“…The Murman-Cole algorithm ''switches" the differencing type from central to upwind or vice versa as dictated by the local Mach number, maintaining stable operation for transonic flows-even those with strong shocks. At Ames, this idea was extended to axisymmetric bodies by Bailey [7] and Krupp and Murman [8], and to three-dimensional applications by Bailey and Steger [9] and Ballhaus and Bailey [10]. In all these applications, the nonconservative form of the TSD equation was used.…”
“…The Murman-Cole algorithm ''switches" the differencing type from central to upwind or vice versa as dictated by the local Mach number, maintaining stable operation for transonic flows-even those with strong shocks. At Ames, this idea was extended to axisymmetric bodies by Bailey [7] and Krupp and Murman [8], and to three-dimensional applications by Bailey and Steger [9] and Ballhaus and Bailey [10]. In all these applications, the nonconservative form of the TSD equation was used.…”
We will begin our discussion with a summary of CFD technology developed at Ames in Section 2 that includes major CFD algorithm and grid generation advances, summary of code development and physical modeling advances made at Ames. Application milestones are illustrated via examples derived from supporting aeronautics and space
“…These data are compared with the Euler code prediction in Fig. lOb The calculation of wing characteristics at transonic speeds for both steady and unsteady flow, as exemplified by the work of Ballhaus, Bailey, and Frick, 56 has been much advanced in recent years through high-speed computers. While results for low angles of attack have been gratifying, the efforts in this area are still in an early stage of development for high angles of attack.…”
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