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Scattering and active acoustic control from a submerged piezoelectric-coupled orthotropic hollow cylinder

โœ Scribed by Seyyed M. Hasheminejad; M. Rajabi


Book ID
104033442
Publisher
Elsevier Science
Year
2008
Tongue
English
Weight
685 KB
Volume
318
Category
Article
ISSN
0022-460X

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โœฆ Synopsis


A general exact analysis for three-dimensional scattering of a time-harmonic plane-progressive sound wave obliquely incident upon an arbitrarily thick bilaminated circular hollow cylinder of infinite extent, which is composed of a cylindrically orthotropic axially polarized piezoelectric inner layer perfectly bonded to an orthotropic outer layer, is presented. An approximate laminate model in the context of the so-called state space formulation along with the classical T-matrix solution technique involving a system global transfer matrix is employed to solve for the unknown modal scattering and transmission coefficients. Numerical example is given for an air-filled and water-submerged two-layered elasto-piezoelectric hybrid (steel/PZT4) hollow cylinder insonified by an obliquely incident unit-amplitude plane sound wave. Following the acoustic resonance scattering theory (RST), the total form function amplitude together with the associated global scattering, the far-field inherent background, and the resonance scattering coefficients of the nth normal mode are computed as a function of dimensionless frequency for selected angles of incidence, piezoelectric layer thickness parameters, and electrical boundary conditions (i.e., open/closed circuit or active). Also, the electrical voltage coefficients required for partial or complete cancellation of the reflected sound field are calculated. Limiting cases are considered and good agreements with the solutions available in the literature are obtained.


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ACTIVE CONTROL OF SOUND RADIATION FROM C
โœ J.P. Maillard; C.R. Fuller ๐Ÿ“‚ Article ๐Ÿ“… 1999 ๐Ÿ› Elsevier Science ๐ŸŒ English โš– 540 KB

In this paper, analytical and experimental results of an investigation of active control of sound radiated from cylinders are presented. The aluminium cylinder is 1 m in length, 25 cm in diameter and 2โ€ข4 mm in thickness with two rigid end-caps at both ends. The excitation is a band-limited random no