An atomization device control method, device and computer readable storage medium
Patent Information
- Application Number
- CN202210240497.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2022-03-10
- Publication Date
- 2026-09-11
- Estimated Expiration
- 2042-03-10
AI Technical Summary
[0004]本发明实施例的主要目的在于提供一种雾化设备控制方法、装置及计算机可读存储介质,至少能够解决相关技术中所提供的电子雾化设备缺乏有效的雾化器干烧防控手段,所导致的气溶胶吸食口感较差的问题
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Figure CN116763014B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of electronic technology, and in particular to a method, apparatus, and computer-readable storage medium for controlling an atomizing device. Background Technology
[0002] As users become increasingly health-conscious, electronic atomization devices are gaining popularity. These devices use a heater in the atomization component to heat and atomize the liquid, forming an aerosol for users to inhale.
[0003] In practical applications, the heating temperature of the atomizer's heater is usually around 220°C when the atomizing liquid is sufficient. However, when the remaining atomizing liquid is reduced or exhausted, the heating temperature of the heater usually rises rapidly to over 300°C. If the atomizer continues to operate at this time, it will dry-burn, resulting in a burnt taste when inhaling the aerosol and the production of harmful substances. Summary of the Invention
[0004] The main objective of this invention is to provide a method, apparatus, and computer-readable storage medium for controlling atomizing devices, which can at least solve the problem of poor aerosol inhalation taste caused by the lack of effective means to prevent dry burning of atomizers in electronic atomizing devices provided in the related art.
[0005] To achieve the above objectives, a first aspect of the present invention provides a method for controlling an atomizing device, applied to an electronic atomizing device, the electronic atomizing device including an atomizer, the atomizer being provided with a heater, the method comprising: After the heater is activated, the actual operating parameters of the heater are detected in real time. When the actual working state parameters exceed the preset dry-burning state parameter threshold, calculate the working time from the current time to the start working time; If the working time is less than the time threshold, the heater will be controlled to enter the stop working state and a dry burning alarm will be output.
[0006] To achieve the above objectives, a second aspect of the present invention provides a control device for an atomizing device, applied to an electronic atomizing device, the electronic atomizing device including an atomizer, the atomizer being provided with a heater, the method comprising: The detection module is used to detect the actual operating status parameters of the heater in real time after the heater is triggered to operate. The calculation module is used to calculate the working time from the current moment to the start of working time when the actual working state parameters exceed the preset dry burning state parameter threshold. The control module is used to control the heater to enter a stop working state and output a dry burning alarm prompt if the working time is less than the time threshold.
[0007] To achieve the above objectives, a third aspect of the present invention provides an electronic device comprising: a processor, a memory, and a communication bus; The communication bus is used to enable communication between the processor and the memory; The processor is used to execute one or more programs stored in the memory to implement the steps of any of the above-described atomization device control methods.
[0008] To achieve the above objectives, a fourth aspect of the present invention provides a computer-readable storage medium storing one or more programs that can be executed by one or more processors to implement the steps of any of the above-described atomizing device control methods. According to the atomizing device control method, apparatus, and computer-readable storage medium provided in embodiments of the present invention, after the heater triggers the working state, the actual working state parameters of the heater are detected in real time; when the actual working state parameters exceed a preset dry-burning state parameter threshold, the working time from the current time to the start working time is calculated; if the working time is less than the time threshold, the heater is controlled to enter the stop working state while a dry-burning alarm is output. Through the implementation of this invention, by combining the heater's working state parameters and the total working time triggering the dry-burning state for anti-dry-burning control, the occurrence of dry-burning behavior of the atomizer can be avoided in a timely manner, and an effective prompt can be provided to the user, improving the user's vaping experience of electronic atomizing devices.
[0009] Other features and corresponding effects of the present invention will be described in the latter part of the specification, and it should be understood that at least some of the effects will become obvious from the description in the specification. Attached Figure Description
[0010] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of the present invention. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0011] Figure 1 This is a schematic diagram of the functional modules of the electronic atomization device control system provided in the first embodiment of the present invention; Figure 2 This is a basic flowchart of the atomization device control method provided in the first embodiment of the present invention; Figure 3This is a schematic diagram of the program module of the atomizing device control device provided in the second embodiment of the present invention; Figure 4 This is a schematic diagram of the structure of an electronic device provided in the third embodiment of the present invention. Detailed Implementation
[0012] To make the objectives, features, and advantages of this invention more apparent and understandable, the technical solutions of the embodiments of this invention will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of this invention, and not all of them. All other embodiments obtained by those skilled in the art based on the embodiments of this invention without creative effort are within the scope of protection of this invention.
