WO2023197741A1 - 气溶胶生成装置及其控制方法和装置、计算机存储介质 - Google Patents

气溶胶生成装置及其控制方法和装置、计算机存储介质 Download PDF

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Publication number
WO2023197741A1
WO2023197741A1 PCT/CN2023/076091 CN2023076091W WO2023197741A1 WO 2023197741 A1 WO2023197741 A1 WO 2023197741A1 CN 2023076091 W CN2023076091 W CN 2023076091W WO 2023197741 A1 WO2023197741 A1 WO 2023197741A1
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WO
WIPO (PCT)
Prior art keywords
control circuit
action
aerosol
generating device
aerosol generating
Prior art date
Application number
PCT/CN2023/076091
Other languages
English (en)
French (fr)
Inventor
程鹏
林乔士
叶世栋
马千里
Original Assignee
深圳麦时科技有限公司
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Application filed by 深圳麦时科技有限公司 filed Critical 深圳麦时科技有限公司
Publication of WO2023197741A1 publication Critical patent/WO2023197741A1/zh

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Classifications

    • AHUMAN NECESSITIES
    • A24TOBACCO; CIGARS; CIGARETTES; SIMULATED SMOKING DEVICES; SMOKERS' REQUISITES
    • A24FSMOKERS' REQUISITES; MATCH BOXES; SIMULATED SMOKING DEVICES
    • A24F40/00Electrically operated smoking devices; Component parts thereof; Manufacture thereof; Maintenance or testing thereof; Charging means specially adapted therefor
    • A24F40/40Constructional details, e.g. connection of cartridges and battery parts
    • AHUMAN NECESSITIES
    • A24TOBACCO; CIGARS; CIGARETTES; SIMULATED SMOKING DEVICES; SMOKERS' REQUISITES
    • A24FSMOKERS' REQUISITES; MATCH BOXES; SIMULATED SMOKING DEVICES
    • A24F40/00Electrically operated smoking devices; Component parts thereof; Manufacture thereof; Maintenance or testing thereof; Charging means specially adapted therefor
    • A24F40/40Constructional details, e.g. connection of cartridges and battery parts
    • A24F40/46Shape or structure of electric heating means
    • AHUMAN NECESSITIES
    • A24TOBACCO; CIGARS; CIGARETTES; SIMULATED SMOKING DEVICES; SMOKERS' REQUISITES
    • A24FSMOKERS' REQUISITES; MATCH BOXES; SIMULATED SMOKING DEVICES
    • A24F40/00Electrically operated smoking devices; Component parts thereof; Manufacture thereof; Maintenance or testing thereof; Charging means specially adapted therefor
    • A24F40/50Control or monitoring
    • AHUMAN NECESSITIES
    • A24TOBACCO; CIGARS; CIGARETTES; SIMULATED SMOKING DEVICES; SMOKERS' REQUISITES
    • A24FSMOKERS' REQUISITES; MATCH BOXES; SIMULATED SMOKING DEVICES
    • A24F40/00Electrically operated smoking devices; Component parts thereof; Manufacture thereof; Maintenance or testing thereof; Charging means specially adapted therefor
    • A24F40/50Control or monitoring
    • A24F40/51Arrangement of sensors
    • AHUMAN NECESSITIES
    • A24TOBACCO; CIGARS; CIGARETTES; SIMULATED SMOKING DEVICES; SMOKERS' REQUISITES
    • A24FSMOKERS' REQUISITES; MATCH BOXES; SIMULATED SMOKING DEVICES
    • A24F40/00Electrically operated smoking devices; Component parts thereof; Manufacture thereof; Maintenance or testing thereof; Charging means specially adapted therefor
    • A24F40/90Arrangements or methods specially adapted for charging batteries thereof

Definitions

  • the present application relates to the technical field of heating appliance control, and in particular to an aerosol generating device, its control method and device, and computer storage media.
  • Heat-not-burn appliances use a heating element to heat a solid aerosol-generating matrix to form an aerosol.
  • the aerosol-generating matrix is for single use and needs to be removed from the appliance after heating is completed.
  • embodiments of the present application provide a method for controlling an aerosol generating device, which method includes:
  • the target work action matches the use operation
  • an interactive action for characterizing the working parameters of the aerosol generating device is executed, and the working parameters are information updated based on execution of the target working action.
  • the aerosol generating device includes an upper cover and a main body.
  • the main body has an aerosol generating substrate containing cavity.
  • the upper cover has a dust cover that completely covers the dust cover when it is closed.
  • the opening of the accommodation cavity is connected to the outside when the dust cover is opened, so that the aerosol-generating matrix is placed into the accommodation cavity from the opening;
  • the main body also includes an indicator light assembly , vibration module, battery and control circuit, the indicator light assembly, the vibration module and the battery are all connected to the control circuit;
  • the use operation includes the opening action of the dust cover
  • the step of executing a target work action based on the aerosol generating device in response to the use operation of the aerosol generating device includes:
  • control the aerosol generation device In response to the opening action of the dust cover, control the aerosol generation device to enter a non-sleep working mode
  • Control the indicator light assembly to operate in the first state based on the control circuit to prompt entry into the non-sleep working mode and/or prompt the remaining power of the battery;
  • the vibration module is controlled based on the control circuit to perform a first vibration action to prompt entry into the non-sleep working mode.
  • the main body further includes a heating element; the heating element is connected to the control circuit; the use operation also includes a startup preheating operation, an aerosol suction action, and a suction operation when the aerosol generation device enters the non-sleep working mode. At least one of the inhalation progress checking operation, heating interruption operation and aerosol generation matrix extraction operation;
  • the target work action matched by starting the preheating operation includes controlling the heating element to preheat based on the control circuit;
  • the target work action matched to the aerosol suction action includes controlling the heating element to heat the aerosol-generating matrix based on the control circuit;
  • the target work action of matching the puff progress viewing operation includes calculating the remaining puff progress of the aerosol-generating matrix based on the control circuit;
  • the target work action matched by interrupting the heating operation includes controlling the heating element to stop heating based on the control circuit;
  • the target work actions matched to the aerosol-generating substrate selection operation include controlling the heating element to stop heating based on the control circuit;
  • interactive actions for characterizing the working parameters of the aerosol generation device are performed, including:
  • At least one interactive action for characterizing the operating parameters of the aerosol generating device is performed based on the control circuit and the indicator light assembly and/or the vibration module.
  • the main body further includes a shake sensor, the shake sensor is connected to the control circuit, and the puffing progress viewing operation includes shaking the aerosol generating device a preset number of times;
  • the above methods also include:
  • the aerosol generation device When the aerosol generation device enters the non-sleep working mode, obtain the jitter data detected by the jitter sensor, and determine whether there is a suction progress viewing operation based on the jitter data of the jitter sensor;
  • At least one interactive action for characterizing the operating parameters of the aerosol generation device is performed, including:
  • the control circuit controls the vibration module to perform a vibration action that matches the remaining suction progress.
  • the main body further includes a function button connected to the control circuit; initiating the preheating operation includes pressing the function button for a first preset time and then releasing it;
  • At least one interactive action for characterizing the operating parameters of the aerosol generation device is performed, including:
  • the indicator light component is controlled to work in the second state based on the control circuit to prompt that the preheating is in progress;
  • the vibration module is controlled to perform a second vibration action to prompt that preheating is completed.
  • the use operation further includes pressing the function button for a second preset time, and the second preset time is less than the first preset time;
  • the target work action of matching the second preset time of pressing the function button includes continuing to monitor the time when the function button is pressed based on the control circuit;
  • interactive actions for characterizing the working parameters of the aerosol generation device are performed, including:
  • the vibration module is controlled based on the control circuit to perform a third vibration action to indicate that preheating is about to be triggered.
  • the aerosol suction action includes inserting an aerosol generating matrix;
  • the target work action matched by the aerosol suction action includes controlling the heating element to heat the aerosol generation based on the control circuit matrix and detect the number of puffs and/or the remaining puff time;
  • Executing at least one interactive action for characterizing the working parameters of the aerosol generation device based on the control circuit and the indicator light assembly and/or the vibration module further includes at least one of the following steps:
  • the heating element is controlled to stop heating based on the control circuit
  • the indicator light assembly is controlled to turn off based on the control circuit
  • the indicator light assembly is controlled to work in the fourth state based on the control circuit and/or the vibration module is controlled to perform the third The vibration action is used to prompt the remaining suction progress; the second preset number of times is less than the first preset number of times, and the fourth preset time is less than the third preset time.
  • performing at least one interactive action for characterizing the working parameters of the aerosol generating device based on the control circuit and the indicator light assembly and/or the vibration module further includes:
  • the indicator light assembly is controlled based on the control circuit to perform a first abnormality reminder action.
  • the main body further includes a shake sensor, the shake sensor is connected to the control circuit, and the puffing progress viewing operation includes shaking the aerosol generating device a preset number of times;
  • Methods also include:
  • the heating element heats the aerosol-generating substrate, obtain the jitter data detected by the jitter sensor, and determine whether there is a suction progress viewing operation based on the jitter data of the jitter sensor;
  • At least one interactive action for characterizing the operating parameters of the aerosol generation device is performed, including:
  • the control circuit controls the vibration module to perform a vibration action that matches the remaining suction progress.
  • the main body further includes a function button connected to the control circuit; interrupting the heating operation includes pressing the function button for a fifth preset time;
  • Performing at least one interactive action for characterizing the working parameters of the aerosol generation device based on the control circuit and the indicator light assembly and/or the vibration module includes at least one of the following steps:
  • the vibration module is controlled based on the control circuit to perform the fourth vibration action.
  • the upper cover and the main body are detachably connected, and the aerosol-generating matrix extraction operation includes separating the upper cover and the main body;
  • At least one interactive action for characterizing the operating parameters of the aerosol generation device is performed, including:
  • the use operation includes a closing action of the dust cover, and the target work action matched by the closing action of the dust cover includes controlling the aerosol generating device to enter a dormant working mode;
  • interactive actions for characterizing the working parameters of the aerosol generation device are performed, including:
  • the control light assembly goes out.
  • the main body also includes a charging interface; the charging interface is connected to the control circuit and the battery respectively, and the charging interface is used to connect to an external power supply;
  • the operation includes connecting the charging interface to an external power supply;
  • the target work action of connecting the charging interface to the external power supply includes controlling the external power supply to charge the battery based on the control circuit;
  • interactive actions for characterizing the working parameters of the aerosol generation device are performed, including:
  • the indicator light component is controlled to work in the fifth state to prompt the remaining power of the battery.
  • the main body of the aerosol generating device includes an indicator light assembly, a heating element and a control circuit.
  • the indicator light assembly and the heating element are both connected to the control circuit; the use operation also includes performing the operation without heating the heating element.
  • Battery life check operation; the target work action matched by the battery life check operation is to obtain the remaining power;
  • the interactive actions used to characterize the working parameters of the aerosol generation device include at least one of the following:
  • the indicator light assembly is controlled based on the control circuit to perform a second abnormality reminder action.
  • the main body further includes a function button and a jitter sensor connected to the control circuit;
  • Battery life viewing operations include:
  • Methods also include:
  • the aerosol generating device When the aerosol generating device is in the non-sleep working mode, it is determined based on the jitter data of the jitter sensor whether there is a battery life checking operation.
  • the step further includes:
  • the aerosol generating device In response to separating the upper cover and the main body, the aerosol generating device is controlled to enter a dormant working mode.
  • embodiments of the present application also provide a control device for an aerosol generating device, which device includes:
  • the use operation response module is configured to respond to the use operation of the aerosol generation device and execute the target work action based on the aerosol generation device; the target work action matches the use operation;
  • the response execution feedback module is configured to execute an interactive action for characterizing the working parameters of the aerosol generating device based on the aerosol generating device.
  • the working parameters are information updated based on execution of the target working action.
  • this application also provides an aerosol generating device, including a memory and a processor.
  • the memory stores a computer program, and when the processor executes the computer program, the steps of the above method are implemented.
