Control method and control system

By setting up multiple liquid storage chambers in the atomizer and utilizing the communication status switching mode of the terminal device, the problems of the atomizer's single flavor and complex user operation are solved, and the intelligent atomizer is enabled to automatically adapt to the needs of different scenarios.

CN120604874APending Publication Date: 2025-09-09HG INNOVATION LTD
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Patent Information

Application Number
CN202510828436.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-19
Publication Date
2025-09-09

AI Technical Summary

Technical Problem

Existing atomizers can only store one type of matrix to be atomized, resulting in a single aerosol flavor, poor user experience, and requiring users to manually switch working modes, which lacks intelligence.

Method used

The nebulizer contains at least two liquid storage chambers, each of which stores a matrix to be atomized with different components. The working mode is automatically switched through the communication connection status between the terminal device and the vehicle terminal, and the atomization process is controlled by the airflow sensor and the parameters set by the user.

Benefits of technology

The atomizer has been made intelligent, and can automatically adjust its working mode according to different scenarios, meeting the diverse needs of users and improving the user experience.

✦ Generated by Eureka AI based on patent content.

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Abstract

The embodiment of the invention provides a control method and a control system. The control method comprises the following steps: receiving a control instruction sent by terminal equipment; under the condition that the control instruction is a first control instruction for indicating a first working mode, a first to-be-atomized matrix in a first liquid storage cavity is atomized; and under the condition that the control instruction is a second control instruction for indicating a second working mode, the atomizer atomizes a second to-be-atomized matrix in a second liquid storage cavity according to an output signal of an airflow sensor in the atomizer and a first working parameter set by the user. The atomizer automatically atomizes the to-be-atomized substrates stored in the different liquid storage cavities according to the working modes indicated by the different control instructions by receiving the control instructions, the diversified requirements of users can be met, the intelligent degree of the atomizer is improved, and the use experience of the users is improved.
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Description

Technical Field

[0001] The present application relates to the field of electronic atomization, and in particular to a control method and a control system. Background Art

[0002] A nebulizer is an instrument that converts liquid into micron-sized droplets. A nebulizer is usually provided with a liquid storage chamber to store the matrix to be atomized.

[0003] Existing atomizers usually store a matrix to be atomized. The atomizer atomizes the matrix to be atomized in the liquid storage chamber, and the resulting aerosol has a single flavor, which cannot meet the diverse needs of users. In addition, existing atomizers require users to manually switch working modes, which is not convenient and intelligent, and the user experience is poor. Summary of the Invention

[0004] The embodiments of the present application provide a control method and a control system that can meet the diverse needs of users, improve the intelligence of the atomizer, and enhance the user experience.

[0005] In one embodiment, a control method is provided for use in an atomizer, the method comprising:

[0006] Receive control instructions sent by terminal equipment;

[0007] When the control instruction is a first control instruction indicating a first working mode, atomizing the first substrate to be atomized in the first liquid storage chamber;

[0008] When the control instruction is a second control instruction indicating a second operating mode, the nebulizer atomizes the second substrate to be atomized in the second liquid storage chamber according to the output signal of the airflow sensor in the nebulizer and the first operating parameter set by the user;

[0009] Among them, the first control instruction is a control instruction sent to the atomizer when the terminal device detects that a communication connection is established with the vehicle-mounted terminal; the second control instruction is a control instruction sent to the atomizer when the terminal device detects that a communication connection is not established with the vehicle-mounted terminal.

[0010] In one embodiment, an atomization method is provided, which is applied to a terminal device, and the method includes:

[0011] When the terminal device detects that a communication connection has been established with the vehicle-mounted terminal, a first control instruction is sent to the atomizer; the first control instruction is used to indicate that the operating mode of the atomizer is the first operating mode;

[0012] When the terminal device detects that no communication connection is established with the vehicle-mounted terminal, a second control instruction is sent to the atomizer; the second control instruction is used to indicate that the working mode of the atomizer is the second working mode.

[0013] In one embodiment, a control system is provided, the control system comprising a terminal device and an atomizer;

[0014] The atomizer comprises at least two liquid storage chambers, each storing a matrix to be atomized with a different composition; a connection is established between the atomizer and the terminal device;

[0015] The atomizer can execute the control method as described above for the atomizer, or the terminal device can execute the control method as described above for the terminal device.

[0016] In one embodiment, a control device is provided for use in a nebulizer. The nebulizer includes an airflow sensor and at least two liquid storage chambers, each of which stores a substrate to be atomized with a different composition. The nebulizer can selectively atomize the substrate to be atomized in different liquid storage chambers. The control device includes:

[0017] A receiving module, used for receiving control instructions sent by a terminal device;

[0018] a first atomization module, configured to atomize a first substrate to be atomized in the first liquid storage chamber when the control instruction is a first control instruction indicating a first operating mode;

[0019] a second atomization module, configured to, when the control instruction is a second control instruction indicating a second operating mode, cause the atomizer to atomize a second substrate to be atomized in the second liquid storage chamber according to an output signal of an airflow sensor in the atomizer and a first operating parameter set by a user;

[0020] Among them, the first control instruction is a control instruction sent to the atomizer when the terminal device detects that a communication connection is established with the vehicle-mounted terminal; the second control instruction is a control instruction sent to the atomizer when the terminal device detects that a communication connection is not established with the vehicle-mounted terminal.

[0021] In one embodiment, a control device is provided, which is applied to a terminal device. The device includes:

[0022] A first sending module is configured to send a first control instruction to the atomizer when the terminal device detects that a communication connection has been established with the vehicle-mounted terminal; the first control instruction is configured to indicate that the operating mode of the atomizer is the first operating mode;

[0023] The second sending module is used to send a second control instruction to the atomizer when the terminal device detects that no communication connection is established with the vehicle-mounted terminal; the second control instruction is used to indicate that the working mode of the atomizer is the second working mode.

[0024] In one embodiment, an electronic device is provided, which includes a memory and one or more programs, wherein the one or more programs are stored in the memory and configured to be executed by one or more processors as the control method described above.

[0025] In one embodiment, a readable storage medium is provided. When instructions in the storage medium are executed by a processor of an electronic device, the electronic device can execute the control method as described above.

