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Modeling and simulation of magnetic-shape-memory polymer composites

机译:磁性形状记忆聚合物复合材料的建模与仿真

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Composites of small magnetic-shape-memory (MSM) particles embedded in a polymer matrix have been proposed as an energy damping mechanism and as actuators. Compared to a single crystal bulk material, the production is simpler and more flexible, as both type of the polymer and geometry of the microstructure can be tuned. Compared to polycrystals, in composites the soft polymer matrix permits the active grains to deform to some extent independently; in particular the rigidity of grain boundaries arising from incompatible orientations is reduced. We study the magnetic-field-induced deformation of composites, on the basis of a continuous model incorporating elasticity and micromagnetism, in a reduced two-dimensional, plane-strain setting. The aim is to give conceptual guidance for the design of composite materials independent of the concrete macroscopic device. Thus, on the background of homogenization theory, we determine the macroscopic behavior by studying an affine-periodic cell problem. An energy descent algorithm is developed, whose main ingredients are a boundary element method for the computation of the elastic and magnetic field energies; and a combinatorial component reflecting the phase transition in the individual particles, which are assumed to be of single-domain type. Our numerical results demonstrate the behavior of the macroscopic material properties for different possible microstructures, and give suggestions for the optimization of the composite.
机译:已经提出了嵌入聚合物基体中的小磁性形状记忆(MSM)颗粒的复合材料作为能量阻尼机制和致动器。与单晶块状材料相比,由于可以同时调整聚合物的类型和微观结构的几何形状,因此生产更简单,更灵活。与多晶体相比,在复合材料中,柔软的聚合物基体可以使活性颗粒独立地在某种程度上变形。尤其是由于不相容的取向引起的晶界的刚性降低。我们在减小的二维平面应变设置下,基于结合弹性和微磁性的连续模型,研究了复合材料的磁场诱导变形。目的是为独立于混凝土宏观装置的复合材料设计提供概念指导。因此,在均质化理论的背景下,我们通过研究仿射周期细胞问题来确定宏观行为。提出了一种能量下降算法,其主要成分是计算弹性和磁场能量的边界元方法。以及反映单个粒子中相变的组合成分,假定它们是单畴类型。我们的数值结果证明了不同可能的微观结构的宏观材料性能,并为复合材料的优化提供了建议。

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