessarily have to be executed in the described order. For example, some operations / steps can be decomposed, while some operations / steps can be combined or partially combined, so the actual execution order may change according to the actual situation.
[0024] To solve the problems in aspects such as user experience, function expansion, and system interconnection in the prior art; the present invention reconstructs the intelligent wardrobe system through a modular top-down architecture, deeply integrates core technologies such as AI environment ecology, precise item finding, partition air duct control, and magnetic levitation drive, breaks through the limitations of traditional designs in terms of integration, scalability, and user experience, and provides an integrated intelligent solution for the field of smart home.
[0025] Referring to Figure 1 and Figure 2 , an environment ecological wardrobe system provided by an embodiment of the present invention includes: Hanger integrated system, including an air duct module for realizing air exchange and environmental purification functions, and the air duct module is respectively connected to an environmental ecological host and a fresh air switching air duct module through pipelines; Specifically, the connection of the air duct module to the environmental ecological host and the fresh air switching air duct module through pipelines includes: The environmental ecological host works in coordination with other modules through data transmission; The fresh air switching air duct module is connected to the air duct module, used to adjust the introduction of fresh air, and control the direction and intensity of the air flow. It is connected to the back frame integrated system and the regional fresh air outlet module through air ducts and pipelines to ensure the air fluidity and quality.
[0026] Exemplarily, the environmental ecological host communicates with other modules through a data bus, real-time obtains the status information of each module, and processes it according to a preset algorithm to coordinate the work of each module. The fresh air switching air duct module automatically adjusts the introduction amount of fresh air according to environmental monitoring data, controls the direction and intensity of the air flow, and ensures the freshness and comfort of the indoor air. The air duct module transports the processed air to each area through pipelines, and the regional fresh air outlet module in the back frame integrated system ensures that the air transported by the air duct module is evenly blown, improving the air quality. The hanger integrated system can also provide functions such as fresh air, dehumidification, heating, sterilization, purification, warm clothes, aromatherapy, etc. Users can set according to their needs, and the system automatically adjusts to a comfortable environmental state.
[0027] The back frame integrated system realizes independent air volume adjustment for upper and lower partitions through the linkage of the regional main air valve and the temperature sensor; Specifically, the back frame integrated system further includes: An air outlet heating module in the cabinet, used to heat the air in the wardrobe, provide temperature adjustment function, and is connected to the air duct module through an air duct to distribute the heated air inside the wardrobe; An air return module in the cabinet, used to collect the air in the wardrobe and return it to the environmental ecological host through an air duct for processing to keep the air fresh and circulating; Regional fresh air outlet module: Provide external fresh air to the inside of the wardrobe, connect to the air duct module, and distribute the fresh air to each area of the wardrobe; Regional main air valve: Adjust the air flow rate of different air ducts in the area to ensure the air circulation and air quality control in different areas of the air duct system; Regional main air return valve, used to adjust the air return volume of each area to ensure the balance and efficient operation of the air circulation system; Fresh air duct: Responsible for introducing fresh air, combined with the air return system to maintain the indoor air quality; Upper area circulation air duct: Connect the air supply and return modules in the upper area to promote air circulation and ensure the balance of temperature and humidity; Lower zone circulation air path: Connects the air supply and return modules in the lower area, works in coordination with the upper zone circulation air path to optimize air distribution.
[0028] Specifically, the back frame integration system further includes; Lifting shelf assembly: Adjusts the height of the shelf through an electric lifting device to meet the storage requirements of items of different sizes; Lifting clothes hanger assembly: Provides an adjustable-height clothes hanging space, facilitating users to adjust the position of the hanger according to their height or needs.
[0029] Exemplarily, the height of the shelf and the position of the hanger are adjusted by an electric device to meet different storage requirements.
[0030] Among them, the on-off states of different air outlets can be switched according to user needs to achieve fresh air, in-cabinet circulation, and care modes. The back frame integration system integrates functions such as the fresh air path, clothes care partition air path, lifting shelf, and lifting clothes hanger through hand-in-hand 485 communication, and users can perform unified control through a smart terminal.
