Atomization device control method and apparatus, and atomization device

CN122515519APending Publication Date: 2026-08-07HG INNOVATION LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
HG INNOVATION LTD
Filing Date
2026-05-28
Publication Date
2026-08-07

AI Technical Summary

Technical Problem

但这些方式难以满足用户需求,也并不能主动监控

Benefits of technology

本申请实施例通过响应于针对雾化设备的抽吸操作,检测所述抽吸操作的当前抽吸次序;确定所述当前抽吸次序对应的间歇脉冲参数;采用所述间歇脉冲参数控制所述雾化设备进行雾化。通过在检测到抽吸操作时识别当前抽吸次序,主动利用当前抽吸次序识别用户抽吸的需求和雾化设备的状态,从而可以通过主动监控的方式对雾化控制,避免限制功率或限制抽吸时长等被动方式控制导致的中断感或功率不足现象发生,令雾化设备的雾化可以满足用户需求;进而再通过当前抽吸次序动态确定对应的间歇脉冲参数控制雾化设备进行雾化,以动态间歇式的方式进行雾化,延长了雾化基质的供给时间,使得雾化基质的挥发速度会与供给速度相接近,避免了雾化设备发生干烧现象,提高了雾化设备使用安全性。

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Abstract

The embodiment of the application provides a method and device for controlling an atomization equipment, and the atomization equipment, comprising: in response to a puffing operation on the atomization equipment, detecting a current puffing sequence of the puffing operation; determining an intermittent pulse parameter corresponding to the current puffing sequence; and controlling the atomization equipment to atomize by using the intermittent pulse parameter. The embodiment of the application identifies the current puffing sequence, identifies the demand of the user puffing and the state of the atomization equipment based on the current puffing sequence, and then determines the corresponding intermittent pulse parameter to control the atomization equipment to atomize according to the current puffing sequence, so that the atomization equipment can actively identify and meet the demand of the user and avoid the occurrence of dry burning phenomenon.
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Description

Technical Field

[0001] This application relates to the field of atomization equipment technology, and in particular to atomization equipment control methods, atomization equipment control devices, and atomization equipment. Background Technology

[0002] During the operation of an atomizing device, if the user performs high-power or prolonged continuous inhalation, the evaporation rate of the atomizing matrix may exceed the supply rate. This can lead to localized dry burning on the heating element surface, resulting in harmful substances and an extremely unpleasant burnt taste. However, related technologies often employ passive methods such as limiting power or inhalation duration for control. These methods are insufficient to meet user needs and do not provide proactive monitoring. Summary of the Invention

[0003] In view of the above problems, embodiments of this application are proposed to provide an atomizing device control method, atomizing device control device, and atomizing device that overcome or at least partially solve the above problems.

[0004] To address the aforementioned problems, in a first aspect of this application, an embodiment discloses a method for controlling an atomizing device, comprising: In response to a suction operation on the atomizing device, the current suction sequence of the suction operation is detected; Determine the intermittent pulse parameters corresponding to the current suction sequence; The atomizing device is controlled to perform atomization using the intermittent pulse parameters.

[0005] In one embodiment, the intermittent pulse parameters include the target heating duration and the target gap duration, and the step of determining the intermittent pulse parameters corresponding to the current suction sequence includes: Based on the current suction sequence, reduce the target heating time and / or increase the target gap time.

[0006] In one embodiment, the step of reducing the target heating time and / or increasing the target gap time based on the current suction sequence includes: If the current suction sequence is less than a preset first sequence value, the target heating time is determined as the first heating time, and the target gap time is determined as the first gap time; the first heating time is greater than the first gap time. If the current suction order is not less than the preset first order value and less than the preset second order value, the target heating time is determined to be the second heating time, and the target gap time is determined to be the first gap time; wherein, the preset second order value is greater than the preset first order value, and the second heating time is less than the first heating time; If the current suction order is not less than the preset second order value, the target heating time is determined to be the second heating time, and the target gap time is determined to be the second gap time, wherein the second gap time is greater than the first gap time.

[0007] In one embodiment, the intermittent pulse parameter includes a heating duty cycle, and the step of determining the intermittent pulse parameter corresponding to the current suction sequence includes: Determine the heating duty cycle corresponding to the current suction sequence; The heating duty cycle is determined as an intermittent pulse parameter.

[0008] In one embodiment, the step of detecting the current aspiration sequence of the aspiration operation includes: Get the historical count value and the historical end timestamp; Determine the trigger timestamp of the suction operation; When the time difference between the trigger timestamp and the historical end timestamp is less than a preset time difference threshold, the value of the historical count is incremented by one to determine the current suction order.

