基于RANS的紊流模型在全紊流通道上的性能研究

Y. K. İlter, U. Ünal
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摘要

全湍流通道流动是研究平板上边界层流动的一种常用而有效的方法。虽然紊流具有非定常性质,但通道流动的平均流动特性可以用定常Reynolds平均Navier-Stokes (RANS)模拟来预测。本研究的目的是评估基于RANS分解的湍流模型在涉及光滑表面的通道流动中的预测能力。该研究涵盖了基于雷诺应力的二阶矩湍流闭合模型和最优选的线性涡流粘度模型的应用,以确定平均流动特性。湍流特性与从公开文献中获得的DNS数据进行了比较。此外,还对雷诺应力湍流模型中出现的系数进行了迭代微调。本文提出了两个不同摩擦雷诺数(Reτ)为180和590的雷诺数-应力模型的调整版本。这些研究将为进一步计算更高雷诺数范围和不同通道截面的通道流动奠定基础。它们也将作为未来实验和计算研究的初始步骤,这些研究将集中在了解雷诺数(基于半通道高度和平均体速度)高达2.105的凹痕表面上的流动机制。
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Understanding the Capability of RANS Based Turbulence Models on Fully Turbulent Channel Flow
Fully turbulent channel flow is a very common and effective way to investigate the boundary layer flow over the flat plates. Mean flow characteristics of the channel flow can be predicted using steady Reynolds Averaged Navier-Stokes (RANS) simulations although the turbulent flow has an unsteady nature. The objective of the present study is to evaluate the predictive capability of the turbulence models, which are based on RANS decomposition, in channel flow involving smooth surfaces. The study covers the application of the Reynolds-stress based second-moment turbulence closure model and the most preferred linear eddy viscosity models to determine the mean flow characteristics. The turbulence properties were compared with the DNS data obtained from the open literature. Also, an iterative study was performed for the fine-tuning of the coefficients appearing in the Reynolds-stress turbulence model. A tuned version of the Reynolds-stress model for two different frictional Reynolds numbers (Reτ) of 180 and 590 is presented. These studies will form a basis for further computations on the channel flow with a higher Reynolds number range and different channel sections. They will also serve as the initial steps for the future experimental and computational studies that will focus on the understanding of the flow mechanism over the dimpled surfaces at Reynolds numbers (based on half channel height and mean bulk velocity) up to 2.105.
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