An atomization output method based on matrix waves and its related devices
Through the atomization output method based on matrix waves, the voltage value of the aerosol generation device is dynamically adjusted, which solves the problem of poor applicability of the aerosol generation device in the prior art, and achieves the diversity of the aerosol taste and the enhancement of the suction experience.
Patent Information
- Application Number
- CN202210102081.0
- 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
The existing aerosol generation devices have poor applicability and cannot adapt to aerosol substrates of different specifications, resulting in a single taste, insufficient irritation and explosive taste, and poor suction experience.
Using a matrix wave-based atomization output method, the first proportional parameter is determined by obtaining the preset voltage value and the segment type of the current period, thereby calculating and outputting the appropriate atomization voltage value, and adjusting to adapt to aerosol substrates of different specifications.
The diversity and fullness of the aerosol taste has been achieved, the user's suction experience has been improved, the adaptability has been improved, the cost has been reduced, and the resource utilization has been improved.
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Figure CN114521685B_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the technical field of aerosol generating devices, and in particular to a matrix 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 irritation and explosiveness, and a 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 matrix wave-based atomization output method and related equipment, which are used to solve the problems of poor applicability of aerosol generating devices in the prior art and poor taste of the generated aerosol.
[0004] In order to solve the above technical problems, the embodiment of the present application provides an atomization output based on matrix waves, which adopts the following technical solution:
[0005] Get the preset voltage value and the segment type of the current cycle;
[0006] Determine a first proportional parameter from a proportional parameter library according to the segment type of the current cycle, wherein the proportional parameter library includes a plurality of first proportional parameters;
[0007] An atomization voltage value is calculated according to the preset voltage value and the first proportional parameter, and the atomization voltage value is output.
[0008] Furthermore, before the step of obtaining the preset voltage value 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] A preheating voltage value is calculated according to the preheating time parameter, the initial voltage value and the target voltage value.
[0011] The step of obtaining the preset voltage value and the segment type of the current cycle includes:
[0012] When the preheating voltage value meets the target voltage value, a preset voltage value and a segment type of a current cycle are acquired.
[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 specifically 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 preset voltage value 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 determining the first proportional parameter from the proportional parameter library includes:
[0019] Obtaining the waveform change mode and the first proportional parameter of the previous cycle of the current cycle;
[0020] Determining the first proportional parameter of the current cycle from the proportional parameter library according to the waveform change mode and the first proportional parameter of the previous cycle.
[0021] Further, the step of determining the first proportional parameter of the current cycle from the proportional parameter library according to the waveform change mode and the first proportional parameter of the previous cycle includes:
[0022] If the waveform change mode is dynamically unchanged, obtaining the first proportional parameter of the current cycle equal to the first proportional parameter of the previous cycle from the proportional parameter library;
[0023] If the waveform change mode is dynamically changing, obtaining the first proportional parameter of the current cycle different from the first proportional parameter of the previous cycle from the proportional parameters.
[0024] Further, the step of calculating the atomization voltage value according to the preset voltage value and the first proportional parameter includes:
[0025] According to the second formula U(t 1 ) = α * U 1 calculate the atomization voltage value, where U(t 1 ) is the atomization voltage value, α is the first proportionality parameter, and U 1 is the preset voltage value.
[0026] To solve the above technical problems, an embodiment of the present application further provides an atomization output device based on a matrix wave, and adopts the following technical solutions:
[0027] A first acquisition module, configured to acquire a preset voltage value and the segmentation type of the current period;
[0028] A determination module, configured to determine a first proportionality parameter from a proportionality parameter library according to the segmentation type of the current period, where the proportionality parameter library includes a plurality of first proportionality parameters; and
[0029] An output module, configured to calculate the atomization voltage value according to the preset voltage value and the first proportionality parameter, and output the atomization voltage value.
[0030] To solve the above technical problems, an embodiment of the present application further provides a computer device, and adopts the following technical solutions:
[0031] 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 above-mentioned atomization output method based on a matrix wave are implemented.
