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A pragmatic approach for a 3D material model considering elasto-plastic behaviour, damage initiation by Puck or Cuntze and progressive failure of fibre-reinforced plastics

机译:考虑弹塑性行为的3D材料模型的语用方法,冰球或纤维增强塑料的倾向损伤和渐进式失效

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摘要

Fibre reinforced plastics with tough epoxy and thermoplastic matrices are spreading increasingly in many lightweight applications. For an efficient and reliable design the mechanical behaviour, considering non-linear plasticity, various failure modes under complex loading and damage progression, has to be estimated with numerical simulations. Most state-of-the-art continuum damage mechanics models do not consider the non-linear behaviour of the matrix material or are not suited for 3D solid elements. This work proposes a combined 3D continuum damage/plasticity model. It uses a single parameter flow criterion in combination with Cuntze's Failure Mode Concept (FMC) for intralaminar failure. The FMC requires no iterative fracture angle search as the Action Plane Strength Criterion by Puck (APSC). This work describes details of the developed model like the coupling of the FMC with a degradation model as well as the implementation into Abaqus/Standard. A validation against open-hole tension tests made out of AS4/PEEK from literature is performed. It can be shown that the prediction of experimental failure loads with the FMC as well as with the APSC provides comparable results. The maximum deviations are between -7.85% and +12.85%. However, the computation times for predictions with the FMC are significantly less than with the APSC. (C) 2020 Elsevier Ltd. All rights reserved.
机译:具有坚韧的环氧树脂和热塑性基质的纤维增强塑料在许多轻质应用中越来越多地蔓延。对于高效可靠的设计,考虑到非线性可塑性,在复杂负载下的各种故障模式下,必须通过数值模拟估算。最先进的连续损伤力学模型不考虑矩阵材料的非线性行为,或者不适合3D实体元素。这项工作提出了组合的3D连续损伤/可塑性模型。它使用单个参数流量标准与Cuntze的失败模式概念(FMC)结合使用,用于历史内失败。 FMC不需要迭代断裂角度搜索作为PUCK(APSC)的动作平面强度标准。这项工作描述了开发模型的细节,如FMC的耦合与劣化模型以及实现ABAQUS /标准。对从文献中的AS4 / PEEK中制作的持续张力测试的验证进行了验证。可以表明,使用FMC以及APSC的实验失效载荷预测提供了可比的结果。最大偏差在-7.85%和+ 12.85%之间。然而,与FMC的预测的计算时间明显小于APSC。 (c)2020 elestvier有限公司保留所有权利。

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