A triangular-wave-based atomization output method and related devices

Through the triangular wave-based atomization output method, the appropriate atomization voltage value is calculated and output, and the existing aerosol generation device is solved, and the explosive growth and pause of the aerosol is achieved, which improves the suction experience.

CN114557487BActive Publication Date: 2025-05-30SHENZHEN JIER TECH CO LTD
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Patent Information

Application Number
CN202210100781.6
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-01-27
Publication Date
2025-05-30
Estimated Expiration
2042-01-27

AI Technical Summary

Technical Problem

The existing aerosol generation devices have poor applicability and cannot effectively meet the atomization needs of aerosol substrates of different specifications, resulting in a single taste, insufficient explosive taste and poor suction experience.

Method used

The atomization output method based on triangular wave is used to obtain the atomization time parameters, preset electrical parameters and segmentation types of the current cycle, and the corresponding triangular wave parameters and proportional parameters are calculated, and the atomization voltage value is then calculated and output to achieve explosive growth of the aerosol and pause in taste.

Benefits of technology

The explosive growth of the aerosol substrate during the atomization/heating stage is achieved, forming a clear pause in the taste, improving the user's suction experience, and effectively preventing the frying phenomenon.

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Abstract

The embodiments of the present application belong to the field of aerosol generating devices, and relate to a triangular wave-based atomization output method, including obtaining atomization time parameters, preset electrical parameters, and the segmentation type of the current cycle, and obtaining triangular wave parameters and first proportional parameters corresponding to the segmentation type of the current cycle; calculating atomization voltage values ​​according to atomization time parameters, preset electrical parameters, triangular wave parameters, and first proportional parameters; and outputting atomization voltage values. The present application also provides a related device for atomization output based on a triangular wave. The present application is a triangular wave mode atomization output method, and the aerosol substrate atomization / heating aerosol can show explosive growth. At the same time, the aerosol content generated in different segmentation types of the current cycle according to the triangular wave mode aerosol is different, so that the aerosol has a thicker taste and a lighter taste alternately, forming an obvious sense of taste frustration, and a moderate taste, which improves the user's smoking experience, and effectively prevents the oil explosion during the atomization / heating process.
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Description

Technical Field

[0001] The present application relates to the technical field of aerosol generating devices, and in particular to a triangular wave-based atomization output method and related equipment. Background Art

[0002] At present, there are many specifications of aerosol substrates, and the aerosol substrates of different specifications have different atomization temperatures / heating temperatures. Among the existing aerosol generating devices, one aerosol generating device can only atomize / heat an aerosol substrate of one specification, which has poor applicability, resulting in a single taste, insufficient taste explosiveness, and poor smoking experience. This results in the purchase of multiple aerosol generating devices to meet the different taste requirements of users, which is costly and easily causes the aerosol generating devices to be idle, wasting resources. Summary of the invention

[0003] The purpose of the embodiments of the present application is to propose a triangular wave-based atomization output method and related equipment to solve the problems of poor applicability and insufficient taste explosiveness of aerosol generating devices in the prior art.

[0004] In order to solve the above technical problems, the embodiment of the present application provides an atomization output method based on a triangular wave, which adopts the following technical solution:

[0005] Acquire atomization time parameters, preset electrical parameters, and the segment type of the current cycle, and acquire a triangle wave parameter and a first proportional parameter corresponding to the segment type of the current cycle;

[0006] Calculating an atomization voltage value according to the atomization time parameter, the preset electrical parameter, the triangular wave parameter, and the first proportional parameter;

[0007] The atomization voltage value is output.

[0008] Furthermore, before the step of obtaining the atomization time parameter, the preset electrical parameter and the segment type of the current cycle, the method further includes:

[0009] Obtain preheating time parameters, initial voltage value and preset target voltage value;

[0010] Calculate the preheating voltage value according to the preheating time parameter, the initial voltage value and the target voltage value;

[0011] The step of obtaining the atomization time parameter, the preset electrical parameter and the segment type of the current cycle includes:

[0012] When the preheating voltage value meets the target voltage value, the atomization time parameter and the segment type of the current cycle are obtained.

[0013] Further, the step of calculating the preheating voltage value according to the preheating time parameter, the initial voltage value, and the target voltage value includes:

[0014] Calculating the preheating voltage value according to the first formula U(t 2 ) = U 0 +(U max -U 0 )*t 2 / T, where U(t 2 ) is the preheating voltage value, U 0 is the initial voltage value, U max is the target voltage value, t 2 is the preheating time parameter, and T is the preset required time parameter from U 0 to U max .

[0015] Further, before the step of calculating the atomization voltage value according to the atomization time parameter, the preset electrical parameter, the triangular wave parameter, and the first proportional parameter, it further includes:

[0016] When receiving an atomization stop instruction, adjusting the first proportional parameter to obtain a new first proportional parameter, where the new first proportional parameter is less than the first proportional parameter;

[0017] Taking the new first proportional parameter as the first proportional parameter.

[0018] Further, the step of calculating the atomization voltage value according to the atomization time parameter, the preset electrical parameter, the triangular wave parameter, and the first proportional parameter includes:

[0019] Extracting a preset power parameter from the preset electrical parameter and extracting a slope parameter from the triangular wave parameter;

[0020] Calculating the atomization voltage value through the second formula U(t 1 ) = K*t 1 +γ*P, where U(t 1 ) is the atomization voltage value, K is the slope parameter, t 1 is the atomization time parameter, γ is the first proportional parameter, and P is the preset power parameter.

