Atomization control method

By superimposing a periodic noise signal on the atomization device, a heating control method is used to interfere with the molecular deposition on the surface of the atomizer core and the oil-conducting material, thereby solving the problems of unstable flavor and shortened life caused by carbon deposition on the atomizer core, and achieving the delay of carbon deposition on the atomizer core and improving user experience.

CN120753445APending Publication Date: 2025-10-10HG INNOVATION LTD
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Patent Information

Application Number
CN202511079539.5
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-01
Publication Date
2025-10-10

AI Technical Summary

Technical Problem

The carbon deposits in the atomizer core of the atomizer device will reduce the flavor stability and shorten the lifespan, affecting the user experience.

Method used

By superimposing a periodic noise signal with an amplitude smaller than the basic heating signal on the basic heating signal, a heating modulation signal is generated, and a heating control signal is output according to the heating modulation signal to interfere with the molecular deposition process on the surface of the atomizer core and inside the oil guide material, thereby inhibiting the formation of carbon deposits.

Benefits of technology

It slows down the carbon deposition rate of the atomizer core, maintains the permeability of the oil-conducting material, significantly delays the flavor decay of the atomizer device, and improves the user experience.

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Abstract

The invention discloses an atomization control method which is applied to an atomization assembly and comprises the steps that a basic heating signal and a noise signal are determined; superposing the noise signal to the basic heating signal to obtain a heating modulation signal; wherein the noise signal is set to be a periodic signal of which the amplitude is smaller than that of the basic heating signal; and outputting a heating control signal according to the heating modulation signal. According to the application, the carbon deposition speed of the atomization core can be delayed, the permeability of the oil guide material can be maintained, the flavor attenuation of the mouth feel of the atomization equipment can be obviously delayed, and the user experience is improved.
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Description

Technical Field

[0001] The present invention relates to the field of atomization technology, and in particular to an atomization control method. Background Art

[0002] Carbon deposits on the atomizer core are a major factor contributing to flavor degradation in atomizer devices. Traditional atomizer devices lack technology to prevent carbon deposit formation. As users use the device, carbon deposits gradually accumulate on the atomizer core, ultimately making it difficult to maintain flavor stability and even shortening the lifespan of the atomizer core, leading to a poor user experience. Therefore, atomizer devices urgently need a technical solution that can slow down carbon deposits on the atomizer core. Summary of the Invention

[0003] The present application provides an atomization control method for solving the problem that the flavor stability of an atomization device is reduced and the life of the atomization core is shortened due to carbon deposition in the atomization core.

[0004] The present application provides an atomization control method, which is applied to an atomization component, comprising:

[0005] Determine the fundamental heating signal and the noise signal;

[0006] Superimposing the noise signal on the basic heating signal to obtain a heating modulation signal; wherein the noise signal is set to be a periodic signal with an amplitude smaller than the amplitude of the basic heating signal;

[0007] outputting a heating control signal according to the heating modulation signal;

[0008] Wherein, the atomization component is configured to heat and atomize the aerosol medium according to the heating control signal.

[0009] In one embodiment of the atomization control method of the present application, the step of outputting a heating control signal according to the heating modulation signal includes:

[0010] Obtaining an offset value according to the heating modulation signal and a preset power interval curve;

[0011] generating a heating control signal based on the offset value and the heating modulation signal;

[0012] Wherein, the heating control signal is within the range of the power interval curve.

[0013] In one embodiment of the atomization control method of the present application, generating a heating control signal based on the offset value and the heating modulation signal includes:

[0014] When the heating modulation signal is within the power interval curve, setting the heating modulation signal as the heating control signal;

[0015] When the heating modulation signal is not within the power interval curve, adjusting the overload signal in the heating modulation signal so that the adjusted heating modulation signal is within the range of the power interval curve, and setting the adjusted heating modulation signal as the heating control signal;

[0016] The overload signal is the heating modulation signal that is not within the power range.

