WO2019072087A1 - 烟雾分析仪及烟雾分析方法 - Google Patents

烟雾分析仪及烟雾分析方法 Download PDF

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Publication number
WO2019072087A1
WO2019072087A1 PCT/CN2018/107577 CN2018107577W WO2019072087A1 WO 2019072087 A1 WO2019072087 A1 WO 2019072087A1 CN 2018107577 W CN2018107577 W CN 2018107577W WO 2019072087 A1 WO2019072087 A1 WO 2019072087A1
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smoke
analyzer
detecting
collecting
vapor
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PCT/CN2018/107577
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English (en)
French (fr)
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邱伟华
张智
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常州聚为智能科技有限公司
卓尔悦欧洲控股有限公司
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Publication of WO2019072087A1 publication Critical patent/WO2019072087A1/zh

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    • GPHYSICS
    • G01MEASURING; TESTING
    • G01NINVESTIGATING OR ANALYSING MATERIALS BY DETERMINING THEIR CHEMICAL OR PHYSICAL PROPERTIES
    • G01N33/00Investigating or analysing materials by specific methods not covered by groups G01N1/00 - G01N31/00
    • G01N33/0004Gaseous mixtures, e.g. polluted air
    • GPHYSICS
    • G01MEASURING; TESTING
    • G01DMEASURING NOT SPECIALLY ADAPTED FOR A SPECIFIC VARIABLE; ARRANGEMENTS FOR MEASURING TWO OR MORE VARIABLES NOT COVERED IN A SINGLE OTHER SUBCLASS; TARIFF METERING APPARATUS; MEASURING OR TESTING NOT OTHERWISE PROVIDED FOR
    • G01D21/00Measuring or testing not otherwise provided for
    • G01D21/02Measuring two or more variables by means not covered by a single other subclass

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  • the invention relates to the field of electronic cigarettes, in particular to a smoke analyzer and a smoke analysis method.
  • E-cigarettes are currently used mainly in some developed countries in Europe and America, mainly to replace traditional cigarettes. With the continuous improvement of our living standards. People are also constantly pursuing a higher quality of life, and gradually realize the serious harm of smoking. Smoking cessation has gradually become a common understanding. Therefore, an alternative to e-cigarettes has gradually gained popularity.
  • E-cigarettes have the same appearance as cigarettes, and have a similar taste to cigarettes. They are even more like the taste of ordinary cigarettes. They can also smoke and absorb the taste like cigarettes, even more than the taste of ordinary cigarettes. Cigarettes can suck out smoke and suck out the taste and feel. Mainly used to quit smoking and replace cigarettes. E-cigarette is a non-combustible smoke substitute. It is similar to some characteristics of ordinary cigarettes. It can refresh, satisfy the pleasure of smokers and the habits of growing up for many years.
  • the object of the present invention is to provide a smoke analyzer and a smoke analysis method capable of quantitatively measuring smoke, in view of the deficiencies of the prior art.
  • a smoke analyzer for detecting smoke generated by an atomizing assembly comprising: a collecting device and a detecting device; one end of the collecting device is connected to the atomizing assembly, and the collecting device is used Collecting smoke generated by the atomizing assembly; the detecting device is configured to detect the smoke collected in the collecting device to obtain parameters corresponding to the smoke.
  • the collection device is a resilient device that is initially in a collapsed state, the collection device being in an expanded state after the smoke is collected.
  • the smoke analyzer further includes a first extraction device for extracting smoke from the collection device after the detection device detects the parameter.
  • the detecting means comprises m detecting heads, the m detecting heads are distributed at different positions within the collecting means, and m is a positive integer.
  • the smoke analyzer further includes a second extraction device disposed between the collection device and the atomization assembly, the second extraction device for atomizing the atomization assembly The resulting smoke is drawn to the collection device.
  • the smoke analyzer comprises n slots, each slot is for connecting an atomizing component, and the atomizing components compatible with different slots are of the same or different type, n is greater than or equal to 2 The integer.
