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Constrained Multipoint Aerodynamic Shape Optimization Using an Adjoint Formulation and Parallel ComputersAn aerodynamic shape optimization method that treats the design of complex aircraft configurations subject to high fidelity computational fluid dynamics (CFD), geometric constraints and multiple design points is described. The design process will be greatly accelerated through the use of both control theory and distributed memory computer architectures. Control theory is employed to derive the adjoint differential equations whose solution allows for the evaluation of design gradient information at a fraction of the computational cost required by previous design methods. The resulting problem is implemented on parallel distributed memory architectures using a domain decomposition approach, an optimized communication schedule, and the MPI (Message Passing Interface) standard for portability and efficiency. The final result achieves very rapid aerodynamic design based on a higher order CFD method. In order to facilitate the integration of these high fidelity CFD approaches into future multi-disciplinary optimization (NW) applications, new methods must be developed which are capable of simultaneously addressing complex geometries, multiple objective functions, and geometric design constraints. In our earlier studies, we coupled the adjoint based design formulations with unconstrained optimization algorithms and showed that the approach was effective for the aerodynamic design of airfoils, wings, wing-bodies, and complex aircraft configurations. In many of the results presented in these earlier works, geometric constraints were satisfied either by a projection into feasible space or by posing the design space parameterization such that it automatically satisfied constraints. Furthermore, with the exception of reference 9 where the second author initially explored the use of multipoint design in conjunction with adjoint formulations, our earlier works have focused on single point design efforts. Here we demonstrate that the same methodology may be extended to treat complete configuration designs subject to multiple design points and geometric constraints. Examples are presented for both transonic and supersonic configurations ranging from wing alone designs to complex configuration designs involving wing, fuselage, nacelles and pylons.
Document ID
19970019081
Acquisition Source
Ames Research Center
Document Type
Reprint (Version printed in journal)
Authors
Reuther, James
(Research Inst. for Advanced Computer Science Moffett Field, CA United States)
Jameson, Antony
(Princeton Univ. NJ United States)
Alonso, Juan Jose
(Princeton Univ. NJ United States)
Rimlinger, Mark J.
(Sterling Software, Inc. Moffett Field, CA United States)
Saunders, David
(Sterling Software, Inc. Moffett Field, CA United States)
Date Acquired
September 6, 2013
Publication Date
January 1, 1997
Subject Category
Computer Programming And Software
Report/Patent Number
AIAA Paper 97-0103
NASA-CR-204488
RIACS-TR-97-02
NAS 1.26:204488
Report Number: AIAA Paper 97-0103
Report Number: NASA-CR-204488
Report Number: RIACS-TR-97-02
Report Number: NAS 1.26:204488
Meeting Information
Meeting: Aerospaces Sciences
Country: United States
Start Date: January 1, 1997
Sponsors: American Inst. of Aeronautics and Astronautics
Accession Number
97N20952
Funding Number(s)
CONTRACT_GRANT: NAS2-96027
CONTRACT_GRANT: N00014-92-J-1976
CONTRACT_GRANT: AF-AFOSR-0391-91
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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