Atomization device and control method therefor, and computer-readable storage medium
By setting two start-up thresholds in the atomization device, the problem of self-starting caused by short-term negative pressure during production and transportation is solved, ensuring the reliability and consistent taste of the device in different scenarios.
Patent Information
- Application Number
- PCT/CN2024/144420
- Authority / Receiving Office
- WO · WO
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2024-07-24
- Filing Date
- 2024-12-31
- Publication Date
- 2026-01-29
AI Technical Summary
During the production and transportation of atomizing equipment, the cotton wick may burn due to short-term negative pressure self-starting.
Two different startup thresholds (first startup threshold and second startup threshold) are set, and different startup thresholds are used as working thresholds in different states to adapt to the sensitivity requirements of different scenarios and prevent short-term negative pressure from triggering self-starting.
This effectively prevents the atomizing equipment from starting on its own during production and transportation, protects the cotton core from damage, and ensures product reliability and consistent taste during use.
Smart Images

Figure CN2024144420_29012026_PF_FP_ABST
Abstract
Description
Atomization device, control method thereof, and computer readable storage medium TECHNICAL FIELD
[0001] The present application relates to the technical field of electronic atomization, and in particular to an atomization device, a control method thereof, and a computer readable storage medium. BACKGROUND
[0002] The atomization device generally senses airflow changes through a microphone, and a controller determines whether to supply power to an atomization assembly according to a response signal of the microphone. For example, when a user performs a puffing action using the atomization device, a negative pressure environment is formed inside the atomization device, and when the intensity of the negative pressure meets a preset condition, the controller controls a power supply assembly to supply power to the atomization assembly to heat and atomize a medium.
[0003] The atomization device may be self-started during production, transportation, and the like, and the mouthpiece and the air inlet are generally open. The microphone may respond to short-term negative pressure caused by non-puffing actions, causing the atomization device to be self-started, and thus causing the cotton core to be burnt. SUMMARY
[0004] The present application aims to solve the technical problem that the atomization device may be self-started during production, transportation, and the like. Therefore, the present application provides an atomization device, a control method thereof, and a computer readable storage medium, which can avoid self-starting of the atomization device during production, transportation, and the like.
[0005] In a first aspect, the present application provides an atomization device control method, comprising:
[0006] obtaining a first start threshold value, setting the first start threshold value as a working threshold value of the atomization device, and determining whether a puffing action occurs and performing a corresponding response according to the first start threshold value;
[0007] if the atomization device meets a preset condition, switching the working threshold value to a second start threshold value, and determining whether a puffing action occurs and performing a corresponding response according to the second start threshold value;
[0008] wherein the first start threshold value and the second start threshold value are different.
[0009] Further, the preset condition at least includes one of a start duration condition, a trigger condition, a puffing frequency condition, and a puffing intensity condition.
[0010] Further, when the atomization device meets the preset condition, the working threshold value is switched to the second start threshold value, comprising:
[0011] when the first start threshold value is set as the working threshold value, timing the atomization device;
[0012] running with the first starting threshold until a first preset time length, setting the second starting threshold as a working threshold of the atomization device.
[0013] Further, when the atomization device meets a preset condition, switching the working threshold to a second starting threshold, comprising:
[0014] If the actual puffing strength reaches a preset threshold, switching the working threshold to a second starting threshold.
[0015] Further, the step of judging whether a puffing action occurs according to the second starting threshold and performing a corresponding response, comprising:
[0016] periodically detecting the airflow change in the atomization device, and judging whether a puffing action occurs according to the second starting threshold;
[0017] If it is judged that a puffing action occurs, switching the working threshold to a first starting threshold.
[0018] If it is judged that a puffing action does not occur, performing a corresponding response according to the cumulative time length of the atomization device.
[0019] When the first starting threshold device is set as the working threshold, the step of starting to time the atomization device.
[0020] Further, if it is judged that a puffing action does not occur, performing a corresponding response according to the cumulative time length of the atomization device, comprising:
[0021] If the cumulative time length of the atomization device does not reach a second preset time length, setting the atomization device to a sleep mode.