[0021] Further, the preset electrical parameter includes at least two preset voltage values; before the step of extracting the slope parameter from the triangular wave parameter, it further includes:

[0022] Obtaining a preset time set corresponding to the segmentation type of the current cycle, where the preset time set includes at least two preset time parameters, and one preset time parameter corresponds to one preset voltage value;

[0023] Determine the slope parameter according to at least two of the preset time parameters and the respective preset voltage values corresponding to the at least two preset time parameters.

[0024] Further, the step of determining the slope parameter according to at least two of the preset time parameters and the respective preset voltage values corresponding to the at least two preset time parameters includes:

[0025] Obtain two preset time parameters from the preset time set, and obtain two preset voltage values from the preset electrical parameters, where one of the preset time parameters corresponds to one preset voltage value;

[0026] According to the third formula Calculate the slope parameter, where K is the slope parameter, t 1 is one of the preset time parameters, U 1 is the preset voltage value corresponding to one of the preset time parameters, t 2 is the other preset time parameter, U 2 is the preset voltage value corresponding to the other preset time parameter.

[0027] To solve the above technical problems, an embodiment of the present application further provides an atomization output device based on a triangular wave, which adopts the following technical solutions:

[0028] A first acquisition module, configured to acquire an atomization time parameter, a preset electrical parameter, and a segmentation type of the current period, and acquire a triangular wave parameter and a first proportional parameter corresponding to the segmentation type of the current period;

[0029] A first calculation module, configured to calculate an atomization voltage value according to the atomization time parameter, the preset electrical parameter, the triangular wave parameter, and the first proportional parameter; and

[0030] An output module, configured to output the atomization voltage value.

[0031] To solve the above technical problems, an embodiment of the present application further provides a computer device, which adopts the following technical solutions:

[0032] A computer program is stored in the memory, and when the processor executes the computer program, the steps of the above-described atomization output method based on a triangular wave are implemented.

[0033] To solve the above technical problems, an embodiment of the present application further provides a computer-readable storage medium, which adopts the following technical solutions:

[0034] The computer-readable storage medium stores a computer program, and when the computer program is executed by the processor, the steps of the atomization output method based on the triangle wave as described above are implemented.

[0035] Compared with the prior art, the embodiment of the present application has the following beneficial effects: by obtaining the atomization time parameter, the preset electrical parameter and the segmentation type of the current cycle, and obtaining the triangular wave parameter and the first proportional parameter corresponding to the segmentation type of the current cycle; calculating the atomization voltage value according to the atomization time parameter, the preset electrical parameter, the triangular wave parameter and the first proportional parameter; outputting the atomization voltage value. The present application is an atomization output method of the triangular wave mode, which determines the segmentation type of the current cycle by the atomization time parameter, and obtains the triangular wave parameter and the first proportional parameter of the segmentation type corresponding to the current cycle, and then calculates the atomization voltage value by the atomization time parameter, the preset electrical parameter, the triangular wave parameter and the first proportional parameter, so that in the atomization stage / heating stage, the aerosol substrate atomization / heating aerosol can show explosive growth, and at the same time, the aerosol content generated in different segmentation types of the current cycle according to the triangular wave mode aerosol is different, so that the aerosol has a thicker taste and a lighter taste alternately, forming an obvious sense of taste frustration, a moderate taste, improving the user's suction experience, and effectively preventing the oil frying phenomenon during the atomization / heating process. BRIEF DESCRIPTION OF THE DRAWINGS

[0036] In order to more clearly illustrate the scheme in the present application, a brief introduction is given below to the drawings required for use in the description of the embodiments of the present application. Obviously, the drawings described below are some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without paying any creative work.

[0037] Figure 1 is an exemplary system architecture diagram to which the present application may be applied;

[0038] Figure 2 A flow chart of an embodiment of a triangular wave-based atomization output method according to the present application;

[0039] Figure 3 A triangular waveform diagram according to an embodiment of the triangular wave-based atomization output method of the present application;

[0040] Figure 4 is a structural schematic diagram of an embodiment of a triangular wave-based atomization output device according to the present application;

[0041] Figure 5 It is a structural diagram of an embodiment of a computer device according to the present application. DETAILED DESCRIPTION

[0042] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the technical field to which this application belongs; the terms used in the specification of this application are only for the purpose of describing specific embodiments and are not intended to limit this application; the terms "including" and "having" and any variations thereof in the specification and claims of this application and the above drawings are intended to cover non-exclusive inclusion. The terms "first", "second", etc. in the specification and claims of this application or the above drawings are used to distinguish different objects and not to describe a specific order.

[0043] Reference to "embodiments" herein means that a particular feature, structure, or characteristic described in connection with the embodiments can be included in at least one embodiment of this application. The phrase appears in various places in the specification and does not necessarily refer to the same embodiment, nor is it an independent or alternative embodiment mutually exclusive of other embodiments. Those skilled in the art will explicitly and implicitly understand that the embodiments described herein can be combined with other embodiments.

