A heating non-combustion atomization device and a temperature control method thereof
By using multiple temperature sensors and composite control curves in the heated non-combustible atomizing device, the region with the highest temperature is identified and the difference is calculated, thus solving the problem of uneven temperature distribution and achieving precise temperature control and energy supply to meet the needs of different regions.
Patent Information
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- SHENZHEN GEEKVAPE TECH CO LTD
- Filing Date
- 2023-08-25
- Publication Date
- 2026-07-10
AI Technical Summary
In existing heated non-combustible atomizing devices, only one temperature sensor is set up to measure the entire heating area, resulting in uneven temperature distribution in the heating area. This makes it impossible to control the energy supply needs of different areas in a targeted manner, which can easily lead to local overheating or uncontrolled baking.
Multiple temperature sensors are used to monitor multiple temperature demand areas of the heating element. The highest current temperature data is identified through a composite control curve, and the difference is calculated to achieve independent temperature control of each area, ensuring that the temperature demand of each area is accurately met.
It achieves precise temperature control for different temperature requirement areas in the heated non-combustible atomizing device, avoiding local overheating or uncontrolled baking, and improving the targeting and efficiency of heating.
Smart Images

Figure CN116982760B_ABST
Abstract
Description
Technical Field
[0001] This invention relates to the field of heat-not-burning technology, specifically to a heat-not-burning atomizing device and its composite control method. Background Technology
[0002] Existing heated non-combustible atomizing devices typically use only one temperature sensor to measure the temperature of a single heating zone (e.g., the heating element), meaning a single temperature parameter characterizes the entire heating area. However, during actual operation, the temperature distribution within the heating zone is uneven due to varying temperature requirements in different areas and heat transfer factors. This results in a lack of targeted energy supply to different areas. Using only a single temperature sensor to measure the temperature of the entire heating zone and employing a single parameter can easily lead to localized overheating or uncontrolled localized baking. Therefore, improvements are necessary to address the shortcomings of existing technologies. Summary of the Invention
[0003] The main technical problem solved by this invention is to provide a heating non-combustible atomizing device and its temperature control method, so as to control the energy of a certain temperature demand area or all temperature demand areas of the input heating element, to heat the object to be heated corresponding to a certain temperature demand area relatively independently, or to control the total energy of the input heating element based on the difference, so as to achieve targeted control of heating of the object to be heated in different temperature demand areas of the heating element.
[0004] According to a first aspect, one embodiment provides a temperature control method for a heat-not-combustible atomizing device. The heating element in the heat-not-combustible atomizing device includes multiple temperature demand regions, each of which has a temperature demand curve showing a first theoretical temperature demand value changing with heating time. The temperature control method includes:
[0005] Acquire temperature data for each of the temperature demand zones; wherein the temperature data for each temperature demand zone is collected by a temperature sensor located in the temperature demand zone;
[0006] Identify the highest current temperature data from multiple temperature data points, and calculate the second theoretical temperature requirement value corresponding to the current heating time in the pre-constructed composite control curve; wherein, the second theoretical temperature requirement value corresponding to the current heating time is greater than or equal to the maximum value among multiple first theoretical temperature requirement values corresponding to the current heating time;
[0007] Obtain the difference between the second theoretical temperature requirement value and the current highest temperature data;
[0008] Based on the difference between the second theoretical temperature requirement value and the current highest temperature data, the temperature of multiple temperature requirement areas in the heating element is controlled.
[0009] In one embodiment, controlling the temperature of multiple temperature requirement zones of the heating element based on the difference between the second theoretical temperature requirement value and the current highest temperature data includes:
[0010] Based on the difference between the second theoretical temperature requirement value and the current highest temperature data, calculate the unit energy requirement for each temperature requirement region.
[0011] Based on the energy required for the individual unit, the total energy required to be input into the heating element is calculated;
[0012] The energy input to the heating element is controlled based on the total energy demand.
[0013] In one embodiment, controlling the temperature of multiple temperature-demand regions of the heating element based on the difference between the theoretical temperature requirement and the current highest temperature data includes:
[0014] Obtain the temperature demand region corresponding to the current highest temperature data, and use the temperature demand region corresponding to the current highest temperature data as an independent control region;
[0015] Based on the difference between the theoretical temperature requirement and the current highest temperature data, calculate the individual energy requirement that needs to be input into the independent control area;
[0016] The energy input to the independent control area is based on the energy demand of the individual unit, and the energy input to the temperature demand area other than the independent control area is based on the preset energy demand of the individual unit.