[0017] In one embodiment of the atomization control method of the present application, the power interval curve includes an upper limit curve for calibrating the upper limit value of the heating modulation signal and a lower limit curve for calibrating the lower limit value of the heating modulation signal;

[0018] The adjusting the overload signal in the heating modulation signal includes:

[0019] Under the same time sequence, a portion of the overload signal having an amplitude greater than the upper limit curve is recorded as a first replaced curve, and a portion of the upper limit curve having an amplitude less than the first replaced curve is recorded as a first to-be-replaced curve;

[0020] Under the same time sequence, a portion of the overload signal having an amplitude smaller than the lower limit curve is recorded as a second replaced curve, and a portion of the lower limit curve having an amplitude larger than the second replaced curve is recorded as a second to-be-replaced curve;

[0021] In the heating modulation signal, the first replaced curve is replaced by the first to-be-replaced curve, and the second replaced curve is replaced by the second to-be-replaced curve, to obtain an adjusted heating modulation signal.

[0022] In an embodiment of the atomization control method of the present application, the signal types of the noise signal include sine wave, square wave, sawtooth wave and periodic composite wave signals.

[0023] In one embodiment of the atomization control method of the present application, the atomization control method further includes:

[0024] Setting the working mode according to the mode setting information; wherein the working mode includes a basic mode and a delayed mode;

[0025] In the basic mode, the basic heating signal is set as the heating control signal;

[0026] In the delay mode, a heating control signal is output according to the heating modulation signal.

[0027] In one embodiment of the atomization control method of the present application, the atomization control method further includes:

[0028] The frequency and / or amplitude of the noise signal is set according to the noise setting information.

[0029] In one embodiment of the atomization control method of the present application, the setting range of the amplitude of the noise signal is ±0.5% P0; wherein P0 represents the amplitude of the basic heating signal.

[0030] In one embodiment of the atomization control method of the present application, the frequency setting range of the noise signal is 0.1 Hz to 5 Hz.

[0031] In one embodiment of the atomization control method of the present application, the atomization control method further includes:

[0032] The noise setting information and / or the mode setting information are set according to the operation of the interactive terminal; wherein the interactive terminal includes an operation panel and a mobile terminal.

[0033] According to the atomization control method of the above embodiment, by superimposing the basic heating signal on the basic heating signal, the atomizer core generates a small power or temperature fluctuation to interfere with the deposition process of aerosol medium molecules on the surface of the atomizer core and inside the oil-conducting material. This can effectively inhibit the formation of molecular deposition boundary layers and local hot spots that accelerate the formation of carbon deposition, thereby slowing down the carbon deposition rate of the atomizer core. At the same time, it can also maintain the permeability of the oil-conducting material, thereby significantly delaying the flavor attenuation of the taste of the atomizer device, effectively improving the user experience, and playing a positive role in improving product competitiveness and increasing user stickiness. BRIEF DESCRIPTION OF THE DRAWINGS

[0034] Figure 1 A flowchart of a heating control method in one embodiment;

[0035] Figure 2 is a flowchart of step S3 in one embodiment;

[0036] Figure 3 is a flowchart of step S32 in one embodiment;

[0037] Figure 4 FIG. 4 is a flowchart of a procedure for adjusting the overload signal in step S322 in an embodiment. DETAILED DESCRIPTION

[0038] The present application is further described in detail below by means of specific embodiments in conjunction with the accompanying drawings. Similar elements in different embodiments are numbered with associated similar elements. In the following embodiments, many detailed descriptions are provided to enable the present application to be better understood. However, those skilled in the art will readily appreciate that some of the features may be omitted in different circumstances, or may be replaced by other elements, materials, or methods. In some cases, some operations related to the present application are not shown or described in the specification. This is to avoid the core portion of the present application being overwhelmed by excessive descriptions. For those skilled in the art, it is not necessary to describe these related operations in detail. They can fully understand the related operations based on the description in the specification and the general technical knowledge in the art.

