Toward Supersonic Retropropulsion CFD Validation
Author(s) -
William L. Kleb,
Daniel G. Schauerhamer,
Kerry Trumble,
Emre Sozer,
Michael Barnhardt,
Jan-Reneé Carlson,
Karl T. Edquist
Publication year - 2011
Publication title -
42nd aiaa thermophysics conference
Language(s) - English
Resource type - Conference proceedings
DOI - 10.2514/6.2011-3490
Subject(s) - computational fluid dynamics , supersonic speed , computer science , aerospace engineering , engineering
This paper begins the process of verifying and validating computational fluid dynamics (CFD) codes for supersonic retropropulsive flows. Four CFD codes (DPLR, FUN3D, OVERFLOW, and US3D) are used to perform various numerical and physical modeling studies toward the goal of comparing predictions with a wind tunnel experiment specifically designed to support CFD validation. Numerical studies run the gamut in rigor from code-to-code comparisons to observed order-of-accuracy tests. Results indicate that this complex flowfield, involving time-dependent shocks and vortex shedding, design order of accuracy is not clearly evident. Also explored is the extent of physical modeling necessary to predict the salient flowfield features found in high-speed Schlieren images and surface pressure measurements taken during the validation experiment. Physical modeling studies include geometric items such as wind tunnel wall and sting mount interference, as well as turbulence modeling that ranges from a RANS (Reynolds-Averaged Navier-Stokes) 2-equation model to DES (Detached Eddy Simulation) models. These studies indicate that tunnel wall interference is minimal for the cases investigated; model mounting hardware effects are confined to the aft end of the model; and sparse grid resolution and turbulence modeling can damp or entirely dissipate the unsteadiness of this self-excited flow.
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