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首页> 外文期刊>Journal of Engineering for Gas Turbines and Power >RANS and Large Eddy Simulation of Internal Combustion Engine Flows-A Comparative Study
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RANS and Large Eddy Simulation of Internal Combustion Engine Flows-A Comparative Study

机译:内燃机流量的RANS和大涡模拟-对比研究

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摘要

A comparative cold flow analysis between Reynolds-averaged Navier-Stokes (RANS) and large eddy simulation (LES) cycle-averaged velocity and turbulence predictions is carried out for a single cylinder engine with a transparent combustion chamber (TCC) under motored conditions using high-speed particle image velocimetry (PIV) measurements as the reference data. Simulations are done using a commercial computationally fluid dynamics (CFD) code CONVERGE with the implementation of standard k-ε and RNG k-ε turbulent models for RANS and a one-equation eddy viscosity model for LES. The following aspects are analyzed in this study: The effects of computational domain geometry (with or without intake and exhaust plenums) on mean flow and turbulence predictions for both LES and RANS simulations. And comparison of LES versus RANS simulations in terms of their capability to predict mean flow and turbulence. Both RANS and LES full and partial geometry simulations are able to capture the overall mean flow trends qualitatively; but the intake jet structure, velocity magnitudes, turbulence magnitudes, and its distribution are more accurately predicted by LES full geometry simulations. The guideline therefore for CFD engineers is that RANS partial geometry simulations (computationally least expensive) with a RNG k-ε turbulent model and one cycle or more are good enough for capturing overall qualitative flow trends for the engineering applications. However, if one is interested in getting reasonably accurate estimates of velocity magnitudes, flow structures, turbulence magnitudes, and its distribution, they must resort to LES simulations. Furthermore, to get the most accurate turbulence distributions, one must consider running LES full geometry simulations.
机译:雷诺平均Navier-Stokes(RANS)与大涡模拟(LES)循环平均速度和湍流预测之间的比较冷流分析是在具有高燃烧功率的机动条件下对具有透明燃烧室(TCC)的单缸发动机进行的速度粒子图像测速(PIV)测量作为参考数据。使用商业计算流体力学(CFD)代码CONVERGE和RANS的标准k-ε和RNGk-ε湍流模型以及LES的单方程涡流粘度模型进行仿真。本研究分析以下方面:LES和RANS模拟的计算域几何形状(有或没有进气和排气增压)对平均流量和湍流预测的影响。并比较了LES和RANS模拟在预测平均流量和湍流方面的能力。 RANS和LES的全部和部分几何模拟都能够定性地捕获总体平均流量趋势;但是通过LES完整几何模拟可以更准确地预测进气口的结构,速度大小,湍流大小及其分布。因此,CFD工程师的指导原则是,使用RNGk-ε湍流模型和一个或多个周期进行RANS局部几何模拟(通常是最便宜的)足以捕获工程应用的总体定性流动趋势。但是,如果有兴趣对速度大小,流动结构,湍流大小及其分布进行合理准确的估计,则必须采用LES模拟。此外,为了获得最准确的湍流分布,必须考虑运行LES完整几何仿真。

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