Title of article
On macroscopic elastic and conductivity properties of perfectly random cell composites
Author/Authors
Craig L. Hom، نويسنده , , Natarajan Shankar، نويسنده ,
Issue Information
روزنامه با شماره پیاپی سال 1996
Pages
23
From page
1757
To page
1779
Abstract
nonlinear, static finite element technique is developed and implemented for electrostrictive
ceramic solids. This numerical method is based on Toupin’s elastic dielectric theory and
models full electromechanical coupling in the solid via the Maxwell stress and constitutive equations
[Toupin, R. A. (1956). The elastic dielectric. J. Rational Mech. Anal. 5, 849-915; Toupin, R. A.
(1963). A dynamical theory of elastic dielectrics. Int. J. Engrrg Sci. 1, 101-1261. The formulation
incorporates the constitutive model of Horn and Shankar [(1994). A fully coupled constitutive
model for electrostrictive ceramic materials. J. Intell. Muter. Syst. Struct. 5, 79.5-801]. This model
simulates polarization saturation at high electric fields and nonlinear coupling of the mechanical
and electric field variables. The finite element technique is demonstrated by solving the problem of
a multilayered actuator constructed from a lead-magnesium-niobate electrostrictor. Both the electric
field and stress estate are computed near the tip of an internal electrode. The results show that the
nonlinear dielectric behavior significantly alters the electric field near the tip to form a stress
singularity. An analytical solution of the internal electrode problem is presented and compared with
the finite element predictions for verification. The comparison shows a good qualitative agreement
between the twos solutions. Finally, the numerical results are used to examine crack nucleation and
growth from the electrode tip.
Journal title
International Journal of Solids and Structures
Serial Year
1996
Journal title
International Journal of Solids and Structures
Record number
445899
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