[0031] For example, when the temperature sensor detects that the temperature inside the wardrobe is too low, the system activates the in-wardrobe air outlet heating module. The heated air is distributed to various areas inside the wardrobe through the air duct system to ensure that the temperature inside the wardrobe reaches the set comfortable range. The in-wardrobe return air module collects the air inside the wardrobe and returns it to the environmental ecological host through the air duct for processing. The system monitors the air quality, such as CO2 concentration and humidity, to ensure fresh air and avoid the accumulation of air pollutants. The regional fresh air outlet module introduces external fresh air into the wardrobe and distributes the fresh air to each area through the air path module to keep the air fresh and optimize the indoor oxygen concentration. The regional main air valve controls the air flow rate in the air duct to ensure appropriate air circulation in each area, avoid poor local air circulation or excessive ventilation, and maintain the balance of air quality. The circulating air paths in the upper and lower areas connect the air supply and return air modules to form a closed loop of air circulation, promoting the uniform distribution of air inside the wardrobe and preventing the accumulation of hot air or moisture. The regional main return air valve adjusts the return air volume to ensure the efficient operation of the return air system, maintain the balance of air circulation, and avoid air stagnation or shortage in certain areas. Through the electric lifting device, the user can adjust the height of the shelf according to the size of the items and storage needs. The system is equipped with an automatic adjustment function that can automatically adjust the shelf height according to the quantity and type of items inside the wardrobe to maximize space utilization. The user can use the electric lifting clothes hanger adjustment device to flexibly adjust the height of the clothes hanger according to their height or needs. This provides convenience for the user to hang clothes at different heights or according to different needs, and can also adjust the clothes storage position according to seasonal changes, such as hanging long clothes or coats at a higher position. The built-in intelligent control module in the system interacts with the user through the APP or voice assistant. The user can view the temperature, humidity, air quality and other parameters inside the wardrobe in real time and manually adjust the air valve, heating module, etc. The user can also set the environmental parameters of the wardrobe, such as temperature and humidity range, through the APP, and the system will automatically adjust the air valves and heating modules in each area to ensure the most suitable storage environment. The system can learn from the user's usage habits and provide optimization suggestions, such as automatically adjusting the temperature, humidity, ventilation mode, etc.
[0032] The building block integrated system includes a requirement selection module that completes physical connection through plugging and magnetic attraction according to the user's instructions, and the system automatically identifies and updates the control interface; Specifically, the building block integrated system further includes; Side plate assembly: The vertical panels that form both sides of the wardrobe to ensure structural support and stability; Top plate assembly: Located at the top of the wardrobe to ensure the stability of the overall structure; Bottom plate assembly: Located at the bottom of the wardrobe to support the entire structure and connect to the ground; Shelf assembly: Adjustable and / or fixed horizontal plates used to divide the internal space and provide storage and display functions; Drawer assembly: It includes a slide rail assembly and storage units that can be integrated and adjusted according to user instructions, facilitating the access to items. Lift and sweep robot assembly for automatically cleaning the floor.
[0033] Exemplarily, the user can select different functional modules according to requirements, such as adding drawers, storage baskets or lift and sweep robots, etc.
[0034] The selected modules can also be connected through plugging and magnetic attraction methods. The system automatically identifies and updates the control interface, providing corresponding operation options.
[0035] It can be understood that according to the design requirements, components such as side panels, top panels, bottom panels, and shelf boards are assembled into a wardrobe frame, the drawer assembly and other additional functional modules are installed, ensuring the firm connection of each part, connecting the power supply, testing the functions of electronic modules such as the lift and sweep robot, and through the control interface, adjusting the height of the shelf board, the opening and closing of the drawer, etc., to ensure the normal operation of the system.
