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Development of a CFD-compatible transition model based on linear stability theory.

机译:基于线性稳定性理论的CFD兼容过渡模型的开发。

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摘要

A new laminar-turbulent transition model for low-turbulence external aerodynamic applications is presented that incorporates linear stability theory in a manner compatible with modern computational fluid dynamics solvers. The model uses a new transport equation that describes the growth of the maximum Tollmien-Schlichting instability amplitude in the presence of a boundary layer. To avoid the need for integration paths and non-local operations, a locally defined non-dimensional pressure-gradient parameter is used that serves as an estimator of the integral boundary-layer properties. The model has been implemented into the OVERFLOW 2.2f solver and interacts with the Spalart-Allmaras and Menter SST eddy-viscosity turbulence models. Comparisons of predictions using the new transition model with high-quality wind-tunnel measurements of airfoil section characteristics validate the predictive qualities of the model. Predictions for three-dimensional aircraft and wing geometries show the correct qualitative behavior even though limited experimental data are available. These cases also demonstrate that the model is well-behaved about general aeronautical configurations. These cases confirm that the new transition model is an improvement over the current state of the art in computational fluid dynamics transition modeling by providing more accurate solutions at approximately half the added computational expense.
机译:提出了一种用于低湍流外部空气动力学应用的新型层流湍流过渡模型,该模型以与现代计算流体动力学求解器兼容的方式结合了线性稳定性理论。该模型使用一个新的输运方程,该方程描述了存在边界层时最大Tollmien-Schlichting不稳定性幅度的增长。为了避免需要积分路径和非局部操作,使用局部定义的无量纲压力梯度参数作为整体边界层属性的估算器。该模型已在OVERFLOW 2.2f解算器中实现,并与Spalart-Allmaras和Menter SST涡粘性湍流模型相互作用。使用新的过渡模型与翼型截面特征的高质量风洞测量进行的预测比较,验证了模型的预测质量。三维飞机和机翼几何形状的预测显示了正确的定性行为,即使可获得的实验数据有限。这些案例还表明,该模型在一般航空构造方面表现良好。这些情况证实,新的过渡模型通过以大约一半的计算费用提供更精确的解决方案,是对计算流体动力学过渡建模中当前技术水平的改进​​。

著录项

  • 作者

    Coder, James G.;

  • 作者单位

    The Pennsylvania State University.;

  • 授予单位 The Pennsylvania State University.;
  • 学科 Aerospace engineering.
  • 学位 Ph.D.
  • 年度 2014
  • 页码 147 p.
  • 总页数 147
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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