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Analysis of radiative transfer in a turbulent sooting jet flame using a Monte Carlo method coupled to large eddy simulation

机译:使用Monte Carlo方法耦合到大涡仿真湍流烟雾火焰辐射转移分析

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Due to the relevant contribution of radiative transfer in the global energy balance of many industrial combustion systems, a deep understanding and accurate modelling of gas and soot radiative transfer is necessary. This topic is addressed here numerically in a canonical turbulent sooting configuration, i.e. an ethylene-air jet diffusion flame. The study is based on a coupled Monte Carlo - Large Eddy Simulation. In order to introduce as much physical details as possible, a recently-developed sectional model is used for soot particles description and the radiative transfer equation is solved using a Monte-Carlo method. A cK model describes gas radiative properties and the Rayleigh's theory is considered for soot particles properties. Numerical results are compared to experimental data on radiative intensity measured along the flame height to validate the proposed methodology. Then, the different radiative contributions i.e. emission-absorption, gas-soot, are analyzed to study the nature of the radiative heat transfer in the investigated flame. Finally, turbulence-radiation interactions are quantified for the total mean emitted, absorbed and radiative powers. Closure of these effects on the mean emitted power is proposed and discussed. Opposite effects of turbulence-radiation interactions are observed for the gaseous and the soot contributions: the increase in mean emitted power for the gaseous phase is due to temperature fluctuations whereas a decrease of the solid phase contribution appears from a negative temperature-soot volume fraction correlation. (C) 2019 Elsevier Ltd. All rights reserved.
机译:由于许多工业燃烧系统全球能量平衡中辐射转移的相关贡献,需要深入了解和准确的气体和烟灰辐射转移的建模。此主题在这里以规范湍流烟灰配置在数量上进行解决,即乙烯 - 空气喷射扩散火焰。该研究基于耦合的蒙特卡洛 - 大型涡流模拟。为了使尽可能多的物理细节引入,最近开发的截面模型用于烟灰粒子描述,并且使用蒙特卡罗方法解决辐射传递方程。 CK模型描述了气体辐射性能,瑞利理论被认为是烟灰颗粒性质。将数值结果与沿火焰高度测量的辐射强度的实验数据进行比较,以验证提出的方法。然后,分析了不同辐射贡献,即排放吸收,气体烟灰,研究了研究的火焰中辐射传热的性质。最后,湍流 - 辐射相互作用被定量为排放,吸收和辐射功率的总平均值。提出并讨论了对平均发射功率的这些影响的关闭。对于气态和烟灰贡献,观察到湍流 - 辐射相互作用的相反效果:气相的平均发射功率的增加是由于温度波动,而固相贡献的降低从负温度 - 烟灰体积分数相关性。 (c)2019年elestvier有限公司保留所有权利。

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