Method and device for adjusting temperature rise parameters of heat-not-burn appliance, controller and appliance

By detecting the actual energy value of each mouth of the user and adjusting the heating parameters of the heating body, the energy inconsistency caused by the suction habits of different users is solved, and the suction effect of heating non-burning instruments is improved.

CN120295401APending Publication Date: 2025-07-11SHENZHEN GEEKVAPE TECH CO LTD
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Patent Information

Application Number
CN202510348269.7
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-24
Publication Date
2025-07-11

AI Technical Summary

Technical Problem

Due to the different suction habits of different users, the energy consumption and storage energy of existing heating non-burning instruments when detecting the user's suction action for each mouth are greatly different, resulting in a reduction in the suction effect.

Method used

By detecting the actual energy value consumed by the user in each suction operation, and adjusting the heating parameters of the heating body, such as the heating temperature and the heating time, according to the difference between the actual energy value and the standard energy value, to achieve the adaptation of the energy consumed by each suction operation and the stored energy.

Benefits of technology

It achieves the energy consistency of the user's suction action in each mouth and improves the suction effect.

✦ Generated by Eureka AI based on patent content.

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Patent Text Reader

Abstract

The invention relates to the technical field of temperature control of heat-not-burn appliances, and provides a heat-not-burn appliance temperature rise parameter adjusting method and device, a controller and a heat-not-burn appliance. The method comprises the steps that when a user uses the heat-not-burn appliance, the actual energy value consumed by each suction action of the user is detected; according to the difference between the actual energy value and the standard energy value, the temperature rise parameter of the heating body when each suction action is detected is adjusted; wherein the standard energy value is the energy value generated when the heating body is heated to the standard temperature and keeps the standard time length, the standard temperature is the heating temperature corresponding to each suction action recorded in a standard temperature curve of the heating body, and the standard time length is the heating time length corresponding to each suction action recorded in the standard temperature curve. By adopting the method, the heating parameter of the appliance heating body when each suction action is detected can be adjusted according to the suction habit of a user, so that the energy consistency of suction before and after is realized, and the suction effect is improved.
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Description

Technical Field

[0001] This application relates to the technical field of temperature control of heat-not-burn appliances, and particularly to a method, device, controller, and heat-not-burn appliance for adjusting the heating-up parameters of a heat-not-burn appliance. Background Art

[0002] After a heat-not-burn appliance is started, when a user's puffing action is detected, the heating element is controlled to increase to a standard temperature and maintain it for a standard duration according to a stored standard temperature curve. The standard energy generated and stored during this process can be used for the user's next puff. However, due to different puffing habits of different users, the actual energy consumed by some users in each puffing action may be significantly different from the stored standard energy, which may lead to a decline in the puffing effect. Summary of the Invention

[0003] In view of this, embodiments of this application provide a method, device, controller, and heat-not-burn appliance for adjusting the heating-up parameters of a heat-not-burn appliance, which can adjust the heating-up parameters of the heating element of the appliance when each puffing action is detected according to the user's puffing habit, so that the energy consumed by the user in each puffing action matches the stored energy, thereby improving the puffing effect.

[0004] The first aspect of the embodiments of this application provides a method for adjusting the heating-up parameters of a heat-not-burn appliance, including:

[0005] When a user uses a heat-not-burn appliance, detect the actual energy value consumed by the user in each puffing action;

[0006] According to the difference between the actual energy value and the standard energy value, adjust the heating-up parameters of the heating element of the heat-not-burn appliance when each puffing action is detected;

[0007] Wherein, the standard energy value is the energy value generated during the process of the heating element increasing to the standard temperature and maintaining it for the standard duration, the standard temperature is the heating-up temperature corresponding to each puffing action recorded in the standard temperature curve of the heating element, and the standard duration is the heating-up duration corresponding to each puffing action recorded in the standard temperature curve.

[0008] In the technical solution of the embodiment of the present application, when a user uses a heat-not-burn appliance, the actual energy value consumed by the user for each puffing action is detected, and according to the difference between the actual energy value and the standard energy value, the temperature increase parameter of the heating element when each puffing action is detected is adjusted. By setting like this, it is possible to reasonably adjust the temperature increase parameter of the heating element when each puffing action is detected according to the user's puffing habit, so that the energy consumed by the user for each puffing action matches the stored energy, thereby achieving the energy consistency of successive puffing and improving the puffing effect. For example, if the user's habitual puffing force or puffing duration is small, the actual energy value consumed by the user for each puffing may be less than the standard energy value. At this time, the appliance will appropriately reduce the temperature increase duration and / or temperature increase of the heating element when each puffing action is detected according to the difference between the actual energy value and the standard energy value, so as to reduce the energy stored in the appliance when the user takes each puff and make it match the actual energy consumed by the user for each puffing action, ultimately improving the puffing effect.

[0009] In one implementation manner of the embodiment of the present application, adjusting the temperature increase parameter of the heating element of the heat-not-burn appliance when each puffing action is detected according to the difference between the actual energy value and the standard energy value includes:

[0010] Determining a target temperature and a target duration according to the difference between the actual energy value and the standard energy value;

[0011] Adjusting the temperature increase temperature of the heating element when each puffing action is detected to the target temperature, and adjusting the temperature increase duration of the heating element when each puffing action is detected to the target duration.

