Heating control method and device for electronic hookah tobacco material atomization

By obtaining user input information to generate a target heating control curve, the problem of inaccurate atomization temperature in electronic hookah devices is solved, and the consistency of smoke taste and device battery life are improved.

CN120642970APending Publication Date: 2025-09-16SHENZHEN IMPETUS TECH CO LTD

Patent Information

Application Number
CN202511100764.2
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-08-06
Publication Date
2025-09-16

AI Technical Summary

Technical Problem

Existing electronic hookah devices cannot accurately control the atomization temperature, resulting in uneven smoke taste, and have short battery life or rely on user experience, which can easily lead to dry burning of the smoke material or insufficient atomization.

Method used

By obtaining the user's input of the puffing mode, tobacco material weight, tobacco material type and heating chamber volume information, a target heating control curve is generated, including multiple temperature points and heating time. The artificial intelligence model is used to optimize the heating control curve to adapt to different tobacco material states.

Benefits of technology

It achieves precise control of the heating temperature under specific smoking modes, fully atomizes the smoke material, avoids dry burning and scorching, and improves the consistency of the smoke taste and the endurance of the device.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention provides a heating control method and device for electronic hookah tobacco material atomization, and the method comprises the steps: obtaining the smoking mode information inputted by a user, the tobacco material weight information of a to-be-atomized tobacco material, and the tobacco material type information, and determining the tobacco material humidity information according to the tobacco material type information; generating a target heating control curve corresponding to the to-be-atomized tobacco material according to the smoking mode information, the tobacco material weight information, the tobacco material humidity information and pre-stored heating cavity volume information; wherein the target heating control curve comprises a plurality of target temperature points and target heating durations in one-to-one correspondence with the target temperature points. By generating the target heating control curve corresponding to the to-be-atomized tobacco material, accurate control over the heating temperature in the specific smoking mode is achieved, the tobacco material can be fully atomized, and meanwhile dry burning and charring are not prone to occurring.
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Description

Technical Field

[0001] The present application relates to the field of electronic atomization technology, and in particular to a heating control method and device for atomizing electronic hookah tobacco material. Background Art

[0002] Electronic hookahs are a tobacco substitute that combines traditional hookah usage with electronic atomization technology. They heat the tobacco to produce an aerosol, which is then filtered through water before inhalation. Their working principle is that a built-in lithium battery powers the heating element in the atomizer, converting the tobacco into aerosol.

[0003] To solve the temperature control problem of heating elements, existing equipment usually adopts constant temperature heating or user manual adjustment mode, but both have significant defects: If heating is performed in constant temperature mode, the electronic hookah device needs to maintain the preset temperature range at a constant power output, and the tobacco material in the device is reduced in real time, resulting in an uneven taste of the generated aerosol; in addition, the constant temperature mode usually heats at full power, which can easily shorten the battery life of the device.

[0004] If the user adjusts manually, although different power levels can be selected for heating, this is too dependent on the user's experience and is not friendly enough for new users who are not familiar with this type of product. The user needs to make repeated trial and error adjustments. In addition, the user may forget to turn off the power, resulting in continued dry burning after the smoke material is exhausted.

[0005] Therefore, none of the above methods can accurately control the atomization temperature. If the temperature is too high, it is easy to cause carbonization of the smoke material and produce a burnt smell; if the temperature is too low, it is easy to cause insufficient atomization and thin smoke, which will affect the taste of the smoke. Summary of the Invention

[0006] In view of the above problems, the present application is proposed to provide a heating control method and device for atomizing electronic hookah tobacco material, which overcomes the above problems or at least partially solves the above problems, including: A heating control method for atomizing electronic hookah tobacco material, the method comprising: Obtaining the inhalation mode information, the tobacco material weight information and the tobacco material type information of the tobacco material to be atomized input by the user, and determining the tobacco material humidity information according to the tobacco material type information; A target heating control curve corresponding to the tobacco material to be atomized is generated based on the puffing mode information, the tobacco material weight information, the tobacco material humidity information and the pre-stored heating chamber volume information; wherein the target heating control curve includes multiple target temperature points and target heating times corresponding to each of them.

[0007] Furthermore, it also includes: Acquiring sample data; wherein the sample data includes: puffing mode, tobacco material weight, tobacco material humidity, heating chamber volume and heating control curve; Based on the sample data, a corresponding relationship between the smoking mode, tobacco material weight, tobacco material humidity, heating chamber volume and heating control curve is established.

[0008] Furthermore, the step of generating a target heating control curve corresponding to the tobacco material to be atomized based on the puffing mode information, the tobacco material weight information, the tobacco material humidity information, and the pre-stored heating chamber volume information includes: The target heating control curve corresponding to the tobacco material to be atomized is generated through the corresponding relationship according to the puffing mode information, the tobacco material weight information, the tobacco material humidity information and the pre-stored heating chamber volume information.

[0009] Furthermore, the heating control curve includes temperature points and heating durations; the corresponding relationship includes a first sub-corresponding relationship; and the step of establishing a corresponding relationship between the puffing mode, tobacco material weight, tobacco material humidity, and heating chamber volume and the heating control curve based on the sample data includes: determining a target number of temperature points based on the puffing pattern information; A first sub-correspondence relationship is established between the number of temperature points, tobacco material weight, tobacco material humidity, and heating chamber volume and the heating temperature and heating time corresponding to each temperature point.

[0010] Furthermore, the sample data further includes the number of temperature changes; the correspondence further includes a second sub-correspondence; and the step of determining the target number of temperature points based on the puffing pattern information includes: Establishing a second sub-correspondence between the puffing mode and the number of temperature changes; determining the target temperature change times according to the puffing mode information through the second sub-correspondence; The target number of temperature points is determined according to the target temperature change times.

