Power compensation method and device, electronic equipment, storage medium and product

By recording time intervals and cumulative start-up counts, and calculating compensation power based on ambient temperature, the problem of insufficient heating of the heating components during cold start of aerosol generation equipment was solved, achieving rapid atomization and a stable user experience.

CN120959473APending Publication Date: 2025-11-18SHENZHEN GEEKVAPE TECH CO LTD
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Patent Information

Application Number
CN202511203832.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-26
Publication Date
2025-11-18

AI Technical Summary

Technical Problem

When an aerosol generating device is restarted after being unused for a long time, the heating components may not heat up sufficiently, resulting in poor atomization and affecting the user experience.

Method used

By recording the time interval between two consecutive trigger operations and the cumulative number of starts, the compensation power is determined, and the initial output power is calculated based on the ambient temperature and preset relationships to achieve personalized power compensation and ensure that the heating components heat up quickly.

Benefits of technology

It improves the atomization effect of aerosol generation equipment, reduces insufficient atomization, provides a stable and consistent user experience, and adapts to different ambient temperatures and usage habits.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention is suitable for the technical field of aerosol generation, and provides a power compensation method and device, electronic equipment, a storage medium and a product, and the method comprises the steps: responding to an ith trigger operation at a first moment, and obtaining an initial output power, a first statistical frequency and a historical end moment corresponding to the ith trigger operation; determining a first time interval between the first moment and a historical end moment; determining first compensation power corresponding to the first time interval according to an incidence relation between the time interval and the compensation power; determining a sum result between the initial output power and the first compensation power according to a numerical relationship between the first statistical number of times and a preset number of times threshold, and obtaining an ith output power; and controlling the heating assembly to heat the aerosol substrate for the ith time according to the ith output power. The atomization effect of the gas solution generation equipment can be improved, so that the use experience of a user is improved.
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Description

Technical Field

[0001] This application belongs to the field of aerosol generation technology, and particularly relates to power compensation methods, devices, electronic devices, storage media and products. Background Technology

[0002] Aerosol generation equipment typically controls its heating components to heat up to the target temperature according to the set output power when it starts its aerosol generation function, so as to heat the aerosol matrix and generate aerosols for users.

[0003] When the user does not use the aerosol generator for a long time, the heating component will cool down or even reach the ambient temperature. In this case, when the aerosol generation function is restarted, the aerosol generator will still control the heating component to heat up according to the set output power. However, the temperature of the heating component will be lower than the target temperature in a short period of time. This will affect the amount of aerosol generated, thereby reducing the atomization effect of the aerosol generator and the user experience.

[0004] Therefore, how to improve the atomization effect of aerosol generation equipment, thereby enhancing the user experience, has become an urgent technical problem to be solved. Summary of the Invention

[0005] This application provides a power compensation method, apparatus, electronic device, storage medium, and product, which can solve the problem of how to improve the atomization effect of aerosol generation equipment, thereby improving the user experience.

[0006] In a first aspect, embodiments of this application provide a power compensation method applied to an aerosol generation device, the aerosol generation device including a heating component and an aerosol matrix, the method comprising: In response to the i-th trigger operation at the first moment, the initial output power, the first statistical count, and the historical end time corresponding to the i-th trigger operation are obtained. The i-th trigger operation is used to indicate the start of the aerosol generation function of the aerosol generation device. The historical end time is the time when the aerosol generation device stops the aerosol generation function under the (i-1)-th trigger operation. The first statistical count represents the cumulative number of times the aerosol generation function is started under the i-th trigger operation, where i is a positive integer greater than 1. Determine the first time interval between the first moment and the end of the historical period; The first compensation power corresponding to the first time interval is determined based on the correlation between the time interval and the compensation power. Based on the numerical relationship between the first statistical count and the preset count threshold, the sum of the initial output power and the first compensation power is determined, and the i-th output power is obtained. Based on the i-th output power, control the heating component to heat the aerosol matrix for the i-th time.

[0007] In some embodiments, determining the sum of the initial output power and the first compensation power based on the numerical relationship between the first statistical count and the prediction count threshold, to obtain the i-th output power, includes: If the first statistical count is less than a preset count threshold, the target compensation coefficient corresponding to the first statistical count is determined from multiple preset supplementary coefficients. Determine the first product result between the target compensation coefficient and the first compensation power; The i-th output power is determined based on the sum of the first product result and the initial output power; If the first statistical count is greater than or equal to a preset count threshold, the initial output power is determined as the output power of the i-th count.

[0008] In some embodiments, obtaining the initial output power corresponding to the i-th trigger operation includes: Get the ambient temperature of the aerosol generating device at the first moment and the preset output power corresponding to the i-th trigger operation; Determine the temperature difference between the ambient temperature and the preset reference temperature; The initial output power is determined based on the second product of the temperature difference, the preset temperature coefficient, and the preset output power.

[0009] In some embodiments, determining the first compensation power corresponding to the first time interval based on the correlation between the time interval and the compensation power includes: If the first time interval is less than or equal to the first preset duration, the first preset power is determined as the first compensation power; If the first time interval is greater than the first preset duration and the first time interval is less than or equal to the second preset duration, determine the third product result between the first time interval and the preset compensation coefficient, wherein the second preset duration is greater than the first preset duration; The smaller of the third product result and the second preset power is selected as the first compensation power, and the second preset power is greater than the first preset power. If the first time interval is greater than the second preset duration, determine the time difference between the first time interval and the third preset duration; The first compensation power is determined based on the sum of the logarithm of the time difference and the second preset power, and the second preset power is greater than the first preset power.

[0010] In some embodiments, the method further includes: If the first compensation power is greater than the third preset power, the third preset power is updated to the first compensation power, and the third preset power is greater than the second preset power.

[0011] In some embodiments, the method further includes: If the initial output power is greater than the fourth preset power, the fourth preset power is updated to the initial output power, and the third preset power is less than the fourth preset power.

[0012] Secondly, embodiments of this application provide a power compensation device applied to an aerosol generation device, the aerosol generation device including a heating component and an aerosol matrix, the device comprising: The acquisition module is used to respond to the i-th trigger operation at the first moment, and acquire the initial output power, the first statistical count, and the historical end time corresponding to the i-th trigger operation. The i-th trigger operation is used to indicate the start of the aerosol generation function of the aerosol generation device. The historical end time is the time when the aerosol generation device stops the aerosol generation function under the (i-1)-th trigger operation. The first statistical count represents the cumulative number of times the aerosol generation function is started under the i-th trigger operation, where i is a positive integer greater than 1. The first determining module is used to determine the first time interval between the first moment and the end of the history; The second determining module is used to determine the first compensation power corresponding to the first time interval based on the correlation between the time interval and the compensation power. The third determining module is used to determine the sum of the initial output power and the first compensation power based on the numerical relationship between the first statistical count and the preset count threshold, so as to obtain the i-th output power; The control module is used to control the heating component to heat the aerosol matrix for the i-th time based on the i-th output power.

