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Journal ArticleDOI

Homogenization in micro-magneto-mechanics

TLDR
In this article, the authors directly base the description of the macroscopic magneto-mechanical material behavior on the micro-magnetic domain evolution, which is realized by the incorporation of a ferromagnetic phase-field formulation into a microscopic Boltzmann continuum by the use of computational homogenization.
Abstract
Ferromagnetic materials are characterized by a heterogeneous micro-structure that can be altered by external magnetic and mechanical stimuli. The understanding and the description of the micro-structure evolution is of particular importance for the design and the analysis of smart materials with magneto-mechanical coupling. The macroscopic response of the material results from complex magneto-mechanical interactions occurring on smaller length scales, which are driven by magnetization reorientation and associated magnetic domain wall motions. The aim of this work is to directly base the description of the macroscopic magneto-mechanical material behavior on the micro-magnetic domain evolution. This will be realized by the incorporation of a ferromagnetic phase-field formulation into a macroscopic Boltzmann continuum by the use of computational homogenization. The transition conditions between the two scales are obtained via rigorous exploitation of rate-type and incremental variational principles, which incorporate an extended version of the classical Hill---Mandel macro-homogeneity condition covering the phase field on the micro-scale. An efficient two-scale computational scenario is developed based on an operator splitting scheme that includes a predictor for the magnetization on the micro-scale. Two- and three-dimensional numerical simulations demonstrate the performance of the method. They investigate micro-magnetic domain evolution driven by macroscopic fields as well as the associated overall hysteretic response of ferromagnetic solids.

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Citations
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Journal ArticleDOI

Computational and analytical investigations of shape effects in the experimental characterization of magnetorheological elastomers

TL;DR: In this paper, the effective response of several MRE specimens with respect to the individual impact of microscopic morphology and macroscopic shape was analyzed in a two-dimensional setting, and a generic analytical approach to shape effects was presented based on magneto-mechanical tractions acting on the surface of mRE specimens.
Journal ArticleDOI

A multiscale approach to the computational characterization of magnetorheological elastomers

TL;DR: In this article, a two-scale homogenization framework for magnetorheological elastomers is proposed, which allows the incorporation of the microstructure into the simulation and the application of experimentally motivated boundary conditions on arbitrary macroscopic bodies.
Journal ArticleDOI

Aspects of computational homogenization in magneto-mechanics: Boundary conditions, RVE size and microstructure composition

TL;DR: In this article, the behavior of heterogeneous magnetorheological composites subjected to large deformations and external magnetic fields is studied and different types of boundary conditions based on the primary variables of the magneto-elastic enthalpy and internal energy functionals are applied to solve the problem at the micro-scale.
Journal ArticleDOI

A variationally consistent phase-field approach for micro-magnetic domain evolution at finite deformations

TL;DR: In this article, a finite-deformation phase-field model for ferromagnetic materials is proposed for the simulation of micro-magnetic domain evolution in scenarios involving large deformations, based on a fundamental rate-type variational principle and combining classical concepts of nonlinear magneto-elasto-statics with a finite deformation version of the celebrated Landau-Lifshitz equation.
Journal ArticleDOI

Strain-mediated magnetoelectric effect for the electric-field control of magnetic states in nanomagnets

TL;DR: In this paper, the authors demonstrate the application of the strain-mediated magnetoelectric effect for the electric-field control of magnetic states in a heterostructure, and demonstrate that an electric field can drive the single-domain nanomagnet into an equilibrium vortex state.
References
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Journal ArticleDOI

Introduction to Solid State Physics

Charles Kittel, +1 more
- 01 Aug 1954 - 
Book

Introduction to solid state physics

TL;DR: In this paper, the Hartree-Fock Approximation of many-body techniques and the Electron Gas Polarons and Electron-phonon Interaction are discussed.
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A phenomenological theory of damping in ferromagnetic materials

TL;DR: In this paper, a reformulation of the phenomenological theory of the magnetization field was proposed to take large non-eddy-current damping into account in thin Permalloy sheets.
Book ChapterDOI

On the theory of the dispersion of magnetic permeability in ferromagnetic bodies

TL;DR: This chapter examines the distribution of magnetic moments in a ferromagnetic crystal and finds that if the crystal is placed in an external magnetic field, the boundaries between the layers begin to move so that the layers with magnetic moments parallel to the field become wider.
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