NASA NTRS · 20110013648
A Boundary Condition Relaxation Algorithm for Strongly Coupled, Ablating Flows Including Shape Change
Abstract
Implementations of a model for equilibrium, steady-state ablation boundary conditions are tested for the purpose of providing strong coupling with a hypersonic flow solver. The objective is to remove correction factors or film cooling approximations that are usually applied in coupled implementations of the flow solver and the ablation response. Three test cases are considered - the IRV-2, the Galileo probe, and a notional slender, blunted cone launched at 10 km/s from the Earth's surface. A successive substitution is employed and the order of succession is varied as a function of surface temperature to obtain converged solutions. The implementation is tested on a specified trajectory for the IRV-2 to compute shape change under the approximation of steady-state ablation. Issues associated with stability of the shape change algorithm caused by explicit time step limits are also discussed.
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Gnoffo, Peter A., Johnston, Christopher O.. 2011-06-27. A Boundary Condition Relaxation Algorithm for Strongly Coupled, Ablating Flows Including Shape Change. https://ntrs.nasa.gov/citations/20110013648
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