[0011] Furthermore, it also includes: Obtaining the standard weight of the tobacco material, the standard humidity of the tobacco material, and the standard volume of the heating chamber, as well as the corresponding heating control standard curve; wherein the heating control standard curve includes a puffing mode identifier; The weight coefficients corresponding to the standard weight of the tobacco material, the standard humidity of the tobacco material and the standard volume of the heating chamber are determined respectively according to the standard weight of the tobacco material, the standard humidity of the tobacco material and the standard volume of the heating chamber, and the corresponding heating control standard curve.

[0012] Furthermore, the step of generating a target heating control curve corresponding to the tobacco material to be atomized based on the puffing mode information, the tobacco material weight information, the tobacco material humidity information, and the pre-stored heating chamber volume information includes: Determining the corresponding heating control standard curve according to the puffing mode information; Determining the corresponding weight coefficient according to the heating control standard curve; The target heating control curve corresponding to the tobacco material to be atomized is generated according to the heating control standard curve, the weight coefficient, the tobacco material weight information, the tobacco material humidity information and the pre-stored heating chamber volume information.

[0013] Furthermore, the step of generating the target heating control curve corresponding to the tobacco material to be atomized based on the heating control standard curve, the weight coefficient, the tobacco material weight information, the tobacco material humidity information, and the pre-stored heating chamber volume information includes: Determining a first weighted curve according to the heating control standard curve, the tobacco material weight information, the tobacco material standard weight, and corresponding weight coefficients; Determining a second weighted curve based on the heating control standard curve, the tobacco material humidity information, the tobacco material standard humidity, and corresponding weight coefficients; Determining a third weighted curve according to the heating control standard curve, the heating chamber volume, the heating chamber standard volume, and corresponding weight coefficients; The target heating control curve corresponding to the tobacco material to be atomized is generated according to the first weighted curve, the second weighted curve and the third weighted curve.

[0014] A heating control device for atomizing electronic hookah tobacco material, the device comprising: a data acquisition module, configured to acquire the user's inputted puffing mode information, the tobacco material weight information and tobacco material type information of the tobacco material to be atomized, and determine the tobacco material humidity information based on the tobacco material type information; A target heating control curve generation module is used to generate a target heating control curve corresponding to the tobacco material to be atomized based on the puffing mode information, the tobacco material weight information, the tobacco material humidity information and the pre-stored heating chamber volume information; wherein, the target heating control curve includes multiple target temperature points and target heating time corresponding to each of them.

[0015] A computer device comprises a processor, a memory, and a computer program stored in the memory and capable of running on the processor, wherein the computer program, when executed by the processor, implements the method described in any embodiment of the present application.

[0016] A computer-readable storage medium stores a computer program, and when the computer program is executed by a processor, the method described in any embodiment of the present application is implemented.

[0017] This application has the following advantages: In the embodiments of the present application, in view of the fact that existing electronic water pipes cannot accurately control the atomization temperature, which affects the taste of the smoke, the present application provides a solution for generating a heating control curve through the suction mode, smoke material information and heating chamber volume. Specifically, the solution includes: obtaining the suction mode information, smoke material weight information and smoke material type information of the smoke material to be atomized input by the user, and determining the smoke material humidity information based on the smoke material type information; generating a target heating control curve corresponding to the smoke material to be atomized based on the suction mode information, the smoke material weight information, the smoke material humidity information and the pre-stored heating chamber volume information; wherein the target heating control curve includes multiple target temperature points and target heating time corresponding to each of them. By generating a target heating control curve corresponding to the smoke material to be atomized, the present application realizes precise control of the heating temperature under a specific suction mode, which can fully atomize the smoke material while preventing dry burning and scorching. BRIEF DESCRIPTION OF THE DRAWINGS

[0018] In order to more clearly illustrate the technical solution of the present application, the following is a brief introduction to the drawings required for the description of the present application. Obviously, the drawings described below are only some embodiments of the present application. For ordinary technicians in this field, other drawings can be obtained based on these drawings without any creative work.

[0019] Figure 1 This is a flowchart of the steps of a heating control method for atomizing electronic hookah tobacco material provided by one embodiment of the present application; Figure 2 is a heating control curve diagram of the classic mode in one embodiment of the present application; Figure 3 This is a heating control curve diagram of the non-tobacco mode in one embodiment of the present application; Figure 4 This is a heating control curve diagram of the custom mode in one embodiment of the present application; Figure 5 This is an example diagram of selecting a middle weighted temperature point in one embodiment of the present application; Figure 6 This is a comparative example diagram of weighted heating time according to an embodiment of the present application; Figure 7 This is a structural block diagram of a heating control device for atomizing electronic hookah tobacco material provided by one embodiment of the present application; Figure 8 This is a structural block diagram of a computer device provided in one embodiment of the present application. DETAILED DESCRIPTION

[0020] To make the objectives, features, and advantages of this application more readily apparent, the present application is further described below in conjunction with the accompanying drawings and specific embodiments. It is apparent that the embodiments described are only a portion of the embodiments of this application, not all of them. All other embodiments derived by persons of ordinary skill in the art based on the embodiments in this application without inventive effort are also within the scope of protection of this application.