[0017] In one embodiment, obtaining the temperature requirement region corresponding to the current highest temperature data includes:
[0018] Obtain the number of the temperature sensor corresponding to the temperature data; wherein, one temperature sensor number corresponds to only one temperature requirement area;
[0019] Based on the highest current temperature data, identify the number of the temperature sensor corresponding to the highest current temperature data;
[0020] Based on the temperature sensor number corresponding to the highest current temperature data, the temperature requirement area corresponding to the highest current temperature data is obtained.
[0021] In one embodiment, the composite control curve is pre-constructed based on the different temperature requirements of the multiple temperature demand regions, wherein the composite control curve is constructed through the following process:
[0022] Obtain multiple temperature demand curves corresponding to the multiple temperature demand regions; wherein, each temperature demand curve corresponds to only one temperature demand region;
[0023] Place the multiple temperature demand curves in the same coordinate system, select the maximum value among the temperature values corresponding to the heating time of the multiple temperature demand curves, and use the maximum value as the composite temperature control value of the composite control curve under the heating time.
[0024] The composite control curve is generated based on the composite temperature control value.
[0025] According to a second aspect, one embodiment provides a heat-not-burning atomizing device. The heat-not-burning atomizing device includes:
[0026] The heating element is configured to heat the object to be heated;
[0027] Multiple temperature sensors are respectively set in multiple temperature demand areas of the heating element to monitor the temperature of each temperature demand area to obtain temperature data of each temperature demand area. Each temperature demand area has a temperature demand curve of a first theoretical temperature demand value changing with heating time.
[0028] The control unit is configured to identify the current highest temperature data from a plurality of temperature data, calculate a second theoretical temperature requirement value corresponding to the heating time in a pre-constructed composite control curve; wherein the second theoretical temperature requirement value corresponding to the heating time is greater than or equal to the maximum value among a plurality of first theoretical temperature requirement values corresponding to the heating time; obtain the difference between the second theoretical temperature requirement value and the current highest temperature data; and control the temperature of a plurality of temperature requirement regions in the heating element based on the difference between the second theoretical temperature requirement value and the current highest temperature data.
[0029] In one embodiment, controlling the temperature of multiple temperature-demand regions of the heating element based on the difference between the theoretical temperature requirement and the current highest temperature data includes:
[0030] Based on the difference between the theoretical temperature requirement value and the current highest temperature data, calculate the unit energy requirement for each temperature requirement region.
[0031] Based on the energy required for the individual unit, the total energy required to be input into the heating element is calculated;
[0032] The energy input to the heating element is controlled based on the total energy demand.
[0033] In one embodiment, controlling the temperature of multiple temperature-demand regions of the heating element based on the difference between the theoretical temperature requirement and the current highest temperature data includes:
[0034] Obtain the temperature demand region corresponding to the current highest temperature data, and use the temperature demand region corresponding to the current highest temperature data as an independent control region;
[0035] Based on the difference between the theoretical temperature requirement and the current highest temperature data, calculate the individual energy requirement that needs to be input into the independent control area;
[0036] The energy input to the independent control area is based on the energy demand of the individual unit, and the energy input to the temperature demand area other than the independent control area is based on the preset energy demand of the individual unit.
[0037] In one embodiment, obtaining the temperature requirement region corresponding to the current highest temperature data includes:
[0038] Obtain the number of the temperature sensor corresponding to the temperature data; wherein, one temperature sensor number corresponds to only one temperature requirement area;
[0039] Based on the highest current temperature data, identify the number of the temperature sensor corresponding to the highest current temperature data;
[0040] Based on the temperature sensor number corresponding to the highest current temperature data, the temperature requirement area corresponding to the highest current temperature data is obtained.
[0041] According to a third aspect, one embodiment provides a computer-readable storage medium. The computer-readable storage medium includes a program. The program can be executed by a processor to implement the temperature control method as described in any of the embodiments herein.
[0042] The beneficial effects of this application are:
[0043] The heating element in this heat-not-burn atomizing device includes multiple temperature demand zones. Each temperature demand zone has a temperature demand curve showing the change of a first theoretical temperature demand value with heating time. The temperature control method includes: acquiring temperature data for each temperature demand zone; wherein the temperature data for each temperature demand zone is collected by a temperature sensor located in the temperature demand zone; identifying the current highest temperature data from the multiple temperature data, and calculating a second theoretical temperature demand value corresponding to the current heating time in a pre-constructed composite control curve; wherein the second theoretical temperature demand value corresponding to the current heating time is greater than or equal to the maximum value among the multiple first theoretical temperature demand values corresponding to the current heating time; acquiring the difference between the second theoretical temperature demand value and the current highest temperature data; and controlling the temperature of the multiple temperature demand zones in the heating element based on the difference between the second theoretical temperature demand value and the current highest temperature data. This allows for the control of the energy input to a certain temperature demand zone or all temperature demand zones of the heating element, so as to heat the object to be heated relatively independently for a certain temperature demand zone or to control the total energy input to the heating element based on the difference. In other words, it achieves targeted control of the heating of the object to be heated in different temperature demand zones of the heating element. Attached Figure Description
[0044] Figure 1 This is a schematic flowchart illustrating a temperature control method for a heated non-combustible atomizing device according to one embodiment.
