RELATED APPLICATION
TECHNICAL FIELD
[0002] The present application relates to the technical field of control for a heating device,
and in particular to an aerosol generating device, a control method for an aerosol
generating device, a control device for an aerosol generating device, and a computer
storage medium.
BACKGROUND
[0003] A heating-not-burning device heats solid aerosol-forming substrate by using a heating
element to form aerosol. The aerosol-forming substrate is disposable, and needs to
be removed from the device and replaced after heating is completed.
SUMMARY
[0004] In a first aspect, an embodiment of the present invention provides a control method
for an aerosol generating device, the method comprising:
in response to a usage operation for the aerosol generating device, performing a target
working action based on the aerosol generating device, the target working action matching
with the usage operation; and
executing an interactive action for characterizing an operation parameter of the aerosol
generating device based on the aerosol generating device, where the operation parameter
is information updated based on performing the target working action.
[0005] In one of the embodiments, the aerosol generating device comprises an upper cover
and a main body; the main body has an accommodating cavity for aerosol-forming substrate;
the upper cover has an anti-dust cover; the anti-dust cover, when being closed, covers
an opening of the accommodating cavity completely; when the anti-dust cover is opened,
the accommodating cavity is communicated with outside, so that the aerosol-forming
substrate is placed into the accommodating cavity through the opening; the main body
further comprises an indicator light assembly, a vibration module, a battery and a
control circuit; and the indicator light assembly, the vibration module and the battery
are all connected to the control circuit.
[0006] The usage operation comprises an operation of opening the anti-dust cover.
[0007] Performing the target working action based on the aerosol generating device in response
to the usage operation for the aerosol generating device, comprises:
in response to the operation of opening the anti-dust cover, controlling the aerosol
generating device to enter a non-sleep working mode.
[0008] Executing the interactive action for characterizing the operation parameter of the
aerosol generating device based on the aerosol generating device, comprises at least
one of following steps of:
based on the control circuit, controlling the indicator light assembly to work in
a first state to indicate that a non-sleep working mode has been entered and/or to
indicate a remaining power of the battery; and
based on the control circuit, controlling the vibration module to execute a first
vibration action to indicate that the non-sleep working mode has been entered.
[0009] In one of the embodiments, the main body further comprises a heating element; the
heating element is connected to the control circuit; the usage operation further comprises
at least one of: an operation of starting preheating, an action of inhaling aerosol,
an operation of viewing inhalation progress, an operation of interrupting heating,
and an operation of pulling out the aerosol-forming substrate, each of which is performed
after the aerosol generating device enters the non-sleep working mode.
[0010] A target working action, which matches with the operation of starting preheating,
comprises controlling the heating element to perform preheating based on the control
circuit.
[0011] A target working action, which matches with the action of inhaling aerosol, comprises
controlling the heating element to heat the aerosol-forming substrate based on the
control circuit.
[0012] A target working action, which matches with the operation of viewing inhalation progress,
comprises calculating a remaining inhalation progress of the aerosol-forming substrate
based on the control circuit.
[0013] A target working action, which matches with the operation of interrupting heating,
comprises controlling the heating element to stop heating based on the control circuit.
[0014] A target working action, which matches with the operation of pulling out the aerosol-forming
substrate, comprises controlling the heating element to stop heating based on the
control circuit.
[0015] Executing the interactive action for characterizing the operation parameter of the
aerosol generating device based on the aerosol generating device comprises:
performing at least one interactive action for characterizing the operation parameter
of the aerosol generating device based on the control circuit, and the indicator light
assembly and/or the vibration module.
[0016] In one of the embodiments, the main body further comprises a vibration sensor; the
vibration sensor is connected to the control circuit; and the operation of viewing
inhalation progress comprises vibrating the aerosol generating device for a preset
number of times.
[0017] The method further comprises:
when the aerosol generating device enters the non-sleep working mode, obtaining vibration
data detected by the vibration sensor, and determining whether there is the operation
of viewing inhalation progress based on the vibration data of the vibration sensor.
[0018] Performing the at least one interactive action for characterizing the operation parameter
of the aerosol generating device based on the control circuit and the indicator light
assembly and/or the vibration module, comprises:
based on the calculated remaining inhalation progress, and based on the control circuit,
controlling the vibration module to perform a vibration action that matches with the
remaining inhalation progress.
[0019] In one of the embodiments, the main body further comprises a function button connected
to the control circuit; the operation of starting preheating comprises pressing the
function button for a first preset time period, and then releasing it.
[0020] Performing the at least one interactive action for characterizing the operation parameter
of the aerosol generating device based on the control circuit and the indicator light
assembly and/or the vibration module, comprises:
when the heating element is controlled to be in a preheating process, based on the
control circuit, controlling the indicator light assembly to work in a second state
to indicate that the preheating is in progress; and
when the heating element is controlled to stop preheating, controlling the vibration
module to perform a second vibration action to indicate that the preheating is completed.
[0021] In one of the embodiments, the usage operation further comprises pressing the function
button for a second preset time period, and the second preset time period is less
than the first preset time period.
[0022] A target working action, which matches with pressing the function button for the
second preset time period, comprises based on the control circuit, continuing to monitor
a time period for which the function button is pressed.
[0023] Executing the interactive action for characterizing the operation parameter of the
aerosol generating device based on the aerosol generating device comprises:
when the heating element is not heating, based on the control circuit, controlling
the vibration module to perform a third vibration action to indicate that the preheating
is about to be triggered.
[0024] In one of the embodiments, the action of inhaling aerosol comprises inserting the
aerosol-forming substrate; and a target working action, which matches with the action
of inhaling aerosol comprises: based on the control circuit, controlling the heating
element to heat the aerosol-forming substrate, and detecting the number of times of
inhalation and/or a remaining inhaling time.
[0025] Performing the at least one interactive action for characterizing the operation parameter
of the aerosol generating device based on the control circuit and the indicator light
assembly and/or the vibration module, further comprises at least one of following
steps of:
controlling the indicator light assembly to operate in a third state during an inhalation
process, to indicate that aerosol is being generated;
when it is detected that the number of times of inhalation reaches a first preset
number of times or that the remaining inhaling time reaches a third preset time period,
based on the control circuit, controlling the heating element to stop heating;
when it is detected that the number of times of inhalation reaches the first preset
number of times or that the remaining inhaling time reaches the third preset time
period, based on the control circuit, controlling the indicator light assembly to
be turned off; and
when it is detected that the number of times of inhalation reaches a second preset
number of times or that the remaining inhaling time reaches a fourth preset time period,
based on the control circuit, controlling the indicator light assembly to work in
a fourth state, and/or controlling the vibration module to perform a third vibration
action to indicate the remaining inhalation progress; wherein the second preset number
of times is less than the first preset number of times, and the fourth preset time
period is less than the third preset time period.
[0026] In one of the embodiments, performing the at least one interactive action for characterizing
the operation parameter of the aerosol generating device based on the control circuit
and the indicator light assembly and/or the vibration module, further comprises:
controlling the indicator light assembly to execute a first abnormality-reminding
action based on the control circuit when an abnormal heating of the heating element
is detected.
[0027] In one of the embodiments, the main body further comprises a vibration sensor; the
vibration sensor is connected to the control circuit; and the operation of viewing
inhalation progress comprises vibrating the aerosol generating device for a preset
number of times.
[0028] The method further comprises:
when the heating member is heating the aerosol-forming substrate, obtaining vibration
data detected by the vibration sensor, and determining whether there is the operation
of viewing inhalation progress based on the vibration data of the vibration sensor.
[0029] Performing the at least one interactive action for characterizing the operation parameter
of the aerosol generating device based on the control circuit and the indicator light
assembly and/or the vibration module, comprises:
based on the calculated remaining inhalation progress, and based on the control circuit,
controlling the vibration module to perform a vibration action that matches with the
remaining inhalation progress.
[0030] In one of the embodiments, the main body further comprises a function button connected
to the control circuit; and the operation of interrupting heating comprises pressing
the function button for a fifth preset time period.
