Power adjusting method and power adjusting system of electronic atomization equipment and storage medium

By introducing a power regulator and pulse width modulation technology into electronic atomization devices, the output power can be dynamically adjusted, solving the problem of insufficient atomization of different aerosol generation matrices and improving the user's vaping experience.

CN120959472APending Publication Date: 2025-11-18ZHUHAI QISI INTELLIGENT MFG CO LTD
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Patent Information

Application Number
CN202511096076.3
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-05
Publication Date
2025-11-18

AI Technical Summary

Technical Problem

Existing electronic atomization devices cannot adjust the output power according to different types of aerosol generating matrices, resulting in other types of aerosol generating matrices not being fully atomized, thus reducing the user's vaping experience.

Method used

By introducing a power regulator into the electronic atomization device, the device receives and parses power adjustment commands, determines the target power value, and adjusts the power according to the target power value, thereby achieving dynamic adjustment of the output power using pulse width modulation technology.

Benefits of technology

It enables dynamic adjustment of the output power of the electronic atomization device based on the type of aerosol generation matrix, ensuring that the aerosol generation matrix is ​​fully atomized and improving the user's inhalation experience.

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Abstract

The invention discloses a power regulation method and system of electronic atomization equipment and a storage medium, and relates to the technical field of electronic atomization equipment, the power regulation method of the electronic atomization equipment is applied to the electronic atomization equipment in the power regulation system, and the power regulation system further comprises a power regulator connected with the electronic atomization equipment. The power regulation method comprises the following steps: receiving a power regulation instruction sent by a power regulator; in response to the power regulation instruction, determining a target power value of the electronic atomization equipment; and performing power adjustment according to the target power value. According to the method, the power of the electronic atomization equipment is adjusted based on the power adjuster, and the output power of the electronic atomization equipment can be adjusted according to the type of the aerosol generation matrix loaded in the electronic atomization equipment, so that the output power of the electronic atomization equipment can fully atomize the sol generation matrix; and the suction experience of the user for sucking the electronic atomization equipment can be improved.
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Description

Technical Field

[0001] This application belongs to the field of electronic atomization device technology, and particularly relates to a power adjustment method, power adjustment system and storage medium for electronic atomization devices. Background Technology

[0002] Electronic atomization devices are devices that use the thermal effect of a heating element to heat the aerosol generating matrix, so that the aerosol generating matrix produces aerosols without combustion.

[0003] Currently, before leaving the factory, manufacturers configure a fixed output power for electronic atomization devices based on a preset type of aerosol generating matrix. During use, the electronic atomization device always heats the preset type of aerosol generating matrix at a fixed output power.

[0004] However, when users need to use electronic atomizing devices to inhale other types of aerosol generating substrates (different from the preset type), the users cannot adjust the output power of the electronic atomizing device. The electronic atomizing device heats other types of aerosol generating substrates at a fixed output power, and other types of aerosol generating substrates cannot be fully atomized, which reduces the user's inhalation experience. Summary of the Invention

[0005] In view of the above, embodiments of this application provide a power adjustment method, power adjustment system and storage medium for an electronic atomizing device to overcome the problems of the prior art.

[0006] In a first aspect, embodiments of this application provide a power adjustment method for an electronic atomizing device, applied to an electronic atomizing device in a power adjustment system. The electronic atomizing device is not configured with a power adjustment module for adjusting the power of the electronic atomizing device. The power adjustment system further includes a power regulator connected to the electronic atomizing device. The power adjustment method for the electronic atomizing device includes:

[0007] Receive the power adjustment command sent by the power regulator;

[0008] In response to the power adjustment command, a target power value for the electronic atomizing device is determined;

[0009] Power adjustment is performed based on the target power value.

[0010] In some optional embodiments, the power adjustment based on the target power value includes:

[0011] Calculate the pulse width modulation duty cycle of the electronic atomization device based on the target power value;

[0012] Power adjustment is performed based on the pulse width modulation duty cycle.

[0013] In some optional embodiments, the power adjustment method of the electronic atomizing device further includes:

[0014] Obtain the current power value of the electronic atomization device;

[0015] Based on the current power value and the target power value, adjustment confirmation information is generated. The adjustment confirmation information includes first adjustment confirmation information indicating that the power adjustment of the electronic atomizing device is successful, or second adjustment confirmation information indicating that the power adjustment of the electronic atomizing device fails.

[0016] The adjustment confirmation information is sent to the power regulator so that the power regulator displays the adjustment confirmation information.

[0017] In some optional embodiments, the power adjustment command carries setting information, and determining the target power value of the electronic atomizing device in response to the power adjustment command includes:

[0018] In response to the power adjustment command, the power adjustment command is parsed to obtain the setting information;

[0019] The target power value is determined based on the set information.

[0020] In some optional embodiments, the setting information includes a setting power, and the step of parsing the power adjustment command in response to the power adjustment command to obtain the setting information includes:

[0021] In response to the power adjustment command, the power adjustment command is parsed to obtain the set power;

[0022] Determining the target power value based on the set information includes:

[0023] The set power is determined as the target power value.

