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Computational fluid dynamics modeling of laminar, transitional, and turbulent flows with sensitivity to streamline curvature and rotational effects.

机译:层流,过渡流和湍流的计算流体动力学建模,对流线曲率和旋转效应敏感。

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摘要

Modeling of complex flows involving the combined effects of flow transition and streamline curvature using two advanced turbulence models, one in the Reynolds-averaged Navier-Stokes (RANS) category and the other in the hybrid RANS-Large eddy simulation (LES) category is considered in this research effort. In the first part of the research, a new scalar eddy-viscosity model (EVM) is proposed, designed to exhibit physically correct responses to flow transition, streamline curvature, and system rotation effects. The four equation model developed herein is a curvature-sensitized version of a commercially available three-equation transition-sensitive model. The physical effects of rotation and curvature (RC) enter the model through the added transport equation, analogous to a transverse turbulent velocity scale. The eddy-viscosity has been redefined such that the proposed model is constrained to reduce to the original transition-sensitive model definition in nonrotating flows or in regions with negligible RC effects. In the second part of the research, the developed four-equation model is combined with a LES technique using a new hybrid modeling framework, dynamic hybrid RANS-LES. The new framework is highly generalized, allowing coupling of any desired LES model with any given RANS model and addresses several deficiencies inherent in most current hybrid models. In the present research effort, the DHRL model comprises of the proposed four-equation model for RANS component and the MILES scheme for LES component.;Both the models were implemented into a commercial computational fluid dynamics (CFD) solver and tested on a number of engineering and generic flow problems. Results from both the RANS and hybrid models show successful resolution of the combined effects of transition and curvature with reasonable engineering accuracy, and for only a small increase in computational cost. In addition, results from the hybrid model indicate significant levels of turbulent fluctuations in the flowfield, improved accuracy compared to RANS models predictions, and are obtained at a significant reduction of computational cost compared to full LES models. The results suggest that the advanced turbulence modeling techniques presented in this research effort have potential as practical tools for solving low/high Re flows over blunt/curved bodies for the prediction of transition and RC effects.
机译:考虑使用两种高级湍流模型对复杂的流进行建模,其中涉及流过渡和流线曲率的综合影响,一种在雷诺平均Navier-Stokes(RANS)类别中,另一种在混合RANS-Large涡模拟(LES)类别中在这项研究工作中。在研究的第一部分中,提出了一种新的标量涡流粘度模型(EVM),该模型旨在显示对流变,流线曲率和系统旋转效应的物理正确响应。本文开发的四方程模型是市场上可获得的三方程过渡敏感模型的曲率敏感版本。旋转和曲率(RC)的物理效应通过添加的输运方程进入模型,类似于横向湍流速度标度。对涡流粘度进行了重新定义,以使所提出的模型在非旋转流动或具有可忽略的RC效应的区域中被约束为减小到原始的过渡敏感模型定义。在研究的第二部分中,使用新的混合建模框架动态混合RANS-LES将开发的四方程模型与LES技术相结合。新框架具有高度通用性,可以将任何所需的LES模型与任何给定的RANS模型耦合,并解决了大多数当前混合模型固有的缺陷。在当前的研究工作中,DHRL模型包括针对RANS组件提出的四方程模型和针对LES组件提出的MILES方案;两种模型均已实现为商用计算流体动力学(CFD)求解器并在许多工程和通用流程问题。 RANS和混合模型的结果都显示出成功解决了过渡和曲率的组合影响,并具有合理的工程精度,并且计算成本仅增加了一点。此外,混合模型的结果表明流场中湍流波动的水平很高,与RANS模型的预测相比,其准确性得到了提高,并且与完整LES模型相比,在计算成本上得到了显着降低。结果表明,本研究成果中提出的先进湍流建模技术具有潜在的实用价值,可用于解决钝化/弯曲物体上的低/高Re流动,以预测转变和RC效应。

著录项

  • 作者

    Chitta, Varun.;

  • 作者单位

    Mississippi State University.;

  • 授予单位 Mississippi State University.;
  • 学科 Mechanical engineering.;Aerospace engineering.
  • 学位 Ph.D.
  • 年度 2016
  • 页码 185 p.
  • 总页数 185
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

  • 入库时间 2022-08-17 11:47:09

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