Vehicle-mounted oxygen generation system and use method
Through the intelligent and automated control of the on-board oxygen production system, the inverter is used to connect to the vehicle power system, and the air compressor and molecular sieve system are integrated to achieve efficient oxygen production and support remote monitoring, which solves the problem of insufficient portability of portable oxygen production equipment during plateau travel and provides a stable and intelligent oxygen supply.
Patent Information
- Application Number
- CN202510857565.X
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-06-25
- Publication Date
- 2025-08-15
AI Technical Summary
Existing portable oxygen-making equipment is not portable enough in plateau travel or special environments, has low intelligence, and has poor integration with the vehicle system, so it cannot directly connect to the vehicle power system, which increases the complexity and inconvenience of use.
Design an on-board oxygen production system, connected to the vehicle power system through an inverter, integrates a control board, an air compressor, a molecular sieve system and an electromagnetic flow valve, and is equipped with a communication device to realize intelligent and automated control, and support remote monitoring and operation.
It improves the convenience and reliability of the oxygen production system, ensures a stable and intelligent oxygen supply in scenarios such as plateau travel, and enhances user safety and comfort.
Smart Images

Figure CN120481564A_ABST
Abstract
Description
Technical Field
[0001] The present disclosure belongs to the technical field of oxygen concentrators, and in particular relates to a vehicle-mounted oxygen concentrator system and a method of use. Background Art
[0002] Currently, smart oxygen chambers are primarily used in the medical industry. Their core oxygen concentrators utilize molecular sieves, extracting oxygen-rich ions from the air through adsorption and separation techniques for human consumption. These oxygen chambers are typically installed within medical institutions, providing medical-grade oxygen therapy to patients.
[0003] While some portable oxygen concentrators are available for use in high-altitude travel or special environments, they suffer from issues such as lack of portability, low intelligence, and poor integration with vehicle systems. These devices often cannot be directly connected to the vehicle's power system and require an additional power adapter or battery, adding complexity and inconvenience to their use. Summary of the Invention
[0004] To address the above issues, the present disclosure provides a vehicle-mounted oxygen production system and method of use. This solution improves the convenience and reliability of the oxygen production system and provides an effective oxygen supply solution.
[0005] In order to solve the above technical problems, the first aspect of the present invention provides a vehicle-mounted oxygen production system, the vehicle-mounted oxygen production system comprising: a housing, the housing being provided with: an inverter connected to the vehicle's electrical system; A control panel, an air compressor, a molecular sieve system, and an electromagnetic flow valve are electrically connected to the inverter respectively; the air compressor, the molecular sieve system, and the electromagnetic flow valve are connected in sequence; The control panel is provided with a communication device that can communicate with external equipment; The control panel is connected to the air compressor, the molecular sieve system and the electromagnetic flow valve respectively, and controls the air compressor, the molecular sieve system and the electromagnetic flow valve to be turned on or off.
[0006] According to a preferred embodiment of the present invention, the vehicle-mounted oxygen production system further includes: A handheld terminal device in communication with the communication device; The handheld terminal device is provided with an instruction input device for sending control instructions to the control panel to control the opening or closing of the air compressor, the molecular sieve system and the electromagnetic flow valve through the control panel.
[0007] According to a preferred embodiment of the present invention, the vehicle-mounted oxygen production system further includes: The vehicle is provided with a large on-board screen which is in communication connection with the communication device and sends control instructions to the control panel, thereby controlling the opening or closing of the air compressor, molecular sieve system and electromagnetic flow valve through the control panel.
[0008] According to a preferred embodiment of the present invention, the vehicle-mounted oxygen production system further includes: a blower connected to the air compressor and sucking air into the air compressor; The control panel is connected to the fan to control the fan to be turned on or off; A ventilation filter group and an air intake filter are arranged on the outside of the fan.
[0009] According to a preferred embodiment of the present invention, the vehicle-mounted oxygen production system further includes: a secondary filter arranged between the molecular sieve system and the electromagnetic flow valve; and an oxygen inhaler communicated with the electromagnetic flow valve.
[0010] According to a preferred embodiment of the present invention, the vehicle-mounted oxygen production system further includes: an air outlet provided on the housing and communicating with the oxygen inhaler; A control panel is provided on the housing and connected to the control panel.