[0024] In some optional embodiments, the setting information includes a setting voltage, and the step of parsing the power adjustment command in response to the power adjustment command to obtain the setting information includes:

[0025] In response to the power adjustment command, the power adjustment command is parsed to obtain the set voltage;

[0026] Determining the target power value based on the set information includes:

[0027] The target power value is calculated based on the internal resistance of the electronic atomizing device and the set voltage.

[0028] The solution provided in this embodiment adjusts the power of the electronic atomization device based on a power regulator. The output power of the electronic atomization device can be adjusted according to the type of aerosol generation matrix loaded in the electronic atomization device, so that the output power of the electronic atomization device can fully atomize the aerosol generation matrix, which is beneficial to improving the user's vaping experience.

[0029] Secondly, embodiments of this application provide a power adjustment method for an electronic atomizing device, applied to a power regulator in a power adjustment system. The power adjustment system further includes an electronic atomizing device connected to the power regulator. The electronic atomizing device is not configured with a power adjustment module for adjusting the power of the electronic atomizing device. The power adjustment method for the electronic atomizing device includes:

[0030] Obtain a power adjustment command, the power adjustment command being used to instruct the electronic atomizing device to adjust the power;

[0031] The power adjustment command is sent to the electronic atomizing device so that the electronic atomizing device determines a target power value according to the power adjustment command and adjusts the power according to the target power value.

[0032] In some optional embodiments, the power adjustment method of the electronic atomizing device further includes:

[0033] The system receives adjustment confirmation information returned by the electronic atomizing device. The adjustment confirmation information is generated by the electronic atomizing device based on the current power value of the electronic atomizing device and the target power value. The adjustment confirmation information includes first adjustment confirmation information indicating that the power adjustment of the electronic atomizing device is successful, or second adjustment confirmation information indicating that the power adjustment of the electronic atomizing device fails.

[0034] The adjustment confirmation information will be displayed.

[0035] Thirdly, embodiments of this application provide a power adjustment device for an electronic atomizing device, applied to an electronic atomizing device in a power adjustment system. The electronic atomizing device is not configured with a power adjustment module for adjusting the power of the electronic atomizing device. The power adjustment system further includes a power regulator connected to the electronic atomizing device. The power adjustment device for the electronic atomizing device includes:

[0036] The instruction receiving module is used to receive the power adjustment instruction sent by the power regulator;

[0037] A determining module is configured to determine the target power value of the electronic atomizing device in response to the power adjustment command;

[0038] An adjustment module is used to adjust the power according to the target power value.

[0039] Fourthly, embodiments of this application provide a power adjustment device for an electronic atomizing device, applied to a power regulator in a power adjustment system. The power adjustment system further includes an electronic atomizing device connected to the power regulator. The electronic atomizing device is not configured with a power adjustment module for adjusting the power of the electronic atomizing device. The power adjustment device for the electronic atomizing device includes:

[0040] The instruction acquisition module is used to acquire a power adjustment instruction, which is used to instruct the electronic atomizing device to adjust the power.

[0041] The instruction sending module is used to send the power adjustment instruction to the electronic atomizing device, so that the electronic atomizing device determines the target power value according to the power adjustment instruction and adjusts the power according to the target power value.

[0042] Fifthly, embodiments of this application provide a power regulation system, including an electronic atomizing device and a power regulator, wherein the power regulator is connected to the electronic atomizing device, and the electronic atomizing device is not configured with a power regulation module for regulating the power of the electronic atomizing device;

[0043] The electronic atomizing device is used to perform the power adjustment method for the electronic atomizing device as provided in the first aspect above;

[0044] The power regulator is used to perform the power regulation method for the electronic atomization device as provided in the second aspect above.

[0045] In a sixth aspect, embodiments of this application provide a computer-readable storage medium storing program code, which can be invoked by a processor to execute the power adjustment method of the electronic atomizing device as provided in the first or second aspect above.

[0046] In a seventh aspect, embodiments of this application provide a computer program product that, when run on a computer device, causes the computer device to execute the power adjustment method for the electronic atomizing device as described in the first or second aspect above.

[0047] It is understood that the beneficial effects of the second to fifth aspects mentioned above can be found in the relevant descriptions in the first aspect mentioned above, and will not be repeated here. Attached Figure Description

[0048] To more clearly illustrate the technical solutions in the embodiments of this application, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0049] Figure 1 A schematic diagram of a power regulation system provided in an embodiment of this application is shown.

[0050] Figure 2 A schematic flowchart of a power adjustment method for an electronic atomizing device provided in an embodiment of this application is shown.

[0051] Figure 3 This paper illustrates another flowchart of the power adjustment method for an electronic atomizing device provided in an embodiment of this application.

[0052] Figure 4 A flowchart illustrating a scenario of the power adjustment method for an electronic atomizing device provided in an embodiment of this application is shown.

[0053] Figure 5 This paper illustrates another schematic flowchart of the power adjustment method for an electronic atomizing device provided in an embodiment of this application.

[0054] Figure 6 A structural block diagram of a power regulation device for an electronic atomizing device provided in an embodiment of this application is shown.

[0055] Figure 7 Another structural block diagram of the power regulation device of the electronic atomizing device provided in the embodiments of this application is shown.

