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Dynamic interactions between hypersonic vehicle aerodynamics and propulsion system performanceDescribed here is the development of a flexible simulation model for scramjet hypersonic propulsion systems. The primary goal is determination of sensitivity of the thrust vector and other system parameters to angle of attack changes of the vehicle. Such information is crucial in design and analysis of control system performance for hypersonic vehicles. The code is also intended to be a key element in carrying out dynamic interaction studies involving the influence of vehicle vibrations on propulsion system/control system coupling and flight stability. Simple models are employed to represent the various processes comprising the propulsion system. A method of characteristics (MOC) approach is used to solve the forebody and external nozzle flow fields. This results in a very fast computational algorithm capable of carrying out the vast number of simulation computations needed in guidance, stability, and control studies. The three-dimensional fore- and aft body (nozzle) geometry is characterized by the centerline profiles as represented by a series of coordinate points and body cross-section curvature. The engine module geometry is represented by an adjustable vertical grid to accommodate variations of the field parameters throughout the inlet and combustor. The scramjet inlet is modeled as a two-dimensional supersonic flow containing adjustable sidewall wedges and multiple fuel injection struts. The inlet geometry including the sidewall wedge angles, the number of injection struts, their sweepback relative to the vehicle reference line, and strut cross-section are user selectable. Combustion is currently represented by a Rayleigh line calculation including corrections for variable gas properties; improved models are being developed for this important element of the propulsion flow field. The program generates (1) variation of thrust magnitude and direction with angle of attack, (2) pitching moment and line of action of the thrust vector, (3) pressure and temperature distributions throughout the system, and (4) performance parameters such as thrust coefficient, specific impulse, mass flow rates, and equivalence ratio. Preliminary results are in good agreement with available performance data for systems resembling the NASP vehicle configuration.
Document ID
19920024060
Acquisition Source
Legacy CDMS
Document Type
Contractor Report (CR)
Authors
Flandro, G. A.
(Tennessee Univ. Space Inst. Tullahoma, TN, United States)
Roach, R. L.
(Georgia Inst. of Tech. Atlanta., United States)
Buschek, H.
(Georgia Inst. of Tech. Atlanta., United States)
Date Acquired
September 6, 2013
Publication Date
July 1, 1992
Subject Category
Aerodynamics
Report/Patent Number
NAS 1.26:190638
NASA-CR-190638
Report Number: NAS 1.26:190638
Report Number: NASA-CR-190638
Accession Number
92N33304
Funding Number(s)
CONTRACT_GRANT: NAG1-1205
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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