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PMID: 23789964 Published · ppublish English Journal Article Research Support, Non-U.S. Gov't

Predicting transient particle transport in enclosed environments with the combined computational fluid dynamics and Markov chain method.

Indoor air ·Vol. 24 ·No. 1 ·2014-02-00 ·页码 81-92

Chen C, Lin CH, Long Z, Chen Q

Abstract

To quickly obtain information about airborne infectious disease transmission in enclosed environments is critical in reducing the infection risk to the occupants. This study developed a combined computational fluid dynamics (CFD) and Markov chain method for quickly predicting transient particle transport in enclosed environments. The method first calculated a transition probability matrix using CFD simulations. Next, the Markov chain technique was applied to calculate the transient particle concentration distributions. This investigation used three cases, particle transport in an isothermal clean room, an office with an underfloor air distribution system, and the first-class cabin of an MD-82 airliner, to validate the combined CFD and Markov chain method. The general trends of the particle concentrations vs. time predicted by the Markov chain method agreed with the CFD simulations for these cases. The proposed Markov chain method can provide faster-than-real-time information about particle transport in enclosed environments. Furthermore, for a fixed airflow field, when the source location is changed, the Markov chain method can be used to avoid recalculation of the particle transport equation and thus reduce computing costs.

Keywords
Aircraft cabin Clean room Computational fluid dynamics Infectious diseases transmission Lagrangian model Office Transition probability matrix
MeSH 主题词
Air Microbiology Communicable Diseases/transmission Computer Simulation Disease Outbreaks/prevention & control Humans Hydrodynamics Markov Chains Particulate Matter
化学物质
Particulate Matter
作者与单位
共 4 位作者,点击展开单位 / ORCID
Chen C
School of Mechanical Engineering, Purdue University, West Lafayette, IN, USA.
Lin C-H
Long Z
Chen Q
Article Info
Journal
Indoor air
Abbr.
Indoor Air
ISSN
1600-0668
Published
2014-02-00
电子出版
2013-00-20
页码
81-92
Language
English
Country/Region
England
NLM ID
9423515
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