[0009] In one embodiment, the method further includes: When the time difference between the trigger timestamp and the history end timestamp is not less than a preset time difference threshold, the history count value is reset.

[0010] In one embodiment, the step of controlling the atomizing device to perform heating atomization using the intermittent pulse parameters includes: The atomizing device is controlled by the intermittent pulse parameters in a cyclic manner to perform atomization until the suction operation ends.

[0011] In a second aspect, embodiments of this application disclose a control device for an atomizing device, comprising: A detection module is used to detect the current suction sequence of a suction operation in response to a suction operation of an atomizing device. The determining module is used to determine the intermittent pulse parameters corresponding to the current suction sequence; The control module is used to control the atomizing device to perform heating and atomization using the intermittent pulse parameters.

[0012] In a third aspect of this application, embodiments of this application also disclose an atomizing device, including a processor, a memory, and a computer program stored in the memory and capable of running on the processor, wherein the computer program, when executed by the processor, implements the steps of the atomizing device control method as described above.

[0013] In a fourth aspect, embodiments of this application also disclose an atomizing device, including the atomizing device control device as described above.

[0014] The embodiments of this application have the following advantages: This application embodiment detects the current suction sequence in response to a suction operation on an atomizing device; determines the intermittent pulse parameter corresponding to the current suction sequence; and uses the intermittent pulse parameter to control the atomizing device to perform atomization. By identifying the current suction sequence when a suction operation is detected, the user's suction needs and the state of the atomizing device are actively identified using the current suction sequence. This allows for active monitoring and control of atomization, avoiding interruptions or insufficient power caused by passive control methods such as limiting power or suction duration, ensuring that the atomization of the atomizing device meets the user's needs. Furthermore, by dynamically determining the corresponding intermittent pulse parameter based on the current suction sequence to control the atomizing device to perform atomization in a dynamic intermittent manner, the supply time of the atomizing matrix is ​​extended, making the evaporation rate of the atomizing matrix close to the supply rate, preventing the atomizing device from dry burning and improving the safety of using the atomizing device. Attached Figure Description

[0015] Figure 1 This is a flowchart illustrating the steps of an embodiment of atomizing device control method according to this application; Figure 2 This is a flowchart illustrating the steps of another embodiment of the atomizing device control method of this application; Figure 3 This is a flowchart illustrating the steps of a control method for an atomizing device according to this application; Figure 4 This is a flowchart illustrating the steps of another embodiment of the atomizing device control method of this application; Figure 5 This is a structural block diagram of an embodiment of an atomizing device control device according to this application; Figure 6 This is a structural block diagram of an atomizing device provided in an embodiment of this application. Detailed Implementation

[0016] To make the above-mentioned objectives, features and advantages of this application more apparent and understandable, the application will be further described in detail below with reference to the accompanying drawings and specific embodiments.

[0017] In the atomization process of an atomizing device, the core lies in the heating element's ability to heat the atomizing matrix, causing it to evaporate into an aerosol for the user. However, in scenarios involving high-power vaping or continuous vaping over short periods, the heating element needs to release a large amount of heat in a short time, causing the atomizing matrix on its surface to evaporate extremely rapidly. The atomizing matrix rapidly transforms from a liquid to a gaseous state and quickly detaches from the heating element's surface. Similarly, during prolonged vaping, the heating element continues to operate, and the accumulated heat also significantly accelerates the evaporation rate of the atomizing matrix. However, current atomizing devices primarily rely on wicking cotton to deliver the atomizing matrix to the heating element's surface. The supply speed of the wicking cotton is limited by various factors, such as its porosity, fiber structure, and the viscosity of the e-liquid. Under high-power or prolonged vaping conditions, the supply speed of the wicking cotton often struggles to keep up with the evaporation rate of the atomizing matrix. When the supply speed lags behind the evaporation rate, localized areas on the heating element's surface may lack adequate coverage, resulting in dry burning. Dry burning in atomizing devices can lead to a series of serious problems. Dry burning can cause excessive pyrolysis and chemical reactions in the e-liquid, producing a large number of harmful substances, especially aldehydes. Localized dry burning can also result in an extremely unpleasant burnt taste on the surface of the heating element. To avoid dry burning, related technologies often use methods such as limiting the maximum vaping time and reducing output power. For limiting the maximum vaping time, for example, a 10-second timeout protection mechanism is set. When the user's vaping time reaches the set value, the atomizing device will automatically stop working to prevent localized dry burning caused by prolonged vaping. However, this passive, post-hoc interruption method will suddenly stop working during the user's vaping process, giving the user a sense of interruption, disrupting the continuity and smoothness of vaping, and greatly affecting the user experience. By reducing the power of the heating element, heat generation is reduced, thereby reducing the evaporation rate of the e-liquid and allowing the e-liquid supply rate to keep up. However, this method will result in insufficient vapor production throughout. This method cannot meet the needs of users who want to obtain a large amount of vapor at the moment of vaping. Therefore, in order to solve the above problems, the embodiments of this application are proposed.

