Title :
Thermomechanical stress in 1-3 piezoelectric composite
Author :
Lee, H.S. ; Richard, C. ; Guyomar, D. ; Berriet, R.
Author_Institution :
Lab. de Genie Electrique et Ferroelectricite, Inst. Nat. des Sci. Appliquees, Villeurbanne, France
fDate :
28 May-1 June 2002
Abstract :
The 1-3 piezoelectric composites have been developed and utilized in many application fields for several decades. For design purposes, constitutive relations have been proposed allowing the prediction of the composite properties. In fact, because the piezoelectric active phase properties are very sensitive with heat treatment or stress, these prediction laws could be inaccurate. When composites are made with a high glass-rubber transition temperature polymer phase, a high curing temperature is needed. In this case, the variation of the composite permittivity is not any more a proportional function of the PZT volume fraction. This points out a decrease of the PZT material permittivity in the composite as a function of the PZT volume fraction instead of a constant. This is interpreted in terms of the non negligible effect of the thermo-mechanical stresses induced by the polymer curing process. In-situ measurements of this stress are described. A thermomechanical model is proposed along with PZT characterization under uni-axial stress, both giving a good numerical interpretation of the composite abnormal behavior. From the relation between the PZT permittivity and polarization variation in a 1-3 composite during the curing and estimated thermal stress by the model, the thermo-mechanical stress effects on the PZT in the composite are investigated.
Keywords :
composite materials; curing; dielectric polarisation; filled polymers; glass transition; permittivity; piezoceramics; thermal stresses; 1-3 piezoelectric composite; PZT; PZT characterization; PZT material permittivity; PZT volume fraction; PbZrO3TiO3; composite abnormal behavior; composite permittivity; constitutive relations; heat treatment; high curing temperature; high glass-rubber transition temperature polymer phase; in-situ measurements; piezoelectric active phase properties; polarization variation; prediction laws; stress; thermal stress; thermo-mechanical stresses; thermomechanical stress; uni-axial stress; Composite materials; Curing; Heat treatment; Permittivity measurement; Polarization; Polymers; Stress measurement; Temperature sensors; Thermal stresses; Thermomechanical processes;
Conference_Titel :
Applications of Ferroelectrics, 2002. ISAF 2002. Proceedings of the 13th IEEE International Symposium on
Print_ISBN :
0-7803-7414-2
DOI :
10.1109/ISAF.2002.1195946