  • the smoke analyzer further includes a mouthpiece that is in communication with the airflow passage of the collection device.
  • the smoke is detected to obtain parameters corresponding to the smoke.
  • the method further includes:
  • the atomization component is controlled to atomize with N kinds of atomization parameters including at least one of voltage, current, power, pumping speed and pumping time, and N is an integer greater than or equal to 2;
  • the M group of atomization parameters obtained is determined.
  • the invention also provides a smoke analyzer, the smoke analyzer comprising a memory and a processor;
  • the processor implements the following functions by loading and executing the at least one program instruction stored by the memory:
  • the smoke is detected to obtain parameters corresponding to the smoke.
  • the invention has the beneficial effects that the smoke analyzer and the smoke analysis method provided by the present invention collect the smoke generated by the atomization assembly through the collecting device, and detect the collected in the collecting device by the detecting device.
  • the smoke obtains parameters corresponding to the smoke to convert the invisible taste into visible operable data, and the human-computer interaction with the specific data is convenient and reliable, and the quality and efficiency of the research and development are greatly improved.
  • Figure 1 is a perspective view of a smoke analyzer of a first embodiment of the present invention.
  • Figure 2 is a perspective view of another angle of the smoke analyzer of Figure 1.
  • Figure 3 is a perspective view of the collecting device of the smoke analyzer of Figure 1.
  • Figure 4 is a perspective cross-sectional view of the collecting device of the smoke analyzer of Figure 1.
  • Fig. 5 is a schematic diagram showing the interface of the smoke analyzer output detection result shown in Fig. 1.
  • Fig. 6 is a schematic diagram showing the interface of the output processing result of the smoke analyzer shown in Fig. 1.
  • Figure 7 is a schematic illustration of a smoke analyzer of a second embodiment of the present invention.
  • Figure 8 is a flow chart of a smoke analysis method for a smoke analyzer of an embodiment of the present invention.
  • the utility model comprises a collecting device 5, a detecting device, a processing device and an input/output device.
  • One end of the collecting device 5 is used to connect with the atomizing assembly to collect the smoke generated by the atomizing assembly.
  • the detecting device is for detecting the smoke collected in the collecting device 5 to obtain parameters corresponding to the smoke.
  • the processing device is configured to process parameters obtained by the detecting device.
  • the input/output device is for inputting related information, and outputs data obtained by processing by the processing device.
  • the processing device and the input and output device may be omitted, and only the device 5 and the detecting device may be collected, that is, the smoke may be quantitatively measured. It is also possible to provide only the input/output device without the processing device, and at this time, the parameters corresponding to the smoke detected by the detecting device are output through the input/output device.
  • the input/output device may be a touch screen, a display screen and a physical button, or may be an audio collection and an audio output device such as a microphone, and details are not described herein.
  • the collecting device 5 may be a resilient device (such as a balloon-like structure) that is in a contracted state when no smoke is collected, and the collecting device 5 is in an expanded state after collecting the smoke.
  • the collecting device 5 when the collecting device 5 does not collect the smoke, the collecting device 5 is in a vacuum state, and after collecting the smoke, the structure can automatically extract the smoke atomized by the atomizing assembly to the collecting device 5, and detect it at the detecting device. After the parameters are obtained, the smoke in the collecting device 5 is extracted by extrusion.
  • the collecting device 5 can also be other structures, such as a peripheral fixed cavity.
  • a first extraction device may also be provided in the smoke analyzer for extracting the smoke in the collection device 5 after the detection device detects the parameters.
  • the trigger signal may be sent to the processing device, and the processing device controls the first extracting device to extract the smoke in the collecting device 5.
  • the first extracting device may extract the smoke side by side. To the outside of the smoke analyzer.
  • the first extracting device may be a pump controlled by a motor, and the specific implementation thereof is not limited, and only the smoke is extracted.
