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Thermal Characterization of a Direct Gain Solar Thermal Engine by Alexander, Reginald A.

Book Information

TitleThermal Characterization of a Direct Gain Solar Thermal Engine
CreatorAlexander, Reginald A., Coleman, Hugh W
Year1999-10-01
PPI300
LanguageEnglish
Mediatypetexts
SubjectSTRESS-STRAIN RELATIONSHIPS, VISCOPLASTICITY, SUBROUTINES, PEEK, NONLINEARITY, METALS, MATRICES (MATHEMATICS), GAS TURBINES, FINITE ELEMENT METHOD, DUCTILITY, CRYSTALLINITY, POLYMER MATRIX COMPOSITES, CONSTITUTIVE EQUATIONS, COMPOSITE MATERIALS, STRAIN RATE, MICROMECHANICS, MECHANICAL PROPERTIES, MATHEMATICAL MODELS, FIBER ORIENTATION, FAILURE, DEFORMATION
Collectionnasa_techdocs
Uploadergwilliam
Identifiernasa_techdoc_20000024853
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Description

A thermal/fluids analysis of a direct gain solar thermal upper stage engine is presented and the results are discussed. The engine was designed and constructed at the NASA Marshall Space Flight Center for ground testing in a facility that can provide about 10 kilowatts of concentrated solar energy to the engine. The engine transfers energy to a coolant (hydrogen) that is heated and accelerated through a nozzle to produce thrust. For the nominal design values and a hydrogen flowrate of 2 lb./hr., the results of the analysis show that the hydrogen temperature in the chamber (nozzle entrance) reaches about 3800 F after 30 minutes of heating and about 3850 F at steady-state (slightly below the desired design temperature of about 4100 F. Sensitivity analyses showed these results to be relatively insensitive to the values used for the absorber surface infrared emissivity and the convection coefficient within the cooling ducts but very sensitive to the hydrogen flowrate. Decreasing the hydrogen flowrate to 1 lb./hr. increases the hydrogen steady-state chamber temperature to about 4700 F, but also of course causes a decrease in thrust.