[0013] First embodiment: like Figure 1 The diagram shows the functional modules of the electronic atomization device control system provided in this embodiment. The MCU control system (i.e., the processor) is the core module used to control the normal operation of the entire system, detect the battery power, detect and control the resistance of the heater (indirectly detect and control the temperature of the heater), and control the LED display, etc.
[0014] When the system receives a start command, the MCU control system detects the start signal and activates each circuit module, putting it into operation. When the user inhales the electronic atomizing device, the atomized liquid on the heater at the target temperature forms an aerosol that enters the user's mouth due to the airflow. At the same time, the MCU control system drives the LEDs to display corresponding information, monitors various key signals of the circuit, and maintains normal operation or shuts down to indicate abnormalities.
[0015] In actual operation, the MCU output control module applies electrical energy to the heater, causing it to heat up. Simultaneously, the heater resistance detection module monitors the heater's resistance in real time and transmits this information to the MCU control system. Based on temperature control principles and the pre-set relationship between the initial temperature and initial resistance, the MCU control system calculates the heater's real-time temperature.
[0016] The lithium battery protection module is used to protect the battery during charging and discharging. It monitors parameters such as charging current, voltage, and discharging current in real time to achieve over-discharge protection, overcurrent protection, short-circuit protection, and overcharge protection, thus providing safety protection and extending the battery's service life.
[0017] The charging management module is used to charge the battery when it is completely discharged to extend its lifespan.
[0018] LED display modules are used to display the status of the product, such as fully charged, empty, being inhaled, or abnormal status.
[0019] The heater resistance detection module monitors changes in the heater's resistance and feeds this information back to the MCU control system. The MCU control system calculates the heater's temperature based on a pre-set relationship between temperature and resistance. The detected resistance value can also be used to determine the heater's condition.
[0020] The MCU control system can heat the heater through the output module and indirectly control the temperature of the heater by controlling the output of the control output module.
[0021] To address the problem of poor aerosol inhalation taste caused by the lack of effective atomizer dry-burning control measures in related technologies, this embodiment proposes an atomization device control method applied to electronic atomization devices. The electronic atomization device includes an atomizer, and the atomizer is equipped with a heater. For example... Figure 2 The diagram shown is a basic flowchart of the atomizing device control method provided in this embodiment. The atomizing device control method proposed in this embodiment includes the following steps: Step 201: After the heater is activated, monitor the actual operating parameters of the heater in real time.
[0022] Specifically, in this embodiment, when the user's action of inhaling the electronic atomizing device is detected, the output control module controls the heater to enter the working state and start heating. At the same time, the actual working state parameters of the heater are detected by the detection module, such as the heater resistance detection module. It should be understood that the actual working state parameters in this embodiment may include the actual resistance value or the actual temperature.
[0023] In an optional embodiment of this example, before the aforementioned step of real-time detection of the actual operating status parameters of the heater, the method further includes: obtaining the atomizing liquid level of the electronic atomizing device; and comparing the atomizing liquid level with a preset level threshold. Accordingly, if the atomizing liquid level is lower than the preset level threshold, the aforementioned step of real-time detection of the actual operating status parameters of the heater is performed.
[0024] Specifically, in this embodiment, considering that in the user's scenario of using an electronic atomizing device, the heating element's single working time is usually no more than 10 seconds, and the amount of atomizing liquid consumed during this process is actually quite limited. Furthermore, when the initial atomizing liquid level in the electronic atomizing device is large, it is usually sufficient to meet the normal operating requirements of the atomizer, thus there is no need to implement atomizer dry-burn prevention measures. Therefore, before executing the basic method flow in this embodiment, a comparison and determination of the atomizing liquid level is performed. A low atomizing liquid level is used as the trigger condition for the basic method flow; that is, subsequent atomizer dry-burn prevention measures are only triggered when the atomizing liquid level is low and there is a risk of dry-burning, in order to avoid invalid data processing.
[0025] Step 202: When the actual working state parameters exceed the preset dry burning state parameter threshold, calculate the working time from the current time to the start working time.