  • the smoke may automatically enter the collecting device 5 as an example.
  • the second extraction may be disposed between the collecting device 5 and the atomizing component in the smoke analyzer.
  • the smoke analyzer 1 in this embodiment includes n slots 2 for respectively connecting one atomizing assembly, so that the atomizing assembly is reliably connected to the collecting device 5.
  • the atomization components compatible with different slots 2 are the same or different, and n is an integer greater than or equal to 2 (four in this embodiment).
  • One end of the slot 2 away from the collecting device 5 is a movable seat 21, and the movable seat 21 can move in a certain range along the longitudinal direction of the slot 2 to adapt to different types of atomizing components, and can elastically abut the atomizing component to provide fogging. The force that the assembly pushes toward the collection device 5.
  • the structures of the different slots 2 may be the same or different, and the diameters thereof may be the same or different.
  • the detecting device includes m detecting heads 6, and the m detecting heads 6 are distributed at different positions in the collecting device 5 (such as distributed in the front, middle, and rear portions), and m is a positive integer.
  • the front and rear portions of the embodiment are relative to the atomizing assembly, that is, the position of the collecting device 5 adjacent to the atomizing assembly is the front portion, and the position away from the atomizing assembly is the rear portion. At least a portion of the detection head 6 is disposed adjacent the vent of the atomizing assembly to more accurately detect smoke data.
  • the detecting head 6 may be one or more of a temperature sensor, a humidity sensor, a sweetness meter, a tar content detector, and a flow rate sensor to detect parameters such as temperature, humidity, sweetness, tar content, and flow rate of the smoke, respectively. In other embodiments, only one or more of them may be selected, and other types of sensors may be added as appropriate. In addition, in order to make the detection more accurate, a set of detecting heads 6 may be respectively disposed at the front, the middle, and the rear, and each set of detecting heads may include a temperature sensor, a humidity sensor, a tar content detector, a flow rate sensor, and a sweetness meter.
  • the processing device when the processing device is included in the smoke analyzer, the processing device is configured to process the detected values of the respective parameters, for example, the detection values of the respective detection points, different time periods, and times are processed according to certain rules to obtain more accurate data.
  • the processing rules may include data filtering (eg, deleting data with high precision of poor precision retention, or taking values within a normal distribution interval), and/or statistical processing of the filtered data.
  • the statistical processing may include statistical calculation (such as averaging) of a plurality of detected values of each parameter, and may also include integrating data of the plurality of parameters (such as obtaining a comprehensive score by weighting processing).
  • the input/output device includes elements such as a button 31, a display screen 32, and an audio broadcaster (not shown).
  • the button 31 is used for information input (such as setting detection parameters, starting and exiting detection operations, etc.).
  • the display screen 32 is used to display data, statistical graphs, statistical tables, comprehensive scores and the like obtained by the detecting device or the processing device.
  • the audio announcer is used for audio broadcast of true values or judgment results (eg, with different sounds indicating pass or fail).
  • the input/output device further includes a communication device (not shown) for transmitting the analysis result to a user terminal such as a mobile phone or a computer.
  • the communication device may be any one of a Bluetooth device, an infrared device, a wifi device, and a ZigBee device.
  • the button and the audio broadcaster may not be provided, and only the touch display screen is provided, and the input and output are performed through the touch display screen. It is also possible to set only the buttons and the display without the audio announcer. It is also possible to display the detection result on the screen of the user side such as a mobile phone or a computer only by means of the communication device without the display and/or audio player.
  • FIG. 5 and FIG. 6 are respectively interface diagrams showing the output of the detection result and the processing result of the display screen 32 (of course, it can also be displayed on the screen of the user terminal).
  • the smoke analyzer can set corresponding parameters such as power, temperature, resistance, voltage, suction speed, suction time, and the like according to user development requirements. And you can save the settings after one setting, which is convenient for users to call later.
