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Mechanisms-based viscoplasticity: Theoretical approach and experimental validation for steel 304L

机译:基于机理的粘塑性:304L钢的理论方法和实验验证

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摘要

We propose a mechanisms-based viscoplasticity approach for metals and alloys. First, we derive a stochastic model for thermally-activated motion of dislocations and, then, introduce power-law flow rules. The overall plastic deformation includes local plastic slip events taken with an appropriate weight assigned to each angle of the plane misorientation from the direction of maximum shear stress. As deformation progresses, the material experiences successive reorganizations of the slip systems. The microstructural evolution causes that a portion of energy expended on plastic deformation is dissipated and the rest is stored in the defect structures. We show that the reorganizations are stable in a homogeneously deformed material. The concept is tested for steel 304L, where we reproduce experimentally obtained stress-strain responses, we construct the Frost-Ashby deformation map and predict the rate of the energy storage. The storage is assessed in terms of synchronized measurements of temperature and displacement distributions on the specimen surface during tensile loading.
机译:我们为金属和合金提出了一种基于机理的粘塑性方法。首先,我们导出了位错热激活运动的随机模型,然后介绍了幂律流规则。总体塑性变形包括局部塑性滑移事件,该事件发生在从最大剪切应力方向分配给平面未定向的每个角度的适当权重下。随着变形的进行,材料经历滑移系统的连续重组。微观结构的演变导致消耗在塑性变形上的一部分能量,而其余的能量则存储在缺陷结构中。我们表明,重组在均匀变形的材料中是稳定的。该概念已针对304L钢进行了测试,我们在其中再现了通过实验获得的应力-应变响应,构建了Frost-Ashby变形图并预测了能量存储的速率。根据在拉伸载荷过程中样品表面温度和位移分布的同步测量来评估存储量。

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