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NLS base heating CFD analysisConcerns raised over possible base heating effects on the National Launch System (NLS) 1.5 stage reference vehicle resulted in the use of CFD as a predictive analysis tool. The objective established was to obtain good engineering solutions to describe the base region flowfields at 10,000 ft and 50,000 ft altitudes. The Rockwell USA CFD code was employed with a zero-equation turbulence model and a four species, 1 step chemical kinetics package. Three solutions were generated for the specified altitudes on coarse and fine grids. CFD results show the base region flowfields to be highly three dimensional in character. At the 10,000 ft altitude, plumes contract soon after exiting the nozzles and do not interact with each other. No mechanism was identified for driving hot gas back into the base region and no significant amounts of hydrogen or water were found in the base region. Consequently, surface temperatures were all near the ambient level. At 50,000 ft, the nozzle exhaust plumes begin to interact, particularly those of the two inboard engines which are closer together. A small amount of hot gas is recirculated between the inboard nozzles near the nozzle exit plane. As a result, base region surface temperatures are slightly elevated, but still remain well within the design guideline of 1000 R.
Document ID
19950017012
Acquisition Source
Legacy CDMS
Document Type
Conference Paper
Authors
Ascoli, Edward P.
(Rockwell International Corp. Canoga Park, CA, United States)
Heiba, Adel H.
(Rockwell International Corp. Canoga Park, CA, United States)
Hsu, Yann-Fu
(Rockwell International Corp. Canoga Park, CA, United States)
Lagnado, Ronald R.
(Rockwell International Corp. Canoga Park, CA, United States)
Lynch, Edward D.
(Rockwell International Corp. Canoga Park, CA, United States)
Date Acquired
September 6, 2013
Publication Date
July 1, 1993
Publication Information
Publication: NASA. Marshall Space Flight Center, Eleventh Workshop for Computational Fluid Dynamic Applications in Rocket Propulsion
Subject Category
Fluid Mechanics And Heat Transfer
Accession Number
95N23432
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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