[0026] The embodiments of the present application include the following advantages:

[0027] A control instruction sent by a terminal device that establishes a connection with the atomizer is received. When the control instruction is a first control instruction indicating a first working mode, the first substrate to be atomized in the first liquid storage chamber is atomized. When the control instruction is a second control instruction indicating a second working mode, the atomizer atomizes the second substrate to be atomized in the second liquid storage chamber according to the output signal of the airflow sensor in the atomizer and the first working parameter set by the user. The substrate to be atomized in the liquid storage chamber corresponding to the working mode is automatically atomized by the working mode indicated by the control instruction, rather than the user manually switching the working mode, thereby improving the intelligence of the atomizer, simplifying user operation, and improving the user experience. Moreover, according to the above content, it can be seen that the atomizer provides different working modes to adapt to the connection status between the terminal device and the vehicle-mounted terminal. When the connection status between the terminal device and the vehicle-mounted terminal changes, the atomizer automatically adjusts the corresponding working mode to adapt, which can meet the diverse needs of users. BRIEF DESCRIPTION OF THE DRAWINGS

[0028] In order to more clearly illustrate the technical solutions of the embodiments of the present invention, the following briefly introduces the drawings required for use in the description of the embodiments of the present application. Obviously, the drawings described below are only some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative labor.

[0029] Figure 1 This is a flowchart of the steps of an embodiment of a control method of the present application;

[0030] Figure 2 is a flowchart of another control method embodiment of the present application;

[0031] Figure 3 This is a structural block diagram of a control device of the present application;

[0032] Figure 4 It is a structural block diagram of another control device of the present application;

[0033] Figure 5 This is a structural block diagram of an electronic device provided as an example in this application. DETAILED DESCRIPTION

[0034] The following will be combined with the drawings in the embodiments of this application to clearly and completely describe the technical solutions in the embodiments of this application. Obviously, the embodiments described are part of the embodiments of this application, not all of them. Based on the embodiments in this application, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of this application.

[0035] The terms "first", "second", etc. in the specification and claims of this application are used to distinguish similar objects, and are not used to describe a specific order or sequence. It should be understood that the data used in this way can be interchangeable under appropriate circumstances, so that the embodiments of the present application can be implemented in an order other than those illustrated or described here, and the objects distinguished by "first", "second", etc. are generally of one type, and the number of objects is not limited. For example, the first object can be one or more. In addition, the term "and / or" in the specification and claims is used to describe the association relationship of associated objects, indicating that three relationships can exist. For example, A and / or B can represent: A exists alone, A and B exist at the same time, and B exists alone. The character " / " generally indicates that the objects associated before and after are in an "or" relationship. In the embodiments of this application, the term "multiple" refers to two or more, and other quantifiers are similar.

[0036] The embodiment of the present application provides a control system, which includes a terminal device and an atomizer; the atomizer includes at least two liquid storage chambers, each of which stores a matrix to be atomized with different components; and a connection is established between the atomizer and the terminal device. Among them, the terminal device and the vehicle-mounted terminal can automatically establish a communication connection when preset conditions are met, and the connection status between the terminal device and the vehicle-mounted terminal can indicate whether the user is using the vehicle or whether the vehicle-mounted terminal is turned on. The terminal device can detect the connection status between the vehicle-mounted terminal and send different control instructions to the atomizer based on the connection status between the terminal device and the vehicle-mounted terminal. The atomizer atomizes different matrices to be atomized according to different control instructions. Specifically, when the user uses the vehicle, the terminal device automatically connects to the vehicle-mounted terminal, the mobile phone sends a first control instruction to the atomizer, and the atomizer atomizes the first matrix to be atomized after receiving the first control instruction; when the user leaves the vehicle or the vehicle-mounted terminal is turned off, the terminal device and the vehicle-mounted terminal do not establish a communication connection, the terminal device sends a second control instruction to the atomizer, and the atomizer atomizes the second matrix to be atomized after receiving the second control instruction.

[0037] Reference Figure 1 , shows a flow chart of steps of an embodiment of a control method of the present application, the method may specifically include the following steps:

[0038] Step 101: Receive a control instruction sent by a terminal device;

[0039] Step 102: When the control instruction is a first control instruction indicating a first working mode, atomize the first substrate to be atomized in the first liquid storage chamber;

[0040] Step 103: When the control instruction is a second control instruction indicating a second working mode, the nebulizer atomizes the second substrate to be atomized in the second liquid storage chamber according to the output signal of the airflow sensor in the nebulizer and the first working parameter set by the user.

[0041] Among them, the first control instruction is a control instruction sent to the atomizer when the terminal device detects that a communication connection is established with the vehicle-mounted terminal; the second control instruction is a control instruction sent to the atomizer when the terminal device detects that a communication connection is not established with the vehicle-mounted terminal.

[0042] The control method provided in the embodiments of the present application can be applied to a nebulizer comprising at least two liquid storage chambers, each storing a different composition of a substrate to be atomized. The substrate to be atomized is a solution that is atomized by the nebulizer to form an aerosol. The nebulizer has at least two different operating modes. In each operating mode, the nebulizer atomizes the substrate to be atomized in different liquid storage chambers, releasing aerosols with different scents. Specifically, the first operating mode corresponds to the first liquid storage chamber, and the second operating mode corresponds to the second liquid storage chamber. In the first operating mode, the nebulizer automatically atomizes the first substrate to be atomized. In the second operating mode, atomization is performed based on the output signal of an airflow sensor and first operating parameters set by the user. Specifically, the airflow sensor is used to detect the airway pressure of the nebulizer. When the airway pressure changes, the airflow sensor generates an output signal, and the nebulizer controls the atomization process based on the output signal of the airflow sensor. The atomization target and the atomization method are user-defined, which can meet different user needs and improve the user experience.

[0043] Among them, the first working mode and the second working mode are two independent working modes that exist in parallel and have no necessary order. For example, for the second working mode, regardless of whether the terminal device has established a communication connection with the vehicle-mounted terminal before, as long as the terminal device detects that no communication connection is currently established with the vehicle-mounted terminal, the atomizer is controlled to perform atomization processing in accordance with the second working mode. If the terminal device has established a communication connection with the vehicle-mounted terminal before, when the terminal device detects that the communication connection with the vehicle-mounted terminal is disconnected, the working mode of the atomizer is switched from the first working mode to the second working mode. In the case where no communication connection has been established between the terminal device and the vehicle-mounted terminal before, as long as the terminal device and the vehicle-mounted terminal have not established a communication connection, the atomizer is controlled to perform atomization processing in accordance with the second working mode.