[0011] According to a preferred embodiment of the present invention, the vehicle-mounted oxygen production system further includes: a breathing mask connected to the air outlet pipe; The upper end of the breathing mask is provided with a head strap which can be stretched and fixed around the head, and the lower end is provided with a neck strap which can be stretched and fixed around the neck.
[0012] According to a preferred embodiment of the present invention, both the head strap and the neck strap are provided with elastic locking members.
[0013] According to a preferred embodiment of the present invention, the vehicle-mounted oxygen production system further includes: An electrical interface electrically connected to the inverter, wherein the electrical interface is connected to an electrical system of the vehicle.
[0014] In a second aspect, the present invention provides a method for using a vehicle-mounted oxygen production system, the method comprising: When the electric system of the vehicle is started, determining whether any of the above-mentioned on-board oxygen generation systems is in communication connection with an external device; When the vehicle-mounted oxygen production system is in communication connection with the external device, starting the vehicle-mounted oxygen production system; Obtaining a current environmental state, and determining an operating mode according to the current environmental state; The vehicle-mounted oxygen production system is controlled to operate according to the operating mode.
[0015] Compared with the prior art, the present disclosure has the following advantages: The present disclosure uses an inverter connected to the vehicle's power system, and a control panel, an air compressor, a molecular sieve system, and an electromagnetic flow valve electrically connected to the inverter, and these components are connected in sequence to form an oxygen production process. A communication device is provided on the control panel, which can communicate with external equipment and control the opening or closing of the air compressor, molecular sieve system, and electromagnetic flow valve. This solution realizes the intelligent and automated control of the vehicle-mounted oxygen production system, converts electricity through the inverter to drive key components, uses the molecular sieve system to efficiently produce oxygen, and accurately adjusts the oxygen flow through the electromagnetic flow valve. At the same time, the communication device supports connection with external equipment, facilitates remote monitoring and operation, improves the convenience and reliability of the oxygen production system, and provides an effective oxygen guarantee solution for scenarios such as plateau travel.
[0016] Other features and advantages of the present disclosure will be described in the following description, and in part will become apparent from the description, or will be understood by practicing the present disclosure. The purposes and other advantages of the present disclosure can be realized and obtained by the structures indicated in the description, claims and drawings. BRIEF DESCRIPTION OF THE DRAWINGS
[0017] In order to more clearly illustrate the embodiments of the present disclosure or the technical solutions in the prior art, the following briefly introduces the drawings required for use in the embodiments or the description of the prior art. Obviously, the drawings described below are some embodiments of the present disclosure. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.
[0018] Figure 1 A schematic diagram of the external structure of a vehicle-mounted oxygen production system according to an embodiment of the present disclosure is shown; Figure 2 A schematic diagram of the internal structure of a vehicle-mounted oxygen production system according to an embodiment of the present disclosure is shown; Figure 3 A schematic diagram of the internal structure of a vehicle-mounted oxygen production system according to an embodiment of the present disclosure is shown; Figure 4 A schematic diagram of the external back structure of a vehicle-mounted oxygen production system according to an embodiment of the present disclosure is shown; Figure 5 A schematic diagram showing the connection of a breathing mask in a vehicle-mounted oxygen production system according to an embodiment of the present disclosure is shown; Figure 6 A schematic flow chart of a method for using a vehicle-mounted oxygen production system according to an embodiment of the present disclosure is shown; In the figure: 1: outer shell; 2: breathing mask; 3: head strap; 4: neck strap; 5: elastic locking piece; 6: air outlet; 7: control panel; 8: electrical interface; 9: inverter; 10: control board; 11: air compressor; 12: molecular sieve system; 13: electromagnetic flow valve; 14: fan; 15: ventilation filter group; 16: air intake filter; 17: oxygen inhaler; 18: handle. DETAILED DESCRIPTION
[0019] To make the objectives, technical solutions, and advantages of the embodiments of the present disclosure more clear, the technical solutions in the embodiments of the present disclosure will be clearly and completely described below in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present disclosure, not all of the embodiments. All other embodiments obtained by ordinary technicians in this field based on the embodiments of the present disclosure without making any creative efforts shall fall within the scope of protection of the present disclosure.