[0021] By analyzing the existing technology, the inventors found that atomization of electronic hookah tobacco can be achieved through a heating control curve. The heating control curve generally includes temperature points and the corresponding heating time. In the heating control curve, the high and low positions of the temperature points represent the temperature values. The heating time represents the time for heating at the temperature value corresponding to a certain temperature point, which is reflected in the distance between adjacent temperature points. To achieve better atomization effect, the heating control curve is usually affected by the following conditions: The number of temperature points required for the heating control curve can be determined by the puffing mode information input by the user. The more temperature points there are, the more times the temperature can be changed, and the more adaptable the temperature points can be to the current state of the tobacco material. Conversely, for existing constant temperature devices, the number of temperature points is 1, and the atomization effect is poor. The heating control curve can also be determined based on the weight of the tobacco material. Generally speaking, the heavier the tobacco material, the longer the heating or holding time required to ensure uniform heating of the tobacco material, and the smaller the temperature variation between adjacent temperature points. At the same time, to achieve precise control of the atomization temperature, not only the initial weight of the tobacco material should be considered, but also the real-time weight change of the tobacco material during atomization. The heating control curve can also be determined based on the humidity of the smoke material. Generally speaking, for smoke materials with low humidity, due to their low moisture content and weak thermal buffering capacity, the smoke material heats up quickly. Excessively high temperatures can easily lead to dry burning and scorching, while excessively low temperatures can result in reduced smoke production. For smoke materials with high humidity, due to the rapid vaporization and expansion of the moisture in the smoke material, excessively high temperatures can easily produce overly dense smoke, while excessively low temperatures make it difficult to fully atomize, potentially causing condensation droplets to block the airway. The heating control curve can also be determined by the volume of the heating chamber. Generally speaking, the larger the volume of the heating chamber, the longer the heating time required for the heating chamber to reach the target temperature; and vice versa.

[0022] Based on the above analysis, one of the core technical concepts of this application is to generate a heating control curve through the puffing mode, smoke material information and heating chamber volume, so as to achieve precise control of the heating temperature under a specific puffing mode, which can fully atomize the smoke material while not easily causing dry burning and burning.

[0023] Reference Figure 1 , shows a heating control method for atomizing electronic hookah tobacco material provided by an embodiment of the present application, the method comprising: S110, obtaining the inhalation mode information, the tobacco material weight information, and the tobacco material type information of the tobacco material to be atomized input by the user, and determining the tobacco material humidity information according to the tobacco material type information; S120. Generate a target heating control curve corresponding to the tobacco material to be atomized based on the puffing mode information, the tobacco material weight information, the tobacco material humidity information, and the pre-stored heating chamber volume information; wherein the target heating control curve includes a plurality of target temperature points and target heating times corresponding to each of the target temperature points.

[0024] In the embodiments of the present application, in view of the fact that existing electronic water pipes cannot accurately control the atomization temperature, which affects the taste of the smoke, the present application provides a solution for generating a heating control curve through the suction mode, smoke material information and heating chamber volume. Specifically, the solution includes: obtaining the suction mode information, smoke material weight information and smoke material type information of the smoke material to be atomized input by the user, and determining the smoke material humidity information based on the smoke material type information; generating a target heating control curve corresponding to the smoke material to be atomized based on the suction mode information, the smoke material weight information, the smoke material humidity information and the pre-stored heating chamber volume information; wherein the target heating control curve includes multiple target temperature points and target heating time corresponding to each of them. By generating a target heating control curve corresponding to the smoke material to be atomized, the present application realizes precise control of the heating temperature under a specific suction mode, which can fully atomize the smoke material while preventing dry burning and scorching.

[0025] Next, a heating control method for atomizing electronic hookah tobacco material in this exemplary embodiment will be further described.

[0026] It should be noted that, referring to Figure 2-4 The puffing modes can include Classic, Non-Tobacco, and Custom. The total heating time can vary in different puffing modes. The total heating time of the heating control curve is determined by the number of target temperature points and the target heating time corresponding to each of them.

[0027] A comparison table of different tobacco material types (or brands, models) and tobacco material humidity can be pre-stored in the electronic hookah device, and the tobacco material humidity information is determined based on the tobacco material type information through the comparison table; for example, the humidity of traditional Arabic tobacco paste (also known as black paste) is generally 25-35%; the humidity of fruit-flavored tobacco paste (also known as yellow paste) is generally 30-40%.

[0028] In one embodiment of the present application, the method further includes: Acquiring sample data; wherein the sample data includes: puffing mode, tobacco material weight, tobacco material humidity, heating chamber volume and heating control curve; Based on the sample data, a corresponding relationship between the smoking mode, tobacco material weight, tobacco material humidity, heating chamber volume and heating control curve is established.

[0029] It should be noted that in the sample data, multiple sets of puff patterns, tobacco material weight, tobacco material humidity, and heating chamber volume are set as input conditions, and heating test experiments are conducted using different heating control curves. The heating control curve with the best smoke production effect is selected as the output result of this set of input conditions, thereby determining multiple sets of sample data. This sample data can serve as a training sample set for the artificial intelligence model, and the corresponding relationship can be determined by the artificial intelligence model.

[0030] In one embodiment of the present application, the specific process of "generating a target heating control curve corresponding to the tobacco material to be atomized based on the puffing mode information, the tobacco material weight information, the tobacco material humidity information and the pre-stored heating chamber volume information" in step S120 can be further explained in combination with the following description.

[0031] As described in the following steps, the target heating control curve corresponding to the tobacco material to be atomized is generated through the corresponding relationship according to the puffing mode information, the tobacco material weight information, the tobacco material humidity information and the pre-stored heating chamber volume information.

[0032] It should be noted that the puff pattern information, the tobacco material weight information, the tobacco material humidity information, and the pre-stored heating chamber volume information can be input into a trained artificial intelligence model, which then outputs the target heating control curve corresponding to the tobacco material to be atomized. As an example, the artificial intelligence model can be a convolutional neural network (CNN) for processing high-dimensional data. Its structure may include 8 convolutional layers, 8 pooling layers, 8 batch normalization layers, 1 flatten layer, 4 fully connected layers, 4 dropout layers, 1 reshape layer, and 1 softmax regression layer.

