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Initiation structure of oblique detonation waves behind conical shocks

机译:锥形震动背后斜爆波的启动结构

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摘要

The understanding of oblique detonation dynamics has both inherent basic research value for highspeed compressible reacting flow and propulsion application in hypersonic aerospace systems. In this study, the oblique detonation structures formed by semi-infinite cones are investigated numerically by solving the unsteady, two-dimensional axisymmetric Euler equations with a one-step irreversible Arrhenius reaction model. The present simulation results show that a novel wave structure, featured by two distinct points where there is close-coupling between the shock and combustion front, is depicted when either the cone angle or incident Mach number is reduced. This structure is analyzed by examining the variation of the reaction length scale and comparing the flow field with that of planar, wedge-induced oblique detonations. Further simulations are performed to study the effects of chemical length scale and activation energy, which are both found to influence the formation of this novel structure. The initiation mechanism behind the conical shock is discussed to investigate the interplay between the effect of the Taylor-Maccoll flow, front curvature, and energy releases from the chemical reaction in conical oblique detonations. The observed flow fields are interpreted by means of the energetic limit as in the critical regime for initiation of detonation. Published by AIP Publishing.
机译:对斜爆炸动力学的理解具有高速可压缩反应流动和超声波航空系统的推进应用的固有基本研究价值。在该研究中,通过用一步不可逆的Arhenius反应模型求解不稳定的二维轴对称欧拉方程,用半无限锥体形成由半无限锥体形成的倾斜爆震结构。本仿真结果表明,当锥角或入射马赫数减小时,描绘了一种新的波结构,其中在冲击和燃烧前部之间存在近距离耦合。通过检查反应长度尺度的变化并将流场与平面,楔形倾斜爆炸的流场进行比较来分析该结构。进行进一步的模拟以研究化学长度和激活能的影响,这些效果都发现影响这种新颖结构的形成。讨论了锥形冲击背后的启动机制,以研究泰勒 - 宏族流量,前曲率和能量释放的影响与锥形倾斜爆炸中的化学反应之间的相互作用。观察到的流场通过充满活力的限制来解释,如临界制度中的激发爆炸。通过AIP发布发布。

著录项

  • 来源
    《Physics of fluids》 |2017年第8期|共10页
  • 作者单位

    Chinese Acad Sci Inst Mech State Key Lab High Temp Gas Dynam Beijing 100190 Peoples R China;

    Concordia Univ Dept Mech &

    Ind Engn Montreal PQ H3G 1M8 Canada;

    Beijing Inst Technol Sch Aerosp Engn Dept Mech Beijing 100081 Peoples R China;

    Chinese Acad Sci Inst Mech State Key Lab High Temp Gas Dynam Beijing 100190 Peoples R China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 流体力学;
  • 关键词

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