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THREE-DIMENSIONAL NUMERICAL SIMULATIONS OF SPHERICAL FLAME EVOLUTIONS IN SHOCK AND RESHOCK ACCELERATED FLOWS

机译:激波和回波加速流中球状火焰演化的三维数值模拟

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摘要

The three-dimensional spherical flame evolutions induced by incident and reflected shock waves in a rectangular shock tube are numerically simulated using the compressible reactive Navier-Stokes equations with a single-step Arrhenius chemical reaction. Four cases, including variable parameters of flame size and number, shock wave strength, and mixture reactivity, are considered in order to investigate the effects of these parameters on the flame evolutions and detonation onsets. The three-dimensional visualized results and the time-dependent integral and statistical results for the shock-flame interactions are obtained. The morphology of the flame evolutions for all cases studied shows the severe distortion, expansion, and corrugation of flame disturbed by shock waves, especially by a reflected shock wave. The unstable flame produces the three-dimensional reactive shock bifurcation (RSB) structure, as the flame number, the shock wave strength, or the mixture reactivity increase. Further, detonations can occur in a later stage of flame evolution at the different three-dimensional spatial locations for different cases through the shock-detonation-transition (SDT) mechanism. Unlike the three-dimensional spatial dissimilarities of flame patterns and detonation initiation locations among cases studied, the time-dependent integral and statistical properties of flame developments prior to detonation onset show the more similar behaviors for all cases. During the passage of shock and reshock waves, the spherical flames are compressed and distorted, resulting in the vorticity deposition within flame and the well-mixing between the burned and unburned gases. Physical process dominates the compression phases of the flame evolution. Following the passage of the shock and reshock waves, the well-mixing facilitates the chemical heat release and expands (accelerates) the distorted flame. The chemical process becomes more prominent, especially under the reshock condition. In the flame expansion phases, the baroclinic effect is weakened, and the vortex stretching effect is enhanced with the development of flame. In addition, the well-mixing by the passages of shock waves promotes the chemical reaction of the flame, which in turn burns out the mixing zone of flame and therefore inhibits the mixing.
机译:使用具有一步法Arrhenius化学反应的可压缩反应性Navier-Stokes方程对由矩形激波管中入射和反射激波引起的三维球形火焰演化进行了数值模拟。为了研究这些参数对火焰演变和起爆的影响,考虑了四种情况,包括火焰大小和数量,冲击波强度和混合物反应性的可变参数。获得了三维三维可视化结果以及与时间相关的冲击-火焰相互作用的积分和统计结果。在所有研究案例中,火焰演化的形态表明,严重的变形,膨胀和波纹受到冲击波,特别是反射冲击波的干扰。随着火焰数量,冲击波强度或混合物反应性的增加,不稳定的火焰会产生三维反应性冲击分叉(RSB)结构。此外,通过冲击-爆轰-转变(SDT)机制,在不同情况下,在不同的三维空间位置处,在火焰发展的后期,爆轰可发生在不同的三维空间位置。与所研究案例之间的火焰模式和爆炸起爆位置的三维空间差异不同,爆炸起爆之前火焰发展的时间相关积分和统计特性在所有情况下均表现出更相似的行为。在冲击波和冲击波通过的过程中,球形火焰被压缩和扭曲,从而导致火焰内的涡流沉积以及已燃烧气体和未燃烧气体之间的良好混合。物理过程主导着火焰演化的压缩阶段。随着冲击波和冲击波的通过,良好的混合有助于化学放热并扩大(加速)扭曲的火焰。化学过程变得更加突出,特别是在冲击条件下。在火焰膨胀阶段,随着火焰的发展,斜压作用减弱,涡旋拉伸作用增强。另外,通过冲击波的充分混合促进了火焰的化学反应,其继而烧尽了火焰的混合区域,因此抑制了混合。

著录项

  • 来源
    《Combustion Science and Technology》 |2013年第12期|1415-1440|共26页
  • 作者

    Yuejin Zhu; Gang Dong; Yixin Liu;

  • 作者单位

    State Key Laboratory of Transient Physics, Nanjing University of Science and Technology, Nanjing, China;

    State Key Laboratory of Explosion Science and Technology, Beijing Institute of Technology, Beijing, China,State Key Laboratory of Transient Physics, Nanjing University of Science and Technology, Nanjing 210094, China;

    State Key Laboratory of Transient Physics, Nanjing University of Science and Technology, Nanjing, China;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Detonation onset; Flame; Instability; Mixing; Reactive shock bifurcation; Shock wave;

    机译:起爆;火焰;不稳定;混合;反应性电击分叉;激波;

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