[0031] Performing the at least one interactive action for characterizing the operation parameter
of the aerosol generating device based on the control circuit and the indicator light
assembly and/or the vibration module, comprises at least one of following steps of:
controlling the indicator light assembly to be turned off based on the control circuit;
and
controlling the vibration module to perform a fourth vibration action based on the
control circuit.
[0032] In one of the embodiments, the upper cover is detachably connected to the main body;
and the operation of pulling out aerosol-forming substrate comprises detaching the
upper cover from the main body.
[0033] Performing the at least one interactive action for characterizing the operation parameter
of the aerosol generating device based on the control circuit and the indicator light
assembly and/or the vibration module, comprises:
when it is detected that the heating element stops working, controlling the indicator
light assembly to be turned off.
[0034] In one of the embodiments, the usage operation comprises an operation of closing
the anti-dust cover, and a target working action, which matches with the operation
of closing the anti-dust cover, comprises controlling the aerosol generating device
to enter a sleep working mode.
[0035] Executing the interactive action for characterizing the operation parameter of the
aerosol generating device based on the aerosol generating device, comprises:
controlling the indicator light assembly to be turned off.
[0036] In one of the embodiments, the main body further comprises a charging interface;
and the charging interface is connected to both the control circuit and the battery,
and the charging interface is configured to be connected to an external power source.
[0037] The usage operation comprises connecting the charging interface to the external power
source.
[0038] A target working action, which matches with connecting the charging interface to
the external power source, comprises based on the control circuit, controlling the
external power source to charge the battery.
[0039] Executing the interactive action for characterizing the operation parameter of the
aerosol generating device based on the aerosol generating device, comprises:
based on the control circuit, controlling the indicator light assembly to operate
in a fifth state to indicate the remaining power of the battery.
[0040] In one of the embodiments, the main body of the aerosol generating device comprises
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;
and the usage operation further comprises an operation of viewing battery life performed
when the heating element is not heating, and a target working action matching with
the operation of viewing battery life is obtaining a remaining power.
[0041] Executing the interactive action for characterizing the operation parameter of the
aerosol generating device based on the aerosol generating device, comprises at least
one of:
based on the control circuit, controlling the indicator light assembly to work in
a sixth state to indicate the remaining power of the battery; and
if it is detected that the remaining power is less than a minimum power required for
heating a piece of aerosol-forming substrate, based on the control circuit, controlling
the indicator light assembly to execute a second abnormality-reminding action.
[0042] In one of the embodiments, the main body further comprises a function button and
a vibration sensor which are connected to the control circuit.
[0043] The operation of viewing battery life comprises:
pressing the function button for a sixth preset time period or vibrating the aerosol
generating device.
[0044] The method further comprises:
when the aerosol generating device is in a non-sleep working mode, determining whether
there is the operation of viewing battery life, based on vibration data of the vibration
sensor.
[0045] In one of the embodiments, after controlling the aerosol generating device to enter
the non-sleep working mode in response to the operation of opening the anti-dust cover,
the method further comprises:
if no operation other than the operation of opening the anti-dust cover is detected
within a preset waiting time, the aerosol generating device is controlled to enter
a sleep working mode; or
in response to detaching the upper cover from the main body, controlling the aerosol
generating device to enter the sleep working mode.
[0046] In a second aspect, the present application provides a control device for an aerosol
generating device, including:
a usage operation responding module, configured to perform a target working action
based on the aerosol generating device in response to a usage operation for the aerosol
generating device, wherein the target working action matches with the usage operation;
and
a response-execution feedback module, configured to execute an interactive action
for characterizing an operation parameter of the aerosol generating device based on
the aerosol generating device, wherein the operation parameter is information updated
based on performing the target working action.
[0047] In a third aspect, the present application provides an aerosol generating device
including a memory and a processor. The memory stores a computer program, and the
processor, when executing the computer program, performs steps of the method above.
[0048] In one of the embodiments, the aerosol generating device comprises an upper cover
and a main body.
[0049] The main body has an accommodating cavity for aerosol-forming substrate; the upper
cover has an anti-dust cover; the anti-dust cover, when being closed, covers an opening
of the accommodating cavity completely; and when the anti-dust cover is opened, the
accommodating cavity is communicated with outside, so that the aerosol-forming substrate
is placed into the accommodating cavity through the opening.
[0050] The main body further comprises a function button, a vibration sensor, a Hall sensor,
a charging interface, a battery and a control circuit, wherein the function button,
the vibration sensor, the Hall sensor, the charging interface and the battery are
all connected to the control circuit.
[0051] The anti-dust cover is provided with a first magnetic member that matches with the
Hall sensor, and output signals of the Hall sensor are different when the anti-dust
cover is opened and when the anti-dust cover is closed.
[0052] The control circuit detects an operation of opening the anti-dust cover and an operation
of closing the anti-dust cover according to the output signals of the Hall sensor.
[0053] The control circuit comprises a memory and a processor; the memory stores a computer
program; the processor, when executing the computer program, performs steps of the
method above.
[0054] In one of the embodiments, the vibration sensor is an acceleration sensor.
[0055] In a fourth aspect, a computer-readable storage medium is provided and has a computer
program stored thereon. The computer program, when executed by the computer processor,
performs steps of the method above.
[0056] The details of one or more embodiments of the present application are set forth in
the following drawings and description. Other features, objectives, and advantages
of the present application will become apparent from the description, drawings, and
claims.
BRIEF DESCRIPTION OF THE DRAWINGS
[0057] In order to more clearly describe the solutions in the embodiments of the present
application or in the traditional technology, the accompanying drawings to be used
in the description of the embodiments or the traditional technology will be described
briefly. Obviously, the drawings described hereinafter are only some embodiments of
the present application. For those ordinary skilled in the art, other drawings can
also be obtained based on the following drawings without creative effort.
FIG. 1a is a schematic view showing an overall structure of an aerosol generating
device from a visual angle;
FIG. 1b is a schematic view showing an overall structure of the aerosol generating
device from another visual angle;
FIG. 1c is a schematic view showing a structure of the aerosol generating device according
to an embodiment, with an upper cover and a main body assembled together and an anti-dust
cover being opened;
FIG. 1d is a schematic view showing a structure of the aerosol generating device according
to an embodiment, with the upper cover and the main body assembled together and the
anti-dust cover being closed;
FIG. 1e is a schematic view showing a structure of the aerosol generating device according
to an embodiment, with the upper cover being detached from the main body and the anti-dust
cover being closed;
FIG. 1f is a schematic view showing a structure of an aerosol generating device according
to an embodiment, with the upper cover being detached from the main body and the anti-dust
cover being opened;
FIG. 2 is a schematic view showing an electrical structure of the aerosol generating
device according to an embodiment;
FIG. 3 is a schematic flow chart of a control method for an aerosol generating device
according to an embodiment;
FIG. 4 is a schematic flow chart of the control method for the aerosol generating
device according to another embodiment;
FIG. 5 is a schematic flow chart showing partial process of a control method for the
aerosol generating device according to an embodiment;
FIG. 6 is a block diagram showing a structure of a control device for an aerosol generating
device according an embodiment;
FIG. 7 is a schematic view showing an inner structure of a control component of an
aerosol generating device according to an embodiment.
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0058] In order to facilitate understanding of the present application, the present application
will be described more fully hereinafter with reference to the relevant drawings.
Embodiments of the present application are provided in the drawings. However, the
present application may be implemented in many different forms and is not limited
to the embodiments described herein. On the contrary, the purpose of providing these
embodiments is to make the disclosure of the present application more thorough and
comprehensive.
[0059] Unless otherwise defined, all technical and scientific terms used herein have the
same meaning as those commonly understood by those ordinary skilled in the art. The
terms used herein in the description of this application are only for the purpose
of describing specific embodiments, but are not intended to limit this application.
[0060] It can be understood that the terms "first", "second", etc., used in the present
disclosure may be used to describe various elements, but these elements are not limited
by these terms. These terms are only used to distinguish an element from another element.
[0061] Spatially relation terms such as "below", "under", "lower", "beneath", "above", "on",
etc., may be used herein to describe the relationships of an element or a feature
with other elements or features shown in the drawings. It should be understood that
the terms of spatial relations are intended to include other different orientations
of a device in use or operation in addition to the orientations shown in the drawings.