[0033] In one embodiment of the present application, the heating control curve includes temperature points and heating durations; the correspondence includes a first sub-correspondence; the following description can be combined to further illustrate the specific process of "establishing a correspondence between the puffing mode, tobacco material weight, tobacco material humidity and heating chamber volume and the heating control curve based on the sample data."

[0034] As described in the following steps, determining a target number of temperature points based on the puffing pattern information; A first sub-correspondence relationship is established between the number of temperature points, tobacco material weight, tobacco material humidity, and heating chamber volume and the heating temperature and heating time corresponding to each temperature point.

[0035] It should be noted that, since different heating control curves contain different numbers of temperature points, and the number of temperature points corresponds to the puffing mode, it is necessary to first determine the target number of temperature points based on the puffing mode information, and then generate the target heating control curve based on the target number of temperature points, the tobacco material weight information, the tobacco material humidity information and the pre-stored heating chamber volume information through the first sub-correspondence.

[0036] In one embodiment of the present application, the sample data also includes the number of temperature changes; the correspondence also includes a second sub-correspondence; the specific process of "determining the target number of temperature points based on the puffing pattern information" can be further explained in combination with the following description.

[0037] As described in the following steps, a second sub-correspondence between the puffing mode and the number of temperature changes is established; determining the target temperature change times according to the puffing mode information through the second sub-correspondence; The target number of temperature points is determined according to the target temperature change times.

[0038] It should be noted that, when the puffing mode is the classic mode, the puffing mode corresponds to a first temperature change number; when the puffing mode is the no-tobacco mode, the puffing mode corresponds to a second temperature change number; wherein, the first temperature change number is greater than the second temperature change number; when the puffing mode is the custom mode, the puffing mode corresponds to a third temperature change number; wherein, the third temperature change number can be an adjustment number that can be customized by the user.

[0039] In a specific implementation, referring to Figure 2-4Each puff mode may include: a heating stage and a puff cycle stage; the first temperature change number corresponding to the classic mode may be 9 times, and the target temperature points of the target heating control curve may be 10; the second temperature change number corresponding to the no-tobacco mode may be 8 times, and the target temperature points of the target heating control curve may be 9; when heated to the temperature corresponding to the target temperature point, switching to the next target temperature point for heating.

[0040] As an example, Figure 2-3 As shown in FIG, when in the puff cycle stage, the target temperature point of the target heating control curve can be gradient-decreased from the highest temperature point (350°C), and each temperature point maintains the corresponding heating time until it drops to the lowest temperature point (250°C) of the target heating control curve. Figure 4 As shown in the figure, after the temperature rise stage reaches the highest temperature point (350℃) and enters the puff cycle stage, within the temperature range allowed for the continuous atomization process (170℃~310℃), the user can customize the various temperature points in the puff cycle stage.

[0041] As an example, the sample data may also include other parameters as independent variables; for example, the material of the heating component, or the material of the atomizer pot used to carry the smoke material to be atomized. Due to the different thermal conductivity coefficients of different materials, for example, the thermal conductivity coefficient of SUS304 stainless steel is about 14.0~17.0W / (m·K), and the thermal conductivity coefficient of SUS430 stainless steel is about 24.0~28.0W / (m·K), which will also affect the heating effect during heating and atomization to a certain extent, thereby affecting the heating control curve that is most suitable for the current material conditions. For example, the ratio of the volume of the atomizer pot to the volume of the heating chamber may also affect the atomization effect.

[0042] In one embodiment of the present application, the method further includes: Obtaining the standard weight of the tobacco material, the standard humidity of the tobacco material, and the standard volume of the heating chamber, as well as the corresponding heating control standard curve; wherein the heating control standard curve includes a puffing mode identifier; The weight coefficients corresponding to the standard weight of the tobacco material, the standard humidity of the tobacco material and the standard volume of the heating chamber are determined respectively according to the standard weight of the tobacco material, the standard humidity of the tobacco material and the standard volume of the heating chamber, and the corresponding heating control standard curve.

[0043] It should be noted that a standard database is established through a heating test experiment. The standard database contains the standard weight of the smoke material, the standard humidity of the smoke material, the standard volume of the heating chamber, and the corresponding heating control standard curve, and the corresponding puffing mode is identified according to the heating control standard curve; the weight coefficients of the corresponding input parameters in each input mode can be determined by analyzing the influence of different input parameters (smoke material weight, smoke material humidity and heating chamber volume) on the heating control standard curve; as an example, according to the difference in the influence on the atomization effect, the weight coefficient corresponding to the smoke material weight can be 0.4 or 0.5, or any value obtained by calculation according to the actual situation, including 0; the weight coefficient corresponding to the smoke material humidity can be 0.2 or 0.3, or any value obtained by calculation according to the actual situation, including 0; the weight coefficient corresponding to the heating chamber volume can be 0.1 or 0.2, or any value obtained by calculation according to the actual situation, including 0.

[0044] In one embodiment of the present application, the specific process of "generating a target heating control curve corresponding to the tobacco material to be atomized based on the puffing mode information, the tobacco material weight information, the tobacco material humidity information and the pre-stored heating chamber volume information" in step S120 can be further explained in combination with the following description.

[0045] As described in the following steps, determining the corresponding heating control standard curve according to the puffing mode information; Determining the corresponding weight coefficient according to the heating control standard curve; The target heating control curve corresponding to the tobacco material to be atomized is generated according to the heating control standard curve, the weight coefficient, the tobacco material weight information, the tobacco material humidity information and the pre-stored heating chamber volume information.

