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Stress transfer through the interphase in curved-fiber pullout tests of nanocomposites

机译:纳米复合材料弯曲纤维拉拔试验中相间的应力传递

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摘要

The properties of nanoscale interphase significantly influence the mechanics of load transfer and hence the macroscopic behavior of fiber-reinforced composites. Herein, we present a theoretical framework to study the mechanics of stress transfer through both homogeneous and inhomogeneous interphases in a curved-fiber pull-out test and analyse the stress field in the three-phase composite system based on the shear-lag theory. Explicit expressions are derived to estimate the normal and shear stresses in the fiber, interphase and matrix. The results from the analytical model are validated with those obtained from a finite element analysis. Furthermore, influence of radially modulus graded interphase, according to linear and power laws, on the pull-out performance is also investigated. Graded interphases are observed to reduce the interfacial shear stresses by up to 40% as compared to the homogeneous interphases. The stress transfer in three-phase curved-fiber pullout test considering interfacial debonding and sliding has also been studied. Finally, models are simplified for straight-fiber pullout case considering both homogeneous and graded interphases. The study can serve as a framework to investigate the pull-out characteristics of a curved fiber in nanocomposites.
机译:纳米级相间的性质显着影响载荷传递的力学,从而影响纤维增强复合材料的宏观行为。在这里,我们提供了一个理论框架,以研究弯曲纤维拉拔试验中均相和不均相的应力传递机理,并基于剪切滞后理论分析了三相复合系统中的应力场。导出了明确的表达式以估计纤维,相间和基体中的法向应力和剪切应力。分析模型的结果已通过有限元分析获得了验证。此外,还研究了根据线性和幂定律的径向模量梯度相间对拔出性能的影响。与均质相相比,观察到渐变的相可将界面剪切应力降低多达40%。还研究了考虑界面剥离和滑动的三相弯曲纤维拉拔试验中的应力传递。最后,针对均质和渐变相间的直纤维拔出情况简化了模型。该研究可以作为研究纳米复合材料中弯曲纤维拉出特性的框架。

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