[0056] Figure 8 This application illustrates a computer-readable storage medium for storing or carrying program code that implements a power adjustment method for an electronic atomizing device according to an embodiment of this application.

[0057] Figure 9 This application provides a computer program product for storing or carrying program code that implements a power adjustment method for an electronic atomizing device according to an embodiment of this application. Detailed Implementation

[0058] To make the inventive objectives, features, and advantages of this application more apparent and understandable, the technical solutions in the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the embodiments described below are only some embodiments of this application, and not all embodiments. Based on the embodiments in this application, all other embodiments obtained by those skilled in the art without creative effort are within the scope of protection of this application.

[0059] It should be understood that, when used in this specification and the appended claims, the term "comprising" indicates the presence of the described features, integrals, steps, operations, elements and / or components, but does not exclude the presence or addition of one or more other features, integrals, steps, operations, elements, components and / or collections thereof.

[0060] It should also be understood that the terminology used in this specification is for the purpose of describing particular embodiments only and is not intended to limit the scope of the application. As used in this specification and the appended claims, the singular forms “a,” “an,” and “the” are intended to include the plural forms unless the context clearly indicates otherwise.

[0061] It should also be further understood that the term “and / or” as used in this application specification and the appended claims means any combination of one or more of the associated listed items and all possible combinations, and includes such combinations.

[0062] Furthermore, in the description of this application, the terms "first," "second," "third," etc., are used only to distinguish descriptions and should not be construed as indicating or implying relative importance.

[0063] Electronic atomization devices are devices that use the thermal effect of a heating element to heat the aerosol generating matrix, so that the aerosol generating matrix produces aerosols without combustion.

[0064] Currently, before leaving the factory, manufacturers configure a fixed output power for electronic atomization devices based on a preset type of aerosol generating matrix. During use, the electronic atomization device always heats the preset type of aerosol generating matrix at a fixed output power.

[0065] However, when users need to use electronic atomizing devices to inhale other types of aerosol generating substrates (different from the preset type), the users cannot adjust the output power of the electronic atomizing device. The electronic atomizing device heats other types of aerosol generating substrates at a fixed output power, and other types of aerosol generating substrates cannot be fully atomized, which reduces the user's inhalation experience.

[0066] To address the aforementioned issues, this application provides a power adjustment method, a power adjustment system, and a storage medium for an electronic atomizing device. The power adjustment method is applied to the electronic atomizing device within the power adjustment system. The electronic atomizing device does not have a power adjustment module for adjusting its power. The power adjustment system also includes a power regulator connected to the electronic atomizing device. The power adjustment method includes receiving a power adjustment command from the power regulator, responding to the command, determining a target power value for the electronic atomizing device, and adjusting the power based on the target power value. This achieves power adjustment of the electronic atomizing device based on the power regulator. The output power of the electronic atomizing device can be adjusted according to the type of aerosol-generating matrix loaded in the device, ensuring that the output power of the device can fully atomize the aerosol-generating matrix, thus improving the user's vaping experience.

[0067] The technical solutions in the embodiments of this application will be clearly and completely described below with reference to the accompanying drawings.

[0068] Please see Figure 1 The illustration shows an application scenario diagram of the power regulation system provided in the embodiments of this application. The power regulation system may include an electronic atomizing device 100 and a power regulator 200. The electronic atomizing device 100 can be communicatively connected to the power regulator 200 and interact with the power regulator 200 for data exchange.

[0069] The electronic atomizing device 100 is not equipped with a power adjustment module for adjusting the power of the electronic atomizing device 100. The electronic atomizing device 100 may include a first housing 101, a first power module 102, an atomizing core 103, a power output module 104, a first communication module 105, and a first control module 106. The first power module 102, the atomizing core 103, the power output module 104, the first communication module 105, and the first control module 106 can be installed in the first housing 101. The first housing 101 can provide installation support for the first power module 102, the atomizing core 103, the power output module 104, the first communication module 105, and the first control module 106.

[0070] The material of the first housing 101 can be any of the following: engineering plastics (e.g., polycarbonate (PC), polystyrene (PS), nylon (PA), polyimide (PI), etc.), aluminum alloy, stainless steel, or ABS plastic (Acrylonitrile Butadiene Styrene Plastic, ABS plastic), without limitation here.

[0071] The first power module 102 can be electrically connected to the atomizing core 103, the power output module 104, the first communication module 105, and the first control module 106, and can provide power to the atomizing core 103, the power output module 104, the first communication module 105, and the first control module 106.

[0072] The atomizing core 103 may include an aerosol generating matrix carrier and a heating element (e.g., a heating wire, a ceramic heating element, etc.). The heating element can be used to heat the aerosol generating matrix loaded on the aerosol generating matrix carrier so that the aerosol generating matrix generates aerosols.

[0073] The power output module 104 may include a switching circuit and is connected between the first power module 102 and the atomizing core 103, and is used to control the output power of the first power module 102 to the atomizing core 103.

[0074] The first communication module 105 can be a wired communication module (e.g., a Universal Serial Bus (USB) communication module) or a wireless communication module (e.g., a Bluetooth (BT) communication module), and the first communication module 105 can be used to establish a communication connection with the power regulator 200.