[0020] The same reference numerals in the accompanying drawings represent the same or similar elements, components or parts, and thus repeated descriptions of the same or similar elements, components or parts may be omitted below. It should also be understood that although the first, second, third and other numbered adjectives may be used herein to describe various devices, elements, components or parts, these devices, elements, components or parts should not be limited by these adjectives. In other words, these adjectives are only used to distinguish one from another. For example, the first device may also be called the second device, but this does not deviate from the essential technical solution of the present invention. In addition, the terms "and / or" and "and / or" refer to all combinations including any one or more of the listed items.
[0021] See also Figure 1 、 Figure 2 、 Figure 3 , Figure 1 、 Figure 2 、 Figure 3 This is a schematic diagram of the structure of a vehicle-mounted oxygen production system provided by the present invention. Figure 1 The vehicle-mounted oxygen production system shown includes: a housing 1.
[0022] In this embodiment, if Figure 2 The front view of the interior of the vehicle-mounted oxygen production system housing 1 is shown, and Figure 3The back view of the interior of the vehicle-mounted oxygen production system housing 1 is shown. The housing 1 is provided with: an inverter 9 connected to the vehicle's power system; by integrating the inverter 9 connected to the vehicle's power system into the vehicle-mounted oxygen production system, the function of converting the vehicle's direct current into the alternating current required by the oxygen production system is realized, ensuring the stable power supply of the oxygen concentrator during the vehicle's driving. It solves the problem of power adaptation of the vehicle-mounted oxygen production equipment in a mobile environment, improves the portability and applicability of the equipment, and enables the oxygen concentrator to continue working while the vehicle is driving, providing users traveling in the plateau with an uninterrupted supply of medical-grade oxygen, and enhancing the user's safety and comfort in a high-altitude environment. Figure 4 As shown, specifically, an electrical interface 8 electrically connected to the inverter 9 is connected to the vehicle's power system. The electrical interface 8 can be a Type-C interface to facilitate the applicability of the vehicle-mounted oxygen production system.
[0023] In this embodiment, the inverter 9 is electrically connected to the control panel 10, air compressor 11, molecular sieve system 12, and electromagnetic flow valve 13. The air compressor 11, molecular sieve system 12, and electromagnetic flow valve 13 are connected in sequence. The electrical connection relationship between the inverter 9 and the control panel 10, air compressor 11, molecular sieve system 12, and electromagnetic flow valve 13 is clearly defined. The air compressor 11, molecular sieve system 12, and electromagnetic flow valve 13 are connected in sequence to form the oxygen production process, ensuring the construction of a complete system from power supply to oxygen preparation and output. This realizes the automation and integrated operation of the vehicle-mounted oxygen production system. The inverter 9 provides stable power, driving the various components to work together, efficiently completing air compression, oxygen separation, and flow control, thereby providing users traveling in the plateau with a reliable and convenient medical-grade oxygen supply solution.
[0024] In this embodiment, the control panel 10 is equipped with a communication device capable of communicating with external devices. This arrangement enables information exchange between the on-board oxygen concentrator system and external devices (such as mobile phones and vehicle computers). This enhances the system's intelligence and remote control capabilities. Users can use external devices to monitor the oxygen concentrator's operating status in real time, adjust parameters such as oxygen flow, and even remotely turn the concentrator on or off in emergencies. This provides a more convenient and efficient user experience and enhances the system's emergency response capabilities in complex environments such as high-altitude travel.
[0025] In this embodiment, the control panel 10 is respectively connected to the air compressor 11, the molecular sieve system 12 and the electromagnetic flow valve 13, and controls the air compressor 11, the molecular sieve system 12 and the electromagnetic flow valve 13 to be turned on or off. By turning these components on or off through the control panel 10, centralized control and automated operation of the vehicle-mounted oxygen production system are achieved. Its technical effect is to improve the accuracy and efficiency of the oxygen production process, ensure that the various components work together as needed, optimize the oxygen preparation process, and provide users with a convenient operation method, thereby enhancing the applicability and reliability of the system in scenarios such as plateau travel. Specifically, the control panel 10 is connected to the air compressor 11 and the molecular sieve system 12 through a relay, and controls the air compressor 11 and the molecular sieve system 12 to be turned on or off through the relay.
[0026] In this embodiment, handles 18 are provided on both sides above the internal device of the vehicle-mounted oxygen generator system to facilitate users to take it.