[0013] Thirdly, embodiments of this application provide an aerosol generating device, including a processor, a memory, and a computer program stored in the memory and executable on the processor. When the processor executes the computer program, the aerosol generating device performs the method described in any embodiment of the first aspect.

[0014] Fourthly, embodiments of this application provide a computer-readable storage medium storing a computer program that, when executed by a processor, implements the method described in any of the embodiments of the first aspect.

[0015] Fifthly, embodiments of this application provide a computer program product, including a computer program, which, when run, causes the method described in any embodiment of the first aspect to be executed.

[0016] The beneficial effects of the embodiments of this application compared with the prior art are: In response to the i-th trigger operation at the first moment, the compensation power corresponding to the current i-th trigger operation is determined based on the time interval between the (i-1)-th and i-th trigger operations. The initial output power under the i-th trigger operation and the first statistical count of aerosol generation function activation are obtained. Based on the numerical relationship between this first statistical count and a preset threshold, the sum of the compensation power and the initial output power is determined to compensate for the initial output power under the i-th trigger operation. The heating component is then controlled to heat the aerosol matrix with the compensated i-th output power. This ensures that each time the aerosol generation device activates the aerosol generation function, power compensation for the heating component is performed based on the time interval between the current activation and the previous termination of the function. This allows the heating component to operate at a suitable output power, rapidly increasing the heating temperature for a good atomization effect, reducing insufficient atomization, and improving the user experience. Furthermore, personalized power compensation based on different trigger operations over time intervals can be implemented to adapt to different user habits. Attached Figure Description

[0017] To more clearly illustrate the technical solutions in the embodiments of this application, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, the drawings described below are only some embodiments of this application. For those skilled in the art, other drawings can be obtained based on these drawings without creative effort.

[0018] Figure 1 This is a schematic flowchart of a power compensation method provided in an embodiment of this application; Figure 2 This is a schematic diagram of the process for obtaining the initial output power corresponding to the i-th triggering operation provided in an embodiment of this application; Figure 3 This is a flowchart illustrating the process of determining the first compensation power corresponding to the first time interval, provided in an embodiment of this application. Figure 4 This is a schematic flowchart of another power compensation method provided in the embodiments of this application; Figure 5 This is a flowchart illustrating the power compensation method in an application scenario provided by an embodiment of this application. Figure 6 This is a schematic diagram of the structure of an aerosol generating device provided in an embodiment of this application; Figure 7 This is a schematic diagram of the structure of a power compensation device provided in an embodiment of this application. Detailed Implementation

[0019] In the following description, specific details such as particular system architectures and techniques are set forth for illustrative purposes and not for limitation, in order to provide a thorough understanding of the embodiments of this application. However, those skilled in the art will understand that this application may also be implemented in other embodiments without these specific details. In other instances, detailed descriptions of well-known systems, apparatuses, circuits, and methods have been omitted so as not to obscure the description of this application with unnecessary detail.

[0020] It should be understood that, when used in this application specification and the appended claims, the term "comprising" indicates the presence of the described features, integrals, steps, operations, elements and / or components, but does not exclude the presence or addition of one or more other features, integrals, steps, operations, elements, components and / or a collection thereof.

[0021] It should also be understood that the term “and / or” as used in this application specification and the appended claims means any combination of one or more of the associated listed items and all possible combinations, and includes such combinations.

[0022] As used in this application specification and the appended claims, the term "if" may be interpreted, depending on the context, as "when," "once," "in response to determination," or "in response to detection." Similarly, the phrase "if determined" or "if detected [the described condition or event]" may be interpreted, depending on the context, as meaning "once determined," "in response to determination," "once detected [the described condition or event]," or "in response to detection [the described condition or event]."

[0023] Furthermore, in the description of this application and the appended claims, the terms "first," "second," "third," etc., are used only to distinguish descriptions and should not be construed as indicating or implying relative importance.

[0024] References to "one embodiment" or "some embodiments" as described in this specification mean that one or more embodiments of this application include a specific feature, structure, or characteristic described in connection with that embodiment. Therefore, the phrases "in one embodiment," "in some embodiments," "in other embodiments," "in still other embodiments," etc., appearing in different parts of this specification do not necessarily refer to the same embodiment, but rather mean "one or more, but not all, embodiments," unless otherwise specifically emphasized. The terms "comprising," "including," "having," and variations thereof mean "including but not limited to," unless otherwise specifically emphasized.

[0025] When a user leaves an aerosol generator idle for a period of time and then triggers its aerosol generation function again, the generator will often switch from shutdown or standby mode to operating mode (also known as a cold start or intermittent start). At this time, the heating element in the aerosol generator often reaches the same temperature as the surrounding environment due to prolonged inactivity. However, the aerosol generator typically controls the heating element to reach the target temperature using a set output power, which means it takes a considerable amount of time for the heating element to reach the target temperature. Users generally do not wait this long before using the aerosol generator. This results in a technical problem where, during a cold start, current aerosol generators often experience a low heating temperature, leading to insufficient aerosol generation, affecting atomization performance, and impacting the user experience.

[0026] To address the aforementioned technical problems, this application proposes a power compensation method. By determining the compensation power corresponding to the current triggering operation through the time interval between two consecutive triggering operations, and then using this compensation power along with the cumulative number of times the aerosol generation function corresponding to the current triggering operation is activated, the final output power is determined. This achieves personalized power compensation for different triggering operations, ensuring sufficient output power for each triggering operation to rapidly heat the heating component to atomize the aerosol matrix, reducing insufficient atomization, improving the atomization effect of the aerosol generation device, and thus enhancing the user experience.

[0027] The power compensation method of this application is described below through specific embodiments.

[0028] Figure 1 This is a flowchart illustrating a power compensation method provided in an embodiment of this application, as shown below. Figure 1 The method shown includes: S101, in response to the i-th trigger operation at the first moment, obtain the initial output power, the first statistical count, and the historical end time corresponding to the i-th trigger operation.

[0029] The power compensation method of this application embodiment is applied to an aerosol generation device, which includes a heating component and an aerosol matrix. The aerosol generation device is an electronic product that heats the aerosol matrix or a non-combustible, low-temperature aerosol matrix using the heating component to generate vapor and release aerosols. The heating component is typically made of a high-resistivity metal wire (e.g., nickel-chromium alloy wire or titanium alloy wire) or ceramic material. When the current output from the battery of the aerosol generation device passes through the heating component, according to Joule's law, the current generates heat on the heating component, thereby raising the temperature of the heating component to heat the aerosol matrix.