[0046] It should be noted that the heating control standard curve corresponding to the input mode can be determined based on the suction mode information input by the user, thereby determining the weight coefficient of the corresponding input parameter under the current input mode, and then generating the target heating control curve based on the weight coefficient and the corresponding input parameter.

[0047] In one embodiment of the present application, the specific process of "generating the target heating control curve corresponding to the tobacco material to be atomized based on the heating control standard curve, the weight coefficient, the tobacco material weight information, the tobacco material humidity information and the pre-stored heating chamber volume information" can be further explained in combination with the following description.

[0048] As described in the following steps, a first weighted curve is determined based on the heating control standard curve, the tobacco material weight information, the tobacco material standard weight, and the corresponding weight coefficients; Determining a second weighted curve based on the heating control standard curve, the tobacco material humidity information, the tobacco material standard humidity, and corresponding weight coefficients; Determining a third weighted curve according to the heating control standard curve, the heating chamber volume, the heating chamber standard volume, and corresponding weight coefficients; The target heating control curve corresponding to the tobacco material to be atomized is generated according to the first weighted curve, the second weighted curve and the third weighted curve.

[0049] It should be noted that each weighted curve can include multiple weighted temperature points and corresponding weighted heating times. Based on the weighted temperature points and weighted heating times of different weighted curves, multiple corresponding target temperature points and target heating times are determined to obtain a target heating control curve. The heating control standard curve includes standard temperature points and standard heating times. Since the parameters of tobacco material weight, tobacco material humidity, and heating chamber volume are positively correlated with the expected temperature points and heating times, the temperature corresponding to each weighted temperature point can be calculated in sequence as follows: Weighted temperature point temperature = standard temperature point temperature - [standard temperature point temperature × (smoke material standard information - smoke material information) × weight coefficient]; As an example, when the tobacco material weight information is greater than the tobacco material standard weight, the corresponding difference in the above formula is a negative number. When the weight coefficient is a positive number, the calculation result is expressed as adding temperature to the original standard temperature point temperature.

[0050] The weighted heating time can be calculated in the following way: Weighted heating time = standard heating time - [standard heating time × (smoke material standard information - smoke material information) × weight coefficient]; For example, when the weight of the cigarette material is greater than the standard weight of the cigarette material, the corresponding difference in the above formula is a negative number. When the weight coefficient is a positive number, the calculation result is expressed as adding the heating time to the original standard heating time. From the above, it can be seen that for the heating control standard curve, a weighted curve can be obtained by appropriately offsetting the standard temperature points, including: offsetting the temperature points longitudinally to adjust the temperature value, and offsetting the temperature points horizontally to adjust the heating time.

[0051] In a specific embodiment of the present application, the first weighted curve includes multiple first weighted temperature points and first weighted heating times corresponding to each of them; the second weighted curve includes multiple second weighted temperature points and second weighted heating times corresponding to each of them; the third weighted curve includes multiple third weighted temperature points and third weighted heating times corresponding to each of them; the specific process of "generating the target heating control curve corresponding to the smoke material to be atomized based on the first weighted curve, the second weighted curve and the third weighted curve" can be further explained in combination with the following description.

[0052] As described in the following steps, a plurality of target temperature points are determined according to the first weighted temperature point, the second weighted temperature point and the third weighted temperature point; determining a plurality of target heating times corresponding to the target temperature points according to the first weighted heating time, the second weighted heating time, and the third weighted heating time; The target heating control curve corresponding to the tobacco material to be atomized is generated according to the target temperature point and the target heating time.

[0053] As an example, see Figure 5 , among the weighted temperature points corresponding to the same order, a weighted temperature point located in the middle between the first weighted temperature point, the second weighted temperature point, and the third weighted temperature point can be determined as the target temperature point; and then a corresponding target heating control curve is determined based on the target temperature point; You can also directly select the weighted curve with the largest number of weighted temperature points in the middle as the target heating control curve; for example, Figure 5 In the figure, the number of weighted temperature points in the middle of the first weighted curve is 1, the number of weighted temperature points in the middle of the second weighted curve is 3, and the number of weighted temperature points in the middle of the third weighted curve is 1. Since the second weighted curve has the largest number of weighted temperature points in the middle, the second weighted curve can also be directly used as the target heating control curve; The target temperature point may also be determined by averaging the first weighted temperature point, the second weighted temperature point, and the third weighted temperature point.

[0054] As an example, similarly, refer to Figure 6 , among the weighted heating times corresponding to the same order, the first weighted heating time T1, the second weighted heating time T2 and the third weighted heating time T3 can be sorted, and the weighted heating time in the middle of the sorting ranking is determined as the target heating time; for example, Figure 6 In the example, the second weighted heating time T2 is the weighted heating time in the middle of the ranking; Similarly, the weighted curve with the longest weighted heating time in the middle of the ranking can be directly selected as the target heating control curve; Similarly, the target heating time may be determined by averaging the first weighted heating time, the second weighted heating time, and the third weighted heating time.

[0055] The above is a description of the method embodiment of the present application. As for the device embodiment, since it is basically similar to the method embodiment, the description is relatively simple. For relevant details, please refer to the partial description of the method embodiment.

[0056] Reference Figure 7 , shows a heating control device for atomizing electronic hookah tobacco material provided by an embodiment of the present application, the device comprising: The data acquisition module 910 is used to obtain the puffing mode information, the tobacco material weight information and the tobacco material type information of the tobacco material to be atomized input by the user, and determine the tobacco material humidity information based on the tobacco material type information; The target heating control curve generation module 920 is used to generate a target heating control curve corresponding to the tobacco material to be atomized based on the puffing mode information, the tobacco material weight information, the tobacco material humidity information and the pre-stored heating chamber volume information; wherein, the target heating control curve includes multiple target temperature points and target heating time corresponding to each of them.

