DocumentCode
1001210
Title
Quantitative modeling of reflected ultrasonic bounded beams and a new estimate of the Schoch shift
Author
Bouzidi, Youcef ; Schmitt, Douglas R.
Author_Institution
Divestco Process., Divestco Inc., Calgary, AB
Volume
55
Issue
12
fYear
2008
fDate
12/1/2008 12:00:00 AM
Firstpage
2661
Lastpage
2673
Abstract
The wavefields of bounded acoustic beams and pulses reflected from water-loaded plates are fully modeled with the phase advance technique. The wavefield produced at the source is propagated at any incidence angle using phaseshift modeling that incorporates the full analytic solution for the acoustic reflectivity at the interface. This approach provides for the ready visualization of both the stationary monofrequency beam wavefield and animation of the temporally bounded pulse. The model images are reminiscent of the classic Schlieren photographs that first illustrated the nonspecular behavior of the reflected beams incident near critical angles. Various phenomena such as the lateral displacement and the null zone at the Rayleigh critical angle are recreated. A new approximation for this shift agrees well with that of the peak energy of the reflected beam. Similar effects are observed during the reflection of a bounded pulse. Although more computationally costly than existing analytic approximations, the phase advance technique can facilitate the interpretation of reflectivity measurements obtained in laboratory experiments. In particular, the full visualization allows for a better understanding of the behavior of reflected waves at any angle of incidence.
Keywords
acoustic field; ultrasonic reflection; Rayleigh critical angle; Schlieren photograph; Schoch shift; phase advance technique; quantitative modeling; reflected ultrasonic bounded beams; Acoustic beams; Acoustic propagation; Acoustic pulses; Acoustic reflection; Animation; Laboratories; Optical reflection; Phase measurement; Reflectivity; Visualization; Acoustics; Algorithms; Computer Simulation; Image Interpretation, Computer-Assisted; Models, Theoretical; Surface Properties; Ultrasonics;
fLanguage
English
Journal_Title
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher
ieee
ISSN
0885-3010
Type
jour
DOI
10.1109/TUFFC.2008.981
Filename
4683473
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