[0036] For example, the user first selects the required modules on the control interface (such as a smartphone APP or a touch screen control panel), such as the drawer assembly, the shelf board assembly, the lift and sweep robot, etc. Each module contains preset functions and designs, and the user can select and confirm through an intuitive interface. After selecting the modules, the user connects the various functional modules together using plugging and magnetic attraction methods according to the prompts on the interface. Through precise interface designs, the modules can achieve fast and firm physical connections. The plugging method allows the user to easily assemble and disassemble, and the magnetic attraction design improves the stability and convenience of the modules. After the connection is completed, the system will automatically identify the newly added modules and update them in real time through the control interface, providing corresponding operation options. For example, when the user connects the drawer module, the control interface will display the corresponding adjustment buttons, and the user can adjust the opening and closing or locking settings of the drawer through the interface; if the lift and sweep robot is connected, the interface will provide options for starting, pausing or cleaning modes. Once all the modules are connected, the user can conduct system tests. For example, check whether the drawer opens smoothly, whether the shelf board is adjusted to the appropriate height, and whether the sweep robot can start automatically and clean effectively. The user can adjust various parameters on the control interface to ensure the normal operation of each module of the system.
[0037] For another example, modular design makes the internal space layout of the wardrobe more flexible. Users can adjust the height of the shelves, the position of the drawers, etc. according to the sizes and storage requirements of different items, maximizing space utilization. Users can choose whether to integrate LED lighting or power sockets on the bottom board to provide additional convenience for the items in the wardrobe. Users can also choose to install an appropriate number of storage baskets or special drawer modules according to seasonal changes or living needs. The system also allows users to adjust the temperature and humidity inside the wardrobe through the control interface to maintain the best storage environment for clothes. The control interface can be linked with the smart home system to achieve remote control through the mobile phone APP, adjusting the internal environment of the wardrobe anytime and anywhere. When the user selects the lifting floor-sweeping robot module, the floor-sweeping robot will automatically clean the floor regularly. The user can set the cleaning schedule through the APP to ensure that the inside of the wardrobe is always clean and dust-free. The system supports later function expansion, and users can add new function modules at any time according to needs, such as adding more drawers, adding smart lighting modules, adding clothes drying modules, etc. The interconnection and interoperability between modules ensure the flexibility and scalability of the system.
[0038] The magnetic levitation electric reclining door system includes real-time feedback of the door panel position and dynamically adjusts the electromagnetic field intensity to maintain a stable suspension gap.
[0039] Specifically, the magnetic levitation electric reclining door system further includes: Magnetic levitation upper rail assembly: Adopting magnetic levitation technology, it makes the door body and the track have no contact and reduces friction, realizing smooth and quiet opening / closing operations of the door; Door panel module: Cooperating with the magnetic levitation upper rail assembly to ensure the stability and safety of the door body; Human-machine interface module: Providing an interface for users to interact with the system, supporting multiple control methods, and facilitating user operation and management.
[0040] Refer to Figure 3 , the embodiment of the present invention also provides an assembly method for an environmental ecological wardrobe system, and the method includes the following steps: S100, System installation: Install the magnetic levitation upper rail assembly at a predetermined position to ensure that there are no obstacles within the electromagnetic field coverage range; Connect the door panel module to the magnetic levitation upper rail assembly to ensure that the door body can stably levitate on the track; Install the human-machine interface module and connect it to the central control system to ensure that users can conveniently operate the system; Deploy the electric reclining door module to ensure that all modules are correctly connected through the 485 communication protocol to achieve data transmission and collaborative work; S200, System debugging: After power-on, check the working status of each module to ensure that the electromagnetic field intensity is stable and the suspension height of the door body is appropriate; Through the human-machine interface, test the opening and closing and suspension adjustment of the door to ensure sensitive response and smooth operation; Check the Bluetooth communication function to ensure that the mobile device can be connected to the system for remote control.