  • the smoke analyzer 7 is portable and can be directly mounted on the electronic cigarette 8 for smoke analysis.
  • the smoke analyzer 7 is detachably connected to the electronic cigarette 8.
  • the smoke analyzer 7 can be removed, and the electronic cigarette 8 is directly connected to the mouthpiece 9.
  • the smoke analyzer 7 can be part of an electronic cigarette.
  • the smoke analysis method for the above-mentioned smoke analyzer of the present embodiment includes: collecting smoke generated by the atomization assembly; detecting smoke, and obtaining parameters corresponding to the smoke.
  • the smoke obtained by atomization of the atomizing component can be separately detected by the m detecting heads, and the parameters corresponding to the smoke are obtained according to the detection results of the m detecting heads.
  • the atomization component is controlled by N kinds of atomization parameters, and the atomization parameter includes at least one of voltage, current, power, suction speed, and pumping time, and N is an integer greater than or equal to 2;
  • the M group atomization parameters whose performance is higher than the preset threshold are determined from the N kinds of atomization parameters, and M is a positive integer; the determined M group atomization parameters are displayed.
  • the atomization parameter determined by the above method is better in performance, so that the user can be recommended to use, and a better atomization effect is obtained.
  • the designer can also provide a reference and design suitable parameters.
  • the embodiment further provides a smoke analyzer, the smoke analyzer comprising a memory and a processor;