[0045] Figure 2 This is a schematic diagram illustrating the process of controlling the temperature of multiple temperature-required regions of a heating element according to one embodiment.
[0046] Figure 3 This is a schematic diagram illustrating the process of controlling the temperature of multiple temperature-required regions of a heating element according to another embodiment.
[0047] Figure 4 This is a schematic diagram illustrating the process of obtaining the temperature requirement region corresponding to the current highest temperature data in one embodiment.
[0048] Figure 5 This is a schematic diagram of a module of a heated non-combustible atomizing device according to one embodiment. Detailed Implementation
[0049] The present invention will now be described in further detail with reference to specific embodiments and accompanying drawings. Similar elements in different embodiments are referred to by associated similar element reference numerals. In the following embodiments, many details are described to facilitate a better understanding of this application. However, those skilled in the art will readily recognize that some features may be omitted in different situations, or may be replaced by other elements, materials, or methods. In some cases, certain operations related to this application are not shown or described in the specification. This is to avoid obscuring the core parts of this application with excessive description. For those skilled in the art, detailed description of these related operations is not necessary; they can fully understand the related operations based on the description in the specification and general technical knowledge in the art.
[0050] Furthermore, the features, operations, or characteristics described in the specification can be combined in any suitable manner to form various embodiments. At the same time, the steps or actions in the method description can be rearranged or adjusted in a manner obvious to those skilled in the art. Therefore, the various orders in the specification and drawings are only for the clear description of a particular embodiment and do not imply a necessary order, unless otherwise stated that a particular order must be followed.
[0051] The serial numbers assigned to components in this document, such as "first" and "second," are used only to distinguish the described objects and have no sequential or technical meaning. The terms "connection" and "linkage" used in this application, unless otherwise specified, include both direct and indirect connections (linkages).
[0052] The technical solution of this application will be described in detail below with reference to the embodiments.
[0053] Please refer to Figure 1 This application provides a temperature control method for a heat-not-burning atomizing device. The heating element in the heat-not-burning atomizing device includes multiple temperature demand zones, each temperature demand zone having a temperature demand curve showing the change of a first theoretical temperature demand value with heating time. The temperature control method includes:
[0054] Step S100: Obtain temperature data for each temperature demand area; wherein, the temperature data for each temperature demand area is collected by a temperature sensor located in the temperature demand area;
[0055] Step S200: Identify the highest current temperature data from multiple temperature data points, and calculate the second theoretical temperature requirement value corresponding to the current heating time in the pre-constructed composite control curve; wherein, the second theoretical temperature requirement value corresponding to the current heating time is greater than or equal to the maximum value among multiple first theoretical temperature requirement values corresponding to the current heating time;
[0056] Step S300: Obtain the difference between the second theoretical temperature requirement value and the current highest temperature data;
[0057] Step S400: Based on the difference between the second theoretical temperature requirement value and the current highest temperature data, the temperature of multiple temperature requirement areas in the heating element is controlled.
[0058] In some embodiments, in step S100 above, the multiple temperature data are obtained by measuring from multiple temperature-requirement areas in real time. That is, multiple temperature sensors are used to monitor the temperature of multiple different temperature-requirement areas of the heating element.
[0059] In some embodiments, each temperature demand region has a temperature demand curve showing the change of a first theoretical temperature demand value over heating time. Those skilled in the art can divide the heating-non-combustion atomizing device into multiple temperature demand regions based on actual needs. That is, different temperature demand regions have different temperature demand curves. Those skilled in the art can specifically determine each temperature demand curve based on actual needs. Generally, each temperature demand curve is different.
