Back to Search Start Over

Modeling the size of small spills of pure volatile liquids for use in evaporation rate and air concentration modeling

Authors :
Chris Keil
Grant Miller
Source :
Journal of Occupational and Environmental Hygiene. 17:325-333
Publication Year :
2020
Publisher :
Informa UK Limited, 2020.

Abstract

Exposure modeling is a valuable tool for assessing chemical vapor exposures that occur during transient events such as small spills of volatile liquids. Models are available to estimate liquid evaporation rates and resulting air concentrations. However, liquid evaporation rate models require the surface area of the puddle in order to provide vapor generation rates in terms of mass per time. This study developed an approach to model the surface area of small spills of pure liquids. A theoretical equation exists relating puddle depth to a liquid's surface tension, density, and contact angle. A contact angle is a characteristic of liquid-solid interactions at the edge of a puddle. If the depth of a puddle can be calculated and the volume of the liquid spilled is known, the surface area of the puddle can be determined. Values for density and surface tension are published. Contact angles, however, are not readily available. Five hundred and eighty experimental spills were conducted using acetone, ethanol and water. The effective contact angle for each spill was determined. Spill volumes varied from 1.0-30.0 mL. The height of the liquid release varied from 0-15 cm onto a variety of surfaces. The effective contact angle of a puddle was most strongly associated with the liquid's polarity. The height of the liquid release and type of surface had significant, but smaller effects on the puddle size. The effective contact angle of a puddle from a spill can be estimated as ln(ϴ

Details

ISSN :
15459632 and 15459624
Volume :
17
Database :
OpenAIRE
Journal :
Journal of Occupational and Environmental Hygiene
Accession number :
edsair.doi.dedup.....4a0d2149122f0971d7d181e9d4296e0a
Full Text :
https://doi.org/10.1080/15459624.2020.1751177