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LES of Reacting Mixing Layers: Species Concentration Boundedness and Inflow Conditions

机译:反应混合层的LES:物种浓度有界和入流条件

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The present work carries out large-eddy simulations of the low-speed, high-Reynolds number, chemically-reacting mixing layer experiments by Slessor et al. In particular, we study the low-heat release case with prescribed turbulent inflow conditions. The objective of the present work is to gain insight into the physics of the reacting shear layer and to address some associated computational challenges. This set of experiments are at subsonic conditions and use hydrogen and fluorine as the fuel and oxidizer, respectively. The hy-pergolic reaction between H_2 and F_2, as it was run in the Slessor et al. experiments, is characterized by a large Damkohler number, making the chemistry fast compared to the flow time scales: the product formation and temperature-rise in the flow is mixing-limited. In this work, we attempt to address the issue of overshoots and undershoots of species mass-fractions, often observed in LES of high-Reynolds number flows, by modifying the convective fluxes. We observe that the modified fluxes eliminate the global excursions of species mass-fraction concentration. A three dimensional simulation is performed by imposing synthetic turbulence at the inflow, generated using the digital filter approach of Klein et al., to mimic the experimental flow conditions. The velocity profiles, growth rate, and product thickness obtained from the simulations show a good match with the experimental data, but the peak value of temperature-rise is slightly over predicted.
机译:本工作对Slessor等人的低速,高雷诺数,化学反应混合层实验进行了大涡模拟。特别是,我们研究了在规定的湍流流入条件下的低热量释放情况。本工作的目的是深入了解反应性剪切层的物理性质,并解决一些相关的计算难题。这组实验是在亚音速条件下进行的,分别使用氢和氟作为燃料和氧化剂。 H_2和F_2之间的过高反应,如Slessor等人所进行。实验具有较大的Damkohler数,与流动时间尺度相比,化学反应较快:流动过程中的产物形成和温度升高受到混合的限制。在这项工作中,我们试图通过修改对流通量来解决物种质量分数的上冲和下冲问题,这些问题通常在高雷诺数流的LES中观察到。我们观察到,改进的通量消除了物种质量分数浓度的全局偏移。通过使用Klein等人的数字过滤器方法生成的模拟湍流条件,在流入处施加合成湍流来进行三维模拟。从模拟获得的速度分布,生长速率和产品厚度与实验数据显示出很好的匹配,但是温升的峰值略微超出了预测。

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