[0044] In order to enable those skilled in the art of this technology to better understand the solution of this application, the technical solutions in the embodiments of this application will be clearly and completely described below with reference to the drawings.

[0045] As Figure 1 shown, the system architecture 100 may include terminal devices 101, 102, 103, a network 104, and a server 105. The network 104 is used to provide a medium for communication links between the terminal devices 101, 102, 103 and the server 105. The network 104 may include various connection types, such as wired, wireless communication links, or fiber optic cables, etc.

[0046] Users may use the terminal devices 101, 102, 103 to interact with the server 105 through the network 104 to receive or send messages, etc. Various communication client applications may be installed on the terminal devices 101, 102, 103, such as web browser applications, shopping applications, search applications, instant messaging tools, email clients, social platform software, etc.

[0047] The terminal devices 101, 102, 103 may be various electronic devices having a display screen and supporting web browsing, including but not limited to smart phones, tablet computers, e-book readers, MP3 players (Moving Picture Experts Group Audio Layer III), MP4 (Moving Picture Experts Group Audio Layer IV) players, laptop portable computers, and desktop computers, etc.

[0048] The server 105 may be a server that provides various services, such as a background server that provides support for web pages displayed on the terminal devices 101 , 102 , and 103 .

[0049] It should be noted that the triangular wave-based atomization output method provided in the embodiment of the present application is generally executed by a server / terminal device, and accordingly, the triangular wave-based atomization output device is generally arranged in the server / terminal device.

[0050] It should be understood that Figure 1 The number of terminal devices, networks and servers in the embodiment is only for illustration. Any number of terminal devices, networks and servers may be provided according to implementation requirements.

[0051] Continue to refer Figure 2 , showing a flow chart of an embodiment of the method of atomization output based on a triangle wave according to the present application. The atomization output method based on a triangle wave is applicable to an aerosol generating device, wherein the aerosol generating device is used to atomize / heat an aerosol substrate to form an aerosol; the aerosol generating device includes a host body (including a control chip) and an atomization component (including an atomization core) / heating component (including a heating core), and the host body is used to control the atomization component / heating component to start or stop; the above-mentioned atomization output method based on a triangle wave includes the following steps:

[0052] Step S201, obtaining atomization time parameters, preset electrical parameters and the segment type of the current cycle, and obtaining a triangle wave parameter and a first proportional parameter corresponding to the segment type of the current cycle.

[0053] In this embodiment, the above-mentioned atomization time parameter is characterized by the time parameter from the beginning of the atomization stage to the present.

[0054] The segment types of the current cycle include an ascending segment type and a descending segment type, wherein the ascending segment type and the descending segment type both have corresponding triangular wave parameters and first proportional parameters. It should be noted that in the complete triangular waveform (see Figure 4 ), including multiple cycles, and the above-mentioned current cycle is characterized by the current cycle, wherein the current cycle can be determined according to the above-mentioned atomization time parameters.

[0055] It should be noted that the segmentation type of the current cycle can be determined according to the atomization time parameter; specifically, the mapping relationship between the segmentation of each cycle and the atomization time parameter is constructed through preliminary experiments. After the atomization time parameter is known, the segmentation type of the current cycle can be determined according to the atomization time parameter; if the atomization time parameter is 2 minutes, the current cycle is determined to be the rising stage of the second cycle.

[0056] The above preset electrical parameters include preset resistance parameters, preset power parameters, etc. Among them, the preset resistance parameter is characterized by the resistance value of the atomization core / heating core; the preset power parameter can be set by the user himself to control the atomization / heating efficiency of the aerosol substrate in actual applications.

[0057] The above triangular wave parameters include a slope parameter and a first proportional parameter. For the slope parameter, please refer to the description below; the first proportional parameter can be adjusted in actual applications to adapt to the heating / atomization methods of different aerosol substrate specifications and improve the applicability of the method of the present application.

[0058] Step S202: Calculate the atomization voltage value according to the atomization time parameter, the preset electrical parameter, the triangular wave parameter, and the first proportional parameter.

[0059] The atomization voltage value is characterized by the current voltage value in the atomization stage / heating stage; it should be noted that the waveform generated by applying the method of the present application is a triangular waveform (see Figure 4 ), and the triangular waveform (see Figure 4 ) includes multiple cycles. Each cycle has a maximum value and a minimum value of the atomization voltage value. When the atomization voltage value is at the maximum value, it linearly drops to the minimum value of the atomization voltage value, and when the atomization voltage value is at the minimum value, it linearly rises to the maximum value of the atomization voltage value. In this way, the aerosol generated by atomization has a strong explosiveness, that is, the generation amount of the aerosol is instantaneously reduced or a large amount of aerosol is instantaneously generated. In this way, during the use of the aerosol generating device, an obvious sense of jerk is formed, so that the aerosol formed by atomizing / heating the aerosol substrate by the atomization component has a moderate and gentle taste.

[0060] Step S203: Output the atomization voltage value.

[0061] In this embodiment, the atomization voltage value is sent to the control chip in the form of an electrical signal, and the control chip controls the atomization component to heat the aerosol substrate according to the atomization voltage value.