[0022] If the cumulative time length of the atomization device reaches the second preset time length, switching the working threshold to a third starting threshold, periodically detecting the airflow change in the atomization device, and judging whether a puffing action occurs according to the third starting threshold.
[0023] Further, the step of judging whether a puffing action occurs according to the third starting threshold, further comprising:
[0024] If it is judged that a puffing action occurs, switching the working threshold to a first starting threshold.
[0025] Further, the second starting threshold is greater than the third starting threshold, and the third starting threshold is greater than the first starting threshold.
[0026] In a second aspect, the present application provides an atomization device, comprising a processor and a memory for storing a computer program, wherein the processor implements the steps of the atomization device control method of any one of the above when executing the computer program.
[0027] In a third aspect, the present application provides a computer readable storage medium storing a computer program, which, when executed by a processor, implements the steps of the atomization device control method of any one of the above aspects.
[0028] By the technical solution of the present application, because two different starting thresholds (the first starting threshold and the second starting threshold) are provided, different starting thresholds can be used as working thresholds in different states (satisfying the preset condition or not satisfying the preset condition) to adapt to different sensitivity requirements in different scenarios. It can be understood that, in the production and transportation process of the atomization device, a larger starting threshold is selected as the working threshold to make the short-term negative pressure generated in the production and transportation process not satisfy the starting condition, effectively solve the self-starting problem caused by the short-term negative pressure in the production and transportation process, avoid dry burning, protect the cotton core from being damaged, and thus ensure the product reliability of the atomization device in the production, transportation and use processes, and the taste consistency in the use process. BRIEF DESCRIPTION OF DRAWINGS
[0029] In order to more clearly illustrate the embodiments of the present application, the drawings needed in the embodiment description will be briefly introduced. Obviously, the drawings in the following description are only some embodiments of the present application, and other drawings can be obtained by those skilled in the art without creative labor. In the drawings:
[0030] FIG. 1 is a flowchart of an embodiment of the atomization device control method provided by an aspect of the present application;
[0031] FIG. 2 is a partial flowchart of an embodiment of step S20 in the atomization device control method provided by an aspect of the present application;
[0032] FIG. 3 is a partial flowchart of an embodiment of step S20 in the atomization device control method provided by an aspect of the present application;
[0033] FIG. 4 is a flowchart of an embodiment of the atomization device control method provided by an aspect of the present application;
[0034] FIG. 5 is a logic structure diagram of an embodiment of the atomization device provided by a second aspect of the present application. DETAILED DESCRIPTION
[0035] The technical solutions in the embodiments of the present application will be described in detail below with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are only some of the embodiments of the present application, not all. Based on the embodiments in the present application, all other embodiments obtained by those skilled in the art without creative labor are within the scope of protection of the present application.
[0036] The atomization device and the control method thereof, and the computer readable storage medium provided by the present application will be further described below with reference to the accompanying drawings of the specification.
[0037] Please refer to FIG. 1, the atomization device control method provided by the embodiment includes:
[0038] In step S10, a first starting threshold is obtained, the first starting threshold is set as a working threshold of the atomization device, and whether a puffing action occurs is judged according to the first starting threshold and a corresponding response is performed;
[0039] In step S20, if the atomization device meets a preset condition, the working threshold is switched to a second starting threshold, and whether a puffing action occurs is judged according to the second starting threshold and a corresponding response is performed;
[0040] The first starting threshold and the second starting threshold are different.
[0041] According to the technical solution of the embodiment, the first starting threshold is used as the working threshold, and whether a puffing action occurs is judged according to the first starting threshold. At the same time, whether the atomization device meets a preset condition is judged. When the preset condition is met, the working threshold is switched to the second starting threshold, and whether a puffing action occurs is judged according to the second starting threshold.
