Title :
High-accuracy standard specimens for the line-focus-beam ultrasonic material characterization system
Author :
Kushibiki, Jun-ichi ; Arakawa, Mototaka ; Okabe, Ryoichi
Author_Institution :
Dept. of Electr. Eng., Tohoku Univ., Sendai, Japan
fDate :
6/1/2002 12:00:00 AM
Abstract :
We prepared standard specimens for the line-focus-beam ultrasonic material characterization system to obtain absolute values of the propagation characteristics (phase velocity and attenuation) of leaky surface acoustic waves (LSAWs). The characterization system is very useful for evaluating and analyzing specimen surfaces. The calibration accuracy of these acoustic parameters depends on the accuracy of acoustical physical constants (elastic constants, piezoelectric constants, dielectric constants, and density) determined for standard specimens. In this paper, we developed substrates of non piezoelectric single crystals (viz., gadolinium gallium garnet [GGG], Si, and Ge) and an isotropic solid (synthetic silica [SiO/sub 2/] glass) as standard specimens. These specimens can cover the phase velocity range of 2600 to 5100 m/s for Rayleigh-type LSAWs. To determine the elastic constants with high accuracy, we measured velocities by the complex-mode measurement method and corrected diffraction effects. Measurements of bulk acoustic properties (bulk wave velocity and density) were conducted around 23/spl deg/C, and bulk wave velocities were obtained with an accuracy of within /spl plusmn/0.004%. We clearly detected differences in acoustic properties by comparing the obtained results with the previously published values; the differences were considered to be due to differences of the specimens used. We also detected differences in acoustic properties among four SiO/sub 2/ substrates produced by different manufacturers.
Keywords :
surface acoustic waves; ultrasonic focusing; ultrasonic measurement; 23 C; Gd/sub 3/Ga/sub 5/O/sub 12/; Ge; Rayleigh-type LSAW; Si; SiO/sub 2/; acoustical physical constants; attenuation; bulk acoustic properties; bulk wave velocity; calibration; complex-mode measurement method; density; dielectric constants; elastic constants; gadolinium gallium garnet; isotropic solid; leaky surface acoustic wave propagation; line-focus-beam ultrasonic material characterization system; phase velocity; piezoelectric constants; piezoelectric single crystal; standard specimen; synthetic silica glass; Acoustic materials; Acoustic measurements; Acoustic propagation; Acoustic signal detection; Acoustic waves; Attenuation; Calibration; Dielectric constant; Surface acoustic waves; Velocity measurement;
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
DOI :
10.1109/TUFFC.2002.1009343