[0062] In some optional implementation manners of this embodiment, in step S201, before the step of obtaining the atomization time parameter, the preset electrical parameter, and the segmentation type of the current cycle, it further includes:

[0063] Obtain the preheating time parameter, the initial voltage value, and the preset target voltage value;

[0064] Calculate the preheating voltage value according to the preheating time parameter, the initial voltage value, and the target voltage value.

[0065] In step S201, the step of obtaining the atomization time parameter, the preset electrical parameter, and the segmentation type of the current cycle includes:

[0066] When the preheating voltage value meets the target voltage value, obtain the atomization time parameter and the segmentation type of the current cycle.

[0067] In this embodiment, the preheating time parameter is defined similarly to the above atomization time parameter. The difference between the two is that the preheating time parameter represents the preheating time of the atomization component / heating component, while the atomization time parameter represents the atomization time of the atomization component / heating component.

[0068] The above initial voltage value represents the voltage value when the atomization component starts preheating; the above target voltage value represents the voltage value when the atomization component finishes preheating.

[0069] The above preheating voltage value represents the current voltage value in the preheating stage; it should be noted that after the preheating voltage value is equal to or greater than the target voltage value, enter the atomization stage / heating stage, that is, execute step S201.

[0070] In some optional implementation manners, the step of calculating the preheating voltage value according to the preheating time parameter, the initial voltage value, and the target voltage value includes:

[0071] Calculate the preheating voltage value according to the first formula U(t 2 ) = U 0 +(U max - U 0 ) * t 2 / T, where U(t 2 ) is the preheating voltage value, U 0 is the initial voltage value, U max is the target voltage value, t 2 is the preheating time parameter, and T is the preset required time parameter from U 0 to U max .

[0072] In this embodiment, the initial voltage value U 0 can be a fixed value, pre-stored in the storage element on the main body of the host, and directly called from the storage component at the preset start, or can be detected by a voltage detection element at the start of preheating, and the voltage detection element is electrically connected to the control chip to transmit the data detected by the voltage detection element.

[0073] The target voltage value U max is a fixed value, which can be set at the factory or adjusted by the user himself to meet different usage requirements.

[0074] The initial voltage value U 0 to the target voltage value U maxThe preset required time parameter T can be obtained through prior experiments.

[0075] It should be noted that U 0 = α * U max , where α is the second proportionality parameter, R is the preset resistance parameter, and P is the preset power parameter. The above-mentioned preset resistance parameter R and preset power parameter P can be referred to the description above and can be obtained by extracting preset electrical parameters.

[0076] It should be noted that the second proportionality parameter α is obtained through prior experiments. Through the second proportionality parameter α, the mapping relationship between the initial voltage value U 0 and the target voltage value U max can be determined.

[0077] Furthermore, when the initial voltage value U 0 or the target voltage value U max is adjusted, a mapping relationship between the preset required time parameter T and the initial voltage value U 0 or the target voltage value U max needs to be established. This mapping relationship can be obtained through prior experiments; when the initial voltage value U 0 and the target voltage value U max are adjusted, a mapping relationship among the initial voltage value U 0 , the target voltage value U max and the preset required time parameter T needs to be established, and the mapping relationship among the three can be obtained through prior experiments.

[0078] In some alternative implementation manners, in step S201, before the step of calculating the atomization voltage value according to the atomization time parameter, the preset electrical parameter, the triangular wave parameter, and the first proportionality parameter, it further includes:

[0079] When receiving an atomization stop instruction, adjust the first proportionality parameter to obtain a new first proportionality parameter, where the new first proportionality parameter is less than the first proportionality parameter;

[0080] Take the new first proportionality parameter as the first proportionality parameter.

[0081] In this embodiment, the above-mentioned atomization stop instruction can be generated by the user triggering the start-stop switch (such as a start-stop button or a microphone) on the main body of the host, or can be generated when the atomization time parameter reaches a preset value; after receiving the atomization stop instruction, extract data from the storage element on the main body of the host (this data is preset at the factory or preset by the user initially), and adjust the first proportionality parameter according to the extracted data to obtain a new first proportionality parameter.

[0082] It should be noted that the new first proportional parameter is smaller than the first proportional parameter, so that the atomization component atomizes / heats at a lower voltage, thereby protecting the atomization core / heating core and avoiding damage to the atomization core / heating core when switching from a high-voltage state to a stop state.

[0083] Furthermore, in the above, while the atomization component / heating component atomizes / heats at a lower voltage, the residual temperature in the thermal environment formed during the atomization stage / heating stage is also used to atomize / heat the aerosol substrate, so as to facilitate subsequent suction use during the continuous suction process of the user.

[0084] Even further, in the above-mentioned segmentation types of the current cycle, there are an ascending segmentation type and a descending segmentation type. Both the ascending segmentation type and the descending segmentation type have corresponding triangular wave parameters and first proportional parameters. That is, the number of first proportional parameters is two. One first proportional parameter corresponds to the ascending segmentation type, and the other first proportional parameter corresponds to the descending segmentation type. Preferably, when an atomization stop instruction is received, both first proportional parameters can be adjusted simultaneously, or one of the first proportional parameters can be adjusted, as long as after adjusting the first proportional parameter, the atomization component / heating component atomizes / heats at a lower voltage.