[0044] It should be noted that a connection is established between the atomizer and the terminal device. The atomizer receives control commands from the terminal device and sets the atomizer's operating mode according to the control commands. The terminal device can be a mobile phone, computer, tablet, etc. The connection between the atomizer and the terminal device can be at least one of the following: the atomizer is paired with the terminal device via the Bluetooth protocol and the atomizer is remotely controlled through the application on the terminal device; the atomizer can also be powered and connected to the terminal device via a USB or Type-C interface, while supporting data transmission (such as power status and mode switching).

[0045] Among them, a communication connection can also be established between the terminal device and the vehicle-mounted terminal through a wired module or a wireless module. Specifically, the Bluetooth of the terminal device and the vehicle-mounted Bluetooth are paired, or the terminal device and the vehicle-mounted terminal are connected through a designated interface and support data transmission. The situation in which a communication connection is established between the terminal device and the vehicle-mounted terminal can indicate that the terminal device is within the preset range of the vehicle and the vehicle is in the starting state. Regardless of whether the communication connection between the vehicle-mounted terminal and the terminal device is established through a wireless module or a wired module, there is a distance limit. As the distance between the terminal device and the vehicle exceeds the distance limit of the communication connection, the communication connection between the terminal device and the vehicle-mounted terminal is disconnected. The fact that no communication connection is established between the terminal device and the vehicle-mounted terminal can indicate that the terminal device is not within the preset range of the vehicle or the vehicle is in the off state. For example, in an outdoor environment.

[0046] During the process of a user entering a vehicle, using the vehicle, and leaving the vehicle, the Bluetooth of the terminal device is pre-activated. After the terminal device enters the vehicle, the vehicle's onboard Bluetooth is activated when the vehicle is started, and then paired with the Bluetooth of the terminal device to complete the establishment of a communication connection between the terminal device and the vehicle. The user leaves the vehicle, and the terminal device also leaves the vehicle; or the vehicle is turned off, which stops the power supply, turns off the onboard Bluetooth, and disconnects the communication connection between the onboard Bluetooth and the terminal device; or the terminal device's Bluetooth is turned off due to human control or abnormal reasons, for example, the user manually turns off the terminal device's Bluetooth, or the terminal device malfunctions, causing the terminal device's Bluetooth to turn off.

[0047] For example, the atomizer provided in the embodiment of the present application includes two liquid storage chambers, the first liquid storage chamber stores ingredients containing refreshing effects (mint essential oil, lemon essential oil, caffeine and other ingredients), and the second liquid storage chamber stores the matrix to be atomized containing the smoke oil component. The first working mode can also be called aromatherapy mode or refreshing mode. In order to reduce the possibility of risk caused by driving fatigue, the atomizer is controlled to atomize the matrix to be atomized containing refreshing effects during the vehicle driving process. Specifically, the terminal device can determine the status of the vehicle by detecting whether a communication connection is established with the vehicle-mounted terminal. The Bluetooth on the terminal device is preset to the on-state. When the vehicle is started, the vehicle-mounted Bluetooth is started and then establishes a communication connection with the terminal device. After the terminal device detects that communication is established with the vehicle-mounted terminal, it automatically sends a first control instruction to the atomizer through the first control instruction to enter the first working mode (aromatherapy mode or refreshing mode), extract mint essential oil from the first liquid storage chamber for atomization, and release mint-flavored aerosol, which can relieve the driver's fatigue in the process of driving the car. When the vehicle is turned off or the driver leaves the vehicle, the communication connection between the vehicle-mounted Bluetooth and the terminal device is disconnected, and the operating mode of the atomizer is switched to the second operating mode through the second control instruction.

[0048] In an embodiment of the present application, a communication connection is established between the terminal device and the atomizer, and the atomizer determines the working mode by receiving the control instruction sent by the terminal device. When the first control instruction is received, it is indicated that a communication connection is established between the terminal device and the vehicle-mounted terminal, and the atomizer is controlled to enter the first working mode, and the first substrate to be atomized with a refreshing effect stored in the first liquid storage chamber is atomized to relieve driving fatigue; when the second control instruction is received, it is indicated that no communication connection is established between the terminal device and the vehicle-mounted terminal, and the atomizer atomizes the second substrate to be atomized in the second liquid storage chamber according to the output signal of the airflow sensor and the working parameters set by the user, meeting the different needs of the user and improving the user's suction experience. Through the working mode indicated by the control instruction, the substrate to be atomized in the liquid storage chamber corresponding to the working mode is automatically atomized, rather than the user manually switching the working mode, thereby improving the intelligence of the atomizer, simplifying the user operation, and improving the user's experience. Moreover, according to the above content, it can be seen that the atomizer provides different working modes to adapt to the connection state between the terminal device and the vehicle-mounted terminal. When the connection status between the terminal device and the vehicle terminal changes, the atomizer automatically adjusts the corresponding working mode to adapt, which can meet the diverse needs of users.

[0049] In some examples, when the control instruction is a first control instruction indicating a first operating mode, atomizing the first substrate to be atomized in the first liquid storage chamber includes:

[0050] Step S11: obtaining a second operating parameter corresponding to the first operating mode; wherein the second operating parameter includes a first atomization frequency;

[0051] Step S12: performing intermittent atomization on the first substrate to be atomized according to the first atomization frequency.

[0052] The operating parameters are pre-set and correspond to the operating modes. After receiving the control command, the operating parameters of the atomizer are automatically determined based on the operating mode indicated by the control command and the mapping relationship between the operating mode and the operating parameters. The operating parameters corresponding to each operating mode can be the same or different. When the operating parameters corresponding to each operating mode are different, different atomization strategies can be formed based on different operating parameter combinations, allowing the atomizer to adapt to a wider range of application scenarios.

[0053] It should be noted that the second operating parameters corresponding to atomizers using different atomization methods vary. For example, if the atomizer uses a low-temperature heating atomization method, the atomizer heats the atomized substrate to form an aerosol. The second operating parameter may include at least one of atomization temperature, heating time, atomization power, and atomization frequency. The atomization temperature is determined based on the boiling point of the first atomized substrate. Atomization temperature below the boiling point of the first atomized substrate prevents excessive temperature from causing rapid decomposition or evaporation of the first atomized substrate. Atomization power and atomization volume are positively correlated: higher atomization power results in higher atomization volume, while lower atomization power results in lower atomization volume. Atomization duration refers to the duration of a single atomization. For example, if the first atomized substrate is peppermint essential oil, and a communication connection is established between the terminal device and the vehicle terminal, for example, the atomization temperature is 120°C, the heating time is 3 minutes per session, and heating is repeated every 5 minutes. This is suitable for use in a vehicle interior, effectively dispersing the essential oil without excessive consumption or causing discomfort. When the atomizer adopts ultrasonic atomization, the ultrasonic atomizer converts the liquid into tiny droplets through the high-frequency vibration of the piezoelectric transducer. The second working parameters of the ultrasonic atomizer may include: vibration frequency, atomization power, atomization time, and atomization frequency. For example, the vibration frequency is 1.8 to 2.2 MHz; the atomization power is 12 to 20 W (dynamically adjusted according to the size of the vehicle's interior space); and atomization is performed once every 3 seconds.