  • the aerosol generating device includes an upper cover and a main body
  • the main body has an aerosol-generating matrix accommodation cavity
  • the upper cover has a dust-proof cover that completely covers the opening of the accommodation cavity when the dust-proof cover is closed.
  • the dust-proof cover When the dust-proof cover is opened, the accommodation cavity Communicated with the outside, so that the aerosol-generating matrix is placed into the containing chamber from the opening;
  • the main body also includes a function button, a jitter sensor, a Hall sensor, a charging interface, a battery and a control circuit.
  • the key, the jitter sensor, the Hall sensor, the charging interface and the battery are all connected to the control circuit;
  • the dust cover is provided with a first magnetic component that cooperates with the Hall sensor. When the dust cover is open and the dust cover is closed, the output signal of the Hall sensor is different;
  • the control circuit detects the opening action of the dust cover and the closing action of the dust cover according to the output signal of the Hall sensor
  • the control circuit includes a memory and a processor.
  • the memory stores a computer program.
  • the processor executes the computer program, the steps of the above method are implemented.
  • the shake sensor is an acceleration sensor.
  • a computer-readable storage medium on which a computer program is stored.
  • the steps of the above method are implemented.
  • Figure 1a is a schematic diagram of the overall structure of the aerosol generation device from one perspective
  • Figure 1b is a schematic diagram of the overall structure of the aerosol generation device from another perspective
  • Figure 1c is a schematic structural diagram of the upper cover and the main body of the aerosol generating device in one embodiment when they are used together and the dust cover is open;
  • Figure 1d is a schematic structural diagram of the upper cover and the main body of the aerosol generating device in one embodiment when they are used together and the dust cover is closed;
  • Figure 1e is a schematic structural diagram of the aerosol generation device in one embodiment when the upper cover and the main body are separated and the dust cover is closed;
  • Figure 1f is a schematic structural diagram of the aerosol generation device in one embodiment when the upper cover and the main body are separated and the dust cover is opened;
  • Figure 2 is a schematic diagram of the electrical structure of an aerosol generating device in one embodiment
  • Figure 3 is a schematic flow chart of a control method of an aerosol generating device in one embodiment
  • Figure 4 is a schematic flow chart of a control method of an aerosol generating device in another embodiment
  • Figure 5 is a partial flow diagram of a control method of an aerosol generating device in one embodiment
  • Figure 6 is a structural block diagram of a control device of an aerosol generating device in one embodiment
  • Figure 7 is a schematic diagram of the internal structure of the control part of the aerosol generating device in one embodiment.
  • Spatial relational terms such as “under”, “under”, “under”, “under”, “on”, “above”, etc., in This may be used to describe the relationship of one element or feature to other elements or features shown in the figures. It will be understood that the spatially relative terms encompass different orientations of the device in use and operation in addition to the orientation depicted in the figures. For example, if the device in the figures is turned over, elements or features described as “below” or “under” or “beneath” other elements or features would then be oriented “above” the other elements or features. Thus, the exemplary terms “below” and “under” may include both upper and lower orientations. Additionally, the device may be otherwise oriented (eg, rotated 90 degrees or at other orientations) and the spatial descriptors used herein interpreted accordingly.
  • connection in the following embodiments, if there is electrical power between the connected objects
  • the transmission of signals or data should be understood as “electrical connection”, “communication connection”, etc.
  • heat-not-burn appliances are usually small in size and cannot be equipped with a large display screen to display the working parameters of the appliance, it is difficult for users to understand all aspects of the appliance's working parameters when using heat-not-burn appliances, and it is impossible to arrange subsequent use plans. .
  • this application provides a control method for the aerosol generating device, as shown in Figures 3-5.
  • the method includes:
  • the use operation of the aerosol generation device may include starting a preheating operation and an aerosol suction action , check the suction progress, interrupt the heating operation and select the aerosol-generating matrix, connect the charging interface to the external power supply, and check the battery life, etc.
  • the target working action refers to the user's working status control intention and working status query intention of the aerosol generating device represented by the operation actions performed by the user when using the aerosol generating device. Determining the matching target work action based on the usage operation can be implemented by querying the pre-stored mapping table. For example, the use operation of the aerosol generation device can be identified through the sensor mounted on the aerosol generation device, and then the mapping table can be checked to determine the target work action that matches the use operation.
  • S40 Based on the aerosol generating device, execute an interactive action for characterizing the working parameters of the aerosol generating device.
  • the working parameters are information updated based on executing the target working action.
  • the working parameters of the aerosol generating device can be obtained by executing the target working action, and based on the obtained working parameters, the working parameters are fed back to the user based on the execution of the interactive action, so that the user can know the working parameters of the aerosol generating device.
  • a target work action matching the use operation is determined, so as to instruct the aerosol generation device to perform the target work action.
  • this application is based on the updated work parameters of the target work action and determines the interaction that can represent the updated work parameters through table lookup and other methods.
  • Action thereby allowing the user to learn the working parameters of the aerosol generation device by performing interactive actions, such as the remaining progress of puffing, battery life, and whether it is heating. Based on this, the user can make a plan for the subsequent use of the aerosol generating device in advance, for example: when the remaining progress of suction is insufficient, prepare a new aerosol matrix 900 for replacement, and when the remaining power is insufficient, charge it.
  • the aerosol generating device includes an upper cover 100 and a main body 200.
  • the main body 200 has an aerosol generating substrate containing cavity, and the upper cover 100 has a dust-proof cover 120.
  • dust-proof When dust-proof, When the cover 120 is closed, it completely covers the opening of the accommodating cavity.
  • the dust cover 120 When the dust cover 120 is opened, the accommodating cavity is connected to the outside, so that the aerosol-generating matrix can be placed into the accommodating cavity from the opening;
  • the main body 200 also includes an indicator light assembly 230, a vibration module 260, The battery 270 and the control circuit 290, the indicator light assembly 230, the vibration module 260 and the battery 270 are all connected to the control circuit 290; the use operation includes opening the dust cover 120;
  • step S20 in response to the use operation of the aerosol generation device, execute the target work action based on the aerosol generation device, including:
  • the aerosol generating device In response to the opening action of the dust cover 120, the aerosol generating device is controlled to enter the non-sleep working mode.
  • the aerosol generation device By detecting the opening action of the dust cover 120, the aerosol generation device enters a non-sleep working mode.
  • the jitter sensor 280 can be awakened, the jitter data detected by the jitter sensor 280 can be obtained, and the remaining progress of suctioning based on jitter detection can be obtained.
  • non-sleep operating mode the heating function of the aerosol generating device is allowed to be used.
  • step S40 perform interactive actions for characterizing the working parameters of the aerosol generation device based on the aerosol generation device, as shown in Figure 4, including at least one of the following steps:
  • S41 Control the indicator light component to work in the first state based on the control circuit to prompt the entry into the non-sleep working mode and/or the remaining power of the battery.
  • the indicator light assembly 230 may have multiple light fixtures, for example, may include a multi-color LED light and a light bar to display multiple states to represent different operating conditions of the aerosol generating device.
  • the first state may be that the white light starts to gradually brighten for 1 second, and then flashes quickly for 2 seconds, and the control circuit 290 controls the LED lights in the indicator light assembly 230 to emit different colors of light according to the detected battery power to display the remaining battery life. power.
  • the control circuit 290 when it is detected that the remaining power is 50% to 100%, the control circuit 290 is used to control the LED light to emit white light, indicating that the remaining power is sufficient; when it is detected that the remaining power is 20% to 50%, the control circuit 290 is used to control LED light emits Yellow-green light; when it is detected that the remaining power is ⁇ 20%, the LED light is controlled to emit orange light based on the control circuit 290 to indicate that the power is insufficient and needs to be charged.
  • S42 Control the vibration module to perform the first vibration action based on the control circuit to prompt the user to enter the non-sleep working mode.
  • the aerosol generation device when the opening action of the dust cover is detected, the aerosol generation device is controlled to enter the non-sleep working mode, and the vibration module can be controlled to perform the first vibration action to Prompts the user that the aerosol generating device has awakened and can perform operations such as heating the aerosol generating substrate and sucking aerosol.
  • the vibration module may be a vibration motor connected to the control circuit.
  • the first vibration action can be light vibration for 0.5s.
  • the main body 200 further includes a heating element 240; the heating element 240 (such as 1b-1e and shown in Figure 2) is connected to the control circuit 290.
  • the heating element 240 is in the shape of a column or a sheet, and is inserted into the aerosol matrix 900 for heating.
  • the heating element 240 may be in the shape of a hollow circular tube, surrounding the aerosol matrix 900 for heating outside.
  • the use operation also includes at least one of a start-up preheating operation, an aerosol suction operation, a suction progress checking operation, an interruption heating operation, and an aerosol generation substrate extraction operation performed when the aerosol generation device enters the non-sleep working mode.
  • the target work actions corresponding to various usage operations are listed in the following embodiments.
  • Step S40 is based on the aerosol generation device performing interactive actions for characterizing the working parameters of the aerosol generation device, as shown in Figure 4, including:
  • S43 Perform at least one interactive action for characterizing the working parameters of the aerosol generation device based on the control circuit and the indicator light assembly and/or the vibration module. At least one interactive action for characterizing the operating parameters of the aerosol generating device may be performed by controlling at least one of the indicator light assembly 230 and the vibration module 260 through the control circuit 290 .
  • initiating the preheating operation to match the target work action includes controlling the heating element 240 to preheat based on the control circuit 290 .
  • the heating element 240 is controlled to work for a period of time based on the control circuit 290 to preheat the aerosol-generating substrate to provide a better suction taste.
  • the main body 200 also includes a function button 250 connected to the control circuit 290; initiating the preheating operation includes pressing the function button 250 for a first preset time and then releasing it.
  • the first preset time may be a short time to prevent the user from waiting too long, for example, it may be 1.5 seconds.
  • Step S43 perform at least one interactive action for characterizing the working parameters of the aerosol generation device based on the control circuit and the indicator light assembly and/or the vibration module, as shown in Figure 5, including:
  • the indicator light assembly is controlled to work in the second state based on the control circuit to prompt that the preheating is in progress.
  • the second state may be that the control circuit controls the indicator light component to emit white light and flash.
  • the vibration module is controlled to perform a second vibration action to prompt that preheating is completed.
  • the second vibration action may be to vibrate twice, and each vibration lasts for 0.6 seconds.
  • the specific second vibration action can be configured in advance.
  • the bottom of the above-mentioned accommodation chamber may also be provided with an aerosol matrix insertion detection sensor connected to the control circuit, for example, a pressure sensor may be used.
  • the method also includes:
  • the heating element is controlled to preheat based on the control circuit.
  • the use operation further includes pressing the function button for a second preset time, and the second preset time is less than the first preset time.
  • the second preset time can be configured as 1 second.
  • the target work action of matching the second preset time of pressing the function button includes continuing to monitor the time when the function button is pressed based on the control circuit;
  • step S40 based on the aerosol generation device, performs interactive actions for characterizing the working parameters of the aerosol generation device, including:
  • the vibration module When the heating element is not heated, the vibration module is controlled based on the control circuit to perform a third vibration action to indicate that preheating is about to be triggered. In order to avoid heating caused by user misoperation, a prompt can be given before the preheating function is about to be turned on.
  • the function button When the function button is pressed for the second preset time, continue to monitor the time when the function button is pressed, and control the vibration module to execute the second preset time. Three vibrations will remind the user that if they continue to press the function button to the first preset time, the preheating function will be activated. If the user does not need to heat the aerosol matrix, he can release the function button after receiving this reminder.
  • the third vibration action may be to vibrate for 0.5 seconds to remind the user that preheating is about to be started.
  • matching the aerosol puffing action to the target operating action includes controlling the heating element to heat the aerosol-generating substrate based on the control circuit.
  • the aerosol suction action can be done by inserting the aerosol-generating matrix, or based on preheating under the insertion of the aerosol-generating matrix. Specifically, when the completion of preheating is detected in the non-sleep working mode, the heating element is controlled based on the control circuit to heat the aerosol-generating matrix, and the aerosol is continuously generated for the user to inhale.