[0012] In one implementation manner of the embodiment of the present application, the actual energy value includes the energy consumption values corresponding to the puffing actions of all puff numbers of the user during one heating cycle of the heat-not-burn appliance; determining a target temperature and a target duration according to the difference between the actual energy value and the standard energy value includes:

[0013] Calculating the energy ratio of each energy consumption value to the standard energy value respectively;

[0014] Calculating the average value of each energy ratio;

[0015] Determining a target energy value according to the average value and the standard energy value;

[0016] Determining a target temperature and a target duration according to the target energy value; wherein, the energy value generated during the process of the heating element increasing to the target temperature and maintaining the target duration is the target energy value.

[0017] In one implementation manner of the embodiment of the present application, the heat-not-burn appliance is provided with a display device; during the process of calculating the energy ratio of each energy consumption value to the standard energy value respectively, it includes:

[0018] Calculate the current energy ratio of the energy consumed by the user's current puffing action to the standard energy value;

[0019] Control the display device to display according to the current energy ratio.

[0020] In an implementation manner of the embodiment of the present application, controlling the display device to display according to the current energy ratio includes:

[0021] Determine the target color and the target height according to the current energy ratio;

[0022] Control the display device to display a bar chart of the target color and the target height.

[0023] In an implementation manner of the embodiment of the present application, determining the target color and the target height according to the current energy ratio includes:

[0024] Determine the target color according to the proportional range where the current energy ratio is located;

[0025] Determine the target height according to the position of the current energy ratio in the proportional range.

[0026] In an implementation manner of the embodiment of the present application, controlling the display device to display according to the current energy ratio includes:

[0027] Control the display device to display prompt information for the user's puffing strength and / or puffing duration determined according to the current energy ratio.

[0028] The second aspect of the embodiment of the present application provides a heating non-combustible appliance heating parameter adjustment device, including:

[0029] An energy detection module, configured to detect the actual energy value consumed by the user for each puffing action when the user uses the heating non-combustible appliance;

[0030] A heating parameter adjustment module, configured to adjust the heating parameter of the heating element of the heating non-combustible appliance when each puffing action is detected according to the difference between the actual energy value and the standard energy value;

[0031] Wherein, the standard energy value is the energy value generated by the heating element during the process of heating to the standard temperature and maintaining the standard duration, the standard temperature is the heating temperature corresponding to each puffing action recorded in the standard temperature curve of the heating element, and the standard duration is the heating duration corresponding to each puffing action recorded in the standard temperature curve.

[0032] The third aspect of the embodiments of the present application provides a controller, which includes a memory, a processor, and a computer program stored in the memory and executable on the processor. When the processor executes the computer program, it implements the method for adjusting the heating temperature rise parameters of a heat-not-burn appliance provided in the first aspect of the embodiments of the present application.

[0033] The fourth aspect of the embodiments of the present application provides a heat-not-burn appliance, which includes the controller provided in the third aspect of the embodiments of the present application.

[0034] The fifth aspect of the embodiments of the present application provides a computer-readable storage medium, which stores a computer program. When the computer program is executed by a processor, it implements the method for adjusting the heating temperature rise parameters of a heat-not-burn appliance provided in the first aspect of the embodiments of the present application.

[0035] It can be understood that the beneficial effects of the above second to fifth aspects can be referred to the relevant descriptions in the first aspect above, and will not be elaborated here. Description of the Drawings

[0036] Figure 1 is a schematic diagram of a heat-not-burn appliance provided by the embodiments of the present application;

[0037] Figure 2 is a flowchart of a method for adjusting the heating temperature rise parameters of a heat-not-burn appliance provided by the embodiments of the present application;

[0038] Figure 3 is a schematic diagram of the operation process of the method for adjusting the heating temperature rise parameters of a heat-not-burn appliance provided by the embodiments of the present application in an actual application scenario;

[0039] Figure 4 is a structural framework diagram of a device for adjusting the heating temperature rise parameters of a heat-not-burn appliance provided by the embodiments of the present application;

[0040] Figure 5 is a schematic diagram of a controller provided by the embodiments of the present application. Detailed Embodiments

[0041] In the following description, specific details such as specific system structures and technologies are presented for the purpose of illustration rather than limitation, so as to thoroughly understand the embodiments of the present application. However, those skilled in the art should clearly understand that the present application can also be implemented in other embodiments without these specific details. In other cases, detailed descriptions of well-known systems, devices, circuits, and methods are omitted to avoid unnecessary details from interfering with the description of the present application. In addition, in the description of the specification of the present application and the appended claims, the terms "first", "second", "third", etc. are only used for distinguishing descriptions and cannot be understood as indicating or implying relative importance.

[0042] When the heat-not-burn device detects the user's puffing action, it will control the heating element to increase to the standard temperature and maintain the standard duration according to the stored standard temperature curve. The energy generated and stored during this process can be used for the user's next puff. However, due to different puffing habits of different users, the actual energy consumed by some users per puffing action may be quite different from the stored standard energy. At this time, the energy consistency of consecutive puffs cannot be achieved, resulting in a poor puffing effect.

[0043] In view of the above technical problems, the embodiments of the present application provide a method, a device, a controller, and a heat-not-burn device for adjusting the heating parameter of the heat-not-burn device, which can reasonably adjust the heating parameter of the heating element when detecting each puffing action according to the user's puffing habit, so that the energy consumed by the user per puffing action matches the stored energy, thereby achieving the energy consistency of consecutive puffs and improving the puffing effect. For more specific technical implementation details of the embodiments of the present application, please refer to the following embodiments.

