A heating efficiency regulation and control method and system based on electronic cigarette vapor volume

CN116458685BActive Publication Date: 2026-09-01SHENZHEN TIMEYAA ELECTRONIC TECH CO LTD
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Patent Information

Application Number
CN202310656562.0
Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2023-06-05
Publication Date
2026-09-01
Estimated Expiration
2043-06-05

AI Technical Summary

Technical Problem

[0004]上述相关技术所公开的技术方案属于被动式控制,必须根据吸烟者的抽吸气流的压强信号来调整电子烟的加热功率

Benefits of technology

若处于,则将所述第一温度阈值范围扩大X被作为第二温度阈值范围,并判断所述烟道靠近烟嘴处的温度数据是否处于所述第二温度阈值范围内;

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Abstract

This application relates to a method and system for adjusting and controlling the heating efficiency of an electronic cigarette based on the amount of vapor produced, and pertains to the technical field of electronic cigarettes. The method includes: responding to a request to collect airflow intensity information at the mouthpiece of the electronic cigarette; determining the state of the electronic cigarette based on the airflow intensity information; collecting dynamic attribute information of the electronic cigarette based on its state; and determining whether the heating power of the electronic cigarette needs to be adjusted based on the dynamic attribute information. This application has the effect of actively adjusting the heating power according to the usage of the electronic cigarette.
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Description

Technical Field

[0001] This application relates to the technical field of electronic cigarettes, and in particular to a method and system for adjusting and controlling the heating efficiency based on the amount of vapor produced by an electronic cigarette. Background Technology

[0002] As tobacco consumers become increasingly health-conscious, traditional cigarettes are facing a significant challenge due to environmental pollution and the dangers of secondhand smoke. E-cigarettes, on the other hand, generate vapor through atomization, producing no tar or carbon monoxide and virtually no secondhand smoke. They are considered a harmless smoking cessation product or tobacco alternative, attracting considerable attention and extensive research from major tobacco companies both domestically and internationally.

[0003] The related technology discloses an electronic cigarette that automatically adjusts the amount of smoke. It uses a method that correlates the intensity of the inhaled airflow with the amount of smoke. An airflow sensor converts the pressure information of the smoker's inhaled airflow into a voltage signal and transmits it to the main controller. The main controller sends a power adjustment command to the power supply and then adjusts the heating power of the electronic cigarette according to the power adjustment command.

[0004] The technical solutions disclosed in the above-mentioned related technologies are passive controls, which require adjusting the heating power of the electronic cigarette according to the pressure signal of the smoker's inhaled airflow. Summary of the Invention

[0005] The purpose of this application is to provide a heating efficiency adjustment and control method and system based on the amount of e-cigarette vapor, which can actively adjust the heating power according to the usage of e-cigarette.

[0006] Firstly, the heating efficiency adjustment and control method based on the amount of electronic cigarette vapor provided in this application adopts the following technical solution: A method for adjusting and controlling the heating efficiency based on the amount of vapor produced by an electronic cigarette includes: In response to a request to collect airflow intensity information at the e-cigarette mouthpiece; The state of the electronic cigarette is determined based on the airflow intensity information; The dynamic attribute information of the electronic cigarette is collected based on its state, and the heating power of the electronic cigarette is determined based on the dynamic attribute information.

[0007] By adopting the above technical solution, the state of the e-cigarette is determined based on the collected airflow intensity information, and the dynamic attribute information of the e-cigarette is collected based on the state of the e-cigarette. Based on the dynamic attribute information, it is determined whether the heating power of the e-cigarette needs to be adjusted. Thus, the effect of actively adjusting the heating power according to the usage of the e-cigarette is achieved.

[0008] Furthermore, determining the state of the electronic cigarette based on the airflow intensity information specifically includes: Determine whether the airflow intensity information is greater than a preset airflow intensity threshold; If the airflow intensity information is greater than the airflow intensity threshold, the electronic cigarette is in a first state, and the first state is the usage state; If the airflow intensity information is less than the airflow intensity threshold, the electronic cigarette is in a second state, and the second state is a static state.

[0009] By adopting the above technical solution, the state of the electronic cigarette can be determined based on the relationship between airflow intensity information and preset airflow intensity threshold, thereby facilitating the collection of subsequent dynamic attribute information of the electronic cigarette.