[0026] Specifically, in this embodiment, timing begins simultaneously with the start-up of the heater. When the actual working parameters reach the dry-burning parameter threshold, timing stops, and the duration of continuous operation of the heater between the two time points is statistically obtained.
[0027] In one optional implementation of this embodiment, the aforementioned actual working state parameter is the actual resistance value, and the dry-burning state parameter threshold is the dry-burning resistance value. Correspondingly, before the aforementioned step of calculating the working time from the current moment to the start working moment, the method further includes: calculating the dry-burning resistance value based on the preset atomizer dry-burning temperature, the initial resistance value of the heater, and the temperature coefficient of resistance.
[0028] Specifically, in this embodiment, the atomizer dry-burning temperature is the critical temperature of the heater when dry-burning occurs, and the dry-burning resistance is the corresponding resistance value of the heater when it reaches the critical dry-burning temperature. This embodiment can detect the initial resistance of the heater after the atomizer is inserted, and then calculate and record the dry-burning resistance based on the initial resistance, the atomizer dry-burning temperature, and the temperature coefficient of resistance (TCR), using this as a comparative indicator to determine whether the atomizer has engaged in dry-burning. In practical applications, the atomizer dry-burning temperature is preferably set to 300℃, and the temperature coefficient of resistance is preferably set to 0.001 / ℃.
[0029] In addition, it should be noted that in practical applications, a dry-burning resistance index table can be pre-configured, which stores the mapping relationship between temperature and resistance. The dry-burning resistance index table can be queried according to the actual dry-burning temperature of the atomizer, and the resistance value obtained is the dry-burning resistance value.
[0030] Further, in an optional embodiment of this example, the step of calculating the dry-burning resistance value based on the preset atomizer dry-burning temperature, the initial resistance value of the heater, and the temperature coefficient of resistance includes: inputting the preset atomizer dry-burning temperature, the initial resistance value of the heater, and the temperature coefficient of resistance into a preset resistance calculation formula to calculate the dry-burning resistance value; the resistance calculation formula is expressed as: R n =(T n -T x )*R0* TCR + R0; where, T n T represents the dry-burning temperature of the atomizer. x Indicates ambient temperature, TCR represents the temperature coefficient of resistance, R0 represents the initial resistance of the heater, and R n This indicates the resistance value during dry burning.
[0031] It should be noted that the temperature coefficient of resistance refers to the rate of change of resistance when the temperature of the heater increases by 1 degree. The temperature coefficient of resistance varies for heaters made of different materials, and the ambient temperature can generally be taken as 25℃.
[0032] Step 203: If the working time is less than the time threshold, the heater will be controlled to enter the stop working state and a dry burning alarm will be output.
[0033] Specifically, in practical applications, if the atomizer reaches the dry-burning condition within a short time, it indicates that the e-liquid in the electronic atomizing device is low, and the dry-burning condition is reached in a short period of time. At this point, dry-burning is confirmed, and the heater output is shut off to stop heating. A dry-burning alarm is also output to remind the user that the electronic atomizing device can no longer continue operating and that e-liquid needs to be replenished promptly. It should be understood that the notification method in this embodiment may include sound, light, vibration, etc.
[0034] In an optional embodiment of this example, before the step of real-time detection of the actual working status parameters of the heater, the method further includes: obtaining the atomizing liquid storage capacity of the electronic atomizing device and obtaining the default atomization rate of the electronic atomizing device; and calculating a duration threshold based on the atomizing liquid storage capacity and the default atomization rate.
[0035] Specifically, in practical applications, the duration threshold can be a fixed value, such as 1000ms. However, considering that the liquid storage level of different electronic atomizing devices varies, or that the liquid storage level of electronic atomizing devices varies under different usage conditions, this embodiment determines the duration threshold based on the real-time liquid level and atomization rate (i.e., the power level of the heater) of the electronic atomizing device. This ensures the referenceability of the duration threshold used for determining dry burning conditions and improves the accuracy of the determination results.
[0036] In an optional implementation of this embodiment, after the step of calculating the working time from the current time to the start working time, the method further includes: if the working time is higher than the time threshold, then only control the heater to enter the stop working state; or, if the working time is higher than the time threshold, then control the heater to enter the stop working state while outputting a dry burning warning prompt.