[0018] Reference Figure 1 The diagram illustrates a flowchart of an embodiment of atomizing device control method according to this application. The atomizing device control method may specifically include the following steps: Step 101: In response to a suction operation for the atomizing device, detect the current suction sequence of the suction operation; Users can perform a suction operation on the atomizing device to atomize the air, thus achieving the corresponding atomization function. If the atomizing device is equipped with an airflow sensor, the user can detect the suction operation when airflow is present. Alternatively, if the atomizing device has a button, pressing the button will also detect the suction operation.

[0019] It can respond to a suction operation on an atomizing device and detect the current suction order. The current suction order represents the actual number of suctions performed by the user within the current time period. For example, the current suction order is 1 for the first suction, 2 for the second suction, and 3 for the third suction.

[0020] Step 102: Determine the intermittent pulse parameters corresponding to the current suction sequence; The intermittent pulse parameters corresponding to the current suction sequence can be determined by performing table lookup and matching operations. The intermittent pulse parameters control the heating duration and heating pause duration of the atomizing device.

[0021] Step 103: Use the intermittent pulse parameters to control the atomizing device to perform atomization.

[0022] The heating component in the atomization device is heated by intermittent pulse parameter control, and the atomization matrix is ​​atomized by the heating component.

[0023] This application embodiment detects the current suction sequence in response to a suction operation on an atomizing device; determines the intermittent pulse parameter corresponding to the current suction sequence; and uses the intermittent pulse parameter to control the atomizing device to perform atomization. By identifying the current suction sequence when a suction operation is detected, the user's suction needs and the state of the atomizing device are actively identified using the current suction sequence. This allows for active monitoring and control of atomization, avoiding interruptions or insufficient power caused by passive control methods such as limiting power or suction duration, ensuring that the atomization of the atomizing device meets the user's needs. Furthermore, by dynamically determining the corresponding intermittent pulse parameter based on the current suction sequence to control the atomizing device to perform atomization in a dynamic intermittent manner, the supply time of the atomizing matrix is ​​extended, making the evaporation rate of the atomizing matrix close to the supply rate, preventing the atomizing device from dry burning and improving the safety of using the atomizing device.

[0024] Reference Figure 2 The diagram illustrates a flowchart of another embodiment of the atomizing device control method of this application. The atomizing device control method may specifically include the following steps: Step 201: In response to a suction operation on the atomizing device, obtain the historical count value and the historical end timestamp; Atomizing devices can be equipped with airflow sensors or physical buttons. The status of the airflow sensor or physical button determines whether a suction operation is being performed on the atomizing device. For example, when the airflow sensor detects airflow or the physical button is activated, it can be determined that a suction operation is being performed on the atomizing device.

[0025] The atomizing device can also maintain a counter, incrementing the counter value by one each time the user inhales and recording the historical count. When the user does not inhale for a certain period, this counter value is initialized, i.e., the historical count value is initialized, and the counting starts again. Simultaneously, the atomizing device can also maintain a clock to record the occurrence time of events or provide a time reference. For example, a precise time reference can be generated using the microcontroller's built-in hardware timer module and configuration registers. Alternatively, a system tick timer or a real-time clock can be used for timing.

[0026] When a vaping operation is detected for the atomizing device, in response to the vaping operation, the current historical count value and the historical end timestamp of the last vaping session can be obtained from the counter. The historical count value represents the number of vaping sessions performed during continuous vaping. The historical end timestamp represents the time when the last vaping session ended. The start and end of the vaping can be determined by the state of the airflow sensor or physical button. For example, when a rising edge appears in the voltage level of the airflow sensor or physical button, it is determined that the atomizing device has changed from an inactive state to an active state. At this time, the MCU (electronic control unit) in the atomizing device can capture the rising edge event and record the current timestamp as the start timestamp of a vaping session. When a falling edge appears in the voltage level, it is determined that the atomizing device has returned from an active state to an inactive state, and the current timestamp can be recorded as the end timestamp of a vaping session. The historical end timestamp is obtained by acquiring the end timestamp of the last vaping session.

[0027] Step 202: Determine the trigger timestamp of the suction operation; It can also determine the current timestamp when the current suction operation is triggered. For example, when a rising edge appears in the voltage level of the airflow sensor or physical button, the current timestamp is recorded as the trigger timestamp. The trigger timestamp represents the time when the current suction operation was triggered; the time when the user started suction.