[0044] As Figure 1 shown, it is a schematic diagram of a heat-not-burn device provided by an embodiment of the present application. Figure 1 The shown heat-not-burn device includes a controller, a heating element, and a battery module. The controller is electrically connected to the heating element and the battery module respectively. Among them, the controller can be used to control the temperature of the heating element. The heating element can be heated under the control of the controller to bake the aerosol-forming substrate. The battery module is used to supply electrical energy to the controller and the heating element.

[0045] It should be understood that the execution subject of each method embodiment of the present application is the controller provided in the heat-not-burn device, such as devices like the main control chip of the heat-not-burn device. The specific type of this controller is not limited in the embodiments of the present application.

[0046] Please refer to Figure 2 , which shows a method for adjusting the heating parameter of a heat-not-burn device provided by an embodiment of the present application, including:

[0047] 201. When the user uses the heat-not-burn device, detect the actual energy value consumed by the user per puffing action;

[0048] After the user inserts the aerosol-forming substrate into the heat-not-burn device, the device can be started for heating. First, it enters the preheating period. The heating element heats and outputs at full power. The actual temperature of the heating element can be calculated according to the actual resistance value and the temperature coefficient of resistance TCR of the heating element until the actual temperature is close to the set preheating temperature. Then, the PID temperature control module is called to perform PID temperature control on the heating element, so that the temperature of the heating element is stabilized at the preheating temperature and enters the puffing stage. At this time, the user can be prompted that the puffing stage has been entered by means such as motor vibration.

[0049] After the device enters the suction phase, the user's suction action can be detected by means of airflow detection or the like. For example, when a suction action occurs, after cold air flows into the airway, the device can detect it by measuring the mouth with a hardware microphone. The inflow of cold air will cause a change in the level of the pins of the hardware microphone circuit, and the duration t0 of this change can be recorded as the suction duration of the user. If the software energy measurement method is used, when a suction action occurs, the instantaneous inflow of cold air will cause a decrease in the current real-time temperature, and the PID temperature control module will immediately perform energy compensation. When the cumulative value of this energy compensation reaches a certain fixed value, it is regarded as one puff of suction. The time interval until the compensation value returns to normal can be regarded as the duration t0 of this change and used as the suction duration of the user.

[0050] When the device detects a suction action, it will control the heating element to increase the temperature to the standard temperature T and maintain it for the standard duration t according to the stored standard temperature curve. The energy value generated and stored during this process is denoted as the standard energy value P1, which can be used for the user's next puff of suction. Among them, the standard temperature T is the temperature increase corresponding to each puff of suction action recorded in the standard temperature curve of the heating element, and the standard duration t is the temperature increase duration corresponding to each puff of suction action recorded in the standard temperature curve of the heating element.

[0051] In one implementation manner of the embodiment of the present application, the standard energy value is determined by the following method:

[0052] (1) Obtain the actual temperature curve of the heating element;

[0053] (2) According to the standard duration and the standard temperature, use the integral principle to calculate the area of the temperature increase waveform corresponding to the suction action in the actual temperature curve as the standard energy value.

[0054] After the heat-not-burn device is started, it can record the actual temperature of the heating element at each time point in real time, so as to draw the actual temperature curve of the heating element. Both the actual temperature curve and the standard temperature curve can be stored in storage devices such as the register Flash of the device. Considering that the energy generated during the process of the heating element increasing to the standard temperature and maintaining it for the standard duration is the standard energy value, it can be calculated in combination with the standard duration, the standard temperature and the actual temperature curve. Specifically, after obtaining the actual temperature curve of the heating element, the temperature increase waveform corresponding to the suction action can be found from the actual temperature curve. According to the standard duration and the standard temperature, the area of this temperature increase waveform can be calculated using the integral principle as the standard energy value P1.

[0055] After calculating and obtaining the standard energy value P1, when the user starts the next puff, the actual energy value P2 consumed by the user's each puff action is detected. In actual operation, the actual energy value P2 can be calculated by calling the energy calculation function. Assuming that the energy calculation function is called at a frequency of 100 ms / time, the energy value will be calculated once every 100 ms using the energy calculation empirical formula P=(T2 - T1)^2×Δt, where T2 represents the temperature value of the heating element obtained by calling the heating element temperature calculation function this time, T1 represents the temperature value of the heating element obtained by calling the heating element temperature calculation function last time, and Δt represents the time difference between two calls of the heating element temperature calculation function. Assuming that the user's puff duration is 3 seconds and Δt is 100 ms, then this puff duration contains 30 time periods of Δt. For each time period, the energy value generated by the heating element within this time period can be calculated using (T2 - T1) 2 ×Δt, and finally the 30 energy values corresponding to the 30 time periods are accumulated to obtain the accumulated energy value within this 3-second time period as the actual energy value P2. It can be understood that a corresponding actual energy value P2 can be calculated for each puff action of the user, that is, if the user puffs 20 times during one heating cycle of the device, 20 different actual energy values P2 can be calculated.

[0056] 202. Adjust the temperature increase parameter of the heating element of the heat-not-burn device when each puff action is detected according to the difference between the actual energy value and the standard energy value.

