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Cell structure and stability of detonations with a pressure-dependent chain-branching reaction rate model

机译:依赖于压力的链支化反应速率模型的细胞结构和爆轰稳定性

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We examine detonation waves with a four-step chain-branching reaction model that exhibits explosion limits close to the two lower limits of hydrogen-oxygen chemistry. The reaction model consists of a chain-initiation step and a chain-branching step, both temperature-dependent with Arrhenius kinetics, followed by two pressure-dependent termination steps. Increasing the chain-branching activation energy or the overdrive shortens the reaction length in the ZND wavelength and leads to more unstable detonations, according to multi-dimensional linear stability analysis. Corresponding numerical simulations show that detonations with weak chain-branching reactions have a wave structure similar to those with a single-step reaction; strong chain-branching detonations show distinct keystone features. Keystone regions are bounded by a discontinuity in reactivity across the shear layers emanating from the triple points at the intersection of the transverse waves and the main front. Especially in the strong case, chain-branching occurs within a thin front at the back side of the keystone figure, or immediately behind Mach sterns.
机译:我们用四步链支化反应模型检查了爆炸波,该模型显示出爆炸极限接近氢氧化学的两个下限。该反应模型由链引发步骤和链支化步骤组成,这两个步骤均取决于温度与阿伦尼乌斯动力学的关系,然后是两个与压力有关的终止步骤。根据多维线性稳定性分析,增加支链活化能或过驱动会缩短ZND波长中的反应长度,并导致更不稳定的爆炸。相应的数值模拟表明,具有弱链支化反应的爆炸具有与单步反应相似的波结构。强烈的支链爆炸显示出鲜明的基石特征。梯形失真区域受横波与主前缘交点处的三点所产生的剪切层的反应性不连续性的限制。特别是在坚固的情况下,链条分支发生在梯形人物背面的较薄的正面内,或紧接在马赫船尾之后。

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