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Control theory based airfoil design for potential flow and a finite volume discretization
Author(s) -
J. L. Reuter,
A. Jameson
Publication year - 1994
Publication title -
32nd aerospace sciences meeting and exhibit
Language(s) - English
Resource type - Conference proceedings
DOI - 10.2514/6.1994-499
Subject(s) - airfoil , finite volume method , discretization , control volume , flow (mathematics) , computer science , flow control (data) , volume (thermodynamics) , mechanics , control theory (sociology) , control (management) , mathematics , physics , mathematical analysis , telecommunications , thermodynamics , artificial intelligence
This paper describes the implementation of optimization techniques based on control theory for airfoil design. In previous studies it was shown that control theory could be used to devise an effective optimization procedure for two-dimensional profiles in which the shape is determined by a conformal transformation from a unit circle, and the control is the mapping function. The goal of our present work is to develop a method which does not depend on conformal mapping, so that it can be extended to treat three-dimensional problems. Therefore, we have developed a method which can address arbitrary geometric shapes through the use of a finite volume method to discretize the potential flow equation. Here the control law serves to provide computationally inexpensive gradient information to a standard numerical optimization method. Results are presented, where both target speed distributions and minimum drag are used as objective functions.

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