Effect of CH4–Air Ratios on Gas Explosion Flame Microstructure and Propagation Behaviors

To reveal the inner mechanism of gas explosion dynamic behavior affected by gas equivalent concentration, a high speed Schlieren image system and flow field measurement technology was applied to record the gas explosion flame propagation and flame structure transition. The results show that a flame...

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Main Authors: Ying Zhang, Yin Zhang, Xianfeng Chen
Format: Article
Language:English
Published: MDPI AG 2012-10-01
Series:Energies
Subjects:
Online Access:http://www.mdpi.com/1996-1073/5/10/4132
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spelling doaj-3d0809a133bf409a8478cfe3e5ad5a572020-11-24T22:53:27ZengMDPI AGEnergies1996-10732012-10-015104132414610.3390/en5104132Effect of CH4–Air Ratios on Gas Explosion Flame Microstructure and Propagation BehaviorsYing ZhangYin ZhangXianfeng ChenTo reveal the inner mechanism of gas explosion dynamic behavior affected by gas equivalent concentration, a high speed Schlieren image system and flow field measurement technology was applied to record the gas explosion flame propagation and flame structure transition. The results show that a flame front structure transition occurs, followed by a flame accelerating propagation process. The laminar to turbulence transition was the essential cause of the flame structure changes. The laminar flame propagation behavior was influenced mainly by gas expansion and fore-compressive wave effect, while the turbulent flame speed mostly depended on turbulence intensity, which also played an important role in peak value of the explosive pressure and flame speed. On the condition that the laminar-turbulent transition was easier to form, the conclusion was drawn that, the lowest CH4 concentration for maximum overpressure can be obtained, which was the essential reason why the ideal explosive concentration differs under different test conditions.http://www.mdpi.com/1996-1073/5/10/4132gas concentrationgas explosionflame structurepropagation behavior
collection DOAJ
language English
format Article
sources DOAJ
author Ying Zhang
Yin Zhang
Xianfeng Chen
spellingShingle Ying Zhang
Yin Zhang
Xianfeng Chen
Effect of CH4–Air Ratios on Gas Explosion Flame Microstructure and Propagation Behaviors
Energies
gas concentration
gas explosion
flame structure
propagation behavior
author_facet Ying Zhang
Yin Zhang
Xianfeng Chen
author_sort Ying Zhang
title Effect of CH4–Air Ratios on Gas Explosion Flame Microstructure and Propagation Behaviors
title_short Effect of CH4–Air Ratios on Gas Explosion Flame Microstructure and Propagation Behaviors
title_full Effect of CH4–Air Ratios on Gas Explosion Flame Microstructure and Propagation Behaviors
title_fullStr Effect of CH4–Air Ratios on Gas Explosion Flame Microstructure and Propagation Behaviors
title_full_unstemmed Effect of CH4–Air Ratios on Gas Explosion Flame Microstructure and Propagation Behaviors
title_sort effect of ch4–air ratios on gas explosion flame microstructure and propagation behaviors
publisher MDPI AG
series Energies
issn 1996-1073
publishDate 2012-10-01
description To reveal the inner mechanism of gas explosion dynamic behavior affected by gas equivalent concentration, a high speed Schlieren image system and flow field measurement technology was applied to record the gas explosion flame propagation and flame structure transition. The results show that a flame front structure transition occurs, followed by a flame accelerating propagation process. The laminar to turbulence transition was the essential cause of the flame structure changes. The laminar flame propagation behavior was influenced mainly by gas expansion and fore-compressive wave effect, while the turbulent flame speed mostly depended on turbulence intensity, which also played an important role in peak value of the explosive pressure and flame speed. On the condition that the laminar-turbulent transition was easier to form, the conclusion was drawn that, the lowest CH4 concentration for maximum overpressure can be obtained, which was the essential reason why the ideal explosive concentration differs under different test conditions.
topic gas concentration
gas explosion
flame structure
propagation behavior
url http://www.mdpi.com/1996-1073/5/10/4132
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AT yinzhang effectofch4airratiosongasexplosionflamemicrostructureandpropagationbehaviors
AT xianfengchen effectofch4airratiosongasexplosionflamemicrostructureandpropagationbehaviors
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