[0028] Step 203: When the time difference between the trigger timestamp and the historical end timestamp is not less than a preset time difference threshold, reset the historical count value; The time difference between the trigger timestamp and the historical end timestamp can be determined by subtracting the trigger timestamp from the historical end timestamp. The relationship between this time difference and a preset time difference threshold is then established. When the time difference between the trigger timestamp and the historical end timestamp is not less than the preset time difference threshold (i.e., the time difference is greater than or equal to the preset time difference threshold), it indicates that the user has not performed a suction for some time and is not in a continuous suction state; this suction operation can be considered the first suction. The historical count value is then reset, for example, to 1. By resetting the historical count value, the suction sequence can be recounted when continuous suction has not occurred, thereby accurately identifying the user's current suction state and allowing for control tailored to the user's needs. The preset time difference threshold can be determined based on actual circumstances, and this embodiment does not impose a limitation.

[0029] Step 204: When the time difference between the trigger timestamp and the historical end timestamp is less than a preset time difference threshold, the value of the historical count is incremented by one to determine the current suction order. When the time difference between the trigger timestamp and the historical end timestamp is less than a preset time difference threshold, it indicates that the user is continuously sucking. The historical count value can be incremented by one, and this value is determined as the current sucking order. For example, if the user is sucking for the second time continuously, the reset historical count value is 1. Incrementing the historical count value by one determines the current sucking order as 2.

[0030] The process of determining the current suction order can be illustrated with an example: For instance, if a user has not performed a suction for an extended period, and the time difference between the trigger timestamp and the historical end timestamp is greater than 180 seconds, the counter is reset, and the historical count value is reset to 1. At this point, the current suction order is 1. When the user performs consecutive suctions, if the time difference between the second trigger timestamp and the historical end timestamp is less than 180 seconds, the historical count value is incremented by one, becoming 2, and the current suction order is 2. The historical count value remains 2. If the user continues to perform consecutive suctions, the historical count value is incremented again, and the current suction order becomes 3. This process of counting continues to determine the specific current suction order.

[0031] Step 205: Determine the intermittent pulse parameters corresponding to the current suction sequence; Based on the current vaping sequence, the corresponding intermittent pulse parameters are determined. These intermittent pulse parameters are the macroscopic low-frequency PWM duty cycle control envelope. They do not change the underlying resonant frequency but rather control the heating-pause rhythm of the heating wire on a millisecond (ms) timescale. The intermittent pulse parameters can include the target heating duration and the target gap duration. The target heating duration controls the heating time of the atomizer. The target gap duration controls the duration of the atomizer's pause heating. The target heating duration and target gap duration can be combined to determine the intermittent pulse parameters, thus dividing the originally continuous DC or PWM heating signal into a macroscopic heating-pause-heating cycle. During the pause heating period, the residual heat of the heating element maintains atomization, while providing a brief e-fuel buffer time for the atomizing matrix, effectively preventing dry burning. Furthermore, by simulating the differences in intermittent pulse parameters corresponding to different current vaping sequences, the optimal flavor profile of the atomizer is simulated, improving vaping safety and comfort.

[0032] In an optional embodiment of this application, the step of determining the intermittent pulse parameter corresponding to the current suction sequence includes: reducing the target heating duration based on the current suction sequence, and / or increasing the target gap duration.

[0033] Based on the current suction sequence, the target heating time is reduced and / or the target gap time is increased. By reducing the target heating time and / or increasing the target gap time, the amount of atomizing matrix used is reduced, and a buffer time for the atomizing matrix is ​​provided, so that the evaporation rate of the atomizing matrix is ​​close to the supply rate, thus avoiding dry burning of the atomizing equipment.

[0034] In an optional embodiment of this application, the steps of reducing the target heating time and / or increasing the target gap time based on the current suction sequence include: If the current suction sequence is less than a preset first sequence value, the target heating time is determined as the first heating time, and the target gap time is determined as the first gap time; the first heating time is greater than the first gap time. If the current suction order is not less than the preset first order value and less than the preset second order value, the target heating time is determined to be the second heating time, and the target gap time is determined to be the first gap time; wherein, the preset second order value is greater than the preset first order value, and the second heating time is less than the first heating time; If the current suction order is not less than the preset second order value, the target heating time is determined to be the second heating time, and the target gap time is determined to be the second gap time, wherein the second gap time is greater than the first gap time.