[0060] In some embodiments, multiple temperature demand curves corresponding to various temperature demand regions are used to characterize the temperature demand of different temperature demand regions at different heating times. Those skilled in the art can set the number of temperature sensors and temperature demand regions according to actual scenario requirements. For example, in the first half of the heating time after the heating element begins to heat, the key heating area is mainly the upper half of the heating element along its axial direction (this is because the object to be heated corresponding to the upper half of the heating element needs to be heated in the first half of the heating time). The upper half of the heating element along its axial direction can be considered an independent temperature demand region (such as a first temperature demand region). Therefore, in the first half of the heating time, the temperature demand curve corresponding to the first temperature demand region is used to independently control the temperature of the first temperature demand region. That is, in the first half of the heating time, the composite temperature control curve coincides with the temperature demand curve corresponding to the first temperature demand region. In the latter half of the heating period after the heating element begins heating, the focus of heating is primarily on the lower half of the heating element along its axial direction (this is because the object to be heated corresponding to the lower half of the heating element needs to be heated more intensely during this latter half of the heating period). This lower half of the heating element along its axial direction can be considered another independent temperature demand region (such as a second temperature demand region). Therefore, during the latter half of the heating period, the temperature demand curve corresponding to the second temperature demand region is used to independently control the temperature of that region. In other words, during the latter half of the heating period, the composite temperature control curve coincides with the temperature demand curve corresponding to the second temperature demand region. It is understandable that, for example, the high-temperature region of the heating element (i.e., the part of the heating element with higher energy demand) may be located in the first temperature demand region during the first heating period, but during the latter half of the heating period, the high-temperature region of the heating element may shift to the second temperature demand region or another temperature demand region.
[0061] In some embodiments, the temperature demand region corresponding to the current highest temperature data is used to characterize the region where the heating element currently needs to focus on supplying energy.
[0062] In some embodiments, since the control unit of the heating element can acquire real-time temperature data of multiple temperature demand areas in real time, the control unit of the heating element can identify the highest temperature data from multiple temperature data in real time and use the highest temperature data as the current highest temperature data.
[0063] In some embodiments, in step S200 above, when the current heating time is known, the second theoretical temperature requirement value can be directly identified through the composite control curve. That is, the second theoretical temperature requirement value corresponding to the current heating time in the pre-constructed composite control curve is directly calculated.
[0064] In some embodiments, the second theoretical temperature requirement value corresponding to the current heating time is greater than or equal to the maximum value among a plurality of first theoretical temperature requirement values corresponding to the current heating time.
[0065] In some embodiments, please refer to Figure 2 In step S400 above, based on the difference between the second theoretical temperature requirement value and the current highest temperature data, the temperature of multiple temperature requirement areas of the heating element is controlled, including:
[0066] Step S410a: Based on the difference between the second theoretical temperature demand value and the current highest temperature data, calculate the unit energy demand for each temperature demand region.
[0067] Step S420a: Calculate the total energy required to input the heating element based on the energy demand of the individual unit;
[0068] Step S430a: Control the energy input to the heating element based on the total energy demand.
[0069] In some embodiments, in step S410a above, the difference between the second theoretical temperature requirement value and the current highest temperature data is obtained. For example, the current highest temperature data corresponding to the current heating time is 160 degrees Celsius, while the second theoretical temperature requirement value is directly identified as 200 degrees Celsius through the composite control curve. Therefore, the difference between the second theoretical temperature requirement value and the current highest temperature data is 40 degrees Celsius. Afterwards, the control unit can calculate the energy required to input into the entire heating area (i.e., the heating element) based on the difference between the second theoretical temperature requirement value and the current highest temperature data, thereby controlling the total energy input to the heating element.
[0070] In some embodiments, those skilled in the art can calculate the unit energy requirement for each temperature requirement region based on technical needs. Since the parameters (such as volume and specific heat capacity) of each temperature requirement region can be predetermined, once the difference between the second theoretical temperature requirement value and the current highest temperature data is determined, the unit energy requirement for each temperature requirement region can be calculated based on actual needs.
[0071] It should be noted that calculating the required energy per unit for each temperature zone based on actual needs is common knowledge in this field, and therefore will not be elaborated here.
[0072] In some embodiments, in step S420a above, after the energy demand of a single unit is determined, since the energy demand of a single unit in each temperature demand region can be regarded as the same, the total energy demand of the heating element to be input can be calculated by multiplying the energy demand of the single unit by the number of temperature demand regions.
[0073] It should be noted that the energy input to the heating element in step S430a above is common knowledge in the field, and therefore will not be elaborated here.
[0074] In some embodiments, please refer to Figure 3 In step S400 above, based on the difference between the theoretical temperature requirement value and the current highest temperature data, the temperature of multiple temperature requirement areas of the heating element is controlled, including:
[0075] Step S410b: Obtain the temperature demand region corresponding to the current highest temperature data, and use the temperature demand region corresponding to the current highest temperature data as an independent control region;
[0076] Step S420b: Calculate the individual unit energy demand for the independent control area based on the difference between the theoretical temperature demand value and the current highest temperature data;
[0077] Step S430b: Input the energy of the independent control area based on the energy demand control of the individual unit, and input the energy of the temperature demand area other than the independent control area based on the preset energy demand control of the individual unit.
