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Efficient Multiscale FE-FFT-Based Modeling and Simulation of Macroscopic Deformation Processes with Non-linear Heterogeneous Microstructures

机译:基于高效多尺度FE-FFT的非线性异质微观结构宏观变形过程建模与仿真

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摘要

The purpose of this work is the prediction of micromechanical fields and the overall material behavior of heterogeneous materials using an efficient and robust two-scale FE-FFT-based computational approach. The macroscopic boundary value problem is solved using the finite element (FE) method. The constitutively dependent quantities such as the stress tensor are determined by the solution of the local boundary value problem. The latter is represented by a periodic unit cell attached to each macroscopic integration point. The local algorithmic formulation is based on fast Fourier transforms (FFT), fixed-point and Newton-Krylov subspace methods (e.g. conjugate gradients). The handshake between both scales is defined through the Hill-Mandel condition. In order to ensure accurate results for the local fields as well as feasible overall computation times, an efficient solution strategy for two-scale full-field simulations is employed. As an example, the local and effective mechanical behavior of ferrit-perlit annealed elasto-viscoplastic 42CrMo4 steel is studied for three-point-bending tests. For simplicity, attention is restricted to the geometrically linear case and quasi-static processes.
机译:这项工作的目的是使用一种高效且鲁棒的基于两步FE-FFT的计算方法来预测微机械场和异质材料的整体材料性能。使用有限元(FE)方法可以解决宏观边界值问题。诸如张量之类的本构相关量由局部边界值问题的解决方案确定。后者由附着在每个宏观积分点上的周期性晶胞表示。局部算法公式基于快速傅里叶变换(FFT),定点和Newton-Krylov子空间方法(例如共轭梯度)。两个标尺之间的握手是通过Hill-Mandel条件定义的。为了确保对于局部场的准确结果以及可行的总体计算时间,采用了用于两尺度全场模拟的有效解决方案策略。例如,针对三点弯曲试验研究了铁素体渗碳退火的粘弹塑性42CrMo4钢的局部有效力学行为。为简单起见,注意力仅限于几何线性情况和准静态过程。

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  • 会议地点 Dubrovnik(HR)
  • 作者单位

    Institute of Applied Mechanics, RWTH Aachen University, 52074 Aachen, Germany;

    Central Facility for Electron Microscopy, RWTH Aachen University, 52074 Aachen, Germany;

    Institute of Applied Mechanics, RWTH Aachen University, 52074 Aachen, Germany;

    Central Facility for Electron Microscopy, RWTH Aachen University, 52074 Aachen, Germany;

    Material Mechanics, RWTH Aachen University, 52062 Aachen, Germany,Microstructure Physics and Alloy Design, Max-Planck-Institut fuer Eisenforschung GmbH, 40237 Duesseldorf, Germany;

    Institute of Applied Mechanics, RWTH Aachen University, 52074 Aachen, Germany;

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