  • the aerosol suction action includes inserting the aerosol-generating matrix;
  • the target work action matched by the aerosol suction action includes controlling the heating element to heat the aerosol-generating matrix based on the control circuit and detecting the number of puffs and/or remaining suction time;
  • Step S43 performing at least one interactive action for characterizing the working parameters of the aerosol generation device based on the control circuit and the indicator light assembly and/or the vibration module, also includes:
  • the control indicator light assembly works in the third state during the inhalation process to prompt the aerosol to be generated and the user can inhale.
  • the third state may be to control the white LED light in the indicator light assembly to emit light, and to control the light bar in the indicator light assembly to breathe and flash.
  • the heating element can be controlled to stop heating based on the control circuit at this time. .
  • the indicator light can be controlled based on the control circuit. The component goes out.
  • the interactive action also includes: if the detected number of puffs reaches the second preset number or the remaining puffing time reaches the fourth preset time , then based on the control circuit, the indicator light component is controlled to work in the fourth state and/or the vibration module is controlled to perform the third vibration action to prompt the remaining suction progress; the second preset number of times is less than the first preset number of times, and the fourth preset number of times is smaller than the first preset number of times.
  • the set time is less than the third preset time.
  • the second preset number of times can be set to the remaining 2 times, which is determined based on the first preset number of times.
  • the second preset number of times can be configured as 12 times.
  • the fourth preset time can also be determined based on the third preset time. For example, when the third preset time is configured as 5 minutes, the fourth preset time can be configured as 4 minutes and 30 seconds smaller than it, that is, in the remaining draws. A reminder is triggered when the inhalation time is 30 seconds.
  • the fourth state may be based on the control circuit controlling the white light in the indicator light assembly to flash.
  • the third vibration action may be to vibrate once to remind.
  • the above interactive action also includes controlling the indicator light assembly to perform a first abnormality reminder action based on the control circuit when abnormal heating of the heating element is detected.
  • the first abnormality reminder action may be that the red light of the control circuit controls the indicator light assembly flashes three times quickly.
  • the puff progress viewing operation matches the target work action including calculating the remaining puff progress of the aerosol generating substrate based on the control circuit.
  • the remaining suction progress is calculated so that the interactive action can be executed based on the calculation result and the user is prompted for the current remaining suction progress.
  • the main body also includes a jitter sensor, which is connected to the control circuit, and the suction progress viewing operation includes shaking the aerosol generating device a preset number of times;
  • the above methods also include:
  • the aerosol generation device When the aerosol generation device enters the non-sleep working mode, obtain the jitter data detected by the jitter sensor, and determine whether there is a suction progress viewing operation based on the jitter data of the jitter sensor;
  • At least one interactive action for characterizing the operating parameters of the aerosol generation device is performed, including:
  • the control circuit controls the vibration module to perform a vibration action that matches the remaining suction progress.
  • the vibration action that matches the remaining suction progress can be determined based on the mapping relationship between the remaining suction progress and the vibration action in the following table:
  • the target work action matched by the interruption of the heating operation includes controlling the heating element to stop heating based on the control circuit. In this way, the waste of the aerosol matrix 900 and the energy of the battery 270 in the main body 200 are avoided.
  • the main body 200 also includes a function button 250 connected to the control circuit 290; interrupting the heating operation includes pressing the function button 250 for a fifth preset time.
  • the fifth preset time may be a time different from other preset times, for example, it may be 2.5 seconds.
  • step S43 executes at least one interactive action for characterizing the working parameters of the aerosol generation device based on the control circuit 290 and the indicator light assembly 230 and/or the vibration module 260, including:
  • the indicator light assembly 230 is controlled to turn off, and the user is prompted that the heating has been interrupted by controlling all the indicator light components 230 to turn off.
  • the vibration module 260 is controlled based on the control circuit 290 to perform the fourth vibration action.
  • the fourth vibration action may be one vibration.
  • the user can accurately know the current status of the aerosol generation device by combining the duration of the vibration action and the previous working status of the aerosol generation device.
  • matching the target operating actions of the aerosol-generating substrate extraction operation includes controlling the heating element 240 to stop heating based on the control circuit 290 .
  • the control circuit 290 controls the heating element to stop heating when an aerosol-generating substrate extraction operation is recognized.
  • Target work actions matched to the aerosol-generating substrate extraction operation include controlling the aerosol-generating device to enter a sleep mode. In this mode, the heating element 240 is prohibited from heating and the vibration sensor 280 is prohibited from operating. This may be accomplished by disconnecting power from the battery 270 to the heating element 240 and from power to the shake sensor 280 .
  • the upper cover 100 and the main body 200 are detachably connected.
  • To pull out the aerosol-generating matrix it is usually necessary to open the upper cover 100 and pull out or pour out the aerosol matrix in the containing chamber, so the aerosol-generating matrix
  • the extraction operation includes separating the upper cover 100 and the main body 200;
  • At least one interactive action for characterizing the operating parameters of the aerosol generation device is performed, including:
  • the indicator light assembly 230 is controlled to go out.
  • the use operation includes a closing action of the dust cover 120
  • the target work action matched by the closing action of the dust cover 120 includes controlling the aerosol generating device to enter a dormant working mode.
  • the sleep mode it is intended to save energy.
  • the user does not need to perform aerosol suction and query the remaining power and suction progress during the suction process. Therefore, in one embodiment, the method also includes: in the sleep mode , the heating element 240 is disabled based on the control circuit 290 .
  • the method also includes : In the sleep mode, the jitter sensor 280 is prohibited from operating based on the control circuit 290.
  • the aerosol generating device After entering the sleep mode, the aerosol generating device performs interactive actions to characterize the working parameters of the aerosol generating device, including:
  • the control indicator light assembly 230 is turned off.
  • the main body 200 also includes a charging interface 291; the charging interface 291 is connected to the control circuit 290 and the battery 270 respectively, and the charging interface 291 is used to connect to the external power supply 400; the charging interface 291 can be a Type-C protocol interface.
  • the usage operation includes connecting the charging interface 291 to the external power supply 400; connecting the charging interface 291 to the external power supply 400 can be done by connecting the power adapter to a USB data cable, and inserting the USB data cable into the charging interface 291 provided at the bottom of the aerosol generating device.
  • the target work action of connecting the charging interface 291 to the external power supply 400 includes controlling the external power supply 400 to charge the battery 270 based on the control circuit 290.
  • the control circuit 290 controls charging to the battery 270, which can be based on a preset
  • the power management policy performs charging control actions.
  • Step S40 based on the aerosol generation device, perform interactive actions for characterizing the working parameters of the aerosol generation device, including:
  • the indicator light assembly 230 is controlled to operate in the fifth state to indicate the remaining power of the battery 270.
  • the fifth state may be that the control circuit 290 controls the LED lamp beads in the light bar in the indicator light assembly 230 to gradually light up from bottom to top (top refers to the side where the opening of the accommodation cavity is located) and cycle this effect.
  • the determination of the fifth state can also be determined based on the following table:
  • the main body 200 of the aerosol generating device includes an indicator light assembly 230, a heating element 240 and a control circuit 290.
  • the indicator light assembly 230 and the heating element 240 are both connected to the control circuit 290; the use operation also includes the heating element.
  • 240 is a battery life check operation performed when the battery is not heated; the target work action matched by the battery life check operation is to obtain the remaining power;
  • Step S40 based on the aerosol generation device, perform interactive actions for characterizing the working parameters of the aerosol generation device, as shown in Figure 4, including at least one of the following:
  • S44 Control the indicator light assembly to work in the sixth state based on the control circuit to prompt the remaining power of the battery.
  • the sixth state may be that the light bar in the indicator light assembly lights up for 3 seconds to indicate the remaining power.
  • the remaining power in addition to prompting the remaining power by lighting up the light bar for 3 seconds, the remaining power can be distinguished based on the different colors of the light bar.
  • the determination of the sixth state can be determined by querying the following table:
  • the main body 200 also includes a function button 250 and a shake sensor 280 connected to the control circuit 290;
  • Battery life viewing operations include:
  • the sixth preset time can be configured as a time between 0.5-1 seconds.
  • Methods also include:
  • the aerosol generating device When the aerosol generating device is in the non-sleep working mode, it is determined based on the jitter data of the jitter sensor 280 whether there is a battery life checking operation.
  • the control circuit processes the jitter data of the jitter sensor 280 such as the acceleration sensor to determine whether there is a battery life check operation. If it is determined based on the jitter data that the battery life check operation exists, the remaining power is obtained. Based on the obtained Remaining power, perform corresponding interactive actions to prompt the user of the remaining power of the aerosol generating device. Reference may be made to the interactive action determination scheme under the battery life viewing operation in the above embodiment.
  • the step further includes:
  • the aerosol generating device In response to separating the upper cover 100 and the main body 200, the aerosol generating device is controlled to enter a dormant operating mode.
  • the aerosol generating device when the dust cover 120 is open, if there is no equipment operation within the preset waiting time (such as within 3 minutes), the aerosol generating device will also be controlled to enter the dormant working mode. At this time, it needs to be closed. The dust cover 120 is then opened again to trigger the aerosol generating device to enter the non-sleep working mode.
  • the aerosol generating device When the dust cover 120 is open, if it is detected that the upper cover 100 is separated from the main body 200, indicating that the user intends to pull out the aerosol matrix at this time, the aerosol generating device is controlled to enter the sleep mode and the heating element 240 is prohibited from continuing to heat. , and also prohibits the operation of the jitter sensor 280.
  • the heating element 240 is prohibited from heating based on the control circuit, and the jitter sensor 280 is prohibited from operating to save energy.
  • target work actions and interactive actions may be performed only in response to operations based on the function button 250 being pressed for the sixth preset time.
  • the main body 200 also includes a temperature sensor 292.
  • the method also includes:
  • the control circuit 290 controls the indicator light assembly 230 to perform a third abnormality reminder action.
  • the third abnormality reminder action may be based on the control instruction of the control circuit 290
  • the indicator light assembly 230 emits red light and flashes twice rapidly at intervals. It is different from the reminder when the heating element 240 is abnormal.
  • the use operation also includes a forced sleep operation or a forced wake-up operation
  • the target work action corresponding to the forced sleep operation includes controlling the aerosol generating device to enter the sleep working mode.
  • the forced sleep operation may be to continuously press the function button 4 times when the aerosol generating device is in the non-sleep working mode.
  • the target work action corresponding to the forced wake-up operation includes controlling the aerosol generation device to exit the sleep working mode and enter the non-sleeping working mode, and detect the jitter data detected by the jitter sensor 280 based on the control circuit.
  • the forced wake-up operation may be to continuously press the function button 250 for 4 times when the aerosol generating device is in the sleep mode.
  • the priority ordering for its execution is:
  • steps in the flowchart in the figure are shown in sequence as indicated by arrows, these steps are not necessarily executed in the order indicated by arrows. Unless explicitly stated in this article, there is no strict order restriction on the execution of these steps, and these steps can be executed in other orders. Moreover, at least some of the steps in the figure may include multiple steps or stages. These steps or stages are not necessarily executed at the same time, but may be executed at different times. The order of execution of these steps or stages does not necessarily change. It must be performed sequentially, but may be performed in turn or alternately with other steps or at least part of steps or stages in other steps.
  • the embodiment of the present application also provides a control device for an aerosol generating device.
  • the device includes:
  • the use operation response module 20 is configured to, in response to the use operation of the aerosol generation device, perform a target work action based on the aerosol generation device; the target work action matches the use operation;
  • the response execution feedback module 40 is configured to execute an interactive action for characterizing the working parameters of the aerosol generating device based on the aerosol generating device, where the working parameters are information updated based on execution of the target working action.
  • Each module in the control device of the above-mentioned aerosol generating device can be implemented in whole or in part by software, hardware, and combinations thereof.
  • Each of the above modules can be embedded in or independent of the processor in the aerosol generation device in the form of hardware, or can be stored in the memory of the aerosol generation device in the form of software, so that the processor can call and execute the operations corresponding to each of the above modules.
  • the division of modules in the embodiment of the present application is schematic and is only a logical function division. In actual implementation, there may be other division methods.
  • an aerosol generating device is provided, the internal structure diagram of which can be shown in Figure 7 .