[0078] In some embodiments, since the parameters of the independent control region (such as volume and specific heat capacity) can be predetermined, once the difference between the second theoretical temperature requirement value and the current highest temperature data is determined, the individual energy requirement to be input into the independent control region can be calculated according to actual needs.
[0079] It should be noted that calculating the required energy per unit for each temperature zone based on actual needs is common knowledge in this field, and therefore will not be elaborated here.
[0080] In some embodiments, the preset unit energy requirement can be pre-set according to actual needs. For example, the preset unit energy requirement value is less than a certain value of the energy input to the independent control area.
[0081] In some embodiments, temperature control can be performed on different temperature demand regions based on different temperature demand curves within a self-defined first time period. During a self-defined second time period, when controlling the temperature of different temperature demand regions using a composite control curve, the temperature of the independent control region can be controlled based on the composite control curve. Other temperature demand regions outside the independent control regions can be controlled based on their original temperature demand curves. The first temperature sensor can correspond to the first temperature demand region and the first temperature demand curve, the second temperature sensor can correspond to the second temperature demand region and the second temperature demand curve, and so on. Those skilled in the art can modify, add to, or delete the aforementioned first and second time periods based on actual application scenarios.
[0082] In some embodiments, please refer to Figure 4 S410b: Obtain the temperature requirement area corresponding to the highest current temperature data, including:
[0083] Step S411b: Obtain the number of the temperature sensor corresponding to the temperature data; wherein, one temperature sensor number corresponds to only one temperature requirement area;
[0084] Step S412b: Based on the current highest temperature data, identify the number of the temperature sensor corresponding to the current highest temperature data;
[0085] Step S413b: Based on the temperature sensor number corresponding to the current highest temperature data, obtain the temperature requirement area corresponding to the current highest temperature data.
[0086] In some embodiments, those skilled in the art may number the temperature sensors corresponding to the temperature data according to actual needs.
[0087] In some embodiments, when the control unit receives the temperature data of each temperature demand area acquired by each temperature sensor, it can simultaneously receive the number of that temperature sensor. That is, the temperature data of each temperature demand area corresponds one-to-one with the number of the temperature sensor. The highest current temperature data corresponding to the current heating time is one of the temperature data corresponding to the current heating time in multiple temperature demand areas. Therefore, after the highest current temperature data corresponding to the current heating time is determined, the number of the temperature sensor corresponding to the highest current temperature data can be directly identified.
[0088] In some embodiments, since the current highest temperature data comes from one of multiple temperature sensors, the specific data source of the current highest temperature data can be easily identified (e.g., by a control unit). Furthermore, since each temperature sensor independently corresponds to a temperature demand region, the temperature demand region corresponding to the current highest temperature data can be identified (e.g., by a control unit). By designating the temperature demand region corresponding to the current highest temperature data as an independent control region, the temperature of the independent control region can be controlled relatively independently according to its temperature demand.
[0089] In some embodiments, for example, the current highest temperature data is 160 degrees Celsius, while the theoretical temperature requirement value is directly identified as 200 degrees Celsius through the composite control curve. Therefore, the difference between the theoretical temperature requirement value and the current highest temperature data is 40 degrees Celsius. The control unit can then calculate the energy required to input into the independent control area based on the difference between the theoretical temperature requirement value and the current highest temperature data, thereby achieving independent temperature control of the independent control area.
[0090] As can be seen, in some embodiments, the temperature of multiple temperature requirement areas of the heating element is controlled based on the difference between the theoretical temperature requirement value and the current highest temperature data. That is, the temperature requirement area corresponding to the current highest temperature data is identified and used as an independent control area. Based on the difference between the theoretical temperature requirement value and the current highest temperature data, the independent control area is independently controlled. This allows for the focused control of a certain temperature requirement area of the heating element within a certain time period, thereby enabling relatively independent heating of the object to be heated corresponding to that temperature requirement area. In other words, it achieves targeted control of heating of different temperature requirement areas in the heating element.
[0091] In some embodiments, the composite control curve is pre-constructed based on the different temperature requirements of multiple temperature demand regions. The composite control curve is constructed through the following process:
[0092] Obtain multiple temperature demand curves corresponding to multiple temperature demand regions; where each temperature demand curve corresponds to only one temperature demand region.
[0093] Multiple temperature demand curves are placed in the same coordinate system. The maximum value of the temperature values corresponding to the heating time of the multiple temperature demand curves is selected, and the maximum value is taken as the composite temperature control value of the composite control curve under the heating time.