[0057] The actual energy value P2 can be used to reflect the user's puffing habit. When the puffing force / duration of the user does not match the standard value, there will be a significant difference between the actual energy value P2 consumed by the user for each puffing action and the stored standard energy value P1. At this time, the energy consistency of consecutive puffs cannot be achieved, resulting in a poor puffing effect. To solve this problem, in the embodiments of the present application, the heating parameters of the heating element of the device when detecting each puffing action can be reasonably adjusted according to the difference between the actual energy value P2 and the standard energy value P1. For example, parameters such as the heating temperature and / or heating duration are adjusted. In this way, the energy stored by the device for each puffing action can be adapted to the energy consumed by the user for each puffing action, thereby achieving the energy consistency of consecutive puffs and improving the puffing effect. Specifically, if the actual energy value P2 is less than the standard energy value P1, the heating duration and / or heating temperature of the heating element when detecting each puffing action can be appropriately reduced, so as to reduce the energy stored by the device during each puffing of the user and make it adapt to the actual energy consumed by the user for each puffing action; if the actual energy value P2 is greater than the standard energy value P1, the heating duration and / or heating temperature of the heating element when detecting each puffing action can be appropriately increased, so as to increase the energy stored by the device during each puffing of the user and make it adapt to the actual energy consumed by the user for each puffing action; if the actual energy value P2 is equal to or very close to the standard energy value P1, there is no need to adjust the heating duration and / or heating temperature of the heating element when detecting each puffing action.

[0058] In an implementation manner of the embodiments of the present application, adjusting the heating parameters of the heating element of the heat-not-burn device when detecting each puffing action according to the difference between the actual energy value and the standard energy value includes:

[0059] (1) Determining a target temperature and a target duration according to the difference between the actual energy value and the standard energy value;

[0060] (2) Adjusting the heating temperature of the heating element when detecting each puffing action to the target temperature, and adjusting the heating duration of the heating element when detecting each puffing action to the target duration.

[0061] When adjusting the heating parameter of the heating element when detecting each puffing action according to the difference between the actual energy value P2 and the standard energy value P1, the target temperature T1 and the target duration t1 can be determined first according to the difference, and then the heating temperature of the heating element when detecting each puffing action can be adjusted to the target temperature T1, and the heating duration of the heating element when detecting each puffing action can be adjusted to the target duration t1. The core goal of adjusting the heating parameter is to make the energy value stored by the device during each puffing action match the energy value consumed by the user during each puffing action, so as to conform to the user's puffing habit. When the difference between the actual energy value P2 and the standard energy value P1 is too large, the actual energy value P2 can be used as a reference, and the corresponding target temperature T1 and target duration t1 can be determined by means of inverse energy integration, that is, when the heating element heats up to the target temperature T1 and maintains the target duration t1, the generated and stored energy value is the actual energy value P2.

[0062] In an implementation manner of the embodiment of the present application, the actual energy value includes the energy values consumed corresponding to each puffing action of the user during one heating cycle of the heat-not-burn device; determining the target temperature and the target duration according to the difference between the actual energy value and the standard energy value includes:

[0063] (1) Calculate the energy ratio of each consumed energy value to the standard energy value respectively;

[0064] (2) Calculate the average value of each energy ratio;

[0065] (3) Determine the target energy value according to the average value and the standard energy value;

[0066] (4) Determine the target temperature and the target duration according to the target energy value; wherein, the energy value generated during the process that the heating element heats up to the target temperature and maintains the target duration is the target energy value.

[0067] Considering that the actual energy value consumed by the user's single puffing action is not sufficient to accurately reflect the user's puffing habit, the comprehensive calculation can be completed by combining the energy values consumed corresponding to each puffing action of the user during one heating cycle of the device. Specifically, assuming that the user puffed 10 times during the current heating cycle, the energy values consumed corresponding to these 10 puffing actions are P21, P22, P23,... P2 10 , then calculate the energy ratio of each consumed energy value to the standard energy value P1 respectively, that is, calculate P21 / P1*100%, P22 / P1*100%,... P2 10 / P1 * 100%, where 10 energy ratios will be obtained. Then, calculate the average value A of these 10 energy ratios, and the average value A can be stored in the corresponding position of the register Flash. After that, according to the average value A and the standard energy value P1, a target energy value is determined. For example, P1 * A can be used as the target energy value. Finally, according to the target energy value, through the way of inverse energy integration, the target temperature T1 and the target duration t1 can be obtained. The energy value generated by the heating element during the process of heating to the target temperature T1 and maintaining the target duration t1 is the target energy value P1 * A. By setting like this, it can more accurately infer the user's suction habit according to the multiple puffing actions of the user during a heating cycle, thereby further improving the rationality and accuracy of the adjustment of the heating parameters. After that, when entering the next heating cycle of the appliance, the appliance will store the energy value of each puffing action according to the heating parameters T1 and t1, making it adapt to the energy value consumed by the user's habitual puffing action, so as to achieve the energy consistency of the front and back puffing and improve the puffing effect.

[0068] To facilitate the user to intuitively understand whether their puffing state meets the standard, the appliance can be provided with various types of display devices such as LED digital tubes, LED displays or LCD displays. By controlling the display action of the display device, the user can be prompted about the current puffing state. For specific content, please refer to the following text.

