DocumentCode :
746643
Title :
Quantitative imaging of Rayleigh wave velocity with a scanning acoustic microscope
Author :
Sathish, Shamachary ; Martin, Richard W.
Author_Institution :
Res. Inst., Dayton Univ., OH, USA
Volume :
49
Issue :
5
fYear :
2002
fDate :
5/1/2002 12:00:00 AM
Firstpage :
550
Lastpage :
557
Abstract :
An acoustic microscope operating with impulse excitation has been used to perform measurements of the Rayleigh wave velocity by measuring the time difference between the direct reflected signal and the Rayleigh wave signal. The accuracy and precision of the methodology have been examined by performing measurements at a single location on an elastically isotropic sample of E6 glass. The accuracy of the Rayleigh wave velocity measurement has been determined to be better than 0.5%. The measured Rayleigh wave velocity of (3035/spl plusmn/5) m/s differs by 0.3% from measurements reported in the literature for a similar sample, using two different techniques. The methodology has been extended to acquire the Rayleigh wave velocity while raster scanning the sample to develop a quantitative velocity image. The background noise in the Rayleigh wave velocity image has been investigated by mapping the velocity on elastically isotropic E6 glass. Possible reasons for background noise in the images is discussed. The methodology has been extended to acquire quantitative Rayleigh wave velocity images on Ti-6Al-4V. The contrast in the images is attributed to the variation of the Rayleigh wave velocity in individual grains or regions. Applicability of the technique to investigate crystallographic texture in materials is discussed.
Keywords :
Rayleigh waves; acoustic imaging; acoustic microscopy; acoustic noise; crystal microstructure; crystallography; surface acoustic waves; texture; 3030 to 3040 m/s; Rayleigh wave signal; Rayleigh wave velocity; Rayleigh wave velocity image; Rayleigh wave velocity measurements; Rayleigh wave velocity variation; Ti-Al-V; Ti-Al-V Rayleigh wave velocity images; acoustic microscope; crystallographic texture; direct reflected signal; elastically isotropic E6 glass; image background noise; impulse excitation; measurement accuracy; quantitative imaging; quantitative velocity image; raster scanning; scanning acoustic microscope; time difference; velocity mapping; Acoustic imaging; Acoustic measurements; Acoustic waves; Background noise; Crystallography; Glass; Microscopy; Performance evaluation; Time measurement; Velocity measurement; Crystallography; Glass; Materials Testing; Microscopy, Acoustic; Models, Theoretical; Titanium;
fLanguage :
English
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher :
ieee
ISSN :
0885-3010
Type :
jour
DOI :
10.1109/TUFFC.2002.1002453
Filename :
1002453
Link To Document :
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