球面周围三维湍流分离的非结构网格计算研究

S. Rhee, T. Hino
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引用次数: 20

摘要

采用非结构网格CFD方法研究了绕6∶1长形球体的层流和湍流分离流动。求解了不可压缩粘性流的RANS方程。在连续方程中引入人工可压缩性,在非结构网格上采用胞心有限体积法进行空间离散。雷诺应力采用Spalart-Allmaras单方程湍流模型。将计算结果与实验数据进行了比较,验证了三维湍流分离的物理性质。考虑了一定范围的雷诺数和迎角,并对其影响进行了研究。对Spalart-Allmaras模型进行了改进,提高了性能,并考察了湍流模型对旋涡结构的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Computational Investigation of 3D Turbulent Flow Separation around a Spheroid using an Unstructured Grid Method
Laminar and turbulent separated flows around a 6 : 1 prolate spheroid are investigated using an unstructured grid CFD method. The RANS equations are solved for incompressible viscous flows. The artificial compressibility is introduced in the continuity equation and cell-centered finite-volume method on unstructured grid is used for spatial discretization. The Spalart-Allmaras one-equation turbulence model is employed for the Reynolds stress. The computational results are compared with experimental data and the physics of three-dimensional turbulent flow separation is confirmed. A range of Reynolds numbers and angles of attack is considered and the effects are investigated. The modification of the Spalart-Allmaras model is added to improve the performance and examine the effects of turbulence model on the vortical flow structure.
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