[0010] Furthermore, the step of collecting dynamic attribute information of the electronic cigarette based on its state, and determining whether the heating power of the electronic cigarette needs to be adjusted based on the dynamic attribute information, specifically includes: The electronic cigarette collects first dynamic data and second dynamic data. The first dynamic data includes temperature data near the mouthpiece of the flue, temperature data near the cartridge of the flue, and external ambient temperature data. The second dynamic data includes smoke volume data near the mouthpiece of the flue and smoke volume data near the cartridge of the flue. Determine whether the amount of smoke near the smoke cartridge in the smoke duct is within a preset first smoke amount threshold range; If so, determine whether the amount of smoke near the mouthpiece in the flue is within the preset second smoke amount threshold range; If it is, then the ratio of the amount of smoke near the smoke cartridge to the amount of smoke near the mouthpiece is defined as X; Determine whether the temperature data of the flue near the smoke cartridge is within a preset first temperature threshold range; If it is, then the first temperature threshold range is expanded by X to be used as the second temperature threshold range, and it is determined whether the temperature data of the flue near the mouthpiece is within the second temperature threshold range. If it is in the desired state, then there is no need to adjust the heating power of the electronic cigarette; If not, the heating power of the electronic cigarette needs to be adjusted until the temperature data of the flue near the mouthpiece is within the second temperature threshold range.

[0011] By adopting the above technical solution, dynamic attribute information of the e-cigarette is collected. When the amount of smoke near the cartridge in the smoke channel is within a first smoke volume threshold range and the amount of smoke near the mouthpiece in the smoke channel is within a second smoke volume threshold range, the ratio of the amount of smoke near the cartridge to the amount of smoke near the mouthpiece in the smoke channel is defined as X. When the temperature near the cartridge in the smoke channel is within a first temperature threshold range, the first temperature threshold range is expanded by X times to become a second temperature threshold range. It is then determined whether the temperature near the mouthpiece in the smoke channel is within the second temperature threshold range, and based on the determination result, it is determined whether the heating power of the e-cigarette needs to be adjusted. On the one hand, this can achieve the effect of actively adjusting the heating power of the e-cigarette; on the other hand, it can ensure the temperature near the mouthpiece in the smoke channel, thereby ensuring the amount of smoke flowing to the mouthpiece of the e-cigarette, thus bringing a better experience to the user.

[0012] Furthermore, the first smoke volume threshold range overlaps with the second smoke volume threshold range, and the minimum value of the first smoke volume threshold range is greater than the minimum value of the second smoke volume threshold range.

[0013] By adopting the above technical solution, the first smoke volume threshold range and the second smoke volume threshold range are set to overlap, and the minimum value of the first smoke volume threshold range is greater than the maximum value of the second smoke volume threshold range. This ensures that the smoke volume near the cartridge in the smoke duct and the smoke volume near the mouthpiece in the smoke duct will not differ too much, thus preventing excessive smoke loss.

[0014] Furthermore, when the temperature data near the mouthpiece of the flue is within the second temperature threshold range, the current heating power of the electronic cigarette is recorded, and the heating power is directly adjusted to the current heating power of the electronic cigarette when the electronic cigarette is used subsequently.

[0015] By adopting the above technical solution, the current heating power of the electronic cigarette is recorded, and when using the electronic cigarette in the future, the heating power of the electronic cigarette can be directly adjusted to the current heating power, thereby reducing the frequency of adjustment.

[0016] Furthermore, it also includes: An experience index model is constructed based on the dynamic attribute information of the e-cigarette, and the user's experience is evaluated based on the experience index model. The subsequent improvement direction of the e-cigarette is then adjusted based on the user experience.

[0017] Furthermore, the experience index model includes: Where Z represents the experience index, L1 represents the amount of smoke near the mouthpiece in the smoke duct, L2 represents the amount of smoke near the cartridge in the smoke duct, T1 represents the temperature near the mouthpiece in the smoke duct, T2 represents the temperature near the cartridge in the smoke duct, t represents the ambient temperature, α and β represent the weighting coefficients, and α+β=100%.

[0018] By adopting the above technical solution, the user's experience index can be calculated based on the experience index model, and the user's experience index can be fed back to the e-cigarette manufacturer. This allows the manufacturer to assess the user's experience based on the user's experience and adjust the direction of future improvements to the e-cigarette.

