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A comprehensive modeling study of in-cylinder fluid flows in a high-swirl, light-duty optical diesel engine

机译:高旋流,轻型光学柴油机缸内流体流动的综合建模研究

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The effectiveness of computational fluid dynamics modeling as a tool for researching fuel-lean, low temperature engine combustion strategies relies on its capability to capture the local fluid flow properties that affect spray dynamics, mixture preparation and ignition kinetics. In this study, a comprehensive model of an optically accessible, single-cylinder light-duty diesel engine was developed for engine combustion research. The computational model includes the realistic combustion chamber and ducts geometries. Variable orientation throttles in the intake ducts were modeled to reproduce variable swirl generation. Full induction stroke calculations were run over a portfolio of intake swirl conditions, and validated against extensive measurements featuring global intake swirl ratios, in-cylinder particle image velocimetry (PIV)-measured velocity fields and swirl centers. The results showed good agreement with the experiments, and the model was used to understand the effects of different swirl generation strategies on the in-cylinder flow field. The implications of using simplified sector mesh geometries on the predictiveness of in-cylinder flow and turbulence quantities are described.
机译:计算流体动力学建模作为研究贫油,低温发动机燃烧策略的工具的有效性取决于其捕获影响喷射动力学,混合物制备和点火动力学的局部流体流动特性的能力。在这项研究中,开发了光学可访问的单缸轻型柴油发动机的综合模型,用于发动机燃烧研究。该计算模型包括实际燃烧室和管道的几何形状。对进气道中可变方向的节气门进行建模,以重现可变涡流的产生。整个进气冲程计算是在一系列进气涡流条件下进行的,并针对具有整体进气涡流比,缸内颗粒图像测速(PIV)测量的速度场和涡流中心的广泛测量进行了验证。结果与实验结果吻合良好,该模型用于了解不同旋流产生策略对缸内流场的影响。描述了使用简化的扇形网格几何形状对缸内流动和湍流量的预测性的含义。

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