[0027] The present disclosure uses an inverter 9 connected to the vehicle's power system, and a control panel 10, an air compressor 11, a molecular sieve system 12, and an electromagnetic flow valve 13 electrically connected to the inverter 9. These components are connected in sequence to form an oxygen production process. The control panel 10 is provided with a communication device that can communicate with external equipment and control the opening or closing of the air compressor 11, the molecular sieve system 12, and the electromagnetic flow valve 13. This solution realizes the intelligent and automated control of the vehicle-mounted oxygen production system, converts electricity through the inverter 9 to drive key components, uses the molecular sieve system 12 to efficiently produce oxygen, and accurately adjusts the oxygen flow through the electromagnetic flow valve 13. At the same time, the communication device supports connection with external equipment, facilitates remote monitoring and operation, and improves the convenience and reliability of the oxygen production system.
[0028] In this embodiment, the on-board oxygen concentrator system further includes: a handheld terminal device communicatively connected to the communication device; the handheld terminal device is provided with a command input device for sending control commands to the control panel 10, thereby controlling the opening or closing of the air compressor 11, the molecular sieve system 12, and the electromagnetic flow valve 13 via the control panel 10. A handheld terminal device connected to the communication device is added to the on-board oxygen concentrator system and equipped with a command input device, which can send control commands to the control panel 10 to remotely control the opening or closing of the air compressor 11, the molecular sieve system 12, and the electromagnetic flow valve 13. This greatly improves the convenience and intelligence of the on-board oxygen concentrator system. Users can remotely control the oxygen concentrator system from any location via the handheld terminal device, enhancing the system's flexibility and emergency response capabilities in scenarios such as high-altitude travel, while providing users with a more intuitive and simple operating experience. Specifically, the handheld terminal device can be a mobile phone, which can be connected to the oxygen concentrator via an app on the mobile phone to enable mobile phone control of opening and closing.
[0029] In this embodiment, the vehicle-mounted oxygen production system also includes: a vehicle-mounted large screen is provided on the vehicle, which is connected to the communication device and sends control instructions to the control panel 10, thereby controlling the opening or closing of the air compressor 11, the molecular sieve system 12, and the electromagnetic flow valve 13 through the control panel 10. The vehicle-mounted oxygen production system further includes a vehicle-mounted large screen connected to the communication device, which can send control instructions to the control panel 10, thereby remotely controlling the start and stop of the air compressor 11, the molecular sieve system 12, and the electromagnetic flow valve 13. The integration of the vehicle-mounted oxygen production system and the convenience of user operation are improved. The user does not need an additional handheld device and can easily control the oxygen production process only through the vehicle-mounted large screen. This not only enhances the intelligence level of the system, but also optimizes the user experience in scenarios such as plateau travel, ensuring the efficiency and safety of the oxygen production process. Specifically, the oxygen generator is turned on and off by connecting to the vehicle computer through Bluetooth and controlling the vehicle-mounted large screen.
[0030] In this embodiment, the on-board oxygen generation system further includes: a fan 14 connected to the air compressor 11 to draw air into the air compressor 11; a control panel 10 connected to the fan 14 to control its on / off operation; and a ventilation filter group 15 and an air intake filter 16 disposed outside the fan 14. This solution provides a fan 14 connected to the air compressor 11 for drawing air in, while the control panel 10 is connected to the fan 14 to control its on / off operation. The fan 14 is also equipped with a ventilation filter group 15 and an air intake filter 16. Active air intake by the fan 14 improves the efficiency of air entering the oxygen generation system and ensures a stable air supply. The control panel 10's control of the fan 14 enhances the system's automation and intelligence. The ventilation filter group 15 and the air intake filter 16 effectively filter impurities and particulate matter from the air, protecting subsequent oxygen generation components and improving oxygen purity and system reliability.
[0031] In this embodiment, the vehicle-mounted oxygen production system further includes: a secondary filter disposed between the molecular sieve system 12 and the electromagnetic flow valve 13; and an oxygen inhaler 17 in communication with the electromagnetic flow valve 13. In this solution, a secondary filter is disposed between the molecular sieve system 12 and the electromagnetic flow valve 13, as well as an oxygen inhaler 17 in communication with the electromagnetic flow valve 13. The provision of the secondary filter further purifies the oxygen output from the molecular sieve system 12, effectively removing any remaining tiny particles or impurities, and improving the purity and quality of the oxygen; and the connection with the oxygen inhaler 17 provides the user with a direct and convenient oxygen inhalation interface, ensuring that the user can safely and efficiently inhale pure oxygen that has undergone multiple filtrations, thereby enhancing the practicality and user experience of the vehicle-mounted oxygen production system in scenarios such as plateau travel.
