Modeling Ozone Removal to Indoor Materials, Including the Effects of Porosity, Pore Diameter, and Thickness

作者:Gall Elliott T; Siegel Jeffrey A; Corsi Richard L*
来源:Environmental Science & Technology, 2015, 49(7): 4398-4406.
DOI:10.1021/acs.est.5b00023

摘要

We develop an ozone transport and reaction model to determine reaction probabilities and assess the importance of physical properties such as porosity, pore diameter, and material thickness on reactive uptake of ozone to five materials. The one-dimensional model accounts for molecular diffusion from bulk air to the airmaterial interface, reaction at the interface, and diffusive transport and reaction through material pore volumes. Material-ozone reaction probabilities that account for internal transport and internal pore area, gamma(ipa), are determined by a minimization of residuals between predicted and experimentally derived ozone concentrations. Values of gamma(ipa) are generally less than effective reaction probabilities (gamma(eff)) determined previously, likely because of the inclusion of diffusion into substrates and reaction with internal surface area (rather than the use of the horizontally projected external material areas). Estimates of gamma(ipa) average 1 x 10(-7), 2 x 10(-7), 4 x 10(-5), 2 x 10(-5), and 4 x 10(-7) for two types of cellulose paper, pervious pavement, Portland cement concrete, and an activated carbon cloth, respectively. The transport and reaction model developed here accounts for observed differences in ozone removal to varying thicknesses of the cellulose paper, and estimates a near constant gamma(ipa) as material thickness increases from 0.02 to 0.16 cm.

  • 出版日期2015-4-7
  • 单位南阳理工学院