Influence of precision of emission characteristic parameters on model prediction error of VOCs/formaldehyde from dry building material.

Mass transfer models are useful in predicting the emissions of volatile organic compounds (VOCs) and formaldehyde from building materials in indoor environments. They are also useful for human exposure evaluation and in sustainable building design. The measurement errors in the emission characterist...

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Main Authors: Wenjuan Wei, Jianyin Xiong, Yinping Zhang
Format: Article
Language:English
Published: Public Library of Science (PLoS) 2013-01-01
Series:PLoS ONE
Online Access:http://europepmc.org/articles/PMC3849085?pdf=render
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spelling doaj-0b2de7e9e80c4762b84ae95111651a882020-11-25T01:22:06ZengPublic Library of Science (PLoS)PLoS ONE1932-62032013-01-01812e8073610.1371/journal.pone.0080736Influence of precision of emission characteristic parameters on model prediction error of VOCs/formaldehyde from dry building material.Wenjuan WeiJianyin XiongYinping ZhangMass transfer models are useful in predicting the emissions of volatile organic compounds (VOCs) and formaldehyde from building materials in indoor environments. They are also useful for human exposure evaluation and in sustainable building design. The measurement errors in the emission characteristic parameters in these mass transfer models, i.e., the initial emittable concentration (C 0), the diffusion coefficient (D), and the partition coefficient (K), can result in errors in predicting indoor VOC and formaldehyde concentrations. These errors have not yet been quantitatively well analyzed in the literature. This paper addresses this by using modelling to assess these errors for some typical building conditions. The error in C 0, as measured in environmental chambers and applied to a reference living room in Beijing, has the largest influence on the model prediction error in indoor VOC and formaldehyde concentration, while the error in K has the least effect. A correlation between the errors in D, K, and C 0 and the error in the indoor VOC and formaldehyde concentration prediction is then derived for engineering applications. In addition, the influence of temperature on the model prediction of emissions is investigated. It shows the impact of temperature fluctuations on the prediction errors in indoor VOC and formaldehyde concentrations to be less than 7% at 23±0.5°C and less than 30% at 23±2°C.http://europepmc.org/articles/PMC3849085?pdf=render
collection DOAJ
language English
format Article
sources DOAJ
author Wenjuan Wei
Jianyin Xiong
Yinping Zhang
spellingShingle Wenjuan Wei
Jianyin Xiong
Yinping Zhang
Influence of precision of emission characteristic parameters on model prediction error of VOCs/formaldehyde from dry building material.
PLoS ONE
author_facet Wenjuan Wei
Jianyin Xiong
Yinping Zhang
author_sort Wenjuan Wei
title Influence of precision of emission characteristic parameters on model prediction error of VOCs/formaldehyde from dry building material.
title_short Influence of precision of emission characteristic parameters on model prediction error of VOCs/formaldehyde from dry building material.
title_full Influence of precision of emission characteristic parameters on model prediction error of VOCs/formaldehyde from dry building material.
title_fullStr Influence of precision of emission characteristic parameters on model prediction error of VOCs/formaldehyde from dry building material.
title_full_unstemmed Influence of precision of emission characteristic parameters on model prediction error of VOCs/formaldehyde from dry building material.
title_sort influence of precision of emission characteristic parameters on model prediction error of vocs/formaldehyde from dry building material.
publisher Public Library of Science (PLoS)
series PLoS ONE
issn 1932-6203
publishDate 2013-01-01
description Mass transfer models are useful in predicting the emissions of volatile organic compounds (VOCs) and formaldehyde from building materials in indoor environments. They are also useful for human exposure evaluation and in sustainable building design. The measurement errors in the emission characteristic parameters in these mass transfer models, i.e., the initial emittable concentration (C 0), the diffusion coefficient (D), and the partition coefficient (K), can result in errors in predicting indoor VOC and formaldehyde concentrations. These errors have not yet been quantitatively well analyzed in the literature. This paper addresses this by using modelling to assess these errors for some typical building conditions. The error in C 0, as measured in environmental chambers and applied to a reference living room in Beijing, has the largest influence on the model prediction error in indoor VOC and formaldehyde concentration, while the error in K has the least effect. A correlation between the errors in D, K, and C 0 and the error in the indoor VOC and formaldehyde concentration prediction is then derived for engineering applications. In addition, the influence of temperature on the model prediction of emissions is investigated. It shows the impact of temperature fluctuations on the prediction errors in indoor VOC and formaldehyde concentrations to be less than 7% at 23±0.5°C and less than 30% at 23±2°C.
url http://europepmc.org/articles/PMC3849085?pdf=render
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AT jianyinxiong influenceofprecisionofemissioncharacteristicparametersonmodelpredictionerrorofvocsformaldehydefromdrybuildingmaterial
AT yinpingzhang influenceofprecisionofemissioncharacteristicparametersonmodelpredictionerrorofvocsformaldehydefromdrybuildingmaterial
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