[0094] A composite control curve is generated based on the composite temperature control value.
[0095] In some embodiments, the temperature demand curve is a curve showing the relationship between the preset / demanded temperature of a certain temperature demand region and the current heating time.
[0096] In some embodiments, it is understood that the composite control curve may be composed of partial temperature demand curves corresponding to multiple key time periods. Those skilled in the art can customize the entire heating time. For example, the entire heating time may consist of multiple time periods. The duration of each time period can be defined independently. For example, the entire heating time may consist of a first time period and a second time period. The dividing points between multiple time periods are critical points (such as the critical point between the first and second time periods). For example, in the first time period, the heating of the object to be heated needs to be focused on controlling the first temperature demand area of the heating element, and the composite control curve corresponding to the first time period is actually the temperature demand curve corresponding to the first temperature demand area within the first time period; while in the second time period, the heating of the object to be heated needs to be focused on controlling the second temperature demand area of the heating element, and the composite control curve corresponding to the second time period is actually the temperature demand curve corresponding to the second temperature demand area within the second time period, thereby achieving targeted control of heating in different temperature demand areas.
[0097] In some embodiments, those skilled in the art can set independent temperature requirement curves for each temperature requirement region based on the actual application scenario.
[0098] In some embodiments, the current highest temperature data fluctuates within the range above and below the theoretical temperature value corresponding to the composite control curve.
[0099] It should be noted that generating composite control curves based on composite temperature control values is common knowledge in this field, so it will not be elaborated further.
[0100] The above describes a temperature control method for a heat-not-burning atomizing device. Some embodiments of this application also disclose a heat-not-burning atomizing device. Please refer to... Figure 5 The heated non-combustible atomizing device includes:
[0101] The heating element 100 is configured to heat the object to be heated;
[0102] Multiple temperature sensors 200 are respectively set in multiple temperature demand areas of the heating element 100 to monitor the temperature of each temperature demand area to obtain temperature data of each temperature demand area. Each temperature demand area has a temperature demand curve of the first theoretical temperature demand value changing with heating time.
[0103] The control unit 300 is configured to identify the current highest temperature data from multiple temperature data, calculate the second theoretical temperature requirement value corresponding to the heating time in a pre-constructed composite control curve; wherein the second theoretical temperature requirement value corresponding to the heating time is greater than or equal to the maximum value among multiple first theoretical temperature requirement values corresponding to the heating time; obtain the difference between the second theoretical temperature requirement value and the current highest temperature data; and control the temperature of multiple temperature requirement areas in the heating element 100 based on the difference between the second theoretical temperature requirement value and the current highest temperature data.
[0104] Specifically, based on the difference between the theoretical temperature requirement and the current highest temperature data, temperature control is implemented for multiple temperature requirement zones of the heating element 100, including:
[0105] Based on the difference between the theoretical temperature requirement and the current highest temperature data, calculate the unit energy requirement for each temperature requirement region.
[0106] Based on the energy demand of a single unit, the total energy demand for the heating element 100 is calculated.
[0107] The energy input to the heating element 100 is controlled based on the total energy demand.
[0108] Specifically, based on the difference between the theoretical temperature requirement and the current highest temperature data, temperature control is implemented for multiple temperature requirement zones of the heating element 100, including:
[0109] Obtain the temperature demand region corresponding to the current highest temperature data, and use the temperature demand region corresponding to the current highest temperature data as an independent control region;
[0110] Based on the difference between the theoretical temperature requirement and the current highest temperature data, calculate the energy requirement of each unit in the independent control area.
[0111] Energy input to the independent control area is based on the energy demand control of a single unit, and energy input to the temperature demand area other than the independent control area is based on the preset energy demand control of a single unit.
[0112] Among them, obtaining the temperature requirement area corresponding to the highest current temperature data includes:
[0113] Obtain the number of the temperature sensor 200 corresponding to the temperature data; wherein, the number of one temperature sensor 200 corresponds to only one temperature requirement area;
[0114] Based on the current highest temperature data, identify the number of the temperature sensor 200 corresponding to the current highest temperature data;
[0115] Based on the number of the temperature sensor 200 corresponding to the highest current temperature data, obtain the temperature requirement area corresponding to the highest current temperature data.
[0116] It should be noted that the specific operating procedures and corresponding technical effects of each component of the heated non-combustible atomizing device can be found in the aforementioned discussion of the temperature control method for the heated non-combustible atomizing device, and will not be repeated here.