[0069] In an implementation manner of the embodiment of the present application, the heat-not-burn appliance is provided with a display device; in the process of respectively calculating the energy ratio of each consumed energy value to the standard energy value, it includes:

[0070] (1) Calculate the current energy ratio of the consumed energy value corresponding to the user's current puffing action to the standard energy value.

[0071] (2) Control the display device to display according to the current energy ratio.

[0072] Whenever the user takes a puff, the appliance will calculate the energy ratio of the consumed energy value corresponding to the user's current puffing action to the standard energy value P1, which is recorded as the current energy ratio, and control the display device to display according to the current energy ratio. For example, the display device can be controlled to display the specific value of the current energy ratio, and the user can know the difference between the energy value consumed by their current puffing action and the standard energy value by viewing this specific value, such as 30% of the standard energy value or 60% of the standard energy value, etc. For another example, the appliance can control the display device to display a bar chart or a pie chart of different colors according to the current energy ratio. The user can intuitively know the difference between the energy value consumed by their current puffing action and the standard energy value by viewing the color and height of the bar chart, or by viewing the color and width of the pie chart.

[0073] In an implementation manner of the embodiment of the present application, controlling the display device to display according to the current energy ratio includes:

[0074] (1) Determining a target color and a target height according to the current energy ratio;

[0075] (2) Controlling the display device to display a bar graph of the target color and the target height.

[0076] Taking the bar graph as an example, according to the current energy ratio, the target color and the target height of the bar graph can be determined. Then, the display device can be controlled to display the bar graph of the target color and the target height, that is, using bar graphs of different colors / heights to represent the current energy ratio in real time. For example, if the current energy ratio is very small, a short bar graph in red can be displayed; if the current energy ratio is small, a medium-height bar graph in yellow can be displayed; if the current energy ratio is close to 1, a tall bar graph in green can be displayed. In actual operation, assuming the display device is an LED display screen, the circuit pins of the corresponding LED area can be enabled according to the current energy ratio to form a bar graph. By setting like this, the user can intuitively know the difference between the energy value consumed by their current suction action and the standard energy value by viewing the color and height of the bar graph, and then understand whether their suction state (such as suction strength and suction duration) meets the standard.

[0077] In an implementation manner of the embodiment of the present application, determining a target color and a target height according to the current energy ratio includes:

[0078] (1) Determining the target color according to the proportion range where the current energy ratio is located;

[0079] (2) Determining the target height according to the position of the current energy ratio in the proportion range.

[0080] Specifically, when determining the target color and target height according to the current energy ratio, the target color of the bar chart can be determined based on the proportional range in which the current energy ratio lies. The appliance can pre-set the energy ratio ranges corresponding to each color respectively. For example, red corresponds to the range of 0 - 33%, yellow corresponds to the range of 34% - 66%, and green corresponds to the range greater than 67%. In this way, only by determining the proportional range in which the current energy ratio lies can the corresponding target color be determined. For example, if the current energy ratio is 50%, the target color is yellow, and so on. When the bar chart is red, it indicates that the energy value consumed by the user's current suction action is too small, and it can be inferred that the user's suction strength / suction duration is insufficient. When the bar chart is yellow, it indicates that the energy value consumed by the user's current suction action is still small, and it can be inferred that the user's suction strength / suction duration has not yet reached the optimal state. When the bar chart is green, it indicates that the energy value consumed by the user's current suction action meets the standard, and it can be inferred that the user's suction strength / suction duration has reached the optimal state, and the optimal suction effect can be obtained. On the other hand, the appliance can determine the target height of the bar chart according to the position of the current energy ratio within the proportional range. For example, the height of the red bar chart corresponding to an energy ratio of 10% is shorter than the height of the red bar chart corresponding to an energy ratio of 30%, and so on.

[0081] In an implementation manner of the embodiment of the present application, controlling the display device to display according to the current energy ratio includes:

[0082] Controlling the display device to display prompt information for the user's suction strength and / or suction duration determined according to the current energy ratio.

[0083] In addition to displaying graphic information such as bar charts and pie charts, the appliance can also output some prompt information according to the current energy ratio to remind the user whether the current suction strength and / or suction duration meet the standard. For example, if the current energy ratio is very low, the appliance can control the display device to display prompt information indicating that the suction strength and / or suction duration is too small, and suggest that the user increase the suction strength and / or extend the suction duration to improve the suction effect. If the current energy ratio is close to 1, the appliance can control the display device to display prompt information indicating that the suction strength and suction duration meet the standard, and suggest that the user maintain the current suction strength and suction duration to maintain the optimal suction effect. By setting it in this way, the user can obtain direct suggestions for adjusting the suction state to assist the user in correcting bad suction habits and ultimately improving the suction effect.

[0084] In the technical solution of the embodiment of the present application, when a user uses a heat-not-burn appliance, the actual energy value consumed by the user for each puffing action is detected, and according to the difference between the actual energy value and the standard energy value, the heating parameter of the heating element when each puffing action is detected is adjusted. By setting like this, it is possible to reasonably adjust the heating parameter of the heating element when each puffing action is detected according to the user's puffing habit, so that the energy consumed by the user for each puffing action matches the stored energy, thereby achieving the energy consistency of successive puffing and improving the puffing effect. For example, if the user's habitual puffing force or puffing duration is small, the actual energy value consumed by the user for each puffing may be less than the standard energy value. At this time, the appliance will appropriately reduce the heating duration and / or heating temperature of the heating element when each puffing action is detected according to the difference between the actual energy value and the standard energy value. This can reduce the energy stored in the appliance when the user takes each puff, making it match the actual energy consumed by the user for each puffing action, and ultimately improving the puffing effect.

