DocumentCode
1358520
Title
Experimental study of construction mechanism of V(z) curves obtained by line-focus-beam acoustic microscopy
Author
Ono, Yuu ; Kushibiki, Jun-ichi
Author_Institution
Dept. of Electr. Eng., Tohoku Univ., Sendai, Japan
Volume
47
Issue
4
fYear
2000
fDate
7/1/2000 12:00:00 AM
Firstpage
1042
Lastpage
1050
Abstract
The propagation characteristics, viz., phase velocity and attenuation, of leaky surface acoustic waves (LSAWs), excited on the water/sample boundary are obtained through analyzing the V(z) curves measured by line-focus-beam acoustic microscopy. However, different values of these characteristics are obtained, depending upon different ultrasonic devices and operating frequencies employed. The construction mechanism of V(z) curves was investigated experimentally by measuring the amplitude and phase for Teflon to provide an understanding of the device performance for velocity measurements. A V(z) curve measured for Teflon, on which no leaky waves are excited when water is the coupling medium, can be used for the characteristic device response, depending only upon the device parameters and the operating frequencies. From the investigation of the ultrasonic device and the frequency dependences of the characteristic device responses, the phase gradient was found to be directly related to values of measured LSAW velocities. From this result, apparent frequency dependences in LSAW velocity measurements are explained quantitatively for a specimen of gadolinium gallium garnet.
Keywords
acoustic microscopy; gadolinium compounds; garnets; polymers; surface acoustic waves; ultrasonic absorption; ultrasonic devices; ultrasonic propagation; ultrasonic velocity; ultrasonic velocity measurement; GdGG; GdGa5O12; H/sub 2/O; Teflon; attenuation; construction mechanism; coupling medium; device parameters; device performance; device response; frequency dependences; gadolinium gallium garnet; leaky surface acoustic waves; line-focus-beam acoustic microscopy; operating frequencies; phase gradient; phase velocity; propagation characteristics; ultrasonic devices; velocity measurements; water/sample boundary; Acoustic devices; Acoustic measurements; Acoustic propagation; Attenuation; Frequency measurement; Phase measurement; Surface acoustic wave devices; Ultrasonic variables measurement; Velocity measurement; Water;
fLanguage
English
Journal_Title
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher
ieee
ISSN
0885-3010
Type
jour
DOI
10.1109/58.852088
Filename
852088
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