[0117] The above is a description of a heated non-combustible atomizing device. Some embodiments of this application also disclose a computer-readable storage medium. This storage medium includes a program that can be executed by a processor to implement the temperature control method as described in any of the embodiments herein.
[0118] This document describes various exemplary embodiments with reference to them. However, those skilled in the art will recognize that changes and modifications can be made to the exemplary embodiments without departing from the scope of this document. For example, various operational steps and components for performing operational steps can be implemented in different ways depending on the specific application or considering any number of cost functions associated with the operation of the system (e.g., one or more steps can be deleted, modified, or combined with other steps).
[0119] In the above embodiments, implementation can be achieved, in whole or in part, by software, hardware, firmware, or any combination thereof. Furthermore, as those skilled in the art will understand, the principles herein can be reflected in a computer program product on a computer-readable storage medium pre-loaded with computer-readable program code. Any tangible, non-transitory computer-readable storage medium may be used, including magnetic storage devices (hard disks, floppy disks, etc.), optical storage devices (CD-ROMs, DVDs, Blu-ray discs, etc.), flash memory, and / or the like. These computer program instructions can be loaded onto a general-purpose computer, special-purpose computer, or other programmable data processing apparatus to form a machine, such that instructions executing on the computer or other programmable data processing apparatus can generate means for implementing a specified function. These computer program instructions can also be stored in a computer-readable storage medium that can instruct the computer or other programmable data processing apparatus to operate in a particular manner, such that instructions stored in the computer-readable storage medium can form an article of manufacture including means for implementing the specified function. The computer program instructions can also be loaded onto a computer or other programmable data processing apparatus to perform a series of operational steps on the computer or other programmable apparatus to produce a computer-implemented process, such that instructions executing on the computer or other programmable apparatus can provide steps for implementing the specified function.
[0120] While the principles herein have been illustrated in various embodiments, numerous modifications to the structure, arrangement, proportions, elements, materials, and components, particularly suited to specific environmental and operational requirements, may be used without departing from the principles and scope of this disclosure. These modifications and other alterations or alterations will be included within the scope of this document.
[0121] The foregoing specific descriptions have been described with reference to various embodiments. However, those skilled in the art will recognize that various modifications and changes can be made without departing from the scope of this disclosure. Therefore, considerations for this disclosure are to be illustrative rather than restrictive, and all such modifications are to be included within its scope. Similarly, advantages, other advantages, and solutions to problems with respect to various embodiments have been described above. However, benefits, advantages, solutions to problems, and any elements that produce these, or make them more explicit, should not be construed as critical, essential, or necessary. The term “comprising” and any other variations thereof as used herein are non-exclusive inclusion, meaning that a process, method, article, or apparatus that includes a list of elements includes not only those elements but also other elements not expressly listed or not part of the process, method, system, article, or apparatus. Furthermore, the term “coupled” and any other variations thereof as used herein refer to physical connections, electrical connections, magnetic connections, optical connections, communication connections, functional connections, and / or any other connections.
[0122] Those skilled in the art will recognize that many changes can be made to the details of the above embodiments without departing from the basic principles of the invention. Therefore, the scope of the invention should be determined only by the claims.
Claims
1. A temperature control method for a heated non-combustible atomizing device, characterized in that, The heating element in the heated non-combustible atomizing device includes multiple temperature demand zones, each of which has a temperature demand curve showing the change of a first theoretical temperature demand value with heating time. The temperature control method includes: Acquire temperature data for each of the temperature demand zones; wherein the temperature data for each temperature demand zone is collected by a temperature sensor located in the temperature demand zone; Identify the highest current temperature data from multiple temperature data points, and calculate the second theoretical temperature requirement value corresponding to the current heating time in the pre-constructed composite control curve; wherein, the second theoretical temperature requirement value corresponding to the current heating time is greater than or equal to the maximum value among multiple first theoretical temperature requirement values corresponding to the current heating time; Obtain the difference between the second theoretical temperature requirement value and the current highest temperature data; Based on the difference between the second theoretical temperature requirement value and the current highest temperature data, the temperature of multiple temperature requirement areas in the heating element is controlled. The composite control curve is constructed through the following process: obtaining multiple temperature demand curves corresponding to the multiple temperature demand regions; each temperature demand curve corresponds to only one temperature demand region; placing the multiple temperature demand curves in the same coordinate system, selecting the maximum value among the temperature values corresponding to the heating time of the multiple temperature demand curves, and using the maximum value as the composite temperature control value of the composite control curve under the heating time; generating the composite control curve based on the composite temperature control value.