[0041] The magnetic levitation electric reclining door system reduces friction and noise by eliminating direct contact between the door body and the track, providing a quiet usage environment. The system supports multiple control methods such as touch, voice, and mobile devices, with convenient operation and rich functions. Using modular design and 485 communication protocol, it ensures the stability and reliability of the system, facilitating maintenance and upgrading. The trackless design and levitation effect further enhance the aesthetics and usage experience. The door body runs without contact with the track, and the noise level is below 40 decibels, suitable for places that require a quiet environment. When encountering an obstacle, the door body will automatically bounce back with a bounce force less than 10 Newtons, ensuring safety, especially suitable for families with children or the elderly. In the event of a power outage, the magnetic force disappears, and the door body can be easily switched to manual operation without resistance, facilitating users to open the door in case of an emergency. The operating power of the system is about 40 watts, and the standby power is about 1 watt, meeting the European low-energy consumption standards, energy-saving and environmentally friendly. Through the intelligent control system, users can achieve multiple control methods such as remote control, induction, and timing, facilitating the management of the door.
[0042] Specifically, it also includes: AI Area Precise Clothing Search System: Through intelligent algorithms and sensor technologies, it accurately locates the position of clothing, improving the efficiency of users searching for clothing; Exemplarily, the AI Area Precise Clothing Search System combines algorithms such as object detection, image segmentation, deep learning, position estimation, and data association, and uses sensor technologies to achieve efficient and accurate clothing positioning and search. For example, electronic tags are set at the same position on each piece of clothing. Secondly, the wardrobe obtains the tag information and corresponding signal strength contained in the reading signals of the electronic tags of all the hanging clothes in the cabinet through the electronic readers, communication modules, and main control modules set on the cabinet body, sorts all the reading signals according to the signal strength, and associates and stores the tag information contained in each reading signal with its corresponding sorting position.
[0043] For example, the wardrobe can be divided into areas A and B: Area A: The door opens electrically, and the lifting shelf descends to a suitable position for convenient clothing retrieval; Area B: The door opens electrically, and the lifting clothes hanger descends to a suitable position for convenient clothing retrieval; If the user wants to retrieve clothes from Area A: The lights in Area A flash to remind, and at the same time, the door of Area A opens automatically, the lifting shelf descends automatically, and it returns to the original state automatically after people leave; If the user wants to retrieve clothes from Area B: The lights in Area B flash to remind, and at the same time, the door of Area B opens automatically, the lifting clothes hanger descends automatically, and it returns to the original state automatically after people leave; Only some embodiments are listed above. The wardrobe can also be divided into N areas, which are not limited here.
[0044] AI Bedroom Environmental Ecological Care System: Adjusts bedroom environmental parameters through intelligent control to improve sleep quality and living comfort. AI Healthy Sleep Environment System: Monitors and adjusts the sleep environment in real time, provides personalized health advice, and promotes the user's sleep quality and overall health.
[0045] Exemplarily, the AI Healthy Sleep Environment System monitors the sleep environment (such as temperature, humidity, noise, light, etc.) and user physiological data in real time, intelligently adjusts environmental parameters, and provides personalized health advice to help improve sleep quality and promote overall health. The AI Bedroom Environmental Ecological Care System adjusts environmental parameters such as temperature, humidity, air quality, and light through intelligent control algorithms, combines the user's physiological data and preferences, and optimizes the bedroom environment, thereby improving sleep quality and living comfort.
[0046] It can be understood that the system monitors the environmental state in the bedroom in real time through a series of sensors (such as temperature sensors, humidity sensors, air quality sensors, noise sensors, light sensors, etc.). This data is transmitted to a central processing unit (such as an intelligent controller or a cloud server) for processing and analysis. Physiological data including heart rate, body temperature, exercise volume, breathing frequency, etc. is collected. This data is transmitted to the system background in real time for the system to analyze. Based on the comprehensive analysis of environmental parameters and user physiological data, the system automatically adjusts various environmental parameters in the bedroom. For example: Automatically adjusts the temperature and humidity in the bedroom according to the user's body temperature, heart rate and other data to ensure that the user maintains the best comfort state during the sleep process.
[0047] Adjusts the indoor light intensity and color temperature to help the user get proper relaxation before going to sleep and enter deep sleep.
