Title :
Finite-element analysis of material and parameter effects in laser-based thermoelastic ultrasound generation
Author :
Zhou, Shiwei ; Reynolds, Paul ; Krause, Roland ; Buma, Takashi ; O´Donnell, Matthew ; Hossack, John A.
Author_Institution :
Dept. of Biomed. Eng., Virginia Univ., Charlottesville, VA, USA
Abstract :
Laser-based, thermoelastic transduction methods have potential in very high frequency (>50 MHz), high-density two-dimensional (2-D) arrays for a variety of very high-resolution superficial imaging applications, including in vivo tissue sectioning. Previous studies of these transducers generally have been based on experimental measurements or theoretical analyses using various simplifying assumptions. These theoretical models are mostly 1-D and best matched to simple geometries with a minimum number of component materials. In this work, we use a new thermoelastic solver in a commercially available finite-element analysis (FEA) software package to analyze multidimensional effects in laser-based devices of arbitrary geometry with the potential for use with arbitrary material properties. The FEA approach was verified first against experimental data. Thereafter, we explored the impact of various design variables, including laser spot size and laser penetration depth.
Keywords :
acoustic radiators; biological tissues; biomedical optical imaging; biomedical ultrasonics; finite element analysis; laser applications in medicine; laser arrays; photoacoustic effect; thermoelasticity; tissue engineering; ultrasonic transducer arrays; FEA approach; arbitrary geometry; arbitrary material properties; component materials; finite element analysis software package; high density two dimensional arrays; high resolution superficial imaging applications; laser based devices; laser based thermoelastic ultrasound generation; laser penetration depth; laser spot size; multidimensional effects; parameter effects; theoretical models; thermoelastic solver; thermoelastic transduction methods; various design variables; vivo tissue sectioning; Biological materials; Finite element methods; Frequency; Geometrical optics; Laser theory; Optical arrays; Optical materials; Thermoelasticity; Two dimensional displays; Ultrasonic imaging; Anatomy, Cross-Sectional; Computer Simulation; Elasticity; Finite Element Analysis; Image Interpretation, Computer-Assisted; Imaging, Three-Dimensional; Lasers; Materials Testing; Models, Biological; Phantoms, Imaging; Thermography; Ultrasonics; Ultrasonography;
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
DOI :
10.1109/TUFFC.2004.1334851