[0054] The first atomization frequency refers to the number of atomizations per unit time. The first substrate to be atomized is released intermittently according to the first atomization frequency to reduce the waste of the substrate to be atomized and ensure that the aerosol concentration in the air is appropriate.

[0055] In an embodiment of the present application, when the atomizer receives the first control instruction, it determines the second operating parameter corresponding to the first operating mode according to the correspondence between the first operating mode and the second operating parameter, for example, parameters such as atomization temperature, heating time, and vibration frequency, so as to more accurately control the atomization process of the atomizer. When the operating parameters corresponding to each operating mode are different, different atomization strategies can be formed according to different operating parameter combinations so that the atomizer can adapt to more application scenarios. In addition, continuous atomization of peppermint essential oil will make the fragrance in the car too strong. Being in an environment with too strong a fragrance for a long time will cause dizziness, nausea and other discomforts to the driver and passengers. Intermittent release can avoid this problem and keep the fragrance in the car at a fresh and comfortable level. Intermittent release can effectively utilize essential oils and avoid waste. If continuous atomization is used, a large amount of essential oil particles may be deposited on the surface inside the car or filtered by the air conditioning system. Intermittent release can be used on demand to extend the use time of the essential oil.

[0056] In some examples, the second operating parameter further includes: at least one of a first atomization duration and a first atomization power; and obtaining the second operating parameter corresponding to the first operating mode includes at least one of the following:

[0057] Step S21: parse the first control instruction to obtain the second operating parameter;

[0058] Step S22: receiving the second operating parameter sent by the terminal device;

[0059] Step S23: determining the second operating parameter corresponding to the first operating mode according to a mode mapping table stored locally in the atomizer; wherein the mode mapping table records the correspondence between each operating mode and operating parameter of the atomizer.

[0060] In the case where the first control instruction carries the second operating parameter, that is, the first control instruction indicates the first operating mode and the second operating parameter corresponding to the first operating mode. The first control instruction is parsed to obtain the second operating parameter. For example, assume that the first control instruction sent by the terminal device is a byte sequence in the format of "0x01 0x020x03 0x04", where the first two bytes "0x010x02" represent the operating mode, and the last two bytes "0x03 0x04" represent the operating parameters. After receiving this instruction, the atomizer will extract "0x03 0x04" as the second operating parameter according to the preset instruction format parsing rules. This parameter may represent an atomization power of 30%.

[0061] The terminal device sends the first control instruction and the second operating parameter separately. The terminal device can automatically send the second operating parameter to the atomizer, or it can send the second operating parameter to the atomizer after receiving the atomizer's response to the first control instruction. Accordingly, the atomizer receives the first control instruction and the second operating parameter separately. For example, if the atomizer's first operating mode is aromatherapy mode, the terminal device first sends the first control instruction to the atomizer, instructing it to enter "aromatherapy mode," and then separately sends the second operating parameter, such as an atomization frequency of 20Hz. After receiving these two pieces of information, the atomizer sets its operating state based on the operating mode and corresponding parameters. Alternatively, the terminal device can first send the first control instruction to the atomizer, instructing it to enter "aromatherapy mode." After receiving the first control instruction, the atomizer sends a parameter query request to the terminal device. The parameter query request carries the atomizer's device information and an operating mode identifier. The device information can be used to distinguish different atomizers, and the operating mode identifier is used to distinguish different operating modes of the same atomizer. After receiving the parameter query request, the terminal device sends the second operating parameter to the atomizer indicated in the parameter query request.

[0062] Alternatively, the atomizer pre-stores a mode mapping table that records the correspondence between various operating modes and corresponding operating parameters. When the atomizer receives a first operating mode in a first control instruction from a terminal device, it searches the locally stored mode mapping table to determine the second operating parameters corresponding to the first operating mode. This approach utilizes the atomizer's own storage resources, allowing the atomizer to quickly determine operating parameters based on its existing configuration, reducing its reliance on the terminal device. For example, the atomizer's locally stored mode mapping table may state: "Operating Mode 1 corresponds to an atomization power of 15Hz and an atomization frequency of once every 5 seconds; Operating Mode 2 corresponds to an atomization power of 10Hz and an atomization frequency of once every 3 seconds." When the terminal device sends a first control instruction indicating "Operating Mode 1," the atomizer searches the local mode mapping table and determines the second operating parameters as an atomization power of 15Hz and an atomization frequency of once every 5 seconds.

[0063] In an embodiment of the present application, the atomizer parses the first control instruction to obtain the second operating parameter, or receives the first control instruction and the second operating parameter from the terminal device separately, or uses its own storage resources to preset a mode mapping table. After receiving the first control instruction, the atomizer determines the second operating parameter corresponding to the first operating mode according to the mode mapping table. Through the above methods, the atomizer can automatically determine the operating mode and operating parameters, automatically adjust the operating parameters of the atomizer, and more accurately, flexibly, and comprehensively control the atomization process of the atomizer according to the operating parameters.

[0064] In some examples, when the control instruction is a second control instruction indicating a second operating mode, the nebulizer atomizes the second substrate to be atomized in the second liquid storage chamber according to the output signal of the airflow sensor in the nebulizer and the first operating parameter set by the user, including:

[0065] Step S31: determining at least one target liquid storage cavity according to a first working parameter set by a user;

[0066] Step S32: atomizing the substrate to be atomized in the at least one target liquid storage chamber when the output signal is received;

[0067] Wherein, the output signal is generated when the airflow sensor detects a decrease in the airway pressure of the nebulizer; the target liquid storage chamber includes the second liquid storage chamber, or the target liquid storage chamber includes the second liquid storage chamber and at least one first liquid storage chamber.

[0068] The airflow sensor detects the airway pressure of the atomizer. When the user inhales through the atomizer, the airway pressure of the atomizer decreases, and the airflow sensor generates an output signal. Upon receiving the output signal, the atomizer performs atomization according to the first operating parameters preset by the user. The first operating parameters may include at least one of the following: the number of atomizer cores, flavor, atomization power, atomization duration, atomization frequency, and liquid reservoir identification.