[0037] Specifically, in practical applications, if the atomizer operates for a relatively long time to reach the dry-burning condition, it indicates that the e-liquid reserve in the electronic atomizing device still has some remaining. Reaching the dry-burning condition may be a "pseudo-dry-burning" caused by the e-liquid being consumed to a low level, resulting in insufficient e-liquid conduction or supply. In this case, the electronic atomizing device actually still has a small amount of e-liquid remaining, which can support continued vaping for a period of time. If a dry-burning alarm is issued directly, it would be a false alarm, resulting in a poor user experience. Therefore, in this embodiment, when it is determined that the atomizer operates for a relatively long time to reach the dry-burning condition, the heater output can be turned off instead of triggering a dry-burning alarm. It should be understood that this embodiment considers the low remaining e-liquid reserve in this scenario; turning off the output allows the remaining e-liquid to be fully conducted and effectively heated by the heater. It should also be noted that the dry-burning warning in this embodiment can use a different notification format than the dry-burning alarm, so that users are aware of different operating states of the electronic atomizing device, improving the user experience.
[0038] Furthermore, in an optional embodiment of this example, after the step of controlling the heater to enter the stopped working state, the method further includes: starting a timer from the beginning of the stopped working state, and outputting a prompt that the device can be resumed when the preset timer duration is reached.
[0039] Specifically, in this embodiment, after the output of the heater is turned off in the aforementioned "pseudo-dry burning" scenario, it is usually necessary to allow the remaining small amount of atomized liquid to be fully conducted before it can continue heating. If the user immediately resumes inhalation after turning off the output, triggering the heater to start working, actual dry burning may occur, resulting in a poor user inhalation experience. Therefore, this embodiment can pre-set a standard stop working time, which starts timing from when the heater output is turned off. When the standard stop working time is reached, it indicates that the atomized liquid has been fully conducted and supports effective atomization, thereby outputting a prompt that the device can be resumed to remind the user to continue using the electronic atomization device.
[0040] According to the atomizing device control method provided in this embodiment of the invention, after the heater is triggered to work, the actual working status parameters of the heater are detected in real time. When the actual working status parameters exceed a preset dry-burning state parameter threshold, the working time from the current time to the start time is calculated. If the working time is less than the time threshold, the heater is controlled to enter a stop working state while a dry-burning alarm is output. By implementing this invention, combining the heater's working status parameters and the total working time triggered by the dry-burning state for anti-dry-burning control, the occurrence of dry-burning behavior of the atomizer can be avoided in a timely manner, and an effective prompt can be provided to the user, improving the user's vaping experience of electronic atomizing devices.
[0041] Second embodiment: To address the problem of poor aerosol inhalation taste caused by the lack of effective atomizer dry-burning prevention measures in related electronic atomization devices, this embodiment illustrates an atomization device control device. The electronic atomization device includes an atomizer, which is equipped with a heater. For details, please refer to [link to relevant documentation]. Figure 3 The atomization device control device in this embodiment includes: The detection module 301 is used to detect the actual working status parameters of the heater in real time after the heater is triggered to work. The calculation module 302 is used to calculate the working time from the current moment to the start of working time when the actual working state parameters exceed the preset dry burning state parameter threshold. The control module 303 is used to control the heater to enter the stop working state and output a dry burning alarm prompt if the working time is less than the time threshold.
[0042] In some embodiments of this example, the calculation module is also used to: obtain the amount of atomizing liquid in the electronic atomizing device and obtain the default atomization rate of the electronic atomizing device; and calculate a duration threshold based on the amount of atomizing liquid and the default atomization rate.
[0043] In some embodiments of this example, the atomizing device control device further includes: a comparison module, used to obtain the atomizing liquid storage level of the electronic atomizing device; and compare the atomizing liquid storage level with a preset storage threshold. Correspondingly, the detection module is specifically used to: after the heater triggers the working state, if the atomizing liquid storage level is lower than the preset storage threshold, detect the actual working state parameters of the heater in real time.
[0044] In some implementations of this embodiment, the actual operating state parameter is the actual resistance value, and the dry-burning state parameter threshold is the dry-burning resistance value. Accordingly, the calculation module is also used to: calculate the dry-burning resistance value based on the preset atomizer dry-burning temperature, the initial resistance value of the heater, and the temperature coefficient of resistance.