[0075] The first control module 106 can be communicatively connected to the first power module 102, the atomizing core 103, the power output module 104, and the first communication module 105, and is used to control the first power module 102, the atomizing core 103, the power output module 104, and the first communication module 105 to operate.

[0076] The first control module 106 can be any of the following: Micro Controller Unit (MCU), Central Processing Unit (CPU), Combinatorial Logic Controller (CLC), Complex Programmable Logic Device (CPLD), or Field Programmable Gate Array (FPGA), without any limitation here.

[0077] The power regulator 200 may include a second housing 201, a second power module 202, an input module 203, a second communication module 204, and a second control module 205. The second power module 202, the input module 203, the second communication module 204, and the second control module 205 may be installed in the second housing 201. The second housing 201 can provide installation support for the second power module 202, the input module 203, the second communication module 204, and the second control module 205.

[0078] The material of the second housing 201 can be any of engineering plastics, aluminum alloys, stainless steel or ABS plastic, etc., without limitation.

[0079] The second power module 202 can be electrically connected to the input module 203, the second communication module 204 and the second control module 205, and can provide power to the input module 203, the second communication module 204 and the second control module 205.

[0080] The input module 203 can be used to receive control commands (e.g., power adjustment commands) input by the user. The input module 203 can be at least one of physical buttons or a touch screen, etc., without limitation here.

[0081] The second communication module 204 can be a wired communication module or a wireless communication module, etc., and the second communication module 204 can be used to establish a communication connection with the first communication module 105.

[0082] The second control module 205 can be communicatively connected to the second power module 202, the input module 203 and the second communication module 204, and is used to control the second power module 202, the input module 203 and the second communication module 204 to work.

[0083] The second control module 205 can be any of the following: MCU, CPU, CLC, CPLD, or FPGA. No specific limitation is made here.

[0084] In some embodiments, the electronic atomizing device 100 may further include a first display screen, which can be used to display the atomizing device parameters of the electronic atomizing device 100 (e.g., power setting, battery status, etc.).

[0085] The first display screen can be any of the following: a light-emitting diode (LED) display screen, an organic light-emitting diode (OLED) display screen, or a liquid crystal display (LCD) display screen; no limitation is made here.

[0086] In some embodiments, the power regulator 200 may also include a second display screen, which may be used to display regulator parameters of the power regulator 200 (e.g., set power, battery status, connection status, etc.).

[0087] The connection state may include a first connection state for indicating that the power regulator 200 is in an adjustable electronic atomizing device 100, or a second connection state for indicating that the power regulator 200 is in a non-adjustable electronic atomizing device 100.

[0088] The second display screen can be any of the following: LED display screen, OLED display screen, or LCD display screen; no specific limitation is made here.

[0089] Please see Figure 2 This document illustrates a flowchart of a power adjustment method for an electronic atomizing device according to an embodiment of this application. In a specific embodiment, the power adjustment method for the electronic atomizing device can be applied to, for example... Figure 1 The electronic atomizing device 100 in the power regulation system shown below will be used as an example to illustrate... Figure 2 The process shown is described in detail. The power adjustment method for electronic atomization devices may include the following steps 110 to 130.

[0090] Step 110: Receive the power adjustment command sent by the power regulator.

[0091] In this embodiment, when a user needs to change the type of aerosol generation matrix of the electronic atomizing device, the user needs to adjust the output power of the electronic atomizing device. The user can input a power adjustment command to the power regulator through the input module of the power regulator. The power regulator receives the power adjustment command through the input module and sends the power adjustment command to the first communication module of the electronic atomizing device through the second communication module. The electronic atomizing device receives the power adjustment command through the first communication module.

[0092] The power adjustment command can be used to instruct the electronic atomizing device to adjust the power. The power adjustment command can carry setting information, which can include any one of setting power or setting voltage, etc., without limitation here.

[0093] Step 120: In response to the power adjustment command, determine the target power value of the electronic atomizing device.

[0094] In this embodiment, the electronic atomizing device can respond to a power adjustment command, parse the power adjustment command to obtain setting information, and determine the target power value based on the setting information. By parsing the power adjustment command to determine the target power value, it is beneficial to adjust the output power of the electronic atomizing device to match the power of the aerosol generation matrix, thereby improving the accuracy of power adjustment of the electronic atomizing device.

[0095] The target power value can be a power expectation value used to characterize the user's power adjustment of the electronic atomization device.

[0096] In some implementations, the setting information may include a set power. The electronic atomizing device can respond to a power adjustment command, parse the power adjustment command to obtain the set power, and determine the set power as the target power value. By determining the set power input by the user as the target power value, the accuracy of the target power value is improved.

[0097] In some implementations, the setting information may include a setting voltage. The electronic atomizing device can respond to a power adjustment command, parse the power adjustment command to obtain the setting voltage, and calculate the target power value based on the internal resistance of the electronic atomizing device and the setting voltage. Calculating the target power value based on the user-input setting voltage improves the accuracy of the target power value calculation.

[0098] The internal resistance of the electronic atomizing device is the same as the resistance of the power output module.

[0099] As an example, the voltage can be set to U. set The internal resistance of an electronic atomizing device can be R, which can be determined based on the set voltage U. set Given the internal resistance R, calculate the target power value P according to Formula 1.

