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Accounting for real gas effects in CFD simulations of high density combustion

机译:核算高密度燃烧的CFD模拟中的真实气体效应

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Advanced combustion systems characterized by high efficiencies and low emissions can be achieved by organizing combustion processes at high densities (high pressures and low temperatures). Under these conditions, the ideal gas model widely used in CFD simulations fails to properly capture the relation among pressure, density, and temperature as well as variation of the mixture internal energy. As such, discrepancies between experimental observations and CFD simulations cannot only be traced to experimental or turbulent combustion model uncertainties. This paper investigates differences in the mixing and combustion of a high-pressure n-heptane jet into a quiescent chamber of air based on ideal and real gas models. Since the results reveal substantial differences, and the real gas model is more physically sound, there is therefore a strong motivation to resolve the problem. A method is then suggested for incorporating real gas models in CFD simulations based on available transport and thermodynamic data. This attempt also brings out an often-ignored problem in existing chemical kinetic models in the literature, namely, the non-systematic assignment of transport properties for various species.
机译:通过在高密度(高压和低温下)组织燃烧过程,可以实现特征在于高效率和低排放的先进燃烧系统。在这些条件下,广泛用于CFD模拟的理想气体模型未能正确捕获压力,密度和温度之间的关系以及混合内能量的变化。因此,实验观察和CFD模拟之间的差异不能追溯到实验或湍流的燃烧模型不确定性。本文研究了高压正庚烷射流的混合和燃烧基于理想和实际气体模型的空气中的混合和燃烧。由于结果揭示了实质性差异,而真正的气体模型更为物理声音,因此有强烈的动力来解决问题。然后建议一种方法基于可用的传输和热力学数据在CFD仿真中掺入真实气体模型。这种尝试还在文献中的现有化学动力学模型中提出了经常忽略的问题,即各种物种的非系统分配。

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