Transport phenomena governing nicotine emissions from electronic cigarettes: Model formulation and experimental investigation

dc.contributor.authorTalih, Soha
dc.contributor.authorBalhas, Zainab
dc.contributor.authorSalman, Rola
dc.contributor.authorEl-Hage, Rachel
dc.contributor.authorKaraoghlanian, Nareg
dc.contributor.authorEl-Hellani, Ahmad
dc.contributor.authorBaassiri, Mohamad
dc.contributor.authorJaroudi, Ezzat
dc.contributor.authorEissenberg, Thomas E.
dc.contributor.authorSaliba, Najat A.
dc.contributor.authorShihadeh, Alan Louis
dc.contributor.departmentDepartment of Mechanical Engineering
dc.contributor.departmentDepartment of Chemistry
dc.contributor.facultyMaroun Semaan Faculty of Engineering and Architecture (MSFEA)
dc.contributor.facultyFaculty of Arts and Sciences (FAS)
dc.contributor.institutionAmerican University of Beirut
dc.date.accessioned2025-01-24T11:32:17Z
dc.date.available2025-01-24T11:32:17Z
dc.date.issued2017
dc.description.abstractElectronic cigarettes (ECIGs) electrically heat and aerosolize a liquid-containing propylene glycol (PG), vegetable glycerin (VG), flavorants, water, and nicotine. ECIG effects and proposed methods to regulate them are controversial. One regulatory focal point involves nicotine emissions. We describe a mathematical model that predicts ECIG nicotine emissions. The model computes the vaporization rate of individual species by numerically solving the unsteady species and energy conservation equations. To validate model predictions, yields of nicotine, total particulate matter, PG, and VG were measured while manipulating puff topography, electrical power, and liquid composition across 100 conditions. Nicotine flux, the rate at which nicotine is emitted per unit time, was the primary outcome. Across conditions, the measured and computed nicotine flux were highly correlated (r = 0.85, p <.0001). As predicted, device power, nicotine concentration, PG/VG ratio, and puff duration influenced nicotine flux (p <.05), while water content and puff velocity did not. Additional empirical investigation revealed that PG/VG liquids act as ideal solutions, that liquid vaporization accounts for more than 95% of ECIG aerosol mass emissions, and that as device power increases the aerosol composition shifts towards the less volatile components of the parent liquid. To the extent that ECIG regulations focus on nicotine emissions, mathematical models like this one can be used to predict ECIG nicotine emissions and to test the effects of proposed regulation of factors that influence nicotine flux. Copyright © 2017 American Association for Aerosol Research © 2017 American Association for Aerosol Research.
dc.identifier.doihttps://doi.org/10.1080/02786826.2016.1257853
dc.identifier.eid2-s2.0-85000916248
dc.identifier.urihttp://hdl.handle.net/10938/27757
dc.language.isoen
dc.publisherTaylor and Francis Inc.
dc.relation.ispartofAerosol Science and Technology
dc.sourceScopus
dc.subjectAerosols
dc.subjectConservation
dc.subjectLiquids
dc.subjectTobacco
dc.subjectVaporization
dc.subjectGlycerol derivative
dc.subjectNicotine
dc.subjectPropylene glycol
dc.subjectWater
dc.subjectAerosol composition
dc.subjectEmpirical investigation
dc.subjectEnergy conservation equations
dc.subjectExperimental investigations
dc.subjectLiquid compositions
dc.subjectLiquid vaporization
dc.subjectTotal particulate matter
dc.subjectTransport phenomena
dc.subjectArticle
dc.subjectConcentration (parameters)
dc.subjectControlled study
dc.subjectElectronic cigarette
dc.subjectEnergy conservation
dc.subjectFluid transport
dc.subjectHeat loss
dc.subjectMathematical model
dc.subjectParticulate matter
dc.subjectPriority journal
dc.subjectWater content
dc.titleTransport phenomena governing nicotine emissions from electronic cigarettes: Model formulation and experimental investigation
dc.typeArticle

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