[0039] In addition, the features, operations, or characteristics described in the specification may be combined in any appropriate manner to form various embodiments. Furthermore, the steps or actions in the method description may be reordered or adjusted in a manner readily apparent to those skilled in the art. Therefore, the various sequences in the specification and drawings are provided solely for the purpose of clearly describing a particular embodiment and are not intended to be mandatory, unless otherwise specified.

[0040] The serial numbers assigned to components herein, such as "first," "second," etc., are used solely to distinguish the objects being described and do not convey any sequential or technical meaning. References to "connection" and "coupling" herein, unless otherwise specified, include both direct and indirect connections (couplings).

[0041] The problem of existing products' atomization devices having carbon deposits on the atomization core leading to reduced flavor stability and shortened atomization core life, affecting user experience, is addressed.

[0042] To this end, this application proposes an atomization control method, which causes the heating power of the atomizer core to fluctuate so as to cause the temperature of the atomizer core to fluctuate, thereby interfering with the deposition process of oily aerosol medium molecules on the surface of the atomizer core and inside the oil-conducting material, thereby slowing down the carbon deposition rate of the atomizer core and maintaining the permeability of the oil-conducting material.

[0043] The following specific embodiments describe in detail the technical solution of the present application and how the technical solution of the present application solves the above-mentioned technical problems. The following specific embodiments can be combined with each other, and the same or similar concepts or processes may not be repeated in some embodiments. The embodiments of the present application will be described below in conjunction with the accompanying drawings.

[0044] Figure 1The figure is a flowchart of a heating control method according to an embodiment. The heating control method provided in the embodiment of the present application can be applied to the controller of an atomizer device to output a heating control signal to the atomizer assembly, and the atomizer assembly is configured to heat and atomize the aerosol medium according to the heating control signal. In addition, the atomizer assembly includes components such as an atomizer core for heating the aerosol medium, an inhalation sensor, and a heating module. The heating module is used to control the heating power of the atomizer core according to the heating control signal output by the controller.

[0045] like Figure 1 As shown, the atomization control method may include the following steps: S1, determining a basic heating signal and a noise signal; S2, superimposing the noise signal on the basic heating signal to obtain a heating modulation signal; wherein the noise signal is set to a periodic signal with an amplitude smaller than the amplitude of the basic heating signal; S3, outputting a heating control signal according to the heating modulation signal.

[0046] The basic heating signal is used to control the basic heating power of the atomizer core. Furthermore, the basic heating signal can be calculated using existing temperature control algorithms (including PID algorithms, etc.) based on the target temperature and real-time temperature of the atomizer core. For methods for determining the target temperature (real-time temperature) of the atomizer core and the temperature control algorithms for atomizer equipment, please refer to the existing art and will not be elaborated here.

[0047] Since the noise signal is set to a signal with an amplitude smaller than the basic heating signal, when the noise signal acts on the atomizer core, it can cause the atomizer core heating power to produce micro-fluctuations. In addition, setting the noise signal to a periodic signal can ensure that the power micro-fluctuations are periodic changes, ensuring the continuity of the heating power micro-fluctuations.

[0048] The heating control signal controls the heating power input to the atomizer core. Under the influence of the basic heating signal, it ensures that the atomizer core is heated at the appropriate power, which is the basis for ensuring taste and flavor. Under the influence of the noise signal, the atomizer core's heating power will fluctuate periodically within a small amplitude range, causing the atomizer core heating power to micro-fluctuate. When the atomizer core heating power micro-fluctuates, due to the tiny temperature fluctuations, the atomizer core surface and the nearby aerosol medium will experience localized thermal expansion and contraction, microfluidic oscillation, or enhanced molecular motion, thereby disrupting the stable attachment of carbon deposit precursor molecules or deposited particles, delaying the formation of their boundary layer, and achieving the effect of breaking the molecular deposition boundary layer. Since the molecular deposition boundary layer accelerates carbon deposit formation, breaking the molecular deposition boundary layer can slow the rate of carbon deposition in the atomizer core.