[0057] In one embodiment of the present application, the device further includes: A sample acquisition module is used to acquire sample data; wherein the sample data includes: puffing mode, tobacco material weight, tobacco material humidity, heating chamber volume and heating control curve; The corresponding relationship establishing module is used to establish the corresponding relationship between the smoking mode, the weight of the tobacco material, the humidity of the tobacco material and the volume of the heating chamber and the heating control curve according to the sample data.

[0058] In one embodiment of the present application, the target heating control curve generating module 920 includes: The corresponding relationship curve generating submodule is used to generate the target heating control curve corresponding to the tobacco material to be atomized through the corresponding relationship according to the puffing mode information, the tobacco material weight information, the tobacco material humidity information and the pre-stored heating chamber volume information.

[0059] In one embodiment of the present application, the heating control curve includes temperature points and heating durations; the corresponding relationship includes a first sub-corresponding relationship; and the corresponding relationship establishing module includes: a temperature point target number determination submodule, configured to determine a target number of temperature points based on the puffing pattern information; The first sub-correspondence establishing submodule is used to establish a first sub-correspondence between the number of temperature points, tobacco material weight, tobacco material humidity and heating chamber volume and the heating temperature and heating time corresponding to each temperature point.

[0060] In one embodiment of the present application, the sample data further includes the number of temperature changes; the correspondence further includes a second sub-correspondence; and the temperature point target quantity determination submodule includes: a second sub-correspondence establishing unit, configured to establish a second sub-correspondence between the puffing mode and the number of temperature changes; a target temperature change times determining unit, configured to determine the target temperature change times according to the puffing mode information and the second sub-correspondence; The temperature point target number determination unit is used to determine the target number of temperature points according to the target temperature change times.

[0061] In one embodiment of the present application, the device further includes: A standard acquisition module, configured to acquire a standard weight of tobacco material, a standard humidity of tobacco material, and a standard volume of the heating chamber, as well as a corresponding standard heating control curve; wherein the standard heating control curve includes a puffing mode identifier; The weight coefficient determination module is used to determine the weight coefficients corresponding to the standard weight of the tobacco material, the standard humidity of the tobacco material and the standard volume of the heating chamber according to the standard weight of the tobacco material, the standard humidity of the tobacco material and the standard volume of the heating chamber, as well as the corresponding heating control standard curve.

[0062] In one embodiment of the present application, the target heating control curve generating module 920 includes: a standard curve matching submodule, configured to determine the corresponding heating control standard curve according to the puffing mode information; A weight coefficient matching submodule, configured to determine the corresponding weight coefficient according to the heating control standard curve; The target heating control curve generating submodule is used to generate the target heating control curve corresponding to the tobacco material to be atomized based on the heating control standard curve, the weight coefficient, the tobacco material weight information, the tobacco material humidity information and the pre-stored heating chamber volume information.

[0063] In one embodiment of the present application, the target heating control curve generation submodule includes: a first weighted curve determining unit, configured to determine a first weighted curve according to the heating control standard curve, the tobacco material weight information, the tobacco material standard weight, and corresponding weight coefficients; a second weighted curve determining unit, configured to determine a second weighted curve according to the heating control standard curve, the tobacco material humidity information, the tobacco material standard humidity, and corresponding weight coefficients; a third weighted curve determining unit, configured to determine a third weighted curve according to the heating control standard curve, the heating chamber volume, the heating chamber standard volume, and corresponding weight coefficients; The target heating control curve determining unit is configured to generate the target heating control curve corresponding to the tobacco material to be atomized based on the first weighted curve, the second weighted curve, and the third weighted curve.

[0064] Reference Figure 8 , shows a block diagram of a computer device provided in an embodiment of the present application. The computer device 12 is suitable for implementing the embodiments of the present invention and may specifically include the following: Computer device 12 is implemented as a general-purpose computing device. Components of computer device 12 may include, but are not limited to, one or more processing units 16, system memory 28, and a bus 18 connecting various system components (including system memory 28 and processing units 16). Computer device 12 may be a device connected to the bus.

[0065] Bus 18 represents one or more of several types of bus structures, including a memory bus or memory controller, a peripheral bus, an accelerated graphics port, a processor, or a local bus using any of a variety of bus architectures. Examples of these architectures include, but are not limited to, an Industry Standard Architecture (ISA) bus, a Micro Channel Architecture (MCA) bus, an Enhanced ISA bus, a Video Electronics Standards Association (VESA) local bus, and a Peripheral Component Interconnect (PCI) bus.

[0066] The computer device 12 typically includes a variety of computer system readable media. These media can be any available media that can be accessed by the computer device 12, including volatile and non-volatile media, removable and non-removable media.

[0067] System memory 28 may include computer system readable media in the form of volatile memory, such as RAM 30 (random access memory) and / or cache 32. Computer device 12 may further include other removable / non-removable, volatile / non-volatile computer system storage media. By way of example only, storage system 34 may be configured to read and write to non-removable, non-volatile magnetic media (commonly referred to as a "hard drive"). Although Figure 8Although not shown, a magnetic disk drive for reading and writing to a removable non-volatile magnetic disk (e.g., a "floppy disk"), as well as an optical disk drive for reading and writing to a removable non-volatile optical disk (e.g., a CD-ROM, DVD-ROM, or other optical media) may be provided. In these cases, each drive may be connected to bus 18 via one or more data media interfaces. System memory 28 may include at least one program product having a set (e.g., at least one) of program modules configured to perform the functions of various embodiments of the present invention.