  • the aerosol generating device includes a processor and memory connected via a system bus. Among them, the processor of the aerosol generating device is used to provide calculation and control capabilities.
  • the memory of the aerosol generating device includes non-volatile storage media and internal memory.
  • the non-volatile storage medium stores operating systems, computer programs and databases. This internal memory provides an environment for the execution of operating systems and computer programs in non-volatile storage media.
  • the database of the aerosol generating device is used to store data such as predefined target work actions and interactive actions.
  • the computer program when executed by a processor, implements a method of controlling an aerosol generating device.
  • FIG. 7 is only a block diagram of a partial structure related to the solution of the present application, and does not constitute a limitation on the aerosol generation device to which the solution of the present application is applied.
  • the specific aerosol generation device The sol generating device may include more or fewer components than shown in the figures, or combine certain components, or have a different arrangement of components.
  • the present application provides an aerosol generating device, which includes a memory and a processor.
  • the memory stores a computer program.
  • the processor executes the computer program, it implements the steps of the control method of the aerosol generating device in any of the above embodiments.
  • the aerosol generating device includes an upper cover 100 and a main body 200;
  • the main body 200 has an aerosol-generating matrix containing cavity
  • the upper cover 100 has a dust-proof cover 120 that completely covers the opening of the containing cavity when the dust-proof cover 120 is closed, and when the dust-proof cover 120 is opened
  • the aerosol-generating matrix is placed into the accommodation chamber from the opening;
  • the main body 200 also includes a function button 250, a shake sensor 280, a Hall sensor 210, a charging interface 291, a battery 270 and a control circuit 290.
  • the function button 250, the shake sensor 280, the Hall sensor 210, and all The charging interface 291 and the battery 270 are both connected to the control circuit 290;
  • the dust cover 120 is provided with a first magnetic component 110 that cooperates with the Hall sensor 210.
  • the dust cover 120 is opened and the dust cover 120 is closed, the output of the Hall sensor 210 The signals are different;
  • the control circuit detects the opening action of the dust cover 120 and the closing action of the dust cover 120 according to the output signal of the Hall sensor 210;
  • the control circuit includes a memory and a processor.
  • the memory stores a computer program.
  • the processor executes the computer program, the steps of the above method are implemented.
  • the shake sensor is an acceleration sensor.
  • An acceleration sensor may be housed in the body 200 .
  • the activation and deactivation control of the acceleration sensor can be performed through the detection of the Hall sensor 210 .
  • the aerosol generating device further includes a second magnetic component 130 disposed in the upper cover 100 and a third magnetic component 220 disposed in the main body 200.
  • the third magnetic component 130 is disposed in the upper cover 100. The two magnetic parts 130 and the third magnetic part 220 are attracted together to improve the stability.
  • the dust cover 120 is slidably connected to the body of the upper cover 100 .
  • the dust cover 120 can slide along the length direction of the end surface of the upper cover 100 .
  • the upper cover 100 is slidably connected to the main body 200, and the upper cover 100 is separated from the main body 200 by lifting the upper cover 100 in a direction opposite to the insertion direction of the aerosol matrix.
  • control circuit 290 can identify four states as shown in Figures 1c-1f based on the output signal of the Hall sensor 210:
  • the upper cover 100 and the main body 200 are used together, and the dust cover 120 is opened;
  • the upper cover 100 and the main body 200 are used together, and the dust cover 120 is closed;
  • the upper cover 100 is separated from the main body 200, and the dust cover 120 is opened;
  • the upper cover 100 is separated from the main body 200, and the dust cover 120 is closed.
  • the aerosol generating device has the structural features described in the above method embodiments so as to be able to perform the above method steps, which will not be described again here.
  • a computer-readable storage medium is provided, with a computer program stored thereon.
  • the computer program is executed by a processor, all the above-mentioned steps of the method for controlling an aerosol-generating substrate are implemented, and corresponding beneficial effects are achieved. .
  • Non-volatile memory can include read-only memory (ROM), magnetic tape, floppy disk, flash memory or optical memory, etc.
  • Volatile memory may include random access memory (RAM) or external cache memory.
  • RAM can be in many forms, such as static random access memory (Static Random Access Memory, SRAM) or dynamic random access memory (Dynamic Random Access Memory, DRAM).

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Abstract