[0069] In the embodiment of the present application, there is a correspondence between the operating modes and the liquid storage chambers. The first operating mode corresponds to the first liquid storage chamber, and the second operating mode corresponds to the second liquid storage chamber. Different first liquid storage chambers store substrates to be atomized of different flavors, while the second liquid storage chamber stores substrates to be atomized containing e-liquid components. In the second operating mode, when a user inhales, the atomizer, while ensuring that the second substrate to be atomized is atomized, determines whether to simultaneously atomize the substrate to be atomized in the first liquid storage chamber based on the first operating parameter set by the user.

[0070] It should be noted that the atomizer may provide a button or a display interface, and the user may set the first operating parameter by pressing the button or clicking on the display interface. Alternatively, the user may click on the display interface provided by the terminal device to set the first operating parameter, and the terminal device may transmit the first operating parameter to the atomizer, which then atomizes according to the received first operating parameter. In the second operating mode, the atomizer atomizes when the user has a puffing request, that is, atomization is performed when the user takes a puff.

[0071] Exemplarily, when the first working parameter set by the user indicates that the target number of liquid storage cavities is 1, the second substrate to be atomized in a single second liquid storage cavity is atomized to produce an aerosol of a single flavor; when the first working parameter set by the user indicates that the target number of liquid storage cavities is at least two, the second substrate to be atomized in the second liquid storage cavity and the first substrate to be atomized of other flavors selected by the user are atomized simultaneously to produce an aerosol of mixed flavors.

[0072] In an embodiment of the present application, the substrates to be atomized in different liquid storage chambers are atomized based on the output signal generated when the airflow sensor detects a decrease in airway pressure and the first operating parameters set by the user on the atomizer or terminal device. The puffing flavor can be determined based on the parameters set by the user, and the substrate to be atomized in a single liquid storage chamber can be atomized to produce an aerosol with a single flavor; or the substrates to be atomized in at least two liquid storage chambers can be atomized simultaneously to produce an aerosol with mixed flavors. In particular, atomization is performed based on the user's puffing action and the first operating parameters set by the user, meeting the user's different puffing needs and improving the user's puffing experience.

[0073] In some examples, the method further includes:

[0074] In a case where the control instruction is a third control instruction indicating a target operating mode, obtaining a substrate to be atomized from a liquid storage chamber corresponding to the target operating mode, and atomizing the substrate to be atomized;

[0075] The target operating mode is determined according to the usage scenario of the atomizer; the target operating mode is the first operating mode or the second operating mode.

[0076] In an embodiment of the present application, a terminal device is connected to at least one atomizer, and the terminal device determines the working mode of the atomizer according to the usage scenario of each atomizer. Among them, the usage scenario is an extension of the application of the atomizer to the vehicle scenario, that is, in addition to determining the working mode of the atomizer according to the connection status between the terminal device and the vehicle, the usage scenario of the atomizer can also be determined according to other methods, and the working mode of the atomizer can be determined according to other usage scenarios. For example, for an atomizer, when the terminal device recognizes that the usage scenario of the atomizer is an outdoor scenario, it determines that the target working mode of the atomizer is the second working mode, and sends a control instruction to the atomizer. When the terminal device recognizes that the usage scenario of the atomizer is a meeting scenario, it determines that the working mode of the atomizer is the first working mode, and sends a control instruction to the atomizer. For example, when the voice recognition module of the terminal device or the conference application on the terminal device recognizes that the user is in a meeting, it is determined that the usage scenario of the atomizer is a meeting scenario.

[0077] In an embodiment of the present application, a terminal device is connected to at least one atomizer. In addition to the application of the atomizer in a vehicle scenario, the terminal device can also identify the atomizer in other usage scenarios and determine the working mode of the atomizer, thereby enriching the application scenarios of the atomizer.

[0078] In summary, the control method provided in the embodiment of the present application is applied to a nebulizer. The working mode indicated by the control instruction sent by the terminal device can automatically atomize the substrate to be atomized in the liquid storage chamber corresponding to the working mode, rather than the user manually switching the working mode, thereby improving the intelligence of the nebulizer, simplifying the user operation, and improving the user experience. In addition, according to the above content, the nebulizer provides different working modes to adapt to the connection status between the terminal device and the vehicle. When the connection status between the terminal device and the vehicle-mounted terminal changes, the nebulizer automatically adjusts the corresponding working mode to adapt, which can meet the diverse needs of the user. Specifically, when the vehicle is started, the nebulizer is controlled to enter the aromatherapy mode to achieve a refreshing effect. When the vehicle is turned off or the passenger leaves the vehicle, the nebulizer is controlled to enter the normal working mode, such as the suction mode, and the nebulizer is controlled to atomize the second substrate to be atomized according to the change in the airway pressure of the nebulizer.

[0079] Reference Figure 2 , shows a flowchart of a control method embodiment of the present application, the method is applied to a terminal device, and specifically may include the following steps:

[0080] Step 201: When the terminal device detects that a communication connection has been established with the vehicle-mounted terminal, a first control instruction is sent to the atomizer; the first control instruction is used to indicate that the operating mode of the atomizer is the first operating mode;

[0081] Step 202: When the terminal device detects that no communication connection is established with the vehicle-mounted terminal, a second control instruction is sent to the atomizer; the second control instruction is used to indicate that the operating mode of the atomizer is the second operating mode.

[0082] The terminal device and the vehicle-mounted terminal can establish a communication connection via a wireless or wired connection. Establishing a communication connection between the terminal device and the vehicle-mounted terminal is used in the first scenario to indicate vehicle startup or passenger boarding. Disconnecting the communication connection between the terminal device and the vehicle-mounted terminal is used in the second scenario to indicate vehicle shutdown or passenger exit. In the first scenario, a first control instruction is sent to the atomizer, controlling the atomizer to perform atomization processing in a first operating mode to enhance the driver's alertness.

[0083] In an embodiment of the present application, when the terminal device detects that a communication connection has been established with the vehicle-mounted terminal, a first control instruction is sent to the atomizer to control the atomizer to enter a first working mode. By detecting the connection status between the terminal device and the vehicle-mounted terminal, corresponding control instructions are sent to the atomizer to control the atomizer to enter different working modes. The user does not need to manually switch the working mode of the atomizer, thereby improving the intelligence of the atomizer. In addition, the terminal device sends corresponding control instructions to the atomizer based on the connection status with the vehicle-mounted terminal to control the atomizer to enter the corresponding working mode. This can bind the working mode of the atomizer to the vehicle driving scenario, enriching the application scenarios of the atomizer.

