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Constitutive modelling of ductile damage matrix reinforced by platelets-like particles with imperfect interfaces: Application to graphene polymer nanocomposite materials

机译:具有不完善界面的片状颗粒增强的韧性损伤基质的本构模型:在石墨烯聚合物纳米复合材料中的应用

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In this paper, the mechanical response of composites consisting of ductile matrix reinforced by platelets like particles is derived with imperfect interfaces. Due to its flexibility to study imperfect interfaces with limited number of model parameters, the linear spring model LSM is considered. Moreover, the interfacial contribution to the strain concentration tensor within each material phase and inside the average strain filed is described by a modified Mod-Tanaka scheme. The material nonlinearity is established by the J(2) plasticity and Lemaitre-Chaboche damage model. A generalised mid-point rule is used to solve rate equations yielding to anisotropic consistent (algorithmic) tangent operators. To avoid spurious macroscopic stress-strain response, an isotropisation procedure is adopted during the computation of a modified Eshelby's tensor. Numerical results are performed on graphene platelets GPL-reinforced polymer PA6 composite. They confirm the possibility to achieve high stiffness with low values of GPL aspect ratio. The accumulated plastic strain and the damage variable within the matrix are influenced by the GPL volume fraction which is also involved in the softening of the overall response when imperfection is considered at the interface. (C) 2017 Elsevier Ltd. All rights reserved.
机译:在本文中,由不完善的界面推导了由延性基体组成的复合材料的力学响应,该复合材料由类似颗粒的血小板增强。由于它具有研究有限数量的模型参数的不完美界面的灵活性,因此考虑了线性弹簧模型LSM。此外,通过改进的Mod-Tanaka方案描述了在每个材料相内和在平均应变场内对应变浓度张量的界面贡献。材料非线性是由J(2)可塑性和Lemaitre-Chaboche损伤模型建立的。广义中点法则用于求解产生各向异性一致(算法)切线算符的速率方程。为了避免虚假的宏观应力-应变响应,在修正Eshelby张量的计算过程中采用了各向同性程序。对石墨烯血小板GPL增强的聚合物PA6复合材料进行了数值结果。他们证实了以低GPL长宽比实现高刚度的可能性。基质内累积的塑性应变和损伤变量受GPL体积分数的影响,当在界面处考虑缺陷时,GPL体积分数也与总体响应的软化有关。 (C)2017 Elsevier Ltd.保留所有权利。

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