[0019] Secondly, this application provides a heating efficiency adjustment and control system based on the amount of e-cigarette vapor, which adopts the following technical solution: A heating efficiency adjustment and control system based on the amount of vapor produced by an electronic cigarette includes: The data acquisition module is used to acquire airflow intensity information at the e-cigarette mouthpiece in response to a request; The determination module is used to determine the state of the electronic cigarette based on the airflow intensity information; The judgment module is used to collect dynamic attribute information of the electronic cigarette based on its state, and determine whether the heating power of the electronic cigarette needs to be adjusted based on the dynamic attribute information.

[0020] By adopting the above technical solution, the state of the e-cigarette is determined based on the collected airflow intensity information, and the dynamic attribute information of the e-cigarette is collected based on the state of the e-cigarette. Based on the dynamic attribute information, it is determined whether the heating power of the e-cigarette needs to be adjusted. Thus, the effect of actively adjusting the heating power according to the usage of the e-cigarette is achieved.

[0021] Thirdly, the terminal provided in this application adopts the following technical solution: An electronic cigarette includes a memory, a processor, and a computer program stored in the memory and capable of running on the processor, wherein when the processor loads the computer program, it performs the method of the first aspect.

[0022] By adopting the above technical solution, the method of the first aspect is used to generate a computer program, which is stored in the memory so that it can be loaded and executed by the processor. In this way, the user can establish a connection with the system through the electronic cigarette and query the various contents processed by the system.

[0023] Fourthly, the computer-readable storage medium provided in this application adopts the following technical solution: A computer-readable storage medium storing a computer program, wherein when the computer program is loaded by a processor, it performs the method of the first aspect.

[0024] By adopting the above technical solution, the method of the first aspect is used to generate a computer program and stored in a computer-readable storage medium. After the computer-readable storage medium is loaded into any computer, any computer can execute the method of the first aspect. Attached Figure Description

[0025] Figure 1 This is a flowchart of steps S100-S400 in an embodiment of this application; Figure 2 This is a connection block diagram of the various components inside the electronic cigarette in the embodiments of this application; Figure 3 This is a flowchart of steps S210-S230 in an embodiment of this application; Figure 4 This is a flowchart of steps S310-S380 in an embodiment of this application; Figure 5 This is a system framework diagram of the heating efficiency adjustment and control system based on the amount of electronic cigarette smoke according to an embodiment of this application; In the diagram, 1 is the airflow sensor; 2 is the airflow intensity detection circuit; 3 is the controller; 4 is the heating unit; 5 is the acquisition module; 6 is the determination module; and 7 is the judgment module. Detailed Implementation

[0026] The following is in conjunction with the appendix Figure 1 -Appendix Figure 5 This application will be described in further detail below.

[0027] A heating efficiency adjustment and control method based on the amount of e-cigarette vapor, referring to Figure 1 The method includes the following steps: S100: In response to a request to collect airflow intensity information at the e-cigarette mouthpiece.

[0028] In one embodiment of this application, reference is made to Figure 2 The electronic cigarette is equipped with an airflow sensor 1, an airflow intensity detection circuit 2, a controller 3, and a heating unit 4. The output terminal of the airflow sensor 1 is coupled to the input terminal of the airflow intensity detection circuit 2, and the output terminal of the airflow intensity detection circuit 2 is coupled to the controller 3. The controller 3 is used to control the operation of the heating unit 4.

[0029] Furthermore, when a user uses an electronic cigarette, the airflow sensor 1 senses the airflow intensity at the mouthpiece of the electronic cigarette in real time and outputs an intensity signal representing the airflow intensity. The intensity information representing the airflow intensity is then sent to the airflow intensity detection circuit 2. The airflow intensity detection circuit 2 outputs a pulse width modulation signal based on the intensity signal and sends the pulse width modulation signal to the controller 3. The controller 3 controls the heating unit 4 to work based on the pulse width modulation signal.

[0030] Specifically, the airflow sensor 1 includes a diaphragm, a gasket, and an electrode plate. When a user inhales into the mouthpiece of an electronic cigarette, the diaphragm in the airflow sensor 1 vibrates under the suction force, thereby reducing the distance between the diaphragm and the electrode plate, which ultimately increases the capacitance of the airflow sensor 1. Thus, when the capacitance of the airflow sensor 1 increases, it can be preliminarily determined that the user is inhaling an electronic cigarette.

[0031] Furthermore, when the user's inhalation intensity is different, the distance between the diaphragm and the electrode plate decreases to different degrees, which ultimately causes the capacitance of the airflow sensor 1 to increase to different degrees. In other words, the change in capacitance of the airflow sensor 1 can characterize the airflow intensity when the user inhales, and the change in capacitance of the airflow sensor 1 can be used as an intensity signal to characterize the airflow intensity.

