
@Article{icces.2009.009.127,
AUTHOR = {Harald  Berger, Ulrich  Gabbert, Reinaldo  Rodriguez-Ramos},
TITLE = {An extended numerical homogenization technique for piezoelectric composites with arbitrary fiber arrangements},
JOURNAL = {The International Conference on Computational \& Experimental Engineering and Sciences},
VOLUME = {9},
YEAR = {2009},
NUMBER = {2},
PAGES = {127--129},
URL = {http://www.techscience.com/icces/v9n2/30145},
ISSN = {1933-2815},
ABSTRACT = {Piezoelectric materials have the property of converting electrical energy into mechanical energy and vice versa. This reciprocity in the energy conversion makes piezoelectric ceramics very attractive for use as sensors and actuators. By combining piezoelectric fibers with passive non-piezoelectric polymer composites with superior properties can be created. But for design of such smart micro-macro structures homogenization techniques are necessary to describe the overall behavior of piezocomposites expressed by effective material coefficients.<br/>
A number o fnumerical and analytical methods have been developed to estimate the effective coefﬁcients. Although analytical homogenization methods provide excellent results it is difﬁcult to extend them to composites with more complex distributionof ﬁbers. <br/>
In this paper a numerical technique for calculating effective properties of piezoelectric ﬁber composites with arbitrary ﬁber distribution is introduced. The method is based on ﬁnite element modeling of a unit cell. Due to the involved systematic scheme of appropriate boundary conditionsand loads for ensuring periodicity this technique can be applied to composites with various ﬁber volume fractions and ﬁber distributions, from square over hexagonal and rhombic to random arrangements (Figure 1). That means in contrast to many published approaches the developed technique allows the extension to composites with arbitrary geometrical inclusion conﬁgurations and provides a powerful tool for fast calculation of their effective material properties. <br/>
The geometrical generation of random distribution of ﬁbers in the three dimensional unit cell is based on a modiﬁed random sequential adsorption (RSA) algorithm. By using the ﬁnite element code ANSYS with its included ANSYS Parametric Design Language (APDL) a high automation can be achieved for generating the model, applying the boundary conditionsand calculating the full set of elastic, piezeoelectric and dielectriceffective material coefﬁcients. <br/>
For several test cases the results are compared and veriﬁed with analytical and other numerical solutionsfrom literature and with experimental data.},
DOI = {10.3970/icces.2009.009.127}
}