[0048] Adjusts the indoor sound environment according to the monitored noise data, and may avoid disturbing sleep by noise shielding or playing soothing music. During the sleep monitoring process, the AI Healthy Sleep Environment System analyzes the user's sleep quality (such as sleep cycle, deep sleep duration, number of awakenings, etc.). Based on this data, the system generates personalized health advice, such as: Reminds the user to improve sleep habits, such as recommending reducing the use of electronic devices one hour before going to bed.
[0049] Provides diet advice or exercise advice to help the user better adjust the body state to improve sleep quality.
[0050] If the user has sleep problems (such as insomnia, frequent awakenings, etc.), the system will recommend seeking medical treatment or changing the sleep environment.
[0051] During the user's usage process, the AI system optimizes the environmental adjustment model by continuously collecting the user's feedback information (such as sleep quality evaluation, health feelings, etc.). Through machine learning technology, the system will gradually improve the accuracy of environmental adjustment according to the user's preferences and physiological status to achieve the best sleep experience.
[0052] By implementing the AI bedroom environmental ecological care system and the AI healthy sleep environment system, users can enjoy a highly personalized and intelligent sleep environment. The real-time adjustment of environmental parameters and the provision of personalized health suggestions can effectively improve the user's sleep quality, enhance the living comfort, and contribute to promoting overall health. After a period of use, the system can continuously optimize according to the user's physiological data and sleep habits, so as to provide a more accurate sleep improvement plan.
[0053] Specifically, it also includes: AI zoned clothing care system: Automatically provides dust removal, disinfection, and heating care functions according to clothing types and environmental conditions; AI personalized care system: Automatically analyzes and provides cleaning, maintenance, and storage suggestion reports according to the user's clothing characteristics and living habits.
[0054] Exemplarily, the user puts the clothes into the intelligent clothing zoning cabinet or care cabin in the care system. The system automatically identifies the type of clothing (such as cotton, wool, silk, etc.) and the current state of the clothing (such as whether there are stains, whether there is an odor, etc.) through sensors and image recognition technology. The system monitors the current environmental temperature, humidity, air quality, etc. through built-in sensors to judge whether environmental adjustment is needed. For example, when the humidity is high, the system will automatically start the dehumidification function; when the air quality is poor, the system will automatically turn on the air purification function. The AI analysis engine generates personalized care suggestions according to the type of clothing and the current environmental conditions, combined with the user's preferences (such as clothing care intensity, etc.). For example, for cotton clothes, the system may recommend low-temperature heating and dust removal, while for wool clothes, it may recommend gentle disinfection and ventilation. According to the generated care suggestions, the system automatically activates the corresponding care functions. Specifically, it includes: Dust removal: Use high-frequency vibration or gentle breeze technology to remove dust and debris on the clothing surface.
[0055] Disinfection: Disinfect the clothes through technologies such as ultraviolet lamps, ozone, or negative ions to kill bacteria and viruses.
[0056] Heating care: Select an appropriate temperature for clothing heating care according to the requirements of clothing materials to remove odors or help the clothes regain softness.
[0057] After the care process is completed, the system will automatically notify the user that the clothing care is finished. The user can view the care results through the APP and obtain suggestions for the next care. For example, the system may recommend regular deep cleaning or precautions during storage.
[0058] Specifically, it also includes: AI intelligent bedroom management system: Detect the air quality parameters in each area of the cabinet and each area of the bedroom, regularly feedback the changes in the air quality of the bedroom and the cabinet to the user, and provide trend analysis and health suggestions.