[0032] The vehicle-mounted oxygen production system also includes: an air outlet 6 provided on the outer shell 1 and connected to the oxygen inhaler 17; and a control panel 7 provided on the outer shell 1 and connected to the control panel 10. This solution provides an air outlet 6 connected to the oxygen inhaler 17, and a control panel 7 connected to the control panel 10. Its technical effect is that the design of the air outlet 6 enables the user to conveniently obtain purified oxygen directly through the outer shell 1, thereby optimizing the user experience; and the integration of the control panel 7 enables the user to directly operate and control the oxygen production system on the outer shell 1, thereby enhancing the interactivity and usability of the system, and enabling the user to more conveniently adjust the oxygen production parameters or monitor the system status. Specifically, since the passenger compartment is sealed, opening the oxygen concentrator fully realizes that the smart oxygen chamber can provide oxygen therapy services to users.
[0033] In this embodiment and this solution, the control panel 7 can also display the user's blood oxygen and recommended oxygen production mode, intelligently prompt the current altitude, atmospheric pressure, DC and AC power supply modes, etc., so that the user can know the current working status of the oxygen production system, the current environmental status and the current user status.
[0034] like Figure 5 As shown, in this embodiment, the vehicle-mounted oxygen generation system further includes a breathing mask 2 connected to a pipe at the air outlet 6; the upper end of the breathing mask 2 is provided with a head strap 3 that can be extended and fixed around the head, and the lower end is provided with a neck strap 4 that can be extended and fixed around the neck. The vehicle-mounted oxygen generation system also includes elastic locking members 5 on both the head strap 3 and the neck strap 4. This embodiment provides a breathing mask 2 connected to the pipe at the air outlet 6, and the breathing mask 2 is equipped with elastic locking members 5 on both the head strap 3 and the neck strap. The breathing mask 2 is connected to the air outlet 6 through a pipe, ensuring that oxygen can be delivered to the user directly and stably, thereby improving the efficiency of oxygen inhalation; the retractable and fixed head and neck strap 4 design enables the breathing mask 2 to adapt to the head shape and neck size of different users, thereby improving the wearing comfort and fit; the setting of the elastic locking part 5 further enhances the fixing effect of the strap, preventing the mask from falling off or shifting during use, thereby providing the user with a safer and more reliable oxygen inhalation experience, especially suitable for scenarios such as plateau travel that require continuous oxygen supply.
[0035] See also Figure 6 , Figure 6 This is a flow chart of a method for using a vehicle-mounted oxygen production system provided by the present invention. Figure 6 As shown, the usage includes: S11. When the vehicle's power system is started, determine whether the vehicle-mounted oxygen generation system is in communication connection with an external device.
[0036] In this embodiment, when the vehicle power system is started, the communication connection status between the on-board oxygen production system and external devices (such as handheld terminals, on-board large screens, etc.) is automatically determined to ensure that the oxygen production system can respond to external commands or data interaction requirements in a timely manner. Its technical effect is to improve the system's intelligence level and user convenience, realize remote monitoring and control, and optimize oxygen supply management in scenarios such as plateau travel. At the same time, it enhances system stability and security, and avoids operational errors or functional abnormalities caused by communication interruptions.
[0037] S12: When the vehicle-mounted oxygen production system is connected to the external device for communication, the vehicle-mounted oxygen production system is started.
[0038] In this embodiment, after the on-board oxygen production system successfully establishes a communication connection with the external device, the startup process of the oxygen production system is automatically triggered. The technical effect is to realize intelligent startup control of the oxygen production system, ensuring that the user can conveniently start the system through the external device only when needed, avoiding ineffective energy consumption, and at the same time improving the oxygen supply response speed and operational convenience in scenarios such as plateau travel, thereby enhancing user experience and system energy efficiency.
[0039] S13. Obtain the current environmental status and determine the operating mode according to the current environmental status.
[0040] In this embodiment, staff or relevant experts can configure operating modes corresponding to different environmental conditions based on historical data or experience. For example, the operating efficiency of the oxygen production system can be determined based on the oxygen content.