[0085] In some alternative implementation manners, in the above step S202, the step of calculating the atomization voltage value according to the atomization time parameter, the preset electrical parameter, the triangular wave parameter, and the first proportional parameter includes:

[0086] Extract the preset power parameter from the preset electrical parameter, and extract the slope parameter from the triangular wave parameter;

[0087] Calculate the atomization voltage value through the second formula U(t 1 ) = K * t 1 + γ * P, where U(t 1 ) is the atomization voltage value, K is the slope parameter, t 1 is the atomization time parameter, γ is the first proportional parameter, and P is the preset power parameter.

[0088] In this embodiment, the above preset power parameter can be set by the user himself to control the atomization / heating efficiency of the aerosol substrate in practical applications.

[0089] In the above triangular waveform (see Figure 4 ), the segmentation of the current cycle is a straight line, and the slope parameter characterizes the inclination degree of the segmented straight line of the current cycle; in the above second formula, in the above third formula, the atomization time parameter t 1 is a variable parameter. According to the atomization time parameter t 1Determine the segment type of the current cycle, and determine the slope parameter and the first proportional parameter according to the segment type of the current cycle. In this way, as the atomization time parameter t 1 The increase of makes the calculated atomization voltage value change periodically.

[0090] In some optional implementations, the preset electrical parameters include at least two preset voltage values; and before the step of extracting the slope parameter from the triangular wave parameter, the method further includes:

[0091] Acquire a preset time set corresponding to the segment type of the current cycle, wherein the preset time set includes at least two preset time parameters, and one of the preset time parameters corresponds to one of the preset voltage values;

[0092] The slope parameter is determined according to the at least two preset time parameters and the preset voltage values ​​respectively corresponding to the at least two preset time parameters.

[0093] In this embodiment, the segmentation type of the current cycle includes an ascending segmentation type and a descending segmentation type, and the slope parameters corresponding to the ascending segmentation type and the descending segmentation type are different; therefore, in the above steps, it is necessary to first determine the segmentation type of the current cycle, and then obtain the preset time set and each preset electrical parameter corresponding to the segmentation type of the current cycle, wherein the preset time set and each preset electrical parameter are obtained through preliminary experiments.

[0094] It should be noted that the larger the slope parameter is, the larger the atomization voltage value calculated by the above second formula is, that is, the stronger the explosiveness of the aerosol is, thereby ensuring the user's puffing experience; conversely, the smaller the slope parameter is, the smaller the atomization voltage value calculated by the above second formula is, that is, the weaker the explosiveness of the aerosol is, so as to adapt to the puffing needs of different users.

[0095] In some optional implementations, the step of determining a slope parameter according to at least two of the preset time parameters and at least two of the preset voltage values ​​comprises:

[0096] Acquire two preset time parameters from the preset time set, and acquire two preset voltage values ​​respectively corresponding to the two preset time parameters from the preset electrical parameters;

[0097] According to the third formula Calculate the slope parameter, where K is the slope parameter, t 1 is one of the preset time parameters, U 1 is the preset voltage value corresponding to one of the preset time parameters, t 2 is another preset time parameter, U 2 is the preset voltage value corresponding to another preset time parameter.

[0098] In this embodiment, in the above steps, when respectively calculating the slope parameters corresponding to the rising segment and the falling segment of the current cycle, two preset time parameters can be arbitrarily obtained from the preset time set corresponding to the rising segment, and two preset voltage values ​​can be arbitrarily obtained from the preset electrical parameters corresponding to the rising segment, and two preset time parameters can be arbitrarily obtained from the preset time set corresponding to the falling segment, and two preset voltage values ​​can be arbitrarily obtained from the preset electrical parameters corresponding to the falling segment. It is also possible to take the minimum preset voltage value and any one preset voltage value except the minimum preset voltage value from the preset electrical parameters corresponding to the rising segment, and take the preset time parameters corresponding to the two preset voltage values ​​from the preset time set corresponding to the rising segment, wherein the minimum preset voltage value is the minimum preset voltage value among the preset electrical parameters corresponding to the falling segment. In this way, when taking the preset electrical parameters corresponding to the falling segment, it is only necessary to take one preset voltage value except the minimum preset voltage value, and obtain the preset time parameter corresponding to the preset voltage value from the preset time set corresponding to the falling segment. This effectively reduces the amount of data and improves computing efficiency.

[0099] This application is a triangle wave mode (see Figure 4 ) atomization output method, the segmentation type of the current cycle is determined by the atomization time parameter, and the segmentation type triangle wave parameter and the first proportional parameter corresponding to the current cycle are obtained, and then the atomization voltage value is calculated by the atomization time parameter, the preset electrical parameter, the triangle wave parameter and the first proportional parameter, so that in the atomization stage / heating stage, the aerosol substrate atomization / heating aerosol can show explosive growth, and at the same time according to the triangle wave mode (see Figure 4 ) The aerosol content generated in different segment types of the current cycle is different, so that the aerosol with a thicker taste and a lighter taste appears alternately, forming an obvious sense of taste frustration and a moderate taste, which improves the user's smoking experience and effectively prevents oil frying during the atomization / heating process.

[0100] Those skilled in the art can understand that all or part of the processes in the above-mentioned embodiments can be implemented by instructing the relevant hardware through a computer program, and the computer program can be stored in a computer-readable storage medium. When the program is executed, it can include the processes of the embodiments of the above-mentioned methods. Among them, the aforementioned storage medium can be a non-volatile storage medium such as a disk, an optical disk, a read-only memory (ROM), or a random access memory (RAM).

