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Correlating the internal length in strain gradient plasticity theory with the microstructure of material

机译:用材料微观结构与应变梯度塑性理论中的内部长度相关联

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The internal length is the governing parameter in strain gradient theories which among other things have been used successfully to interpret size effects at the microscale. Physically, the internal length is supposed to be related with the microstructure of the material and evolves during the deformation. Based on Taylor hardening law, we propose a power-law relationship to describe the evolution of the variable internal length with strain. Then, the classical Fleck-Hutchinson strain gradient theory is extended with a strain-dependent internal length, and the generalized Fleck-Hutchinson theory is confirmed here, by comparing our model predictions to recent experimental data on tension and torsion of thin wires with varying diameter and grain size. Our work suggests that the internal length is a configuration-dependent parameter, closely related to dislocation characteristics and grain size, as well as sample geometry when this affects either the underlying microstructure or the ductility of the material.
机译:内部长度是应变梯度理论中的控制参数,其中已经成功地用于解释微尺度的大小效应。物理上,内部长度应该与材料的微观结构相关,并且在变形期间演变。基于泰勒硬化法,我们提出了一种动力法的关系,描述了具有菌株的可变内部长度的演变。然后,通过依赖应变的内部长度延伸经典的Fleck-Hutckinson应变梯度理论,并且通过将我们的模型预测与最近具有不同直径的薄线的张力和扭转扭转的实验数据进行比较,通过将广义的Fleck-Hutchinson理论进行了确认和粒度。我们的工作表明,内部长度是一种配置依赖性参数,与位错特征和晶粒尺寸密切相关,以及当这会影响潜在的微观结构或材料的延展性时的样品几何。

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