[0100] Formula 1 is:

[0101] Step 130: Adjust the power according to the target power value.

[0102] In this embodiment, the electronic atomizing device can calculate the pulse width modulation (PWM) duty cycle of the electronic atomizing device based on the target power value, and adjust the power according to the PWM duty cycle. This realizes power adjustment of the electronic atomizing device based on the power regulator. The output power of the electronic atomizing device can be adjusted according to the type of aerosol generation matrix loaded in the electronic atomizing device, so that the output power of the electronic atomizing device can fully atomize the aerosol generation matrix, which is beneficial to improving the user's vaping experience.

[0103] As an example, the input voltage from the first power module to the power output module can be U. in The target power value can be P, and the internal resistance of the electronic atomizing device can be R. The effective output voltage U of the power output module can be calculated according to Formula 2 based on the target power value P and the internal resistance R. eff .

[0104] Formula 2 is:

[0105] And according to the input voltage U in and effective output voltage U eff Calculate the PWM duty cycle D of the electronic atomizing device according to Formula 3.

[0106] Formula 3 is:

[0107] The solution provided in this embodiment receives a power adjustment command sent by a power regulator, and in response to the power adjustment command, determines the target power value of the electronic atomizing device, and adjusts the power according to the target power value. This realizes power adjustment of the electronic atomizing device based on the power regulator. The output power of the electronic atomizing device can be adjusted according to the type of aerosol generating matrix loaded in the electronic atomizing device, so that the output power of the electronic atomizing device can fully atomize the aerosol generating matrix, which is beneficial to improving the user's vaping experience of the electronic atomizing device.

[0108] Please see Figure 3 This document illustrates a flowchart of a power adjustment method for an electronic atomizing device according to another embodiment of this application. In a specific embodiment, the power adjustment method for the electronic atomizing device can be applied to, for example... Figure 1 The electronic atomizing device 100 in the power regulation system shown below will be used as an example to illustrate... Figure 3 The process shown is described in detail. The power adjustment method for electronic atomization devices may include the following steps 210 to 260.

[0109] Step 210: Receive the power adjustment command sent by the power regulator.

[0110] Step 220: In response to the power adjustment command, determine the target power value of the electronic atomizing device.

[0111] Step 230: Adjust the power according to the target power value.

[0112] In this embodiment, steps 210, 220 and 230 can be referred to the corresponding steps in the previous embodiments, and will not be repeated here.

[0113] Step 240: Obtain the current power value of the electronic atomizing device.

[0114] In this embodiment, the electronic atomizing device may further include a voltage sensor, which may be electrically connected between the first power module and the power output module, and is used to collect the output voltage from the first power module to the power output module.

[0115] The electronic atomizing device can collect the output voltage from the first power module to the power output module through a voltage sensor, and calculate the current power value of the electronic atomizing device based on its internal resistance.

[0116] The voltage sensor can be any of the following: Hall effect voltage sensor, voltage mutual inductance sensor, voltage divider resistor sensor, or photoelectric voltage sensor, etc., without limitation.

[0117] Step 250: Generate adjustment confirmation information based on the current power value and the target power value.

[0118] In this embodiment, the electronic device can determine whether the power adjustment of the electronic atomizing device is successful based on the current power value and the target power value, obtain the determination result, and generate adjustment confirmation information based on the determination result.

[0119] The determination result may include a first determination result used to characterize the success of power adjustment of the electronic atomizing device, and a second determination result used to characterize the failure of power adjustment of the electronic atomizing device.

[0120] The adjustment confirmation information may include first adjustment confirmation information to indicate that the power adjustment of the electronic atomizing device is successful, or second adjustment confirmation information to indicate that the power adjustment of the electronic atomizing device is unsuccessful.

[0121] If the current power value is the same as the target power value, the power adjustment of the electronic atomizing device is determined to be successful, and the first determination result is obtained; if the current power value is different from the target power value, the power adjustment of the electronic atomizing device is determined to be unsuccessful, and the second determination result is obtained.

[0122] When a first determination result is obtained, a first adjustment confirmation message can be generated; when a second determination result is obtained, a second adjustment confirmation message can be generated.

[0123] Step 260: Send adjustment confirmation information to the power regulator so that the power regulator displays the adjustment confirmation information.

[0124] In this embodiment, the electronic atomizing device can send adjustment confirmation information to the power regulator. The power regulator receives and responds to the adjustment confirmation information and displays the adjustment confirmation information on the second display screen so that the user can confirm whether the power adjustment of the electronic atomizing device is successful, which further helps to improve the user's vaping experience of the electronic atomizing device.

[0125] In one application scenario, such as Figure 4 As shown, the power adjustment method for an electronic atomizing device may include the following steps 301 to 308.

[0126] Step 301: Receive the power adjustment command sent by the power regulator.

[0127] Step 302: In response to the power adjustment command, determine the target power value of the electronic atomizing device.

[0128] Step 303: Calculate the PWM duty cycle based on the target power value.

[0129] Step 304: Adjust the power according to the PWM duty cycle.

[0130] Step 305: Obtain the current power value of the electronic atomization device.