[0030] The i-th trigger operation is used to instruct the aerosol generation function of the aerosol generating device to be activated. The user can input the i-th trigger operation into the aerosol generating device at the first moment by pressing a button in the aerosol generating device, touching the function option on the display screen of the aerosol generating device, interacting with the aerosol generating device by voice, or inhaling aerosols using the aerosol generating device.

[0031] The end of history is the moment when the aerosol generating device stops its aerosol generating function under the (i-1)th trigger operation.

[0032] The first statistical count represents the cumulative number of times the aerosol generation function is activated under the i-th trigger operation, where i is a positive integer greater than 1.

[0033] The first moment is the moment when the aerosol generating device receives the i-th trigger operation.

[0034] Each time the aerosol generating device responds to a trigger operation, it records in its memory the cumulative number of starts under that trigger operation and the time when the aerosol generating function stops.

[0035] When the aerosol generating device receives the i-th trigger operation, it reads from memory the moment when the aerosol generating function stopped (obtaining the historical end time) and the cumulative number of starts under the (i-1)-th trigger operation. It then determines a first time interval between the read moment and the first moment. If the first time interval is less than or equal to a first preset duration, the read cumulative number of starts is incremented by one to obtain a first statistical data point. If the second time interval is greater than the first preset duration, the read cumulative number of starts is updated to one to obtain the first statistical data point. In one implementation, the aerosol generating device stores the output power of the heating component at multiple resistance values. Upon receiving the i-th trigger operation, the aerosol generating device can use the output power corresponding to the resistance value of the heating component at the current moment as the initial output power. It can be understood that the user can adjust the resistance value of the heating component through the aerosol generating device. For example, taking an aerosol generating device with a maximum output power of 80 watts (W) and a resistance adjustment range of 0.2 ohms (Ω) to 1.2 Ω as an example, the output power corresponding to the resistance value of the heating component at the first moment can be determined according to Table 1 below.

[0036] Table 1 shows the output power of the heating component at various resistance values.

[0037]

[0038] In one implementation, the aerosol generating device stores the output power corresponding to the heating component at multiple resistance values ​​under multiple operating modes. Upon receiving the i-th trigger operation, the aerosol generating device can determine its target heating mode at the first moment and the target resistance value of the heating component under that target heating mode, and then use the output power corresponding to the target resistance value as the operating output power. For example, taking an aerosol generating device with a maximum output power of 80 watts (W) and a resistance adjustment range of 0.2 ohms (Ω) to 1.2 Ω as an example, the aerosol generating device can determine the output power corresponding to the resistance value of the heating component at the first moment according to Table 2.

[0039] Table 2 shows the output power of the heating component under various resistance values ​​in multiple operating modes.

[0040]

[0041] When the ambient temperature of the aerosol generating equipment is low, for example, -10 degrees Celsius, the temperature of the air entering the airflow channel of the aerosol generating equipment will be low. In this situation, when using the original output power of the heating component for aerosol generation, the heating temperature of the heating component will be lower than the heating temperature at room temperature (generally 25 degrees Celsius), affecting the atomization effect. Therefore, after determining the original output power of the heating component, it is logically necessary to increase the temperature compensation of the aerosol generating equipment as the ambient temperature decreases. In one implementation, such as Figure 2 As shown, the initial output power corresponding to the i-th trigger operation is obtained, including the following steps S201 to S203: S201, obtain the ambient temperature of the environment where the aerosol generating device is located at the first moment and the preset output power corresponding to the i-th trigger operation.

[0042] The preset output power is related to the resistance of the heating component and / or the working mode of the aerosol generating device.

[0043] In combination with the above implementation methods, the aerosol generating device can, in response to the i-th trigger operation, use the output power corresponding to the resistance value of the heating component at the current moment, or the output power corresponding to the resistance value of the heating component in the current working mode, as the preset output power.

[0044] In one implementation, the aerosol generating device includes a temperature sensor, which, in response to the i-th trigger operation, uses the temperature currently collected by the temperature sensor as the ambient temperature. For example, the temperature sensor can be located at the bottom of the aerosol generating device, near its vent, thus reducing the influence of body temperature on the temperature sensor when the user grips the device. In one implementation, the aerosol generating device is communicatively connected to a user terminal, which in turn is communicatively connected to a meteorological platform to obtain the ambient temperature from the platform. In response to the i-th trigger operation, the aerosol generating device sends a temperature acquisition request to the user terminal, causing the user terminal to respond to the request and send the acquired temperature back to the aerosol generating device, thus obtaining the ambient temperature.

[0045] S202, determine the temperature difference between the ambient temperature and the preset reference temperature.

[0046] The reference temperature can be any temperature between 20 degrees Celsius (°C) and 25°C. In this embodiment, a reference temperature of 25°C is used as an example.

[0047] Aerosol generation equipment can be generated through formulas △T=Tref–T Determine the temperature difference value, where ΔT represents the temperature difference value, Tref represents the reference temperature, and T represents the ambient temperature.

[0048] S203 determines the initial output power based on the product of the temperature difference, the preset temperature coefficient, and the preset output power.

[0049] The preset temperature coefficient can be any value between 0.01 / ℃ and 0.1 / ℃. In this embodiment, 0.01 / ℃ is used as an example.

[0050] Aerosol generation equipment can be based on the formula P0' = P0 × (1 + α × △T) Determine the initial output power, where P0' represents the initial output power and α represents the temperature coefficient.

[0051] In one implementation, the power compensation method further includes: updating the fourth preset power to the initial output power when the initial output power is greater than the fourth preset power, and the third preset power is less than the fourth preset power.

[0052] The fourth preset power is related to the resistance of the heating component.

[0053] The aerosol generating device stores the maximum output power corresponding to multiple resistance values ​​of the heating component. When the aerosol generating device determines the initial output power based on the above steps S201 to S203, it determines the maximum output power corresponding to the resistance value of the heating component at the current moment from the stored multiple maximum output power values ​​to obtain the fourth preset power. Alternatively, the aerosol generating device stores the maximum output power corresponding to multiple resistance values ​​of the heating component under different operating modes. The aerosol generating device determines the maximum output power corresponding to the current resistance value of the heating component in the current operating mode from the stored multiple maximum output power values ​​to obtain the fourth preset power.

[0054] The aerosol generating device compares the initial output power with a fourth preset power. If the initial output power is less than or equal to the fourth preset power, it remains unchanged. Otherwise, it means the initial output power exceeds the maximum power output corresponding to the current resistance of the heating component. Operating at this initial output power would pose a safety hazard. In this case, the aerosol generating device will use the fourth preset power as the initial output power for the i-th trigger operation. Thus, by setting an upper limit for power compensation when performing power compensation on the aerosol generating device, it can ensure that the device operates within a safe output power range, reducing the risk of overheating and ensuring the safe use of the aerosol generating device.

[0055] For example, the aerosol generating device can obtain the maximum output power corresponding to the resistance value of the heating component at a given time by using Table 3 as shown below, thereby obtaining the fourth preset power.