[0035] In this embodiment, the preset first sequence value and the preset second sequence value can be determined according to the actual situation, and this embodiment does not limit them. The preset second sequence value is greater than the preset first sequence value. For example, the preset first sequence value is 2 and the preset second sequence value is 3; or the preset first sequence value is 2 and the preset second sequence value is 5, etc. When the current inhalation sequence is less than the preset first sequence value, it indicates that the user is in the initial stage of continuous inhalation, requiring high power and rapid smoke output. The target heating time can be determined as the second heating time, and the target interval time can be determined as the first interval time, with the first heating time being greater than the first interval time. This provides a high-power, rapid smoke output mode for the user to quickly atomize and produce aerosol for use. When the current inhalation sequence is not less than the preset first sequence value and less than the preset second sequence value, it indicates that the user is in the transition stage of continuous inhalation, the user's power requirement decreases, and the heating element in the atomizing device retains some residual heat. The target heating time can be defined as the second heating time, and the target interval time as the first interval time. The second heating time is shorter than the first heating time. By reducing the heating time, residual heat is utilized for atomization, meeting user needs while reducing the evaporation rate of the atomizing matrix. When the current suction sequence is not less than the preset second sequence value, it indicates that the user is in a stable / energy-saving continuous suction state. The heating element in the atomizing device is already very hot, and the supply pressure of the atomizing matrix is ​​high. The duration of the heating pause can be increased to utilize more residual heat for atomization. Therefore, the target heating time and the target interval time can be defined as the second heating time, and the second interval time is longer than the first interval time.

[0036] For example, the target heating time is defined as ON, and the target gap time is defined as OFF. The preset first sequence value is 2, and the preset second sequence value is 3. When the suction sequence is 1, the target heating time is determined as the first heating time, ON = 500ms; the target gap time is determined as the first gap time, OFF = 100ms. When the suction sequence is 2, the target heating time is determined as the second heating time, ON = 400ms; the target gap time is determined as the first gap time, OFF = 100ms. When the suction sequence is 3 or higher, the target heating time is determined as the second heating time, ON = 400ms; the target gap time is determined as the second gap time, OFF = 200ms. By setting a 200ms pause time after the heating element has reached a certain level of heating and the atomization matrix atomizes extremely quickly, a buffer period is provided for the oil-conducting structure such as the ceramic core or cotton, preventing the oil-conducting structure from being drained and burned. Furthermore, continuous high-power discharge can cause the battery voltage plateau to collapse. The 200ms pause allows the battery's chemical charge to redistribute, restoring a certain terminal voltage and significantly improving overall battery life. Utilizing thermal inertia, the temperature drop of the heating element during the 200ms power outage is negligible, maintaining the taste while avoiding localized melting caused by thermal runaway.

[0037] Step 206: The atomizing device is controlled to perform atomization using the intermittent pulse parameters in a cyclical manner until the suction operation ends.

[0038] The system uses a target heating time and a target interval time to control the operation of the heating element in the atomizing device. During the target heating time, the target voltage is output to the heating element, and the heating element operates at full power to heat the device. During the target interval time, the output of the heating element is forcibly stopped, and the heating element is de-energized. The two alternate in a cycle until the current suction operation is completed.

[0039] This application embodiment, in response to a suction operation on an atomizing device, acquires a historical count value and a historical end timestamp; determines the trigger timestamp of the suction operation; resets the historical count value when the time difference between the trigger timestamp and the historical end timestamp is not less than a preset time difference threshold; increments the historical count value by one when the time difference between the trigger timestamp and the historical end timestamp is less than the preset time difference threshold, determining the current suction order; determines the intermittent pulse parameter corresponding to the current suction order; and cyclically controls the atomizing device to perform atomization using the intermittent pulse parameter until the suction operation ends. By using the time difference between the trigger timestamp and the historical end timestamp to determine the continuous suction state and resetting the historical count value, the suction order can be recounted when continuous suction is not performed, thereby accurately identifying the user's current suction state and allowing for control tailored to the user's needs. During continuous inhalation, the system identifies the current inhalation sequence and proactively uses this sequence to determine the user's inhalation needs and the status of the atomizing device. This allows for proactive monitoring and control of atomization, avoiding interruptions or insufficient power caused by passive control methods such as limiting power or inhalation duration. This ensures that the atomization provided by the atomizing device meets the user's needs. Furthermore, the system dynamically determines the corresponding intermittent pulse parameters based on the current inhalation sequence to control the atomizing device in a dynamic intermittent manner. This extends the supply time of the atomizing matrix, ensuring that the evaporation rate of the atomizing matrix is ​​close to the supply rate. This prevents the atomizing device from burning out and improves its safety.