[0049] Moreover, small temperature fluctuations can also help to even out the temperature distribution of the atomizer core, thereby reducing the formation of local hot spots, which will also accelerate the formation of carbon deposits. Therefore, inhibiting the formation of local hot spots can also inhibit the rapid formation of carbon deposits.

[0050] In addition, the slight temperature fluctuation also helps to improve the liquid supplement efficiency of the oil guide material and make the aerosol medium vaporize more uniformly, which helps to improve the taste and flavor stability.

[0051] Understandably, the embodiment can generate slight power or temperature fluctuations in the atomizing core by superimposing the base heating signal on the base heating signal, so as to interfere with the deposition process of aerosol medium molecules on the surface of the atomizing core and inside the oil guide material, effectively inhibit the formation of molecular deposition boundary layer and local overheating point which leads to accelerated carbon deposition, thereby delaying the carbon deposition speed of the atomizing core, while maintaining the permeability of the oil guide material, thus significantly delaying the flavor decay of the taste of the atomizing device, effectively improving the user experience, and playing a positive role in improving product competitiveness and increasing user stickiness.

[0052] Based on step S2, in some embodiments, the noise signal can be superimposed on the base heating signal in the following manner: outputting the noise signal and the base heating signal to an adder respectively, and superimposing the noise signal and the base heating signal through the adder. In the present embodiment, the controller can output the noise signal and the base heating signal to the adder respectively, so that the noise signal and the base heating signal can be superimposed in the adder, which has the advantages of simple algorithm and easy implementation. In addition, when the controller is an FPGA, the adder can also be integrated into the controller. In addition, the adder can be an existing voltage adder, which can realize the amplitude addition of two signals.

[0053] In order to ensure that the noise signal and the base heating signal are output synchronously, in some embodiments, step S2 can further include the following steps: determining whether the base heating signal is output, and stopping outputting the noise signal when the base heating signal is not output.

[0054] It should be noted that whether the controller outputs the base heating signal is related to whether the atomizing device needs to heat the atomizing core, and the atomizing device usually outputs the heating signal in the case of user inhaling, preheating the atomizing core, maintaining the temperature of the atomizing core, etc. The role of the present embodiment is to ensure that the noise signal is output only when the base heating signal is output, so as to ensure that the power micro-motion takes effect during the heating of the atomizing core.

[0055] Based on step S2, in other embodiments, the noise signal can also be superimposed on the base heating signal in the following manner: adding the algorithm function for generating the noise signal to the algorithm function for generating the base heating signal to obtain an algorithm function for generating a heating modulation signal. In the present embodiment, the controller can determine the heating modulation signal through the algorithm function of the heating modulation signal, and signal superposition can be realized by using a single digital-to-analog conversion pin of the controller, and the synchronization of the noise signal and the base heating signal can be ensured.

[0056] In some embodiments, the noise signal may include a sine wave, a square wave, a sawtooth wave, and a periodic composite wave signal. The sine wave, square wave, sawtooth wave, and periodic composite wave signals may be generated by executing a specific waveform algorithm function on a processor (including a microprocessor, a single-chip microcomputer, etc.). Alternatively, the signals may be generated from an existing waveform generator, which is not specifically limited herein.

[0057] When the noise signal is a sine wave, it can make the fluctuation of heating power smoother, avoid large fluctuations in heating power, and help improve the heating stability of the atomizer core and maintain the flavor stability of the atomizer device.

[0058] When the noise signal is a square wave, the algorithm function for generating the square wave is relatively simple, which helps to simplify the superposition algorithm of the noise signal and the basic heating signal. In addition, the square wave helps to ensure that the average heating power of the atomizer core remains unchanged during the cycle time, so as to avoid power changes affecting the taste and flavor of the atomizer device.

[0059] When the noise signal is a sawtooth wave, the atomizer core heating power fluctuates linearly when the power increases and decreases linearly when the power decreases, forming a power fluctuation phenomenon of slow rise and sudden drop. This can specifically produce a localized thermal expansion and contraction effect, helping to improve the effectiveness of delaying carbon deposition. However, the superposition of sawtooth waves may cause fluctuations in the average heating power.

