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Predicting nonlinear stress-strain curves of unidirectional fibrous composites in consideration of stick-slip

机译:考虑粘滑的单向纤维复合材料非线性应力-应变曲线预测

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A simple and efficient methodology is developed for computing nonlinear stress-strain curve of unidirectional fibrous nano-composites loaded in the direction of the perfectly aligned fibers. The method, based on shear lag analysis and derived from basic principles of continuum micromechanics, incorporates shear stick-slip constitutive law at the fiber-matrix interface. The matrix is modeled as elastic-plastic with linear isotropic strain hardening. The approach thus predicts the nonlinear behavior of the composite stress-strain curve due to both interfacial shear slippage of reinforcement fibers within the matrix and due to spread of plasticity within the matrix. The proposed method is compared to experimental results on aligned fibrous nano-composites and very good agreement is obtained when low values of interfacial shear strength are used. The study shows that when the interfacial bond between the matrix and the fiber is strong, higher stress concentration leads to spread of plasticity in the composite at lower bulk strains. However, when the bond is weak, interfacial slippage causes a relief in the accumulation of stress in the matrix. Both factors seem to provide reasonable explanation for the observed nonlinearity and improved stiffness of the composite. A set of parametric studies is also performed and the proposed method is compared to existing models.
机译:开发了一种简单有效的方法来计算沿完美排列的纤维方向加载的单向纤维纳米复合材料的非线性应力-应变曲线。该方法基于剪切滞后分析,并从连续微力学的基本原理派生而来,该方法在纤维-基体界面处结合了剪切棒-滑移本构关系。将该基体建模为具有线性各向同性应变硬化的弹塑性模型。因此,由于基质内增强纤维的界面剪切滑移和基质内塑性的扩散,该方法可以预测复合应力-应变曲线的非线性行为。将所提出的方法与取向纤维纳米复合材料的实验结果进行了比较,当使用较低的界面剪切强度值时,可以获得很好的一致性。研究表明,当基体与纤维之间的界面结合牢固时,较高的应力集中会导致在较低的整体应变下复合材料的塑性扩展。但是,当粘结较弱时,界面滑移会减轻基质中的应力累积。这两个因素似乎都为观察到的非线性和复合材料刚度的提高提供了合理的解释。还进行了一组参数研究,并将所提出的方法与现有模型进行了比较。

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