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A numerical solution of the Navier-Stokes equations for supercritical fluid thermodynamic analysisAn explicit numerical solution of the compressible Navier-Stokes equations is applied to the thermodynamic analysis of supercritical oxygen in the Apollo cryogenic storage system. The wave character is retained in the conservation equations which are written in the basic fluid variables for a two-dimensional Cartesian coordinate system. Control-volume cells are employed to simplify imposition of boundary conditions and to ensure strict observance of local and global conservation principles. Non-linear real-gas thermodynamic properties responsible for the pressure collapse phenomonon in supercritical fluids are represented by tabular and empirical functions relating pressure and temperature to density and internal energy. Wall boundary conditions are adjusted at one cell face to emit a prescribed mass flowrate. Scaling principles are invoked to achieve acceptable computer execution times for very low Mach number convection problems. Detailed simulations of thermal stratification and fluid mixing occurring under low acceleration in the Apollo 12 supercritical oxygen tank are presented which model the pressure decay associated with de-stratification induced by an ordinary vehicle maneuver and heater cycle operation.
Document ID
19720016141
Acquisition Source
Legacy CDMS
Document Type
Other
Authors
Heinmiller, P. J.
(TRW Systems Group Houston, TX, United States)
Date Acquired
August 6, 2013
Publication Date
May 1, 1971
Publication Information
Publication: NASA. Manned Spacecraft Center MSCCryog. Symp. Papers
Subject Category
Physics, General
Accession Number
72N23791
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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