Combustion-induced pressure effects in supersonic diffusion flames

K.H. Luo , K.N.C. Bray
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引用次数: 25

Abstract

A turbulent diffusion flame at a convective Mach number 1.2 was investigated using direct numerical simulation (DNS). The DNS employed the full time-dependent compressible Navier-Stokes equations coupled with a one-step chemical reaction governed by the Arrhenius kinetics. Detailed study of combustion-induced pressure effects on turbulence generation, conserved scalar, and stagnation enthalpy transport was conducted. Local countergradient diffusion (CGD) of a conserved scalar flux was observed for the first time in a diffusion flame where heat release was strong enough while gradient diffusion prevailed when heat release was zero or weak. The CGD occurred in spite of the absence of an externally imposed mean pressure gradient and was attributed to combustion-induced pressure fluctuations. The balance of the turbulent kinetic energy budget was strongly influenced by the pressure dilatation and the (combustion-induced) mean pressure work when heat release was strong. Both terms can be a source or a sink of turbulence, depending on the intricate interactions between turbulence and combustion. However, the temporal change in pressure ϱp/ϱt had an insignificant influence on the stagnation enthalpy transport. A linear relation between the stagnation enthalpy and the mixture fraction was confirmed, which could lead to considerable simplification in modeling high-speed turbulent combustion.

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超音速扩散火焰的燃烧诱导压力效应
采用直接数值模拟方法研究了对流马赫数为1.2的湍流扩散火焰。DNS采用完全时变可压缩的Navier-Stokes方程,并结合由Arrhenius动力学控制的一步化学反应。详细研究了燃烧压力对湍流产生、守恒标量和滞止焓输运的影响。首次在热释放足够强的扩散火焰中观察到守恒标量通量的局部反梯度扩散,而在热释放为零或弱时则发生梯度扩散。尽管没有外部施加的平均压力梯度,但仍发生了CGD,并归因于燃烧引起的压力波动。当热释放较强时,压力膨胀和(燃烧引起的)平均压力功对湍流动能收支平衡有较大影响。这两个术语都可以是湍流的源或汇,这取决于湍流和燃烧之间复杂的相互作用。而压力ϱp/ϱt的时间变化对滞止焓输运的影响不显著。滞止焓与混合气分数呈线性关系,从而大大简化了高速湍流燃烧的模拟。
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