  • the processor implements the following functions by loading and executing the at least one program instruction stored by the memory:
  • the smoke is detected to obtain parameters corresponding to the smoke.

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Abstract

一种烟雾分析仪(1),用于检测雾化组件产生的烟雾,烟雾分析仪(1)包括:收集装置(5)和检测装置;收集装置(5)的一端用于与雾化组件连接,收集装置(5)用于收集雾化组件产生的烟雾;检测装置用于检测收集装置(5)中收集的烟雾,得到烟雾所对应的参数。本发明还公开了一种用于烟雾分析仪的烟雾分析方法。相较于现有技术,本发明烟雾分析仪及烟雾分析方法,通过收集装置(5)收集雾化组件产生的烟雾,通过检测装置检测收集装置(5)中收集的烟雾,得到烟雾所对应的参数,以将看不见的口感转化为看得见的可操作的数据,用具体的数据进行人机交互,方便可靠,将大大提高研发质量和效率。

Description

烟雾分析仪及烟雾分析方法 技术领域
本发明涉及电子烟领域,尤其涉及烟雾分析仪及烟雾分析方法。
背景技术
电子烟现目前主要是在欧美一些发达国家使用比较广泛,主要是用来替代传统香烟。随着我国生活水平的不断提高。人们也在不断追求更高的生活质量,也逐渐认识到吸烟的严重危害性,戒烟逐步成为了一个共同的认识。所以像电子烟这种替代品,也逐渐受到人们的欢迎。
电子烟与香烟有一样的外观、与香烟近似的味道,甚至比一般香烟的口味要多出很多,也像香烟一样能吸出烟、吸出味道,甚至比一般香烟的口味要多出很多,也像香烟一样能吸出烟、吸出味道跟感觉来。主要是用于戒烟和替代香烟。电子烟又是一种非燃烧的烟类替代型产品,它与普通香烟的某些特点相似,能够提神、满足吸烟者的快感和多年养成的使用习惯。
但是,目前在产品研发过程中只能通过人工方式进行辨别,严重影响产品研发的质量和效率。因此,急需一种针对电子烟烟雾的分析仪器与分析方法。
发明内容
本发明的目的是针对现有技术的不足,提供一种能对烟雾进行量化测量的烟雾分析仪及烟雾分析方法。
为实现上述目的,本发明的技术方案如下:
一种烟雾分析仪,用于检测雾化组件产生的烟雾,所述烟雾分析仪包括:收集装置和检测装置;所述收集装置的一端用于与所述雾化组件连接,所述收集装置用于收集所述雾化组件产生的烟雾;所述检测装置用于检测所述收集装置中收集的所述烟雾,得到所述烟雾所对应的参数。
在其中一个实施方式中,所述收集装置为弹性装置,在初始时所述收集装置为收缩状态,在收集所述烟雾之后所述收集装置为膨胀状态。
在其中一个实施方式中,所述烟雾分析仪还包括第一抽取装置,所述第一抽取装置用于在所述检测装置检测得到所述参数之后,将所述收集装置中的烟雾抽出。
在其中一个实施方式中,所述检测装置包括m个检测头,所述m个检测头分布设置在所 述收集装置内的不同位置,m为正整数。
在其中一个实施方式中,所述烟雾分析仪还包括设置在所述收集装置和所述雾化组件之间的第二抽取装置,所述第二抽取装置用于将所述雾化组件雾化得到的烟雾抽取至所述收集装置。
在其中一个实施方式中,所述烟雾分析仪包括n个插槽,每个插槽用于连接一个雾化组件,不同插槽所兼容的雾化组件的型号相同或者不同,n为大于等于2的整数。
在其中一个实施方式中,所述烟雾分析仪还包括烟嘴,所述烟嘴与所述收集装置的气流通道连通。
还提供一种烟雾分析方法,用于如上所述的烟雾分析仪中,所述方法包括:
收集雾化组件产生的烟雾;
检测所述烟雾,得到所述烟雾所对应的参数。
在其中一个实施方式中,所述方法还包括:
以N种雾化参数控制所述雾化组件雾化,所述雾化参数包括电压、电流、功率、抽吸速度和抽吸时间中的至少一种,N为大于等于2的整数;