For example, if the devices in the drawings are placed upside down, the element or
feature which was "below other elements" or "under " or "beneath" will be oriented
as being "above" the other elements or features. Thus, the exemplary terms "under"
and "beneath" each may cover the meanings of "above" and "below". In addition, the
device may also include additional orientations (e.g., rotating 90 degrees or at other
orientations), and the spatial relation terms used herein may be correspondingly interpreted.
[0062] It should be noted that when an element is considered to be "connected" to another
element, it may be directly connected to the other element, or connected to the other
element through an intermediate element. In addition, the "connection" in the following
embodiments should be understood as "electrical connection", "communication connection",
etc., if there is transmission of electrical signals or data between the connected
objects.
[0063] When used herein, the singular forms "a", "an", and "said/the" may also include plural
forms, unless the context clearly indicates otherwise. It should also be understood
that the term "include/comprise" or "have" etc., specifies the presence of stated
features, wholes, steps, operations, components, parts or combinations thereof, but
do not exclude the possibility of the presence of one or more of other features, wholes,
steps, operations, components, parts or combinations thereof.
[0064] Since a heat-not-burn appliance is usually small in size, it cannot be equipped with
a relatively large display screen to display the operating parameters of the appliance.
As a result, it is difficult for a user to know all aspects of operating parameters
of the appliance while using the heat-not-burn appliance, and the user is unable to
arrange a subsequent usage plan.
[0065] To solve this problem, by taking an aerosol generating device shown in FIG. 1 as
an example, the present application provides a control method for the aerosol generating
device. As shown in FIGS. 3-5, the method includes following steps.
[0066] In step S20, in response to a usage operation for an aerosol generating device, a
target working action is performed based on the aerosol generating device. The target
working action matches with the usage operation, and the usage operation for the aerosol
generating device may include an operation of starting preheating, an action of inhaling
aerosol, an operation of viewing inhalation progress, an operation of interrupting
heating, an operation of pulling out aerosol-forming substrate, connecting a charging
interface to an external power source, or an operation of viewing battery life. The
target working action refers to the user's intentions to control a working state of
the aerosol generating device and to view the working state of the aerosol generating
device, which are characterized by the usage operation performed by the user when
using the aerosol generating device. Determining a target working action that matches
with the usage operation based on the usage operation may be achieved by querying
a pre-stored mapping table. For example, the usage operation for the aerosol generating
device may be first identified by a sensor carried on the aerosol generating device,
and then a mapping table is queried to determine the target working action that matches
with the usage operation.
[0067] In step S40, an interactive action for characterizing the operation parameter of
the aerosol generating device is executed based on the aerosol generating device.
The operation parameter is information updated based on performing the target working
action. The operation parameter of the aerosol generating device may be obtained by
executing the target working action, and based on the obtained operation parameter,
the operation parameter is fed back to the user based on performing the interactive
action, so that the operation parameter of the aerosol generating device can be informed
to the user.
[0068] In this embodiment, by responding to the usage operation for the aerosol generating
device, the target working action matching with the usage operation is determined
to instruct the aerosol generating device to execute the target working action. The
most concerned by the user is the result generated by the target working action executed
based on the user's usage operation, and the present application determines, based
on the operating parameter updated by executing the target working action, the interactive
action that can characterize the updated operating parameters by querying a table,
etc., and then executes the interactive action, so that the operating parameter of
the aerosol generating device can be informed to the user, such as a remaining inhalation
progress, a battery life, and whether it is heating, etc. Based on this, the user
may make a subsequent use plan for the aerosol generating device in advance, for example,
when the remaining inhalation progress is insufficient, the user prepares a new aerosol-forming
substrate 900 for replacement, and plan to charge the device when the remaining power
is insufficient.
[0069] In an embodiment, as shown in FIGS. 1-2, the aerosol generating device includes an
upper cover 100 and a main body 200. The main body 200 has an accommodating cavity
for aerosol-forming substrate, and the upper cover 100 has an anti-dust cover 120.
When the anti-dust cover 120 is closed, it covers an opening of the accommodating
cavity completely, and when the anti-dust cover 120 is opened, the accommodating cavity
is communicated with the outside, so that the aerosol-forming substrate may be placed
into the accommodating cavity through the opening. The main body 200 further includes
an indicator light assembly 230, a vibration module 260, a battery 270 and a 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 usage operation includes an
operation of opening the anti-dust cover 120.
[0070] In an embodiment, step S20 of performing the target working action based on the aerosol
generating device in response to the usage operation for the aerosol generating device,
includes:
in response to an operation of opening the anti-dust cover 120, controlling the aerosol
generating device to enter a non-sleep working mode.
[0071] By detecting the operation of opening the anti-dust cover 120, the aerosol generating
device is controlled to enter the non-sleep working mode. In this working mode, the
vibration sensor 280 may be awakened, and the vibration data detected by the vibration
sensor 280 are obtained, thus allowing viewing the remaining inhalation progress which
is obtained based on a vibration detection, and allowing viewing the remaining power
in a non-heating state. In the non-sleep working mode, the heating function of the
aerosol generating device is allowed to be used.
[0072] Correspondingly, step S40 of executing the interactive action for characterizing
the operation parameter of the aerosol generating device based on the aerosol generating
device, as shown in FIG. 4, includes at least one of the following steps.
[0073] In step S41, based on the control circuit, the indicator light assembly is controlled
to work in a first state to indicate that the non-sleep working mode has been entered
and/or to indicate the remaining power of the battery.
[0074] The indicator light assembly 230 may have a plurality of lights including, for example,
a multi-color LED light and a light bar, to show a plurality of states to represent
different working conditions of the aerosol generating device. For example, the first
state may be that the white light starts to gradually light up for 1 second, and then
quickly flashes for 2 seconds, and the control circuit 290 controls the LED light
in the indicator light assembly 230 to emit light of different colors according to
the detected battery power, to indicate the remaining power. For example, when the
remaining power is detected to be 50% to 100%, based on the control circuit 290, the
LED light is controlled to emit white light to indicate that the remaining power is
sufficient. When the remaining power is detected to be 20% to 50%, based on the control
circuit 290, the LED light is controlled to emit yellow-green light. When the remaining
power is detected to be less than 20%, based on the control circuit 290, the LED light
is controlled to emit orange light to indicate that the power is insufficient and
the battery needs to be charged.
[0075] In step S42, based on the control circuit, the vibration module is controlled to
execute a first vibration action to indicate that the non-sleep working mode has been
entered.
[0076] The aerosol generating device is usually used in a hand-held manner, when the operation
of opening the anti-dust cover is detected, the aerosol generating device is controlled
to enter the non-sleep working mode, and at the same time, the vibration module may
be controlled to perform the first vibration action to prompt the user that the aerosol
generating device has been awakened, and that operations of heating the aerosol-forming
substrate and inhaling aerosol, etc. may be performed. The vibration module may be
a vibration motor connected to the control circuit. The first vibration action may
be a light vibration of 0.5 second. Of course, the time illustrated in the embodiments
of the present application is only used to help those skilled in the art to understand
the implementation process of the solution, but not intended to limit the actual protection
scope of the present application.
[0077] After the aerosol generating device is started, the user's common operations are
heating the aerosol-forming substrate 900 and inhaling aerosol. Accordingly, in an
embodiment, the main body 200 further includes a heating element 240. The heating
element 240 (as shown in FIGS. 1b-1e and FIG. 2) is connected to the control circuit
290. In this embodiment, the heating element 240 is pin-shaped or sheet-shaped, and
is configured to be inserted into the interior of the aerosol-forming substrate 900
for heating. In other embodiments, the heating element 240 may be in a shape of a
hollow cylindrical tube surrounding the outer side of the aerosol-forming substrate
900 for heating. The usage operation further includes at least one of the operation
of starting preheating, the action of inhaling aerosol, the operation of viewing inhalation
progress, the operation of interrupting heating, and the operation of pulling out
aerosol-forming substrate, each of which is performed after the aerosol generating
device enters the non-sleep working mode. The target working actions corresponding
to various usage operations are illustrated in the following embodiments. Step S40
of executing the interactive action for characterizing the operation parameter of
the aerosol generating device based on the aerosol generating device, as shown in
FIG. 4, includes the following step.