[0085] To facilitate the understanding of the method for adjusting the heating parameter of the heat-not-burn appliance provided in the embodiment of the present application, a practical application scenario is listed below.

[0086] As Figure 3 shown, it is a schematic diagram of the operation process of the method for adjusting the heating parameter of the heat-not-burn appliance provided in the embodiment of the present application in a practical application scenario. In Figure 3After the appliance is inserted into the aerosol - generating substrate, the heating module is activated. Thereafter, the temperature calculation function is called, and the PID module is activated to control the temperature of the heating element, and the suction phase is entered. During the suction phase, the user's suction action is detected by means of a hardware microphone / software energy compensation, etc. If a suction action is detected, the target temperature of the heating element is increased by the standard temperature T °C and maintained for the standard duration ts, and the stored standard energy value P1 is calculated by means of energy integration, etc. Then, the actual energy value P2 consumed by each subsequent puff of the user is calculated, and the energy ratio P2 / P1*100% is calculated. The LED screen task is refreshed, and different - area LED circuit pins are enabled according to the energy ratio of the current puff of suction action, so as to control the LED screen to display a histogram. The height of the histogram increases as the energy ratio of the current puff of suction action increases. The color of the histogram is determined by the range in which the energy ratio of the current puff of suction action lies. If the energy ratio is less than 33%, the histogram is red, indicating insufficient suction force / suction duration; if the energy ratio is between 34% - 66%, the histogram is yellow, indicating that the suction force / suction duration has not yet reached the optimal state; if the energy ratio exceeds 67%, the histogram is green, indicating that the suction force / suction duration has reached the optimal state. In addition, after the current heating cycle ends, the appliance software records and calculates the average value A of the energy ratios corresponding to each suction action in the current heating cycle. When entering the next heating cycle, the energy value stored for each puff of the appliance is adjusted to P1*A, and the temperature rise T1 and the temperature - rise duration t1 for each puff of suction are obtained by means of energy - integral back - deduction. Thereafter, by adjusting the temperature - rise parameters of the appliance heating to T1 and t1, it is possible to make the energy consumed by each puff of the user's suction action match the stored energy, achieve the energy consistency of the front - and - back suction, and enable the user to obtain the best suction effect.

[0087] It should be understood that the magnitudes of the sequence numbers of the steps in the above - mentioned respective embodiments do not imply the order of execution. The order of execution of each process should be determined according to its function and internal logic, and should not constitute any limitation to the implementation process of the embodiments of the present application.

[0088] The above mainly describes a method for adjusting the temperature - rise parameters of a heat - not - burn appliance. Next, a device for adjusting the temperature - rise parameters of a heat - not - burn appliance will be described.

[0089] Please refer to Figure 4 , an embodiment of a device for adjusting the temperature - rise parameters of a heat - not - burn appliance in an embodiment of the present application includes:

[0090] An energy detection module 401, configured to detect the actual energy value consumed by each puff of the user when the user uses the heat - not - burn appliance;

[0091] The heating parameter adjustment module 402 is configured to adjust the heating parameter of the heating element of the heat-not-burn appliance when each puffing action is detected according to the difference between the actual energy value and the standard energy value;

[0092] Wherein, the standard energy value is the energy value generated by the heating element during the process of rising to the standard temperature and maintaining the standard duration. The standard temperature is the rising temperature corresponding to each puffing action recorded in the standard temperature curve of the heating element, and the standard duration is the rising duration corresponding to each puffing action recorded in the standard temperature curve.

[0093] In an implementation manner of the embodiment of the present application, the heating parameter adjustment module includes:

[0094] The heating parameter determination unit is configured to determine the target temperature and the target duration according to the difference between the actual energy value and the standard energy value;

[0095] The heating parameter adjustment unit is configured to adjust the heating temperature of the heating element when each puffing action is detected to the target temperature, and adjust the heating duration of the heating element when each puffing action is detected to the target duration.

[0096] In an implementation manner of the embodiment of the present application, the actual energy value includes the energy consumption values corresponding to the puffing actions of all puffs of the user during one heating cycle of the heat-not-burn appliance. The heating parameter determination unit includes:

[0097] The energy ratio calculation sub-unit is configured to calculate the energy ratio of each energy consumption value to the standard energy value respectively;

[0098] The average value calculation sub-unit is configured to calculate the average value of the respective energy ratios;

[0099] The target energy value determination sub-unit is configured to determine the target energy value according to the average value and the standard energy value;

[0100] The heating parameter determination sub-unit is configured to determine the target temperature and the target duration according to the target energy value. Wherein, the energy value generated by the heating element during the process of rising to the target temperature and maintaining the target duration is the target energy value.

[0101] In an implementation manner of the embodiment of the present application, the heat-not-burn appliance is provided with a display device. The heat-not-burn appliance heating parameter adjustment device further includes:

[0102] The current energy ratio calculation module is configured to calculate the current energy ratio of the energy consumption value corresponding to the current puffing action of the user to the standard energy value;

[0103] The display control module is configured to control the display device to display according to the current energy ratio.

