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One-dimensional numerical study on pressure wave flame interaction and flame acceleration under engine-relevant conditions

机译:发动机相关条件下压力波火焰相互作用和火焰加速度的一维数值研究

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摘要

Knock is considered as a major challenge when increasing thermal efficiency of internal combustion engine. In this study, two possible causes of engine knock: flame acceleration and auto-ignition, are studied using one-dimensional simulation under engine-relevant conditions. Chemical source term is modeled using Arrhenius expression with detailed chemical mechanism of hydrogen oxidation. Interaction between pressure wave and flame during propagation of flame front is investigated. It is observed that propagation and reflection of pressure wave in cylinder might trigger Deflagration Detonation Transition (DDT), which leads to extremely high pressure oscillation. Pressure wave initialized by auto-ignition flame is also a reason leading to detonation by enhancing main flame front. Chemical kinetics study is also carried out to analyze chemical process during auto-ignition. Pressure wave is considered to play an important role in the initiation of direct detonation due to accumulation of intermediate radicals under higher pressure. Ignition delays under varying conditions are calculated according to the effects of pressure wave induction. As a result, gradient of ignition delays is observed, which might be a possible cause of detonation initialization. Copyright (C) 2015, Hydrogen Energy Publications, LLC. Published by Elsevier Ltd. All rights reserved.
机译:当增加内燃机的热效率时,爆震被认为是主要挑战。在这项研究中,使用发动机相关条件下的一维模拟研究了发动机爆震的两个可能原因:火焰加速和自燃。化学源项使用Arrhenius表达式建模,具有详细的氢氧化化学机理。研究了火焰前沿传播过程中压力波与火焰之间的相互作用。观察到,压力波在气缸中的传播和反射可能会触发爆燃爆轰转变(DDT),从而导致极高的压力振荡。由自动点火火焰初始化的压力波也是通过增强主火焰前锋导致爆炸的原因。还进行了化学动力学研究,以分析自燃过程中的化学过程。由于在较高的压力下中间基团的积累,认为压力波在直接引爆的引发中起重要作用。根据压力波感应的影响,计算出在不同条件下的点火延迟。结果,观察到点火延迟的梯度,这可能是爆炸初始化的可能原因。 Hydrogen Energy Publications,LLC版权所有(C)2015。由Elsevier Ltd.出版。保留所有权利。

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