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Second Order Model for Strongly Sheared Compressible Turbulence

Publish Year: 1393
Type: Journal paper
Language: English
View: 279

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Document National Code:

JR_JAFM-8-1_012

Index date: 25 January 2022

Second Order Model for Strongly Sheared Compressible Turbulence abstract

In this paper, we propose a model designed to describe a strongly sheared compressible homogeneous turbulent flows. Such flows are far from equilibrium and are well represented by the A3 and A4 cases of the DNS of Sarkar. Speziale and Xu developed a relaxation model in incompressible turbulence able to take into account significant departures from equilibrium. In a previous paper, Radhia et al. proposed a relaxation model similar to that of Speziale and Xu .This model is based on an algebraic representation of the Reynolds stress tensor, much simpler than that of Speziale and Xu and it gave a good result for rapid axisymetric contraction. In this work, we propose to extend the Radhia et al’s. model to compressible homogenous turbulence. This model is based on the pressure-strain model of Launder et al., where we incorporate turbulent Mach number in order to take into account compressibility effects. To assess this model, two numerical simulations were performed which are similar to the cases A3 and A4 of the DNS of Sarkar.

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Second Order Model for Strongly Sheared Compressible Turbulence authors

H. Marzougui

Départemnt de Physique, Faculté des sinces de tunis campus universitaire El Manar ۱۰۶۰, Tunis, Tunisie

F. Radhia

Départemnt de Physique, Faculté des sinces de tunis campus universitaire El Manar ۱۰۶۰, Tunis, Tunisie

Z. Jihene

Départemnt de Physique, Faculté des sinces de tunis campus universitaire El Manar ۱۰۶۰, Tunis, Tunisie

T. Lili

Départemnt de Physique, Faculté des sinces de tunis campus universitaire El Manar ۱۰۶۰, Tunis, Tunisie