Nonaxisymmetric electroelastic vibrations of piezoceramic ring plates with radially cut electrodes

2012 ◽  
Vol 48 (4) ◽  
pp. 438-446 ◽  
Author(s):  
N. A. Shul’ga ◽  
V. V. Levchenko ◽  
O. I. Makievskii
2011 ◽  
Vol 46 (9) ◽  
pp. 1031-1038 ◽  
Author(s):  
N. A. Shul’ga ◽  
A. I. Bezverkhii ◽  
O. I. Mekievskii

2020 ◽  
Vol 10 (7) ◽  
pp. 2396
Author(s):  
Dalius Mažeika ◽  
Andrius Čeponis ◽  
Daiva Makutėnienė

Numerical and experimental investigations of a multimodal piezoelectric traveling wave actuator are presented. The actuator consists of a cylindrical stator with a conical hole and piezoceramic rings that are located at the node of the first longitudinal and second bending vibration modes; one piezoceramic ring is also placed at the bottom of the actuator. The actuator is clamped at the bottom using a special supporting cylinder and a ball bearing. Traveling-wave-type vibrations are excited at the top surface of the cylinder by employing a superposition of the first longitudinal and second bending vibration modes of the stator. The conical hole of the stator is used to amplify the vibration amplitudes of the contact surface. Four electric signals with phase difference of π/2 are used to drive the actuator. Numerical and experimental investigations showed that the proposed actuator is able to generate up to 115 RPM rotation speed at constant preload force.


Author(s):  
M. J. F. Bertin ◽  
A. R. Plummer ◽  
C. R. Bowen ◽  
D. N. Johnston

This paper describes the deformation of a piezoceramic disc shaped actuator due to two effects: inner edge mechanical loading and electrical excitation. A 2D axisymmetric coupled-field finite element model was constructed to represent the piezoceramic ‘ring bender’. The model was used to predict actuator displacement due to a force applied to the inner edge, and also the piezoelectric induced strain due to an electric field applied in the poling direction of the piezoceramic. Results are compared with theoretical calculations of the deformation of a uniform thickness disc under mechanical load, and the displacement-voltage characteristics reported by the manufacturer. Experimental results for the displacement of the piezoelectric actuator, under a variety of constraint conditions, are also compared. The research presented provides an understanding of how the ring bender deforms under combined mechanical load and electric field. Each of these effects is considered and results show that the shape formed is different depending on whether the load is mechanical or electrical. This result provides an insight into how the actuator may be mounted for use as an actuator in servo valve pilot stage.


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