[0032] S200: Determines the status of the electronic cigarette based on airflow intensity information.

[0033] Specifically, based on the airflow intensity information collected in step S100 at the e-cigarette mouthpiece, and by analyzing and judging the airflow intensity information, the current state of the e-cigarette can be determined.

[0034] In one embodiment of this application, reference is made to Figure 3 Step S200 specifically includes the following steps: S210: Determine whether the airflow intensity information is greater than the preset airflow intensity threshold.

[0035] Specifically, the airflow intensity threshold in this embodiment is set to 10 kPa. Of course, the airflow intensity threshold can be adjusted up or down according to the actual usage. This application does not limit this. The airflow intensity information collected in step S100 is compared with 10 kPa to determine whether the collected airflow intensity information is greater than 10 kPa.

[0036] S220: If the airflow intensity information is greater than the airflow intensity threshold, the electronic cigarette is in the first state, and the first state is the usage state.

[0037] Specifically, when the collected airflow intensity information is greater than 10 kPa, the electronic cigarette can be considered to be in use.

[0038] S230: If the airflow intensity information is less than the airflow intensity threshold, the electronic cigarette is in the second state, and the second state is a stationary state.

[0039] Specifically, when the collected airflow intensity information is less than 10 kPa, the e-cigarette can be considered to be in a stationary state. This can eliminate the airflow intensity caused by the temporary negative pressure at the e-cigarette mouthpiece, thereby avoiding misjudgment that could lead to the e-cigarette producing smoke and wasting the e-cigarette.

[0040] S300: Collects dynamic attribute information of the electronic cigarette based on its status, and determines whether the heating power of the electronic cigarette needs to be adjusted based on the dynamic attribute information.

[0041] Specifically, based on the judgment result of step S200, when the electronic cigarette is in use, the dynamic attribute information of the electronic cigarette is collected, and it is determined whether the heating power of the electronic cigarette needs to be adjusted based on the collected dynamic attribute information.

[0042] In one embodiment of this application, reference is made to Figure 4 Step S300 specifically includes the following steps: S310: Collects first dynamic data and second dynamic data of the electronic cigarette. The first dynamic data includes temperature data of the duct near the mouthpiece, temperature data of the duct near the cartridge, and external ambient temperature data. The second dynamic data includes vapor volume data of the duct near the mouthpiece and vapor volume data of the duct near the cartridge.

[0043] Specifically, a first temperature sensor is installed inside the electronic cigarette near the mouthpiece to collect temperature data at the point of entry into the smoke channel. A second temperature sensor is installed inside the electronic cigarette near the cartridge to collect temperature data at the point of entry into the smoke channel. A third temperature sensor is installed outside the electronic cigarette to collect ambient temperature data. A first flow sensor is also installed inside the electronic cigarette near the mouthpiece to collect vapor volume data at the point of entry into the smoke channel. A second flow sensor is also installed inside the electronic cigarette near the cartridge to collect vapor volume data at the point of entry into the smoke channel. In this embodiment, the temperature and flow sensors can be any commercially available sensor models, and this application does not impose any restrictions on their models.

[0044] For example, the first temperature sensor, the second temperature sensor, and the third sensor can be glass-sealed NTC temperature sensors, and the first flow sensor and the second flow sensor can be MF4000 gas mass flow meters.

[0045] S320: Determine whether the amount of smoke near the smoke cartridge in the smoke duct is within the preset first smoke amount threshold range.

[0046] Specifically, in this embodiment, the first smoke volume threshold range is set to 15mm. 3 / s-17.5mm 3 / s, and determine whether the amount of smoke near the cartridge in the smoke channel is within 15mm. 3 / s-17.5mm 3 Between / s, this embodiment includes 15mm 3 / s and 17.5mm 3 / s has two endpoints.

[0047] S330: If it is, determine whether the amount of smoke near the mouthpiece in the flue is within the preset second smoke amount threshold range.

[0048] Specifically, in this embodiment, the second smoke volume threshold range is set to 14mm. 3 / s-16mm 3 / s, and determine whether the amount of smoke near the mouthpiece in the flue is 14mm. 3 / s-16mm 3 Between / s, this embodiment includes 14mm 3 / s and 16mm 3 / s has two endpoints.