[0042] In the embodiment, two different starting thresholds (the first starting threshold and the second starting threshold) are provided, and different starting thresholds are used as the working threshold in different states (meeting the preset condition or not meeting the preset condition) to adapt to different sensitivity requirements in different scenarios. It can be understood that, in the process of producing and transporting the atomization device, a larger starting threshold is selected as the working threshold, so that the short-term negative pressure generated in the production and transportation process cannot meet the starting condition, effectively solving the self-starting problem caused by the short-term negative pressure in the production and transportation process, avoiding dry burning, protecting the cotton core from damage, and thus ensuring the reliability of the product in the production, transportation and use processes of the atomization device, and the consistency of the taste in the use process.
[0043] Further, in an optional embodiment, the preset condition in step S20 includes at least one of a starting duration condition, a trigger condition, a puffing frequency condition, and a puffing intensity condition.
[0044] In some embodiments, the preset condition is the starting duration condition. In the embodiment, the activation process of the atomization device can be divided into two stages (a first stage and a second stage) according to actual requirements by setting the starting duration, wherein the first stage corresponds to the first starting threshold, and the duration of the first stage is fixed and is the preset starting duration; the second stage corresponds to the second starting threshold.
[0045] For example, the first stage can be adapted to the testing scene of the atomization device, the product test can be performed by the tester in the first stage, and the starting duration can be set to 65 seconds; the second stage can be adapted to the production scene of the atomization device, and the product assembly can be performed by the production personnel in the second stage. When the atomization device is started, the first starting threshold value is set as the working threshold value, the first stage is entered, and the timing is started. In the first stage, whether the suction action occurs is judged according to the first starting threshold value, and the corresponding response is performed to perform the product test.
[0046] At the same time, whether the atomization device meets the starting duration condition is judged by judging whether the timing time reaches the preset starting duration. When the starting duration condition is met, the working threshold value is switched to the second starting threshold value, and the second stage is entered. In the second stage, whether the suction action occurs is judged according to the second starting threshold value, and the corresponding response is performed. Since the second starting threshold value is set according to the short-time negative pressure range that may exist in the assembly process (that is, the second starting threshold value is higher than the maximum value of the short-time negative pressure that may exist), when the short-time negative pressure is generated in the assembly process, the atomization device still does not generate the self-starting behavior.
[0047] In some embodiments, the preset condition is a trigger condition, for example, a physical button or a virtual button, a pressure sensor, a three-dimensional inertial sensor, etc. can be set on the atomization device for the user to input the trigger signal.
[0048] In this embodiment, the first starting threshold value is set as the working threshold value, and the first stage is entered. In the first stage, whether the suction action occurs is judged according to the first starting threshold value, and the corresponding response is performed to perform the product test. At the same time, whether the atomization device meets the trigger condition is judged by judging whether the trigger signal is received. For example, when the product test is completed, the tester can trigger the physical button or the virtual button on the atomization device, so that the atomization device receives the trigger signal, or the tester presses the pressure sensor with a corresponding force, so that the atomization device receives the trigger signal, or the tester changes the posture / displacement / speed of the atomization device, so that the atomization device determines that the trigger signal is received according to the change information of the posture / displacement / speed detected by the three-dimensional inertial sensor. When the trigger condition is met, the working threshold value is switched to the second starting threshold value, and the second stage is entered. In the second stage, whether the suction action occurs is judged according to the second starting threshold value, and the corresponding response is performed. Since the second starting threshold value is set according to the short-time negative pressure range that may exist in the assembly process, when the short-time negative pressure is generated in the assembly process, the atomization device still does not generate the self-starting behavior.
[0049] In some embodiments, the preset condition is a puffing frequency condition, for example, the puffing frequency can be preset as 3 puffs within 2 seconds. In this embodiment, the first starting threshold is set as the working threshold, and the first stage is entered. In the first stage, whether the puffing action occurs is judged according to the first starting threshold, and the corresponding response is performed to perform product testing. At the same time, whether the atomization equipment meets the puffing frequency condition is judged by judging whether the actual puffing frequency is consistent with the set puffing frequency. For example, when the product testing is completed, the tester or the puffing machine can puff the atomization equipment at the set puffing frequency, and after the atomization equipment detects the actual puffing frequency, it can be determined that the actual puffing frequency is consistent with the set puffing frequency, and then it is determined that the puffing frequency condition is met. When the puffing frequency condition is met, the working threshold is switched to the second starting threshold, and the second stage is entered. In the second stage, whether the puffing action occurs is judged according to the second starting threshold, and the corresponding response is performed. Since the second starting threshold is set according to the short-term negative pressure range that may exist in the assembly process, when the short-term negative pressure is generated in the assembly process, the atomization equipment will not generate the self-starting behavior.