[0056] Table 3 shows the maximum output power of the heating component at various resistance values.

[0057]

[0058] In the technical solutions S201 to S203, based on the temperature difference between the ambient temperature of the aerosol generating device and a preset reference temperature, power compensation is performed on the preset output power corresponding to the i-th trigger operation to obtain the initial output power related to the temperature difference, the preset temperature coefficient, and the preset output power. For the preset output power under the current trigger operation, primary power compensation based on ambient temperature is implemented. This ensures that the aerosol generating device corresponds to different initial output powers under different ambient temperatures, thereby ensuring full atomization of the aerosol matrix and reducing issues such as cold taste, thin texture, or burnt taste, providing users with a more stable and consistent taste experience. It also reduces the safety risks caused by overheating or overcooling of the aerosol generating device when maintaining a uniform output under different ambient temperatures, thus improving the safety of the aerosol generating device. Furthermore, the combination of primary power compensation based on ambient temperature and subsequent secondary power compensation based on time intervals ensures the consistency of the atomization effect of the aerosol generating device under different ambient temperatures and trigger operation time intervals, adapting to different user habits and improving the user experience.

[0059] In one implementation, the aerosol generating device can also acquire the ambient humidity of the environment in which the aerosol generating device is located, and determine the initial output power corresponding to the ambient humidity based on the mapping relationship between humidity and power and a preset output power. The mapping relationship in this implementation can be expressed by the formula... P0' = P0 × (g × RH + b) As shown, where, RH Indicates ambient humidity.g This represents the first humidity compensation coefficient. g It can be -0.05. b This represents the second humidity compensation coefficient. b It can be 1.2.

[0060] In one implementation, the aerosol generating device can also determine the initial output power based on the mapping relationship between temperature, humidity, and power, ambient temperature, ambient humidity, and preset output power. The mapping relationship in this implementation can be expressed by the formula... P0'=P0×(x×RH+y×T+z×RH×T) As shown, where, x This represents the overall humidity compensation coefficient, which can be 0.003. y This represents the overall temperature compensation coefficient, which can be 0.005. z This represents the comprehensive temperature and humidity compensation coefficient, which can be -0.00001.

[0061] S102, determine the first time interval between the first moment and the end of the history.

[0062] S103, determine the first compensation power corresponding to the first time interval based on the correlation between the time interval and the compensation power.

[0063] In one implementation, the association includes compensation power corresponding to multiple time ranges. The aerosol generating device can find the time range containing the first time interval from the stored multiple time ranges and use the supplementary power corresponding to the found time range as the first compensation power. For example, the aerosol generating device can determine the first compensation power corresponding to the first time interval through Table 4 as shown below.

[0064] For example, when the first time interval is 30 seconds, the first compensation power can be 0W within the time range of [0,1] minutes. At this time, the time interval between the i-th and (i-1)-th trigger operations is short. For the i-th trigger operation, the residual temperature of the heating component after the previous trigger operation can support rapid heating of the heating component after this trigger operation, without the need for additional compensation power. When the first time interval is any between 2 minutes and 5 minutes, as the time interval between the i-th and (i-1)-th trigger operations lengthens, the residual temperature of the heating component decreases. Therefore, as the time interval increases, the compensation power can be increased to allow the heating component to heat up rapidly. When the first time interval is greater than 5 minutes, the residual temperature of the heating component decreases significantly, and a larger compensation power can be directly fixed to ensure rapid heating of the heating component. In this implementation, the aerosol generating device can quickly obtain the first compensation power, thereby accelerating the power compensation efficiency of the aerosol generating device.

[0065] Table 4 shows the compensation power for each of the multiple time ranges.

[0066]

[0067] In one implementation, the association relationship can be as shown in Formula 1. △P=△t×j×P0' As shown, where, △P Indicates the first compensation power. △t Indicates the first time interval. P0' Indicates the initial output power. j The linear coefficient can be any value between 0.01 W / min and 0.08 W / min. For example, when the first time interval is 2.5 min, the linear coefficient is 0.06 W / min, and the initial output power is 30 W, the first compensation power for the aerosol generating device can be determined as 2.5 × 0.06 × 30 = 4.5 W according to Formula 1. In this implementation, by linearly increasing the first compensation power as the time interval between the i-th and (i-1)-th trigger operations increases, it ensures that even if the residual temperature of the heating component decreases between two consecutive trigger operations, rapid heating can be achieved through the increased compensation power, thereby reducing insufficient atomization during the cold start of the aerosol generating device.

[0068] In one implementation, such as Figure 3 As shown, based on the correlation between the time interval and the compensation power, the first compensation power corresponding to the first time interval is determined, including the following steps S301 to S305: S301, if the first time interval is less than or equal to the first preset duration, the first preset power is determined as the first compensation power.

[0069] The first preset duration is the time after the aerosol generating device stops generating aerosols, during which the residual temperature of the heating component changes significantly. The first preset duration can be any duration from 1 minute to 3 minutes; this embodiment uses 1 minute as an example. It should be noted that the specific first preset duration can be determined based on the material of the heating component. For example, for a metal heating component, the first preset duration can be 1 minute, and for a ceramic heating component, the first preset duration can be 2 minutes.

[0070] The first preset power can be 0W.

[0071] When the first time interval is less than or equal to the first preset duration, it means that after the aerosol production equipment stops generating aerosols under the (i-1)th trigger operation, the residual temperature of the heating component has not dropped significantly. Under the i-th trigger operation, the residual temperature can be used to quickly heat up the heating component without the need for additional compensation power.

[0072] S302, if the first time interval is greater than the first preset duration and the first time interval is less than or equal to the second preset duration, determine the third product result between the first time interval and the preset compensation coefficient.

[0073] The second preset duration is longer than the first preset duration.

[0074] The preset compensation coefficient can be any value between 0.8 W / min and 1.2 W / min; in this embodiment, 1 W / min is used as an example. The second preset duration can be any value between 3 min and 7 min; in this embodiment, 5 min is used as an example.

[0075] S303, select the smaller of the third product result and the second preset power as the first compensation power.

[0076] The second preset power is greater than the first preset power. The second preset power is related to the preset compensation coefficient. The second preset power can be the product of the specified power and the preset compensation coefficient. For example, if the specified power is 5W and the preset compensation coefficient is 0.8W / min, the second preset power can be 5×0.8=4W.

[0077] When the first time interval is greater than the first preset duration and the first time interval is less than or equal to the second preset duration, the aerosol generating device can proceed according to formula 2. △P=min(5,Δt)×k The first compensation power is determined, where, Δt× k This represents the result of the third product. 5×k Indicates the second preset power. k This indicates the preset compensation coefficient. At this point, it means the residual temperature of the heating element decreases significantly as the time interval increases. The compensation power can be linearly increased as the time interval lengthens, and an upper limit for the compensation power can be set to ensure safe operation.

