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A Well-Mixed Computational Model for Estimating Room Air Levels of Selected Constituents from E-Vapor Product Use

机译:从电子蒸气产品使用中估算选定成分的室内空气水平的混合计算模型

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摘要

Concerns have been raised in the literature for the potential of secondhand exposure from e-vapor product (EVP) use. It would be difficult to experimentally determine the impact of various factors on secondhand exposure including, but not limited to, room characteristics (indoor space size, ventilation rate), device specifications (aerosol mass delivery, e-liquid composition), and use behavior (number of users and usage frequency). Therefore, a well-mixed computational model was developed to estimate the indoor levels of constituents from EVPs under a variety of conditions. The model is based on physical and thermodynamic interactions between aerosol, vapor, and air, similar to indoor air models referred to by the Environmental Protection Agency. The model results agree well with measured indoor air levels of nicotine from two sources: smoking machine-generated aerosol and aerosol exhaled from EVP use. Sensitivity analysis indicated that increasing air exchange rate reduces room air level of constituents, as more material is carried away. The effect of the amount of aerosol released into the space due to variability in exhalation was also evaluated. The model can estimate the room air level of constituents as a function of time, which may be used to assess the level of non-user exposure over time.
机译:文献中已经提出了使用电子蒸汽产品(EVP)可能引起二手暴露的担忧。很难通过实验确定各种因素对二手暴露的影响,包括但不限于房间特性(室内空间大小,通风速率),设备规格(气雾剂输送量,电子液体成分)和使用行为(用户数量和使用频率)。因此,开发了一种充分混合的计算模型,以在各种条件下根据EVP估算室内成分水平。该模型基于气溶胶,蒸气和空气之间的物理和热力学相互作用,类似于环境保护署提到的室内空气模型。模型结果与从两个来源测得的室内尼古丁水平高度吻合:吸烟机产生的烟雾和使用EVP呼出的烟雾。敏感性分析表明,随着更多材料被带走,增加空气交换率会降低室内空气的成分含量。还评估了由于呼气变化而释放到空间中的气溶胶量的影响。该模型可以估计作为时间函数的成分的室内空气水平,该模型可用于评估一段时间内非用户暴露的水平。

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