[0068] A program / utility 40 having a set (at least one) of program modules 42 may be stored, for example, in system memory 28. Such program modules 42 include, but are not limited to, an operating system, one or more application programs, other program modules, and program data, each of which, or some combination thereof, may include an implementation of a network environment. Program modules 42 generally perform the functions and / or methodologies of the embodiments described herein.

[0069] The computer device 12 may also communicate with one or more external devices 14 (e.g., a keyboard, a pointing device, a display 24, etc.), one or more devices that enable a user to interact with the computer device 12, and / or any device that enables the computer device 12 to communicate with one or more other computing devices (e.g., a network card, a modem, etc.). Such communication may be performed through an I / O interface 22 (input / output interface). Furthermore, the computer device 12 may also communicate with one or more networks (e.g., a local area network (LAN), a wide area network (WAN), and / or a public network (e.g., the Internet)) through a network adapter 20. Figure 8 As shown, the network adapter 20 communicates with the other modules of the computer device 12 via the bus 18. Figure 8 Not shown, other hardware and / or software modules may be used in conjunction with computer device 12, including but not limited to microcode, device drivers, redundant processing units, external disk drive arrays, RAID systems, tape drives, and data backup storage systems.

[0070] The processing unit 16 executes various functional applications and data processing by running programs stored in the system memory 28, such as implementing a heating control method for atomizing electronic hookah tobacco material provided by any embodiment of the present invention.

[0071] That is, when the program is executed by the processor, it is implemented to: obtain the inhalation mode information input by the user, the tobacco material weight information and tobacco material type information of the tobacco material to be atomized, and determine the tobacco material humidity information according to the tobacco material type information; A target heating control curve corresponding to the tobacco material to be atomized is generated based on the puffing mode information, the tobacco material weight information, the tobacco material humidity information and the pre-stored heating chamber volume information; wherein the target heating control curve includes multiple target temperature points and target heating times corresponding to each of them.

[0072] The computer device 12 is merely an example and should not limit the functions and scope of use of the embodiments of the present invention.

[0073] An embodiment of the present application further provides a computer-readable storage medium having a computer program stored thereon. When the program is executed by a processor, a heating control method for atomizing electronic hookah tobacco material as provided in any embodiment of the present application is implemented.

[0074] That is, when the program is executed by the processor, it is implemented to: obtain the inhalation mode information input by the user, the tobacco material weight information and tobacco material type information of the tobacco material to be atomized, and determine the tobacco material humidity information according to the tobacco material type information; A target heating control curve corresponding to the tobacco material to be atomized is generated based on the puffing mode information, the tobacco material weight information, the tobacco material humidity information and the pre-stored heating chamber volume information; wherein the target heating control curve includes multiple target temperature points and target heating times corresponding to each of them.

[0075] Computer storage media can take the form of any combination of one or more computer-readable media. A computer-readable medium can be a computer-readable signal medium or a computer-readable storage medium. A computer-readable storage medium can be, for example, but not limited to, an electrical, magnetic, optical, electromagnetic, infrared, or semiconductor system, apparatus, or device, or any combination thereof. More specific examples (a non-exhaustive list) of computer-readable storage media include: an electrical connection having one or more wires, a portable computer disk, a hard disk, RAM, read-only memory (ROM), erasable programmable read-only memory (EPROM), flash memory, optical fiber, a portable CD-ROM, an optical storage device, a magnetic storage device, or any suitable combination thereof. In this document, a computer-readable storage medium can be any tangible medium containing or storing a program that can be used by or in conjunction with an instruction execution system, apparatus, or device.

[0076] A computer-readable signal medium may include a data signal propagated in baseband or as part of a carrier wave, which carries computer-readable program code. Such a propagated data signal may take a variety of forms, including, but not limited to, electromagnetic signals, optical signals, or any suitable combination thereof. A computer-readable signal medium may also be any computer-readable medium other than a computer-readable storage medium that can transmit, propagate, or transport a program for use by or in conjunction with an instruction execution system, apparatus, or device.

[0077] Program code embodied on a computer-readable medium may be transmitted using any appropriate medium, including but not limited to wireless, wireline, optical fiber cable, radio frequency (RF), etc., or any suitable combination of the foregoing.

[0078] The computer program code for performing the operations of the present invention may be written in one or more programming languages, or a combination thereof, including object-oriented programming languages ​​such as Java, Smalltalk, C++, and conventional procedural programming languages ​​such as "C" or similar programming languages. The program code may be executed entirely on the user's computer, partially on the user's computer, as a stand-alone software package, partially on the user's computer and partially on a remote computer, or entirely on a remote computer or server. In the case of a remote computer, the remote computer may be connected to the user's computer via any type of network, including a LAN or WAN, or may be connected to an external computer (e.g., via the Internet using an Internet service provider).

[0079] Although preferred embodiments of the present invention have been described, those skilled in the art may make additional changes and modifications to these embodiments once they become aware of the basic inventive concepts. Therefore, the appended claims are intended to be interpreted as including the preferred embodiments and all changes and modifications that fall within the scope of the embodiments of the present invention.

[0080] Finally, it should be noted that, in this document, relational terms such as first and second, etc., are used only to distinguish one entity or operation from another entity or operation, and do not necessarily require or imply any actual relationship or order between these entities or operations. Moreover, the terms "comprises," "comprising," or any other variations thereof are intended to cover non-exclusive inclusion, such that a process, method, article, or terminal device that includes a series of elements includes not only those elements, but also other elements not explicitly listed, or elements inherent to such process, method, article, or terminal device. In the absence of further limitations, an element defined by the phrase "comprising a ..." does not exclude the presence of additional identical elements in the process, method, article, or terminal device that includes the element.

