Title :
Ultrasonic motors with polymer-based vibrators
Author :
Jiang Wu ; Mizuno, Yosuke ; Tabaru, Marie ; Nakamura, Kentaro
Author_Institution :
Precision & Intell. Lab., Tokyo Inst. of Technol., Yokohama, Japan
fDate :
12/1/2015 12:00:00 AM
Abstract :
With their characteristics of low density and elastic moduli, polymers are promising materials for making ultrasonic motors (USMs) with high energy density. Although it has been believed for a long time that polymers are too lossy to be applied to high-amplitude vibrators, there are several new polymers that exhibit excellent vibration characteristics. First, we measure the damping coefficients of some functional polymers to explore the applicability of polymers as vibrators for USMs. Second, to investigate the vibration characteristics, we fabricate bimorph vibrators using several kinds of polymers that have low attenuation. Third, a bending mode USM is fabricated with a polymer rod and four piezoelectric plates bonded on the rod as a typical example of a USM. Through an experimental investigation of the motor performance, it was found that the polymer-based USMs exhibited higher rotation velocity than the aluminum-based USM under a light preload, although the maximum torque of the polymer-based USMs was smaller than the aluminum-based USM. Among the tested polymers, polyphenylenesulfide was a prospective material for USMs under light preloads because of the high amplitude and lightweight of polyphenylenesulfide.
Keywords :
bending; damping; elastic moduli; piezoelectricity; plates (structures); polymers; rods (structures); torque; ultrasonic motors; vibrations; aluminum-based USM; bending-mode USM; bimorph vibrators; damping coefficients; elastic moduli; energy density; high-amplitude vibrators; maximum torque; piezoelectric plates; polymer rod; polymer-based vibrators; polyphenylenesulfide; rotation velocity; ultrasonic motors; vibration characteristics; Acoustics; Damping; Plastics; Polymers; Resonant frequency; Vibration measurement; Vibrations;
Journal_Title :
Ultrasonics, Ferroelectrics, and Frequency Control, IEEE Transactions on
DOI :
10.1109/TUFFC.2015.007122