DocumentCode :
1073661
Title :
Estimation of the surface normal velocity of high frequency ultrasound transducers
Author :
Rupitsch, Stefan J. ; Kindermann, Stefan ; Zagar, Bernhard G.
Author_Institution :
Johannes Kepler Univ. Linz, Linz
Volume :
55
Issue :
1
fYear :
2008
fDate :
1/1/2008 12:00:00 AM
Firstpage :
225
Lastpage :
235
Abstract :
This paper is concerned with the characterization of the true locally resolved surface normal velocity of an assumed piston-type ultrasonic transducer. Instead of involving a very complicated direct pointwise measurement of the velocity distribution, an inverse problem is solved which yields a spatially discretized weighting vector for the surface normal velocity of the transducer. The study deals with a spherically focused high frequency transducer, which is driven in pulse-echo mode. As a means of posing the inverse problem, the active transducer surface is divided into annuli of equal surface so that for each annulus the spatial impulse response can be calculated. An acrylic glass plate acts as a simple structured target. The resulting ill-posed nonlinear inverse problem is solved with an iterative regularized Gauss-Newton algorithm. The solution of the inverse problem yields an estimated weight for the surface normal velocity for each annulus. Experimental results for a thin copper wire target are compared to simulation results for both uniform and estimated surface normal velocities.
Keywords :
inverse problems; iterative methods; transient response; ultrasonic focusing; ultrasonic transducers; ultrasonic velocity measurement; iterative regularized Gauss-Newton algorithm; nonlinear inverse problem; piston-type ultrasonic transducer; pulse-echo mode; spatial impulse response; spherically focused high frequency ultrasound transducers; surface normal velocity; Frequency estimation; Glass; Inverse problems; Least squares methods; Newton method; Spatial resolution; Ultrasonic imaging; Ultrasonic transducers; Ultrasonic variables measurement; Velocity measurement; Computer-Aided Design; Equipment Design; Equipment Failure Analysis; Image Interpretation, Computer-Assisted; Models, Theoretical; Radiometry; Scattering, Radiation; Transducers; Ultrasonography;
fLanguage :
English
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-3010
Type :
jour
DOI :
10.1109/TUFFC.2008.631
Filename :
4454317
Link To Document :
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