[0050] In some embodiments, the preset condition is a puffing intensity condition, for example, the preset threshold corresponding to the puffing intensity can be set in advance, and the preset threshold can be greater than or equal to the first starting threshold, for example, the sensitivity limit value. In this embodiment, the first starting threshold is set as the working threshold, and the first stage is entered. In the first stage, whether the puffing action occurs is judged according to the first starting threshold, and the corresponding response is performed to perform product testing. At the same time, whether the atomization equipment meets the puffing intensity condition is judged by judging whether the actual puffing intensity reaches the preset threshold. For example, when the product testing is completed, the tester or the puffing machine puffs the atomization equipment at the corresponding intensity, and after the atomization equipment detects the puffing intensity, it can be determined that the actual puffing intensity reaches the preset threshold, and then it is determined that the puffing intensity condition is met. When the puffing intensity condition is met, the working threshold is switched to the second starting threshold, and the second stage is entered. In the second stage, whether the puffing action occurs is judged according to the second starting threshold, and the corresponding response is performed. Since the second starting threshold is set according to the short-term negative pressure range that may exist in the assembly process, when the short-term negative pressure is generated in the assembly process, the atomization equipment will not generate the self-starting behavior.
[0051] It should be noted that although the above embodiments are described by taking one of the start-up duration condition, the trigger condition, the puffing frequency condition, and the puffing intensity condition as an example to illustrate the switching process of the working threshold of the atomization device, it should be understood that in some other embodiments, the switching of the working threshold can be performed according to two or more preset conditions at the same time. For example, in some embodiments, the preset conditions include the start-up duration condition and the trigger condition, and when it is determined whether the atomization device meets the preset conditions, it is simultaneously determined whether the timing time reaches the start-up duration condition and whether the trigger signal is received. Only when both of the two preset conditions are met, the working threshold is switched from the first start-up threshold to the second start-up threshold.
[0052] Further, in some optional embodiments, as shown in FIG. 2, when the atomization device meets the preset condition, the switching of the working threshold to the second start-up threshold in step S20 includes:
[0053] In step S211, when the first start-up threshold is set as the working threshold, the atomization device is timed.
[0054] In step S212, the atomization device is operated at the first start-up threshold until the first preset duration, and the second start-up threshold is set as the working threshold of the atomization device.
[0055] In the present embodiment, when the atomization device is initially powered on, the first start-up threshold is set as the working threshold, and the timer is started to start timing. When the timing time does not reach the first preset duration, it is determined whether the puffing action occurs according to the first start-up threshold as the working threshold. When the timing time reaches the first preset duration, the second start-up threshold is set as the working threshold of the atomization device, and it is determined whether the puffing action occurs according to the second start-up threshold. In a specific application, during the period when the timing time does not reach the first preset duration, the product test of the atomization device can be performed by the test personnel. The first preset duration can be pre-set to 65 seconds according to the actual product test requirement, and the first start-up threshold can be pre-set according to the actual product test requirement, for example, set as the start-up threshold corresponding to the normal use of the atomization device. After the timing time reaches the first preset duration, the product assembly of the atomization device can be performed by the production personnel. The second start-up threshold can be pre-set according to the short-term negative pressure range that may exist in the assembly process, so as to prevent the self-starting caused by the short-term negative pressure. Therefore, when the short-term negative pressure is generated in the actual assembly process, the atomization device still does not generate the self-starting behavior.