[0032] To solve the above technical problems, an embodiment of the present application further provides a computer-readable storage medium, and adopts the following technical solutions:
[0033] A computer program is stored on the computer-readable storage medium, and when the computer program is executed by the processor, the steps of the above-mentioned atomization output method based on a matrix wave are implemented.
[0034] Compared with the prior art, the embodiments of the present application mainly have the following beneficial effects: obtaining a preset voltage value and the segmentation type of the current cycle; determining a first proportional parameter from a proportional parameter library according to the segmentation type of the current cycle, where the proportional parameter library includes multiple first proportional parameters; calculating an atomization voltage value according to the preset voltage value and the first proportional parameter, and outputting the atomization voltage value. The present application is an atomization output method in matrix wave mode. By determining the first proportional parameter from the proportional parameter library according to the segmentation type of the current cycle, and then calculating the atomization voltage value according to the preset voltage value and the first proportional parameter, the atomization voltage value calculated subsequently can be dynamically unchanged or dynamically changed by adjusting the first proportional parameter to meet the suction requirements of different users, and can be adapted to the atomization of aerosol substrates of different specifications, making the aerosol formed by atomization have a good taste and sufficient fullness. BRIEF DESCRIPTION OF THE DRAWINGS
[0035] In order to more clearly illustrate the solutions in the present application, the following will briefly introduce the drawings required for the description of the embodiments of the present application. Obviously, the following-described drawings are some embodiments of the present application. For those of ordinary skill in the art, other drawings can be obtained based on these drawings without creative efforts.
[0036] Figure 1 is an exemplary system architecture diagram to which the present application can be applied;
[0037] Figure 2 Flowchart of an embodiment of the atomization output method based on matrix wave according to the present application;
[0038] Figure 3 Matrix waveform diagram (dynamically unchanged) of an embodiment of the atomization output method based on matrix wave according to the present application;
[0039] Figure 4 Matrix waveform diagram (dynamically decreasing) of an embodiment of the atomization output method based on matrix wave according to the present application;
[0040] Figure 5 Matrix waveform diagram (dynamically increasing) of an embodiment of the atomization output method based on matrix wave according to the present application;
[0041] Figure 6 is a schematic structural diagram of an embodiment of the atomization output device based on matrix wave according to the present application;
[0042] Figure 7 is a schematic structural diagram of an embodiment of the computer device according to the present application. DETAILED DESCRIPTION OF THE EMBODIMENTS
[0043] 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.
[0044] Reference to "embodiment" herein means that a particular feature, structure, or characteristic described in connection with the embodiment 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.
[0045] 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 accompanying drawings.
[0046] 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.
[0047] Users can 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.
[0048] 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.
[0049] 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 .
[0050] It should be noted that the matrix wave-based atomization output method provided in the embodiment of the present application is generally executed by a server / terminal device, and accordingly, the matrix wave-based atomization output device is generally arranged in the server / terminal device.
[0051] 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.
[0052] Continue to refer Figure 2 , showing a flow chart of an embodiment of the method of atomization output based on matrix wave according to the present application. The atomization output method based on matrix wave is applicable to an aerosol generating device, wherein the aerosol generating device is used to atomize / heat the 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 matrix wave includes the following steps:
[0053] Step S201, obtaining a preset voltage value and a segment type of a current cycle.
[0054] In this embodiment, the preset voltage value can be set by the user, and the preset voltage value is less than or equal to the rated voltage value.
[0055] The segmentation types of the above-mentioned current cycle include an ascending segmentation type and a descending segmentation type, so that the subsequent high and low staggered atomization voltage values (please refer to the description below) are output through the ascending segmentation type and the descending segmentation type, so that the generated aerosol has a thicker taste and a lighter taste alternately, forming an obvious sense of taste frustration and a strong taste stimulation, thereby improving the user's smoking experience.
[0056] Step 202: Determine a first proportional parameter from a proportional parameter library according to the segment type of the current cycle, wherein the proportional parameter library includes a plurality of first proportional parameters.
