Thermal analysis and design of multi-layer insulation for re-entry aerodynamic heating
Author(s) -
Kamran Daryabeigi
Publication year - 2001
Publication title -
nasa sti repository (national aeronautics and space administration)
Language(s) - English
Resource type - Conference proceedings
DOI - 10.2514/6.2001-2834
Subject(s) - aerodynamics , thermal , layer (electronics) , thermal insulation , aerodynamic heating , materials science , computer science , aerospace engineering , composite material , engineering , mechanics , heat transfer , physics , meteorology
The combined radiation/conduction heat transfer in high-temperature multi-layer insulations was modeled using a finite volume numerical model. The numerical model was validated by comparison with steady-state effective thermal conductivity measurements, and by transient thermal tests simulating re-entry aerodynamic heating conditions. A design of experiments technique was used to investigate optimum design of multi-layer insulations for re-entry aerodynamic heating. It was found that use of 2 mm foil spacing and locating the foils near the hot boundary with the top foil 2 mm away from the hot boundary resulted in the most effective insulation design. A 76.2 mm thick multi-layer insulation using 1, 4, or 16 foils resulted in 2.9, 7.2 or 22.2 percent mass per unit area savings compared to a fibrous insulation sample at the same thickness, respectively.
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