[0060] The composite wave signal can be formed by superimposing at least two periodic signals such as a sine wave, square wave, or sawtooth wave. The advantage of the composite wave signal is that it can generate diversified power micro-movements in the atomizer core to meet various application requirements and improve the generalization capability of this application.

[0061] In addition, the signal type of the noise signal can be customized according to actual needs and is not specifically limited.

[0062] Because a noise signal with too small an amplitude will affect the carbon deposit suppression effect, while a noise signal with too large an amplitude will cause a significant change in heating power, affecting the atomization effect and being easily perceived by the user, in some embodiments, the noise signal amplitude is set within a range of ±0.5% P0, where P0 represents the amplitude of the basic heating signal.

[0063] In this embodiment, on the one hand, the amplitude of the noise signal can be ensured to be significantly smaller than the amplitude of the basic heating signal, ensuring that the amplitude of the atomizer core heating power micro-fluctuation is small enough to prevent the user from directly perceiving the power fluctuation or affecting the main atomization function. On the other hand, the amplitude of the noise signal will not be too small to ensure that the power micro-fluctuation can suppress the formation of carbon deposits.

[0064] In some embodiments, the frequency setting range of the noise signal is 0.1 Hz to 5 Hz. By limiting the frequency setting range of the noise signal to a certain range, this embodiment ensures that the frequency of the noise signal is low enough to ensure sufficient fluctuations over a long inhalation cycle, and also ensures that the frequency of the noise signal is high enough to ensure that the atomizer core can generate power or temperature disturbances at the microscopic level, thereby ensuring the effect of suppressing carbon deposit formation.

[0065] In some embodiments, the frequency of the noise signal may be 0.5 Hz. This embodiment can ensure that the frequency of the noise signal is low enough but not too low, thereby effectively suppressing the formation of carbon deposits.

[0066] In some embodiments, the atomization control method may further include the following steps: S01: setting at least one of the frequency, amplitude, and signal type of the noise signal according to noise setting information. In this embodiment, the noise setting information may be pre-stored in the memory of the atomization device, allowing the user to set the frequency and / or amplitude without manual operation, thereby improving the user experience.

[0067] In order to reduce the amount of computation of the processor in the atomization device, in some embodiments, the atomization control method may further include: executing step S01 once each time the noise setting information is updated or the atomization device is powered on.

[0068] Based on step S3, in some embodiments, as Figure 2 As shown, a heating control signal can be output according to a heating modulation signal by executing the following steps: S31, obtaining an offset value according to the heating modulation signal and a preset power interval curve; S32, generating a heating control signal based on the offset value and the heating modulation signal; wherein the heating control signal is within the range of the power interval curve.

[0069] Because the noise signal is superimposed on the basic heating signal, the heating modulation signal has the risk of short-term excessive power or short-term insufficient power. If the short-term power is too high, the atomizer core may produce hot spots or even be damaged due to excessive power. If the short-term power is too low, the aerosol medium may have poor atomization quality due to insufficient temperature, resulting in poor taste and flavor. When the heating modulation signal has a short-term excessive power or a short-term insufficient power, it means that the heating control signal is not within the range of the power interval curve, that is, there is an offset, and the offset value includes offset information that characterizes the short-term power of the heating modulation signal exceeding the range of the power interval curve (including the case where the short-term power is too high or the short-term power is too low). In this embodiment, the offset value is determined by comparing the heating modulation signal with the power interval curve, and the heating modulation signal is adjusted according to the offset value so that the heating control signal is within the range of the power interval curve, thereby ensuring that after the heating control signal acts on the heating module, the heating power of the atomizer core will not be too high or too low, thereby avoiding the safety of the atomizer core and ensuring the taste and flavor of the atomizer device.

[0070] Based on step S31, in some embodiments, the power range curve includes an upper limit curve for calibrating the upper limit of the heating modulation signal and a lower limit curve for calibrating the lower limit of the heating modulation signal. It is understood that when the heating modulation signal is between the upper limit curve and the lower limit curve, and there is no point or line segment passing through the upper limit curve and the lower limit curve, it can be determined that the heating modulation signal is within the power range curve; otherwise, it is determined that the heating modulation signal is not within the power range curve.

