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Vibro-acoustic behaviors of an elastically restrained double-panel structure with an acoustic cavity of arbitrary boundary impedance
Institution:1. Department of Automotive and Aeronautical Engineering, Hamburg University of Applied Sciences, Berliner Tor 9, D–20099 Hamburg, Germany;2. Institute of Modelling and Computation, Hamburg University of Technology, Denickestr. 17, D–21073 Hamburg, Germany;1. Khoy School of Civil Engineering, Urmia University, 58159-14853 Khoy, West Azerbaijan, Iran;2. School of Civil Engineering, Iran University of Science Technology, Narmak 16842-13114, Tehran, Iran;1. Department of Mechanical Engineering, Shahid Chamran University of Ahvaz, Ahvaz, Iran;2. Faculty of Naval Architecture and Ocean Engineering, Istanbul Technical University, Istanbul, Turkey;3. International Research Center for the Mathematics and Mechanics of Complex Systems, University of L''Aquila, L''Aquila, Italy
Abstract:An analytical study on the vibro-acoustic behaviors of a double-panel structure with an acoustic cavity is presented. Unlike the existing studies, a structural–acoustic coupling model of an elastically restrained double-panel structure with an acoustic cavity having arbitrary impedance on sidewalls around the cavity is developed in which the two dimensional (2D) and three dimensional (3D) modified Fourier series are used to represent the displacement of the panels and the sound pressure inside the cavity, respectively. The unknown expansions coefficients are treated as the generalized coordinates and the Rayleigh–Ritz method is employed to determine displacement and sound pressure solutions based on the energy expressions for the coupled structural–acoustic system. The effectiveness and accuracy of the present model is validated by numerical example and comparison with finite element method (FEM) and existing analytical method, with good agreement achieved. The influence of key parameters on the vibro-acoustic behaviors and sound transmission of the double-panel structure is investigated, including: cavity thickness, boundary conditions, sidewall impedance, and the acoustic medium in the cavity.
Keywords:Double-panel structure  Vibroacoustics  Sound transmission  Structural–acoustic coupling
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