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Modelling the nonlinear behaviour and fracture process of AS4/PEKK thermoplastic composite under shear loading

机译:对AS4 / PEKK热塑性复合材料在剪切载荷下的非线性行为和断裂过程进行建模

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摘要

The accurate determination of non-linear shear behaviour and fracture toughness of continuous carbon-fibre/polymer composites remains a considerable challenge. These measurements are often necessary to generate material parameters for advanced computational damage models. In particular, there is a dearth of detailed shear fracture toughness characterisation for thermoplastic composites which are increasingly generating renewed interest within the aerospace and automotive sectors. In this work, carbon fibre (AS4)/ thermoplastic Polyetherketoneketone (PEKK) composite V-notched cross-ply specimens were manufactured to investigate their non-linear response under pure shear loading. Both monotonic and cyclic loading were applied to study the shear modulus degradation and progressive failure. For the first time in the reported literature, we use the essential work of fracture approach to measure the shear fracture toughness of continuous fibre reinforced composite laminates. Excellent geometric similarity in the load-displacement curves was observed for ligament-scaled specimens. The laminate fracture toughness was determined by linear regression, of the specific work of fracture values, to zero ligament thickness, and verified with computational models. The matrix intralaminar fracture toughness (ply level fracture toughness), associated with shear loading was determined by the area method. This paper also details the numerical implementation of a new three-dimensional phenomenological model for carbon fibre thermoplastic composites using the measured values, which is able to accurately represent the full non-linear mechanical response and fracture process. The constitutive model includes a new non-linear shear profile, shear modulus degradation and load reversal. It is combined with a smeared crack model for representing ply-level damage initiation and propagation. The model is shown to accurately predict the constitutive response in terms of permanent plastic strain, degraded modulus as well as load reversal. Predictions are also shown to compare favourably with the evolution of damage leading to final fracture.
机译:连续碳纤维/聚合物复合材料的非线性剪切行为和断裂韧性的准确测定仍然是一个巨大的挑战。这些测量通常是生成高级计算损伤模型的材料参数所必需的。尤其是,缺少热塑性复合材料的详细的剪切断裂韧性表征,其越来越引起航空航天和汽车领域的新兴趣。在这项工作中,制造了碳纤维(AS4)/热塑性聚醚酮酮(PEKK)复合V形缺口十字交叉层样品,以研究它们在纯剪切载荷下的非线性响应。单调加载和循环加载都用于研究剪切模量的下降和渐进破坏。在所报道的文献中,我们首次使用断裂方法的基本工作来测量连续纤维增强复合材料层压板的剪切断裂韧性。对于韧带标本,在载荷-位移曲线中观察到了极好的几何相似性。层压板的断裂韧性通过线性回归,断裂值的比功达到零韧带厚度来确定,并通过计算模型进行了验证。通过面积法确定与剪切载荷相关的基质层内断裂韧性(层级断裂韧性)。本文还详细介绍了使用测量值对碳纤维热塑性复合材料建立新的三维现象学模型的数值方法,该模型能够准确表示完整的非线性机械响应和断裂过程。本构模型包括新的非线性剪切剖面,剪切模量下降和载荷反向。它与涂抹裂纹模型相结合,用于表示层级损伤的起始和扩展。该模型显示出可以根据永久塑性应变,模量降低以及载荷反向准确预测本构响应。预测结果也显示出与导致最终断裂的损伤发展相比具有优势。

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  • 作者

    Tan, Wei; Falzon, Brian;

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  • 年度 2018
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  • 原文格式 PDF
  • 正文语种 eng
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