[0059] Exemplarily, the sensor module in the system monitors the air quality in the bedroom and the wardrobe in real time, including indicators such as temperature, humidity, PM2.5, CO2, VOC, etc. Each area (bedroom and wardrobe) is equipped with multiple sensors, which are respectively responsible for collecting different air quality data. The AI analysis engine processes the data collected by the sensors in real time and analyzes the changing trend of the air quality based on the machine learning model. The system predicts the changes in the air quality through historical data (such as whether the indoor CO2 concentration will increase, whether the air humidity is too high, etc.), and evaluates the potential impact of the air quality on the user's health. If the air quality is detected to be substandard (such as too high CO2 concentration, too low humidity, or increased concentration of harmful substances), the intelligent control module will automatically start the air purifier, humidifier or temperature control system to adjust the indoor environment to meet the best health standards. For example: Air purifier: Automatically start and adjust the wind speed to filter harmful substances such as PM2.5, bacteria, and viruses in the air.
[0060] Humidity regulator: Automatically start the humidification function when the air is too dry to maintain an appropriate humidity range (usually 40%-60%).
[0061] Temperature control system: Automatically adjust the bedroom temperature according to the user's preference and real-time data to maintain the best sleep temperature (usually 18-22°C).
[0062] The system regularly (such as daily or weekly) pushes an air quality report to the user through the APP, detailing the changes in the air quality of each area, trend analysis, and possible impacts. The report will also give corresponding health suggestions, such as: If the indoor CO2 concentration is high during a certain period, the system will recommend that the user ventilate or increase the working hours of the air purifier. If the humidity is too low, the system will recommend that the user appropriately use the humidifier to avoid skin chapping or respiratory discomfort caused by excessive dryness. If the PM2.5 concentration is on the high side, the system will remind the user to close the windows or turn on the air purification mode.
[0063] Based on the user's sleep data (if the system is connected to a smart mattress or wearable device), the system can provide targeted sleep optimization suggestions. For example, if poor air quality is detected and the user's sleep quality deteriorates, the system will recommend that the user improve air circulation or turn on an air purifier before going to bed. The user can view the air quality data of each area in real time through the APP and manually adjust the system as needed (such as adjusting temperature and humidity settings, or controlling the switch of the air purifier). In addition, the user can also adjust the environmental parameters according to personal preferences, and the system will record and automatically adapt to these preferences in the future.
[0064] In the embodiments of the present invention, through a modular top-down assembly design, an air duct module, an environmental ecological host, and a fresh air switching air duct module are integrated. By partitioning the air duct, the turbulent noise in the low-speed area and the impeller rotation noise are reduced, significantly reducing the noise of the fresh air system under a large fresh air volume and providing a quieter indoor environment. The magnetic levitation technology makes the door body have no contact with the track, reducing friction, thus realizing the silent operation of the door body. Through the intelligent control system, multiple control methods such as remote control, induction control, and timing control are realized, which is convenient for users to control and manage the door; integrating the AI regional precise clothing finding system, the AI bedroom environmental ecological care system, the AI healthy sleep environment system, the AI partitioned clothing care system, the AI personalized care system, etc., provides users with a healthy and comfortable living environment, and also significantly improves the quality of life, reduces the maintenance workload, and brings a convenient and efficient living experience through intelligent adjustment, personalized care, and high energy efficiency.
[0065] Those of ordinary skill in the art can understand that all or some of the steps in the methods disclosed above, and the functional modules / units in the systems and devices, can be implemented as software, firmware, hardware, and their appropriate combinations.
[0066] The terms "first", "second", "third", "fourth", etc. (if any) in the specification of this application and the above-mentioned drawings are used to distinguish similar objects, and do not necessarily need to be used to describe a specific order or sequence. It should be understood that such data can be interchanged under appropriate circumstances so that the embodiments of this application described here can be implemented in an order other than those illustrated or described here. In addition, the terms "comprising" and "having" and any variations thereof are intended to cover non-exclusive inclusion. For example, a process, method, system, product, or device that includes a series of steps or units does not necessarily have to be limited to those steps or units clearly listed, but may include other steps or units not clearly listed or inherent to these processes, methods, products, or devices.
