Effects of User Puff Topography, Device Voltage, and Liquid Nicotine Concentration on Electronic Cigarette Nicotine Yield: Measurements and Model Predictions
Влияние характеристик затяжек пользователя, напряжения устройства и концентрации никотина в жидкости на выход никотина из электронной сигареты: измерения и предсказания модели
2014-09-03
SCID: 54.1/ereww573
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device voltageelectronic cigarettenicotine yieldpuff topographytheoretical model
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Abstract (AI)
INTRODUCTION: Some electronic cigarette (ECIG) users attain tobacco cigarette-like plasma nicotine concentrations while others do not. Understanding the factors that influence ECIG aerosol nicotine delivery is relevant to regulation, including product labeling and abuse liability. These factors may include user puff topography, ECIG liquid composition, and ECIG design features. This study addresses how these factors can influence ECIG nicotine yield. METHODS: Aerosols were machine generated with 1 type of ECIG cartridge (V4L CoolCart) using 5 distinct puff profiles representing a tobacco cigarette smoker (2-s puff duration, 33-ml/s puff velocity), a slow average ECIG user (4 s, 17 ml/s), a fast average user (4 s, 33 ml/s), a slow extreme user (8 s, 17 ml/s), and a fast extreme user (8 s, 33 ml/s). Output voltage (3.3-5.2 V or 3.0-7.5 W) and e-liquid nicotine concentration (18-36 mg/ml labeled concentration) were varied. A theoretical model was also developed to simulate the ECIG aerosol production process and to provide insight into the empirical observations. RESULTS: Nicotine yields from 15 puffs varied by more than 50-fold across conditions. Experienced ECIG user profiles (longer puffs) resulted in higher nicotine yields relative to the tobacco smoker (shorter puffs). Puff velocity had no effect on nicotine yield. Higher nicotine concentration and higher voltages resulted in higher nicotine yields. These results were predicted well by the theoretical model (R (2) = 0.99). CONCLUSIONS: Depending on puff conditions and product features, 15 puffs from an ECIG can provide far less or far more nicotine than a single tobacco cigarette. ECIG emissions can be predicted using physical principles, with knowledge of puff topography and a few ECIG device design parameters.
Key Findings
1
Depending on puff conditions and product features, 15 electronic-cigarette puffs can deliver substantially less or more nicotine than one tobacco cigarette.
2
Longer puff durations characteristic of experienced electronic cigarette users produced higher nicotine yields than shorter tobacco-cigarette-like puffs.
3
Nicotine yield from 15 puffs varied by more than 50-fold across combinations of puff topography, device voltage, and liquid nicotine concentration.
4
Puff velocity did not affect nicotine yield, whereas higher liquid nicotine concentrations and higher device voltages increased nicotine delivery.
5
The theoretical aerosol-production model accurately predicted empirical nicotine yields, achieving R² = 0.99.
Research Object
electronic cigarette aerosol nicotine delivery from a V4L CoolCart cartridge under varied puff profiles, device voltages, and e-liquid nicotine concentrations
Research Subject
effects of puff duration and velocity, device voltage, and e-liquid nicotine concentration on 15-puff nicotine yield, including the predictive performance of a physical aerosol-production model
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2014-09-03
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