DocumentCode
923437
Title
Acoustic radiation from a pulsating spherical cap set on a spherical baffle near a hard/soft flat surface
Author
Hasheminejad, Seyyed M. ; Azarpeyvand, Mahdi
Author_Institution
Dept. of Mech. Eng., Iran Univ. of Sci. & Technol., Tehran, Iran
Volume
29
Issue
1
fYear
2004
Firstpage
110
Lastpage
117
Abstract
Radiation of sound from a spherical piston, set in the side of a rigid sphere, undergoing harmonic radial surface vibrations in an acoustic halfspace is analyzed in an exact fashion using the classical method of separation of variables. The method of images in combination with the translational addition theorems for spherical wave functions is employed to take the presence of the flat boundary into account. The analytical results are illustrated with numerical examples in which the piston is pulsating near the rigid/compliant boundary of a water-filled halfspace. Subsequently, the basic acoustic field quantities such as the acoustic radiation impedance load and the radiation intensity distribution are evaluated for representative values of the parameters characterizing the system. Numerical results reveal the important effects of excitation frequency, source position, and cap angle on the acoustic radiation impedance load and the radiation intensity distribution. The presented work can lead to a better understanding of dynamic response of near-surface underwater transducers.
Keywords
acoustic field; acoustic impedance; acoustic radiators; eigenvalues and eigenfunctions; numerical analysis; underwater sound; vibrations; acoustic halfspace; acoustic radiation impedance load; cap angle; excitation frequency; hard flat surface; harmonic radial surface vibrations; near-surface underwater transducers; pulsating spherical cap set; radiation intensity distribution; rigid sphere; soft flat surface; sound radiation; source position; spherical baffle; spherical piston; spherical wave functions; transducer dynamics; water-filled halfspace; Acoustic pulses; Acoustic scattering; Acoustic transducers; Impedance; Ocean temperature; Pistons; Sea surface; Surface acoustic waves; Underwater acoustics; Wave functions;
fLanguage
English
Journal_Title
Oceanic Engineering, IEEE Journal of
Publisher
ieee
ISSN
0364-9059
Type
jour
DOI
10.1109/JOE.2003.822978
Filename
1273566
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