[0067] It should be understood that in this application, "at least one (item)" means one or more, and "a plurality" means two or more. "And / or" is used to describe the association relationship of associated objects, indicating that there can be three relationships. For example, "A and / or B" can mean: only A exists, only B exists, and both A and B exist at the same time. Among them, A and B can be singular or plural. The character " / " generally represents an "or" relationship between the associated objects before and after. "At least one (item) of the following" or its similar expressions refer to any combination of these items, including any combination of single items (items) or plural items (items). For example, at least one (item) of a, b, or c can mean: a, b, c, "a and b", "a and c", "b and c", or "a and b and c", where a, b, and c can be single or multiple.
[0068] In several embodiments provided in this application, it should be understood that the disclosed devices and methods can be implemented in other ways. For example, the device embodiments described above are merely illustrative. For example, the division of the units is only a logical function division. In actual implementation, there can be other division methods. For example, multiple units or components can be combined or integrated into another system, or some features can be ignored or not executed. Another point is that the displayed or discussed couplings or direct couplings or communication connections to each other can be through some interfaces. The indirect couplings or communication connections of the devices or units can be in electrical, mechanical or other forms.
[0069] The units described as separate components may or may not be physically separated. The components shown as units may or may not be physical units, that is, they can be located in one place, or they can be distributed to multiple network units. Some or all of the units can be selected according to actual needs to achieve the purpose of the solution of this embodiment.
[0070] In addition, the functional units in each embodiment of this application can be integrated into one processing unit, or each unit can exist physically alone, or two or more units can be integrated into one unit. The above integrated units can be implemented in the form of hardware or in the form of software functional units.
[0071] When the integrated unit is implemented in the form of a software functional unit and sold or used as an independent product, it can be stored in a computer-readable storage medium. Based on this understanding, the technical solution of this application, in essence, or the part that contributes to the prior art, or all or part of this technical solution, can be embodied in the form of a software product. This computer software product is stored in a storage medium and includes multiple instructions for causing a computer device (which may be a personal computer, a server, or a network device, etc.) to execute all or part of the steps of the methods described in various embodiments of this application. The aforementioned storage medium includes: various media that can store programs, such as USB flash drives, mobile hard disks, read-only memory (ROM), random access memory (RAM), magnetic disks, or optical discs.
[0072] The preferred embodiments of the embodiments of this application have been described above with reference to the accompanying drawings, which does not limit the scope of the rights of the embodiments of this application. Any modifications, equivalent replacements, and improvements made by those skilled in the art without departing from the scope and essence of the embodiments of this application shall fall within the scope of the rights of the embodiments of this application.
Claims
1. An environmental ecological wardrobe system, characterized in that: include: The hanger integrated system includes an air path module for realizing air exchange and environmental purification functions, wherein the air path module is respectively connected to the environmental ecological host and the fresh air switching air path module through pipelines; The back frame integrated system is used to realize independent air volume regulation of upper and lower partitions through the linkage of the regional main air valve and temperature sensor; The building block integrated system is used to complete the physical connection through plug-in and magnetic attraction according to the user's instructions, and automatically identify and update the control interface; The magnetic levitation electric reclining door system is used to provide real-time feedback on the door panel position and dynamically adjust the electromagnetic field strength to keep the suspension gap stable.
2. The system according to claim 1, characterized in that The air path module is connected to the environmental ecological host and the fresh air switching air path module through pipelines respectively, including: The environmental ecological host works in coordination with other modules through data transmission; The fresh air switching air path module is connected to the air path module, and is used to adjust the introduction of fresh air and control the direction and intensity of the wind flow. It is connected to the back frame integrated system and the regional fresh air outlet module through air ducts and pipes to ensure the fluidity and quality of the air.
