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Anisotropic Piezocomposite Actuator Incorporating Machined PMN-PT Single Crystal FibersThe design, fabrication, and testing of a flexible, planar, anisotropic piezoelectric composite actuator utilizing machined PMN-32%PT single crystal fibers is presented. The device consists of a layer of rectangular single crystal piezoelectric fibers in an epoxy matrix, packaged between interdigitated electrode polyimide films. Quasistatic free-strain measurements of the single crystal device are compared with measurements from geometrically identical specimens incorporating polycrystalline PZT-5A and PZT-5H piezoceramic fibers. Free-strain actuation of the single crystal actuator at low bipolar electric fields (+/- 250 V/mm) is approximately 400% greater than that of the baseline PZT-5A piezoceramic device, and 200% greater than that of the PZT-5H device. Free-strain actuation under high unipolar electric fields (0-4kV/mm) is approximately 200% of the PZT-5A baseline device, and 150% of the PZT-5H alternate piezoceramic device. Performance increases at low field are qualitatively consistent with predicted increases based on scaling the low-field d(sub 33) piezoelectric constants of the respective piezoelectric materials. High-field increases are much less than scaled d(sub 33) estimates, but appear consistent with high-field freestrain measurements reported for similar bulk single-crystal and piezoceramic compositions. Measurements of single crystal actuator capacitance and coupling coefficient are also provided. These properties were poorly predicted using scaled bulk material dielectric and coupling coefficient data. Rules-of-mixtures calculations of the effective elastic properties of the single crystal device and estimated actuation work energy densities are also presented. Results indicate longitudinal stiffnesses significantly lower (50% less) than either piezoceramic device. This suggests that single-crystal piezocomposite actuators will be best suited to low induced-stress, high strain and deflection applications.
Document ID
20040068081
Acquisition Source
Langley Research Center
Document Type
Preprint (Draft being sent to journal)
Authors
Wilkie, W. Keats
(NASA Langley Research Center Hampton, VA, United States)
Inman, Daniel J.
(Virginia Polytechnic Inst. and State Univ. Blacksburg, VA, United States)
Lloyd, Justin M.
(Virginia Polytechnic Inst. and State Univ. Blacksburg, VA, United States)
High, James W.
(NASA Langley Research Center Hampton, VA, United States)
Date Acquired
September 7, 2013
Publication Date
January 1, 2004
Subject Category
Electronics And Electrical Engineering
Report/Patent Number
AIAA Paper 2004-1889
Report Number: AIAA Paper 2004-1889
Meeting Information
Meeting: 45th AIAA/ASME/ASCE/AHS/ASC Structures, Structural Dynamics and Materials Conference
Location: Palm Springs, CA
Country: United States
Start Date: April 19, 2004
End Date: April 22, 2004
Sponsors: American Inst. of Aeronautics and Astronautics, American Society of Civil Engineers, American Helicopter Society, Inc., American Society for Composites, American Society of Mechanical Engineers
Funding Number(s)
OTHER: 23-755-06-00
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.
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