DocumentCode
1439756
Title
Elastic contact conditions to optimize friction drive of surface acoustic wave motor
Author
Kurosawa, Minoru Kuribayashi ; Takahashi, Masakazu ; Higuchi, Toshiro
Author_Institution
Dept. of Precision Eng., Tokyo Univ., Japan
Volume
45
Issue
5
fYear
1998
Firstpage
1229
Lastpage
1237
Abstract
The optimum pressing force, namely the preload, for a slider to obtain superior operation conditions in a surface acoustic wave motor have been examined. We used steel balls as sliders. The preload was controlled using a permanent magnet. The steel balls were 0.5, 1, and 2 mm diameter, with the differences in diameter making it possible to change contact conditions, such as the contact pressure, contact area, and deformation of the stator and the slider. The stator transducer was lithium niobate, 128 degrees rotated, y-cut x-propagation substrate. The driving frequency of the Rayleigh wave was about 10 MHz. Hence, the particle vibration amplitude at the surface is as small as 10 nm. For superior friction drive conditions, a high contact pressure was required. For example, in the case of the 1 mm diameter steel ball at the sinusoidal driving voltage of 180 V/sub peak/, the slider speed was 43 cm/sec, the thrust output force was 1 mN, and the acceleration was 23 times as large as the gravitational acceleration at a contact pressure of 390 MPa. From the Hertz theory of contact stress, the contact area radius was only 3 /spl mu/m. The estimation of the friction drive performance was carried out from the transient traveling distance of the slider in a 3 msec burst drive. As a result, the deformation of the stator and the slider by the preload should be half of the vibration amplitude. This condition was independent of the ball diameter and the vibration amplitude. The output thrust per square millimeter was 50 N, and the maximum speed was 0.7 m/sec. From these results, we conclude that it is possible for the surface acoustic wave motor to have a large output force, high speed, quick response, long traveling distance, and a thin micro linear actuator.
Keywords
elastic deformation; friction; lithium compounds; microactuators; micromotors; optimisation; surface acoustic wave devices; transient response; 0.5 mm; 0.7 m/s; 1 mm; 10 MHz; 2 mm; 3 mum; 390 MPa; 43 cm/s; LiNbO/sub 3/; Rayleigh wave; ball diameter; contact area; contact pressure; contact stress; deformation; driving frequency; friction drive; friction drive performance; gravitational acceleration; lithium niobate; optimum pressing force; permanent magnet; preload; sinusoidal driving voltage; slider speed; sliders; stator transducer; steel balls; surface acoustic wave motor; thin micro linear actuator; traveling distance; vibration amplitude; y-cut x-propagation substrate; Acceleration; Acoustic waves; Drives; Friction; Permanent magnet motors; Permanent magnets; Pressing; Stators; Steel; Surface acoustic waves;
fLanguage
English
Journal_Title
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
Publisher
ieee
ISSN
0885-3010
Type
jour
DOI
10.1109/58.726448
Filename
726448
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