Title :
Eccentricity effects on acoustic radiation from a spherical source suspended within a thermoviscous fluid sphere
Author :
Hasheminejad, Seyyed M. ; Azarpeyvand, Mahdi
Author_Institution :
Dept. of Mech. Eng., Iran Univ. of Sci. & Technol., Tehran, Iran
Abstract :
Acoustic radiation from a spherical source undergoing angularly periodic axisymmetric harmonic surface vibrations while eccentrically suspended within a thermoviscous fluid sphere, which is immersed in a viscous thermally conducting unbounded fluid medium, is analyzed in an exact fashion. The formulation uses the appropriate wave-harmonic field expansions along with the translational addition theorem for spherical wave functions and the relevant boundary conditions to develop a closed-form solution in form of infinite series. The analytical results are illustrated with a numerical example in which the vibrating source is eccentrically positioned within a chemical fluid sphere submerged in water. The modal acoustic radiation impedance load on the source and the radiated far-field pressure are evaluated and discussed for representative values of the parameters characterizing the system. The proposed model can lead to a better understanding of dynamic response of an underwater acoustic lens. It is equally applicable in miniature transducer analysis and design with applications in medical ultrasonics.
Keywords :
acoustic materials; acoustic radiators; boundary-value problems; dynamic response; non-Newtonian fluids; series (mathematics); surface dynamics; wave functions; acoustic radiation; angularly periodic axisymmetric harmonic surface vibrations; boundary conditions; chemical fluid sphere; closed form solution; dynamic response; eccentricity effects; infinite series; medical ultrasonics; miniature transducer analysis; modal acoustic radiation impedance load; numerical example; radiated far field pressure; spherical source; thermoviscous fluid sphere; underwater acoustic lens; vibrating source; viscous thermally conducting unbounded fluid medium; wave harmonic field expansions; Boundary conditions; Chemical analysis; Closed-form solution; Harmonic analysis; Impedance; Surface acoustic waves; Thermal conductivity; Underwater acoustics; Water resources; Wave functions;
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
DOI :
10.1109/TUFFC.2003.1251128