DocumentCode :
25705
Title :
Generalized theory of resonance scattering (GTRS) using the translational addition theorem for spherical wave functions
Author :
Mitri, Farid
Author_Institution :
Chevron Area 52 Technol., Santa Fe, NM, USA
Volume :
61
Issue :
11
fYear :
2014
fDate :
Nov-14
Firstpage :
1880
Lastpage :
1888
Abstract :
The generalized theory of resonance scattering (GTRS) by an elastic spherical target in acoustics is extended to describe the arbitrary scattering of a finite beam using the addition theorem for the spherical wave functions of the first kind under a translation of the coordinate origin. The advantage of the proposed method over the standard discrete spherical harmonics transform previously used in the GTRS formalism is the computation of the off-axial beam-shape coefficients (BSCs) stemming from a closed-form partial-wave series expansion representing the axial BSCs in spherical coordinates. With this general method, the arbitrary acoustical scattering can be evaluated for any particle shape and size, whether the particle is partially or completely illuminated by the incident beam. Numerical examples for the axial and off-axial resonance scattering from an elastic sphere placed arbitrarily in the field of a finite circular piston transducer with uniform vibration are provided. Moreover, the 3-D resonance directivity patterns illustrate the theory and reveal some properties of the scattering. Numerous applications involving the scattering phenomenon in imaging, particle manipulation, and the characterization of multiphase flows can benefit from the present analysis because all physically realizable beams radiate acoustical waves from finite transducers as opposed to waves of infinite extent.
Keywords :
acoustic resonance; acoustic wave scattering; particle size; wave functions; 3D resonance directivity patterns; acoustical waves; arbitrary acoustical scattering; arbitrary scattering; closed-form partial-wave series expansion; discrete spherical harmonics transform; elastic sphere; elastic spherical target; finite beam; finite circular piston transducer; finite transducers; generalized resonance scattering theory; incident beam; multiphase flow characterization; off-axial beam-shape coefficient computation; off-axial resonance scattering; particle manipulation; particle shape; particle size; spherical coordinates; spherical wave functions; translational addition theorem; uniform vibration; Acoustic beams; Acoustics; Force; Particle beams; Pistons; Scattering; Transducers;
fLanguage :
English
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-3010
Type :
jour
DOI :
10.1109/TUFFC.2013.006107
Filename :
6945637
Link To Document :
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