Efficient implicit LES method for the simulation of turbulent cavitating flows

Journal Article (2016)
Author(s)

C.P. Egerer (Technische Universität München)

SJ Schmidt (Technische Universität München)

S. Hickel (Technische Universität München, TU Delft - Aerodynamics)

NA Adams (Technische Universität München)

Research Group
Aerodynamics
DOI related publication
https://doi.org/10.1016/j.jcp.2016.04.021
More Info
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Publication Year
2016
Language
English
Research Group
Aerodynamics
Volume number
316
Pages (from-to)
453-469

Abstract

We present a numerical method for efficient large-eddy simulation of compressible liquid flows with cavitation based on an implicit subgrid-scale model. Phase change and subgrid-scale interface structures are modeled by a homogeneous mixture model that assumes local thermodynamic equilibrium. Unlike previous approaches, emphasis is placed on operating on a small stencil (at most four cells). The truncation error of the discretization is designed to function as a physically consistent subgrid-scale model for turbulence. We formulate a sensor functional that detects shock waves or pseudo-phase boundaries within the homogeneous mixture model for localizing numerical dissipation. In smooth regions of the flow field, a formally non-dissipative central discretization scheme is used in combination with a regularization term to model the effect of unresolved subgrid scales. The new method is validated by computing standard single- and two-phase test-cases. Comparison of results for a turbulent cavitating mixing layer obtained with the new method demonstrates its suitability for the target applications.

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