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Modelling and Analysis of Piezolaminated Functionally Graded Polymer Composite Structures Reinforced with Graphene Nanoplatelets under Strong Electroelastic Fields

机译:石墨烯纳米片增强的压电化功能梯度聚合物复合结构的强电弹性场建模与分析

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This paper focuses on the electromechanical modelling and analysis of piezolaminated functionally graded polymer composites reinforced with graphene nanoplatelets considering strong electric field nonlinearities. Non-uniform distribution of reinforcement of graphene nanoplatelets is assumed along the thickness direction in multilayer polymer nanocomposites, whereas uniform dispersion GPLs in each layer is assumed. Modified Halpin-Tsai micromechanics is used to determine the effective Young's modulus of GPLs considering the effects of geometry and dimension changes. Electro-elastic nonlinear constitutive relations are used to model the piezoelectric layers under strong applied electric fields. Through variational formulation, a finite element is derived to model and analyse the layered GPL/polymer composite structures. Various simulations are performed to study the effects of several parameters like distribution pattern and size of GPLs by applying actuation voltages to piezoelectric layers.
机译:考虑到强电场非线性,本文重点研究了石墨烯纳米片增强的压电复合功能梯度聚合物复合材料的机电模型和分析。假定多层聚合物纳米复合材料中石墨烯纳米片的增强材料沿厚度方向分布不均匀,而每层中的分散GPL则假定为均匀。考虑到几何形状和尺寸变化的影响,改进的Halpin-Tsai微力学用于确定GPL的有效杨氏模量。电弹性非线性本构关系用于在强外加电场下对压电层进行建模。通过变分公式化,导出了有限元以对分层的GPL /聚合物复合结构进行建模和分析。通过向压电层施加激励电压,进行了各种模拟来研究多个参数(如分布模式和GPL尺寸)的影响。

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