[0056] Further, in some optional embodiments, when the atomization device meets the preset condition, the switching of the working threshold to the second start-up threshold in step S20 includes:
[0057] If the actual puffing intensity reaches the preset threshold, the working threshold is switched to the second start-up threshold.
[0058] In the embodiment, the first starting threshold is set as the working threshold, and whether the puffing action occurs is determined according to the first starting threshold. At the same time, whether the actual puffing strength reaches the preset threshold is also determined, and if so, the working threshold is switched to the second starting threshold, and whether the puffing action occurs is determined according to the second starting threshold.
[0059] In a specific application, after the atomization device is initially powered on, the tester can perform product testing on the atomization device, and the first starting threshold can be pre-set according to the actual product testing requirements, for example, set as the starting threshold corresponding to the normal use of the atomization device. When the testing is completed, the tester or the puffing machine can perform puffing on the atomization device with a corresponding strength, and after the atomization device detects the actual puffing strength, it can be determined that the actual puffing strength reaches the preset threshold, and the working threshold is switched to the second starting threshold. Then, the production personnel can perform product assembly on the atomization device, and in the assembly process, the atomization device determines whether the puffing action occurs with the second starting threshold as the working threshold, and the second starting threshold is pre-set according to the possible short-term negative pressure range in the assembly process. When a short-term negative pressure occurs in the assembly process, the atomization device will not still generate a self-starting behavior.
[0060] Further, in some optional embodiments, as shown in FIG. 3, in step S20, determining whether the puffing action occurs according to the second starting threshold and performing a corresponding response, comprising:
[0061] Step S221, periodically detecting the airflow change in the atomization device, determining whether the puffing action occurs according to the second starting threshold, if so, performing step S222; if not, performing step S223;
[0062] Step S222, switching the working threshold to the first starting threshold;
[0063] Step S223, performing a corresponding response according to the cumulative duration of the atomization device; wherein when the first starting threshold device is set as the working threshold, the atomization device starts to be timed.
[0064] In the embodiment, the atomization device is provided with an airflow sensor (microphone) to periodically detect the airflow. When the atomization device determines whether a puffing action occurs according to the second starting threshold, it should be noted that the second starting threshold is set according to the short-term negative pressure range that may exist in the product assembly process in advance. Therefore, in the actual assembly process of the product, if a short-term negative pressure (the maximum intensity value of the short-term negative pressure is less than the second starting threshold) occurs, the airflow sensor will not respond to the short-term negative pressure, and the atomization device will not start automatically. If the airflow sensor responds, it means that an actual puffing action occurs and the negative pressure intensity value caused by the actual puffing action exceeds the second starting threshold, for example, a tester performs an inspection on the atomization device by a puffing action meeting the preset intensity.
[0065] Further, in some optional embodiments, the corresponding response according to the cumulative duration of the atomization device includes:
[0066] If the cumulative duration of the atomization device does not reach the second preset duration, the atomization device is set to a sleep mode.
[0067] If the cumulative duration of the atomization device reaches the second preset duration, the working threshold is switched to a third starting threshold, the airflow change in the atomization device is periodically detected, and whether a puffing action occurs is determined according to the third starting threshold.
[0068] In the embodiment, the activation process of the atomization device can be divided into three stages: a first stage, a second stage, and a third stage according to actual needs in advance, wherein the first stage corresponds to the first starting threshold, the second stage corresponds to the second starting threshold, and the third stage corresponds to the third starting threshold. The total duration of the first stage and the second stage is a fixed value (the second preset duration), for example, 24 hours and 65 seconds. For example, the first stage can be adapted to the production test scene of the atomization device, and a tester can perform product testing in the first stage; the second stage can be adapted to the production scene of the atomization device, and a production personnel can perform product assembly in the second stage.
