Integrated structural design, vibration control, and aeroelastic tailoring by multiobjective optimization
The integrated design of a structure and its control system was treated as a multiobjective optimization problem. Structural mass, a quadratic performance index, and the flutter speed constituted the vector objective function. The closed-loop performance index was taken as the time integral of th...
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ndltd-VTETD-oai-vtechworks.lib.vt.edu-10919-389122021-04-21T05:26:37Z Integrated structural design, vibration control, and aeroelastic tailoring by multiobjective optimization Canfield, Robert A. Engineering Mechanics Meirovitch, Leonard Baumann, William T. Librescu, Liviu Henneke, Edmund G. II Hendricks, Scott L. LD5655.V856 1992.C364 Structural design Structural optimization Vibration -- Control The integrated design of a structure and its control system was treated as a multiobjective optimization problem. Structural mass, a quadratic performance index, and the flutter speed constituted the vector objective function. The closed-loop performance index was taken as the time integral of the Hamiltonian. Constraints on natural frequencies and aeroelastic damping were also considered. Derivatives of the objective and constraint functions with respect to structural and control design variables were derived for a finite element beam model of the structure and constant feedback gains determined by Independent Modal Space Control. Pareto optimal designs generated for a simple beam and a tetrahedral truss demonstrated the benefit of solving the integrated structural and control optimization problem. The use of quasi-steady aerodynamic strip theory with a thin-wall box beam model showed that the integrated design for a high aspect ratio, unswept, straight, isotropic wing can be separable. Finally, an efficient modal solution of the flutter equation facilitated the aeroelastic tailoring of a low aspect ratio, forward swept, composite plate wing model. Ph. D. 2014-03-14T21:16:32Z 2014-03-14T21:16:32Z 1992-12-07 2008-07-28 2008-07-28 2008-07-28 Dissertation Text etd-07282008-134827 http://hdl.handle.net/10919/38912 http://scholar.lib.vt.edu/theses/available/etd-07282008-134827/ en OCLC# 27864509 LD5655.V856_1992.C364.pdf In Copyright http://rightsstatements.org/vocab/InC/1.0/ vii, 165 leaves BTD application/pdf application/pdf Virginia Tech |
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LD5655.V856 1992.C364 Structural design Structural optimization Vibration -- Control |
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LD5655.V856 1992.C364 Structural design Structural optimization Vibration -- Control Canfield, Robert A. Integrated structural design, vibration control, and aeroelastic tailoring by multiobjective optimization |
description |
The integrated design of a structure and its control system was treated as a
multiobjective optimization problem. Structural mass, a quadratic performance index,
and the flutter speed constituted the vector objective function. The closed-loop
performance index was taken as the time integral of the Hamiltonian. Constraints
on natural frequencies and aeroelastic damping were also considered. Derivatives of
the objective and constraint functions with respect to structural and control design
variables were derived for a finite element beam model of the structure and constant
feedback gains determined by Independent Modal Space Control. Pareto optimal designs generated for a simple beam and a tetrahedral truss demonstrated the benefit
of solving the integrated structural and control optimization problem. The use of
quasi-steady aerodynamic strip theory with a thin-wall box beam model showed that
the integrated design for a high aspect ratio, unswept, straight, isotropic wing can
be separable. Finally, an efficient modal solution of the flutter equation facilitated
the aeroelastic tailoring of a low aspect ratio, forward swept, composite plate wing
model. === Ph. D. |
author2 |
Engineering Mechanics |
author_facet |
Engineering Mechanics Canfield, Robert A. |
author |
Canfield, Robert A. |
author_sort |
Canfield, Robert A. |
title |
Integrated structural design, vibration control, and aeroelastic tailoring by multiobjective optimization |
title_short |
Integrated structural design, vibration control, and aeroelastic tailoring by multiobjective optimization |
title_full |
Integrated structural design, vibration control, and aeroelastic tailoring by multiobjective optimization |
title_fullStr |
Integrated structural design, vibration control, and aeroelastic tailoring by multiobjective optimization |
title_full_unstemmed |
Integrated structural design, vibration control, and aeroelastic tailoring by multiobjective optimization |
title_sort |
integrated structural design, vibration control, and aeroelastic tailoring by multiobjective optimization |
publisher |
Virginia Tech |
publishDate |
2014 |
url |
http://hdl.handle.net/10919/38912 http://scholar.lib.vt.edu/theses/available/etd-07282008-134827/ |
work_keys_str_mv |
AT canfieldroberta integratedstructuraldesignvibrationcontrolandaeroelastictailoringbymultiobjectiveoptimization |
_version_ |
1719397989097668608 |