一种气溶胶生成装置及其控制方法和装置、计算机存储介质,通过响应于对气溶胶生成装置的使用操作,确定与该使用操作匹配的目标工作动作,以指示气溶胶生成装置执行该目标工作动作。基于执行该目标工作动作所更新的工作参数,通过查表等方式确定能够表征更新的工作参数的交互动作,并通过执行交互动作使用户获悉气溶胶生成装置的工作参数,例如,抽吸剩余进度、续航时间以及是否在加热等,基于此,用户可提前制定气溶胶生成装置的后续使用计划,例如:抽吸剩余进度不足时,准备新的气溶胶基质(900)以便进行替换,剩余电量不足时进行充电等。

Description

气溶胶生成装置及其控制方法和装置、计算机存储介质
相关申请
本申请要求2022年4月12日申请的,申请号为202210380791X,名称为“气溶胶生成装置及其控制方法和装置、计算机存储介质”的中国专利申请的优先权,在此将其全文引入作为参考。
技术领域
本申请涉及加热器具控制技术领域,特别是涉及一种气溶胶生成装置及其控制方法和装置、计算机存储介质。
背景技术
加热不燃烧器具采用发热体将固态的气溶胶生成基质进行加热形成气溶胶,气溶胶生成基质为单次使用,加热完成后需从器具中移除更替。
发明内容
第一方面,本申请实施例提供了一种气溶胶生成装置的控制方法,该方法包括:
响应于对气溶胶生成装置的使用操作,基于气溶胶生成装置执行目标工作动作;目标工作动作与使用操作匹配;
基于气溶胶生成装置执行用于表征气溶胶生成装置工作参数的交互动作,工作参数是基于执行目标工作动作所更新的信息。
在其中一个实施例中,所述气溶胶生成装置包括上盖和主体,所述主体具有一气溶胶生成基质容纳腔,所述上盖具有一防尘盖,当所述防尘盖关闭时完全覆盖所述容纳腔的开口,当所述防尘盖开启时所述容纳腔与外部连通,以使所述气溶胶生成基质从所述开口置入所述容纳腔;所述主体还包括指示灯组件、振动模块、电池和控制电路,所述指示灯组件、所述振动模块和所述电池均与所述控制电路连接;
所述使用操作包括所述防尘盖的开启动作;
所述响应于对所述气溶胶生成装置的使用操作,基于所述气溶胶生成装置执行目标工作动作,包括:
响应于所述防尘盖的开启动作,控制所述气溶胶生成装置进入非休眠工作模式;
所述基于所述气溶胶生成装置执行用于表征所述气溶胶生成装置工作参数的交互动作,包括以下步骤中的至少一种:
基于所述控制电路控制所述指示灯组件工作在第一状态,以提示进入所述非休眠工作模式和/或提示所述电池的剩余电量;
基于所述控制电路控制所述振动模块执行第一振动动作,以提示进入所述非休眠工作模式。
在其中一个实施例中,主体还包括加热元件;加热元件与控制电路连接;使用操作还包括在气溶胶生成装置进入非休眠工作模式下所进行的启动预热操作、气溶胶抽吸动作、抽吸进度查看操作、中断加热操作和气溶胶生成基质拔取操作中的至少一种;
启动预热操作匹配的目标工作动作包括基于控制电路控制加热元件进行预热;
气溶胶抽吸动作匹配的目标工作动作包括基于控制电路控制加热元件加热气溶胶生成基质;
抽吸进度查看操作匹配的目标工作动作包括基于控制电路计算气溶胶生成基质的剩余抽吸进度;
中断加热操作匹配的目标工作动作包括基于控制电路控制加热元件停止加热;
气溶胶生成基质拔取操作匹配的目标工作动作包括基于控制电路控制加热元件停止加热;
基于气溶胶生成装置执行用于表征气溶胶生成装置工作参数的交互动作,包括:
基于控制电路以及指示灯组件和/或振动模块执行用于表征气溶胶生成装置工作参数的至少一种交互动作。
在其中一个实施例中,主体还包括抖动传感器,抖动传感器与控制电路连接,抽吸进度查看操作包括抖动气溶胶生成装置预设次数;
上述方法还包括:
在气溶胶生成装置进入非休眠工作模式下,获取抖动传感器检测的抖动数据,并基于抖动传感器的抖动数据确定是否存在抽吸进度查看操作;
基于控制电路以及指示灯组件和/或振动模块执行用于表征气溶胶生成装置工作参数的至少一种交互动作,包括:
基于计算的剩余抽吸进度,基于控制电路控制振动模块执行与剩余抽吸进度相匹配的振动动作。
在其中一个实施例中,主体还包括与控制电路连接的功能按键;启动预热操作包括按下功能按键第一预设时间后松开;
基于控制电路以及指示灯组件和/或振动模块执行用于表征气溶胶生成装置工作参数的至少一种交互动作,包括:
在控制加热元件预热过程中,基于控制电路控制指示灯组件工作在第二状态,以提示预热进行中;
在控制加热元件停止预热时,控制振动模块执行第二振动动作,以提示预热完成。
在其中一个实施例中,使用操作还包括按下功能按键第二预设时间,第二预设时间小于第一预设时间;
按下功能按键第二预设时间匹配的目标工作动作包括基于控制电路继续监测功能按键被按下的时间;
基于气溶胶生成装置执行用于表征气溶胶生成装置工作参数的交互动作,包括:
在加热元件未加热的情况下,基于控制电路控制振动模块执行第三振动动作,以提示即将触发预热。
在其中一个实施例中,所述气溶胶抽吸动作包括插入气溶胶生成基质;所述气溶胶抽吸动作匹配的目标工作动作包括基于所述控制电路控制所述加热元件加热所述气溶胶生成基质并检测抽吸次数和/或剩余抽吸时间;
所述基于所述控制电路以及所述指示灯组件和/或所述振动模块执行用于表征所述气溶胶生成装置工作参数的至少一种交互动作,还包括以下步骤中的至少一种:
控制所述指示灯组件在抽吸过程中工作在第三状态,以提示气溶胶生成中;
检测抽吸次数达到第一预设次数或剩余抽吸时间达到第三预设时间,则基于所述控制电路控制所述加热元件停止加热;
检测抽吸次数达到第一预设次数或剩余抽吸时间达到第三预设时间,则基于所述控制电路控制所述指示灯组件熄灭;
检测抽吸次数达到第二预设次数或剩余抽吸时间达到第四预设时间,则基于所述控制电路控制所述指示灯组件工作在第四状态和/或控制所述振动模块执行第三振动动作,以提示剩余抽吸进度;所述第二预设次数小于所述第一预设次数,所述第四预设时间小于所述第三预设时间。
在其中一个实施例中,所述基于所述控制电路以及所述指示灯组件和/或所述振动模块执行用于表征所述气溶胶生成装置工作参数的至少一种交互动作,还包括:
若检测到所述加热元件发热异常,则基于所述控制电路控制所述指示灯组件执行第一异常提醒动作。
在其中一个实施例中,主体还包括抖动传感器,抖动传感器与控制电路连接,抽吸进度查看操作包括抖动气溶胶生成装置预设次数;
方法还包括:
加热元件加热气溶胶生成基质的情况下,获取所述抖动传感器检测的抖动数据,并基于抖动传感器的抖动数据确定是否存在抽吸进度查看操作;
基于控制电路以及指示灯组件和/或振动模块执行用于表征气溶胶生成装置工作参数的至少一种交互动作,包括:
基于计算的剩余抽吸进度,基于控制电路控制振动模块执行与剩余抽吸进度相匹配的振动动作。
在其中一个实施例中,主体还包括与控制电路连接的功能按键;中断加热操作包括长按功能按键达到第五预设时间;
基于控制电路以及指示灯组件和/或振动模块执行用于表征气溶胶生成装置工作参数的至少一种交互动作,包括以下步骤中的至少一种:
基于控制电路控制指示灯组件熄灭;
基于控制电路控制振动模块执行第四振动动作。
在其中一个实施例中,上盖和主体可拆卸连接,气溶胶生成基质拔取操作包括将上盖和主体分离;
基于控制电路以及指示灯组件和/或振动模块执行用于表征气溶胶生成装置工作参数的至少一种交互动作,包括:
检测到加热元件停止工作时,控制指示灯组件熄灭。
在其中一个实施例中,使用操作包括防尘盖的关闭动作,防尘盖的关闭动作匹配的目标工作动作包括控制气溶胶生成装置进入休眠工作模式;
基于气溶胶生成装置执行用于表征气溶胶生成装置工作参数的交互动作,包括:
控制指示灯组件熄灭。
在其中一个实施例中,主体还包括充电接口;充电接口分别与控制电路和电池连接,且充电接口用于接外部电源;
使用操作包括将充电接口接入外部电源;
将充电接口接入外部电源匹配的目标工作动作包括基于控制电路控制外部电源向电池充电;
基于气溶胶生成装置执行用于表征气溶胶生成装置工作参数的交互动作,包括:
基于控制电路控制指示灯组件工作在第五状态,以提示电池的剩余电量。
在其中一个实施例中,气溶胶生成装置的主体包括指示灯组件、加热元件和控制电路,指示灯组件和加热元件均与控制电路连接;使用操作还包括在加热元件未加热的情况下进行的续航时间查看操作;续航时间查看操作匹配的目标工作动作为获取剩余电量;
基于气溶胶生成装置执行用于表征气溶胶生成装置工作参数的交互动作,包括以下至少一种:
基于控制电路控制指示灯组件工作在第六状态,以提示所述电池的剩余电量;
若检测到所述剩余电量小于加热一支气溶胶基质所需的最低电量,则基于所述控制电路控制所述指示灯组件执行第二异常提醒动作。
在其中一个实施例中,主体还包括与控制电路连接的功能按键和抖动传感器;
续航时间查看操作包括:
按下功能按键第六预设时间或抖动气溶胶生成装置;
方法还包括:
在所述气溶胶生成装置处于非休眠工作模式下,基于抖动传感器的抖动数据确定是否存在续航时间查看操作。
在其中一个实施例中,所述响应于所述防尘盖的开启动作,控制所述气溶胶生成装置进入非休眠工作模式的步骤之后,还包括:
在预设等待时间内未检测到除所述防尘盖的开启动作之外的其他使用动作,控制所述气溶胶生成装置进入休眠工作模式;或
响应于将所述上盖和所述主体分离,控制所述气溶胶生成装置进入休眠工作模式。
第二方面,本申请实施例还提供了一种气溶胶生成装置的控制装置,该装置包括:
使用操作响应模块,用于响应于对气溶胶生成装置的使用操作,基于气溶胶生成装置执行目标工作动作;目标工作动作与使用操作匹配;
响应执行反馈模块,用于基于气溶胶生成装置执行用于表征气溶胶生成装置工作参数的交互动作,工作参数是基于执行目标工作动作所更新的信息。
第三方面,本申请还提供了一种气溶胶生成装置,包括存储器和处理器,存储器存储有计算机程序,处理器执行计算机程序时实现上述方法的步骤。
在其中一个实施例中,该气溶胶生成装置包括上盖和主体;
所述主体具有一气溶胶生成基质容纳腔,所述上盖具有一防尘盖,当所述防尘盖关闭时完全覆盖所述容纳腔的开口,当所述防尘盖开启时所述容纳腔与外部连通,以使所述气溶胶生成基质从所述开口置入所述容纳腔;
所述主体还包括功能按键、抖动传感器、霍尔传感器、充电接口、电池和控制电路,所述功能按 键、所述抖动传感器、所述霍尔传感器、所述充电接口和所述电池均与所述控制电路连接;
所述防尘盖中设置有与所述霍尔传感器配合的第一磁性件,所述防尘盖开启和所述防尘盖关闭状态下,所述霍尔传感器的输出信号不同;
所述控制电路根据所述霍尔传感器的输出信号检测所述防尘盖的开启动作和所述防尘盖的关闭动作;
所述控制电路包括存储器和处理器,所述存储器存储有计算机程序,所述处理器执行所述计算机程序时实现上述方法的步骤。
在其中一个实施例中,抖动传感器为加速度传感器。
第四方面,还提供了一种计算机可读存储介质,其上存储有计算机程序,计算机程序被处理器执行时实现上述方法的步骤。
本申请的一个或多个实施例的细节在下面的附图和描述中提出。本申请的其它特征、目的和优点将从说明书、附图以及权利要求书变得明显。
附图说明
为了更清楚地说明本申请实施例或传统技术中的技术方案,下面将对实施例或传统技术描述中所需要使用的附图作简单地介绍,显而易见地,下面描述中的附图仅仅是本申请的实施例,对于本领域普通技术人员来讲,在不付出创造性劳动的前提下,还可以根据公开的附图获得其他的附图。
图1a为一视角下气溶胶生成装置的整体结构示意图;
图1b为另一视角下气溶胶生成装置的整体结构示意图;
图1c为一个实施例中气溶胶生成装置的上盖和主体配合使用,且防尘盖开启时的结构示意图;
图1d为一个实施例中气溶胶生成装置的上盖和主体配合使用,且防尘盖关闭时的结构示意图;
图1e为一个实施例中气溶胶生成装置的上盖和主体分离,且防尘盖关闭时的结构示意图;
图1f为一个实施例中气溶胶生成装置的上盖和主体分离,且防尘盖开启时的结构示意图;
图2为一个实施例中气溶胶生成装置的电气结构示意图;
图3为一个实施例中气溶胶生成装置的控制方法的流程示意图;
图4为另一个实施例中气溶胶生成装置的控制方法的流程示意图;
图5为一个实施例中气溶胶生成装置的控制方法的部分流程示意图;
图6为一个实施例中气溶胶生成装置的控制装置的结构框图;
图7为一个实施例中气溶胶生成装置的控制部分内部结构示意图。
具体实施方式
为了便于理解本申请,下面将参照相关附图对本申请进行更全面的描述。附图中给出了本申请的实施例。但是,本申请可以以许多不同的形式来实现,并不限于本文所描述的实施例。相反地,提供这些实施例的目的是使本申请的公开内容更加透彻全面。
除非另有定义,本文所使用的所有的技术和科学术语与属于本申请的技术领域的技术人员通常理解的含义相同。在本申请的说明书中所使用的术语只是为了描述具体的实施例,不是旨在于限制本申请。
可以理解,本申请所使用的术语“第一”、“第二”等可在本文中用于描述各种元件,但这些元件不受这些术语限制。这些术语仅用于将第一个元件与另一个元件区分。
