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Simulated electrical response of randomly distributed and aligned graphene/polymer nanocomposites

机译:随机分布和排列的石墨烯/聚合物纳米复合材料的模拟电响应

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In this work, a recently developed numerical method that simulates the electrical response of a graphene/polymer nanocomposite is validated with experimental data. The approach is based on the multiscale method and consists of a unit cell and a representative volume element (RVE), accounting for aligned and randomly distributed nanoparticles. At the unit cell level, the material nano characteristics (filler geometry, constituent electrical and interfacial properties) are integrated into a local resistance algebraic matrix. The material architecture is then modelled at the micro-level (RVE) by a user-defined distribution of the unit cell electrical properties. A statistical sample was studied and the average electrical response was compared with measurements for direct (DC) and alternate current (AC). The proposed methodology accurately describes the nanocomposite electrical behaviour with its volume fraction and loading frequency. The model is proven to be an effective, flexible and time-efficient tool to design and optimize advanced nanocomposite systems.
机译:在这项工作中,通过实验数据验证了最近开发的模拟石墨烯/聚合物纳米复合材料电响应的数值方法。该方法基于多尺度方法,由一个晶胞和一个代表性的体积元素(RVE)组成,考虑了对齐的和随机分布的纳米粒子。在晶胞水平上,材料的纳米特性(填充物的几何形状,组成的电学和界面特性)被集成到局部电阻代数矩阵中。然后,通过用户定义的晶胞电特性分布在微观级别(RVE)对材料架构进行建模。研究了统计样本,并将平均电响应与直流(DC)和交流(AC)的测量值进行了比较。所提出的方法准确地描述了纳米复合材料的电学行为及其体积分数和加载频率。该模型被证明是设计,优化高级纳米复合材料系统的有效,灵活且省时的工具。

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