[0078] S304, if the first time interval is greater than the second preset duration, determine the time difference between the first time interval and the third preset duration.

[0079] S305, determine the first compensation power based on the sum of the logarithm of the time difference and the second preset power, wherein the second preset power is greater than the first preset power.

[0080] When the first time interval is longer than the second preset duration, the residual temperature of the heating component decreases significantly. However, if the first compensation power is determined further through S302 to S303, the power compensation range may be too large, causing the heating component to exceed the safe temperature, or the upper limit of the compensation power may be too small, resulting in slow heating of the heating component. The above method of determining the compensation power is not suitable for situations where the first time interval is longer than the second preset duration. In this case, using a logarithmic method can slow down the increase in compensation power, thereby ensuring rapid heating of the heating component while reducing the risk of overheating. The aerosol generation equipment can be specifically described using Formula 3. △P=5×k+log2(△t-4)×m Determine the first compensation power, where, m The logarithmic decay coefficient can be any value between 0.3 and 0.5. In this embodiment, 0.4 is used as an example.

[0081] In one implementation, the method further includes: updating the third preset power to the first compensation power when the first compensation power is greater than the third preset power, wherein the third preset power is greater than the second preset power. The third preset power can be any value between 30% and 50% of the initial output power; in this embodiment, 30% of the initial output power is used as an example. In this implementation, an upper limit value for the first compensation power is set, and when the determined first compensation power is greater than or equal to the third preset power, the third preset power is updated to the first compensation power. This can reduce the possibility of overheating of the heating component or poor aerosol taste caused by excessive compensation power.

[0082] In the technical solutions S301 to S305, when the first time interval is very short, the first compensation power is determined to be a small first preset power. This allows for full utilization of the residual heat of the heating component after the (i-1)th trigger operation during subsequent heating of the aerosol matrix, achieving rapid heating of the heating component with a small compensation power, thus saving energy. When the first time interval is short, linearly increasing the compensation power ensures a stable aerosol quantity after each trigger operation. Furthermore, by limiting the maximum value of the first compensation power from the second preset power during linear increase, overheating of the heating component can be reduced, thus providing a good taste for the user. When the first time interval is long, a logarithmic approach is used to determine the compensation power. This not only effectively increases the compensation power for rapid heating of the heating component during longer time intervals but also slows down the increase in compensation power, reducing overheating of the heating component and ensuring the safety of the aerosol generation equipment. Thus, by employing different strategies for different time interval lengths, more precise power compensation can be achieved, ensuring the stable performance of the aerosol production equipment.

[0083] S104. Based on the numerical relationship between the first statistical count and the preset count threshold, determine the sum of the initial output power and the first compensation power to obtain the i-th output power.

[0084] The preset number of times threshold can be any number from 2 to 5. In this embodiment, the preset number of times threshold is 4.

[0085] In one implementation, combined with the acquisition process of the first statistical count in S101, when the first statistical count is less than or equal to a preset threshold, it means that under the i-th trigger operation, the user has either started using the aerosol generating device to inhale aerosols or has only recently inhaled aerosols using the aerosol generating device. In this case, the heating component needs to heat up quickly. The aerosol generating device can directly determine the sum of the initial output power and the first compensation power as the output power for the i-th time, so as to rapidly heat up the heating component by using a larger output power.

[0086] When the first statistical count exceeds a preset threshold, it means that the user has been continuously using the aerosol generating device to inhale aerosols for an extended period. After stopping the aerosol generating function under the (i-1)th trigger operation, the residual heat of the heating component can support rapid heating under the i-th trigger operation. At this time, the aerosol generating device reduces the first compensation power, even reducing it to zero. The sum of the reduced first compensation power and the initial output power is determined as the output power for the i-th trigger operation. The aerosol generating device can be configured using Formula 4. △P'=△P-(C1-C_ref)×10%×△P Reduce the first compensation power until it is reduced to zero, where, C1 Indicates the first statistical count. C_ref This indicates a preset threshold number of times. △P’ This represents the first compensation power after reduction. Thus, when the first statistical count exceeds a preset threshold, the first compensation power is gradually reduced to minimize abrupt reductions in aerosol generation, thereby ensuring a better user experience.

[0087] In one implementation, to save energy consumption of the aerosol generating equipment, when the first statistical count is less than or equal to a preset threshold, formula 5 can be used. △P'=△P-C1×25%×△P The first compensation power is reduced to zero when the first statistical count exceeds a preset threshold. The sum of the reduced first compensation power and the initial output power is determined as the output power for the i-th time. It can be understood that the reduced first compensation power should be at least zero. This allows for power compensation during the cold start of the aerosol generator to ensure sufficient aerosol generation for user use. It also allows for a gradual reduction of the compensation power, enabling the aerosol generation volume to quickly recover to the initial output power level, preventing the aerosol generator from continuously operating at a high output power. This achieves power compensation while saving energy consumption of the aerosol generator.

[0088] In one implementation, such as Figure 4As shown, based on the numerical relationship between the first statistical count and the prediction count threshold, the sum of the initial output power and the first compensation power is determined to obtain the i-th output power, including the following S401 to S404: S401, if the first statistical count is less than a preset count threshold, determine the target compensation coefficient corresponding to the first statistical count from multiple preset supplementary coefficients.

[0089] The target compensation coefficient is less than or equal to one.

[0090] The aerosol generating device pre-stores multiple supplementary coefficients corresponding to different statistical counts. When the first statistical count is less than a preset threshold, the aerosol generating device can find the target compensation coefficient corresponding to the first statistical count from the stored multiple statistical counts. For example, the aerosol generating device can determine the target compensation coefficient corresponding to the first statistical count using Table 5 below.

[0091] Table 5 shows the supplementary coefficients corresponding to the various statistical frequencies.

[0092]

[0093] S402, determine the first product result between the target compensation coefficient and the first compensation power.

[0094] S403, determine the i-th output power based on the sum of the first product result and the initial output power.

[0095] For example, when the first statistical count is 2, the first supplementary power is 4W, and the initial output power is 33W, as shown in Table 5, the target compensation coefficient is 0.3. Then the first product result is 4×0.3=1.2W, and the i-th output power is 33+1.2=34.2W.

[0096] S404, if the first statistical count is greater than or equal to a preset count threshold, determine the initial output power as the i-th output power.

[0097] In the technical solutions S401 to S404, when the first statistical count is less than a preset threshold, the output power for starting the aerosol generation function under the i-th trigger operation (i.e., the current trigger operation) is determined according to the target compensation coefficient corresponding to the first statistical count. When the first statistical count is greater than or equal to the preset threshold, the output power is restored to the initial power. This ensures that after a cold start of the aerosol generation device, the output power can be adaptively adjusted during continuous use of the device, ensuring that the amount of aerosol generated gradually recovers with the cumulative number of starts of the aerosol generation function, ensuring the stability of the amount of aerosol generated, thereby optimizing the user experience.