[0078] In step S43, at least one interactive action for characterizing the operation parameter
of the aerosol generating device is performed based on the control circuit and the
indicator light assembly and/or the vibration module. At least one of the indicator
light assembly 230 and the vibration module 260 is controlled by the control circuit
290 to execute the at least one interactive action for characterizing the operation
parameter of the aerosol generating device.
[0079] In an embodiment, the target working action, which matches with the operation of
starting preheating, includes controlling the heating element 240 to perform preheating,
based on the control circuit 290. When the operation of starting preheating is detected
in the non-sleep working mode, the heating element 240 is controlled based on the
control circuit 290 to work for a period of time to preheat the aerosol-forming substrate
for providing a better inhaling taste.
[0080] In one of the embodiments, as shown in FIG. 1a and FIG. 2, the main body 200 further
includes a function button 250 connected to the control circuit 290. The operation
of starting preheating includes pressing the function button 250 for a first preset
time period, and then releasing it. The first preset time period may be a relatively
short time, for example, 1.5 seconds, thus preventing the user from waiting too long.
[0081] Step S43 of performing at least one interactive action for characterizing the operation
parameter of the aerosol generating device, based on the control circuit and the indicator
light assembly and/or the vibration module, as shown in FIG. 5, includes following
steps.
[0082] In step S431, when the heating element is controlled to be in the preheating process,
based on the control circuit, the indicator light assembly is controlled to work in
a second state to indicate that the preheating is in progress. The second state may
be that the control circuit controls the indicator light assembly to emit white light
and flash in a breathing manner.
[0083] In step S432, when the heating element is controlled to stop preheating, the vibration
module is controlled to perform a second vibration action to indicate that the preheating
is completed. The second vibration action may be vibrating twice and each vibration
lasting for 0.6 seconds. The specific second vibration action may be configured in
advance.
[0084] In an embodiment, a sensor for detecting insertion of aerosol-forming substrate,
such as a pressure sensor, may be arranged at the bottom of the accommodating cavity
and is connected to the control circuit.
[0085] The method further includes:
detecting an output signal of the sensor for detecting insertion of aerosol-forming
substrate in the non-sleep working mode;
if it is determined that the aerosol-forming substrate is inserted into the receiving
cavity according to the output signal of the sensor for detecting insertion of aerosol-forming
substrate, and if the operation of starting preheating is detected, the heating element
is controlled to perform preheating based on the control circuit.
[0086] In one of the embodiments, the usage operation further includes pressing the function
button for a second preset time period. The second preset time period is shorter than
the first preset time period. For example, the second preset time period may be configured
to be 1 second.
[0087] The target working action, which matches with pressing the function button for the
second preset time period, includes continuing to monitor the time period for which
the function button is pressed, based on the control circuit.
[0088] In this embodiment, Step S40 of executing the interactive action for characterizing
the operation parameter of the aerosol generating device based on the aerosol generating
device includes the following step.
[0089] When the heating element stop heating, 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 a user's misoperation,
an indication may be provided just before the preheating function is about to start.
When the function button is pressed for the second preset time period,, for which
the function button is pressed is continued to be monitored, and the vibration module
is controlled to perform a third vibration action to prompt the user that, the preheating
function will start when the function button is continuously pressed for the first
preset time period. If the user would not like to have the aerosol-forming substrate
to be heated, the user may release the function button after receiving the prompt.
The third vibration action may be a vibration lasting for 0.5 seconds that prompts
the user that the preheating is about to start. By setting the first preset time period
to be equal to a sum of the second preset time period and a duration the third vibration
action lasts, the user may be informed that the preheating is about to successfully
start when the third vibration action ends.
[0090] In an embodiment, the target working action, which matches with the action of inhaling
aerosol, includes controlling the heating element to heat the aerosol-forming substrate,
based on the control circuit. The action of inhaling aerosol may be the insertion
of the aerosol-forming substrate, or may be the completion of preheating based on
the inserted aerosol-forming substrate. Specifically, when it is detected that the
preheating is completed in the non-sleep working mode, the heating element is controlled
based on the control circuit to heat the aerosol-forming substrate, thus continuously
generating aerosol for the user to inhale.
[0091] In one of the embodiments, the action of inhaling aerosol includes inserting the
aerosol-forming substrate. The target working action matching with the action of inhaling
aerosol includes: based on a control circuit, controlling the heating element to heat
the aerosol-forming substrate, and detecting the number of times of inhalation and/or
the remaining inhaling time.
[0092] Step S43 of performing the at least one interactive action for characterizing the
operation parameter of the aerosol generating device based on the control circuit
and the indicator light assembly and/or the vibration module, further includes the
following step.
[0093] The indicator light assembly is controlled to operate in a third state during the
inhalation process, thus indicating that the aerosol is being generated and the user
may inhale the aerosol. For example, the third state may be that the white LED light
in the indicator light assembly is controlled to emit light, and that the light bar
in the indicator light assembly is controlled to flash in a breathing manner.
[0094] When it is detected that the number of times of inhalation reaches a first preset
number of times or the remaining inhaling time reaches a third preset time period,
it means that the inhalation is finished. In this case, to prevent the heating element
from burning, the heating element may be controlled based on the control circuit to
stop heating.
[0095] Those skilled in the art may understand that the number of times of inhalation is
also referred to as the number of puffs in the art.
[0096] Similarly, in order to better prompt the user that the inhalation is finished, when
it is detected that the number of times of inhalation reaches the first preset number
of times or that the remaining inhaling time reaches the third preset time period,
it indicates that the inhalation is finished, and the indicator light assembly may
be controlled to be turned off based on the control circuit.
[0097] During the inhaling process, the user is more concerned about the remaining inhalation
progress. Accordingly, in an embodiment, the interactive action further includes:
when it is detected that the number of times of inhalation reaches a second preset
number of times or that the remaining inhaling time reaches a fourth preset time period,
then based on the control circuit, the indicator light assembly is controlled to work
in a fourth state, and/or the vibration module is controlled to perform a third vibration
action to indicate the remaining inhalation progress. The second preset number of
times is less than the first preset number of times, and the fourth preset time period
is less than the third preset time period. The second preset number of times may be
set to be twice, and is determined based on the first preset number of times. For
example, when the first preset number of times is 14 times, then the second preset
number of times may be configured to be 12 times. The fourth preset time period may
also be determined based on the third preset time period. For example, when the third
preset time period is configured to be 5 minutes, the fourth preset time period may
be configured to be, for example, 4.5 minutes, which is less than the third preset
time period, that is, a prompt is triggered when the remaining inhaling time is 30
seconds.
[0098] The fourth state may be that, based on the control circuit, the white light in the
indicator light assembly is controlled to flash. The third vibration action may be
vibrating once as a reminder.
[0099] The abnormality of the heating element needs to be concerned during the heating process,
and thus the interactive action further includes controlling the indicator light assembly
to execute a first abnormality-reminding action based on the control circuit when
an abnormal heating of the heating element is detected.
[0100] The first abnormality-reminding action may be that the red light in the indicator
light assembly is controlled by the control circuit to flash for 3 times quickly.
[0101] In an embodiment, the target working action matching with the operation of viewing
inhalation progress includes calculating the remaining inhalation progress of the
aerosol-forming substrate based on the control circuit. When the operation of viewing
inhalation progress is detected, the remaining inhalation progress is calculated,
so that an interactive action is executed based on the calculated result to reminder
the user of the current remaining inhalation progress.
[0102] Specifically, the main body further includes a vibration sensor. The vibration sensor
is connected to the control circuit, and the operation of viewing inhalation progress
includes vibrating the aerosol generating device for a preset number of times.
[0103] The method further includes:
when the aerosol generating device enters a non-sleep working mode, obtaining vibration
data detected by the vibration sensor, and determining whether there is the operation
of viewing inhalation progress based on the vibration data of the vibration sensor.
[0104] Performing the at least one interactive action for characterizing the operation parameter
of the aerosol generating device, based on the control circuit and the indicator light
assembly and/or the vibration module, further includes:
based on the calculated remaining inhalation progress, and based on the control circuit,
controlling the vibration module to perform a vibration action that matches with the
remaining inhalation progress.