[0069] The second starting threshold is set in advance according to a range of short-term negative pressure that may exist in the assembly process to prevent self-starting caused by short-term negative pressure in the production process. The third stage can be adapted to a transportation scenario of the atomization device to transport the atomization device to a user. The third starting threshold is set in advance according to a range of short-term negative pressure that may exist in the transportation process to prevent self-starting caused by short-term negative pressure in the transportation process. After the atomization device is started, the first starting threshold is set as the working threshold, and timing is started, and the first stage is entered. In the first stage, it is determined whether the suction action occurs according to the first starting threshold and a corresponding response is performed to perform product testing. At the same time, it is determined whether the atomization device meets the preset condition. When the preset condition is met, the working threshold is switched to the second starting threshold, and the second stage is entered. In the second stage, it is determined whether the suction action occurs according to the second starting threshold and a corresponding response is performed. Since the second starting threshold is set according to a range of short-term negative pressure that may exist in the assembly process, when short-term negative pressure occurs in the assembly process, the atomization device still does not have a self-starting behavior. In the third stage, it is determined whether the suction action occurs according to the third starting threshold and a corresponding response is performed. Since the third starting threshold is set according to a range of short-term negative pressure that may exist in the transportation process, when short-term negative pressure occurs in the transportation process, the atomization device still does not have a self-starting behavior.
[0070] Further, in some optional embodiments, determining whether the suction action occurs according to the third starting threshold further includes: if it is determined that the suction action occurs, switching the working threshold to the first starting threshold. In this embodiment, when the atomization device determines whether the suction action occurs according to the third starting threshold, it should be noted that, since the third starting threshold is set in advance according to a range of short-term negative pressure that may exist in the product transportation process, when short-term negative pressure occurs in the actual transportation process of the product, the airflow sensor does not respond to the short-term negative pressure, and the atomization device does not self-start. If the airflow sensor responds, it indicates that an actual suction action occurs, for example, the user has started to use the atomization device.
[0071] Further, in some optional embodiments, the second activation threshold is greater than the third activation threshold, and the third activation threshold is greater than the first activation threshold. In this embodiment, the atomization device is provided with three different activation thresholds, corresponding to three stages of the atomization device activation process. The first stage can be adapted to the production testing scenario of the atomization device, in which the test personnel need to perform product testing on the atomization device, so the first activation threshold corresponding to the first stage can be pre-set as the activation threshold corresponding to the formal use of the user, that is, the first activation threshold is the smallest one, facilitating the test personnel to perform product testing. The second stage can be adapted to the production scenario of the atomization device, in which the production personnel need to perform product assembly on the atomization device. In the assembly process, the atomization device can be self-activated due to the existence of short-term negative pressure. In order to avoid self-activation of the atomization device during the production process, the second activation threshold corresponding to the second stage can be pre-set according to the range of short-term negative pressure that can exist in the assembly process. Since the second activation threshold is greater than the first activation threshold, self-activation caused by short-term negative pressure in the production process can be prevented. The third stage can be adapted to the transportation scenario of the atomization device, in which the atomization device needs to be transported to the user. In the transportation process, the atomization device can be self-activated due to the existence of short-term negative pressure. In order to avoid self-activation of the atomization device during the transportation process, the third activation threshold corresponding to the third stage can be pre-set according to the range of short-term negative pressure that can exist in the transportation process. Since the third activation threshold is greater than the first activation threshold, self-activation caused by short-term negative pressure in the transportation process can be prevented. In addition, since the negative pressure generated in the production scenario is relatively larger than the negative pressure generated in the transportation scenario, the second activation threshold is greater than the third activation threshold.
[0072] Please refer to FIG. 4, the atomization device control method provided in this embodiment includes:
[0073] When the atomization device is powered on for the first time, the first activation threshold is used as the working threshold, and the timing is started.
[0074] It is judged whether the accumulated time length exceeds the first preset time (for example, 65 seconds), and if it does not exceed the first preset time, the normal working process is entered.
[0075] If the accumulated time length exceeds the first preset time, the second activation threshold is used as the working threshold. It is periodically judged whether the airflow sensor (microphone) is triggered, and when it is triggered, it is further judged whether the suction action occurs according to the current working threshold (the second activation threshold), and if the suction action occurs, the first activation threshold is used as the working threshold and the normal working process is entered; if the suction action does not occur, it is judged whether the accumulated time length exceeds the second preset time (for example, 24 hours 65 seconds). If it does not exceed the second preset time, or the airflow sensor is not triggered, the atomization device enters sleep.
