Title :
Modeling and underwater characterization of cymbal transducers and arrays
Author :
Zhang, Jindong ; Hladky-Hennion, Anne-Christine ; Hughes, W.J. ; Newnham, Robert E.
Author_Institution :
Mater. Res. Lab., Pennsylvania State Univ., University Park, PA, USA
fDate :
3/1/2001 12:00:00 AM
Abstract :
The cymbal is a miniaturized class V flextensional transducer that was developed for potential use as a shallow water sound projector and receiver. Single elements are characterized by high Q, low efficiency, and medium power output capability. Its low cost and thin profile allow the transducer to be assembled into large flexible arrays. Efforts were made to model both single element and transducer arrays by coupling finite element analysis (ATILA) and the integral equation formulation (EQI). The pressure and velocity distributions on the surface elements were calculated by ATILA and later used with EQI to calculate the far held properties of the transducer element and arrays. It eliminates the mesh of the fluid domain and makes the 3-D model of a transducer possible. Three-dimensional models of a cymbal transducer and a 3/spl times/3 cymbal array were developed in the modeling. Very good agreement was obtained between modeling and measurement for single element transducers. By coupling finite element analysis with the integral equation method using boundary elements, acoustic interaction effects were taken into account. Reasonable agreement was obtained between calculation and measurement for a 3/spl times/3 array.
Keywords :
acoustic transducer arrays; boundary-elements methods; finite element analysis; integral equations; underwater sound; 3-D model; 3/spl times/3 array; ATILA; V flextensional transducer; acoustic interaction effects; arrays; boundary elements; cost; cymbal transducers; finite element analysis; integral equation; integral equation formulation; modeling; pressure distribution; receiver; shallow water sound projector; transducer arrays; velocity distribution; Acoustic arrays; Acoustic measurements; Acoustic transducers; Acoustic waves; Assembly; Electrical capacitance tomography; Impedance; Integral equations; Piezoelectric transducers; Underwater acoustics;
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on