[0098] S105, based on the i-th output power, control the heating component to heat the aerosol matrix for the i-th time.

[0099] The aerosol generation device controls its own battery to supply power to the heating component at the i-th output power, so that the heating component is heated and the aerosol generation function is activated to heat the aerosol matrix to generate aerosols.

[0100] It is understandable that when the aerosol generating device controls the heating component to heat the aerosol matrix, the aerosol generating device will also detect the time when the aerosol generating function stops and record the time when the aerosol generating function stops under the i-th trigger operation, so as to determine the compensation power under the i+1-th trigger operation.

[0101] It is understood that the airflow channel of the aerosol generation device includes a pressure sensor. During the i-th heating of the aerosol matrix by the heating component controlled by the aerosol generation device, it means that the user is inhaling aerosol. At this time, airflow passes through the airflow channel, and the pressure in the airflow channel will change. The pressure detected by the pressure sensor will also change. By analyzing the pressure change, it can be determined whether the aerosol generation function has been stopped. When the rate of pressure drop detected by the pressure sensor is less than the preset rate (for example, any one of -2 kPa / s to -0.5 kPa / s), it can be determined that the user is no longer inhaling aerosol. At this time, the aerosol generation function is stopped (that is, the power supply to the heating component is stopped). Thus, the moment when the aerosol generation function is stopped can be obtained.

[0102] Combination Figures 1 to 4 In one application scenario, such as Figure 5 As shown, in S51, the aerosol generating device detects an inhalation signal (an example of the i-th trigger operation). The aerosol generating device detects changes in airflow in the airflow channel through its own microphone assembly or pressure sensor. If the microphone assembly detects a rapid increase in its own capacitance or the pressure sensor detects a pressure drop rate greater than or equal to a preset rate, an inhalation signal is determined to be detected; otherwise, no inhalation signal is determined to be detected. Upon detecting an inhalation signal, the process proceeds to S52 to read the ambient temperature T (an example of obtaining the ambient temperature of the environment where the aerosol generating device is located at the first moment). After obtaining the ambient temperature T, the process proceeds to S53 to calculate the temperature compensation amount (according to the formula). P0'=P0×(1+α×△ T) In one example of determining the initial output power, the temperature compensation amount is the initial output power. Then, in S54, the time from the Real-Time Clock (RTC) module is read (an example of the first moment). In S55, the calculation... △t(An example of the first time interval). In S56, the dynamic compensation amount is calculated (an example of determining the first compensation power in S301 to S305). In S57, the operating power is calculated (an example of determining the i-th output power in S401 to S404). In S57, the aerosol generating device operates, controlling the heating component to heat the aerosol matrix at the determined operating power for the user to inhale the aerosol. When the user no longer inhales the aerosol, proceed to S58, and record the end time (an example of recording the moment when the aerosol generating function stops under the i-th trigger operation). In S59, enter standby mode.

[0103] In one example, with the fourth preset power being 15W, the first time interval ( △t The preset output power is 3 minutes. P0 The value is 10W, and the preset compensation coefficient is ( k) The logarithmic decay coefficient is 1.0. m Taking an ambient temperature (T) of 25℃ as an example, the coefficient of performance (α) is 0.4, the temperature coefficient (α) is 0.01, and the temperature coefficient (T) is 25℃.

[0104] First compensation power △P= min(5,3)×1.0 = 3W, initial output power P0'= 10×[1+0.01×(25-25)] = 10W (no temperature compensation at this time). Referring to Table 5, if the first statistical data is 1, then the i-th output power can be 10 + 3 = 13W; if the first statistical data is 2, then the i-th output power can be 10 + 0.3 × 3 = 10.9W; if the first statistical data is 3, then the i-th output power can be 10 + 0.15 × 3 = 10.45W; if the first statistical data is 1, then the i-th output power can be 10W.

[0105] In yet another example, the fourth preset power is 12W and the third preset power is 5W. △t It is 10 minutes. P0 For 8W, k It is 1.0. m Taking a value of 0.4, α as 0.01, and T as 15℃ as an example.

[0106] First compensation power △P= 5×1.0+log2(10-4)×0.4≈5+1.0=6W (take 5W), initial output power P0'= 8×[1+0.01×(25-15)] =8.8W. Referring to Table 5, if the first statistical data is 1, then the output power of the i-th time can be 8.8 + 5 = 13.8W; if the first statistical data is 2, then the output power of the i-th time can be 8.8 + 0.3 × 5 = 10.3W; if the first statistical data is 3, then the output power of the i-th time can be 8.8 + 0.15 × 5 = 9.55W; if the first statistical data is 0, then the output power of the i-th time can be 8.8W.

[0107] In another example, the fourth preset power is 16W and the third preset power is 10W. △t It is 60 minutes. P0 It is 12W. k It is 1.0. m Taking a value of 0.5, α as 0.01, and T as 5℃ as an example.

[0108] First compensation power △P= 5×1.2+log2(60-4)×0.5≈6+2.8=8.8W, initial output power P0'= 10×[1+0.01×(25-5)] = 14.4W. Referring to Table 5, if the first statistical data is 1, then the i-th output power can be 14.4 + 8.8 = 23.2W (taken as 16W); if the first statistical data is 2, then the i-th output power can be 14.4 + 0.3 × 8.8 = 17.04W (taken as 16W); if the first statistical data is 3, then the i-th output power can be 8.8 + 0.15 × 8.8 = 15.72W; if the first statistical data is , then the i-th output power can be 14.4W.

[0109] In another example, the fourth preset power is 16W and the third preset power is 5W. △t It is 15 minutes. P0 For 10W, k It is 1.0. m Taking a value of 0.4, α as 0.01, and T as 35℃ as an example.

[0110] The first compensation power is 5×1.0+log2(15-4)×0.4=5+3.46×0.4=6.38W (take 5W as the initial output power). P0' =10×[1+0.001×(25-35)]=9.9W. Referring to Table 5, if the first statistical data is 1, then the i-th output power can be 9.9+5=14.9W; if the first statistical data is 2, then the i-th output power can be 9.9+0.3×5=11.4W; if the first statistical data is 3, then the i-th output power can be 9.9+0.15×5=10.65W; if the first statistical data is , then the i-th output power can be 9.9W.

[0111] In this embodiment, in response to the i-th trigger operation at a first moment, the compensation power corresponding to the current i-th trigger operation is determined based on the time interval between the (i-1)-th and i-th trigger operations. The initial output power under the i-th trigger operation and the first statistical count of aerosol generation function activation are obtained. Based on the numerical relationship between this first statistical count and a preset threshold, the sum of the compensation power and the initial output power is determined to compensate for the initial output power under the i-th trigger operation. The heating component is then controlled to heat the aerosol matrix with the compensated i-th output power. This ensures that each time the aerosol generation device activates the aerosol generation function, power compensation for the heating component is performed based on the time interval between the current activation and the previous termination of the function. This allows the heating component to operate at a suitable output power, rapidly increasing the heating temperature to achieve a good atomization effect, reducing insufficient atomization, and improving the user experience. Furthermore, personalized power compensation based on different trigger operations within a time interval can be implemented to adapt to different user habits.