[0049] In one embodiment of this application, the first smoke volume threshold range and the second smoke volume threshold range overlap, and the minimum value of the first smoke volume threshold range is greater than the minimum value of the second smoke volume threshold range.

[0050] S340: If in this state, the ratio of the smoke volume data near the cigarette cartridge to the smoke volume data near the mouthpiece is defined as X.

[0051] Specifically, when the smoke volume near the mouthpiece is 14mm 3 / s-16mm 3 When the smoke volume is between / s, the ratio of the smoke volume data near the smoke cartridge to the smoke volume data near the mouthpiece is calculated, and the ratio is defined as X, and the range of X is: 1≤X≤2.

[0052] S350: Determine whether the temperature data near the smoke cartridge in the flue is within the preset first temperature threshold range.

[0053] Specifically, in this embodiment, the first temperature threshold range is set to 80 degrees to 100 degrees, and it is determined whether the temperature data of the smoke duct near the smoke cartridge is between 80 degrees and 100 degrees. This embodiment includes two end values: 80 degrees and 100 degrees.

[0054] S360: If it is, then expand the first temperature threshold range by X times as the second temperature threshold range, and determine whether the temperature data of the flue near the mouthpiece is within the second temperature threshold range.

[0055] Specifically, when the temperature data near the cigarette cartridge in the flue is between 80 and 100 degrees, the first temperature threshold range (80-100 degrees) can be expanded by X times as the second temperature threshold range, and it can be determined whether the temperature data near the mouthpiece in the flue is within the second temperature threshold range. In this embodiment, the second temperature threshold range also includes two endpoints: a minimum value and a maximum value.

[0056] By expanding the second temperature threshold range by X times, the temperature near the mouthpiece of the flue can be guaranteed. Since the higher the temperature, the less smoke is consumed, the amount of smoke near the mouthpiece of the flue can be guaranteed, thus providing users with a better experience.

[0057] The e-cigarette also features a cooling device at the mouthpiece. When the vapor reaches the mouthpiece, the cooling device can cool the vapor, thereby improving the user's inhalation experience.

[0058] S370: If in this state, there is no need to adjust the heating power of the electronic cigarette.

[0059] S380: If not, the heating power of the electronic cigarette needs to be adjusted until the temperature data near the mouthpiece of the smoke duct is within the second temperature threshold range.

[0060] In one embodiment of this application, when the temperature data of the flue near the mouthpiece is within the range of the second temperature threshold, the current heating power of the electronic cigarette is recorded. The current heating power of the electronic cigarette can be set to the optimal power, and the heating power can be directly adjusted to the optimal power when using the electronic cigarette in the future, thereby reducing the frequency of adjustment.

[0061] S400: Construct an experience index model based on the dynamic attribute information of e-cigarettes, evaluate the user experience based on the experience index model, and adjust the direction of subsequent improvements to e-cigarettes based on the experience.

[0062] In one embodiment of this application, the experience index model can be: In this model, Z represents the experience index, L1 represents the amount of smoke near the mouthpiece in the smoke duct, L2 represents the amount of smoke near the cartridge in the smoke duct, T1 represents the temperature near the mouthpiece in the smoke duct, T2 represents the temperature near the cartridge in the smoke duct, t represents the ambient temperature, α and β represent the weighting coefficients, and α+β=100%.

[0063] In one embodiment of this application, the temperature parameter and the smoke volume parameter can be data before adjusting the heating power of the electronic cigarette, or data after adjusting the heating power of the electronic cigarette.

[0064] In this system, a recording terminal is installed inside each e-cigarette, and an experience index model is loaded onto the recording terminal. Based on the parameters detected above, the experience index can be calculated and fed back to the e-cigarette manufacturer through the recording terminal. This allows the manufacturer to assess the user's experience based on the calculated experience index and adjust the direction of future improvements to the e-cigarette based on the user's experience.