[0057] In this embodiment, the segmentation types in the current cycle include an ascending segmentation type and a descending segmentation type, where the first proportional parameters corresponding to the ascending segmentation type and the descending segmentation type are different, and the first proportional parameter corresponding to the ascending segmentation type is greater than or equal to the first proportional parameter corresponding to the descending segmentation type. For example, the range of the first proportional parameter corresponding to the ascending segmentation type is [1, +∞], and the range of the first proportional parameter corresponding to the descending segmentation type is [0, 1].
[0058] In the above proportional parameter library, the first proportional parameter corresponding to the ascending segmentation type and the first proportional parameter corresponding to the descending segmentation type can be classified, so as to improve the efficiency of determining the first proportional parameter from the proportional parameter library according to the segmentation type of the current cycle in the subsequent process.
[0059] Step 203: Calculate the atomization voltage value according to the preset voltage value and the first proportional parameter, and output the atomization voltage value.
[0060] In this embodiment, the atomization voltage value represents the current voltage value in the atomization stage; it should be noted that the waveform generated by applying the method of the present application is a matrix waveform (see Figures 3 to 5 ), and the matrix waveform (see Figures 3 to 5 ) includes multiple cycles, and each cycle has an ascending segmentation type and a descending segmentation type. In this way, during the use of the aerosol generating device, the taste of the aerosol formed by atomizing the aerosol substrate is moderate and gentle.
[0061] In the above step of outputting the atomization voltage value, 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 atomize the aerosol substrate according to the atomization voltage value.
[0062] In some optional implementation manners, in step S201, before the step of obtaining the preset voltage value 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 preset voltage value and the segmentation type of the current cycle includes:
[0066] When the preheating voltage value meets the target voltage value, obtain the preset voltage value and the segmentation type of the current cycle.
[0067] In this embodiment, the above preheating time parameter represents the preheating time of the atomization component / heating component.
[0068] The above initial voltage value is characterized as the voltage value when the atomization component / heating component is preheated and started;
[0069] The above target voltage value is characterized as the voltage value when the atomization component / heating component finishes preheating.
[0070] The above preheating voltage value is characterized as the current voltage value during the preheating stage; it should be noted that after the preheating voltage value is equal to or greater than the target voltage value, the atomization stage is entered, that is, step S201 is executed.
[0071] 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 specifically includes:
[0072] 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 .
[0073] 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. The voltage detection element is electrically connected to the control chip to transmit the data detected by the voltage detection element.
[0074] 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.
[0075] The preset required time parameter T from the initial voltage value U 0 to the target voltage value U max can be obtained through prior experiments.
[0076] It should be noted that U 0 = β*U max , where β is the second proportional parameter, R is the preset resistance parameter, and P is the preset power parameter. The above preset resistance parameter R and preset power parameter P can be seen from the above description and can be extracted from the preset electrical parameters.
[0077] It should be noted that the second proportional parameter β is obtained through preliminary experiments, and the initial voltage value U can be determined through the second proportional parameter β. 0 and the target voltage value U max The mapping relationship between them.
[0078] Furthermore, when the initial voltage value U 0 or the target voltage value U max is adjusted, it is necessary to establish the preset required time parameter T and the initial voltage value U 0 or the target voltage value U max The mapping relationship, which can be obtained through prior experiments; when the initial voltage value U 0 and the target voltage value U max are adjusted, it is necessary to establish the mapping relationship among the initial voltage value U 0 , the target voltage value U max and the preset required time parameter T, and the mapping relationship among the three can be obtained through prior experiments.
[0079] In some alternative implementation manners, before the step of calculating the atomization voltage value according to the preset voltage value and the first proportional parameter, the following is further included:
[0080] When receiving the atomization stop instruction, adjust the first proportional parameter to obtain a new first proportional parameter, where the new first proportional parameter is less than the first proportional parameter;
[0081] Take the new first proportional parameter as the first proportional parameter.
