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Theoretical, numerical, and experimental investigation of pressure rise due to deflagration in confined spaces

Authors
Bang, Boo-HyoungAhn, Chan-SolLee, Jong-GunKim, Young-TaeLee, Myung-HoHorn, BradMalik, DarrenThomas, KellyJames, Scott C.Yarin, Alexander L.Yoon, Sam S.
Issue Date
Oct-2017
Publisher
ELSEVIER FRANCE-EDITIONS SCIENTIFIQUES MEDICALES ELSEVIER
Citation
INTERNATIONAL JOURNAL OF THERMAL SCIENCES, v.120, pp.469 - 480
Indexed
SCIE
SCOPUS
Journal Title
INTERNATIONAL JOURNAL OF THERMAL SCIENCES
Volume
120
Start Page
469
End Page
480
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/82035
DOI
10.1016/j.ijthermalsci.2017.05.019
ISSN
1290-0729
Abstract
Estimating pressure rise due to deflagration in a fully or partially confined space is of practical importance in safety design of a petrochemical plant. Herein, we have developed a new theoretical model to predict the pressure rise due to deflagration in both fully and partially confined spaces. First, the theoretical model was compared and validated against experimental data from the closed-space experiments with hydrogen, methane, propane, and ethane. The theory predicted accurate pressure rises near the stoichiometric regime for all fuel types; outside the stoichiometric regime, especially, for rich mixtures of hydrocarbons with air, the theory over-predicted pressure rise since it does not account for soot formation and the associated energy losses by radiation. Experimental investigation of propane and hydrogen deflagration was conducted in a partially confined space and the theory-based predictions agreed with the data up to 5%. Parametric numerical study was performed to investigate the effect of the initial pressure and temperature of gaseous fuels on pressure rise. (C) 2017 Elsevier Masson SAS. All rights reserved.
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