» Articles » PMID: 17454570

Estimating Volatile Organic Compound Concentrations in Selected Microenvironments Using Time-activity and Personal Exposure Data

Overview
Date 2007 Apr 25
PMID 17454570
Citations 13
Authors
Affiliations
Soon will be listed here.
Abstract

Repeated measures of personal exposure to 14 volatile organic compounds (VOC) were obtained over 3 seasons for 70 healthy, nonsmoking adults living in Minneapolis-St. Paul. Matched data were also available for participants' time-activity patterns, and measured VOC concentrations outdoors in the community and indoors in residences. A novel modeling approach employing hierarchical Bayesian techniques was used to estimate VOC concentrations (posterior mode) and variability (credible intervals) in five microenvironments: (1) indoors at home; (2) indoors at work/school; (3) indoors in other locations; (4) outdoors in any location; and (5) in transit. Estimated concentrations tended to be highest in "other" indoor microenvironments (e.g., grocery stores, restaurants, shopping malls), intermediate in the indoor work/school and residential microenvironments, and lowest in the outside and in-transit microenvironments. Model estimates for all 14 VOC were reasonable approximations of measured median concentrations in the indoor residential microenvironment. The largest predicted contributor to cumulative (2-day) personal exposure for all 14 VOC was the indoor residential environment. Model-based results suggest that indoors-at-work/school and indoors-at-other-location microenvironments were the second or third largest contributors for all VOC, while the outside-in-any-location and in-transit microenvironments appeared to contribute negligibly to cumulative personal exposure. Results from a mixed-effects model indicate that being in or near a garage increased personal exposure to o-xylene, m/p-xylene, benzene, ethylbenzene, and toluene, and leaving windows and doors at home open for 6 h or more decreased personal exposure to 13 of 14 VOC, all except trichloroethylene.

Citing Articles

Microbial diversity and metaproteomic analysis of activated sludge responses to naphthalene and anthracene exposure.

Li S, Hu S, Shi S, Ren L, Yan W, Zhao H RSC Adv. 2022; 9(40):22841-22852.

PMID: 35702527 PMC: 9116109. DOI: 10.1039/c9ra04674g.


Updated general exposure factors for risk assessment in the Korean population.

Yoon H, Seo J, Yoo S, Kim P, Park J, Choe Y J Expo Sci Environ Epidemiol. 2022; 33(6):1013-1020.

PMID: 35422491 PMC: 10733140. DOI: 10.1038/s41370-022-00437-6.


Development of General Exposure Factors for Risk Assessment in Korean Children.

Yoon H, Yoo S, Seo J, Kim T, Kim P, Kim P Int J Environ Res Public Health. 2020; 17(6).

PMID: 32197312 PMC: 7142402. DOI: 10.3390/ijerph17061988.


Variability of Total Volatile Organic Compounds (TVOC) in the Indoor Air of Retail Stores.

Jia C, Cao K, Valaulikar R, Fu X, Sorin A Int J Environ Res Public Health. 2019; 16(23).

PMID: 31766339 PMC: 6926805. DOI: 10.3390/ijerph16234622.


Exposure to Volatile Organic Compounds and Use of Feminine Hygiene Products Among Reproductive-Aged Women in the United States.

Ding N, Batterman S, Park S J Womens Health (Larchmt). 2019; 29(1):65-73.

PMID: 31532304 PMC: 6998054. DOI: 10.1089/jwh.2019.7785.