[0131] Step 306 generates adjustment confirmation information based on the current power value and the target power value.

[0132] Step 307: Send adjustment confirmation information to the power regulator so that the power regulator can display the adjustment confirmation information.

[0133] Step 308: Display the current power value on the screen of the electronic atomization device.

[0134] The solution provided in this embodiment receives a power adjustment command sent by a power regulator, and in response to the power adjustment command, determines the target power value of the electronic atomization device, adjusts the power according to the target power value, obtains the current power value of the electronic atomization device, generates adjustment confirmation information based on the current power value and the target power value, and sends the adjustment confirmation information to the power regulator so that the power regulator can display the adjustment confirmation information. This realizes power adjustment of the electronic atomization device based on the power regulator. The output power of the electronic atomization device can be adjusted according to the type of aerosol generating matrix loaded in the electronic atomization device, so that the output power of the electronic atomization device can fully atomize the aerosol generating matrix, which is beneficial to improving the user's vaping experience.

[0135] Furthermore, the adjustment confirmation information is sent to the power regulator so that the power regulator can display the adjustment confirmation information, allowing the user to confirm whether the power adjustment of the electronic atomizing device has been successful, which further helps to improve the user's vaping experience of the electronic atomizing device.

[0136] Please see Figure 5This document illustrates a flowchart of a power adjustment method for an electronic atomizing device according to another embodiment of this application. In a specific embodiment, the power adjustment method for the electronic atomizing device can be applied to, for example... Figure 1 The power regulator 200 in the power regulation system shown below will be used as an example to explain... Figure 5 The process shown is described in detail. The power adjustment method for electronic atomization devices may include the following steps 410 to 420.

[0137] Step 410: Obtain power adjustment command.

[0138] In this embodiment, when a user needs to change the type of aerosol generating matrix of the electronic atomizing device, the user needs to adjust the output power of the electronic atomizing device. The user can input a power adjustment command to the power regulator through the input module of the power regulator, and the power regulator receives the power adjustment command through the input module.

[0139] The power adjustment command can be used to instruct the electronic atomizing device to adjust the power. The power adjustment command can carry setting information, which can include any one of setting power or setting voltage, etc., without limitation here.

[0140] Step 420 sends a power adjustment command to the electronic atomizing device so that the electronic atomizing device determines the target power value according to the power adjustment command and adjusts the power according to the target power value.

[0141] In this embodiment, the power regulator can send a power adjustment command to the electronic atomization device. The electronic atomization device receives and responds to the power adjustment command, parses the command to obtain setting information, determines the target power value based on the setting information, calculates the PWM duty cycle of the electronic atomization device based on the target power value, and adjusts the power based on the PWM duty cycle. This realizes power adjustment of the electronic atomization device based on the power regulator. The output power of the electronic atomization device can be adjusted according to the type of aerosol generation matrix loaded in the electronic atomization device, so that the output power of the electronic atomization device can fully atomize the aerosol generation matrix, which is beneficial to improving the user's vaping experience.

[0142] In this embodiment, the process of the electronic atomizing device determining the target power value based on the set information, and the process of calculating the PWM duty cycle of the electronic atomizing device based on the target power value, can be referred to the corresponding steps in the aforementioned embodiments, and will not be repeated here.

[0143] In some implementations, the electronic atomizing device can acquire its current power value and, based on the current power value and the target power value, determine whether the power adjustment of the electronic atomizing device is successful, obtain a confirmation result, generate adjustment confirmation information based on the confirmation result, and send the adjustment confirmation information to the power regulator. The power regulator receives the adjustment confirmation information returned by the electronic atomizing device and displays the adjustment confirmation information so that the user can confirm whether the power adjustment of the electronic atomizing device is successful, which further helps to improve the user's vaping experience of the electronic atomizing device.

[0144] The process of the electronic atomizing device acquiring its current power value, and the process of the electronic atomizing device determining whether the power adjustment of the electronic atomizing device is successful based on the current power value and the target power value, can be found in the corresponding steps of the aforementioned embodiments, and will not be repeated here.

[0145] The solution provided in this embodiment acquires and sends power adjustment commands to the electronic atomizing device, enabling the electronic atomizing device to determine the target power value based on the power adjustment command and adjust the power accordingly. This achieves power adjustment of the electronic atomizing device based on a power regulator. The output power of the electronic atomizing device can be adjusted according to the type of aerosol generating matrix loaded in the electronic atomizing device, so that the output power of the electronic atomizing device can fully atomize the aerosol generating matrix, which is beneficial to improving the user's vaping experience.

[0146] Please see Figure 6 This illustration shows a power adjustment device 500 for an electronic atomizing device according to an embodiment of this application. In a specific embodiment, the power adjustment device 500 for the electronic atomizing device can be applied to, for example... Figure 1 The electronic atomizing device 100 in the power regulation system shown below will be used as an example to illustrate... Figure 6 The power adjustment device 500 of the electronic atomizing device shown will be described in detail. The power adjustment device 500 of the electronic atomizing device may include an instruction receiving module 510, a determination module 520 and an adjustment module 530.