[0104] In an implementation manner of the embodiment of the present application, the display control module includes:

[0105] A bar chart parameter determination unit, configured to determine a target color and a target height according to the current energy ratio;

[0106] A bar chart display unit, configured to control a display device to display a bar chart with the target color and the target height.

[0107] In an implementation manner of the embodiment of the present application, the bar chart parameter determination unit includes:

[0108] A color determination subunit, configured to determine the target color according to the proportion range where the current energy ratio is located;

[0109] A height determination subunit, configured to determine the target height according to the position of the current energy ratio in the proportion range.

[0110] In an implementation manner of the embodiment of the present application, the display control module includes:

[0111] A prompt information display unit, configured to control a display device to display prompt information for the user's suction strength and / or suction duration determined according to the current energy ratio.

[0112] The embodiment of the present application further provides a computer-readable storage medium, where the computer-readable storage medium stores a computer program, and when the computer program is executed by a processor, the method for adjusting the heating parameter of a heat-not-burn appliance described in any of the above embodiments is implemented.

[0113] Figure 5 It is a schematic diagram of a controller provided by an embodiment of the present application. As Figure 5 shown, the controller 5 of this embodiment includes: a processor 50, a memory 51, and a computer program 52 stored in the memory 51 and executable on the processor 50. When the processor 50 executes the computer program 52, the steps in the embodiments of the above various methods for adjusting the heating parameter of a heat-not-burn appliance are implemented, such as Figure 2 the steps 201 to 202 shown. Alternatively, when the processor 50 executes the computer program 52, the functions of each module / unit in the above device embodiments are implemented, such as Figure 4 the functions of the modules 401 to 402 shown.

[0114] The computer program 52 can be divided into one or more modules / units, which are stored in the memory 51 and executed by the processor 50 to complete this application. The one or more modules / units can be a series of computer program instruction segments capable of performing specific functions, and these instruction segments are used to describe the execution process of the computer program 52 in the controller 5.

[0115] The so-called processor 50 can be a central processing unit (CPU), or can also be other general-purpose processors, digital signal processors (DSPs), application specific integrated circuits (ASICs), field-programmable gate arrays (FPGAs), or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components, etc. The general-purpose processor can be a microprocessor or the processor can also be any conventional processor, etc.

[0116] The memory 51 can be an internal storage unit of the controller 5, such as the hard disk or memory of the controller 5. The memory 51 can also be an external storage device of the controller 5, such as a plug-in hard disk equipped on the controller 5, a smart media card (SMC), a secure digital (SD) card, a flash card, etc. Further, the memory 51 can also include both the internal storage unit of the controller 5 and the external storage device. The memory 51 is used to store the computer program and other programs and data required by the controller 5. The memory 51 can also be used to temporarily store the data that has been output or will be output.

[0117] The embodiment of this application also provides a heat-not-burn appliance, which includes a controller as Figure 5 shown.

[0118] Those skilled in the art can clearly understand that, for the convenience and brevity of description, only the above-mentioned division of each functional unit and module is used as an example. In practical applications, the above functions can be allocated to different functional units and modules as needed, that is, the internal structure of the device can be divided into different functional units or modules to complete all or part of the functions described above. Each functional unit and module in the embodiment can be integrated into a processing unit, or each unit can exist physically alone, or two or more units can be integrated into one unit. The above integrated unit can be implemented in the form of hardware or in the form of a software functional unit. In addition, the specific names of each functional unit and module are only for the convenience of mutual distinction and do not limit the protection scope of this application. The specific working processes of the units and modules in the above system can refer to the corresponding processes in the foregoing method embodiments and will not be elaborated herein.

[0119] Those skilled in the art can clearly understand that, for the convenience and brevity of description, the specific working processes of the systems, devices, and units described above can refer to the corresponding processes in the foregoing method embodiments and will not be elaborated herein.

[0120] In the above embodiments, the descriptions of the various embodiments have their own emphases. For the parts not detailed or recorded in a certain embodiment, reference can be made to the relevant descriptions of other embodiments.

[0121] Those of ordinary skill in the art can realize that the units and algorithm steps of each example described in combination with the embodiments disclosed herein can be implemented by electronic hardware, or by a combination of computer software and electronic hardware. Whether these functions are executed in hardware or software depends on the specific application and design constraints of the technical solution. Professionals can use different methods to implement the described functions for each specific application, but such implementation should not be considered to exceed the scope of this application.

[0122] In the embodiments provided in this application, it should be understood that the disclosed devices and methods can be implemented in other ways. For example, the system embodiments described above are only illustrative. For example, the division of the modules or units is only a logical function division. In actual implementation, there can be other division methods. For example, multiple units or components can be combined or integrated into another system, or some features can be ignored or not executed. Another point is that the displayed or discussed couplings or direct couplings or communication connections to each other can be through some interfaces. The indirect couplings or communication connections of the devices or units can be in electrical, mechanical or other forms.

[0123] The unit described as a separation component may or may not be physically separated. The component shown as a unit may or may not be a physical unit, that is, it may be located in one place or may be distributed to multiple network units. Some or all of the units can be selected according to actual needs to achieve the purpose of the solution of the embodiments of the present application.

[0124] In addition, in each embodiment of the present application, the functional units may be integrated in a processing unit, or each unit may exist physically alone, or two or more units may be integrated in one unit. The above integrated units can be implemented in the form of hardware or in the form of software functional units.

