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Numerical optimization of conical flow waveriders including detailed viscous effectsA family of optimized hypersonic waveriders is generated and studied wherein detailed viscous effects are included within the optimization process itself. This is in contrast to previous optimized waverider work, wherein purely inviscid flow is used to obtain the waverider shapes. For the present waveriders, the undersurface is a streamsurface of an inviscid conical flowfield, the upper surface is a streamsurface of the inviscid flow over a tapered cylinder (calculated by the axisymmetric method of characteristics), and the viscous effects are treated by integral solutions of the boundary layer equations. Transition from laminar to turbulent flow is included within the viscous calculations. The optimization is carried out using a nonlinear simplex method. The resulting family of viscous hypersonic waveriders yields predicted high values of lift/drag, high enough to break the L/D barrier based on experience with other hypersonic configurations. Moreover, the numerical optimization process for the viscous waveriders results in distinctly different shapes compared to previous work with inviscid-designed waveriders. Also, the fine details of the viscous solution, such as how the shear stress is distributed over the surface, and the location of transition, are crucial to the details of the resulting waverider geometry. Finally, the moment coefficient variations and heat transfer distributions associated with the viscous optimized waveriders are studied.
Document ID
19880003863
Acquisition Source
Legacy CDMS
Document Type
Conference Paper
Authors
Bowcutt, Kevin G.
(Maryland Univ. College Park, MD, United States)
Anderson, John D., Jr.
(Maryland Univ. College Park, MD, United States)
Capriotti, Diego
(Maryland Univ. College Park, MD, United States)
Date Acquired
September 5, 2013
Publication Date
November 1, 1987
Publication Information
Publication: AGARD, Aerodynamics of Hypersonic Lifting Vehicles
Subject Category
Aircraft Design, Testing And Performance
Accession Number
88N13245
Distribution Limits
Public
Copyright
Other
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