[0040] To more clearly illustrate the embodiments of this application, please refer to Figure 3 Let's illustrate this with an example: When the user takes their first puff, the control unit determines the current puff sequence as 1, and can be configured with: target heating duration ON = 500ms, target interval duration OFF = 100ms, controlling the heating element. When the user takes their second puff, the control unit determines the current puff sequence as 2, and can be configured with: target heating duration ON = 400ms, target interval duration OFF = 100ms, controlling the heating element. When the user takes their first puff, the control unit determines the current puff sequence as 3, and can be configured with: target heating duration ON = 400ms, target interval duration OFF = 200ms, controlling the heating element. For subsequent puffs, the control unit can be configured with: target heating duration ON = 400ms, target interval duration OFF = 200ms, controlling the heating element. This increases the heating pause time, giving the oil guide structure a buffer period to introduce the atomizing matrix, while simultaneously utilizing residual heat for atomization.

[0041] Reference Figure 4The diagram illustrates a flowchart of another embodiment of the atomizing device control method of this application. The atomizing device control method may specifically include the following steps: Step 401: When the upper edge of the sensor level is detected, a suction operation for the atomizing device is triggered; The atomizing device can be equipped with an airflow sensor or a physical button as a switch sensor. When a rising edge is detected in the voltage level of the airflow sensor or physical button, i.e., when the upper edge of the sensor voltage level is detected, the atomizing device is triggered to perform a suction operation.

[0042] Step 402, in response to a suction operation for the atomizing device, detect the current suction sequence of the suction operation; In response to a suction operation on an atomizing device, the current suction order of the suction operation is determined by acquiring a count value in the atomizing device.

[0043] Step 403: Determine the heating duty cycle corresponding to the current suction sequence; The heating duty cycle can be pre-determined based on different suction sequences. The total cycle length of the heating duty cycle is fixed, and it includes both heating duration and interval duration. Different heating duty cycles have different ratios between the heating duration and interval duration. For example, the heating duty cycle corresponding to the current suction sequence is 500ms, and the heating duration and interval duration form different ratios based on the suction sequence. The ratio between the heating duration and interval duration can be 4:1, 3:2, etc. This application does not limit this. A table is established to associate different current suction sequences with their corresponding heating duty cycles. The heating duty cycle corresponding to the current suction sequence is determined using a difference table. By controlling the total duration, different ratios of heating and pause times are formed for control, atomization is performed in a dynamic intermittent manner. This extends the supply time of the atomizing matrix, making the evaporation rate of the atomizing matrix close to the supply rate, avoiding dry burning of the atomization equipment, and improving the safety of the atomization equipment.

[0044] Step 404: Determine the heating duty cycle as an intermittent pulse parameter; The obtained heating duty cycle is used as the intermittent pulse parameter, which can then be used to directly control the heating duration and pause duration of the heating element.

[0045] Step 405: Use the intermittent pulse parameters to control the atomizing device to perform atomization.

[0046] The heating element in the atomization device is heated using intermittent pulse parameters to atomize the atomization matrix. For example, when the current suction sequence is 1, the ratio of heating time to interval time in the corresponding heating duty cycle is 4:1. When the total heating duty cycle period is 500ms, the heating element runs for 400ms, pauses for 100ms, and then repeats continuously until the current suction cycle ends. When the current suction sequence is 2, the ratio of heating time to interval time in the corresponding heating duty cycle is 3:2. When the total heating duty cycle period is 500ms, the heating element runs for 300ms, pauses for 200ms, and then repeats continuously until the current suction cycle ends.

[0047] It should be noted that, for the sake of simplicity, the method embodiments are all described as a series of actions. However, those skilled in the art should understand that the embodiments of this application are not limited to the described order of actions, because according to the embodiments of this application, some steps can be performed in other orders or simultaneously. Secondly, those skilled in the art should also understand that the embodiments described in the specification are all preferred embodiments, and the actions involved are not necessarily required by the embodiments of this application.

[0048] Reference Figure 5 The diagram shows a structural block diagram of an embodiment of an atomizing device control device according to this application. The atomizing device control device may specifically include the following modules: The detection module 501 is used to detect the current suction sequence of the suction operation in response to the suction operation of the atomizing device. The determining module 502 is used to determine the intermittent pulse parameters corresponding to the current suction sequence; The control module 503 is used to control the atomizing device to perform heating and atomization using the intermittent pulse parameters.

[0049] In an optional embodiment of this application, the intermittent pulse parameters include the target heating duration and the target interval duration, and the determining module 502 includes: The first determining submodule is used to reduce the target heating time and / or increase the target gap time based on the current suction sequence.