[0084] In some examples, when the terminal device detects that a communication connection has been established with the vehicle-mounted terminal, sending a first control instruction to the atomizer includes:

[0085] Step S41: when the terminal device detects that a communication connection has been established with the vehicle-mounted terminal, obtaining a second operating parameter;

[0086] Step S42: Generate the first control instruction according to the second operating parameter, and send the first control instruction to the atomizer.

[0087] In an embodiment of the present application, when a communication connection is established between the terminal device and the vehicle-mounted terminal, the second operating parameter is packaged into the first control instruction and sent to the atomizer together with the first control instruction, so that after the atomizer parses the first control instruction, it can directly obtain the second operating parameter corresponding to the first operating mode, thereby improving the efficiency of controlling the atomizer.

[0088] In some examples, the method further includes:

[0089] Step S51: determining the second operating parameter of the atomizer in the first operating mode and the first operating parameter of the atomizer in the second operating mode according to the device identification of the atomizer;

[0090] Step S52: Send the second operating parameter and the first operating parameter to the atomizer.

[0091] In the embodiments of the present application, each atomizer has corresponding operating parameters, which can be stored in the cloud or in a terminal device. Based on the atomizer's unique device identifier and the correspondence between the device and the operating parameters, the atomizer's operating parameters in different modes are determined and sent to the atomizer to automatically control the atomizer to perform atomization processing according to the operating parameters.

[0092] In some examples, the method further includes:

[0093] Step S61: determining the usage scenario corresponding to each of the at least one atomizer;

[0094] Step S62: determining a target operating mode corresponding to each of the at least one atomizer according to the usage scenario corresponding to each of the at least one atomizer;

[0095] Step S63: Generate a third control instruction corresponding to each atomizer according to the target operating mode corresponding to the at least one atomizer, and send the third control instruction to each atomizer; the third control instruction is used to instruct the atomizer to perform atomization processing according to the target operating mode.

[0096] Among them, a connection is established between the terminal device and at least one atomizer, each atomizer is independent of each other, and the terminal device can control each atomizer independently. The usage and working mode application scenarios of each atomizer can be the same or different. The terminal device can determine the usage scenario of each atomizer based on at least one of the following factors: the positioning information of the atomizer, the user activity status in the environment where the atomizer is located, the user's interactive operations on the terminal device, etc. For example, when the user is holding a meeting on the terminal device, the usage scenario corresponding to the first atomizer is the meeting scenario, and the first atomizer is controlled to enter the aromatherapy mode; when the user is resting in a vehicle or room, the usage scenario corresponding to the second atomizer is the sleeping scenario, and the second atomizer is controlled to enter the calming mode.

[0097] In an embodiment of the present application, a terminal device establishes a communication connection with at least one atomizer, and independently controls the working mode of each atomizer according to the usage scenario of each atomizer.

[0098] The control method provided in the embodiment of the present application is applied to a terminal device, and can determine the usage scenario of the nebulizer through the terminal device, and then send different control instructions to the nebulizer to control the nebulizer to enter different working modes. No manual operation by the user is required, and the effect of intelligent control of the nebulizer is achieved. Specifically, when the vehicle is started, the nebulizer is controlled to enter the aromatherapy mode to achieve a refreshing effect. When the vehicle is turned off or the passenger leaves the vehicle, the nebulizer is controlled to enter the normal working mode, such as the suction mode, and the nebulizer is controlled to atomize the second substrate to be atomized according to the change in the airway pressure of the nebulizer.

[0099] Device embodiment

[0100] Reference Figure 3 , shows a structural block diagram of a control device of the present application, which is applied to an atomizer and may specifically include:

[0101] Receiving module 310, used to receive control instructions sent by the terminal device;

[0102] The first atomization module 320 is configured to atomize the first substrate to be atomized in the first liquid storage chamber when the control instruction is a first control instruction indicating the first operating mode;

[0103] The second atomization module 330 is configured to atomize the second substrate to be atomized in the second liquid storage chamber according to the output signal of the airflow sensor in the atomizer and the first operating parameter set by the user when the control instruction is a second control instruction indicating the second operating mode;

[0104] Among them, the first control instruction is a control instruction sent to the atomizer when the terminal device detects that a communication connection is established with the vehicle-mounted terminal; the second control instruction is a control instruction sent to the atomizer when the terminal device detects that a communication connection is not established with the vehicle-mounted terminal.

[0105] In some examples, the first atomization module includes:

[0106] A first parameter acquisition module, configured to acquire a second operating parameter corresponding to the first operating mode, wherein the second operating parameter includes a first atomization frequency;

[0107] The first atomization submodule is used to perform intermittent atomization on the first substrate to be atomized according to the first atomization frequency.

[0108] In some examples, the second operating parameter further includes at least one of a first atomization duration and a first atomization power; and the first parameter acquisition module includes:

[0109] a parsing module, configured to parse the first control instruction to obtain the second operating parameter;

[0110] a parameter receiving module, configured to receive the second operating parameter sent by the terminal device;

[0111] The parameter acquisition submodule is used to determine the second operating parameter corresponding to the first operating mode according to the mode mapping table locally stored in the atomizer; wherein the mode mapping table records the correspondence between each operating mode and operating parameter of the atomizer.

[0112] In some examples, the second atomization module includes:

[0113] a liquid storage cavity determination module, configured to determine at least one target liquid storage cavity according to a first operating parameter set by a user;

[0114] a second atomization submodule, configured to atomize the matrix to be atomized in the at least one target liquid storage cavity upon receiving the output signal;

[0115] Wherein, the output signal is generated when the airflow sensor detects a decrease in the airway pressure of the nebulizer; the target liquid storage chamber includes the second liquid storage chamber, or the target liquid storage chamber includes the second liquid storage chamber and at least one first liquid storage chamber.

[0116] In summary, the control device provided in the embodiment of the present application is applied to the atomizer. It can automatically atomize the substrate to be atomized in the liquid storage chamber corresponding to the working mode according to the working mode indicated by the received control instruction, rather than the user manually switching the working mode, thereby improving the intelligence of the atomizer, simplifying the user operation, and improving the user experience. In addition, according to the above content, the atomizer provides different working modes to adapt to the connection status between the terminal device and the vehicle-mounted terminal. When the connection status between the terminal device and the vehicle-mounted terminal changes, the atomizer automatically adjusts the corresponding working mode to adapt, which can meet the diverse needs of the user. Specifically, when the vehicle is started, the atomizer is controlled to enter the aromatherapy mode to achieve a refreshing effect. When the vehicle is turned off or the passenger leaves the vehicle, the atomizer is controlled to enter the normal working mode, such as the suction mode, and the airway pressure of the atomizer is changed to control the atomizer to atomize the second substrate to be atomized.

