Transitional Delayed Detached-Eddy Simulation for a Compressor Cascade: A Critical Assessment

Author:

Möller Felix M.1ORCID,Tucker Paul G.2,Wang Zhong-Nan3ORCID,Morsbach Christian1ORCID

Affiliation:

1. German Aerospace Center (DLR), 51147 Cologne, Germany

2. University of Cambridge, Cambridge, England CB2 1PZ, United Kingdom

3. University of Birmingham, Birmingham, England B15 2TT, United Kingdom

Abstract

The accurate prediction of transitional flows is crucial for the industrial turbomachinery design process. While a Reynolds-averaged Navier–Stokes approach inherently brings conceptual weaknesses, large-eddy simulation will still be too expensive in the near future to affordably analyze complex turbomachinery configurations. We introduce a transitional delayed detached-eddy simulation (DDES) model, namely, DDES-[Formula: see text], and analyze the numerical results of the compressor cascade V103. A comparison with the fully turbulent DDES approach emphasizes the benefit of coupling DDES with a transition model. Issues with undesired decay of modeled turbulent kinetic energy in the freestream are improved when running DDES-[Formula: see text] in combination with the synthetic turbulence generator method. The best results for DDES-[Formula: see text] are obtained when changing the inviscid flux solver blending from dynamic to constant mode. We show that DDES-[Formula: see text] is capable of predicting the transitional flow through a linear compressor cascade, but we also critically discuss the general concept and results.

Publisher

American Institute of Aeronautics and Astronautics (AIAA)

Subject

Space and Planetary Science,Mechanical Engineering,Fuel Technology,Aerospace Engineering

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