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梯度纳米孪晶金属的额外强化和工作硬化。

Extra strengthening and work hardening in gradient nanotwinned metals.

机构信息

Shengyang National Laboratory for Materials Science, Institute of Metal Research, Chinese Academy of Sciences, Shenyang 110016, China.

School of Materials Science and Engineering, University of Science and Technology of China, Shenyang 110016, China.

出版信息

Science. 2018 Nov 2;362(6414). doi: 10.1126/science.aau1925.

Abstract

Gradient structures exist ubiquitously in nature and are increasingly being introduced in engineering. However, understanding structural gradient-related mechanical behaviors in all gradient structures, including those in engineering materials, has been challenging. We explored the mechanical performance of a gradient nanotwinned structure with highly tunable structural gradients in pure copper. A large structural gradient allows for superior work hardening and strength that can exceed those of the strongest component of the gradient structure. We found through systematic experiments and atomistic simulations that this unusual behavior is afforded by a unique patterning of ultrahigh densities of dislocations in the grain interiors. These observations not only shed light on gradient structures, but may also indicate a promising route for improving the mechanical properties of materials through gradient design.

摘要

梯度结构在自然界中无处不在,并且越来越多地被引入到工程中。然而,理解所有梯度结构(包括工程材料中的梯度结构)的结构梯度相关力学性能一直具有挑战性。我们研究了纯铜中具有高度可调结构梯度的梯度纳米孪晶结构的力学性能。大的结构梯度允许更好的加工硬化和强度,这些可以超过梯度结构的最强组件。我们通过系统的实验和原子模拟发现,这种异常行为是由晶粒内部超高密度位错的独特模式提供的。这些观察结果不仅揭示了梯度结构,而且可能为通过梯度设计改善材料的力学性能提供了一条有前途的途径。

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