[0105] The vibration action that matches with the remaining inhalation progress may be determined
based on the mapping relationships between the remaining inhalation progresses and
the respective vibration actions in the following table:
| The number of times of inhalation / Remaining inhaling time |
Vibration Module Triggering Mode |
The fourth Vibration Action |
Characterized Level of the remaining inhalation progress |
| The remaining inhaling time is 70% to 100%. |
Passive |
Vibrate three times briefly |
Level 4 |
| The remaining inhaling time is 30% to 70%. |
Passive |
Vibrate twice briefly |
Level 3 |
| The remaining inhaling time is less than 30%. |
Passive |
Vibrate once briefly |
Level 2 |
| The remaining number of times of inhalation is twice, or the remaining inhaling time
is 30 seconds. |
Passive |
Vibrate once |
Level 1 |
[0106] The smaller the level number is, the shorter the remaining inhaling time is.
[0107] During the inhaling process, the user may have a need to interrupt the inhalation.
Accordingly, in an embodiment, the target working action matching with the operation
of interrupting heating includes controlling the heating element to stop heating based
on the control circuit, thereby avoiding a waste of the aerosol-forming substrate
900 and a waste of energy of the battery 270 in the main body 200.
[0108] Specifically, the main body 200 further includes a function button 250 connected
to the control circuit 290. The operation of interrupting heating includes pressing
the function button 250 for a fifth preset time period. The fifth preset time period
may be a time period, for example, 2.5 seconds, different from other preset time periods.
[0109] To remind the user that the heating has been interrupted, step S43 of performing
at least one interactive action for characterizing the operation parameter of the
aerosol generating device based on the control circuit 290 and the indicator light
assembly 230 and/or the vibration module 260, further includes the following step.
[0110] The indicator light assembly 230 is controlled to be turned off based on the control
circuit 290, and by controlling the whole indicator light assembly 230 to be all turned
off, the user is reminded that the heating has been interrupted.
[0111] The vibration module 260 is controlled to perform a fourth vibration action based
on the control circuit 290. The fourth vibration action may be vibrating once. The
user may accurately know the current state of the aerosol generating device by combining
the duration the vibration action lasts and the previous working state of the aerosol
generating device.
[0112] In an embodiment, the target working action matching with the operation of pulling
out aerosol-forming substrate includes controlling the heating element 240 to stop
heating based on the control circuit 290. To avoid burning, when the operation of
pulling out aerosol-forming substrate is detected, the control circuit 290 controls
the heating element to stop heating. The target working action matching with the operation
of pulling out aerosol-forming substrate includes controlling the aerosol generating
device to enter a sleep mode. In the sleep mode, the heating element 240 is prohibited
from heating and the vibration sensor 280 is prohibited from working, which can be
achieved by disconnecting the battery 270 to stop supplying power to the heating element
240 and to the vibration sensor 280.
[0113] In an embodiment, the upper cover 100 is detachably connected to the main body 200.
To pull out the aerosol-forming substrate, the upper cover 100 needs to be opened
to pull or pour the aerosol-forming substrate out of the receiving cavity, and thus
the operation of pulling out aerosol-forming substrate includes detaching the upper
cover 100 from the main body 200.
[0114] Performing at least one interactive action for characterizing the operation parameter
of the aerosol generating device based on the control circuit 290, and the indicator
light assembly 230 and/or the vibration module 260, includes:
when it is detected that the heating element 240 stops working, controlling the indicator
light assembly 230 to be turned off.
[0115] In one of the embodiments, the usage operation includes an operation of closing the
anti-dust cover 120, and the target working action matching with the operation of
closing the anti-dust cover 120 includes controlling the aerosol generating device
to enter a sleep mode. The sleep mode aims at saving energy, and in this mode, the
user does not inhale aerosol, and has no need of viewing the remaining power and viewing
the inhalation progress which are needed during the inhalation process. Accordingly,
in an embodiment, the method further includes: in the sleep mode, based on the control
circuit 290, prohibiting the heating element 240 from working.
[0116] For similar reasons, in the sleep mode, since the user does not inhale aerosol, viewing
the remaining power and viewing the inhalation progress based on the detection of
vibration sensor 280 are unnecessary. Accordingly, in an embodiment, the method further
includes: in the sleep mode, based on control circuit 290, prohibiting the vibration
sensor 280 from working.
[0117] After the aerosol generating device enters the sleep mode, performing the interactive
action for characterizing the operation parameter of the aerosol generating device
based on the aerosol generating device, includes:
controlling the indicator light assembly 230 to be turned off.
[0118] In an embodiment, the main body 200 further includes a charging interface 291. The
charging interface 291 is connected to both the control circuit 290 and the battery
270, and the charging interface 291 is configured to be connected to the external
power source 400. The charging interface 291 may be selected as a Type-C protocol
interface.
[0119] The usage operation includes connecting the charging interface 291 to the external
power source 400. Connecting the charging interface 291 to the external power source
400 may be performed by connecting a power adapter to a USB data cable and then inserting
the USB data cable into the charging interface 291 arranged at the bottom of the aerosol
generating device.
[0120] The target working action matching with connecting the charging interface 291 to
the external power source 400 includes controlling the external power source 400 to
charge the battery 270 based on the control circuit 290. When it is detected that
a power source is connected, the control circuit 290 controls the battery 270 to be
charged, and a charging and controlling action may be performed based on a preset
power management strategy.
[0121] Step S40 of executing the interactive action for characterizing the operation parameter
of the aerosol generating device based on the aerosol generating device, includes
the following step.
[0122] Based on the control circuit 290, the indicator light assembly 230 is controlled
to operate in a fifth state to indicate the remaining power of the battery 270.
[0123] The fifth state may be that the control circuit 290 controls the LED light bulbs
in the light bar of the indicator light assembly 230 to gradually light up from bottom
to top (the top refers to the side where the opening of the accommodating cavity is
located) and this effect is cycled.
[0124] The fifth state may also be determined based on the following table:
| Remaining power |
The fifth state |
Characterized Level of the remaining power |
| The remaining power is 50% to 100%. |
Slowly flash in a breathing manner, emitting white light. |
Level 3 |
| The remaining power is 20% to 50%. |
Flash in a fluctuation manner, emitting yellow-green light. |
Level 2 |
| The remaining power is less than 20%. |
Flash in a fluctuation manner, emitting orange light. |
Level 1 |
| Fully charged |
Light up for 20 seconds and then be turned off. |
Level 4 |
[0125] The lager the level number of the remaining power is, the more remaining power is.
[0126] In an embodiment, the main body 200 of the aerosol generating device includes the
indicator light assembly 230, the heating element 240, and the control circuit 290.
The indicator light assembly 230 and the heating element 240 are both connected to
the control circuit 290. The usage operation further includes an operation of viewing
battery life performed when the heating element 240 is not heating, and the target
working action matching with the operation of viewing battery life is obtaining the
remaining power.
[0127] Step S40 of executing the interactive action for characterizing the operation parameter
of the aerosol generating device based on the aerosol generating device, as shown
in FIG. 4, includes at least one of the following steps.
[0128] In step S44, based on the control circuit, the indicator light assembly is controlled
to work in a sixth state to indicate 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.
[0129] In addition to the indication of the remaining power performed by the light bar lighting
up for 3 seconds, the remaining powers may be distinguished based on different colors
of the light bar. The sixth state may be determined by querying the following table:
| Remaining power |
The sixth state |
Characterized Level of the remaining power |
| The remaining power is 50% to 100%. |
Light up for 3 seconds, emitting white light |
Level 3 |
| The remaining power is 20% to 50%. |
Light up for 3 seconds, emitting yellow-green light |
Level 2 |
| The remaining power is less than 20%. |
Light up for 3 seconds, emitting orange light |
Level 1 |
[0130] In step S45, if it is detected that the remaining power is less than the minimum
power required for heating a piece of aerosol-forming substrate, the indicator light
assembly is controlled based on the control circuit to execute a second abnormality-reminding
action. In the non-heating state, if the remaining power is insufficient to heat a
piece of aerosol-forming substrate, it means that there will be an abnormal heating
interruption during the usage by the user. At this time, there is a need to remind
the user of charging in advance to facilitate a subsequent usage. The second abnormality-reminding
action may be controlling the indicator light assembly to light up for a long time
and emit red light based on the control circuit.
