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Multiscale Numerical Modeling for Prediction of Piezoresistive Effect for Polymer Composites with a Highly Segregated Structure

机译:多尺度数值模型用于高偏析结构的聚合物复合材料压阻效应预测

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摘要

In this work, the piezoresistive effect for a polymer nanocomposite with a highly segregated distribution of conductive filler was investigated. As a base polymer for the investigated nanocomposites, ultrahigh-molecular-weight polyethylene, processed in a solid state (below melting point), was used. Multiwalled carbon nanotubes (MWCNTs) were used as a nanofiller forming a highly segregated structure in between polymer particles. A numerical multiscale approach based on the finite element method was proposed to predict changes in the conductive structure composed of MWCNTs in response to uniaxial deformation of the material. At the nanoscale, numerical simulations were conducted for uniformly distributed MWCNTs providing confinement of the filler to a two-dimensional layer with a high volume fraction of the filler in between two polymer particles. At the microscale, the piezoresistive response to uniaxial deformation for the three-dimensional highly segregated structure reconstructed from experimental data was investigated numerically. The embedded element method was implemented to conduct a realistic and computationally efficient simulation of MWCNT behavior during deformation of the nanocomposite. The results of numerical simulations were compared with the experimental data to prove the correctness of assumptions used in the modeling.
机译:在这项工作中,研究了具有高度隔离的导电填料分布的聚合物纳米复合材料的压阻效应。作为所研究的纳米复合材料的基础聚合物,使用以固态(低于熔点)处理的超高分子量聚乙烯。多壁碳纳米管(MWCNT)用作纳米填充物,在聚合物颗粒之间形成高度隔离的结构。提出了一种基于有限元方法的数值多尺度方法,以预测响应于材料的单轴变形的MWCNT构成的导电结构的变化。在纳米级,进行数值模拟,用于均匀分布的MWCNT,将填料的限制提供给二维层,其在两个聚合物颗粒之间具有填料的高容积分数。在微观尺寸下,在数值上研究了对从实验数据重建的三维高度隔离结构的单轴变形的压阻性响应。实施了嵌入元件方法,以在纳米复合材料变形期间进行MWCNT行为的逼真和计算有效模拟。将数值模拟的结果与实验数据进行了比较,以证明建模中使用的假设的正确性。

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