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Multiscale Modeling of Electroactive Polymer Composites

机译:电活性聚合物复合材料的多尺度建模

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Electroactive polymer composites are materials that consist of an elas-tomeric matrix and dispersed high-dielectric-modulus or metallic inclusions. The addition of the inclusions generally leads to a significant enhancement of the electrostatic actuation or, more generally, of the overall electro-mechanical coupling. This enhancement is mainly due to the contrast of dielectric moduli of the individual phases, which induces fluctuations of the electric field in the matrix material. The present contribution aims at the derivation and implementation of a multi-scale homogenization framework for the macroscopic simulation of electroactive polymer composites with explicit consideration of their microscopic structure. This is achieved through the development of a two-scale computational homogenization approach for electro-mechanically coupled solids at finite deformations. The microscopic part of the problem is defined on a representative volume element that is attached at each integration point of the macroscopic domain. In order to derive energetically consistent transition conditions between the scales a generalized form of the Hill-Mandel condition extended to electro-elastic phenomena at large deformations is exploited. An efficient solution of the macroscopic boundary value problem is guaranteed by means of an algorithmically consistent tangent. The method is applied to the simulation of different dielectric polymer-ceramic composites, which are analzyed with regard to their effective actuation properties. In addition to that, an example of a multiscale electro-mechanical actuator at large deformations is presented.
机译:电活性聚合物复合材料是由抗体分散基质组成的材料和分散的高介电模量或金属夹杂物。夹杂物的添加通常导致静电致动的显着增强,或者更通常是整个电力机械耦合的显着提高。这种增强主要是由于各个阶段的电介质模型的对比度,其诱导基质材料中的电场的波动。本贡献旨在衍生和实施用于电活性聚合物复合材料的宏观模拟的多尺度均质框架,明确考虑其微观结构。这是通过在有限变形下开发用于电动耦合固体的双尺度计算均化方法来实现的。问题的微观部分在附加在宏观域的每个集成点的代表性体积元件上定义。为了在缩放之间产生高度一致的过渡条件,利用了在大变形下延伸到电弹性现象的山形伪造条件的广义形式。通过算法一致的切线保证了宏观边界值问题的有效解。该方法应用于不同介电聚合物 - 陶瓷复合材料的模拟,其在其有效致动性能方面进行了分析。除此之外,还提出了大变形的多尺度电动机械致动器的示例。

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