[0071] In some embodiments, the upper limit curve can be determined by the maximum allowable amplitude of the base heating signal. For example, the upper limit curve can be set to a straight line with an amplitude that is always equal to the maximum allowable amplitude. The maximum allowable amplitude is used to prevent the atomizer core from being heated too high.

[0072] Accordingly, in some embodiments, the upper limit curve can be determined by the minimum allowable amplitude of the basic heating signal. For example, the lower limit curve can be set to a straight line with an amplitude that is always equal to the minimum allowable amplitude. The minimum allowable amplitude is used to avoid poor atomization due to insufficient atomizer core heating power.

[0073] Based on step S32, in some embodiments, as Figure 3As shown, a heating control signal can be generated based on the offset value and the heating modulation signal by executing the following steps: S321, when the heating modulation signal is within the power interval curve, the heating modulation signal is set as the heating control signal; S322, when the heating modulation signal is not within the power interval curve, the overload signal in the heating modulation signal is adjusted so that the adjusted heating modulation signal is within the range of the power interval curve, and the adjusted heating modulation signal is set as the heating control signal; wherein the overload signal is a heating modulation signal that is not within the range of the power interval curve.

[0074] This embodiment adjusts the portion of the point or line segment that passes through the upper limit curve and the lower limit curve (i.e., the overload signal) to ensure that the heating control signal can be a heating modulation signal within the power range curve, thereby ensuring the safety of the atomizer core and the stability of the taste and flavor of the atomizer device.

[0075] Based on step S322, in some embodiments, as Figure 4 As shown, the overload signal can be adjusted by executing the following steps: S3221, under the same timing, the portion of the overload signal with an amplitude greater than the upper limit curve is recorded as the first replaced curve, and the portion of the upper limit curve with an amplitude less than the first replaced curve is recorded as the first curve to be replaced; S3222, under the same timing, the portion of the overload signal with an amplitude less than the lower limit curve is recorded as the second replaced curve, and the portion of the lower limit curve with an amplitude greater than the second replaced curve is recorded as the second curve to be replaced; S3223, in the heating modulation signal, the first replaced curve is replaced by the first curve to be replaced and the second replaced curve is replaced by the second curve to be replaced, to obtain an adjusted heating modulation signal.

[0076] It can be understood that this embodiment can adjust the part of the overload signal with an amplitude greater than the upper limit curve to the maximum allowable amplitude, and adjust the part with an amplitude less than the lower limit curve to the minimum allowable amplitude, so that the heating power can produce maximum micro-motion, thereby maximizing the effect of delaying carbon deposition.

[0077] Based on step S32, in other embodiments, a heating control signal can be generated based on the offset value and the heating modulation signal in the following manner: before the heating control signal is output, determine whether the current theoretical amplitude of the heating control signal is a high level; when the current theoretical amplitude is not a high level, set the heating control signal to a high level and output it; when the current theoretical amplitude is not a low level, determine whether the current theoretical amplitude is greater than the maximum allowable amplitude and whether the current theoretical amplitude is less than the minimum allowable amplitude; when the current theoretical amplitude is greater than the maximum allowable amplitude, set the amplitude of the heating control signal to the maximum allowable amplitude and output it; when the current theoretical amplitude is less than the minimum allowable amplitude, set the amplitude of the heating control signal to the minimum allowable amplitude and output it.

[0078] When the basic heating signal is a periodic signal such as a square wave, the current theoretical amplitude of the heating control signal can be determined based on the algorithm function of the basic heating signal to determine whether it is at a high level. When the current theoretical amplitude is not at a high level, it means that the heating control signal may be at a low level, or there may be no basic heating signal output. In order to avoid negative pressure in the heating control signal, the heating control signal can be set to a low level before output. When the current theoretical amplitude is at a high level, it is determined whether the current theoretical amplitude of the heating control signal is greater than the maximum allowable amplitude or less than the minimum allowable amplitude. The amplitude of the heating control signal is adjusted according to the judgment result so that when the heating control signal is at a high level, the amplitude is not greater than the maximum allowable amplitude, nor less than the minimum allowable amplitude, so as to ensure the safety of the atomizer core and the stability of the atomized taste and flavor.

