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portada Graphite Ablation and Thermal Response Simulation Under ARC-Jet Flow Conditions (in English)
Type
Physical Book
Publisher
Language
Inglés
Pages
22
Format
Paperback
Dimensions
24.6 x 18.9 x 0.1 cm
Weight
0.06 kg.
ISBN13
9781289165598

Graphite Ablation and Thermal Response Simulation Under ARC-Jet Flow Conditions (in English)

Y. K. Chen (Author) · Nasa Technical Reports Server (Ntrs) (Author) · Bibliogov · Paperback

Graphite Ablation and Thermal Response Simulation Under ARC-Jet Flow Conditions (in English) - Chen, Y. K. ; Nasa Technical Reports Server (Ntrs) ; Et Al

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Synopsis "Graphite Ablation and Thermal Response Simulation Under ARC-Jet Flow Conditions (in English)"

The Two-dimensional Implicit Thermal Response and Ablation program, TITAN, was developed and integrated with a Navier-Stokes solver, GIANTS, for multidimensional ablation and shape change simulation of thermal protection systems in hypersonic flow environments. The governing equations in both codes are demoralized using the same finite-volume approximation with a general body-fitted coordinate system. Time-dependent solutions are achieved by an implicit time marching technique using Gauess-Siedel line relaxation with alternating sweeps. As the first part of a code validation study, this paper compares TITAN-GIANTS predictions with thermal response and recession data obtained from arc-jet tests recently conducted in the Interaction Heating Facility (IHF) at NASA Ames Research Center. The test models are graphite sphere-cones. Graphite was selected as a test material to minimize the uncertainties from material properties. Recession and thermal response data were obtained from two separate arc-jet test series. The first series was at a heat flux where graphite ablation is mainly due to sublimation, and the second series was at a relatively low heat flux where recession is the result of diffusion-controlled oxidation. Ablation and thermal response solutions for both sets of conditions, as calculated by TITAN-GIANTS, are presented and discussed in detail. Predicted shape change and temperature histories generally agree well with the data obtained from the arc-jet tests.

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