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A multiple-scale model for compressible turbulent flows
Author(s) -
William W. Liou,
Tsan-Hsing Shih,
Beverly Duncan
Publication year - 1995
Publication title -
physics of fluids
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.188
H-Index - 180
eISSN - 1089-7666
pISSN - 1070-6631
DOI - 10.1063/1.868588
Subject(s) - physics , turbulence , turbulence kinetic energy , mechanics , energy cascade , eddy , taylor microscale , kolmogorov microscales , turbulence modeling , dissipation , kinetic energy , k epsilon turbulence model , large eddy simulation , compressibility , scale (ratio) , k omega turbulence model , classical mechanics , statistical physics , thermodynamics , quantum mechanics
A multiple‐scale model for compressible turbulent flows is proposed in this paper. It is assumed that turbulent eddy shocklets are formed primarily by large energetic eddies. The extra straining of the large eddy, due to their interactions with shocklets, enhances the energy cascade to smaller eddies. Model transport equations are developed for the turbulent kinetic energies and the energy transfer rates of the different scale. The turbulent eddy viscosity is determined by the total turbulent kinetic energy and the rate of energy transfer from the large scale to the small scale, which is different from the energy dissipation rate. The model coefficients in the modeled turbulent transport equations depend on the ratio of the turbulent kinetic energy of the large scale to that of the small scale, which renders the model more adaptive to the characteristics of individual flow. The model is tested against compressible free shear layers, boundary layers, and a compression ramp flow. The results agree satisfact...

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