[0147] The instruction receiving module 510 can be used to receive power adjustment instructions sent by the power regulator; the determining module 520 can be used to determine the target power value of the electronic atomizing device in response to the power adjustment instructions; and the adjusting module 530 can be used to adjust the power according to the target power value.

[0148] In some implementations, the adjustment module 530 may include a calculation unit and an adjustment unit.

[0149] The calculation unit can be used to calculate the pulse width modulation duty cycle of the electronic atomizing device based on the target power value; the adjustment unit can be used to adjust the power based on the pulse width modulation duty cycle.

[0150] In some embodiments, the power adjustment device 500 of the electronic atomizing device may further include a power acquisition module, a generation module, and an information transmission module.

[0151] The power acquisition module can be used to acquire the current power value of the electronic atomization device; the generation module can be used to generate adjustment confirmation information based on the current power value and the target power value. The adjustment confirmation information may include first adjustment confirmation information indicating successful power adjustment of the electronic atomization device, or second adjustment confirmation information indicating failed power adjustment of the electronic atomization device; the information sending module can be used to send the adjustment confirmation information to the power regulator so that the power regulator can display the adjustment confirmation information.

[0152] In some implementations, the power adjustment command may carry setting information, and the determination module 520 may include a parsing unit and a determination unit.

[0153] The parsing unit can be used to parse the power adjustment command in response to the power adjustment command and obtain the setting information; the determining unit can be used to determine the target power value based on the setting information.

[0154] In some implementations, the setting information may include a setting power, and the parsing unit may include a first parsing subunit.

[0155] The first parsing subunit can be used to respond to a power adjustment command, parse the power adjustment command, and obtain the set power.

[0156] In some implementations, the determining unit may include a determining subunit.

[0157] The determination subunit can be used to determine the set power as the target power value.

[0158] In some implementations, the setting information may include a setting voltage, and the parsing unit may also include a second parsing subunit.

[0159] The second parsing subunit can be used to respond to power regulation commands, parse the power regulation commands, and obtain the set voltage.

[0160] In some implementations, the determining unit may also include a computing subunit.

[0161] The calculation subunit can be used to calculate the target power value based on the internal resistance and set voltage of the electronic atomization device.

[0162] The solution provided in this embodiment receives a power adjustment command sent by a power regulator, and in response to the power adjustment command, determines the target power value of the electronic atomizing device, and adjusts the power according to the target power value. This realizes power adjustment of the electronic atomizing device based on the power regulator. The output power of the electronic atomizing device can be adjusted according to the type of aerosol generating matrix loaded in the electronic atomizing device, so that the output power of the electronic atomizing device can fully atomize the aerosol generating matrix, which is beneficial to improving the user's vaping experience of the electronic atomizing device.

[0163] Please see Figure 7 This illustrates a power adjustment device 600 for an electronic atomizing device according to another embodiment of this application. In a specific embodiment, the power adjustment device 600 for the electronic atomizing device can be applied to, for example... Figure 1 The power regulator 200 in the power regulation system shown below will be used as an example to explain... Figure 7 The power adjustment device 600 of the electronic atomizing device shown will be described in detail. The power adjustment device 600 of the electronic atomizing device may include an instruction acquisition module 610 and an instruction sending module 620.

[0164] The instruction acquisition module 610 can be used to acquire power adjustment instructions, which can be used to instruct the electronic atomizing device to adjust the power. The instruction sending module 620 can be used to send power adjustment instructions to the electronic atomizing device, so that the electronic atomizing device can determine the target power value according to the power adjustment instructions and adjust the power according to the target power value.

[0165] In some embodiments, the power adjustment device 600 of the electronic atomizing device may also include an information receiving module and a display module.

[0166] The information receiving module can be used to receive adjustment confirmation information returned by the electronic atomizing device. The adjustment confirmation information can be generated based on the current power value and target power value of the electronic atomizing device. The adjustment confirmation information can include first adjustment confirmation information indicating successful power adjustment of the electronic atomizing device, or second adjustment confirmation information indicating failed power adjustment of the electronic atomizing device. The display module can be used to display the adjustment confirmation information.

[0167] The solution provided in this embodiment acquires and sends power adjustment commands to the electronic atomizing device, enabling the electronic atomizing device to determine the target power value based on the power adjustment command and adjust the power accordingly. This achieves power adjustment of the electronic atomizing device based on a power regulator. The output power of the electronic atomizing device can be adjusted according to the type of aerosol generating matrix loaded in the electronic atomizing device, so that the output power of the electronic atomizing device can fully atomize the aerosol generating matrix, which is beneficial to improving the user's vaping experience.

[0168] It should be noted that the various embodiments in this specification are described in a progressive manner, with each embodiment focusing on its differences from other embodiments. Similar or identical parts between embodiments can be referred to interchangeably. For device embodiments, since they are basically similar to method embodiments, the description is relatively simple; relevant parts can be referred to in the descriptions of the method embodiments. Any processing method described in the method embodiments can be implemented in the device embodiments through corresponding processing modules, and will not be elaborated upon further in the device embodiments.

[0169] Furthermore, the functional modules in the various embodiments of this application can be integrated into one processing module, or each module can exist physically separately, or two or more modules can be integrated into one module. The integrated modules described above can be implemented in hardware or as software functional modules.