空间关系术语例如“在...下”、“在...下面”、“下面的”、“在...之下”、“在...之上”、“上面的”等,在这里可以用于描述图中所示的一个元件或特征与其它元件或特征的关系。应当明白,除了图中所示的取向以外,空间关系术语还包括使用和操作中的器件的不同取向。例如,如果附图中的器件翻转,描述为“在其它元件下面”或“在其之下”或“在其下”元件或特征将取向为在其它元件或特征“上”。因此,示例性术语“在...下面”和“在...下”可包括上和下两个取向。此外,器件也可以包括另外地取向(譬如,旋转90度或其它取向),并且在此使用的空间描述语相应地被解释。
需要说明的是,当一个元件被认为是“连接”另一个元件时,它可以是直接连接到另一个元件,或者通过居中元件连接另一个元件。此外,以下实施例中的“连接”,如果被连接的对象之间具有电 信号或数据的传递,则应理解为“电连接”、“通信连接”等。
在此使用时,单数形式的“一”、“一个”和“所述/该”也可以包括复数形式,除非上下文清楚指出另外的方式。还应当理解的是,术语“包括/包含”或“具有”等指定所陈述的特征、整体、步骤、操作、组件、部分或它们的组合的存在,但是不排除存在或添加一个或更多个其他特征、整体、步骤、操作、组件、部分或它们的组合的可能性。同时,在本说明书中使用的术语“和/或”包括相关所列项目的任何及所有组合。
由于加热不燃烧器具的体型通常比较小,无法搭载大体积的显示屏以展示器具的工作参数,导致用户使用加热不燃烧器具过程中对于器具的各方面工作参数都难以获悉,无法安排后续使用计划。
针对这一问题,以应用于如图1所示的气溶胶生成装置为例进行说明,本申请提供了一种气溶胶生成装置的控制方法,如图3-5所示,该方法包括:
S20:响应于对气溶胶生成装置的使用操作,基于气溶胶生成装置执行目标工作动作;目标工作动作与使用操作匹配;气溶胶生成装置的使用操作可包括启动预热操作、气溶胶抽吸动作、抽吸进度查看操作、中断加热操作和气溶胶生成基质拔取操作、将充电接口接入外部电源以及续航时间查看操作等。目标工作动作是指用户使用气溶胶生成装置时进行的操作动作所表征的用户对气溶胶生成装置的工作状态控制意图和工作状态查询意图。基于使用操作确定与其匹配的目标工作动作可通过查询预存映射表实现。例如,可先通过气溶胶生成装置上搭载的传感器识别气溶胶生成装置的使用操作,然后查映射表确定与使用操作匹配的目标工作动作。
S40:基于气溶胶生成装置执行用于表征气溶胶生成装置工作参数的交互动作,工作参数是基于执行目标工作动作所更新的信息。通过执行目标工作动作可以获取气溶胶生成装置的工作参数,并基于获取的工作参数,基于交互动作的执行向用户反馈该工作参数,使用户可知晓气溶胶生成装置的工作参数。
本实施例中,通过响应于对气溶胶生成装置的使用操作,确定与该使用操作匹配的目标工作动作,以指示气溶胶生成装置执行该目标工作动作。考虑到用户最关心基于用户使用操作所执行的目标工作动作所产生的结果,所以本申请基于执行该目标工作动作所更新的工作参数,并通过查表等方式确定能够表征更新的工作参数的交互动作,从而通过执行交互动作使用户获悉气溶胶生成装置的工作参数,例如,抽吸剩余进度、续航时间以及是否在加热等。基于此,用户可提前制定气溶胶生成装置的后续使用计划,例如:抽吸剩余进度不足时,准备新的气溶胶基质900以便进行替换,剩余电量不足时进行充电等。
在其中一个实施例中,如图1-2所示,气溶胶生成装置包括上盖100和主体200,主体200具有一气溶胶生成基质容纳腔,上盖100具有一防尘盖120,当防尘盖120关闭时完全覆盖容纳腔的开口,当防尘盖120开启时容纳腔与外部连通,以使气溶胶生成基质从开口置入容纳腔;主体200还包括指示灯组件230、振动模块260、电池270和控制电路290,指示灯组件230、振动模块260和电池270均与控制电路290连接;使用操作包括防尘盖120的开启动作;
本实施例中,步骤S20:响应于对气溶胶生成装置的使用操作,基于气溶胶生成装置执行目标工作动作,包括:
响应于防尘盖120的开启动作,控制气溶胶生成装置进入非休眠工作模式。
通过检测防尘盖120的开启动作,使气溶胶生成装置进入非休眠工作模式,该工作模式下,可唤醒抖动传感器280,获取抖动传感器280检测的抖动数据,允许基于抖动检测的抽吸剩余进度查询和非加热状态下的剩余电量查询。在非休眠工作模式下,允许使用气溶胶生成装置的加热功能。
配合的,步骤S40:基于气溶胶生成装置执行用于表征气溶胶生成装置工作参数的交互动作,如图4所示,包括以下步骤中的至少一种:
S41:基于控制电路控制指示灯组件工作在第一状态,以提示进入非休眠工作模式和/或电池的剩余电量。
指示灯组件230可以具有多个灯具,例如,可包括一个多色LED灯和一个灯条,以展示多个状态来表征气溶胶生成装置的不同工作情况。例如,第一状态可以是白灯启动渐亮1秒,然后快闪烁亮2秒,且控制电路290根据检测的电池电量,控制指示灯组件230中的LED灯发出不同颜色的光,以显示剩余电量。例如,当检测到剩余电量为50%~100%时,基于控制电路290控制LED灯发出白色的光,表征剩余电量充足;当检测到剩余电量为20%~50%时,基于控制电路290控制LED灯发出 黄绿色的光;当检测到剩余电量<20%,基于控制电路290控制LED灯发出橙色的光,以提示电量不足,需要充电。
S42:基于控制电路控制振动模块执行第一振动动作,以提示进入非休眠工作模式。
考虑到气溶胶生成装置通常以手握的方式使用,所以在检测到防尘盖的开启动作时,控制气溶胶生成装置进入非休眠工作模式的同时,可控制振动模块执行第一振动动作,以提示用户气溶胶生成装置已唤醒,可进行气溶胶生成基质加热、抽吸气溶胶等操作。振动模块可以是与控制电路连接的震动马达。第一振动动作可以是轻震0.5s。当然,本申请实施例中所列举的时间,仅为了帮助本领域技术人员了解方案的实现过程,并不对本申请实际保护范围造成限定。
在启动气溶胶生成装置后,用户常用的操作是使用该装置进行的气溶胶基质900加热、抽吸等,所以,在其中一个实施例中,主体200还包括加热元件240;加热元件240(如图1b-1e中以及图2中所示)与控制电路290连接。本实施例中,加热元件240为柱状或片状,用以插入气溶胶基质900内部加热。在其他实施方式中,加热元件240可以为中空圆管状,围绕于气溶胶基质900外部加热。使用操作还包括在气溶胶生成装置进入非休眠工作模式下进行的启动预热操作、气溶胶抽吸动作、抽吸进度查看操作、中断加热操作和气溶胶生成基质拔取操作中的至少一种。各种使用操作对应的目标工作动作见下述实施例中列举。步骤S40基于气溶胶生成装置执行用于表征气溶胶生成装置工作参数的交互动作,如图4所示,包括:
S43:基于控制电路以及指示灯组件和/或振动模块执行用于表征气溶胶生成装置工作参数的至少一种交互动作。可通过控制电路290控制指示灯组件230和振动模块260中的至少一种来执行用于表征气溶胶生成装置工作参数的至少一种交互动作。
在一个实施方式中,启动预热操作匹配的目标工作动作包括基于控制电路290控制加热元件240进行预热。当在非休眠工作模式下检测到启动预热操作,则基于控制电路290控制加热元件240工作一段时间,以进行气溶胶生成基质的预热,以提供更好的抽吸口感。
在其中一个实施例中,如图1a和图2所示,主体200还包括与控制电路290连接的功能按键250;启动预热操作包括按下功能按键250第一预设时间后松开。第一预设时间可以是一个较短的时间,以避免用户等待时间过长,例如,可以为1.5秒。
步骤S43,基于控制电路以及指示灯组件和/或振动模块执行用于表征气溶胶生成装置工作参数的至少一种交互动作,如图5所示,包括:
S431:在控制加热元件预热过程中,基于控制电路控制指示灯组件工作在第二状态,以提示预热进行中。第二状态可以是控制电路控制指示灯组件发出白光并呼吸闪烁。
S432:在控制加热元件停止预热时,控制振动模块执行第二振动动作,以提示预热完成。第二振动动作可以是振动2次,每次振动持续0.6秒。具体的第二振动动作可进行提前配置。
当然,在一个实施方式中,上述容纳腔底部还可设置有与控制电路连接的气溶胶基质插入检测传感器,例如可采用压力传感器。
该方法还包括:
在非休眠工作模式下检测气溶胶基质插入检测传感器的输出信号;
若根据所述气溶胶基质插入检测传感器的输出信号判定存在气溶胶基质插入至该容纳腔,且检测到启动预热操作,则基于控制电路控制加热元件进行预热。
在其中一个实施例中,使用操作还包括按下功能按键第二预设时间,第二预设时间小于第一预设时间。例如第二预设时间可配置为1秒。
按下功能按键第二预设时间匹配的目标工作动作包括基于控制电路继续监测功能按键被按下的时间;
本实施例中,步骤S40,基于气溶胶生成装置执行用于表征气溶胶生成装置工作参数的交互动作,包括:
在加热元件未加热的情况下,基于控制电路控制振动模块执行第三振动动作,以提示即将触发预热。为避免用户误操作导致的加热,可以在即将开启预热功能前进行提示,通过在功能按键被按下第二预设时间时,继续监测功能按键被按下的时间,并控制振动模块执行第三振动动作以提醒用户,继续按下功能按键至第一预设时间时,即将启动预热功能。若用户不需要进行气溶胶基质加热,收到该提醒,可松开功能按键。第三振动动作可以是振动0.5秒以提示用户即将启动预热。通过设置第一预 设时间等于第二预设时间和第三振动动作的持续时间之和,用户可知晓第三振动动作结束时即启动预热成功。
在一个实施方式中,气溶胶抽吸动作匹配的目标工作动作包括基于控制电路控制加热元件加热气溶胶生成基质。气溶胶抽吸动作可以是插入气溶胶生成基质,或者基于插入气溶胶生成基质下的预热完成。具体的,当在非休眠工作模式下检测到预热完成,基于控制电路控制加热元件加热气溶胶生成基质,持续生成气溶胶,供用户抽吸。
在其中一个实施例中,气溶胶抽吸动作包括插入气溶胶生成基质;气溶胶抽吸动作匹配的目标工作动作包括基于控制电路控制加热元件加热气溶胶生成基质并检测抽吸次数和/或剩余抽吸时间;
步骤S43,基于控制电路以及指示灯组件和/或振动模块执行用于表征气溶胶生成装置工作参数的至少一种交互动作,还包括:
控制指示灯组件在抽吸过程中工作在第三状态,以提示气溶胶生成中,用户可进行抽吸。例如,第三状态可以是控制指示灯组件中的白色LED灯发光,且控制指示灯组件中的灯条呼吸闪烁。
检测抽吸次数达到第一预设次数或剩余抽吸时间达到第三预设时间,则说明抽吸结束,为避免加热元件干烧,此时可基于所述控制电路控制所述加热元件停止加热。
本领域技术人员可以理解,抽吸次数在本领域也称为抽吸口数。
同样的,为更好的提醒用户抽吸结束,检测抽吸次数达到第一预设次数或剩余抽吸时间达到第三预设时间时,说明抽吸结束,可基于控制电路控制所述指示灯组件熄灭。
在抽吸过程中,用户对于剩余抽吸进度比较关心,所以,在一个实施例中,交互动作还包括:若检测抽吸次数达到第二预设次数或剩余抽吸时间达到第四预设时间,则基于所述控制电路控制指示灯组件工作在第四状态和/或控制振动模块执行第三振动动作,以提示剩余抽吸进度;第二预设次数小于第一预设次数,第四预设时间小于第三预设时间。第二预设次数可设置为剩余2次,其基于第一预设次数决定,例如,第一预设次数为14次时,第二预设次数可配置为12次。第四预设时间也可基于第三预设时间所确定,例如,第三预设时间配置为5分钟时,第四预设时间可配置为比其小的4分30秒,即在剩余抽吸时间为30秒时触发提醒。
第四状态可以是基于控制电路控制指示灯组件中的白灯闪烁。第三振动动作可以是振动1下以提醒。
加热元件异常是加热过程中需要重点关注的,所以上述交互动作还包括在检测到所述加热元件发热异常时,基于所述控制电路控制所述指示灯组件执行第一异常提醒动作。
第一异常提醒动作可以是控制电路控制指示灯组件的红灯快速闪烁3下。
在一个实施方式中,抽吸进度查看操作匹配的目标工作动作包括基于控制电路计算气溶胶生成基质的剩余抽吸进度。当检测到抽吸进度查看操作,则计算剩余抽吸进度,以便基于计算的结果进行交互动作的执行,提示用户当前的剩余抽吸进度。
具体的,主体还包括抖动传感器,抖动传感器与控制电路连接,抽吸进度查看操作包括抖动气溶胶生成装置预设次数;
上述方法还包括:
在气溶胶生成装置进入非休眠工作模式下,获取抖动传感器检测的抖动数据,并基于抖动传感器的抖动数据确定是否存在抽吸进度查看操作;
基于控制电路以及指示灯组件和/或振动模块执行用于表征气溶胶生成装置工作参数的至少一种交互动作,包括:
基于计算的剩余抽吸进度,基于控制电路控制振动模块执行与剩余抽吸进度相匹配的振动动作。
与剩余抽吸进度相匹配的振动动作可基于下表中剩余抽吸进度与振动动作的映射关系所确定:
档位越小表征剩余抽吸时间越短。
抽吸过程中,用户可能存在中断抽吸的使用需求,所以,在一个实施方式中,中断加热操作匹配的目标工作动作包括基于控制电路控制加热元件停止加热。以此,避免气溶胶基质900的浪费和主体200中电池270能源的浪费。
具体的,主体200还包括与控制电路290连接的功能按键250;中断加热操作包括长按功能按键250达到第五预设时间。第五预设时间可以是区别于其他预设时间的一个时间,例如,可以是2.5秒。