[0112] Figure 6 This is a schematic diagram of an aerosol generation device provided in one embodiment of this application. Figure 6 As shown, the aerosol generating device 6 of this embodiment includes: at least one processor 60 ( Figure 6 (Only one is shown in the image) a processor, a memory 61, and a computer program 62 stored in the memory 61 and executable on the at least one processor 60, which, when executing the computer program 62, implements the steps in any of the above-described power compensation method embodiments.

[0113] The aerosol generating device 6 can be a desktop computer, laptop, handheld computer, or cloud server, etc. This aerosol generating device may include, but is not limited to, a processor 60 and a memory 61. Those skilled in the art will understand that... Figure 6 This is merely an example of aerosol generating device 6 and does not constitute a limitation on aerosol generating device 6. It may include more or fewer components than shown, or combine certain components, or different components, such as input / output devices, network access devices, etc.

[0114] The processor 60 may be a Central Processing Unit (CPU), or it may be other general-purpose processors, 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, discrete hardware components, etc. A general-purpose processor may be a microprocessor or any conventional processor.

[0115] In some embodiments, the memory 61 may be an internal storage unit of the aerosol generating device 6, such as a hard disk or memory of the aerosol generating device 6. In other embodiments, the memory 61 may be an external storage device of the aerosol generating device 6, such as a plug-in hard disk, smart media card (SMC), secure digital (SD) card, flash card, etc., equipped on the aerosol generating device 6. Furthermore, the memory 61 may include both internal and external storage units of the aerosol generating device 6. The memory 61 is used to store operating systems, applications, bootloaders, data, and other programs, such as the program code of computer programs. The memory 61 can also be used to temporarily store data that has been output or will be output.

[0116] Corresponding to the power compensation method described in the above embodiments, Figure 7 A structural block diagram of the power compensation device provided in the embodiments of this application is shown. For ease of explanation, only the parts related to the embodiments of this application are shown.

[0117] Reference Figure 7 This device is used in aerosol generation equipment, which includes a heating component and an aerosol matrix. The device includes: The acquisition module 710 is used to respond to the i-th trigger operation at the first moment, and acquire the initial output power, the first statistical count, and the historical end time corresponding to the i-th trigger operation. The i-th trigger operation is used to indicate the start of the aerosol generation function of the aerosol generation device. The historical end time is the time when the aerosol generation device stops the aerosol generation function under the (i-1)-th trigger operation. The first statistical count represents the cumulative number of times the aerosol generation function is started under the i-th trigger operation, where i is a positive integer greater than 1. The first determining module 720 is used to determine the first time interval between the first moment and the end of the history; The second determining module 730 is used to determine the first compensation power corresponding to the first time interval based on the correlation between the time interval and the compensation power. The third determining module 740 is used to determine the sum of the initial output power and the first compensation power based on the numerical relationship between the first statistical count and the preset count threshold, so as to obtain the i-th output power; The control module 750 is used to control the heating component to heat the aerosol matrix for the i-th time based on the i-th output power. It includes: In some embodiments, the third determining module is further configured to: Based on the numerical relationship between the first statistical count and the prediction count threshold, the sum of the initial output power and the first compensation power is determined to obtain the i-th output power, including: If the first statistical count is less than a preset count threshold, the target compensation coefficient corresponding to the first statistical count is determined from multiple preset supplementary coefficients. Determine the first product result between the target compensation coefficient and the first compensation power; The i-th output power is determined based on the sum of the first product result and the initial output power; If the first statistical count is greater than or equal to a preset count threshold, the initial output power is determined as the output power of the i-th count.

[0118] In some embodiments, the acquisition module is further configured to: Get the ambient temperature of the aerosol generating device at the first moment and the preset output power corresponding to the i-th trigger operation; Determine the temperature difference between the ambient temperature and the preset reference temperature; The initial output power is determined based on the second product of the temperature difference, the preset temperature coefficient, and the preset output power.

[0119] In some embodiments, the second determining module is further configured to: If the first time interval is less than or equal to the first preset duration, the first preset power is determined as the first compensation power; If the first time interval is greater than the first preset duration and the first time interval is less than or equal to the second preset duration, determine the third product result between the first time interval and the preset compensation coefficient, wherein the second preset duration is greater than the first preset duration; Choose the smaller of the third product result and the second preset power as the first compensation power; If the first time interval is greater than the second preset duration, determine the time difference between the first time interval and the third preset duration; The first compensation power is determined based on the sum of the logarithm of the time difference and the second preset power, and the second preset power is greater than the first preset power.

[0120] In some embodiments, the apparatus further includes: The update module is used to update the third preset power to the first compensation power when the first compensation power is greater than the third preset power, and the third preset power is greater than the second preset power.

[0121] In some embodiments, the updating module is further configured to update the fourth preset power to the initial output power when the initial output power is greater than the fourth preset power, and the third preset power is less than the fourth preset power.

[0122] It should be noted that the information interaction and execution process between the above-mentioned devices / units are based on the same concept as the method embodiments of this application. For details on their specific functions and technical effects, please refer to the method embodiments section, and they will not be repeated here.

[0123] Those skilled in the art will clearly understand that, for the sake of convenience and brevity, the above-described division of functional units and modules is merely an example. In practical applications, the above functions can be assigned to different functional units and modules as needed, that is, the internal structure of the device can be divided into different functional units or modules to complete all or part of the functions described above. The functional units and modules in the embodiments can be integrated into one processing unit, or each unit can exist physically separately, or two or more units can be integrated into one unit. The integrated unit can be implemented in hardware or as a software functional unit. Furthermore, the specific names of the functional units and modules are only for easy differentiation and are not intended to limit the scope of protection of this application. The specific working process of the units and modules in the above system can be referred to the corresponding process in the foregoing method embodiments, and will not be repeated here.

[0124] This application also provides a computer-readable storage medium storing a computer program that, when executed by a processor, can implement the steps in the above-described method embodiments.

[0125] This application provides a computer program product that, when run on an aerosol generating device, enables the aerosol generating device to implement the steps described in the above-described method embodiments.

