Literature DB >> 33123700

Using parabolized stability equations to model boundary-layer transition in direct and large-eddy simulations.

A Lozano-Durán1, M J P Hack1, P Moin2.   

Abstract

We examine the potential of the nonlinear parabolized stability equations (PSE) to provide an accurate yet computationally efficient treatment of the growth of disturbances in H-type transition to turbulence. The PSE capture the nonlinear interactions that eventually induce breakdown to turbulence, and can as such identify the onset of transition without relying on empirical correlations. Since the local PSE solution at the onset of transition is a close approximation of the Navier-Stokes equations, it provides a natural inflow condition for direct numerical simulations (DNS) and large-eddy simulations (LES) by avoiding nonphysical transients. We show that a combined PSE/DNS approach, where the pre-transitional region is modeled by the PSE, can reproduce the skin-friction distribution and downstream turbulent statistics from a DNS of the full domain.

Entities:  

Year:  2018        PMID: 33123700      PMCID: PMC7592697          DOI: 10.2514/6.2018-3698

Source DB:  PubMed          Journal:  48th AIAA Fluid Dyn Conf 2018 (2018)


  4 in total

1.  Modeling boundary-layer transition in direct and large-eddy simulations using parabolized stability equations.

Authors:  A Lozano-Durán; M J P Hack; P Moin
Journal:  Phys Rev Fluids       Date:  2018-02       Impact factor: 2.537

2.  Turbulence intensities in large-eddy simulation of wall-bounded flows.

Authors:  H J Bae; A Lozano-Durán; S T Bose; P Moin
Journal:  Phys Rev Fluids       Date:  2018-01       Impact factor: 2.537

3.  Convergence of large-eddy simulation in the outer region of wall-bounded turbulence.

Authors:  A Lozano-Durán; H J Bae
Journal:  Annu Res Br       Date:  2017-01

4.  Dynamic wall models for the slip boundary condition.

Authors:  A Lozano-Durán; H J Bae; S T Bose; P Moin
Journal:  Annu Res Br       Date:  2017-01
  4 in total

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