[0101] It should be understood that, although the steps in the flowchart of the accompanying drawings are displayed in sequence as indicated by the arrows, these steps are not necessarily executed in sequence in the order indicated by the arrows. Unless otherwise specified herein, there is no strict order restriction on the execution of these steps, and they can be executed in other orders. Moreover, at least a part of the steps in the flowchart of the accompanying drawings may include multiple sub-steps or multiple stages, and these sub-steps or stages are not necessarily executed at the same time, but can be executed at different times, and their execution order is not necessarily sequential, but can be executed in turn or alternately with other steps or at least a part of the sub-steps or stages of other steps.

[0102] Further references Figure 4 , as a response to the above Figure 2 The present application provides an embodiment of a triangular wave-based atomization output device, and the device embodiment is similar to Figure 2 Corresponding to the method embodiment shown, the device can be specifically applied to various electronic devices.

[0103] like Figure 4 As shown, the triangular wave-based atomization output device 400 described in this embodiment includes: a first acquisition module 401, a first calculation module 402 and an output module 403. Among them:

[0104] The first acquisition module 401 is used to acquire the atomization time parameter, the preset electrical parameter and the segment type of the current cycle, and acquire the triangle wave parameter and the first proportional parameter corresponding to the segment type of the current cycle;

[0105] A first calculation module 402, used to calculate an atomization voltage value according to the atomization time parameter, the preset electrical parameter, the triangular wave parameter and the first proportional parameter;

[0106] The output module 403 is used to output the atomization voltage value.

[0107] This application is a triangle wave mode (see Figure 4 ) atomization output method, the segmentation type of the current cycle is determined by the atomization time parameter, and the segmentation type triangle wave parameter and the first proportional parameter corresponding to the current cycle are obtained, and then the atomization voltage value is calculated by the atomization time parameter, the preset electrical parameter, the triangle wave parameter and the first proportional parameter, so that in the atomization stage / heating stage, the aerosol substrate atomization / heating aerosol can show explosive growth, and at the same time according to the triangle wave mode (see Figure 4 ) The aerosol content generated in different segment types of the current cycle is different, so that the aerosol with a thicker taste and a lighter taste appears alternately, forming an obvious sense of taste frustration and a moderate taste, which improves the user's smoking experience and effectively prevents oil frying during the atomization / heating process.

[0108] In some alternative implementation manners of this embodiment, a second acquisition module and a second calculation module are further included. Specifically:

[0109] The second acquisition module is configured to acquire a preheating time parameter, an initial voltage value, and a preset target voltage value;

[0110] The second calculation module is configured to calculate a preheating voltage value according to the preheating time parameter, the initial voltage value, and the target voltage value.

[0111] The above-mentioned first acquisition module 401 includes a first acquisition sub-module. Specifically:

[0112] The first acquisition sub-module is configured to acquire an atomization time parameter and a segmentation type of the current period when the preheating voltage value meets the target voltage value.

[0113] In some alternative implementation manners of this embodiment, the above-mentioned second calculation module includes a preheating calculation sub-module. Specifically:

[0114] The preheating calculation sub-module is configured to calculate the preheating voltage value according to the first formula U(t 2 ) = U 0 +(U max -U 0 )*t 2 / T, where U(t 2 ) is the preheating voltage value, U 0 is the initial voltage value, U max is the target voltage value, t 2 is the preheating time parameter, and T is the preset required time parameter from U 0 to U max .

[0115] In some alternative implementation manners of this embodiment, an adjustment module and a replacement module are further included.

[0116] Specifically:

[0117] The adjustment module is configured to adjust the first proportional parameter to obtain a new first proportional parameter when receiving an atomization stop instruction, where the new first proportional parameter is less than the first proportional parameter;

[0118] The replacement module is configured to use the new first proportional parameter as the first proportional parameter.

[0119] In some alternative implementation manners of this embodiment, the above-mentioned first calculation module 402 includes a first extraction sub-module and an atomization calculation sub-module. Specifically:

[0120] The first extraction sub-module is used to extract a preset power parameter from the preset electrical parameters and extract a slope parameter from the triangular wave parameters;

[0121] The atomization calculation sub-module is used to calculate the atomization voltage value through the second formula U(t 1 ) = K * t 1 + γ * P, where U(t 1 ) is the atomization voltage value, K is the slope parameter, t 1 is the atomization time parameter, γ is the first proportional parameter, and P is the preset power parameter.

[0122] In some alternative implementation manners of this embodiment, the preset electrical parameters include at least two preset voltage values; the above first calculation module 402 further includes a second acquisition sub-module and a determination sub-module.

[0123] Among them:

[0124] The second acquisition sub-module is used to acquire a preset time set corresponding to the segmentation type of the current period, where the preset time set includes at least two preset time parameters, and one preset time parameter corresponds to one preset voltage value;

[0125] The determination sub-module is used to determine the slope parameter according to at least two preset time parameters and each preset voltage value corresponding to at least two preset time parameters respectively.

