Constitutive modeling of nonlinear reversible and irreversible ferromagnetic behaviors and application to multiferroic composites

被引:28
作者
Avakian, Artjom [1 ]
Ricoeur, Andreas [1 ]
机构
[1] Univ Kassel, Inst Mech, Monchebergstr 7, D-34125 Kassel, Germany
关键词
ferromagnetics; magnetostriction; hysteresis loops; nonlinear constitutive modeling; Barkhausen jumps; domain wall motion; multiferroic coupling; FINITE-ELEMENT SIMULATION; VECTOR PREISACH MODEL; MAGNETOSTRICTIVE PROPERTIES; SINTERING CONDITIONS; PRODUCT PROPERTIES; HYSTERESIS; STRESS; MICROSTRUCTURE; MAGNETIZATION; NANOPARTICLES;
D O I
10.1177/1045389X16634212
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The coupling of magnetic and mechanical fields due to the constitutive behavior of a material is commonly denoted as magnetostrictive effect. The latter is only observed with large coupling coefficients in ferromagnetic materials, where coupling is caused by the rotation of the domains as a result of magnetic (Joule effect) or mechanical (Villari effect) loads. However, only a few elements (e.g. Fe, Ni, Co, and Mn) and their compositions exhibit such a behavior. In this article, the constitutive modeling of nonlinear ferromagnetic behavior under combined magnetomechanical loading as well as the finite element implementation is presented. Both physically and phenomenologically motivated constitutive models have been developed for the numerical calculation of principally different nonlinear magnetostrictive behaviors. On this basis, magnetization, strain, and stress are predicted, and the resulting effects are analyzed. The phenomenological approach covers reversible nonlinear behavior as it is observed, for example, in cobalt ferrite. Numerical simulations based on the physically motivated model focus on the calculation of hysteresis loops and the prediction of local domain orientations and residual stress going along with the magnetization process. Finally, a model for ferroelectric materials is applied in connection with the physically based ferromagnetic approach, in order to predict magnetoelectric coupling coefficients in multifunctional composite.
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页码:2536 / 2554
页数:19
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