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Modelling mechanical percolation in graphene-reinforced elastomer nanocomposites

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arxiv 1903.10224 v1 pith:L4YAJ6CN submitted 2019-03-25 physics.app-ph cond-mat.mtrl-sci

Modelling mechanical percolation in graphene-reinforced elastomer nanocomposites

classification physics.app-ph cond-mat.mtrl-sci
keywords fillergnpsgraphenemechanicalpercolationreinforcementabovebelow
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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Graphene is considered an ideal filler for the production of multifunctional nanocomposites; as a result, considerable efforts have been focused on the evaluation and modeling of its reinforcement characteristics. In this work, we modelled successfully the mechanical percolation phenomenon, observed on a thermoplastic elastomer (TPE) reinforced by graphene nanoplatelets (GNPs), by designing a new set of equations for filler contents below and above the percolation threshold volume fraction (Vp). The proposed micromechanical model is based on a combination of the well-established shear-lag theory and the rule-of-mixtures and was introduced to analyse the different stages and mechanisms of mechanical reinforcement. It was found that when the GNPs content is below Vp, reinforcement originates from the inherent ability of individual GNPs flakes to transfer stress efficiently. Furthermore, at higher filler contents and above Vp, the nanocomposite materials displayed accelerated stiffening due to the reduction of the distance between adjacent flakes. The model derived herein, was consistent with the experimental data and the reasons why the superlative properties of graphene cannot be fully utilized in this type of composites, were discussed in depth.

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