[0126] In some alternative implementation manners of this embodiment, the above determination sub-module includes an acquisition unit and a calculation unit. Among them:

[0127] The acquisition unit is used to acquire two preset time parameters from the preset time set and acquire two preset voltage values from the preset electrical parameters, where one preset time parameter corresponds to one preset voltage value;

[0128] The calculation unit calculates the slope parameter according to the third formula where K is the slope parameter, t 1 is one of the preset time parameters, U 1 is the preset voltage value corresponding to one of the preset time parameters, t 2 is the other preset time parameter, and U 2 is the preset voltage value corresponding to the other preset time parameter.

[0129] To solve the above technical problems, the embodiments of the present application also provide a computer device. For details, please refer to Figure 5 , Figure 5 which is the basic structural block diagram of the computer device in this embodiment.

[0130] The computer device 5 includes a memory 51, a processor 52, and an interface 53 that are communicatively connected to each other via a system bus. It should be noted that only the computer device 5 with components 51-53 is shown in the figure. However, it should be understood that it is not required to implement all the shown components, and more or fewer components can be implemented alternatively. Among them, those skilled in the art of the present technology can understand that the computer device here is a device that can automatically perform numerical calculations and / or information processing according to pre-set or stored instructions, and its hardware includes but is not limited to microprocessors, application specific integrated circuits (ASICs), field-programmable gate arrays (FPGAs), digital signal processors (DSPs), embedded devices, etc.

[0131] The computer device can be a computing device such as a desktop computer, a notebook, a palm computer, and a cloud server. The computer device can perform human-computer interaction with the user through means such as a keyboard, a mouse, a remote control, a touchpad, or a voice control device.

[0132] The memory 51 includes at least one type of readable storage medium, and the readable storage medium includes flash memory, a hard disk, a multimedia card, a card-type memory (such as an SD or DX memory, etc.), a random access memory (RAM), a static random access memory (SRAM), a read-only memory (ROM), an electrically erasable programmable read-only memory (EEPROM), a programmable read-only memory (PROM), a magnetic memory, a magnetic disk, an optical disk, etc. In some embodiments, the memory 51 can be an internal storage unit of the computer device 5, such as the hard disk or memory of the computer device 5. In other embodiments, the memory 51 can also be an external storage device of the computer device 5, such as a plug-in hard disk, a smart media card (SMC), a secure digital (SD) card, a flash card, etc. equipped on the computer device 5. Of course, the memory 51 can also include both the internal storage unit and the external storage device of the computer device 5. In this embodiment, the memory 51 is generally used to store the operating system and various application software installed on the computer device 5, such as the program code of the atomization output method based on a triangular wave. In addition, the memory 51 can also be used to temporarily store various data that have been output or will be output.

[0133] The processor 52 may be a central processing unit (CPU), a controller, a microcontroller, a microprocessor, or other data processing chips in some embodiments. The processor 52 is generally used to control the overall operation of the computer device 5. In this embodiment, the processor 52 is used to run the program code stored in the memory 51 or process data, such as running the program code of the triangular wave-based atomization output method.

[0134] The interface 53 may include a wireless interface or a wired interface. The interface 53 is generally used to establish a communication connection between the computer device 5 and other electronic devices to achieve signal transmission and / or data transmission.

[0135] This application is a triangle wave mode (see Figure 4 ) atomization output method, the segmentation type of the current cycle is determined by the atomization time parameter, and the segmentation type triangle wave parameter and the first proportional parameter corresponding to the current cycle are obtained, and then the atomization voltage value is calculated by the atomization time parameter, the preset electrical parameter, the triangle wave parameter and the first proportional parameter, so that in the atomization stage / heating stage, the aerosol substrate atomization / heating aerosol can show explosive growth, and at the same time according to the triangle wave mode (see Figure 4 ) The aerosol content generated in different segment types of the current cycle is different, so that the aerosol with a thicker taste and a lighter taste appears alternately, forming an obvious sense of taste frustration and a moderate taste, which improves the user's smoking experience and effectively prevents oil frying during the atomization / heating process.

[0136] The present application also provides another embodiment, namely, providing a computer-readable storage medium, which stores a triangular wave-based atomization output program, and the triangular wave-based atomization output program can be executed by at least one processor to enable the at least one processor to perform the steps of the triangular wave-based atomization output method as described above.

[0137] This application is a triangle wave mode (see Figure 4 ) atomization output method, the segmentation type of the current cycle is determined by the atomization time parameter, and the segmentation type triangle wave parameter and the first proportional parameter corresponding to the current cycle are obtained, and then the atomization voltage value is calculated by the atomization time parameter, the preset electrical parameter, the triangle wave parameter and the first proportional parameter, so that in the atomization stage / heating stage, the aerosol substrate atomization / heating aerosol can show explosive growth, and at the same time according to the triangle wave mode (see Figure 4 ) The aerosol content generated in different segment types of the current cycle is different, so that the aerosol with a thicker taste and a lighter taste appears alternately, forming an obvious sense of taste frustration and a moderate taste, which improves the user's smoking experience and effectively prevents oil frying during the atomization / heating process.

