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A study of size effects and length scales in fracture and fatigue of metals by second gradient modelling

机译:通过二次梯度建模研究金属断裂和疲劳的尺寸效应和长度尺度

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摘要

As the dimensions of structures are scaled down to the micro- and nano-domains, the mechanical behaviour becomes size dependent and thus, we cannot expect the classical elasticity solutions to hold. In particular, recent experimental investigations of fatigue strength of metals show pronounced strengthening due to the influences of small geometrical dimensions. Based on second gradient elasticity framework as particularized on beams, closed form solutions to idealized problems of elastic cantilever bending, elastic three-point bending and elasto-plastic torsion have been found, showing considerable stiffening, toughening and hardening, respectively, compared to the classical theory predictions. In these models, the intrinsic material length scale was taken to be constant. Furthermore, we describe a gradient solid with a characteristic length which is not a fixed material parameter but depends on the amount of plastic effective strain amplitude, as obtained from cyclic strain hardening. A respective evolution law is suggested and discussed.
机译:随着结构的尺寸缩小到微米和纳米域,机械行为变得取决于尺寸,因此,我们不能期望经典的弹性解能够成立。尤其是,最近的金属疲劳强度实验研究表明,由于较小的几何尺寸的影响,金属明显增强了强度。基于梁上的第二个梯度弹性框架,找到了针对弹性悬臂弯曲,弹性三点弯曲和弹塑性扭转理想化问题的闭式解,与传统的相比,分别显示出显着的加劲,增韧和硬化理论预测。在这些模型中,固有材料长度尺度被认为是恒定的。此外,我们描述了一种具有特征长度的梯度固体,该特征长度不是固定的材料参数,而是取决于塑性有效应变幅度的量,如从循环应变硬化获得的那样。建议并讨论了各自的演化规律。

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