为提示用户已经中断加热,步骤S43,基于控制电路290以及指示灯组件230和/或振动模块260执行用于表征气溶胶生成装置工作参数的至少一种交互动作,包括:
基于控制电路290控制指示灯组件230熄灭,通过控制指示灯组件230全部熄灭来提示用户加热已中断。
基于控制电路290控制振动模块260执行第四振动动作。第四振动动作可以是振动1下。用户结合振动动作的持续时间以及气溶胶生成装置先前所处的工作状态,可准确获知气溶胶生成装置的当前状态。
在一个实施方式中,气溶胶生成基质拔取操作匹配的目标工作动作包括基于控制电路290控制加热元件240停止加热。为避免干烧,当识别到气溶胶生成基质拔取操作时,控制电路290控制加热元件停止加热。气溶胶生成基质拔取操作匹配的目标工作动作包括控制气溶胶生成装置进入休眠模式。在该模式下禁止加热元件240加热,禁止抖动传感器280工作。可通过断开电池270向加热元件240的供电以及向抖动传感器280的供电来实现。
在其中一个实施例中,上盖100和主体200可拆卸连接,拔出气溶胶生成基质,通常需要打开上盖100,将容纳腔中的气溶胶基质拔出或倒出,所以气溶胶生成基质拔取操作包括将上盖100和主体200分离;
基于控制电路290以及指示灯组件230和/或振动模块260执行用于表征气溶胶生成装置工作参数的至少一种交互动作,包括:
检测到加热元件240停止工作时,控制指示灯组件230熄灭。
在其中一个实施例中,使用操作包括防尘盖120的关闭动作,防尘盖120的关闭动作匹配的目标工作动作包括控制气溶胶生成装置进入休眠工作模式。休眠模式下,旨在进行节能,此时用户不需要进行气溶胶抽吸以及抽吸过程中的剩余电量查询和抽吸进度查询,所以,在一个实施例中,该方法还包括:在休眠模式下,基于控制电路290禁止加热元件240工作。
类似的原因,既然休眠模式下用户不需要进行气溶胶抽吸,此时基于抖动传感器280检测的剩余电量查询和抽吸进度查询也显得没有意义,所以,在一个实施例中,该方法还包括:休眠模式下,基于控制电路290禁止抖动传感器280工作。
进入休眠模式后,基于气溶胶生成装置执行用于表征气溶胶生成装置工作参数的交互动作,包括:
控制指示灯组件230熄灭。
在其中一个实施例中,主体200还包括充电接口291;充电接口291分别与控制电路290和电池270连接,且充电接口291用于接外部电源400;充电接口291可选用Type-C协议接口。
使用操作包括将充电接口291接入外部电源400;将充电接口291接入外部电源400可通过将电源适配器连接USB数据线,并将USB数据线插入气溶胶生成装置底部设置的充电接口291。
将充电接口291接入外部电源400匹配的目标工作动作包括基于控制电路290控制外部电源400向电池270充电,检测到有电源接入时,控制电路290控制向电池270充电,可基于预设的电源管理策略执行充电控制动作。
步骤S40,基于气溶胶生成装置执行用于表征气溶胶生成装置工作参数的交互动作,包括:
基于控制电路290控制指示灯组件230工作在第五状态,以提示电池270的剩余电量。
第五状态可以是控制电路290控制指示灯组件230中灯条内的LED灯珠由下至上(上是指容纳腔开口所在侧)逐渐亮起并循环此效果。
第五状态的确定也可以基于下表进行确定:

剩余电量档位越高代表其剩余电量越多。
在其中一个实施例中,气溶胶生成装置的主体200包括指示灯组件230、加热元件240和控制电路290,指示灯组件230和加热元件240均与控制电路290连接;使用操作还包括在加热元件240未加热的情况下进行的续航时间查看操作;续航时间查看操作匹配的目标工作动作为获取剩余电量;
步骤S40,基于气溶胶生成装置执行用于表征气溶胶生成装置工作参数的交互动作,如图4所示,包括以下至少一种:
S44:基于控制电路控制指示灯组件工作在第六状态,以提示所述电池的剩余电量。第六状态可以是指示灯组件中的灯条亮起3秒,以提示剩余电量。
第六状态除了通过灯条亮起3秒提示剩余电量之外,可基于灯条亮起的不同颜色区分剩余电量,第六状态的确定可通过查询下表确定:
S45:若检测到所述剩余电量小于加热一支气溶胶基质所需的最低电量,则基于所述控制电路控制所述指示灯组件执行第二异常提醒动作。非加热状态下,若剩余电量不足以支撑加热一支气溶胶基质,则说明用户使用过程中会存在加热异常中断,此时需要提醒用户提前充电,以方便后续使用。第二异常提醒动作可以是基于控制电路控制指示灯组件长亮,且发出红光。
在其中一个实施例中,主体200还包括与控制电路290连接的功能按键250和抖动传感器280;
续航时间查看操作包括:
按下功能按键250第六预设时间或抖动气溶胶生成装置。第六预设时间可配置为0.5-1秒中的一时间。
方法还包括:
在所述气溶胶生成装置处于非休眠工作模式下,基于抖动传感器280的抖动数据确定是否存在续航时间查看操作。
在非休眠模式下,基于控制电路对加速度传感器等抖动传感器280的抖动数据进行处理,判断是否存在续航时间查看操作,若基于抖动数据判定存在该续航时间查看操作,则获取剩余电量,基于获取的剩余电量,执行相应的交互动作,以提示用户气溶胶生成装置的剩余电量。可参考上述实施例中对于续航时间查看操作下的交互动作确定方案。
在其中一个实施例中,所述响应于所述防尘盖120的开启动作,控制所述气溶胶生成装置进入非休眠工作模式的步骤之后,还包括:
在预设等待时间内未检测到除所述防尘盖120的开启动作之外的其他使用动作,控制所述气溶胶生成装置进入休眠工作模式;或
响应于将所述上盖100和所述主体200分离,控制所述气溶胶生成装置进入休眠工作模式。
出于节能及安全考虑,防尘盖120在打开状态下,如果预设等待时间内(如3分钟内)无任何设备操作,也将控制气溶胶生成装置进入休眠工作模式,此时,需要关闭防尘盖120后再次打开以触发气溶胶生成装置进入非休眠工作模式。
防尘盖120开启的状态下,若检测到上盖100和主体200分离,说明此时用户有拔出气溶胶基质的意图,则控制气溶胶生成装置进入休眠工作模式,禁止加热元件240继续加热,也禁止抖动传感器280工作。
休眠模式下,基于控制电路禁止加热元件240加热,禁止抖动传感器280工作,以节能。休眠模式下可仅响应基于功能按键250被按下第六预设时间的操作,执行的目标工作动作和交互动作。
控制电路等电芯温度过高,会严重影响装置的使用寿命,所以,在其中一个实施例中,主体200还包括温度传感器292,该方法还包括:
若根据所述温度传感器292检测的温度数据判定主体200温度高于预设温度,则基于控制电路290控制指示灯组件230执行第三异常提醒动作。第三异常提醒动作可以是基于控制电路290控制指 示灯组件230发出红光,且间隔快速闪烁2下。区别于加热元件240异常时的提醒。
在其中一个实施例中,使用操作还包括强制休眠操作或强制唤醒操作;
强制休眠操作对应的目标工作动作包括控制所述气溶胶生成装置进入休眠工作模式。强制休眠操作可以是在气溶胶生成装置处于非休眠工作模式下,连续按下功能按键4次。
强制唤醒操作对应的目标工作动作包括控制所述气溶胶生成装置退出休眠工作模式进入非休眠工作模式,并基于控制电路检测抖动传感器280检测的抖动数据。强制唤醒操作可以是在气溶胶生成装置处于休眠工作模式下,连续按下功能按键250达4次。
当响应于使用功能操作所确定的目标工作动作存在逻辑冲突时,其执行的优先级排序为:
强制休眠操作和强制唤醒操作>防尘盖开启状态下,将上盖和主体分离>防尘盖关闭>防尘盖开启状态下,在预设等待时间内未检测到除防尘盖的开启动作之外的其他使用动作。
应该理解的是,虽然图中的流程图中的各个步骤按照箭头的指示依次显示,但是这些步骤并不是必然按照箭头指示的顺序依次执行。除非本文中有明确的说明,这些步骤的执行并没有严格的顺序限制,这些步骤可以以其它的顺序执行。而且,图中的至少一部分步骤可以包括多个步骤或者多个阶段,这些步骤或者阶段并不必然是在同一时刻执行完成,而是可以在不同的时刻执行,这些步骤或者阶段的执行顺序也不必然是依次进行,而是可以与其它步骤或者其它步骤中的步骤或者阶段的至少一部分轮流或者交替地执行。
基于与方法实施例相同的构思,本申请实施例还提供了一种气溶胶生成装置的控制装置,如图6所示,该装置包括:
使用操作响应模块20,用于响应于对气溶胶生成装置的使用操作,基于气溶胶生成装置执行目标工作动作;目标工作动作与使用操作匹配;
响应执行反馈模块40,用于基于气溶胶生成装置执行用于表征气溶胶生成装置工作参数的交互动作,工作参数是基于执行目标工作动作所更新的信息。
关于气溶胶生成装置的控制装置的具体限定可以参见上文中对于气溶胶生成装置的控制方法的限定,在此不再赘述。上述气溶胶生成装置的控制装置中的各个模块可全部或部分通过软件、硬件及其组合来实现。上述各模块可以硬件形式内嵌于或独立于气溶胶生成装置中的处理器中,也可以以软件形式存储于气溶胶生成装置中的存储器中,以便于处理器调用执行以上各个模块对应的操作。需要说明的是,本申请实施例中对模块的划分是示意性的,仅仅为一种逻辑功能划分,实际实现时可以有另外的划分方式。
在一个实施例中,提供了一种气溶胶生成装置,其内部结构图可以如图7所示。该气溶胶生成装置包括通过系统总线连接的处理器和存储器。其中,该气溶胶生成装置的处理器用于提供计算和控制能力。该气溶胶生成装置的存储器包括非易失性存储介质、内存储器。该非易失性存储介质存储有操作系统、计算机程序和数据库。该内存储器为非易失性存储介质中的操作系统和计算机程序的运行提供环境。该气溶胶生成装置的数据库用于存储预定义的目标工作动作和交互动作等数据。该计算机程序被处理器执行时以实现一种气溶胶生成装置的控制方法。
本领域技术人员可以理解,图7中示出的结构,仅仅是与本申请方案相关的部分结构的框图,并不构成对本申请方案所应用于其上的气溶胶生成装置的限定,具体的气溶胶生成装置可以包括比图中所示更多或更少的部件,或者组合某些部件,或者具有不同的部件布置。
本申请提供的一种气溶胶生成装置,包括存储器和处理器,存储器存储有计算机程序,处理器执行计算机程序时实现上述任意一个实施例中的气溶胶生成装置的控制方法的步骤。
在其中一个实施例中,如图1-2所示,该气溶胶生成装置包括上盖100和主体200;
所述主体200具有一气溶胶生成基质容纳腔,所述上盖100具有一防尘盖120,当所述防尘盖120关闭时完全覆盖所述容纳腔的开口,当所述防尘盖120开启时所述容纳腔与外部连通,以使所述气溶胶生成基质从所述开口置入所述容纳腔;
所述主体200还包括功能按键250、抖动传感器280、霍尔传感器210、充电接口291、电池270和控制电路290,所述功能按键250、所述抖动传感器280、所述霍尔传感器210、所述充电接口291和所述电池270均与所述控制电路290连接;
所述防尘盖120中设置有与所述霍尔传感器210配合的第一磁性件110,所述防尘盖120开启和所述防尘盖120关闭状态下,所述霍尔传感器210的输出信号不同;
所述控制电路根据所述霍尔传感器210的输出信号检测所述防尘盖120的开启动作和所述防尘盖120的关闭动作;
所述控制电路包括存储器和处理器,所述存储器存储有计算机程序,所述处理器执行所述计算机程序时实现上述方法的步骤。
在其中一个实施例中,抖动传感器为加速度传感器。加速度传感器可容置在主体200中。可通过霍尔传感器210的检测进行加速度传感器的激活和禁用控制。
在其中一个实施例中,气溶胶生成装置还包括设置在上盖100中的第二磁性件130和设置在主体200中的第三磁性件220,当上盖100与主体200配合使用时,第二磁性件130和第三磁性件220吸合,提高稳固性。
在其中一个实施例中,防尘盖120与上盖100的本体可滑动连接。防尘盖120可沿上盖100端面的长度方向滑动。
在其中一个实施例中,上盖100与主体200可滑动连接,通过沿气溶胶基质插入方向相反的方向提起上盖100,使得上盖100和主体200分离。
需要理解的是,上述控制电路290可基于霍尔传感器210的输出信号,识别出如图1c-1f中所示的四种状态:
上盖100和主体200配合使用,且防尘盖120开启;
上盖100和主体200配合使用,且防尘盖120关闭;
上盖100与主体200分离,且防尘盖120开启;
上盖100与主体200分离,且防尘盖120关闭。
基于状态识别抖动传感器280等其他传感器的检测,可执行上述方法实施例中相应的方法步骤,以实现相应的有益效果。
需要说明的是,上述气溶胶生成装置在执行上述方法步骤时,具有上述方法实施例中所记载的结构特征,以能够执行上述方法步骤,在此不做赘述。
在一个实施例中,提供了一种计算机可读存储介质,其上存储有计算机程序,计算机程序被处理器执行时实现上述全部关于气溶胶生成基质的控制方法的步骤,并实现对应的有益效果。