[0131] In one of the embodiments, the main body 200 further includes the function button
250 and the vibration sensor 280 which are connected to the control circuit 290.
[0132] The operation of viewing battery life includes:
pressing the function button 250 for a sixth preset time period or vibrating the aerosol
generating device. The sixth preset time period may be configured to be between 0.5
and 1 second.
[0133] The method further includes following steps.
[0134] When the aerosol generating device is in the non-sleep working mode, it is determined
whether there is an operation of viewing battery life based on the vibration data
of the vibration sensor 280.
[0135] In the non-sleep working mode, the vibration data of the vibration sensor 280, such
as an acceleration sensor, are processed based on the control circuit to determine
whether there is an operation of viewing battery life. If it is determined based on
the vibration data that there is the operation of viewing battery life, the remaining
power is obtained, and based on the obtained remaining power, a corresponding interactive
action is performed to remind the user of the remaining power of the aerosol generating
device. For the determination solution for the interactive action corresponding to
the operation of viewing battery life, the embodiments above may be referred.
[0136] In one of the embodiments, after the step of controlling the aerosol generating device
to enter the non-sleep working mode in response to the operation of opening the anti-dust
cover 120, the method further comprises:
if no operation other than the operation of opening the anti-dust cover 120 is detected
within a preset waiting time, the aerosol generating device is controlled to enter
a sleep working mode; or
in response to detaching the upper cover 100 from the main body 200, the aerosol generating
device is controlled to enter a sleep working mode.
[0137] For consideration of energy saving and safety, when the anti-dust cover 120 is in
the open state, if there is no operation for the device within the preset waiting
time (e.g., 3 minutes), the aerosol generating device will also be controlled to enter
the sleep working mode. At this time, the anti-dust cover 120 needs to be closed and
then opened again to trigger the aerosol generating device to enter the non-sleep
working mode.
[0138] When the anti-dust cover 120 is opened, if it is detected that the upper cover 100
is detached from the main body 200, it means that the user intends to pull out the
aerosol-forming substrate. Then the aerosol generating device is controlled to enter
the sleep working mode, the heating element 240 is prohibited from continuing to heat,
and the vibration sensor 280 is also prohibited from working.
[0139] In the sleep mode, based on the control circuit, the heating element 240 is prohibited
from heating and the vibration sensor 280 is prohibited from working, thus saving
energy. In the sleep mode, the target working action and the interactive action are
executed in response to only the operation of the function button 250 being pressed
for the sixth preset time period.
[0140] If the temperature of a chip, such as the control circuit, is too high, the service
life of the device will be seriously affected. Accordingly, in one of the embodiments,
the main body 200 further includes a temperature sensor 292. The method further includes
the following step.
[0141] If it is determined that the temperature of the main body 200 is higher than a preset
temperature according to the temperature data detected by the temperature sensor 292,
the indicator light assembly 230 is controlled to perform a third abnormality-reminding
action based on the control circuit 290. The third abnormality-reminding action may
be performed by controlling the indicator light assembly 230 to emit red light and
quickly flash twice at intervals based on the control circuit 290, which is different
from the reminder performed when the heating element 240 is abnormal.
[0142] In one of the embodiments, the usage operation further includes an operation of forcing
sleep or an operation of forcing wakeup.
[0143] The target working action matching with the operation of forcing sleep includes controlling
the aerosol generating device to enter a sleep working mode. The operation of forcing
sleep may be pressing the function button for 4 times in succession when the aerosol
generating device is in the non-sleep working mode.
[0144] The target working action matching with the operation of forcing wakeup includes
controlling the aerosol generating device to exit the sleep working mode and enter
the non-sleep working mode, and obtaining the vibration data detected by the vibration
sensor 280 based on the control circuit. The operation of forcing wakeup may be pressing
the function button 250 for 4 times in succession when the aerosol generating device
is in the sleep working mode.
[0145] When there is a logical conflict in the target working actions determined in response
to the usage operations, the priorities of executing the usage operations are as follows.
[0146] The priorities of the operation of forcing sleep and the operation of forcing wakeup
are higher than the priority of detaching the upper cover from the main body when
the anti-dust cover is opened, and the priority of detaching the upper cover from
the main body when the anti-dust cover is opened is higher than the priority of closing
the anti-dust cover, and the priority of closing the anti-dust cover is higher than
the priorities of other usage operations, which exclude the operation of opening the
anti-dust cover, and which are not detected within the preset waiting time when the
anti-dust cover is opened.
[0147] It should be understood that although the steps in the flowcharts involved in the
above embodiments are shown in sequence as indicated by the arrows, these steps are
not necessarily executed in the order indicated by the arrows. Unless explicitly stated
in this article, there is no strict order restriction on the execution of these steps,
and these steps may be executed in other orders. Moreover, at least some of the steps
in the flowcharts involved in the above embodiments may include multiple steps or
multiple stages. These steps or stages are not necessarily executed at the same time,
but may be executed at different times. The execution order of these steps or stages
is not necessarily sequential, but may be performed in turn or alternately with other
steps or at least part of the steps or stages in other steps.
[0148] Based on the same concepts of the method embodiments, the embodiments of the present
application further provide a control device for the aerosol generating device. As
shown in FIG. 6, the device includes a usage operation responding module 20 and a
response-execution feedback module 40.
[0149] The usage operation responding module 20 is configured to, in response to the usage
operation for the aerosol generating device, perform a target working action based
on the aerosol generating device. The target working action matches with the usage
operation.
[0150] The response-execution feedback module 40 is configured to execute an interactive
action for characterizing the operation parameter of the aerosol generating device
based on the aerosol generating device, and the operation parameter is information
updated based on performing the target working action.
[0151] For the specific limitations of the control device for the aerosol generating device,
please refer to the limitations of the control method for the aerosol generating device
above, which will not be described repeatedly herein. Various modules in the control
device for the aerosol generating device may be implemented in whole or in part by
software, hardware and a combination thereof. The above-mentioned modules may be embedded
in or independent of the processor in the aerosol generating device in the form of
hardware, or may be stored in the memory in the aerosol generating device in the form
of software, so that the processor can call and execute operations corresponding to
the above modules. It should be noted that the division of the modules in the embodiment
of the present application is illustrative and is only a logical function division,
and there may be other division manners in actual implementation.
[0152] In an embodiment, an aerosol generating device is provided, and an internal structure
thereof may be shown in FIG. 7. The aerosol generating device includes a processor
and a memory connected via a system bus. The processor of the aerosol generating device
is used to provide computing and control capabilities. The memory of the aerosol generating
device includes a non-volatile storage medium and an internal memory. The non-volatile
storage medium stores an operating system, a computer program, and a database. The
internal memory provides an environment for the operation of the operating system
and the computer program in the non-volatile storage medium. The database of the aerosol
generating device is used to store data such as predefined target working actions
and interactive actions. The computer program, when executed by the processor, performs
the control method for the aerosol generating device.
[0153] Those skilled in the art should understand that the structure shown in the block
diagram of FIG. 7 is merely partial structure related to the solutions of the present
application, and does not constitute a limitation on the aerosol generating device
to which the solutions of the present application is applied. The specific aerosol
generating device may include more or fewer components than those shown in the figure,
or may combine some of the components, or may have a different arrangement of the
components.
[0154] The present application provides an aerosol generating device, including a memory
and a processor. The memory stores a computer program. The processor, when executing
the computer program, implements the steps of any one of the control methods for the
aerosol generating device in the embodiments above.
[0155] In one of the embodiments, as shown in FIGS. 1-2, the aerosol generating device includes
an upper cover 100 and a main body 200.
[0156] The main body 200 has an accommodating cavity for aerosol-forming substrate, and
the upper cover 100 has an anti-dust cover 120. When the anti-dust cover 120 is closed,
it covers the opening of the accommodating cavity completely, and when the anti-dust
cover 120 is opened, the accommodating cavity is communicated with the outside, so
that the aerosol-forming substrate may be placed into the accommodating cavity through
the opening.
