Advanced Computational Vibroacoustics

Reduced-Order Models and Uncertainty Quantification

Nonfiction, Science & Nature, Technology, Engineering, Mechanical, Computers, General Computing
Cover of the book Advanced Computational Vibroacoustics by Roger Ohayon, Christian Soize, Cambridge University Press
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Author: Roger Ohayon, Christian Soize ISBN: 9781316055496
Publisher: Cambridge University Press Publication: August 11, 2014
Imprint: Cambridge University Press Language: English
Author: Roger Ohayon, Christian Soize
ISBN: 9781316055496
Publisher: Cambridge University Press
Publication: August 11, 2014
Imprint: Cambridge University Press
Language: English

Advanced Computational Vibroacoustics presents an advanced computational method for the prediction of sound and structural vibrations, in low- and medium-frequency ranges - complex structural acoustics and fluid-structure interaction systems encountered in aerospace, automotive, railway, naval, and energy-production industries. The formulations are presented within a unified computational strategy and are adapted for the present and future generation of massively parallel computers. A reduced-order computational model is constructed using the finite element method for the damped structure and the dissipative internal acoustic fluid (gas or liquid with or without free surface) and using an appropriate symmetric boundary-element method for the external acoustic fluid (gas or liquid). This book allows direct access to computational methods that have been adapted for the future evolution of general commercial software. Written for the global market, it is an invaluable resource for academic researchers, graduate students, and practising engineers.

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Advanced Computational Vibroacoustics presents an advanced computational method for the prediction of sound and structural vibrations, in low- and medium-frequency ranges - complex structural acoustics and fluid-structure interaction systems encountered in aerospace, automotive, railway, naval, and energy-production industries. The formulations are presented within a unified computational strategy and are adapted for the present and future generation of massively parallel computers. A reduced-order computational model is constructed using the finite element method for the damped structure and the dissipative internal acoustic fluid (gas or liquid with or without free surface) and using an appropriate symmetric boundary-element method for the external acoustic fluid (gas or liquid). This book allows direct access to computational methods that have been adapted for the future evolution of general commercial software. Written for the global market, it is an invaluable resource for academic researchers, graduate students, and practising engineers.

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