[0117] Reference Figure 4 , shows a structural block diagram of a control device of the present application, which is applied to a terminal device and may specifically include:

[0118] The first sending module 410 is configured to send a first control instruction to the atomizer when the terminal device detects that a communication connection has been established with the vehicle-mounted terminal; the first control instruction is configured to indicate that the operating mode of the atomizer is the first operating mode;

[0119] The second sending module 420 is used to send a second control instruction to the atomizer when the terminal device detects that no communication connection is established with the vehicle-mounted terminal; the second control instruction is used to indicate that the working mode of the atomizer is the second working mode.

[0120] In some examples, the first sending module includes:

[0121] A second parameter acquisition module, configured to acquire a second operating parameter when the terminal device detects that a communication connection has been established with the vehicle-mounted terminal;

[0122] The first sending submodule is configured to generate the first control instruction according to the second operating parameter, and send the first control instruction to the atomizer.

[0123] In some examples, the apparatus further comprises:

[0124] a parameter determination module, configured to determine, according to the device identification of the atomizer, a second operating parameter of the atomizer in the first operating mode and a first operating parameter of the atomizer in the second operating mode;

[0125] The third sending module is configured to send the second operating parameter and the first operating parameter to the atomizer.

[0126] In some examples, the apparatus further comprises:

[0127] A context determination module, configured to determine a usage context corresponding to each of the at least one atomizer;

[0128] an operating mode determination module, configured to determine a target operating mode corresponding to each of the at least one atomizer according to a usage scenario corresponding to each of the at least one atomizer;

[0129] The instruction generation module is used to generate a third control instruction corresponding to each atomizer according to the target operating mode corresponding to the at least one atomizer, and send the third control instruction to each atomizer; the third control instruction is used to instruct the atomizer to perform atomization processing according to the target operating mode.

[0130] In summary, the control device provided by the embodiment of the present application is applied to a terminal device. The working mode indicated by the terminal device control instruction can automatically atomize the substrate to be atomized in the liquid storage chamber corresponding to the working mode, rather than the user manually switching the working mode, thereby improving the intelligence of the control atomizer, simplifying the user operation, and improving the user experience. In addition, according to the above content, the atomizer provides different working modes to adapt to the connection status between the terminal device and the vehicle-mounted terminal. When the connection status between the terminal device and the vehicle-mounted terminal changes, the atomizer automatically adjusts the corresponding working mode to adapt, which can meet the diverse needs of the user. Specifically, when the vehicle is started, the atomizer is controlled to enter the aromatherapy mode to achieve a refreshing effect. When the vehicle is turned off or the passenger leaves the vehicle, the atomizer is controlled to enter the normal working mode, such as the suction mode, and the airway pressure of the atomizer is changed to control the atomizer to atomize the second substrate to be atomized.

[0131] The embodiment of the present application also provides a control system, which includes: a terminal device and a nebulizer, wherein the nebulizer includes at least two liquid storage chambers, each of which stores a matrix to be atomized with different components; a connection is established between the nebulizer and the terminal device; the nebulizer can perform the following operations: Figure 1 The control method shown, or the terminal device can execute the following Figure 2 The control method shown.

[0132] Reference Figure 5 , is a structural block diagram of an electronic device for control provided by an embodiment of the present application. Figure 5As shown, the electronic device includes: a processor, a memory, a communication interface and a communication bus, and the processor, the memory and the communication interface communicate with each other through the communication bus; the memory is used to store executable instructions, and the executable instructions enable the processor to execute the control method of the aforementioned embodiment.

[0133] The processor may be a CPU (Central Processing Unit), a general-purpose processor, a DSP (Digital Signal Processor), an ASIC (Application Specific Integrated Circuit), an FPGA (Field Programmable Gate Array), or other programmable devices, transistor logic devices, hardware components, or any combination thereof. The processor may also be a combination that implements computing functions, such as a combination of one or more microprocessors, a combination of a DSP and a microprocessor, and the like.

[0134] The communication bus may include a path for transmitting information between the memory and the communication interface. The communication bus may be a PCI (Peripheral Component Interconnect) bus or an EISA (Extended Industry Standard Architecture) bus, etc. The communication bus may be divided into an address bus, a data bus, a control bus, etc. For ease of representation, Figure 5 The fact that only one line is used does not mean that there is only one bus or one type of bus.

[0135] The memory can be a ROM (Read Only Memory) or other types of static storage devices that can store static information and instructions, a RAM (Random Access Memory) or other types of dynamic storage devices that can store information and instructions, or it can be an EEPROM (Electrically Erasable Programmable Read Only Memory), a CD-ROM (Compact Disc Read Only Memory), a magnetic tape, a floppy disk, and an optical data storage device, etc.

[0136] The present application also provides a non-transitory computer-readable storage medium, which, when the instructions in the storage medium are executed by a processor of an electronic device (server or terminal), enables the processor to execute Figure 1 or Figure 2 The control method shown.

[0137] The various embodiments in this specification are described in a progressive manner, and each embodiment focuses on the differences from other embodiments. The same or similar parts between the various embodiments can be referenced to each other.

[0138] Those skilled in the art will appreciate that the embodiments of the present application can be provided as methods, devices, or computer program products. Therefore, the embodiments of the present application can take the form of a complete hardware embodiment, a complete software embodiment, or an embodiment combining software and hardware. Furthermore, the embodiments of the present application can take the form of a computer program product implemented on one or more computer-usable storage media (including but not limited to magnetic disk storage, CD-ROM, optical storage, etc.) containing computer-usable program code.

[0139] The embodiments of the present application are described with reference to the flowcharts and / or block diagrams of the methods, terminal devices (systems) and computer program products according to the embodiments of the present application. It should be understood that each process and / or box in the flowchart and / or block diagram, as well as the combination of the processes and / or boxes in the flowchart and / or block diagram, can be implemented by computer program instructions. These computer program instructions can be provided to a processor of a general-purpose computer, a special-purpose computer, an embedded processor or other programmable data processing terminal device to produce a machine, so that the instructions executed by the processor of the computer or other programmable data processing terminal device generate instructions for implementing the steps in the process. Figure 1 a process or multiple processes and / or boxes Figure 1 A device that provides the functions specified in a block or multiple blocks.