本领域普通技术人员可以理解实现上述实施例方法中的全部或部分流程,是可以通过计算机程序来指令相关的硬件来完成,所述的计算机程序可存储于一非易失性计算机可读取存储介质中,该计算机程序在执行时,可包括如上述各方法的实施例的流程。其中,本申请所提供的各实施例中所使用的对存储器、存储、数据库或其它介质的任何引用,均可包括非易失性和易失性存储器中的至少一种。非易失性存储器可包括只读存储器(Read-Only Memory,ROM)、磁带、软盘、闪存或光存储器等。易失性存储器可包括随机存取存储器(Random Access Memory,RAM)或外部高速缓冲存储器。作为说明而非局限,RAM可以是多种形式,比如静态随机存取存储器(Static Random Access Memory,SRAM)或动态随机存取存储器(Dynamic Random Access Memory,DRAM)等。
在本说明书的描述中,参考术语“有些实施例”、“其他实施例”、“理想实施例”等的描述意指结合该实施例或示例描述的具体特征、结构、材料或者特征包含于本申请的至少一个实施例或示例中。在本说明书中,对上述术语的示意性描述不一定指的是相同的实施例或示例。
以上实施例的各技术特征可以进行任意的组合,为使描述简洁,未对上述实施例中的各个技术特征所有可能的组合都进行描述,然而,只要这些技术特征的组合不存在矛盾,都应当认为是本说明书记载的范围。
以上所述实施例仅表达了本申请的几种实施方式,其描述较为具体和详细,但并不能因此而理解为对申请专利范围的限制。应当指出的是,对于本领域的普通技术人员来说,在不脱离本申请构思的前提下,还可以做出若干变形和改进,这些都属于本申请的保护范围。因此,本申请专利的保护范围应以所附权利要求为准。

Claims (20)

  1. 一种气溶胶生成装置的控制方法,所述方法包括:
    响应于对所述气溶胶生成装置的使用操作,基于所述气溶胶生成装置执行目标工作动作;所述目标工作动作与所述使用操作匹配;
    基于所述气溶胶生成装置执行用于表征所述气溶胶生成装置工作参数的交互动作,所述工作参数是基于执行所述目标工作动作所更新的信息。
  2. 根据权利要求1所述的方法,其中,所述气溶胶生成装置包括上盖和主体,所述主体具有一气溶胶生成基质容纳腔,所述上盖具有一防尘盖,当所述防尘盖关闭时完全覆盖所述容纳腔的开口,当所述防尘盖开启时所述容纳腔与外部连通,以使所述气溶胶生成基质从所述开口置入所述容纳腔;所述主体还包括指示灯组件、振动模块、电池和控制电路,所述指示灯组件、所述振动模块和所述电池均与所述控制电路连接;
    所述使用操作包括所述防尘盖的开启动作;
    所述响应于对所述气溶胶生成装置的使用操作,基于所述气溶胶生成装置执行目标工作动作,包括:
    响应于所述防尘盖的开启动作,控制所述气溶胶生成装置进入非休眠工作模式;
    所述基于所述气溶胶生成装置执行用于表征所述气溶胶生成装置工作参数的交互动作,包括以下步骤中的至少一种:
    基于所述控制电路控制所述指示灯组件工作在第一状态,以提示进入所述非休眠工作模式和/或提示所述电池的剩余电量;
    基于所述控制电路控制所述振动模块执行第一振动动作,以提示进入所述非休眠工作模式。
  3. 根据权利要求2所述的方法,其中,所述主体还包括加热元件;所述加热元件与所述控制电路连接;所述使用操作还包括在所述气溶胶生成装置进入非休眠工作模式下所进行的启动预热操作、气溶胶抽吸动作、抽吸进度查看操作、中断加热操作和气溶胶生成基质拔取操作中的至少一种;
    所述启动预热操作匹配的目标工作动作包括基于所述控制电路控制所述加热元件进行预热;
    所述气溶胶抽吸动作匹配的目标工作动作包括基于所述控制电路控制所述加热元件加热气溶胶生成基质;
    所述抽吸进度查看操作匹配的目标工作动作包括基于所述控制电路计算所述气溶胶生成基质的剩余抽吸进度;
    所述中断加热操作匹配的目标工作动作包括基于所述控制电路控制所述加热元件停止加热;
    所述气溶胶生成基质拔取操作匹配的目标工作动作包括基于所述控制电路控制所述加热元件停止加热;
    所述基于所述气溶胶生成装置执行用于表征所述气溶胶生成装置工作参数的交互动作,包括:
    基于所述控制电路以及所述指示灯组件和/或所述振动模块执行用于表征所述气溶胶生成装置工作参数的至少一种交互动作。
  4. 根据权利要求3所述的方法,其中,所述主体还包括抖动传感器,所述抖动传感器与所述控制电路连接,所述抽吸进度查看操作包括抖动所述气溶胶生成装置预设次数;
    所述方法还包括:
    在所述气溶胶生成装置进入非休眠工作模式下,获取所述抖动传感器检测的抖动数据,并基于所述抖动传感器的抖动数据确定是否存在抽吸进度查看操作;
    所述基于所述控制电路以及所述指示灯组件和/或所述振动模块执行用于表征所述气溶胶生成装置工作参数的至少一种交互动作,包括:
    基于计算的所述剩余抽吸进度,基于所述控制电路控制所述振动模块执行与剩余抽吸进度相匹配的振动动作。
  5. 根据权利要求3所述的方法,其中,所述主体还包括与所述控制电路连接的功能按键;所述启动预热操作包括按下所述功能按键第一预设时间后松开;
    所述基于所述控制电路以及所述指示灯组件和/或所述振动模块执行用于表征所述气溶胶生成装 置工作参数的至少一种交互动作,包括:
    在控制所述加热元件预热过程中,基于所述控制电路控制所述指示灯组件工作在第二状态,以提示预热进行中;
    在控制所述加热元件停止预热时,控制所述振动模块执行第二振动动作,以提示预热完成。
  6. 根据权利要求5所述的方法,其中,所述使用操作还包括按下所述功能按键第二预设时间,所述第二预设时间小于所述第一预设时间;
    所述按下所述功能按键第二预设时间匹配的目标工作动作包括基于所述控制电路继续监测所述功能按键被按下的时间;
    所述基于所述气溶胶生成装置执行用于表征所述气溶胶生成装置工作参数的交互动作,包括:
    在所述加热元件未加热的情况下,基于所述控制电路控制所述振动模块执行第三振动动作,以提示即将触发预热。
  7. 根据权利要求3所述的方法,其中,所述气溶胶抽吸动作包括插入气溶胶生成基质;所述气溶胶抽吸动作匹配的目标工作动作包括基于所述控制电路控制所述加热元件加热所述气溶胶生成基质并检测抽吸次数和/或剩余抽吸时间;
    所述基于所述控制电路以及所述指示灯组件和/或所述振动模块执行用于表征所述气溶胶生成装置工作参数的至少一种交互动作,还包括以下步骤中的至少一种:
    控制所述指示灯组件在抽吸过程中工作在第三状态,以提示气溶胶生成中;
    检测抽吸次数达到第一预设次数或剩余抽吸时间达到第三预设时间,则基于所述控制电路控制所述加热元件停止加热;
    检测抽吸次数达到第一预设次数或剩余抽吸时间达到第三预设时间,则基于所述控制电路控制所述指示灯组件熄灭;
    检测抽吸次数达到第二预设次数或剩余抽吸时间达到第四预设时间,则基于所述控制电路控制所述指示灯组件工作在第四状态和/或控制所述振动模块执行第三振动动作,以提示剩余抽吸进度;所述第二预设次数小于所述第一预设次数,所述第四预设时间小于所述第三预设时间。
  8. 根据权利要求7所述的方法,其中,所述基于所述控制电路以及所述指示灯组件和/或所述振动模块执行用于表征所述气溶胶生成装置工作参数的至少一种交互动作,还包括:
    若检测到所述加热元件发热异常,则基于所述控制电路控制所述指示灯组件执行第一异常提醒动作。
  9. 根据权利要求3所述的方法,其中,所述主体还包括与所述控制电路连接的功能按键;所述中断加热操作包括长按所述功能按键达到第五预设时间;
    所述基于所述控制电路以及所述指示灯组件和/或所述振动模块执行用于表征所述气溶胶生成装置工作参数的至少一种交互动作,包括以下步骤中的至少一种:
    基于所述控制电路控制所述指示灯组件熄灭;
    基于所述控制电路控制所述振动模块执行第四振动动作。
  10. 根据权利要求3所述的方法,其中,所述上盖和所述主体可拆卸连接,所述气溶胶生成基质拔取操作包括将所述上盖和所述主体分离;
    基于所述控制电路以及所述指示灯组件和/或所述振动模块执行用于表征所述气溶胶生成装置工作参数的至少一种交互动作,包括:
    检测到所述加热元件停止工作时,控制所述指示灯组件熄灭。
  11. 根据权利要求2所述的方法,其中,所述使用操作包括所述防尘盖的关闭动作,所述防尘盖的关闭动作匹配的目标工作动作包括控制所述气溶胶生成装置进入休眠工作模式;
    所述基于所述气溶胶生成装置执行用于表征所述气溶胶生成装置工作参数的交互动作,包括:
    控制所述指示灯组件熄灭。
  12. 根据权利要求2所述的方法,其中,所述主体还包括充电接口;所述充电接口分别与所述控制电路和所述电池连接,且所述充电接口用于接外部电源;
    所述使用操作包括将所述充电接口接入所述外部电源;
    所述将所述充电接口接入所述外部电源匹配的目标工作动作包括基于所述控制电路控制所述外部电源向所述电池充电;
    所述基于所述气溶胶生成装置执行用于表征所述气溶胶生成装置工作参数的交互动作,包括:
    基于所述控制电路控制所述指示灯组件工作在第五状态,以提示所述电池的剩余电量。
  13. 根据权利要求1-12任一项所述的方法,其中,所述气溶胶生成装置的主体包括指示灯组件、加热元件和控制电路,所述指示灯组件和所述加热元件均与所述控制电路连接;所述使用操作还包括在所述加热元件未加热的情况下进行的续航时间查看操作;所述续航时间查看操作匹配的目标工作动作为获取剩余电量;
    所述基于所述气溶胶生成装置执行用于表征所述气溶胶生成装置工作参数的交互动作,包括以下至少一种:
    基于所述控制电路控制所述指示灯组件工作在第六状态,以提示所述电池的剩余电量;
    若检测到所述剩余电量小于加热一支气溶胶基质所需的最低电量,则基于所述控制电路控制所述指示灯组件执行第二异常提醒动作。
  14. 根据权利要求13所述的方法,其中,所述主体还包括与所述控制电路连接的功能按键和抖动传感器;
    所述续航时间查看操作包括:
    按下所述功能按键第六预设时间或抖动所述气溶胶生成装置;
    所述方法还包括:
    在所述气溶胶生成装置处于非休眠工作模式下,基于所述抖动传感器的抖动数据确定是否存在续航时间查看操作。
  15. 根据权利要求2所述的方法,其中,所述响应于所述防尘盖的开启动作,控制所述气溶胶生成装置进入非休眠工作模式的步骤之后,还包括:
    在预设等待时间内未检测到除所述防尘盖的开启动作之外的其他使用动作,则控制所述气溶胶生成装置进入休眠工作模式;或
    响应于将所述上盖和所述主体分离,控制所述气溶胶生成装置进入休眠工作模式。
  16. 一种气溶胶生成装置的控制装置,所述装置包括:
    使用操作响应模块,用于响应于对所述气溶胶生成装置的使用操作,基于所述气溶胶生成装置执行目标工作动作;所述目标工作动作与所述使用操作匹配;
    响应执行反馈模块,用于基于所述气溶胶生成装置执行用于表征所述气溶胶生成装置工作参数的交互动作,所述工作参数是基于执行所述目标工作动作所更新的信息。
  17. 一种气溶胶生成装置,包括存储器和处理器,所述存储器存储有计算机程序,所述处理器执行所述计算机程序时实现权利要求1至14中任一项所述的方法的步骤。
  18. 根据权利要求17所述的装置,其中,所述装置包括上盖和主体;
    所述主体具有一气溶胶生成基质容纳腔,所述上盖具有一防尘盖,当所述防尘盖关闭时完全覆盖所述容纳腔的开口,当所述防尘盖开启时所述容纳腔与外部连通,以使所述气溶胶生成基质从所述开口置入所述容纳腔;
    所述主体还包括功能按键、抖动传感器、霍尔传感器、充电接口、电池和控制电路,所述功能按键、所述抖动传感器、所述霍尔传感器、所述充电接口和所述电池均与所述控制电路连接;
    所述防尘盖中设置有与所述霍尔传感器配合的第一磁性件,所述防尘盖开启和所述防尘盖关闭状态下,所述霍尔传感器的输出信号不同;
    所述控制电路根据所述霍尔传感器的输出信号检测所述防尘盖的开启动作和所述防尘盖的关闭动作;
    所述控制电路包括存储器和处理器,所述存储器存储有计算机程序,所述处理器执行所述计算机程序时实现权利要求1至15中任一项所述的方法的步骤。
  19. 根据权利要求18所述的装置,其中,所述抖动传感器为加速度传感器。
  20. 一种计算机可读存储介质,其上存储有计算机程序,所述计算机程序被处理器执行时实现权利要求1至15中任一项所述的方法的步骤。
PCT/CN2023/076091 2022-04-12 2023-02-15 气溶胶生成装置及其控制方法和装置、计算机存储介质 WO2023197741A1 (zh)

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