3. The system according to claim 1, characterized in that The back frame integrated system also includes: The air outlet heating module in the closet is used to heat the air in the closet, provide temperature regulation function, and is connected to the air path module through the air duct to distribute the heated air to the inside of the closet; The cabinet return air module is used to collect the air in the closet and return it to the environmental ecological host through the air duct for processing to keep the air fresh and circulating; The regional fresh air outlet module is used to provide external fresh air to the inside of the wardrobe, and is connected to the air path module to distribute the fresh air to various areas of the wardrobe; The regional main air valve is used to adjust the air flow in different air ducts in the area to ensure the air circulation and air quality control in different areas of the air duct system; Regional total return air valve, used to adjust the return air volume of each area to ensure the balance and efficient operation of the air circulation system; Fresh air duct is used to introduce fresh air and combine with the return air system to maintain indoor air quality; The upper zone circulation air path is used to connect the air supply and return air modules in the upper zone to promote air circulation and ensure the balance of temperature and humidity; The lower zone circulation air duct is used to connect the supply and return air modules in the lower area, and works together with the upper zone circulation air duct to optimize air distribution.
4. The system according to claim 1, characterized in that The back frame integrated system also includes: The lifting shelf assembly is used to adjust the height of the shelf through an electric lifting device to meet the storage needs of items of different sizes; The lifting hanger assembly is used to provide a clothing hanging space with adjustable height, so that users can adjust the hanger position according to their height or needs.
5. The system according to claim 1, characterized in that The building block integrated system also includes: Side Panel Assemblies: Vertical panels that form the sides of a wardrobe and provide structural support and stability; Top plate assembly: located at the top of the wardrobe, used to ensure the stability of the overall structure; Bottom plate assembly: located at the bottom of the wardrobe, used to support the entire structure and connected to the ground; Shelf components, used for adjusting and / or fixing horizontal boards, dividing the interior space and providing storage and display functions; Drawer assembly: including a slide rail assembly, which is used to integrate and mobilize storage units according to user instructions to facilitate the storage and retrieval of items; The lifting sweeping robot assembly is used to automatically clean the floor.
6. The system according to claim 1, characterized in that The magnetic suspension electric reclining door system also includes: Magnetic suspension upper rail assembly: Using magnetic suspension technology, there is no contact between the door body and the rail to reduce friction, and achieve smooth and quiet door opening / closing operation; Door panel module: cooperates with the magnetic suspension upper rail assembly to ensure the stability and safety of the door body; Human-machine interface module: provides an interface for users to interact with the system, supports multiple control methods, and facilitates user operation and management.
7. The system according to claim 1, characterized in that Also includes: AI zoned clothing care system, which automatically provides dust removal, sterilization, and heating care functions according to clothing type and environmental conditions; AI regional precise clothing search system, which uses intelligent algorithms and sensor technology to accurately locate clothing and improve the efficiency of users in finding clothing; AI personalized care system is used to automatically analyze and provide cleaning maintenance and storage recommendation reports based on the user's clothing characteristics and living habits.
8. The system according to claim 1, characterized in that Also includes: AI bedroom environment ecological care system, which is used to adjust bedroom environment parameters through intelligent control to improve sleep quality and living comfort; The AI healthy sleeping environment system is used to monitor and adjust the sleeping environment in real time, provide personalized health advice, and promote the user's sleep quality and overall health.
9. The system according to claim 1, characterized in that Also includes: AI smart bedroom management system: used to detect the air quality parameters of each area in the cabinet and the bedroom, regularly feedback the changes in air quality in the bedroom and cabinet to users, and provide trend analysis and health advice.
10. An assembly method of an environmental ecological wardrobe system, characterized in that: The method comprises the following steps: S100, system installation: install the magnetic suspension upper rail assembly at the predetermined position to ensure that there are no obstacles within the electromagnetic field coverage; connect the door panel module to the magnetic suspension upper rail assembly to ensure that the door body can be stably suspended on the track; install the human-machine interface module and connect it to the central control system to ensure that users can operate the system conveniently; deploy the electric lying door module to ensure that the modules are correctly connected through the 485 communication protocol to achieve data transmission and collaborative work; S200, system debugging: After power on, check the working status of each module to ensure that the electromagnetic field strength is stable and the door suspension height is appropriate; through the human-machine interface, test the door switch and suspension adjustment to ensure sensitive response and smooth operation; check the Bluetooth communication function to ensure that the mobile device can connect to the system for remote control.