[0157] The main body 200 further includes a function button 250, a vibration sensor 280,
a Hall sensor 210, a charging interface 291, a battery 270 and a control circuit 290.
The function button 250, the vibration sensor 280, the Hall sensor 210, the charging
interface 291 and the battery 270 are all connected to the control circuit 290.
[0158] The anti-dust cover 120 is provided with a first magnetic member 110 that matches
with the Hall sensor 210, and output signals of the Hall sensor 210 are different
when the anti-dust cover 120 is opened and when the anti-dust cover 120 is closed.
[0159] The control circuit detects the operation of opening the anti-dust cover 120 and
the operation of closing the anti-dust cover 120 according to the output signals of
the Hall sensor 210.
[0160] The control circuit includes a memory and a processor. The memory stores a computer
program. The processor, when executing the computer program, performs the steps of
the above methods.
[0161] In one of the embodiments, the vibration sensor is an acceleration sensor. The acceleration
sensor may be received in the main body 200. The acceleration sensor may be activated
or deactivated based on the detections of the Hall sensor 210.
[0162] In one of the embodiments, the aerosol generating device further includes a second
magnetic member 130 arranged in the upper cover 100 and a third magnetic member 220
arranged in the main body 200. When the upper cover 100 is assembled with the main
body 200 for use, the second magnetic member 130 and the third magnetic member 220
are attracted to each other, thus improving stability.
[0163] In one of the embodiments, the anti-dust cover 120 is slidably connected to the body
of the upper cover 100. The anti-dust cover 120 is slidable along the length direction
of the end surface of the upper cover 100.
[0164] In one of the embodiments, the upper cover 100 is slidably connected to the main
body 200, and the upper cover 100 may be detached from the main body 200 by lifting
the upper cover 100 in a direction opposite to the insertion direction of the aerosol-forming
substrate.
[0165] It should be understood that, based on the output signals of the Hall sensor 210,
the control circuit 290 may identify four following states as shown in FIGS. 1c-1f:
the upper cover 100 is assembled with the main body 200 for use, and the anti-dust
cover 120 is opened;
the upper cover 100 is assembled with the main body 200 for use, and the anti-dust
cover 120 is closed;
the upper cover 100 is detached from the main body 200, and the anti-dust cover 120
is opened; and
the upper cover 100 is detached from the main body 200, and the anti-dust cover 120
is closed.
[0166] Based on the detections of other sensors, such as the state recognition vibration
sensor 280, steps of the methods in the above method embodiments may be executed to
achieve corresponding beneficial effects.
[0167] It should be noted that, the above aerosol generating device, when executing the
above steps of the method, has the structural features described in the above method
embodiments, which will not be described repeatedly herein, so as to execute the steps
of the above method.
[0168] In an embodiment, a computer-readable storage medium is provided, and has a computer
program stored thereon. The computer program, when executed by a processor, performs
all steps of the control methods for the aerosol-forming substrate, and achieves corresponding
beneficial effects.
[0169] It should be understood by those ordinary skilled in the art that all or part of
the processes of the above-mentioned method embodiments may be implemented by the
relevant hardware according to instructions of a computer program, and the computer
program may be stored in a non-volatile computer-readable storage medium. The computer
program, when executed, may include the processes of the above-mentioned method embodiments.
Any reference to the memory, the storage, the database, or other medium used in the
embodiments provided in the present application may include at least one of the non-volatile
memory and the volatile memory. The non-volatile memory may include read-only memory
(ROM), magnetic tape, floppy disk, flash memory, or optical memory, etc. The volatile
memory may include random access memory (RAM) or external cache memory. As illustration
but not limitation, the RAM may be in various forms, such as static random-access
memory (SRAM) or dynamic random access memory (DRAM).
[0170] In the description of this specification, the terms "one embodiment", "some embodiments",
"ideal embodiments", etc., mean that the specific features, structures, materials
or features, described in conjunction with the embodiment or example, are included
in at least one embodiment or example of the present application. In this specification,
the illustrative description of the above terms does not necessarily refer to the
same embodiment or example.
[0171] The technical features of the above-mentioned embodiments may be combined arbitrarily.
In order to make the description concise, not all possible combinations of the technical
features are described in the embodiments. However, as long as there is no contradiction
in the combination of these technical features, the combinations should be considered
as in the scope of the present application.
[0172] The above-described embodiments are only several implementations of the present application,
and the descriptions are relatively specific and detailed, but they should not be
construed as limiting the scope of the present patent application. It should be understood
by those of ordinary skill in the art that various modifications and improvements
may be made without departing from the concept of the present application, and they
all fall within the protection scope of the present application. Therefore, the patent
protection of the present application shall be defined by the appended claims.
1. A control method for an aerosol generating device,
characterized by comprising:
in response to a usage operation for the aerosol generating device, performing a target
working action based on the aerosol generating device, the target working action matching
with the usage operation; and
executing an interactive action for characterizing an operation parameter of the aerosol
generating device based on the aerosol generating device, wherein the operation parameter
is information updated based on performing the target working action.
2. The method according to claim 1, wherein:
the aerosol generating device comprises an upper cover and a main body ; the main
body has an accommodating cavity for aerosol-forming substrate; the upper cover has
an anti-dust cover; the anti-dust cover , when being closed, covers an opening of
the accommodating cavity completely; when the anti-dust cover is opened, the accommodating
cavity is communicated with outside, so that the aerosol-forming substrate is placed
into the accommodating cavity through the opening; the main body further comprises
an indicator light assembly , a vibration module, a battery and a control circuit;
and the indicator light assembly, the vibration module and the battery are all connected
to the control circuit;
the usage operation comprises an operation of opening the anti-dust cover;
performing the target working action based on the aerosol generating device in response
to the usage operation for the aerosol generating device, comprises:in response to
the operation of opening the anti-dust cover, controlling the aerosol generating device
to enter a non-sleep working mode; and
executing the interactive action for characterizing the operation parameter of the
aerosol generating device based on the aerosol generating device, comprises at least
one of following steps of:
based on the control circuit, controlling the indicator light assembly to work in
a first state to indicate that a non-sleep working mode has been entered and/or to
indicate a remaining power of the battery; and
based on the control circuit, controlling the vibration module to execute a first
vibration action to indicate that the non-sleep working mode has been entered.
3. The method according to claim 2, wherein the main body further comprises a heating
element; the heating element is connected to the control circuit; the usage operation
further comprises at least one of: an operation of starting preheating, an action
of inhaling aerosol, an operation of viewing inhalation progress, an operation of
interrupting heating, and an operation of pulling out the aerosol-forming substrate,
each of which is performed after the aerosol generating device enters the non-sleep
working mode;
a target working action, which matches with the operation of starting preheating,
comprises controlling the heating element to perform preheating based on the control
circuit;
a target working action, which matches with the action of inhaling aerosol, comprises
controlling the heating element to heat the aerosol-forming substrate based on the
control circuit;
a target working action, which matches with the operation of viewing inhalation progress,
comprises calculating a remaining inhalation progress of the aerosol-forming substrate
based on the control circuit;
a target working action, which matches with the operation of interrupting heating,
comprises controlling the heating element to stop heating based on the control circuit;
a target working action, which matches with the operation of pulling out the aerosol-forming
substrate, comprises controlling the heating element to stop heating based on the
control circuit; and
executing the interactive action for characterizing the operation parameter of the
aerosol generating device based on the aerosol generating device comprises: performing
at least one interactive action for characterizing the operation parameter of the
aerosol generating device based on the control circuit, and the indicator light assembly
and/or the vibration module.
4. The method according to claim 3, wherein the main body further comprises a vibration
sensor; the vibration sensor is connected to the control circuit; and the operation
of viewing inhalation progress comprises vibrating the aerosol generating device for
a preset number of times;
the method further comprises: when the aerosol generating device enters the non-sleep
working mode, obtaining vibration data detected by the vibration sensor, and determining
whether there is the operation of viewing inhalation progress based on the vibration
data of the vibration sensor; and
performing the at least one interactive action for characterizing the operation parameter
of the aerosol generating device based on the control circuit and the indicator light
assembly and/or the vibration module, comprises: based on the calculated remaining
inhalation progress, and based on the control circuit, controlling the vibration module
to perform a vibration action that matches with the remaining inhalation progress.
