Title :
Duo-bimorph actuator made of PMN-PT [011]: 3D modeling, development and characterization
Author :
Ivan, Ioan Alexandru ; Ciubotariu, Dragos Adrian ; Clevy, Cedric ; Lutz, Philippe ; Chaillet, N.
Author_Institution :
AS2M Dept., UFC/ENSMM/UTBM, Besancon, France
Abstract :
This paper reports the development of a duo-bimorph cantilevered actuator made of PMN-PT material and intended for large-stroke micro-scale manipulation. The principle of operation is piezoelectric, but with a series of material-induced particularities: PMN-PT is reputed for its very high piezoelectric and electromechanical coupling characteristics, but exhibits a lower coercive field which prevents driving in a fully bipolar manner. Instead of the uniaxial [001] plate, by using the anisotropic [011] cut, a positive transverse d31 piezoelectric coefficient may be exploited. This allows the extension of the structure with the applied voltage, which is particularly beneficial for micro-gripping. After an introductory part in piezo-materials and duo-bimorph structures, a comprehensive static three-dimensional displacement modeling is provided by means of constitutive matrix equations. The actuator micro-manufacturing is presented, followed by the experimental characterization. Compared to the classical PZT structures, the actuation is increased by a factor of two, up to 600 μm in the transversal plane and up to 20 μm longitudinally. Some perspectives related to 3 DoF (Degrees of Freedom) micro-manipulation tasks are finally approached.
Keywords :
cantilevers; grippers; lead compounds; matrix algebra; microactuators; micromanipulators; piezoelectric actuators; solid modelling; titanium compounds; zirconium compounds; 3 DoF micromanipulation tasks; 3D modeling; PMN-PT 1011]; PMN-PT material; PZT; actuator micromanufacturing; classical PZT structures; coercive field; duo-bimorph cantilevered actuator; electromechanical coupling characteristics; high piezoelectric coupling characteristics; large-stroke microscale manipulation; material-induced particularities; matrix equations; microgripping; piezoelectric coefficient; piezoelectric operation; three-dimensional displacement modeling; uniaxial [001] plate; Actuators; Couplings; Electrodes; Hysteresis; Materials; Mathematical model; Solid modeling;
Conference_Titel :
Advanced Intelligent Mechatronics (AIM), 2013 IEEE/ASME International Conference on
Conference_Location :
Wollongong, NSW
Print_ISBN :
978-1-4673-5319-9
DOI :
10.1109/AIM.2013.6584082