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Electro-magneto-mechanically response of polycrystalline materials: Computational homogenization via the Virtual Element Method

机译:多晶材料的电磁机械响应:通过虚拟元素法计算均匀化

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This work presents a study on the computational homogenization of electro-magneto-mechanically coupled problems through the Virtual Element Method (VEM). VE-approaches have great potential for the homogenization of the physical properties of heterogeneous polycrystalline microstructures with anisotropic grains. The flexibility in element shapes can be exploited for creating VE-mesh with a significant lower number of degrees of freedom if compared to finite element (FE) meshes, while maintaining a high accuracy. Evidence that VE-approaches outperform FEM is available in the literature, but only addressing purely-mechanic problems (i.e. elastic properties) and transversely anisotropic materials. The aim of this work is twofold. On one hand, the study compares VE-and FE-based numerical homogenization schemes for electro-mechanically coupled problems for different crystal lattice structures and degrees of elastic anisotropy. Within all considered materials, the VEapproach outperforms the FE-approach for the same number of nodes. On the other hand, a hybrid microstructure made up by both electro-mechanical and magneto-mechanical grains is investigated resulting in an electro-magneto-mechanically coupled microstructure. Again, VEM provides a more accurate solution strategy. (C) 2021 Elsevier B.V. All rights reserved.
机译:该工作提出了通过虚拟元素方法(VEM)的电磁机械耦合问题的计算均匀化研究。在具有各向异性颗粒的异质多晶微结构的物理性质的均质性质具有巨大潜力。如果与有限元(Fe)网格相比,可以利用元素形状的灵活性,以便在有限元(FE)网格相比,在保持高精度的同时,为创建具有显着较小的自由度的ve-eth。证据表明,在文献中可以获得VE - 方法优于FEM,而是仅解决纯机械问题(即弹性性质)和横向各向异性材料。这项工作的目的是双重的。一方面,该研究比较了不同晶格结构的电机耦合问题的VE和Fe基数均匀化方案和弹性各向异性的程度。在所有考虑的材料中,VeapProach始终表现出相同数量的节点的FE - 方法。另一方面,通过电磁和磁性机械晶粒构成的混合微观结构,从而产生电磁机械耦合的微观结构。再次,VEM提供了更准确的解决方案策略。 (c)2021 elestvier b.v.保留所有权利。

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