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阐明晶界作为位错源和障碍物的双重作用及其对韧性和脆韧转变的影响。

Elucidating the dual role of grain boundaries as dislocation sources and obstacles and its impact on toughness and brittle-to-ductile transition.

作者信息

Reiser Jens, Hartmaier Alexander

机构信息

Karlsruhe Institute of Technology, Institute for Applied Materials, 76344, Eggenstein-Leopoldshafen, Germany.

Ruhr-Universität Bochum, Interdisciplinary Centre for Advanced Materials Simulation, 44780, Bochum, Germany.

出版信息

Sci Rep. 2020 Feb 17;10(1):2739. doi: 10.1038/s41598-020-59405-5.

Abstract

In this paper, we resolve the role of grain boundaries on toughness and the brittle-to-ductile transition. On the one hand, grain boundaries are obstacles for dislocation glide. On the other hand, the intersection points of grain boundaries with the crack front are assumed to be preferred dislocation nucleation sites. Here, we will show that the single contributions of grain boundaries (obstacles vs. source) on toughness and the brittle-to-ductile transition are contradicting, and we will weight the single contributions by performing carefully designed numerical experiments by means of two-dimensional discrete dislocation dynamics modelling. In our parameter studies, we vary the following parameters: (i) the mean free path for dislocation glide, δ, combined with (ii) the (obstacle) force of the grain boundary, ϕ, and (iii) the dislocation source spacing along the crack front, λ. Our results show that for materials or microstructures for which the mean distance of the intersection points of grain boundaries with the crack front is the relevant measure for λ, a decrease of grain size results in an increase of toughness. The positive impact of grain boundaries outweighs the negative consequences of dislocation blocking. Furthermore, our results explain the evolving anisotropy of toughness in cold-worked metals and give further insight into the question of why the grain-size-dependent fracture toughness passes through a minimum (and the brittle-to-ductile transition temperature passes through a maximum) at an intermediate grain size. Finally, a relation of the grain-size-dependence of fracture toughness in the form of K(d, d) = K + kd/d is deduced.

摘要

在本文中,我们解析了晶界对韧性以及脆韧转变的作用。一方面,晶界是位错滑移的障碍。另一方面,晶界与裂纹前沿的交点被认为是优先的位错形核位点。在此,我们将表明晶界(障碍与源)对韧性和脆韧转变的单一贡献是相互矛盾的,并且我们将通过二维离散位错动力学建模进行精心设计的数值实验来权衡这些单一贡献。在我们的参数研究中,我们改变以下参数:(i) 位错滑移的平均自由程δ,同时结合 (ii) 晶界的(障碍)力ϕ,以及 (iii) 沿裂纹前沿的位错源间距λ。我们的结果表明,对于那些晶界与裂纹前沿交点的平均距离是λ的相关度量的材料或微观结构,晶粒尺寸的减小会导致韧性增加。晶界的积极影响超过了位错阻碍的负面后果。此外,我们的结果解释了冷加工金属中韧性不断变化的各向异性,并进一步深入探讨了为什么与晶粒尺寸相关的断裂韧性在中间晶粒尺寸处会经历一个最小值(以及脆韧转变温度会经历一个最大值)的问题。最后,推导出了断裂韧性与晶粒尺寸相关性的关系式,形式为K(d, d) = K + kd/d 。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a772/7026077/af272a7ae4a8/41598_2020_59405_Fig1_HTML.jpg

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