根据在每种雾化参数下检测得到的烟雾的参数,从所述N种雾化参数中确定性能高于预设阈值的M组雾化参数,M为正整数;
展示确定得到的所述M组雾化参数。
本发明还提供一种烟雾分析仪,所述烟雾分析仪包括存储器和处理器;
所述存储器中存储有至少一条程序指令;
所述处理器通过加载并执行所述存储器存储的所述至少一条程序指令以实现如下功能:
收集雾化组件产生的烟雾;
检测所述烟雾,得到所述烟雾所对应的参数。
本发明的有益效果是:相较于现有技术,本发明提供的烟雾分析仪及烟雾分析方法,通过收集装置收集所述雾化组件产生的烟雾,通过检测装置检测所述收集装置中收集的所述烟雾,得到所述烟雾所对应的参数,以将看不见的口感转化为看得见的可操作的数据,用具体的数据进行人机交互,方便可靠,将大大提高研发质量和效率。
附图说明
图1是本发明第一实施例烟雾分析仪的立体视图。
图2是图1所示烟雾分析仪另一角度的立体视图。
图3是图1所示烟雾分析仪中收集装置的立体视图。
图4是图1所示烟雾分析仪中收集装置的立体剖视图。
图5是图1所示烟雾分析仪输出检测结果的界面示意图。
图6是图1所示烟雾分析仪输出处理结果的界面示意图。
图7是本发明第二实施例烟雾分析仪的示意图。
图8是用于本发明实施例烟雾分析仪的烟雾分析方法流程图。
具体实施方式
以下通过具体而非限定的实施例对本发明加以详述,以使本发明的优点和特征能更易于被本领域技术人员理解。
图1至图4所示为本发明第一实施例烟雾分析仪1,其用于检测雾化组件(雾化组件可以是雾化器,也可以是包含雾化器的电子烟)产生的烟雾,包括收集装置5、检测装置、处理装置、输入输出装置。收集装置5的一端用于与雾化组件连接,收集雾化组件产生的烟雾。检测装置用于检测收集装置5中收集的烟雾,得到烟雾所对应的参数。处理装置用于处理检测装置得到的参数。输入输出装置用于输入相关信息,并输出处理装置处理后得到的数据。在其它实施例中,可以不设处理装置和输入输出装置,只需收集装置5与检测装置,即能对烟雾进行量化测量。还可只设输入输出装置,而不设处理装置,这时通过输入输出装置输出检测装置检测到的烟雾对应的参数。其中,输入输出装置,可以为触摸屏,也可以为显示屏和实体按键,或者,还可以为音频采集和音频输出装置如麦克风,在此不再赘述。
收集装置5可以为弹性装置(如类似气球结构),在未收集烟雾时收集装置5为收缩状态,在收集烟雾之后收集装置5为膨胀状态。比如,在收集装置5未收集烟雾时,收集装置5为真空状态,而在收集烟雾之后,采用这种结构可以自动将雾化组件雾化得到的烟雾抽取至收集装置5,并在检测装置检测得到参数之后,通过挤压来抽出收集装置5中的烟雾。当然,上述仅以为弹性装置来举例说明,实际实现时,收集装置5还可以为其他结构,如是一个外围固定的腔体。
可选地,烟雾分析仪中也可以设置第一抽取装置,用于在检测装置检测得到参数之后,将收集装置5中的烟雾抽出。可选地,在检测装置检测到参数之后,可以发送触发信号至处理装置,由处理装置控制第一抽取装置将收集装置5中的烟雾抽出,实际实现时,第一抽取装置可以将烟雾抽出并排至烟雾分析仪的外部。第一抽取装置可以为通过电机控制的泵,对其具体实现并不做限定,其只需实现将烟雾抽出即可。
可选地,上述仅以雾化组件雾化得到烟雾之后,烟雾可以自动进入收集装置5为例,实际实现时,烟雾分析仪中收集装置5和雾化组件之间还可以设置有第二抽取装置,该第二抽 取装置用于将雾化组件雾化得到的烟雾抽取至收集装置5。与第一抽取装置类似,第二抽取装置也可以为通过电机控制的泵。
实际实现时,为了覆盖更多的应用场景,本实施例中烟雾分析仪1包括n个用于分别连接一个雾化组件的插槽2,以使雾化组件与收集装置5可靠连接。不同插槽2所兼容的雾化组件的型号相同或者不同,n为大于等于2的整数(本实施例为4个)。插槽2远离收集装置5的一端为活动座21,活动座21可沿插槽2纵向在一定范围内活动,以适应不同型号的雾化组件,且能弹性抵接雾化组件以提供将雾化组件推向收集装置5的力。可选地,为了适应不同的雾化组件,不同插槽2的结构可以相同也可以不同,且,其直径也可以相同或者不同。并且,实际实现时,为了收集不同插槽2连接的雾化组件所雾化得到的烟雾,烟雾分析仪中的收集装置5也可以有n个,且每个收集装置5用于收集n个插槽2中的一个插槽所连接的雾化组件产生的烟雾。