[0045] Furthermore, in some embodiments of this example, the calculation module is specifically used to: input the preset atomizer dry-burning temperature, the initial resistance value of the heater, and the temperature coefficient of resistance into the preset resistance calculation formula, and calculate the dry-burning resistance value; the resistance calculation formula is expressed as: R n =(T n -T x )*R0* TCR + R0; where, T n T represents the dry-burning temperature of the atomizer. x Indicates ambient temperature, TCR represents the temperature coefficient of resistance, R0 represents the initial resistance of the heater, and R n This indicates the resistance value during dry burning.
[0046] In some embodiments of this example, the control module is also used to: if the working time is higher than the time threshold, control the heater to enter the stop working state; or, if the working time is higher than the time threshold, control the heater to enter the stop working state while outputting a dry burning warning prompt.
[0047] Furthermore, in some embodiments of this example, the control module is also used to: start timing from the beginning of the stopped working state, and output a prompt that the device can be resumed when the preset timing duration is reached.
[0048] It should be noted that the atomizing device control methods in the foregoing embodiments can all be implemented based on the atomizing device control device provided in this embodiment. Those skilled in the art can clearly understand that, for the sake of convenience and brevity, the specific working process of the atomizing device control device described in this embodiment can be referred to the corresponding process in the foregoing method embodiments, and will not be repeated here.
[0049] The atomizing device control device provided in this embodiment detects the actual operating status parameters of the heater in real time after the heater is triggered to operate. When the actual operating status parameters exceed a preset dry-burning state parameter threshold, the operating time from the current moment to the start of operation is calculated. If the operating time is less than the time threshold, the heater is controlled to enter a stop-operation state while a dry-burning alarm is output. By implementing this invention, combining the heater's operating status parameters with the total operating time of triggering the dry-burning state for anti-dry-burning control, the occurrence of dry-burning behavior of the atomizer can be avoided in a timely manner, and an effective prompt can be provided to the user, improving the user's vaping experience of electronic atomizing devices.
[0050] Third embodiment: This embodiment provides an electronic device, see [link / reference] Figure 4 As shown, it includes a processor 401, a memory 402, and a communication bus 403, wherein: the communication bus 403 is used to realize the connection and communication between the processor 401 and the memory 402; the processor 401 is used to execute one or more computer programs stored in the memory 402 to implement at least one step in the atomizing device control method in the above embodiment 1.
[0051] This embodiment also provides a computer-readable storage medium, which includes volatile or non-volatile, removable or non-removable media implemented in any method or technology for storing information (such as computer-readable instructions, data structures, computer program modules or other data). Computer-readable storage media include, but are not limited to, RAM (Random Access Memory), ROM (Read-Only Memory), EEPROM (Electrically Erasable Programmable Read-Only Memory), flash memory or other memory technologies, CD-ROM (Compact Disc Read-Only Memory), DVD or other optical disc storage, magnetic cartridges, magnetic tapes, disk storage or other magnetic storage devices, or any other medium that can be used to store desired information and is accessible by a computer.
[0052] The computer-readable storage medium in this embodiment can be used to store one or more computer programs, which can be executed by a processor to implement at least one step of the method in Embodiment 1 above.
[0053] This embodiment also provides a computer program that can be distributed on a computer-readable medium and executed by a computing device to implement at least one step of the method in Embodiment 1 above; and in some cases, at least one step shown or described may be executed in a different order than that described in the above embodiments.
[0054] This embodiment also provides a computer program product, including a computer-readable device on which the computer program as shown above is stored. In this embodiment, the computer-readable device may include the computer-readable storage medium as shown above.
[0055] Therefore, those skilled in the art should understand that all or some of the steps, systems, and apparatuses disclosed above, as well as the functional modules / units, can be implemented as software (which can be implemented using computer program code executable by a computing device), firmware, hardware, and suitable combinations thereof. In hardware implementations, the division between functional modules / units mentioned in the above description does not necessarily correspond to the division of physical components; for example, a physical component may have multiple functions, or a function or step may be performed collaboratively by several physical components. Some or all physical components may be implemented as software executed by a processor, such as a central processing unit, a digital signal processor, or a microprocessor, or as hardware, or as integrated circuits, such as application-specific integrated circuits (ASICs).