[0076] If the accumulated duration exceeds the second preset time, the third starting threshold is taken as the working threshold. It is periodically judged whether the airflow sensor is triggered or not. When triggered, it is further judged whether the puffing action occurs according to the current working threshold (the third starting threshold). If the puffing action occurs, the first starting threshold is taken as the working threshold and the normal working process is entered. If the puffing action does not occur, or the airflow sensor is not triggered, the atomization device enters the hibernation.
[0077] In addition, after the normal working process is performed, the hibernation is entered until the timing time arrives. When the timing time arrives, it is judged whether the puffing action occurs according to the first starting threshold. If the puffing action does not occur, the hibernation is continued. If the puffing action occurs, the normal working process is continued.
[0078] Further, the duration of the first preset time is adaptively adjusted according to the test duration in the actual production process. The first preset time can be 1 to 600 seconds, for example, 10 seconds, 30 seconds, 60 seconds, 120 seconds, 200 seconds, 300 seconds, 400 seconds, 500 seconds, or 600 seconds.
[0079] For example, if only a simple test or a quick test is needed for the atomization device, the test duration of the atomization device is short, and the first preset time can be any value from 1 to 300 seconds. If a multi-step test or a multiple test is needed for the atomization device, the test duration of the atomization device is long, and the first preset time needs to be adaptively increased to be greater than 300 seconds. For example, when the time consumption of a preset single test step is k seconds and the number of test steps is n, the first preset time can be set to n x k seconds according to the number of steps n and the time consumption of a single step, where n is an integer greater than 2.
[0080] Correspondingly, the second preset time can be defined as the sum of the first preset time and the reserved assembly time. Assuming that the first preset time is 65 seconds and the reserved assembly time is 24 hours, the second preset time is set to 24 hours 65 seconds. In addition, the components may not be assembled in time after testing. The reserved assembly time can be adaptively adjusted, for example, the reserved assembly time can be set to 24-168 hours. For example, the reserved assembly time can be a multiple of 24 hours, such as 24 hours, 48 hours, 96 hours, 120 hours, 144 hours, 168 hours, etc. The second preset time is the sum of 24-168 hours and the first preset time. For example, the components need to be transported to other areas for assembly after testing. The reserved assembly time can be extended according to the transportation time or the material standing time, for example, the second preset time is set to 48 hours or 96 hours.
[0081] It can be understood that the first preset time and the second preset time exemplified above are only non-exhaustive examples, and those skilled in the art can make any adjustment to the first preset time and the second preset time based on the atomization device control method provided by the above embodiment and the actual situation.
[0082] Please refer to FIG. 5, the atomization device provided by the embodiment includes a processor 101 and a memory 102 for storing a computer program, the processor can be an MCU, and the processor 101 realizes the steps of the atomization device control method described above when executing the computer program.
[0083] In the atomization device of the embodiment, the processor 101, when executing the computer program, can use different starting thresholds as working thresholds in different states due to the setting of two different starting thresholds, so as to adapt to different sensitivity requirements in different scenes.
[0084] It should be noted that the above atomization device embodiment and method embodiment belong to the same concept, the specific implementation process is detailed in the method embodiment, and the technical features in the method embodiment are all applicable in the atomization device embodiment, which will not be repeated here.
[0085] The application also provides a computer readable storage medium, for example, the processor of FIG. 5, the computer readable storage medium stores a computer program, and the computer program realizes the steps of the atomization device control method described above when executed by the processor. The computer readable storage medium can include a flash disk, a read-only memory (Read-Only Memory, ROM), a random access memory (Random Access Memory, RAM), a magnetic disk or an optical disk, etc.