[0065] The implementation principle of this application embodiment is as follows: The current state of the electronic cigarette is determined based on the collected airflow intensity information. When the electronic cigarette is in use, corresponding sensors are used to collect the temperature near the mouthpiece, the temperature near the cartridge, the amount of smoke near the mouthpiece, and the amount of smoke near the cartridge. It is then determined whether the amount of smoke near the cartridge is within a first smoke volume threshold range. If it is, it is determined whether the amount of smoke near the mouthpiece is within a second smoke volume threshold range. If it is, the ratio of the amount of smoke near the cartridge to the amount of smoke near the mouthpiece is defined as X. The temperature near the cartridge is then determined whether it is within a first temperature threshold range. If it is, the first temperature threshold range is expanded by X times to become a second temperature threshold range. Finally, it is determined whether the temperature near the mouthpiece is within the second temperature threshold range. If it is, the heating power of the electronic cigarette does not need to be adjusted; otherwise, if it is not, the heating power needs to be adjusted until the temperature near the mouthpiece is within the second temperature threshold range. Thus, the effect of actively adjusting the heating power based on the usage of the electronic cigarette is achieved.

[0066] This application discloses a heating efficiency adjustment and control system based on the amount of electronic cigarette smoke, referring to... Figure 5 Specifically, it includes a data acquisition module 5, a determination module 6, and a judgment module 7; wherein, the determination module 6 communicates with the data acquisition module 5 and the judgment module 7 respectively, and the data acquisition module 5 is used to collect airflow intensity information at the e-cigarette mouthpiece in response to a request; the determination module 6 is used to determine the state of the e-cigarette based on the airflow intensity information; the judgment module 7 is used to collect the dynamic attribute information of the e-cigarette based on the state of the e-cigarette, and determine whether the heating power of the e-cigarette needs to be adjusted based on the dynamic attribute information.

[0067] In this embodiment, the system adopts the heating efficiency adjustment and control method based on the amount of electronic cigarette smoke in the above embodiment. That is, the specific content of the system is the same as the specific content of the method in the above embodiment. Therefore, the specific content of the system will not be repeated here.

[0068] This application discloses an electronic cigarette, including a memory, a processor, and a computer program stored in the memory and capable of running on the processor. When the processor executes the computer program, it employs the heating efficiency adjustment and control method based on the amount of electronic cigarette smoke described in the above embodiments.

[0069] In one embodiment of this application, the processor may be a central processing unit, or it may be other general-purpose processors, digital signal processors, application-specific integrated circuits, off-the-shelf programmable gate arrays or other programmable logic devices, discrete gate or transistor logic devices, discrete hardware components, etc. The general-purpose processor may be a microprocessor or any conventional processor, etc., and this application does not limit it in this regard.

[0070] In one embodiment of this application, the memory can be an internal storage unit of the terminal, such as the terminal's hard disk or memory, or an external storage device of the terminal, such as a plug-in hard disk, smart memory card, secure digital card, or flash memory card equipped on the terminal. The memory can also be a combination of the terminal's internal storage unit and external storage device. The memory is used to store computer programs and other programs and data required by the terminal. The memory can also be used to temporarily store data that has been output or will be output. This application does not limit this.

[0071] By configuring this electronic cigarette, the heating efficiency adjustment and control method based on the amount of electronic cigarette smoke described in the above embodiment is stored in the electronic cigarette's memory and loaded and executed on the electronic cigarette's processor. Thus, the user can establish a connection with the system through the electronic cigarette and query various contents processed by the system.

[0072] This application discloses a computer-readable storage medium storing a computer program, wherein when the computer program is executed by a processor, the heating efficiency adjustment and control method based on the amount of electronic cigarette smoke described in the above embodiments is adopted.

[0073] In one embodiment of this application, the computer program may be stored in a computer-readable storage medium. The computer program includes computer program code, which may be in the form of source code, object code, executable file, or certain middleware. The computer-readable storage medium includes any entity or device capable of carrying computer program code, recording medium, USB flash drive, portable hard drive, magnetic disk, optical disk, computer memory, read-only memory, random access memory, electrical carrier signal, telecommunication signal, and software distribution medium, etc. It should be noted that the computer-readable storage medium includes, but is not limited to, the above-mentioned components.

[0074] By setting up this computer-readable storage medium, the heating efficiency adjustment and control method based on the amount of electronic cigarette smoke in the above embodiment is stored in the computer-readable storage medium and loaded and executed on the processor. After the computer-readable storage medium is loaded into any computer, any computer can execute the heating efficiency adjustment and control method based on the amount of electronic cigarette smoke in the above embodiment.

[0075] The embodiments described in this specific implementation are preferred embodiments of this application and are not intended to limit the scope of protection of this application. Identical components are represented by the same reference numerals. Therefore, all equivalent changes made to the structure, shape, and principle of this application should be covered within the scope of protection of this application.