[0079] It should be noted that the heating modulation signal is a signal that changes with time. Accordingly, the current theoretical amplitude of the heating control signal is the amplitude corresponding to the heating modulation signal at the current timing.

[0080] In some embodiments, the atomization control method may further include the following steps: S02, setting the working mode according to the mode setting information; wherein the working mode includes a basic mode and a delay mode.

[0081] In Basic mode, the basic heating signal is set as the heating control signal. Some users prioritize flavor stability, and Basic mode effectively blocks noise signals, preventing the atomizer core from experiencing power fluctuations. This ensures stable atomizer core temperature control, ensuring consistent flavor and temperature. In Delay mode, the heating control signal is output based on the heating modulation signal. In Delay mode, the noise signal is only active.

[0082] In this embodiment, the working mode is set through the mode setting information, so that the user can set the working mode according to actual needs, meet the user's customized needs, and help improve the user experience.

[0083] In order to reduce the amount of computation of the processor in the atomization device, in some embodiments, the atomization control method may further include: executing step S02 once each time the mode setting information is updated or the atomization device is powered on.

[0084] In some embodiments, the atomization control method may further include the following steps: S03, setting noise setting information and / or mode setting information according to the operation of the interactive terminal; wherein the interactive terminal includes an operation panel and a mobile terminal.

[0085] In this embodiment, the user can set the noise setting information and / or the mode setting information by operating the interactive terminal, which helps to improve the setting flexibility of the noise setting information and the mode setting information.

[0086] In addition, there is no restriction on the execution order of step S03, so that the user can operate the interactive terminal at any time to update the noise setting information and / or mode setting information.

[0087] In some embodiments, the operation panel may include but is not limited to buttons, a touch screen, a gesture sensor, etc.

[0088] In some embodiments, mobile terminals include but are not limited to mobile phones, tablet computers, etc.

[0089] In some embodiments, the mobile terminal can establish a communication connection with the atomization device through communication methods such as Bluetooth, WiFi, and near field communication (NFC).

[0090] An embodiment of the present application further provides an atomization device, which may include an atomization component, a processor, and a memory for storing a computer program, wherein the processor implements any one of the above atomization control methods when executing the computer program.

[0091] One embodiment of the present application also provides a computer storage medium having a computer program stored thereon, which implements any of the above methods when executed by a processor. Specifically, it should be noted that the computer-readable medium mentioned above in the present application can be a computer-readable signal medium or a computer-readable storage medium, or any combination of the above. The computer-readable storage medium can be, for example, but not limited to, an electrical, magnetic, optical, electromagnetic, infrared, or semiconductor system, device, or device, or any combination of the above. More specific examples of computer-readable storage media can include, but are not limited to: an electrical connection with one or more wires, a portable computer disk, a hard disk, a random access memory (RAM), a read-only memory (ROM), an erasable programmable read-only memory (EPROM or flash memory), an optical fiber, a portable compact disk read-only memory (CD-ROM), an optical storage device, a magnetic storage device, or any suitable combination of the above. In the present application, a computer-readable storage medium can be any tangible medium containing or storing a program that can be used by or in conjunction with an instruction execution system, device, or device. In the present application, a computer-readable signal medium can include a data signal transmitted in baseband or as part of a carrier wave, which carries computer-readable program code. Such propagated data signals may take a variety of forms, including but not limited to electromagnetic signals, optical signals, or any suitable combination thereof. A computer-readable signal medium may also be any computer-readable medium other than a computer-readable storage medium that can send, propagate, or transmit a program for use by or in conjunction with an instruction execution system, apparatus, or device. The program code contained on the computer-readable medium may be transmitted using any suitable medium, including but not limited to wires, optical cables, RF (radio frequency), etc., or any suitable combination thereof.