5. The method according to claim 3, wherein the main body further comprises a function
button connected to the control circuit; the operation of starting preheating comprises
pressing the function button for a first preset time period, and then releasing it;
and
performing the at least one interactive action for characterizing the operation parameter
of the aerosol generating device based on the control circuit and the indicator light
assembly and/or the vibration module, comprises:
when the heating element is controlled to be in a preheating process, based on the
control circuit, controlling the indicator light assembly to work in a second state
to indicate that the preheating is in progress; and
when the heating element is controlled to stop preheating, controlling the vibration
module to perform a second vibration action to indicate that the preheating is completed.
6. The method according to claim 5, wherein the usage operation further comprises pressing
the function button for a second preset time period, and the second preset time period
is less than the first preset time period;
a target working action, which matches with pressing the function button for the second
preset time period, comprises based on the control circuit, continuing to monitor
a time period for which the function button is pressed; and
executing the interactive action for characterizing the operation parameter of the
aerosol generating device based on the aerosol generating device comprises: when the
heating element is not heating, based on the control circuit, controlling the vibration
module to perform a third vibration action to indicate that the preheating is about
to be triggered.
7. The method according to claim 3, wherein the action of inhaling aerosol comprises
inserting the aerosol-forming substrate; a target working action, which matches with
the action of inhaling aerosol comprises: based on the control circuit, controlling
the heating element to heat the aerosol-forming substrate, and detecting the number
of times of inhalation and/or a remaining inhaling time; and
performing the at least one interactive action for characterizing the operation parameter
of the aerosol generating device based on the control circuit and the indicator light
assembly and/or the vibration module, further comprises at least one of following
steps of:
controlling the indicator light assembly to operate in a third state during an inhalation
process to indicate that aerosol is being generated;
when it is detected that the number of times of inhalation reaches a first preset
number of times or that the remaining inhaling time reaches a third preset time period,
based on the control circuit, controlling the heating element to stop heating;
when it is detected that the number of times of inhalation reaches the first preset
number of times or that the remaining inhaling time reaches the third preset time
period, based on the control circuit, controlling the indicator light assembly to
be turned off; and
when it is detected that the number of times of inhalation reaches a second preset
number of times or that the remaining inhaling time reaches a fourth preset time period,
based on the control circuit, controlling the indicator light assembly to work in
a fourth state, and/or controlling the vibration module to perform a third vibration
action, to indicate the remaining inhalation progress, wherein the second preset number
of times is less than the first preset number of times, and the fourth preset time
period is less than the third preset time period.
8. The method according to claim 7, wherein performing the at least one interactive action
for characterizing the operation parameter of the aerosol generating device based
on the control circuit and the indicator light assembly and/or the vibration module,
further comprises: controlling the indicator light assembly to execute a first abnormality-reminding
action based on the control circuit when an abnormal heating of the heating element
is detected.
9. The method according to claim 3, wherein the main body further comprises a function
button connected to the control circuit; the operation of interrupting heating comprises
pressing the function button for a fifth preset time period; and performing the at
least one interactive action for characterizing the operation parameter of the aerosol
generating device based on the control circuit , and the indicator light assembly
and/or the vibration module, comprises at least one of following steps of: controlling
the indicator light assembly to be turned off based on the control circuit, and controlling
the vibration module to perform a fourth vibration action based on the control circuit.
10. The method according to claim 3, wherein the upper cover is detachably connected to
the main body; the operation of pulling out aerosol-forming substrate comprises detaching
the upper cover from the main body; and performing the at least one interactive action
for characterizing the operation parameter of the aerosol generating device based
on the control circuit, and the indicator light assembly and/or the vibration module,
comprises: when it is detected that the heating element stops working, controlling
the indicator light assembly to be turned off.
11. The method according to claim 2, wherein the usage operation comprises an operation
of closing the anti-dust cover, and a target working action, which matches with the
operation of closing the anti-dust cover, comprises controlling the aerosol generating
device to enter a sleep working mode; and
executing the interactive action for characterizing the operation parameter of the
aerosol generating device based on the aerosol generating device, comprises: controlling
the indicator light assembly to be turned off.
12. The method according to claim 2, wherein the main body further comprises a charging
interface; the charging interface is connected to both the control circuit and the
battery , and the charging interface is configured to be connected to an external
power source;
the usage operation comprises connecting the charging interface to the external power
source;
a target working action, which matches with connecting the charging interface to the
external power source, comprises, based on the control circuit, controlling the external
power source to charge the battery; and
executing the interactive action for characterizing the operation parameter of the
aerosol generating device based on the aerosol generating device, comprises: based
on the control circuit, controlling the indicator light assembly to operate in a fifth
state to indicate the remaining power of the battery.
13. The method according to any one of claims 1 to 12, wherein the main body of the aerosol
generating device comprises 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 usage operation further comprises an operation of viewing
battery life performed when the heating element is not heating, and a target working
action matching with the operation of viewing battery life is obtaining a remaining
power; and
executing the interactive action for characterizing the operation parameter of the
aerosol generating device based on the aerosol generating device, comprises at least
one of:
based on the control circuit, controlling the indicator light assembly to work in
a sixth state to indicate the remaining power of the battery; and
if it is detected that the remaining power is less than a minimum power required for
heating a piece of aerosol-forming substrate, based on the control circuit, controlling
the indicator light assembly to execute a second abnormality-reminding action.
14. The method according to claim 13, wherein the main body further comprises a function
button and a vibration sensor which are connected to the control circuit;
the operation of viewing battery life comprises: pressing the function button for
a sixth preset time period or vibrating the aerosol generating device; and
the method further comprises: when the aerosol generating device is in a non-sleep
working mode, determining whether there is the operation of viewing battery life based
on vibration data of the vibration sensor.
15. The method according to claim 2, wherein after controlling the aerosol generating
device to enter the non-sleep working mode in response to the operation of opening
the anti-dust cover, the method further comprises:
if no operation other than the operation of opening the anti-dust cover is detected
within a preset waiting time, the aerosol generating device is controlled to enter
a sleep working mode; or
in response to detaching the upper cover from the main body, controlling the aerosol
generating device to enter the sleep working mode.
16. A control device for an aerosol generating device,
characterized by comprising:
a usage operation responding module configured to perform a target working action
based on the aerosol generating device in response to a usage operation for the aerosol
generating device, wherein the target working action matches with the usage operation;
and
a response-execution feedback module configured to execute an interactive action for
characterizing an operation parameter of the aerosol generating device based on the
aerosol generating device, wherein the operation parameter is information updated
based on performing the target working action.
17. An aerosol generating device, comprising a memory and a processor, wherein the memory
stores a computer program, and the processor, when executing the computer program,
performs steps of the method according to any one of claims 1 to 14.
18. The device according to claim 17, comprising an upper cover and a main body;
wherein the main body has an accommodating cavity for aerosol-forming substrate; the
upper cover has an anti-dust cover; the anti-dust cover, when being closed, covers
an opening of the accommodating cavity completely; when the anti-dust cover is opened,
the accommodating cavity is communicated with outside, so that the aerosol-forming
substrate is placed into the accommodating cavity through the opening;
the main body further comprises a function button, a vibration sensor, a Hall sensor,
a charging interface, a battery and a control circuit, wherein the function button,
the vibration sensor, the Hall sensor, the charging interface and the battery are
all connected to the control circuit;
the anti-dust cover is provided with a first magnetic member that matches with the
Hall sensor, and output signals of the Hall sensor are different when the anti-dust
cover is opened and when the anti-dust cover is closed;
the control circuit detects an operation of opening the anti-dust cover and an operation
of closing the anti-dust cover according to the output signals of the Hall sensor;
and
the control circuit comprises a memory and a processor; the memory stores a computer
program;
the processor, when executing the computer program, performs steps of the method according
to any one of claims 1 to 15.
19. The device according to claim 18, wherein the vibration sensor is an acceleration
sensor.
20. A computer-readable storage medium, having a computer program stored thereon, wherein
the computer program, when executed by the computer processor, performs steps of the
method according to any one of claims 1 to 15.