[0050] In an optional embodiment of this application, the first determining submodule includes: The first determining unit is configured to determine the target heating time as the first heating time and the target gap time as the first gap time when the current suction order is less than a preset first order value; the first heating time is greater than the first gap time. The second determining unit is configured to determine the target heating time as the second heating time and the target gap time as the first gap time when the current suction order is not less than the preset first order value and less than the preset second order value; wherein the preset second order value is greater than the preset first order value, and the second heating time is less than the first heating time; The third determining unit is used to determine the target heating time as the second heating time and the target gap time as the second gap time when the current suction order is not less than the preset second order value, wherein the second gap time is longer than the first gap time.

[0051] In an optional embodiment of this application, the intermittent pulse parameter includes the heating duty cycle, and the determining module 502 includes: The second determining submodule is used to determine the heating duty cycle corresponding to the current suction sequence; The third determining submodule is used to determine the heating duty cycle as an intermittent pulse parameter.

[0052] In an optional embodiment of this application, the detection module 501 includes: The `get` submodule is used to retrieve historical count values ​​and historical end timestamps. The time recognition submodule is used to determine the trigger timestamp of the suction operation; The count submodule is used to increment the value of the historical count by one when the time difference between the trigger timestamp and the historical end timestamp is less than a preset time difference threshold, and determine the current suction order.

[0053] In an optional embodiment of this application, the control module 503 includes: The cyclic control submodule is used to cyclically control the atomizing device to perform atomization using the intermittent pulse parameters until the suction operation ends.

[0054] This application embodiment detects the current suction sequence in response to a suction operation on an atomizing device; determines the intermittent pulse parameter corresponding to the current suction sequence; and uses the intermittent pulse parameter to control the atomizing device to perform atomization. By identifying the current suction sequence when a suction operation is detected, the user's suction needs and the state of the atomizing device are actively identified using the current suction sequence. This allows for active monitoring and control of atomization, avoiding interruptions or insufficient power caused by passive control methods such as limiting power or suction duration, ensuring that the atomization of the atomizing device meets the user's needs. Furthermore, by dynamically determining the corresponding intermittent pulse parameter based on the current suction sequence to control the atomizing device to perform atomization in a dynamic intermittent manner, the supply time of the atomizing matrix is ​​extended, making the evaporation rate of the atomizing matrix close to the supply rate, preventing the atomizing device from dry burning and improving the safety of using the atomizing device.

[0055] As the device embodiment is basically similar to the method embodiment, the description is relatively simple, and relevant parts can be found in the description of the method embodiment.

[0056] This application also discloses an atomizing device, including the atomizing device control device as described above.

[0057] Reference Figure 6 This application also provides an atomizing device, including: a processor 601, a memory 602, and a computer program stored in the memory 602 and capable of running on the processor. When the computer program is executed by the processor, it implements the atomizing device control method as described in any one of the embodiments of this application.

[0058] The memory may include random access memory (RAM) or non-volatile memory, such as at least one disk storage device. Optionally, the memory may also be at least one storage device located remotely from the aforementioned processor.

[0059] The processors mentioned above can be general-purpose processors, including central processing units (CPUs), network processors (NPs), etc.; they can also be digital signal processors (DSPs), application-specific integrated circuits (ASICs), field-programmable gate arrays (FPGAs), or other programmable logic devices, discrete gate or transistor logic devices, or discrete hardware components.

[0060] The various embodiments in this specification are described in a progressive manner, with each embodiment focusing on the differences from other embodiments. The same or similar parts between the various embodiments can be referred to each other.

[0061] Those skilled in the art will understand that embodiments of this application can be provided as methods, apparatus, or computer program products. Therefore, embodiments of this application can take the form of entirely hardware embodiments, entirely software embodiments, or embodiments combining software and hardware aspects. Furthermore, embodiments of this application can take the form of computer program products implemented on one or more computer-usable storage media (including but not limited to disk storage, CD-ROM, optical storage, etc.) containing computer-usable program code.

[0062] This application describes embodiments with reference to flowchart illustrations and / or block diagrams of methods, terminal devices (systems), and computer program products according to embodiments of this application. It should be understood that each block of the flowchart illustrations and / or block diagrams, and combinations of blocks in the flowchart illustrations and / or block diagrams, can be implemented by computer program instructions. These computer program instructions can be provided to a processor of a general-purpose computer, special-purpose computer, embedded processor, or other programmable data processing terminal device to produce a machine, such that the instructions, which execute via the processor of the computer or other programmable data processing terminal device, generate instructions for implementing the flowchart illustrations. Figure 1 One or more processes and / or boxes Figure 1 A device that provides the functions specified in one or more boxes.

[0063] These computer program instructions may also be stored in a computer-readable storage medium that can direct a computer or other programmable data processing terminal device to operate in a particular manner, such that the instructions stored in the computer-readable storage medium produce an article of manufacture including instruction means, which are implemented in a process Figure 1 One or more processes and / or boxes Figure 1The function specified in one or more boxes.