[0126] If the integrated unit is implemented as a software functional unit and sold or used as an independent product, it can be stored in a computer-readable storage medium. Based on this understanding, all or part of the processes in the methods of the above embodiments of this application can be implemented by a computer program instructing related hardware. The computer program can be stored in a computer-readable storage medium, and when executed by a processor, it can implement the steps of the various method embodiments described above. The computer program includes computer program code, which can be in the form of source code, object code, executable files, or certain intermediate forms. The computer-readable medium can include at least: any entity or device capable of carrying the computer program code to a photographing device / terminal device, a recording medium, a computer memory, a read-only memory (ROM), a random access memory (RAM), an electrical carrier signal, a telecommunication signal, and a software distribution medium. Examples include USB flash drives, portable hard drives, magnetic disks, or optical disks.

[0127] In the above embodiments, the descriptions of each embodiment have different focuses. For parts that are not described in detail or recorded in a certain embodiment, please refer to the relevant descriptions of other embodiments.

[0128] Those skilled in the art will recognize that the units and algorithm steps of the various examples described in conjunction with the embodiments disclosed herein can be implemented in electronic hardware, or a combination of computer software and electronic hardware. Whether these functions are implemented in hardware or software depends on the specific application and design constraints of the technical solution. Those skilled in the art can use different methods to implement the described functions for each specific application, but such implementation should not be considered beyond the scope of this application.

[0129] In the embodiments provided in this application, it should be understood that the disclosed apparatus / network devices and methods can be implemented in other ways. For example, the apparatus / network device embodiments described above are merely illustrative. For instance, the division of modules or units is only a logical functional division, and in actual implementation, there may be other division methods. For example, multiple units or components may be combined or integrated into another system, or some features may be ignored or not executed. Furthermore, the coupling or direct coupling or communication connection shown or discussed may be through some interfaces; the indirect coupling or communication connection between devices or units may be electrical, mechanical, or other forms.

[0130] The units described as separate components may or may not be physically separate. The components shown as units may or may not be physical units; that is, they may be located in one place or distributed across multiple network units. Some or all of the units can be selected to achieve the purpose of this embodiment according to actual needs.

[0131] The above-described embodiments are only used to illustrate the technical solutions of this application, and are not intended to limit them. Although this application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that modifications can still be made to the technical solutions described in the foregoing embodiments, or equivalent substitutions can be made to some of the technical features. Such modifications or substitutions do not cause the essence of the corresponding technical solutions to deviate from the spirit and scope of the technical solutions of the embodiments of this application, and should all be included within the protection scope of this application.

Claims

1. A power compensation method, characterized in that, The method is applied to an aerosol generation device, the aerosol generation device including a heating component and an aerosol matrix, and includes: In response to the i-th trigger operation at the first moment, the initial output power, the first statistical count, and the historical end time corresponding to the i-th trigger operation are obtained. The i-th trigger operation is used to indicate the start of the aerosol generation function of the aerosol generation device. The historical end time is the time when the aerosol generation device stops the aerosol generation function under the (i-1)-th trigger operation. The first statistical count represents the cumulative number of times the aerosol generation function is started under the i-th trigger operation, where i is a positive integer greater than 1. Determine the first time interval between the first moment and the end of the history; The first compensation power corresponding to the first time interval is determined based on the correlation between the time interval and the compensation power. Based on the numerical relationship between the first statistical count and the preset count threshold, the sum of the initial output power and the first compensation power is determined to obtain the i-th output power; Based on the i-th output power, the heating component is controlled to heat the aerosol matrix for the i-th time.

2. The method as described in claim 1, characterized in that, The step of determining the sum of the initial output power and the first compensation power based on the numerical relationship between the first statistical count and the prediction count threshold, to obtain the i-th output power, includes: If the first statistical count is less than the preset count threshold, the target compensation coefficient corresponding to the first statistical count is determined from a plurality of preset supplementary coefficients; Determine the first product result between the target compensation coefficient and the first compensation power; The i-th output power is determined based on the sum of the first product result and the initial output power; If the first statistical count is greater than or equal to the preset count threshold, the initial output power is determined to be the i-th output power.

3. The method as described in claim 1 or 2, characterized in that, The step of obtaining the initial output power corresponding to the i-th trigger operation includes: Obtain the ambient temperature of the environment where the aerosol generating device is located at the first moment and the preset output power corresponding to the i-th trigger operation; Determine the temperature difference between the ambient temperature and the preset reference temperature; The initial output power is determined based on the second product of the temperature difference, the preset temperature coefficient, and the preset output power.

4. The method as described in claim 3, characterized in that, The step of determining the first compensation power corresponding to the first time interval based on the correlation between the time interval and the compensation power includes: If the first time interval is less than or equal to the first preset duration, the first preset power is determined as the first compensation power; If the first time interval is greater than the first preset duration and the first time interval is less than or equal to the second preset duration, determine the third product result between the first time interval and the preset compensation coefficient, wherein the second preset duration is greater than the first preset duration; The smaller of the third product result and the second preset power is selected as the first compensation power, wherein the second preset power is greater than the first preset power; If the first time interval is greater than the second preset duration, determine the time difference between the first time interval and the third preset duration; The first compensation power is determined based on the sum of the logarithm of the time difference and the second preset power, wherein the second preset power is greater than the first preset power.

5. The method as described in claim 4, characterized in that, The method further includes: If the first compensation power is greater than the third preset power, the third preset power is updated to the first compensation power, and the third preset power is greater than the second preset power.

6. The method as described in claim 3, characterized in that, The method further includes: If the initial output power is greater than the fourth preset power, the fourth preset power is updated to the initial output power, and the third preset power is less than the fourth preset power.

7. A power compensation device, characterized in that, An aerosol generating device, comprising a heating component and an aerosol matrix, is used in an aerosol generating apparatus. The apparatus includes: The acquisition module is used to respond to the i-th trigger operation at a first moment, acquire the initial output power, the first statistical count, and the historical end time corresponding to the i-th trigger operation, the i-th trigger operation is used to indicate the start of the aerosol generation function of the aerosol generation device, the historical end time is the time when the aerosol generation device stops the aerosol generation function under the (i-1)-th trigger operation, the first statistical count represents the cumulative number of times the aerosol generation function is started under the i-th trigger operation, and i is a positive integer greater than 1; The first determining module is used to determine the first time interval between the first moment and the end of the history; The second determining module is used to determine the first compensation power corresponding to the first time interval based on the correlation between the time interval and the compensation power. The third determining module is used to determine the sum of the initial output power and the first compensation power based on the numerical relationship between the first statistical count and the preset count threshold, so as to obtain the i-th output power; The control module is used to control the heating component to heat the aerosol matrix for the first time according to the i-th output power.

8. An aerosol generating device, comprising a memory, a processor, and a computer program stored in the memory and executable on the processor, characterized in that, When the processor executes the computer program, it implements the steps of the method as described in any one of claims 1 to 6.

9. A computer-readable storage medium storing a computer program, characterized in that, When the computer program is executed by a processor, it implements the method as described in any one of claims 1 to 6.

10. A computer program product, characterized in that, Includes a computer program, which, when run, causes the method as described in any one of claims 1-6 to be performed.