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首页> 外文期刊>Journal of Materials Science >Finite element analysis of a polymer composite subjected to a sliding steel asperity - Part II: Parallel and anti-parallel fibre orientations
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Finite element analysis of a polymer composite subjected to a sliding steel asperity - Part II: Parallel and anti-parallel fibre orientations

机译:滑动钢粗糙的聚合物复合材料的有限元分析-第二部分:平行和反平行纤维取向

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摘要

Finite element (FE) micro-models have been developed in order to determine contact, stress and strain conditions produced by a steel asperity sliding on the surface of a fibre-reinforced polymer composite. Two cases were studied, i.e. a parallel and an anti-parallel fibre orientation relative to the sliding direction. In order to get more realistic simulation results relating to the failure conditions in the composite structure, FE contact macro/micro-models were used, contrary to the so far widely applied anisotropic analytical or numerical macro-models. To model a "micro-environment" as part of a "macro-environment", the displacement coupling technique was introduced. The contact analysis operates on both the macro- and the micro-level, applying node-to-node contact elements. The contact results, especially the contact pressure distribution, can characterize the real fibre/matrix micro-system. Displacement and strain results lead to explanations of fibre related phenomena, matrix shear effects, and fibre/matrix debonding events. On the basis of the stress results, conclusions were drawn on the possible wear mechanisms of the fibre-reinforced polymer composite. For parallel fibre orientation, fibre/matrix debonding as a result of shear stresses at the interface, matrix shear type failure and fibre thinning are the dominant sliding wear mechanisms. If an anti-parallel fibre orientation is considered, matrix shear, tension/compression type fibre/matrix debonding and fibre thinning, associated with fibre cracking events, are the most dominant wear mechanisms. To study the wear mechanisms experimentally, diamond tip scratch tests were carried out, showing that the predicted failure events occur also in reality. (C) 2002 Kluwer Academic Publishers. [References: 14]
机译:为了确定由钢粗糙物在纤维增强聚合物复合材料表面上滑动产生的接触,应力和应变条件,已经开发了有限元(FE)微观模型。研究了两种情况,即相对于滑动方向的平行和反平行纤维取向。为了获得与复合结构破坏条件有关的更逼真的仿真结果,使用了有限元接触宏/微观模型,与迄今为止广泛使用的各向异性解析或数值宏模型相反。为了将“微环境”建模为“宏环境”的一部分,引入了位移耦合技术。接触分析在宏观和微观两个层面上进行,应用了节点到节点的接触元素。接触结果,尤其是接触压力分布,可以表征真实的纤维/基质微系统。位移和应变结果可以解释与纤维相关的现象,基体剪切效应以及纤维/基体剥离事件。根据应力结果,得出了纤维增强聚合物复合材料可能的磨损机理的结论。对于平行的纤维取向,由于界面处的剪切应力导致的纤维/基体剥离,基体剪切型破坏和纤维稀化是主要的滑动磨损机制。如果考虑到反平行的纤维取向,则与纤维开裂事件相关的基质剪切,拉伸/压缩型纤维/基体剥离和纤维稀化是最主要的磨损机制。为了通过实验研究磨损机理,进行了金刚石刀尖刮擦测试,表明预测的故障事件也在现实中发生。 (C)2002 Kluwer学术出版社。 [参考:14]

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