[0138] Through the description of the above embodiments, those skilled in the art can clearly understand that the above-described example methods can be implemented by means of software plus a necessary general hardware platform. Of course, they can also be implemented by hardware, but in many cases the former is a better implementation. Based on such an understanding, the technical solution of the present application, in essence or the part that contributes to the prior art, can be embodied in the form of a software product. This computer software product is stored in a storage medium (such as ROM / RAM, magnetic disk, optical disc) and includes several instructions for causing a terminal device (which may be a mobile phone, computer, server, air conditioner, or network device, etc.) to execute the methods described in various embodiments of the present application.

[0139] Obviously, the above-described embodiments are only a part of the embodiments of the present application, rather than all the embodiments. The accompanying drawings show the preferred embodiments of the present application, but do not limit the patent scope of the present application. The present application can be implemented in many different forms. On the contrary, the purpose of providing these embodiments is to make the understanding of the disclosed content of the present application more thorough and comprehensive. Although the present application has been described in detail with reference to the foregoing embodiments, for those skilled in the art, they can still modify the technical solutions described in the foregoing specific embodiments, or perform equivalent replacements for some of the technical features. Any equivalent structure directly or indirectly using the content of the specification and drawings of the present application in other related technical fields is equally within the scope of the patent protection of the present application.

Claims

1. A triangular-wave-based atomization output method, characterized in that, it includes the following steps: Obtain atomization time parameters, preset electrical parameters, and the segmentation type of the current cycle, and obtain triangular-wave parameters and a first proportionality parameter corresponding to the segmentation type of the current cycle; Calculate the atomization voltage value according to the atomization time parameters, the preset electrical parameters, the triangular-wave parameters, and the first proportionality parameter; Output the atomization voltage value; Before the step of obtaining the atomization time parameters, preset electrical parameters, and the segmentation type of the current cycle, it further includes: Obtain preheating time parameters, an initial voltage value, and a preset target voltage value; Calculate the preheating voltage value according to the preheating time parameters, the initial voltage value, and the target voltage value; The step of obtaining the atomization time parameters, preset electrical parameters, and the segmentation type of the current cycle includes: When the preheating voltage value meets the target voltage value, obtain the atomization time parameters and the segmentation type of the current cycle; Before the step of calculating the atomization voltage value according to the atomization time parameters, the preset electrical parameters, the triangular-wave parameters, and the first proportionality parameter, it further includes: When receiving an atomization stop instruction, adjust the first proportionality parameter to obtain a new first proportionality parameter, where the new first proportionality parameter is less than the first proportionality parameter; Take the new first proportionality parameter as the first proportionality parameter; The step of calculating the atomization voltage value according to the atomization time parameters, the preset electrical parameters, the triangular-wave parameters, and the first proportionality parameter includes: Extract a preset power parameter from the preset electrical parameters, and extract a slope parameter from the triangular-wave parameters; Through the second formula calculate the atomization voltage value, where is the atomization voltage value, is the slope parameter, is the atomization time parameter, is the first proportionality parameter, is the preset power parameter.

2. The triangular-wave-based atomization output method according to claim 1, characterized in that, the step of calculating the preheating voltage value according to the preheating time parameters, the initial voltage value, and the target voltage value includes: According to the first formula calculate the preheating voltage value, where is the preheating voltage value, is the initial voltage value, is the target voltage value, is the preheating time parameter, is to the preset required time parameter.

3. The triangular-wave-based atomization output method according to claim 1, characterized in that, the preset electrical parameters include at least two preset voltage values; Before the step of extracting the slope parameter from the triangular-wave parameters, it further includes: Obtain a preset time set corresponding to the segmentation type of the current cycle, where the preset time set includes at least two preset time parameters, and one preset time parameter corresponds to one preset voltage value; Determine the slope parameter according to at least two of the preset time parameters and the respective preset voltage values corresponding to at least two of the preset time parameters.

4. The triangular-wave-based atomization output method according to claim 3, characterized in that, the step of determining the slope parameter according to at least two of the preset time parameters and the respective preset voltage values corresponding to at least two of the preset time parameters includes: Obtain two preset time parameters from the preset time set, and obtain two preset voltage values from the preset electrical parameters, where one preset time parameter corresponds to one preset voltage value; According to the third formula calculate the slope parameter, where is the slope parameter, is one of the preset time parameters, is the preset voltage value corresponding to one of the preset time parameters, is another preset time parameter, is the preset voltage value corresponding to another preset time parameter.

5. A triangular-wave-based atomization output device, characterized in that, The triangular-wave based atomization output device performs the steps of the triangular-wave based atomization output method according to any one of claims 1 to 4, and the triangular-wave based atomization output device includes: A first acquisition module, configured to acquire an atomization time parameter, a preset electrical parameter, and a segmentation type of the current period, and acquire a triangular-wave parameter and a first ratio parameter corresponding to the segmentation type of the current period; A first calculation module, configured to calculate an atomization voltage value according to the atomization time parameter, the preset electrical parameter, the triangular-wave parameter, and the first ratio parameter; and An output module, configured to output the atomization voltage value.

6. A computer device, characterized in that it includes a memory and a processor, a computer program is stored in the memory, and when the processor executes the computer program, the steps of the triangular-wave based atomization output method according to any one of claims 1 to 4 are implemented.

7. A computer-readable storage medium, characterized in that a computer program is stored on the computer-readable storage medium, and when the computer program is executed by a processor, the steps of the triangular-wave based atomization output method according to any one of claims 1 to 4 are implemented.

Citation Information

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