如图3与图4所示,检测装置包括m个检测头6,m个检测头6分布设置在收集装置5内的不同位置(如分布在前部、中部、后部),m为正整数。其中,本实施例的前部和后部为相对于雾化组件来说,也即收集装置5中邻近雾化组件的位置为前部,而远离雾化组件的位置为后部。至少部分检测头6设于雾化组件的出烟口附近,以更准确地检测烟雾数据。检测头6可以是温度传感器、湿度传感器、甜度计、焦油含量检测仪、流速传感器中的一种或多种,以分别检测烟雾的温度、湿度、甜度、焦油含量、流速等参数。在其它实施例中,可以只选用其中的一种或多种,并且也可视情况增加其它类型的传感器。另外,为了使得检测更加准确,在前部、中部和后部可以分别设置一组检测头6,每组检测头可以包括温度传感器、湿度传感器、焦油含量检测仪、流速传感器和甜度计。
可选地,在烟雾分析仪中包括处理装置时,处理装置用于将各参数的检测值进行处理,例如将各个检测点、不同时段、次数的检测值,根据一定规则处理后得到更加精确的数据。处理规则可以包括数据筛选(例如删除精度差的数据保留精度高的数据,或者在正态分布区间内取值),和/或对筛选后数据的统计处理。统计处理可以包括对各参数多个检测值的统计计算(如求平均值),也可包括对多个参数的数据进行整合处理(如通过加权处理得到综合得分)。
本实施例中,输入输出装置包括按键31、显示屏32和音频播报器(图未示出)等元件。按键31用于信息输入(如设置检测参数、启动与退出检测操作等)。显示屏32用于显示检测装置或处理装置得到的数据、统计图、统计表、综合得分等内容。音频播报器用于音频播报真实值或者判断结果(如用不同声音表示合格或不合格)。本实施例中,输入输出装置还包括通信装置(图未示出),用于将分析结果传输到手机、电脑等用户端。通信装置可以为 蓝牙装置、红外装置、wifi装置、ZigBee装置中的任一种。在其它实施例中,也可以不设按键和音频播报器,只设触摸式显示屏,通过触摸式显示屏来进行输入输出。还可以只设按键与显示屏,而不设音频播报器。还可以不设显示器和/音频播放器,而是仅通过通信装置将检测结果显示在手机、电脑等用户端的屏幕上。图5与图6所示分别为显示屏32输出检测结果与处理结果的界面示意图(当然也可以显示在用户端屏幕上)。
本实施例中,烟雾分析仪可以根据用户开发需求,设置相应的参数,如功率、温度、电阻、电压、吸速、抽吸时间等等。并且可以在一次设定后,将设置保存下来,方便用户后续调用。
如图7所示,本发明第二实施例中,烟雾分析仪7为便携式,可直接安装于电子烟8上进行烟雾分析。本实施例中,烟雾分析仪7与电子烟8可拆卸连接。当不需要检测时,可以将烟雾分析仪7拆下来,电子烟8则直接连接烟嘴9使用。当然在其它实施例中,烟雾分析仪7可以为固定在电子烟中的一部分。
如图8所示,本实施例用于上述烟雾分析仪的烟雾分析方法包括:收集雾化组件产生的烟雾;检测烟雾,得到烟雾所对应的参数。
在本实施例中,为提高检测的精确度以及操作的便利性,还可包括处理检测装置得到的参数并将处理后的数据或检测装置得到的参数输出。并且,实际实现时,可以通过m个检测头分别检测雾化组件雾化得到的烟雾,并根据m个检测头的检测结果得到烟雾所对应的参数。
在本实施例中,以N种雾化参数控制雾化组件雾化,雾化参数包括电压、电流、功率、抽吸速度和抽吸时间中的至少一种,N为大于等于2的整数;根据在每种雾化参数下检测得到的烟雾的参数,从N种雾化参数中确定性能高于预设阈值的M组雾化参数,M为正整数;展示确定得到的M组雾化参数。通过上述方法确定出的雾化参数,是性能比较好的,从而可推荐用户使用,得到较佳的雾化效果。并且,在确定M组雾化参数之后,也可以为设计人员提供参考,设计出合适的参数。
本实施例还提供了一种烟雾分析仪,所述烟雾分析仪包括存储器和处理器;
所述存储器中存储有至少一条程序指令;
所述处理器通过加载并执行所述存储器存储的所述至少一条程序指令以实现如下功能:
收集雾化组件产生的烟雾;
检测所述烟雾,得到所述烟雾所对应的参数。
可选地,烟雾分析仪中还包括其他结构,如包括上述实施例中所述的烟雾分析仪中的结构,在此不再赘述。
以上所述,仅为本发明的具体实施方式,但本发明的保护范围并不局限于此,任何熟悉 本技术领域的技术人员在本发明揭露的技术范围内,可轻易想到变化或替换,都应涵盖在本发明的保护范围之内。因此,本发明的保护范围应以所述权利要求的保护范围为准。

Claims (15)

  1. 一种烟雾分析仪,其特征在于,用于检测雾化组件产生的烟雾,所述烟雾分析仪包括:收集装置和检测装置;
    所述收集装置的一端用于与所述雾化组件连接,所述收集装置用于收集所述雾化组件产生的烟雾;
    所述检测装置用于检测所述收集装置中收集的所述烟雾,得到所述烟雾所对应的参数。
  2. 根据权利要求1所述的烟雾分析仪,其特征在于,所述收集装置为弹性装置,在初始时所述收集装置为收缩状态,在收集所述烟雾之后所述收集装置为膨胀状态。
  3. 根据权利要求2所述的烟雾分析仪,其特征在于,所述烟雾分析仪还包括第一抽取装置,所述第一抽取装置用于在所述检测装置检测得到所述参数之后,将所述收集装置中的烟雾抽出。
  4. 根据权利要求1所述的烟雾分析仪,其特征在于,所述检测装置包括m个检测头,所述m个检测头分布设置在所述收集装置内的不同位置,m为正整数。
  5. 根据权利要求4所述的烟雾分析仪,其特征在于,所述m个检测头中至少部分检测头设于所述雾化组件的出烟口处。
  6. 根据权利要求4所述的烟雾分析仪,其特征在于,所述检测头是温度传感器、湿度传感器、甜度计、焦油含量检测仪和流速传感器中的一种或多种。
  7. 根据权利要求1所述的烟雾分析仪,其特征在于,所述烟雾分析仪还包括设置在所述收集装置和所述雾化组件之间的第二抽取装置,所述第二抽取装置用于将所述雾化组件雾化得到的烟雾抽取至所述收集装置。
  8. 根据权利要求1所述的烟雾分析仪,其特征在于,所述烟雾分析仪包括n个插槽,每个插槽用于连接一个雾化组件,不同插槽所兼容的雾化组件的型号相同或者不同,n为大于等于2的整数。
  9. 根据权利要求1所述的烟雾分析仪,其特征在于,所述烟雾分析仪还包括烟嘴,所述烟嘴与所述收集装置的气流通道连通。
  10. 根据权利要求1至9任一所述的烟雾分析仪,其特征在于,所述烟雾所对应的参数包括烟雾的温度、湿度、甜度、焦油含量和流速中的至少一种。
  11. 一种烟雾分析方法,其特征在于,所述方法用于如权利要求1至10任一所述的烟雾分析仪中,所述方法包括:
    收集雾化组件产生的烟雾;
    检测所述烟雾,得到所述烟雾所对应的参数。
  12. 根据权利要求11所述的方法,其特征在于,所述方法还包括:
    以N种雾化参数控制所述雾化组件雾化,所述雾化参数包括电压、电流、功率、抽吸速度和抽吸时间中的至少一种,N为大于等于2的整数;
    根据在每种雾化参数下检测得到的烟雾的参数,从所述N种雾化参数中确定性能高于预设阈值的M组雾化参数,M为正整数;
    展示确定得到的所述M组雾化参数。
  13. 根据权利要求11所述的方法,其特征在于,所述检测所述烟雾,得到所述烟雾所对应的参数,包括:
    通过m个检测头分别检测所述烟雾,并根据所述m个检测头的检测结果得到所述烟雾所对应的参数,m为正整数。
  14. 根据权利要求11所述的方法,其特征在于,所述烟雾所对应的参数包括烟雾的温度、湿度、甜度、焦油含量和流速中的至少一种。
  15. 一种烟雾分析仪,其特征在于,所述烟雾分析仪包括存储器和处理器;
    所述存储器中存储有至少一条程序指令;
    所述处理器通过加载并执行所述存储器存储的所述至少一条程序指令以实现如下功能:
    收集雾化组件产生的烟雾;
    检测所述烟雾,得到所述烟雾所对应的参数。
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