[0170] Please refer to Figure 8 This diagram illustrates a structural block diagram of a computer-readable storage medium provided in an embodiment of this application. The computer-readable storage medium 700 stores program code 710, which can be called by a processor to execute the methods described in the above method embodiments.

[0171] The computer-readable storage medium 700 may be an electronic memory such as flash memory, EEPROM (Electrically Erasable Programmable Read-Only Memory), EPROM, hard disk, or ROM. Optionally, the computer-readable storage medium 700 includes a non-transitory computer-readable storage medium. The computer-readable storage medium 700 has storage space for program code 710 that performs any of the method steps described above. This program code can be read from or written to one or more computer program products. The program code 710 may be compressed, for example, in a suitable form.

[0172] Please refer to Figure 9This diagram illustrates a structural block diagram of a computer program product 800 provided in an embodiment of this application. The computer program product 800 includes a computer program / instructions 810, which is stored in a computer-readable storage medium of a computer device. When the computer program product 800 runs on the computer device, the processor of the computer device reads the computer program / instructions 810 from the computer-readable storage medium, and executes the computer program / instructions 810, causing the computer device to perform the methods described in the above method embodiments.

[0173] Finally, it should be noted that the above embodiments are only used to illustrate the technical solutions of this application, and are not intended to limit them. Although this application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions 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 this application.

Claims

1. A power adjustment method for an electronic atomizing device, characterized in that, An electronic atomizing device applied in a power regulation system, wherein the electronic atomizing device is not configured with a power regulation module for regulating the power of the electronic atomizing device, the power regulation system further includes a power regulator connected to the electronic atomizing device, and the power regulation method includes: Receive the power adjustment command sent by the power regulator; In response to the power adjustment command, a target power value for the electronic atomizing device is determined; Power adjustment is performed based on the target power value.

2. The power regulation method according to claim 1, characterized in that, The power adjustment based on the target power value includes: Calculate the pulse width modulation duty cycle of the electronic atomization device based on the target power value; Power adjustment is performed based on the pulse width modulation duty cycle.

3. The power regulation method according to claim 1, characterized in that, Also includes: Obtain the current power value of the electronic atomization device; Based on the current power value and the target power value, adjustment confirmation information is generated. The adjustment confirmation information includes first adjustment confirmation information indicating that the power adjustment of the electronic atomizing device is successful, or second adjustment confirmation information indicating that the power adjustment of the electronic atomizing device fails. The adjustment confirmation information is sent to the power regulator so that the power regulator displays the adjustment confirmation information.

4. The power regulation method according to any one of claims 1 to 3, characterized in that, The power adjustment command carries setting information, and the step of determining the target power value of the electronic atomizing device in response to the power adjustment command includes: In response to the power adjustment command, the power adjustment command is parsed to obtain the setting information; The target power value is determined based on the set information.

5. The power regulation method according to claim 4, characterized in that, The setting information includes a set power. The step of parsing the power adjustment command in response to the power adjustment command to obtain the setting information includes: In response to the power adjustment command, the power adjustment command is parsed to obtain the set power; Determining the target power value based on the set information includes: The set power is determined as the target power value.

6. The power regulation method according to claim 4, characterized in that, The setting information includes a setting voltage. The step of parsing the power adjustment command in response to the power adjustment command to obtain the setting information includes: In response to the power adjustment command, the power adjustment command is parsed to obtain the set voltage; Determining the target power value based on the set information includes: The target power value is calculated based on the internal resistance of the electronic atomizing device and the set voltage.

7. A power adjustment method for an electronic atomizing device, characterized in that, A power regulator is used in a power regulation system, the power regulation system further including an electronic atomizing device connected to the power regulator, the electronic atomizing device not being configured with a power regulation module for regulating the power of the electronic atomizing device, the power regulation method including: Obtain a power adjustment command, the power adjustment command being used to instruct the electronic atomizing device to adjust the power; The power adjustment command is sent to the electronic atomizing device so that the electronic atomizing device determines a target power value according to the power adjustment command and adjusts the power according to the target power value.

8. The power regulation method according to claim 7, characterized in that, Also includes: The system receives adjustment confirmation information returned by the electronic atomizing device. The adjustment confirmation information is generated by the electronic atomizing device based on the current power value of the electronic atomizing device and the target power value. The adjustment confirmation information includes first adjustment confirmation information indicating that the power adjustment of the electronic atomizing device is successful, or second adjustment confirmation information indicating that the power adjustment of the electronic atomizing device fails. The adjustment confirmation information will be displayed.

9. A power regulation system, characterized in that, It includes an electronic atomizing device and a power regulator, wherein the power regulator is connected to the electronic atomizing device, and the electronic atomizing device is not equipped with a power adjustment module for adjusting the power of the electronic atomizing device; The electronic atomizing device is used to perform the power adjustment method as described in any one of claims 1 to 6; The power regulator is used to perform the power regulation method as described in any one of claims 7 to 8.

10. A computer-readable storage medium, characterized in that, The computer-readable storage medium contains program code that can be invoked by a processor to execute the power regulation method as described in any one of claims 1 to 6, or any one of claims 7 to 8.

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