[0140] These computer program instructions may also be stored in a computer readable memory capable of directing a computer or other programmable data processing terminal device to operate in a predictable manner, so that the instructions stored in the computer readable memory produce an article of manufacture comprising an instruction device, which implements the process Figure 1 a process or multiple processes and / or boxes Figure 1 The function specified in one or more boxes.

[0141] These computer program instructions can also be loaded onto a computer or other programmable data processing terminal device so that a series of operating steps are executed on the computer or other programmable terminal device to produce a computer-implemented process, thereby providing instructions for executing on the computer or other programmable terminal device to implement the process. Figure 1a process or multiple processes and / or boxes Figure 1 A step that specifies a function in one or more boxes.

[0142] Although preferred embodiments of the present invention have been described, those skilled in the art may make additional changes and modifications to these embodiments once they become aware of the basic inventive concepts. Therefore, the appended claims are intended to be interpreted as including the preferred embodiments and all changes and modifications that fall within the scope of the embodiments of the present invention.

[0143] Finally, it should be noted that, in this document, relational terms such as first and second, etc., are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprises," "comprising," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or terminal device that includes a series of elements includes not only those elements, but also other elements not explicitly listed, or elements inherent to such process, method, article, or terminal device. In the absence of further limitations, an element defined by the phrase "comprising a ..." does not exclude the presence of additional identical elements in the process, method, article, or terminal device that includes the element.

[0144] The above is a detailed introduction to a control method, device, electronic device and readable storage medium provided by the present application. Specific examples are used herein to illustrate the principles and implementation methods of the present application. The description of the above embodiments is only used to help understand the method of the present application and its core idea. At the same time, for those skilled in the art, according to the ideas of the present application, there will be changes in the specific implementation methods and application scope. In summary, the content of this specification should not be understood as a limitation on the present application.

Claims

1. A control method, characterized in that: The method is applied to a nebulizer, the nebulizer comprising an airflow sensor and at least two liquid storage chambers, each liquid storage chamber storing a substrate to be atomized with a different composition, and the nebulizer can selectively atomize the substrate to be atomized in different liquid storage chambers; the method comprises: Receive control instructions sent by terminal equipment; When the control instruction is a first control instruction indicating a first working mode, atomizing the first substrate to be atomized in the first liquid storage chamber; When the control instruction is a second control instruction indicating a second working mode, atomizing the second substrate to be atomized in the second liquid storage chamber according to the output signal of the airflow sensor and the first working parameter set by the user; Among them, the first control instruction is a control instruction sent to the atomizer when the terminal device detects that a communication connection is established with the vehicle-mounted terminal; the second control instruction is a control instruction sent to the atomizer when the terminal device detects that a communication connection is not established with the vehicle-mounted terminal.

2. The method according to claim 1, characterized in that When the control instruction is a first control instruction indicating a first working mode, atomizing the first substrate to be atomized in the first liquid storage chamber includes: Acquire a second operating parameter corresponding to the first operating mode, wherein the second operating parameter includes a first atomization frequency; The first substrate to be atomized is intermittently atomized according to the first atomization frequency.

3. The method according to claim 2, characterized in that The second operating parameter further includes at least one of a first atomization duration and a first atomization power. The obtaining of the second operating parameter corresponding to the first operating mode includes at least one of the following: Parsing the first control instruction to obtain the second operating parameter; receiving the second operating parameter sent by the terminal device; The second operating parameter corresponding to the first operating mode is determined according to a mode mapping table stored locally in the atomizer, wherein the mode mapping table records the correspondence between each operating mode and operating parameter of the atomizer.

4. The method according to any one of claims 1 to 3, characterized in that When the control instruction is a second control instruction indicating the second operating mode, the nebulizer atomizes the second substrate to be atomized in the second liquid storage chamber according to the output signal of the airflow sensor in the nebulizer and the first operating parameter set by the user, including: Determining at least one target liquid storage cavity according to a first operating parameter set by a user; Upon receiving the output signal, atomizing the substrate to be atomized in the at least one target liquid storage chamber; Wherein, the output signal is generated when the airflow sensor detects a decrease in the airway pressure of the nebulizer; the target liquid storage chamber includes the second liquid storage chamber, or the target liquid storage chamber includes the second liquid storage chamber and at least one first liquid storage chamber.

5. A control method, characterized in that: Applied to a terminal device, the method includes: When the terminal device detects that a communication connection has been established with the vehicle-mounted terminal, a first control instruction is sent to the atomizer; the first control instruction is used to indicate that the operating mode of the atomizer is the first operating mode; When the terminal device detects that no communication connection is established with the vehicle-mounted terminal, a second control instruction is sent to the atomizer; the second control instruction is used to indicate that the working mode of the atomizer is the second working mode.

6. The method according to claim 5, characterized in that When the terminal device detects that a communication connection is established with the vehicle-mounted terminal, sending a first control instruction to the atomizer includes: When the terminal device detects that a communication connection has been established with the vehicle-mounted terminal, obtaining a second operating parameter; The first control instruction is generated according to the second operating parameter, and the first control instruction is sent to the atomizer.

7. The method according to claim 5, characterized in that The method further comprises: determining, according to the device identification of the atomizer, a second operating parameter of the atomizer in the first operating mode and a first operating parameter of the atomizer in the second operating mode; The second operating parameter and the first operating parameter are sent to the atomizer.

8. The method according to claim 5, characterized in that The terminal device establishes a connection with at least one atomizer; the method further includes: Determining a usage scenario corresponding to each of the at least one atomizer; Determining a target operating mode corresponding to each of the at least one atomizer according to the usage scenario corresponding to each of the at least one atomizer; According to the target working mode corresponding to the at least one atomizer, a third control instruction corresponding to each atomizer is generated respectively, and the third control instruction is sent to each atomizer; the third control instruction is used to instruct the atomizer to perform atomization processing according to the target working mode.

9. A control system, characterized in that: include: Terminal equipment and atomizers, The atomizer comprises at least two liquid storage chambers, each storing a matrix to be atomized with a different composition; a connection is established between the atomizer and the terminal device; The atomizer can execute the control method according to any one of claims 1 to 4, or the terminal device can execute the control method according to any one of claims 5 to 8.

10. A storage medium, characterized in that: When the instructions in the storage medium are executed by a processor of an electronic device, the electronic device is enabled to execute the control method according to any one of claims 1 to 4, or execute the control method according to any one of claims 5 to 8.