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Measurement of heating coil temperature for e-cigarettes with a “top-coil” clearomizer

机译:用“顶线圈”清晰度的电子香烟的加热线圈温度测量

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摘要

To determine the effect of applied power settings, coil wetness conditions, and e-liquid compositions on the coil heating temperature for e-cigarettes with a "top-coil" clearomizer, and to make associations of coil conditions with emission of toxic carbonyl compounds by combining results herein with the literature.The coil temperature of a second generation e-cigarette was measured at various applied power levels, coil conditions, and e-liquid compositions, including (1) measurements by thermocouple at three e-liquid fill levels (dry, wet-through-wick, and full-wet), three coil resistances (low, standard, and high), and four voltage settings (3-6 V) for multiple coils using propylene glycol (PG) as a test liquid; (2) measurements by thermocouple at additional degrees of coil wetness for a high resistance coil using PG; and (3) measurements by both thermocouple and infrared (IR) camera for high resistance coils using PG alone and a 1:1 (wt/wt) mixture of PG and glycerol (PG/GL).For single point thermocouple measurements with PG, coil temperatures ranged from 322 ‒ 1008°C, 145 ‒ 334°C, and 110 ‒ 185°C under dry, wet-through-wick, and full-wet conditions, respectively, for the total of 13 replaceable coil heads. For conditions measured with both a thermocouple and an IR camera, all thermocouple measurements were between the minimum and maximum across-coil IR camera measurements and equal to 74% ‒ 115% of the across-coil mean, depending on test conditions. The IR camera showed details of the non-uniform temperature distribution across heating coils. The large temperature variations under wet-through-wick conditions may explain the large variations in formaldehyde formation rate reported in the literature for such "top-coil" clearomizers.This study established a simple and straight-forward protocol to systematically measure e-cigarette coil heating temperature under dry, wet-through-wick, and full-wet conditions. In addition to applied power, the composition of e-liquid, and the devices' ability to efficiently deliver e-liquid to the heating coil are important product design factors effecting coil operating temperature. Precautionary temperature checks on e-cigarettes under manufacturer-recommended normal use conditions may help to reduce the health risks from exposure to toxic carbonyl emissions associated with coil overheating.
机译:为了确定应用的电力设置,线圈湿度条件和E-液体组合物对带有“顶线圈”透明器的E形香烟的线圈加热温度的影响,并使线圈条件与有毒羰基化合物的发射产生的关系将本文的结果与文献组合。在各种施加的功率水平,线圈条件和E-液体组合物中测量第二代E-卷烟的线圈温度,包括在三种E-液体填充水平下热电偶测量(干燥,使用丙二醇(PG)作为测试液的多个线圈的三个线圈电阻(低,标准,高),三个电压设置(3-6 v); (2)使用PG的高电阻线圈的额外线圈湿度下的热电偶测量; (3)通过单独使用PG的高电阻线圈的热电偶和红外(IR)相机的测量和PG和甘油(PG / GL)的1:1(wt / wt)混合物。单点热电偶测量PG,在干燥的潮湿的芯片和全湿条件下,线圈温度范围为322-1008°C,145-334°C和110-185°C,共有13个可更换卷头。对于使用热电偶和IR相机测量的条件,所有热电偶测量都在最小和最大线圈IR摄像机测量之间,而等于跨线圈的跨线圈的74% - 115%,具体取决于测试条件。 IR摄像机显示出在加热线圈上的非均匀温度分布的细节。湿透芯的条件下的大温变化可以解释在文献中报告的甲醛形成速率的大变化,该研究为这种“顶线圈”透明机构。本研究建立了一种简单直截了当的协议,以系统测量电子卷烟线圈加热温度下干燥,湿润,芯片和全潮湿条件下。除了施加的功率,电子液体的组成和装置有效地向加热线圈提供E-液体的能力是重要的产品设计因素,实现线圈工作温度。在制造商建议的正常使用条件下对E形卷烟的预防温度检查可能有助于降低与线圈过热相关的有毒羰基排放的健康风险。

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