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Models for shock-induced ignition evaluated by detailed chemical kinetics for hydrogen/air in the context of deflagration-to-detonation transition

机译:通过在脱气到爆震过渡的背景下,通过详细的化学动力学评估抗冲击点火模型

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Deflagration-to-detonation transition can occur in industrial explosions involving highly reactive gas mixtures such as H-2/air. Large degrees of confinement and congestion support strong flame acceleration and the transition to detonation. Various mechanisms can accomplish the onset of detonation, such as mixing processes and instabilities or shock-induced ignition. This paper focuses on ignition by normal shock reflection. Two ignition modes behind reflected shock waves are distinguished: strong ignition, which enables direct detonation initiation; and weak ignition, leading to distributed ignition kernels (deflagrations). Models for the prediction of ignition modes by Voevodsky and Soloukhin, Meyer and Oppenheim, Radulescu et al., Grogan and Ihme, and Thomas et al., are evaluated and compared using a state-of-the-art detailed chemical kinetic scheme. Based on these models, critical incident shock Mach numbers leading to strong ignition are determined. Similarities and deviations between these models are discussed and strategies for future experimental work are proposed. (C) 2017 Elsevier Ltd. All rights reserved.
机译:在涉及高反应性气体混合物如H-2 /空气中的工业爆炸中可能发生渗透到爆炸过渡。较大程度的监禁和充血支持强烈的火焰加速和过渡到爆炸。各种机制可以实现爆炸的开始,例如混合过程和稳定性或抗冲击诱导的点火。本文侧重于普通冲击反射点火。反射冲击波背后的两种点火模式是区分:强烈的点火,这使得直接爆轰起始;弱点火,导致分布式点火核(DeflAgations)。 Voevodsky和Soloukhin,Meyer和Openheim,Radulescu等,Radulescu等,和Thomas等人的预测模型。使用最先进的详细化学动力学方案来评估和比较。基于这些模型,确定了导致强烈点火的临界入射冲击马赫号。讨论了这些模型之间的相似性和偏差,提出了未来实验工作的策略。 (c)2017 Elsevier Ltd.保留所有权利。

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