[0086] In the computer readable storage medium of the embodiment, the computer program, when executed by the processor, can use different starting thresholds as working thresholds in different states due to the setting of two different starting thresholds, so as to adapt to different sensitivity requirements in different scenes. It can be understood that, in the process of production and transportation of the atomization device, a larger starting threshold is selected as the working threshold to make the short-term negative pressure generated in the production and transportation process not meet the starting condition, effectively solve the self-starting problem caused by short-term negative pressure in the production and transportation process, avoid dry burning, protect the cotton core from damage, and thus ensure the reliability of the product in the production, transportation and use process of the atomization device, and the consistency of the taste in the use process.
[0087] It should be noted that the above medium embodiment and method embodiment belong to the same concept, the specific implementation process is detailed in the method embodiment, and the technical features in the method embodiment are all applicable in the medium embodiment, which will not be repeated here.
[0088] Those skilled in the art can clearly understand the above-mentioned embodiment method can be realized by means of software and necessary general hardware platform, of course, also can be realized by hardware, but in many cases, the former is a better embodiment. Based on such understanding, the technical solutions of the present application essentially or say the part of the prior art to make contributions can be embodied in the form of software product, the computer software product is stored in a storage medium (such as ROM / RAM, magnetic disc, optical disc), including a number of instructions to make a misting device execute the method described in various embodiments of the present application.
Claims
1. A method of controlling an atomization device, characterized by, The method comprises: acquiring a first starting threshold value, setting the first starting threshold value as a working threshold value of the atomization device, and determining whether a puffing action occurs according to the first starting threshold value and performing a corresponding response; if the atomization device meets a preset condition, switching the working threshold value to a second starting threshold value, determining whether a puffing action occurs according to the second starting threshold value, and performing a corresponding response; wherein the first starting threshold value and the second starting threshold value are different.
2. The atomization device control method of claim 1, wherein The preset condition at least includes one of a starting duration condition, a trigger condition, a puffing frequency condition, and a puffing intensity condition.
3. The atomization device control method of claim 2, wherein, When the atomization device meets the preset condition, the working threshold value is switched to the second starting threshold value, which comprises: when the first starting threshold value is set as the working threshold value, timing the atomization device; running with the first starting threshold value until a first preset time duration, and setting the second starting threshold value as the working threshold value of the atomization device.
4. The atomization device control method of claim 2, wherein When the atomization device meets the preset condition, the working threshold value is switched to the second starting threshold value, which comprises: if the actual puffing intensity reaches a preset threshold value, the working threshold value is switched to the second starting threshold value.
5. The atomization device control method of claim 2, wherein The determination whether a puffing action occurs according to the second starting threshold value and the corresponding response comprises: periodically detecting the airflow change in the atomization device, determining whether a puffing action occurs according to the second starting threshold value; if it is determined that a puffing action occurs, switching the working threshold value to the first starting threshold value; if it is determined that a puffing action does not occur, performing a corresponding response according to the cumulative time duration of the atomization device; wherein the timing of the atomization device starts when the first starting threshold value is set as the working threshold value.
6. The atomization device control method of claim 5, wherein, If it is determined that a puffing action does not occur, performing a corresponding response according to the cumulative time duration of the atomization device, which comprises: if the cumulative time duration of the atomization device does not reach a second preset time duration, the atomization device is set to a sleep mode; if the cumulative time duration of the atomization device reaches the second preset time duration, switching the working threshold value to a third starting threshold value, periodically detecting the airflow change in the atomization device, and determining whether a puffing action occurs according to the third starting threshold value.
7. The atomization device control method of claim 6, wherein, The determination whether a puffing action occurs according to the third starting threshold value further comprises: if it is determined that a puffing action occurs, switching the working threshold value to the first starting threshold value.
8. The atomization device control method of claim 6, wherein, The second starting threshold value is greater than the third starting threshold value, and the third starting threshold value is greater than the first starting threshold value.
9. An atomization device comprising a processor and a memory for storing a computer program, characterized in that, The processor implements the steps of the atomization device control method of any one of claims 1-8 when executing the computer program.
10. A computer readable storage medium storing a computer program, characterized in that, The computer program implements the steps of the atomization device control method of any one of claims 1-8 when executed by the processor.
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