Multidimensional Testing of Thermal Protection Materials in the Arcjet Test Facility
Author(s) -
Parul Agrawal,
Donald T. Ellerby,
Mathew Switzer,
Thomas H. Squire
Publication year - 2010
Publication title -
9th aiaa/asme joint thermophysics and heat transfer conference
Language(s) - English
Resource type - Conference proceedings
DOI - 10.2514/6.2010-4664
Subject(s) - arcjet rocket , aerodynamic heating , space shuttle thermal protection system , materials science , thermal , aerospace engineering , propellant , nuclear engineering , anisotropy , composite material , mechanical engineering , heat transfer , thermal protection , engineering , mechanics , optics , thermodynamics , physics
Many thermal protection system materials used for spacecraft heatshields have anisotropic thermal properties, causing them to display significantly different thermal characteristics in different directions, when subjected to a heating environment during flight or arcjet tests. The anisotropic effects are enhanced in the presence of sidewall heating. This paper investigates the effects of anisotropic thermal properties of thermal protection materials coupled with sidewall heating in the arcjet environment. Phenolic Impregnated Carbon Ablator (PICA) and LI-2200 materials (the insulation material of Shuttle tiles) were used for this study. First, conduction-based thermal response simulations were carried out, using the Marc.Mentat finite element solver, to study the effects of sidewall heating on PICA arcjet coupons. The simulation showed that sidewall heating plays a significant role in thermal response of these models. Arcjet tests at the Aerodynamic Heating Facility (AHF) at NASA Ames Research Center were performed later on instrumented coupons to obtain temperature history at sidewall and various radial locations. The details of instrumentation and experimental technique are the prime focus of this paper. The results obtained from testing confirmed that sidewall heating plays a significant role in thermal response of these models. The test results were later used to validate the two-dimensional ablation, thermal response, and sizing program, TITAN. The test data and model predictions were found to be in excellent agreement.
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