[0092] It can be understood that the above embodiments only express the preferred implementation methods of the present application, and the description thereof is relatively specific and detailed, but it cannot be understood as limiting the scope of the patent of the present application. It should be pointed out that for ordinary technicians in this field, without departing from the concept of the present application, the above technical features can be freely combined, and several deformations and improvements can be made, which all fall within the scope of protection of the present application. Therefore, all equivalent changes and modifications made to the scope of the claims of the present application should fall within the scope of coverage of the claims of the present application.

Claims

1. A method for controlling atomization, applied to an atomization component, characterized in that: The atomization control method comprises: Determine the fundamental heating signal and the noise signal; Superimposing the noise signal on the basic heating signal to obtain a heating modulation signal; wherein the noise signal is set to be a periodic signal with an amplitude smaller than the amplitude of the basic heating signal; outputting a heating control signal according to the heating modulation signal; Wherein, the atomization component is configured to heat and atomize the aerosol medium according to the heating control signal.

2. The atomization control method according to claim 1, characterized in that: Outputting a heating control signal according to the heating modulation signal comprises: Obtaining an offset value according to the heating modulation signal and a preset power interval curve; generating a heating control signal based on the offset value and the heating modulation signal; Wherein, the heating control signal is within the range of the power interval curve.

3. The atomization control method according to claim 2, characterized in that: The generating of the heating control signal based on the offset value and the heating modulation signal comprises: When the heating modulation signal is within the power interval curve, setting the heating modulation signal as the heating control signal; When the heating modulation signal is not within the power interval curve, adjusting the overload signal in the heating modulation signal so that the adjusted heating modulation signal is within the range of the power interval curve, and setting the adjusted heating modulation signal as the heating control signal; The overload signal is the heating modulation signal that is not within the power range.

4. The atomization control method according to claim 3, characterized in that: The power interval curve includes an upper limit curve for calibrating the upper limit value of the heating modulation signal and a lower limit curve for calibrating the lower limit value of the heating modulation signal; The adjusting the overload signal in the heating modulation signal includes: Under the same time sequence, a portion of the overload signal having an amplitude greater than the upper limit curve is recorded as a first replaced curve, and a portion of the upper limit curve having an amplitude less than the first replaced curve is recorded as a first to-be-replaced curve; Under the same time sequence, a portion of the overload signal having an amplitude smaller than the lower limit curve is recorded as a second replaced curve, and a portion of the lower limit curve having an amplitude larger than the second replaced curve is recorded as a second to-be-replaced curve; In the heating modulation signal, the first replaced curve is replaced by the first to-be-replaced curve, and the second replaced curve is replaced by the second to-be-replaced curve, to obtain an adjusted heating modulation signal.

5. The atomization control method according to claim 1, characterized in that: Signal types of the noise signal include sine wave, square wave, sawtooth wave and periodic composite wave signals.

6. The atomization control method according to any one of claims 1 to 5, characterized in that: The atomization control method further includes: Setting the working mode according to the mode setting information; wherein the working mode includes a basic mode and a delayed mode; In the basic mode, the basic heating signal is set as the heating control signal; In the delay mode, a heating control signal is output according to the heating modulation signal.

7. The atomization control method according to claim 6, characterized in that: The atomization control method further includes: The frequency and / or amplitude of the noise signal is set according to the noise setting information.

8. The atomization control method according to claim 7, characterized in that: The setting range of the amplitude of the noise signal is ±0.5% P0; wherein P0 represents the amplitude of the basic heating signal.

9. The atomization control method according to claim 7, characterized in that: The frequency setting range of the noise signal is 0.1 Hz to 5 Hz.

10. The atomization control method according to claim 6, characterized in that: The atomization control method further includes: The noise setting information and / or the mode setting information are set according to the operation of the interactive terminal; wherein the interactive terminal includes an operation panel and a mobile terminal.