[0064] These computer program instructions can also be loaded onto a computer or other programmable data processing terminal equipment, causing a series of operational steps to be performed on the computer or other programmable terminal equipment to produce a computer-implemented process, thereby providing instructions that execute on the computer or other programmable terminal equipment for implementing the process. Figure 1 One or more processes and / or boxes Figure 1 The steps of the function specified in one or more boxes.

[0065] Although preferred embodiments of the present application have been described, those skilled in the art, upon learning the basic inventive concept, can make other changes and modifications to these embodiments. Therefore, the appended claims are intended to be interpreted as including the preferred embodiments as well as all changes and modifications falling within the scope of the embodiments of the present application.

[0066] Finally, it should be noted that in this document, relational terms such as "first" and "second" are used only to distinguish one entity or operation from another, and do not necessarily require or imply any such actual relationship or order between these entities or operations. Furthermore, the terms "comprising," "including," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or terminal device that comprises a list of elements includes not only those elements but also other elements not expressly listed, or elements inherent to such a process, method, article, or terminal device. Without further limitations, an element defined by the phrase "comprising one..." does not exclude the presence of other identical elements in the process, method, article, or terminal device that includes said element.

[0067] The foregoing has provided a detailed description of the atomizing device control method, atomizing device control apparatus, and atomizing device provided in this application. Specific examples have been used to illustrate the principles and implementation methods of this application. The descriptions of the above embodiments are only for the purpose of helping to understand the method and core ideas of this application. At the same time, for those skilled in the art, there will be changes in the specific implementation methods and application scope based on the ideas of this application. Therefore, the content of this specification should not be construed as a limitation of this application.

Claims

1. A control method for an atomizing device, characterized in that, include: In response to a suction operation on the atomizing device, the current suction sequence of the suction operation is detected; Determine the intermittent pulse parameters corresponding to the current suction sequence; The atomizing device is controlled to perform atomization using the intermittent pulse parameters.

2. The method according to claim 1, characterized in that, The intermittent pulse parameters include the target heating duration and the target interval duration. The step of determining the intermittent pulse parameters corresponding to the current suction sequence includes: Based on the current suction sequence, reduce the target heating time and / or increase the target gap time.

3. The method according to claim 2, characterized in that, The steps of reducing the target heating time and / or increasing the target interval time based on the current suction sequence include: If the current suction sequence is less than a preset first sequence value, the target heating time is determined as the first heating time, and the target gap time is determined as the first gap time; the first heating time is greater than the first gap time. If the current suction order is not less than the preset first order value and less than the preset second order value, the target heating time is determined to be the second heating time, and the target gap time is determined to be the first gap time; wherein, the preset second order value is greater than the preset first order value, and the second heating time is less than the first heating time; If the current suction order is not less than the preset second order value, the target heating time is determined to be the second heating time, and the target gap time is determined to be the second gap time, wherein the second gap time is greater than the first gap time.

4. The method according to claim 1, characterized in that, The intermittent pulse parameters include the heating duty cycle, and the step of determining the intermittent pulse parameters corresponding to the current suction sequence includes: Determine the heating duty cycle corresponding to the current suction sequence; The heating duty cycle is determined as an intermittent pulse parameter.

5. The method according to claim 1, characterized in that, The step of detecting the current aspiration sequence of the aspiration operation includes: Get the historical count value and the historical end timestamp; Determine the trigger timestamp of the suction operation; When the time difference between the trigger timestamp and the historical end timestamp is less than a preset time difference threshold, the value of the historical count is incremented by one to determine the current suction order.

6. The method according to claim 5, characterized in that, The method further includes: When the time difference between the trigger timestamp and the history end timestamp is not less than a preset time difference threshold, the history count value is reset.

7. The method according to claim 1, characterized in that, The step of controlling the atomizing device to perform heating atomization using the intermittent pulse parameters includes: The atomizing device is controlled by the intermittent pulse parameters in a cyclic manner to perform atomization until the suction operation ends.

8. A control device for an atomizing equipment, characterized in that, include: A detection module is used to detect the current suction sequence of a suction operation in response to a suction operation of an atomizing device. The determining module is used to determine the intermittent pulse parameters corresponding to the current suction sequence; The control module is used to control the atomizing device to perform heating and atomization using the intermittent pulse parameters.

9. An atomizing device, characterized in that, It includes a processor, a memory, and a computer program stored in the memory and capable of running on the processor, wherein the computer program, when executed by the processor, implements the steps of the atomizing device control method as described in any one of claims 1-7.

10. An atomizing device, characterized in that, Includes the atomizing device control device as described in claim 8.