[0125] If the integrated unit is implemented in the form of a software functional unit and sold or used as an independent product, it can be stored in a computer-readable storage medium. Based on such understanding, all or part of the processes in the above embodiments of the present application can also be completed by a computer program instructing relevant hardware. The computer program can be stored in a computer-readable storage medium. When the computer program is executed by a processor, the steps of the above various method embodiments can be implemented. Among them, the computer program includes computer program code, and the computer program code can be in the form of source code, object code, executable file or some intermediate form, etc. The computer-readable medium may include: any entity or device capable of carrying the computer program code, recording medium, USB flash drive, mobile hard disk, magnetic disk, optical disk, computer memory, read-only memory (ROM, Read-Only Memory), random access memory (RAM, RandomAccess Memory), electrical carrier signal, telecommunication signal, and software distribution medium, etc. It should be noted that the content included in the computer-readable medium can be appropriately increased or decreased according to the requirements of legislation and patent practice in the jurisdiction. For example, in some jurisdictions, according to legislation and patent practice, the computer-readable medium does not include electrical carrier signals and telecommunication signals.

[0126] The above embodiments are only used to illustrate the technical solutions of the present application, rather than to limit them; although the present application has been described in detail with reference to the foregoing embodiments, those of ordinary skill in the art should understand that they can still modify the technical solutions recorded in the foregoing embodiments, or perform equivalent replacements on some of the technical features; and these modifications or replacements do not make the essence of the corresponding technical solutions deviate from the spirit and scope of the technical solutions of the embodiments of the present application, and should all be included in the protection scope of the present application.

Claims

1. A method for adjusting the heating parameter of a heat-not-burn device, characterized in that, Comprising: When a user uses a heat-not-burn device, detecting the actual energy value consumed by the user for each puffing action; Adjusting the temperature rise parameters of the heating element of the heat-not-burn device when each puffing action is detected according to the difference between the actual energy value and the standard energy value; Wherein, the standard energy value is the energy value generated by the heating element during the process of rising to the standard temperature and maintaining the standard duration, the standard temperature is the temperature rise corresponding to each puffing action recorded in the standard temperature curve of the heating element, and the standard duration is the temperature rise duration corresponding to each puffing action recorded in the standard temperature curve.

2. The method according to claim 1, wherein The adjusting the temperature rise parameters of the heating element of the heat-not-burn device when each puffing action is detected according to the difference between the actual energy value and the standard energy value includes: Determining a target temperature and a target duration according to the difference between the actual energy value and the standard energy value; Adjusting the temperature rise temperature of the heating element when each puffing action is detected to the target temperature, and adjusting the temperature rise duration of the heating element when each puffing action is detected to the target duration.

3. The method according to claim 2, wherein The actual energy value includes the energy consumption values corresponding to the puffing actions of all puffs of the user during one heating cycle of the heat-not-burn device; the determining a target temperature and a target duration according to the difference between the actual energy value and the standard energy value includes: Calculating the energy ratio of each of the consumption energy values to the standard energy value respectively; Calculating the average value of each of the energy ratios; Determining a target energy value according to the average value and the standard energy value; Determining the target temperature and the target duration according to the target energy value; wherein, the energy value generated by the heating element during the process of rising to the target temperature and maintaining the target duration is the target energy value.

4. The method according to claim 3, characterized in that, The heat-not-burn device is provided with a display device; during the process of calculating the energy ratio of each of the consumption energy values to the standard energy value respectively, it includes: Calculating the current energy ratio of the consumption energy value corresponding to the current puffing action of the user to the standard energy value; Controlling the display device to display according to the current energy ratio.

5. The method according to claim 4, characterized in that, The controlling the display device to display according to the current energy ratio includes: Determining a target color and a target height according to the current energy ratio; Controlling the display device to display a histogram of the target color and the target height.

6. The method according to claim 5, characterized in that, The determining a target color and a target height according to the current energy ratio includes: Determining the target color according to the proportion range where the current energy ratio is located; Determining the target height according to the position of the current energy ratio in the proportion range.

7. The method according to any one of claims 4 to 6, characterized in that The controlling the display device to display according to the current energy ratio includes: Controlling the display device to display prompt information for the puffing intensity and / or puffing duration of the user determined according to the current energy ratio.

8. A heating non-combustion appliance heating parameter adjustment device, characterized in that, Comprising: An energy detection module, configured to detect the actual energy value consumed by the user for each puffing action when the user uses a heat-not-burn device; The heating parameter adjustment module is configured to adjust the heating parameter of the heating element of the heat-not-burn appliance when each puffing action is detected according to the difference between the actual energy value and the standard energy value; Wherein, the standard energy value is the energy value generated by the heating element during the process of rising to the standard temperature and maintaining the standard duration, the standard temperature is the rising temperature corresponding to each puffing action recorded in the standard temperature curve of the heating element, and the standard duration is the rising duration corresponding to each puffing action recorded in the standard temperature curve.

9. A controller, comprising a memory, a processor, and a computer program stored in the memory and executable on the processor, characterized in that, When the processor executes the computer program, it implements the method for adjusting the heating parameter of the heat-not-burn appliance according to any one of claims 1 to 7.

10. A heat-not-burn appliance, characterized in that, It includes the controller according to claim 9.