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Performance assessment of low pressure nuclear thermal propulsionA low pressure nuclear thermal propulsion (LPNTP) system, which takes advantage of hydrogen dissociation/recombination, was proposed as a means of increasing engine specific impulse (Isp). The effect of hydrogen dissociation/recombination on LPNTP Isp is examined. A two-dimensional computer model was used to show that the optimum chamber pressure is approximately 100 psia (at a chamber temperature of 3,000 K), with an Isp approximately 15 s higher than at 1,000 psia. At high chamber temperatures and low chamber pressures, the increase in Isp is due to both lower average molecular weights caused by dissociation and added kinetic energy from monatomic hydrogen recombination. Monatomic hydrogen recombination increases the Isp more then hydrogen dissociation. Variations in the mole fraction of monatomic hydrogen are similar to variations in static pressure along the axial nozzle position. Most recombination occurs close to the nozzle throat. Practical variations in nozzle geometry have minimal impact on recombination. Other models which can simulate a wider range of nozzle designs should be used in the future. The uncertainty of the hydrogen kinetic reaction rates at high temperatures (approximately 3,000 K) affects the accuracy of the analysis and should be verified with simple bench tests.
Document ID
19940017387
Acquisition Source
Legacy CDMS
Document Type
Technical Memorandum (TM)
Authors
Gerrish, H. P., Jr.
(NASA Marshall Space Flight Center Huntsville, AL, United States)
Doughty, G. E.
(NASA Marshall Space Flight Center Huntsville, AL, United States)
Date Acquired
September 6, 2013
Publication Date
December 1, 1993
Subject Category
Spacecraft Propulsion And Power
Report/Patent Number
NAS 1.15:108433
NASA-TM-108433
Report Number: NAS 1.15:108433
Report Number: NASA-TM-108433
Accession Number
94N21860
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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