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Molecular dynamics investigation on the interfacial shear creep between carbon fiber and epoxy matrix

机译:碳纤维与环氧基质界面剪切蠕变的分子动力学研究

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摘要

Carbon fiber-reinforced polymer (CFRP) composite is subject to external loads during service life, suffering the interfacial creep between the fiber and the matrix and eventually the interfacial slippage. CFRP composite loses the interfacial integrity due to the interfacial creep and the long-term durability is weakened. In order to understand the degradation, microscopic details of interfacial structural changes during the creep are essential. This study aims to investigate microscopic creep behavior of a carbon fiber/epoxy interface at different shear load levels using molecular dynamics simulations. A molecular interface model consisting of an epoxy molecule bonded to graphite sheets representing the fiber outer layer is constructed, which is validated by comparing the mass density, glass-transition temperature and Young's modulus of bonded epoxy with experimental measurements. According to the creep simulation, there is a threshold stress for the onset of creep failure, above which the interface detaches. Comparatively, no interfacial detachment occurs under the low stress regime, where the displacement-force curve is plotted and used to quantify the energy barrier to the onset of creep failure. Meanwhile, the strain and stress evolution of the interface are correlated to interfacial structural changes to understand the interfacial creep mechanism. This study provides molecular insights into the interfacial creep behavior in the fiber/matrix system and form the basis of multiscale investigation framework on the interfacial creep behavior.
机译:碳纤维增强聚合物(CFRP)复合材料在使用寿命期间受到外部载荷,患有纤维和基质之间的界面蠕变,并且最终是界面滑动。 CFRP复合材料由于界面蠕变而导致的界面完整性,并且长期耐久性被削弱。为了了解蠕变期间界面结构变化的微观细节是必不可少的。本研究旨在使用分子动力学模拟研究不同剪切载荷水平的碳纤维/环氧界面的微观蠕变行为。构造了由粘合到表示纤维外层的石墨片的环氧树脂分子组成的分子界面模型,通过比较与实验测量的键合环氧树脂的质量密度,玻璃化温度和杨氏模量来验证。根据蠕变仿真,有一个阈值应力,用于蠕变失败的开始,上方界面分离。相比之下,在低应力状态下没有发生界面脱离,其中绘制位移力曲线并用于量化蠕变失败的发作的能量屏障。同时,界面的应变和应力演化与界面结构变化相关,以了解界面蠕变机制。本研究为纤维/矩阵系统中的界面蠕变行为提供了分子见解,并在界面蠕变行为上形成多尺度调查框架的基础。

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