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Strain gradient plasticity effects in whisker-reinforced metals

机译:晶须增强金属的应变梯度可塑性效应

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A metal reinforced by fibers in the micron range is studied using the strain gradient plasticity theory of Fleck and Hutchinson (J. Mech. Phys. Solids 49 (2001) 2245). Cell-model analyses are used to study the influence of the material length parameters numerically, for both a single parameter version and the multiparameter theory, and significant differences between the predictions of the two models are reported. It is shown that modeling fiber elasticity is important when using the present theories. A significant stiffening effect when compared to conventional models is predicted, which is a result of a significant decrease in the level of plastic strain. Moreover, it is shown that the relative stiffening effect increases with fiber volume fraction. The higher-order nature of the theories allows for different higher-order boundary conditions at the fiber-matrix interface, and these boundary conditions are found to be of importance. Furthermore, the influence of the material length parameters on the stresses along the interface between the fiber and the matrix material is discussed, as well as the stresses within the elastic fiber which are of importance for fiber breakage.
机译:使用Fleck和Hutchinson的应变梯度可塑性理论研究了由微米范围内的纤维增强的金属(J.Mech.Phys.Solids 49(2001)2245)。对于单参数版本和多参数理论,使用单元模型分析来数值研究材料长度参数的影响,并且报告了两种模型的预测之间的显着差异。结果表明,使用当前理论对纤维弹性建模很重要。与传统模型相比,预计会出现明显的加强效果,这是塑性应变水平显着降低的结​​果。此外,显示出相对增强效果随纤维体积分数而增加。理论的高阶性质允许在纤维-基质界面处具有不同的高阶边界条件,并且发现这些边界条件是重要的。此外,还讨论了材料长度参数对沿纤维和基体材料之间的界面应力的影响,以及对纤维断裂至关重要的弹性纤维内部的应力。

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