[0082] In this embodiment, the above atomization stop instruction can be generated by the user triggering the start-stop switch (such as the start-stop button or the microphone) on the main body of the host, or can be generated when the atomization time parameter reaches the 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 proportional parameter according to the extracted data to obtain a new first proportional parameter.
[0083] It should be noted that the new first proportional parameter is less than the first proportional parameter, so that the atomization component atomizes with a smaller voltage, so as to protect the atomization core and avoid damaging the atomization core when switching from the high voltage state to the stop state.
[0084] Furthermore, in the above, while the atomization component atomizes with a smaller voltage, the remaining temperature in the thermal environment formed during the atomization stage / heating stage is also used to atomize the aerosol substrate, so as to facilitate subsequent suction use during the continuous suction process of the user.
[0085] In some alternative implementation manners, in step S202, the step of determining the first proportional parameter from the proportional parameter library includes:
[0086] Obtain the waveform change mode and the first proportional parameter of the previous cycle of the current cycle;
[0087] Determine the first proportional parameter of the current cycle from the proportional parameter library according to the waveform change mode and the first proportional parameter of the previous cycle.
[0088] In this embodiment, the waveform change mode includes a dynamic constant mode and a dynamic change mode. Among them, in the dynamic constant mode (see Figure 3 ), the atomization voltage values in subsequent cycles are the same, so that the taste of the aerosol formed by atomization in each cycle is consistent. In the dynamic change mode (see Figure 4 and Figure 5 ), the atomization voltage values in subsequent cycles are different, so that the taste and fullness of the generated aerosol change dynamically, and the irritation after the user sucks is strong.
[0089] In some alternative implementation manners, the step of determining the first proportional parameter of the current cycle from the proportional parameter library according to the waveform change mode and the first proportional parameter of the previous cycle includes:
[0090] If the waveform change mode is dynamic constant, obtain the first proportional parameter of the current cycle equal to the first proportional parameter of the previous cycle from the proportional parameter library;
[0091] If the waveform change mode is dynamic change, obtain the first proportional parameter of the current cycle different from the first proportional parameter of the previous cycle from the proportional parameters.
[0092] In this embodiment, see Figure 3 , Figure 3 is a matrix waveform with dynamic constancy, and in each cycle of the matrix waveform with dynamic constancy, the output atomization voltage values are the same; in this way, in dynamic constancy, during the overall atomization process of the aerosol substrate, the generation amount of the aerosol is stable, ensuring the consistency of the aerosol sucking taste.
[0093] See Figure 4 and Figure 5 , Figure 4 and Figure 5 are matrix waveforms with dynamic change, and in each cycle of the matrix waveform with dynamic change, the output atomization voltage values are in a changing state, where the dynamic change includes dynamic increase and dynamic decrease.
[0094] Specifically, see Figure 5, when the waveform change mode is dynamic increase, and if the segmentation type of the current cycle is the rising segmentation type, at this time, the first proportional parameter greater than the previous cycle is obtained from the proportional parameter as the first proportional parameter of the current cycle, and if the segmentation type of the current cycle is the falling segmentation type, at this time, the first proportional parameter less than the previous cycle is obtained from the proportional parameter as the first proportional parameter of the current cycle. In the waveform change mode of dynamic increase, the fullness of the aerosol generated during the atomization process shows an upward trend, and the suction irritation in the later stage is strong.
[0095] See Figure 4 , when the waveform change mode is dynamic decrease, and if the segmentation type of the current cycle is the rising segmentation type, at this time, the first proportional parameter less than the previous cycle is obtained from the proportional parameter as the first proportional parameter of the current cycle, and if the segmentation type of the current cycle is the falling segmentation type, at this time, the first proportional parameter greater than the previous cycle is obtained from the proportional parameter as the first proportional parameter of the current cycle. In the waveform change mode of dynamic increase, the fullness of the aerosol is sufficient in the early stage of atomization, the explosiveness is strong, the aerosol particle feeling is strong, and the fullness of the aerosol generated during the continuous atomization process shows a downward trend, forming a staggered suction experience.
