Nonlinear Model Reduction of von Kármán Plates Under Linearized Compressible Fluid Flow

Areduced order model (ROM) of linearized compressible fluid flow coupled with a von Karman plate is developed. SeparateROMsfor both the fluid and structure are derived and are coupled through a solid wall boundary condition at the interface boundary. The structural ROM is formulated using the method...

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Veröffentlicht in:AIAA journal 2012-05, Vol.50 (5), p.1047-1059
Hauptverfasser: Brake, M. R, Barone, M. F, Segalman, D. J
Format: Artikel
Sprache:eng
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Zusammenfassung:Areduced order model (ROM) of linearized compressible fluid flow coupled with a von Karman plate is developed. SeparateROMsfor both the fluid and structure are derived and are coupled through a solid wall boundary condition at the interface boundary. The structural ROM is formulated using the method of quadratic components, which postulates that the full kinematics of the plate can be represented using linear and quadratic terms. The fluid ROM is constructed via a proper orthogonal decomposition method. Both ROMs are further reduced via a Galerkin discretization, and the coupled system is implicitly integrated in time. The coupled model is subsequently compared with previously validated models that used either a linearized plate model with the linearized compressible fluid model or a quasi-static fluid model with the von Karman plate model. The comparisons are conducted in high-Machnumber regimes where the comparison is admissible, and excellent agreement is found. Analysis of the resulting limit cycles shows two sets of discontinuities in the limit cycle amplitudes. These discontinuities have two salient features: a snap through phenomenon in phase space is observed in the higher modes, and the coalescing of several of the lower modes is observed below the critical dynamic pressures followed by a sudden separation above the critical dynamic pressures. [PUBLICATION ABSTRACT]
ISSN:0001-1452
1533-385X
DOI:10.2514/1.J050950