2. The temperature control method as described in claim 1, characterized in that, The step of controlling the temperature of multiple temperature requirement zones of the heating element based on the difference between the second theoretical temperature requirement value and the current highest temperature data includes: Based on the difference between the second theoretical temperature requirement value and the current highest temperature data, calculate the unit energy requirement for each temperature requirement region. Based on the energy required for the individual unit, the total energy required to be input into the heating element is calculated; The energy input to the heating element is controlled based on the total energy demand.
3. The temperature control method as described in claim 1, characterized in that, The method of controlling the temperature of multiple temperature requirement zones of the heating element based on the difference between the theoretical temperature requirement value and the current highest temperature data includes: Obtain the temperature demand region corresponding to the current highest temperature data, and use the temperature demand region corresponding to the current highest temperature data as an independent control region; Based on the difference between the theoretical temperature requirement and the current highest temperature data, calculate the individual energy requirement that needs to be input into the independent control area; The energy input to the independent control area is based on the energy demand of the individual unit, and the energy input to the temperature demand area other than the independent control area is based on the preset energy demand of the individual unit.
4. The temperature control method as described in claim 3, characterized in that, The process of obtaining the temperature requirement region corresponding to the current highest temperature data includes: Obtain the number of the temperature sensor corresponding to the temperature data; wherein, one temperature sensor number corresponds to only one temperature requirement area; Based on the highest current temperature data, identify the number of the temperature sensor corresponding to the highest current temperature data; Based on the temperature sensor number corresponding to the highest current temperature data, the temperature requirement area corresponding to the highest current temperature data is obtained.
5. A heating non-combustible atomizing device, characterized in that, include: The heating element is configured to heat the object to be heated; Multiple temperature sensors are respectively set in multiple temperature demand areas of the heating element to monitor the temperature of each temperature demand area to obtain temperature data of each temperature demand area. Each temperature demand area has a temperature demand curve of a first theoretical temperature demand value changing with heating time. The control unit is configured to identify the current highest temperature data from a plurality of temperature data, calculate a second theoretical temperature requirement value corresponding to the heating time in a pre-constructed composite control curve; wherein the second theoretical temperature requirement value corresponding to the heating time is greater than or equal to the maximum value among a plurality of first theoretical temperature requirement values corresponding to the heating time; obtain the difference between the second theoretical temperature requirement value and the current highest temperature data; and control the temperature of a plurality of temperature requirement regions in the heating element based on the difference between the second theoretical temperature requirement value and the current highest temperature data. The composite control curve is constructed through the following process: obtaining multiple temperature demand curves corresponding to the multiple temperature demand regions; each temperature demand curve corresponds to only one temperature demand region; placing the multiple temperature demand curves in the same coordinate system, selecting the maximum value among the temperature values corresponding to the heating time of the multiple temperature demand curves, and using the maximum value as the composite temperature control value of the composite control curve under the heating time; generating the composite control curve based on the composite temperature control value.
6. The heating non-combustible atomizing device as described in claim 5, characterized in that, The method of controlling the temperature of multiple temperature requirement zones of the heating element based on the difference between the theoretical temperature requirement value and the current highest temperature data includes: Based on the difference between the theoretical temperature requirement value and the current highest temperature data, calculate the unit energy requirement for each temperature requirement region. Based on the energy required for the individual unit, the total energy required to be input into the heating element is calculated; The energy input to the heating element is controlled based on the total energy demand.
7. The heating non-combustible atomizing device as described in claim 5, characterized in that, The method of controlling the temperature of multiple temperature requirement zones of the heating element based on the difference between the theoretical temperature requirement value and the current highest temperature data includes: Obtain the temperature demand region corresponding to the current highest temperature data, and use the temperature demand region corresponding to the current highest temperature data as an independent control region; Based on the difference between the theoretical temperature requirement and the current highest temperature data, calculate the individual energy requirement that needs to be input into the independent control area; The energy input to the independent control area is based on the energy demand of the individual unit, and the energy input to the temperature demand area other than the independent control area is based on the preset energy demand of the individual unit.
8. The heating non-combustible atomizing device as described in claim 7, characterized in that, The process of obtaining the temperature requirement region corresponding to the current highest temperature data includes: Obtain the number of the temperature sensor corresponding to the temperature data; wherein, one temperature sensor number corresponds to only one temperature requirement area; Based on the highest current temperature data, identify the number of the temperature sensor corresponding to the highest current temperature data; Based on the temperature sensor number corresponding to the highest current temperature data, the temperature requirement area corresponding to the highest current temperature data is obtained.
9. A computer-readable storage medium, characterized in that, Includes a program that can be executed by a processor to implement the temperature control method as described in any one of claims 1 to 4.
Citation Information
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