[0096] In some alternative implementation manners, in the above step S203, the step of calculating the atomization voltage value according to the preset voltage value and the first proportional parameter includes:
[0097] Calculating the atomization voltage value according to the second formula U(t 1 ) = α * U 1 where U(t 1 ) is the atomization voltage value, α is the first proportional parameter, and U 1 is the preset voltage value.
[0098] In this embodiment, the atomization voltage value U(t 1 ) and the first proportional parameter α are in a positive correlation relationship (please refer to the above description of the waveform change mode), where the first proportional parameter α can be set at the factory or can be set by the user himself to meet the different suction needs of the user and improve the suction experience.
[0099] This application is an atomization output method for the matrix wave mode (see Figures 3 to 5 ). By determining the first proportional parameter from the proportional parameter library according to the segmentation type of the current cycle, and then calculating the atomization voltage value according to the preset voltage value and the first proportional parameter, in this way, by adjusting the first proportional parameter, the calculated atomization voltage value in the subsequent stage is dynamically unchanged or dynamically changed to meet the suction needs of different users, and it can be adapted to the atomization of aerosol substrates of different specifications, so that the aerosol formed by atomization has a good taste and sufficient fullness.
[0100] Those of ordinary skill in the art can understand that all or part of the processes in the methods of the above embodiments can be completed by instructing relevant hardware through a computer program. This 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 methods. Among them, the aforementioned storage medium can be a non-volatile storage medium such as a magnetic disk, an optical disc, a read-only memory (ROM), or a random access memory (RAM), etc.
[0101] It should be understood that although the steps in the flowchart of the accompanying drawings are displayed in sequence according to the indication of the arrows, these steps do not necessarily have to be executed in the order indicated by the arrows. Unless there is a clear indication in this article, the execution of these steps does not have a strict order limit, 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. These sub-steps or stages do not necessarily have to be executed at the same moment, but can be executed at different moments. Their execution order does not necessarily have to be sequential, but can be executed alternately or in turn with at least a part of other steps or sub-steps or stages of other steps.
[0102] Further referring to Figure 6 ,as an implementation of the method shown above Figure 6 ,an embodiment of an atomization output device based on a matrix wave is provided in the present application. This device embodiment corresponds to the method embodiment shown in Figure 2 ,and this device can be specifically applied to various electronic devices.
[0103] As shown in Figure 6 ,the atomization output device 600 based on a matrix wave described in this embodiment includes: a first acquisition module 601, a determination module 602, and an output module 603. Among them:
[0104] The first acquisition module 601 is used to acquire a preset voltage value and the segmentation type of the current period;
[0105] The determination module 602 is used to determine a first proportional parameter from a proportional parameter library according to the segmentation type of the current period, where the proportional parameter library includes multiple first proportional parameters; and
[0106] The output module 603 is used to calculate an atomization voltage value according to the preset voltage value and the first proportional parameter, and output the atomization voltage value.
[0107] This application is for the matrix wave mode (see Figures 3 to 5The atomization output method, by determining the first proportional parameter from the proportional parameter library according to the segmentation type of the current cycle, and then calculating the atomization voltage value according to the preset voltage value and the first proportional parameter, can make the atomization voltage value calculated subsequently remain dynamically unchanged or change dynamically by adjusting the first proportional parameter, so as to meet the suction requirements of different users, be adaptable to the atomization of aerosol substrates of different specifications, and make the aerosol formed by atomization have a good taste and sufficient fullness.
[0108] In some optional implementation manners, it further includes a second acquisition module and a second calculation module. Among them:
[0109] The second acquisition module is used to acquire the preheating time parameter, the initial voltage value, and the preset target voltage value;
[0110] The second calculation module is used to calculate the 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 601 further includes a first acquisition sub-module. Among them:
[0112] The first acquisition module 601 is used to acquire the preset voltage value and the segmentation type of the current cycle when the preheating voltage value meets the target voltage value.