Claims

1. A method for adjusting and controlling the heating efficiency based on the amount of vapor produced by an electronic cigarette, characterized in that, include: In response to a request to collect airflow intensity information at the e-cigarette mouthpiece; The state of the electronic cigarette is determined based on the airflow intensity information; The dynamic attribute information of the electronic cigarette is collected based on its status, and the heating power of the electronic cigarette is determined based on the dynamic attribute information. The step of collecting dynamic attribute information of the electronic cigarette based on its state, and determining whether the heating power of the electronic cigarette needs to be adjusted based on the dynamic attribute information, specifically includes: The electronic cigarette collects first dynamic data and second dynamic data. The first dynamic data includes temperature data near the mouthpiece of the flue, temperature data near the cartridge of the flue, and external ambient temperature data. The second dynamic data includes smoke volume data near the mouthpiece of the flue and smoke volume data near the cartridge of the flue. Determine whether the amount of smoke near the smoke cartridge in the smoke duct is within a preset first smoke amount threshold range; If so, determine whether the amount of smoke near the mouthpiece in the flue is within the preset second smoke amount threshold range; If it is, then the ratio of the amount of smoke near the smoke cartridge to the amount of smoke near the mouthpiece is defined as X; Determine whether the temperature data of the flue near the smoke cartridge is within a preset first temperature threshold range; If it is, then the first temperature threshold range is expanded by X times as the second temperature threshold range, and it is determined whether the temperature data of the flue near the mouthpiece is within the second temperature threshold range. If it is in the desired state, then there is no need to adjust the heating power of the electronic cigarette; If not, the heating power of the electronic cigarette needs to be adjusted until the temperature data of the flue near the mouthpiece is within the second temperature threshold range. Determining the state of the electronic cigarette based on the airflow intensity information specifically includes: Determine whether the airflow intensity information is greater than a preset airflow intensity threshold; If the airflow intensity information is greater than the airflow intensity threshold, the electronic cigarette is in a first state, and the first state is the usage state; If the airflow intensity information is less than the airflow intensity threshold, the electronic cigarette is in a second state, and the second state is a static state; The first smoke volume threshold range overlaps with the second smoke volume threshold range, and the minimum value of the first smoke volume threshold range is greater than the minimum value of the second smoke volume threshold range. When the temperature data near the mouthpiece of the flue is within the second temperature threshold range, the current heating power of the electronic cigarette is recorded, and the heating power is directly adjusted to the current heating power of the electronic cigarette when the electronic cigarette is used in the future. Also includes: An experience index model is constructed based on the dynamic attribute information of the e-cigarette, and the user's experience is evaluated based on the experience index model. The subsequent improvement direction of the e-cigarette is adjusted based on the experience. The experience index model is loaded onto a recording terminal installed inside the e-cigarette so that the calculated experience index can be fed back to the e-cigarette manufacturer through the recording terminal. The experience index model includes: ; Where Z represents the experience index, L1 represents the amount of smoke near the mouthpiece in the smoke duct, L2 represents the amount of smoke near the cartridge in the smoke duct, T1 represents the temperature near the mouthpiece in the smoke duct, T2 represents the temperature near the cartridge in the smoke duct, t represents the ambient temperature, α and β represent the weighting coefficients, and α+β=100%.

2. A heating efficiency adjustment and control system based on the amount of vapor produced by electronic cigarettes, characterized in that, The heating efficiency adjustment and control method based on the amount of electronic cigarette smoke, as described in claim 1, is adopted. The system includes: The acquisition module (5) is used to acquire airflow intensity information at the e-cigarette mouthpiece in response to a request; The determining module (6) is used to determine the state of the electronic cigarette based on the airflow intensity information; The judgment module (7) is used to collect the dynamic attribute information of the electronic cigarette according to the state of the electronic cigarette, and determine whether the heating power of the electronic cigarette needs to be adjusted according to the dynamic attribute information.

3. An electronic cigarette, comprising a memory, a processor, and a computer program stored in the memory and capable of running on the processor, characterized in that, When the processor loads the computer program, it executes the method of claim 1.

4. A computer-readable storage medium storing a computer program, characterized in that, When the computer program is loaded by the processor, it executes the method of claim 1.

Citation Information

Patent Citations

  • Heating efficiency adjustment control method and system based on smoke amount of electronic cigarette

    CN115088881A

  • Electron cigarette of steerable smog volume size

    CN208160033U

  • Heating non-combustion type electronic smoking set

    CN212590292U