[0056] Furthermore, as is known to those skilled in the art, communication media typically contain computer-readable instructions, data structures, computer program modules, or other data in modulated data signals such as carrier waves or other transmission mechanisms, and may include any information delivery medium. Therefore, this invention is not limited to any particular combination of hardware and software.
[0057] The above description, in conjunction with specific implementation methods, provides a further detailed explanation of the embodiments of the present invention. It should not be construed that the specific implementation of the present invention is limited to these descriptions. For those skilled in the art, various simple deductions or substitutions can be made without departing from the concept of the present invention, and all such modifications and substitutions should be considered within the scope of protection of the present invention.
Claims
1. An atomization device control method applied to an electronic atomization device, the electronic atomization device comprising an atomizer provided with a heating device, characterized in that, include: Obtain the atomizing liquid storage capacity of the electronic atomizing device, and obtain the default atomization rate of the electronic atomizing device; The duration threshold is calculated based on the atomizing fluid storage and the default atomization rate. After the heater is activated, the amount of atomizing liquid is compared with a preset storage threshold. If the atomizing liquid level is lower than the preset level threshold, the actual operating status parameters of the heater are detected in real time; wherein, the actual operating status parameters are the actual resistance values. When the actual working state parameters exceed the preset dry-burning state parameter threshold, the working time from the current time to the start working time is calculated; wherein, the dry-burning state parameter threshold is the dry-burning resistance value; If the working time is less than the time threshold, the heater will be controlled to enter a stop working state and a dry burning alarm will be output.
2. The atomization apparatus control method according to claim 1, wherein Before the step of calculating the working time from the current time to the start time, the method further includes: The dry-burning resistance is calculated based on the preset atomizer dry-burning temperature, the initial resistance of the heater, and the temperature coefficient of resistance.
3. The atomizing device control method as described in claim 2, characterized in that, The step of calculating the dry-burning resistance based on the preset atomizer dry-burning temperature, the initial resistance of the heater, and the temperature coefficient of resistance includes: Input the preset dry-burning temperature of the atomizer, the initial resistance of the heater, and the temperature coefficient of resistance into the preset resistance calculation formula to calculate the dry-burning resistance. The resistance calculation formula is expressed as: Rn=(Tn-Tx)*R0* TCR + R0; Wherein, Tn represents the dry-burning temperature of the atomizer, Tx represents the ambient temperature, TCR represents the temperature coefficient of resistance, R0 represents the initial resistance of the heater, and Rn represents the dry-burning resistance.
4. The atomizing device control method according to any one of claims 1 to 3, characterized in that, After the step of calculating the working time from the current time to the start time, the method further includes: If the working time exceeds the time threshold, then only the heater is controlled to enter the stop working state; Alternatively, if the working time exceeds a time threshold, the heater will be controlled to enter a stop working state while a dry burning warning will be output.
5. The atomizing device control method as described in claim 4, characterized in that, After the step of controlling the heater to enter the stop working state, the method further includes: The timer starts from the beginning of the stopped working state and outputs a prompt that the device can be resumed when the preset timer expires.
6. A control device for an atomizing device, applied to an electronic atomizing device, the electronic atomizing device comprising an atomizer, the atomizer being provided with a heater, characterized in that, include: The calculation module is used to obtain the amount of atomizing liquid in the electronic atomizing device and the default atomization rate of the electronic atomizing device; The duration threshold is calculated based on the atomizing fluid storage and the default atomization rate. The comparison module is used to compare the amount of atomizing liquid with a preset amount threshold after the heater is activated. The detection module is used to detect the actual operating status parameters of the heater in real time if the atomizing liquid level is lower than the preset level threshold; wherein, the actual operating status parameter is the actual resistance value. The calculation module is also used to calculate the working time from the current moment to the start of working time when the actual working state parameters exceed the preset dry burning state parameter threshold. The control module is used to control the heater to enter a stop working state and output a dry burning alarm prompt if the working time is less than the time threshold.
7. An electronic device, characterized in that, include: Processor, memory, and communication bus; The communication bus is used to enable communication between the processor and the memory; The processor is used to execute one or more programs stored in the memory to implement the steps of the atomizing device control method as described in any one of claims 1 to 5.
8. A computer-readable storage medium, characterized in that, The computer-readable storage medium stores one or more programs, which can be executed by one or more processors to implement the steps of the atomizing device control method as described in any one of claims 1 to 5.
Citation Information
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