[0113] In some optional implementation manners, the second calculation module includes a preheating calculation sub-module. Among them:
[0114] The preheating calculation sub-module is used 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 optional implementation manners, it further includes an adjustment module and a replacement module. Among them:
[0116] The adjustment module is used 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;
[0117] The replacement module is used to use the new first proportional parameter as the first proportional parameter.
[0118] In some alternative implementations, the above-mentioned determination module 602 includes a second acquisition sub-module and a determination sub-module. Specifically:
[0119] The second acquisition sub-module is configured to acquire the waveform change mode and the first proportional parameter of the previous cycle of the current cycle;
[0120] The determination sub-module is configured to determine the first proportional parameter of the current cycle from the proportional parameter library according to the waveform change mode and the first proportional parameter of the previous cycle.
[0121] In some alternative implementations, the determination sub-module includes a first acquisition unit and a second acquisition unit. Specifically:
[0122] The first acquisition unit is configured to, when the waveform change mode is dynamically unchanged, acquire the first proportional parameter of the current cycle equal to the first proportional parameter of the previous cycle from the proportional parameter library;
[0123] The second acquisition unit is configured to, when the waveform change mode is dynamically changed, acquire the first proportional parameter of the current cycle different from the first proportional parameter of the previous cycle from the proportional parameters.
[0124] In some alternative implementations, the above-mentioned first calculation module includes an atomization calculation sub-module. Specifically:
[0125] The atomization calculation sub-module is configured to calculate the atomization voltage value according to the second formula U(t 1 ) = α * U 1 where U(t 1 ) is the atomization voltage value, α is the first proportional parameter, and U 1 is the preset voltage value.
[0126] To solve the above technical problems, an embodiment of the present application further provides a computer device. For details, please refer to Figure 7 , Figure 7 which is the basic structural block diagram of the computer device in this embodiment.
[0127] The computer device 7 includes a memory 71, a processor 72, and an interface 73 that are communicatively connected to each other via a system bus. It should be noted that only the computer device 7 with components 71 - 73 is shown in the figure, but 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.
[0128] 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.
[0129] The memory 71 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 71 can be an internal storage unit of the computer device 7, such as the hard disk or memory of the computer device 7. In other embodiments, the memory 71 can also be an external storage device of the computer device 7, 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 7. Of course, the memory 71 can also include both the internal storage unit and the external storage device of the computer device 7. In this embodiment, the memory 71 is generally used to store the operating system and various application software installed on the computer device 7, such as the program code of the atomization output method based on a matrix wave. In addition, the memory 71 can also be used to temporarily store various data that have been output or will be output.
[0130] In some embodiments, the processor 72 may be a Central Processing Unit (CPU), a controller, a microcontroller, a microprocessor, or other data processing chips. The processor 72 is generally used to control the overall operation of the computer device 7. In this embodiment, the processor 72 is used to run the program code stored in the memory 71 or process data, such as running the program code of the atomization output method based on matrix waves.
[0131] The interface 73 may include a wireless interface or a wired interface. The interface 73 is generally used to establish a communication connection between the computer device 7 and other electronic devices for signal transmission or data transmission.
[0132] This application is for an atomization output method in matrix wave mode (see Figures 3 to 5 ). By determining the first proportional parameter from the proportional parameter library according to the segmentation type of the current cycle, and then calculating the atomization voltage value based on the preset voltage value and the first proportional parameter, the atomization voltage value calculated subsequently can be dynamically unchanged or dynamically changed by adjusting the first proportional parameter, so as to meet the suction requirements of different users, be adaptable to the atomization of different specifications of aerosol substrates, and make the aerosol formed by atomization have a good taste and sufficient fullness.
[0133] This application also provides another implementation manner, that is, to provide a computer-readable storage medium storing an atomization output program based on matrix waves. The atomization output program based on matrix waves can be executed by at least one processor, so that the at least one processor executes the steps of the atomization output method based on matrix waves as described above.