[0081] The above is a detailed introduction to the heating control method and device for atomizing electronic hookah tobacco provided by the present application. Specific examples are used herein to illustrate the principles and implementation methods of the present application. The description of the above embodiments is only used to help understand the method and core idea of ​​the present application. At the same time, for those skilled in the art, according to the idea of ​​the present application, there will be changes in the specific implementation methods and application scope. In summary, the content of this specification should not be understood as limiting the present application.

Claims

1. A heating control method for atomizing electronic hookah tobacco material, characterized in that: The method comprises: Obtaining the inhalation mode information, the tobacco material weight information and the tobacco material type information of the tobacco material to be atomized input by the user, and determining the tobacco material humidity information according to the tobacco material type information; A target heating control curve corresponding to the tobacco material to be atomized is generated based on the puffing mode information, the tobacco material weight information, the tobacco material humidity information and the pre-stored heating chamber volume information; wherein the target heating control curve includes multiple target temperature points and target heating times corresponding to each of them.

2. The method according to claim 1, characterized in that Also includes: Acquiring sample data; wherein the sample data includes: puffing mode, tobacco material weight, tobacco material humidity, heating chamber volume and heating control curve; Based on the sample data, a corresponding relationship between the smoking mode, tobacco material weight, tobacco material humidity, heating chamber volume and heating control curve is established.

3. The method according to claim 2, characterized in that The step of generating a target heating control curve corresponding to the tobacco material to be atomized based on the puffing mode information, the tobacco material weight information, the tobacco material humidity information, and the pre-stored heating chamber volume information includes: The target heating control curve corresponding to the tobacco material to be atomized is generated through the corresponding relationship according to the puffing mode information, the tobacco material weight information, the tobacco material humidity information and the pre-stored heating chamber volume information.

4. The method according to claim 2, characterized in that The heating control curve includes temperature points and heating durations; the corresponding relationship includes a first sub-corresponding relationship; and the step of establishing a corresponding relationship between the puffing mode, tobacco material weight, tobacco material humidity, and heating chamber volume and the heating control curve based on the sample data includes: determining a target number of temperature points based on the puffing pattern information; A first sub-correspondence relationship is established between the number of temperature points, tobacco material weight, tobacco material humidity, and heating chamber volume and the heating temperature and heating time corresponding to each temperature point.

5. The method according to claim 4, characterized in that The sample data also includes the number of temperature changes; the correspondence also includes a second sub-correspondence; and the step of determining the target number of temperature points based on the puffing pattern information includes: Establishing a second sub-correspondence between the puffing mode and the number of temperature changes; determining the target temperature change times according to the puffing mode information through the second sub-correspondence; The target number of temperature points is determined according to the target temperature change times.

6. The method according to claim 1, wherein Also includes: Obtaining the standard weight of the tobacco material, the standard humidity of the tobacco material, and the standard volume of the heating chamber, as well as the corresponding heating control standard curve; wherein the heating control standard curve includes a puffing mode identifier; The weight coefficients corresponding to the standard weight of the tobacco material, the standard humidity of the tobacco material and the standard volume of the heating chamber are determined respectively according to the standard weight of the tobacco material, the standard humidity of the tobacco material and the standard volume of the heating chamber, and the corresponding heating control standard curve.

7. The method according to claim 6, characterized in that The step of generating a target heating control curve corresponding to the tobacco material to be atomized based on the puffing mode information, the tobacco material weight information, the tobacco material humidity information, and the pre-stored heating chamber volume information includes: Determining the corresponding heating control standard curve according to the puffing mode information; Determining the corresponding weight coefficient according to the heating control standard curve; The target heating control curve corresponding to the tobacco material to be atomized is generated according to the heating control standard curve, the weight coefficient, the tobacco material weight information, the tobacco material humidity information and the pre-stored heating chamber volume information.

8. The method according to claim 7, characterized in that The step of generating the target heating control curve corresponding to the tobacco material to be atomized based on the heating control standard curve, the weight coefficient, the tobacco material weight information, the tobacco material humidity information, and the pre-stored heating chamber volume information includes: Determining a first weighted curve according to the heating control standard curve, the tobacco material weight information, the tobacco material standard weight, and corresponding weight coefficients; Determining a second weighted curve based on the heating control standard curve, the tobacco material humidity information, the tobacco material standard humidity, and corresponding weight coefficients; Determining a third weighted curve according to the heating control standard curve, the heating chamber volume, the heating chamber standard volume, and corresponding weight coefficients; The target heating control curve corresponding to the tobacco material to be atomized is generated according to the first weighted curve, the second weighted curve and the third weighted curve.

9. A heating control device for atomizing electronic hookah tobacco material, characterized in that: The device comprises: a data acquisition module for acquiring the user's inputted puffing mode information, the tobacco material weight information and tobacco material type information of the tobacco material to be atomized, and determining the tobacco material humidity information based on the tobacco material type information; A target heating control curve generation module is used to generate a target heating control curve corresponding to the tobacco material to be atomized based on the puffing mode information, the tobacco material weight information, the tobacco material humidity information and the pre-stored heating chamber volume information; wherein, the target heating control curve includes multiple target temperature points and target heating time corresponding to each of them.

10. A computer device, characterized in that: The method comprises a processor, a memory, and a computer program stored in the memory and capable of running on the processor, wherein the computer program implements the method according to any one of claims 1 to 8 when executed by the processor.

Citation Information

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