Some advanced concepts in discrete aerodynamic sensitivity analysis

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[1] Taylor III, Arthur C.
[2] Green, Lawrence L.
[3] Newman, Perry A.
[4] Putko, Michele M.
来源
Taylor, A.C. | 1600年 / American Inst. Aeronautics and Astronautics Inc.卷 / 41期
关键词
Aerodynamics - Airfoils - Calculations - Computational fluid dynamics - Computer aided software engineering - Computer simulation - Drag - Iterative methods - Lift - Sensitivity analysis - Two dimensional;
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摘要
An efficient incremental-iterative approach for differentiating advanced flow codes is successfully demonstrated on a two-dimensional inviscid model problem. The method employs the reverse-mode capability of the automatic-differentiation software tool ADIFOR 3.0 and is proven to yield accurate first-order aerodynamic sensitivity derivatives. A substantial reduction in CPU time and computer memory is demonstrated in comparison with results from a straightforward, black-box reverse-mode application of ADIFOR 3.0 to the same flow code. An ADIFOR-assisted procedure for accurate second-order aerodynamic sensitivity derivatives is successfully verified on an inviscid transonic lifting airfoil example problem. The method requires that first-order derivatives are calculated first using both the forward (direct) and reverse (adjoint) procedures; then, a very efficient noniterative calculation of all second-order derivatives can be accomplished. Accurate second derivatives (i.e., the complete Hessian matrices) of lift, wave drag, and pitching-moment coefficients are calculated with respect to geometric shape, angle of attack, and freestream Mach number.
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