[0041] S14. Control the vehicle-mounted oxygen production system to operate according to the operation mode.
[0042] In this embodiment, by obtaining the current environmental status (such as altitude, oxygen concentration, etc.), the operating mode of the on-board oxygen production system (such as high altitude mode, normal mode, etc.) is intelligently determined based on the environmental status, and the operation of the oxygen production system is automatically controlled accordingly. The technical effect is to achieve adaptive adjustment of the oxygen production system, ensure that efficient and accurate oxygen supply can be provided under different environmental conditions, optimize the user experience in scenarios such as plateau travel, and at the same time improve the system energy efficiency and safety, and reduce the need for manual intervention.
[0043] Although the present disclosure has been described in detail with reference to the aforementioned embodiments, those skilled in the art should understand that they can still modify the technical solutions described in the aforementioned embodiments, or make equivalent replacements for some of the technical features therein; and these modifications or replacements do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of the present disclosure.
Claims
1. A vehicle-mounted oxygen production system, characterized in that: The vehicle-mounted oxygen production system comprises: a housing, wherein the housing is provided with: an inverter connected to the vehicle's electrical system; A control panel, an air compressor, a molecular sieve system, and an electromagnetic flow valve are electrically connected to the inverter respectively; the air compressor, the molecular sieve system, and the electromagnetic flow valve are connected in sequence; The control panel is provided with a communication device that can communicate with external equipment; The control panel is connected to the air compressor, the molecular sieve system and the electromagnetic flow valve respectively, and controls the air compressor, the molecular sieve system and the electromagnetic flow valve to be turned on or off.
2. The vehicle-mounted oxygen production system according to claim 1, characterized in that: The vehicle-mounted oxygen production system further includes: A handheld terminal device in communication with the communication device; The handheld terminal device is provided with an instruction input device for sending control instructions to the control panel to control the opening or closing of the air compressor, the molecular sieve system and the electromagnetic flow valve through the control panel.
3. The vehicle-mounted oxygen production system according to claim 1, characterized in that: The vehicle-mounted oxygen production system further includes: The vehicle is provided with a large on-board screen which is in communication connection with the communication device and sends control instructions to the control panel, thereby controlling the opening or closing of the air compressor, molecular sieve system and electromagnetic flow valve through the control panel.
4. The vehicle-mounted oxygen production system according to claim 1, characterized in that: The vehicle-mounted oxygen production system further includes: a blower connected to the air compressor and sucking air into the air compressor; The control panel is connected to the fan to control the fan to be turned on or off; A ventilation filter group and an air intake filter are arranged on the outside of the fan.
5. The vehicle-mounted oxygen production system according to claim 1, characterized in that: The vehicle-mounted oxygen production system further includes: a secondary filter arranged between the molecular sieve system and the electromagnetic flow valve; and an oxygen inhaler communicated with the electromagnetic flow valve.
6. The vehicle-mounted oxygen production system according to claim 5, characterized in that: The vehicle-mounted oxygen production system further includes: an air outlet provided on the housing and communicating with the oxygen inhaler; A control panel is provided on the housing and connected to the control panel.
7. The vehicle-mounted oxygen production system according to claim 6, characterized in that: The vehicle-mounted oxygen production system further includes: a breathing mask connected to the air outlet pipe; The upper end of the breathing mask is provided with a head strap which can be stretched and fixed around the head, and the lower end is provided with a neck strap which can be stretched and fixed around the neck.
8. The vehicle-mounted oxygen production system according to claim 7, characterized in that: The head strap and the neck strap are both provided with elastic locking parts.
9. The vehicle-mounted oxygen production system according to any one of claims 1 to 8, characterized in that: The vehicle-mounted oxygen production system further includes: An electrical interface electrically connected to the inverter, wherein the electrical interface is connected to an electrical system of the vehicle.
10. A method for using a vehicle-mounted oxygen production system, characterized in that: The method comprises: When the electric system of the vehicle is started, determining whether the vehicle-mounted oxygen production system according to any one of claims 1 to 9 is in communication connection with an external device; When the vehicle-mounted oxygen production system is in communication connection with the external device, starting the vehicle-mounted oxygen production system; Obtaining a current environmental state, and determining an operating mode according to the current environmental state; The vehicle-mounted oxygen production system is controlled to operate according to the operating mode.