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Diffusion-Flame Ignition by Shock-Wave Impingement on a Hydrogen-Air Supersonic Mixing Layer

机译:冲击波撞击氢-空气超音速混合层的扩散火焰着火

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摘要

Ignition in a supersonic hydrogen-air mixing layer interacting with an oblique shock wave is investigated analytically under conditions such that the postshock flow is supersonic and the peak postshock temperature before ignition remains below the crossover temperature. The study requires consideration of the flow structure in the postshock ignition kernel found around the point of maximum temperature, which is assumed in this study to lie at an intermediate location across the mixing layer, as occurs in mixing layers subject to significant viscous dissipation. The ignition kernel displays a balance between the rates of chemical reaction and postshock flow expansion, including the acoustic interactions of the chemical heat release with the shock wave leading to increased front curvature. The problem is formulated with account taken of the strong temperature dependence of the chemical heat-release rate characterizing the ignition chemistry in the low-temperature regime analyzed here. It is shown how consideration of a two-step reduced chemical-kinetic mechanism derived in previous work leads to a boundary-value problem that can be solved analytically to determine ignition as a fold bifurcation, with the turning point in the diagram of peak perturbation induced by the chemical reaction as a function of the Damkohler number providing the critical conditions for ignition.
机译:在如下条件下分析性地研究了与倾斜冲击波相互作用的超音速氢-空气混合层中的点火,即:余震流为超音速,且点火前的峰值余震温度保持在交叉温度以下。该研究需要考虑在最高温度点附近发现的震后点火核中的流动结构,在该研究中假定该流动结构位于混合层的中间位置,就像在混合层中发生粘性耗散一样。点火内核显示出化学反应速率与震后流量膨胀之间的平衡,包括化学放热与冲击波的声学相互作用,导致前曲率增加。考虑到在此分析的低温状态下表征点火化学的化学放热率的强烈温度依赖性,提出了该问题。结果表明,考虑先前工作中得出的两步还原化学动力学机理如何导致边界值问题,该问题可以通过解析解决,从而将点火确定为折叠分叉,并在峰值扰动图中引起拐点化学反应是达姆霍勒数的函数,为着火提供了关键条件。

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  • 来源
    《Journal of propulsion and power》 |2017年第1期|256-263|共8页
  • 作者单位

    Universidad Carlos III de Madrid, 28911 Leganes, Spain;

    University of California, San Diego, La Jolla, California 92093-0411;

    University of California, San Diego, La Jolla, California 92093-0411;

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  • 正文语种 eng
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