[0134] This application is for an atomization output method in matrix wave mode (see Figures 3 to 5 ). By determining the first proportional parameter from the proportional parameter library according to the segmentation type of the current cycle, and then calculating the atomization voltage value based on the preset voltage value and the first proportional parameter, the atomization voltage value calculated subsequently can be dynamically unchanged or dynamically changed by adjusting the first proportional parameter, so as to meet the suction requirements of different users, be adaptable to the atomization of different specifications of aerosol substrates, and make the aerosol formed by atomization have a good taste and sufficient fullness.
[0135] Through the description of the above embodiments, those skilled in the art can clearly understand that the methods of the above embodiments 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 disk) and includes several instructions for causing a terminal device (which can be a mobile phone, computer, server, air conditioner, or network device, etc.) to execute the methods described in the various embodiments of the present application.
[0136] Obviously, the above-described embodiments are only a part of the embodiments of the present application, rather than all of the embodiments. The drawings show 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 on 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 similarly within the scope of the patent protection of the present application.
Claims
1. An atomization output method based on matrix waves, characterized in that, it includes the following steps: Obtain a preset voltage value and the segmentation type of the current cycle; According to the segmentation type of the current cycle, determine a first proportional parameter from a proportional parameter library, where the proportional parameter library includes multiple first proportional parameters; Calculate an atomization voltage value according to the preset voltage value and the first proportional parameter, and output the atomization voltage value; Before the step of obtaining the preset voltage value and the segmentation type of the current cycle, it further includes: Obtain a preset time parameter, an initial voltage value, and a preset target voltage value; Calculate the preset voltage value according to the preset time parameter, the initial voltage value, and the target voltage value, specifically including: According to the first formula calculate the preset voltage value, where is the preset voltage value, is the initial voltage value, is the target voltage value, is the preset time parameter, is to the preset required time parameter; The step of obtaining the preset voltage value and the segmentation type of the current cycle includes: When the preset voltage value meets the target voltage value, obtain the preset voltage value and the segmentation type of the current cycle; The step of determining the first proportional parameter from the proportional parameter library includes: Obtain the waveform change mode and the first proportional parameter of the previous cycle of the current cycle; According to the waveform change mode and the first proportional parameter of the previous cycle, determine the first proportional parameter of the current cycle from the proportional parameter library; The step of determining the first proportional parameter of the current cycle from the proportional parameter library according to the waveform change mode and the first proportional parameter of the previous cycle includes: If the waveform change mode is dynamically unchanged, obtain the first proportional parameter of the current cycle equal to the first proportional parameter of the previous cycle from the proportional parameter library; If the waveform change mode is dynamically changing, obtain the first proportional parameter of the current cycle different from the first proportional parameter of the previous cycle from the proportional parameters; The step of calculating the atomization voltage value according to the preset voltage value and the first proportional parameter includes: According to the second formula calculate the atomization voltage value, where is the atomization voltage value, is the first proportionality parameter, is the preset voltage value.
2. The atomization output method based on matrix waves according to claim 1, characterized in that, Before the step of calculating the atomization voltage value according to the preset voltage value and the first proportional parameter, it further includes: When receiving an atomization stop instruction, adjust the first proportional parameter to obtain a new first proportional parameter, where the new first proportional parameter is less than the first proportional parameter; Use the new first proportional parameter as the first proportional parameter.
3. An atomization output device based on matrix waves, characterized in that, The atomization output device based on matrix waves executes the steps of the atomization output method based on matrix waves according to any one of claims 1 or 2. The atomization output device based on matrix waves includes: A first acquisition module for acquiring a preset voltage value and the segmentation type of the current cycle; A determination module for determining a first proportional parameter from a proportional parameter library according to the segmentation type of the current cycle, where the proportional parameter library includes multiple first proportional parameters; and An output module for calculating an atomization voltage value according to the preset voltage value and the first proportional parameter, and outputting the atomization voltage value.
4. A computer device, comprising a memory and a processor, wherein a computer program is stored in the memory, and when the processor executes the computer program, the steps of the atomization output method based on matrix waves as described in any one of claims 1 to 2 are implemented.
5. 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 atomization output method based on matrix waves as described in any one of claims 1 to 2 are implemented.
Citation Information
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