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揭示梯度纳米孪晶金属中额外强化的起源。

Unraveling the origin of extra strengthening in gradient nanotwinned metals.

机构信息

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

CAS Key Laboratory of Mechanical Behavior and Design of Materials, Department of Modern Mechanics, CAS Center for Excellence in Complex System Mechanics, University of Science and Technology of China, Hefei 230027, China.

出版信息

Proc Natl Acad Sci U S A. 2022 Jan 18;119(3). doi: 10.1073/pnas.2116808119.

Abstract

Materials containing heterogeneous nanostructures hold great promise for achieving superior mechanical properties. However, the strengthening effect due to plastically inhomogeneous deformation in heterogeneous nanostructures has not been clearly understood. Here, we investigate a prototypical heterogeneous nanostructured material of gradient nanotwinned (GNT) Cu to unravel the origin of its extra strength arising from gradient nanotwin structures relative to uniform nanotwin counterparts. We measure the back and effective stresses of GNT Cu with different nanotwin thickness gradients and compare them with those of homogeneous nanotwinned Cu with different uniform nanotwin thicknesses. We find that the extra strength of GNT Cu is caused predominantly by the extra back stress resulting from nanotwin thickness gradient, while the effective stress is almost independent of the gradient structures. The combined experiment and strain gradient plasticity modeling show that an increasing structural gradient in GNT Cu produces an increasing plastic strain gradient, thereby raising the extra back stress. The plastic strain gradient is accommodated by the accumulation of geometrically necessary dislocations inside an unusual type of heterogeneous dislocation structure in the form of bundles of concentrated dislocations. Such a heterogeneous dislocation structure produces microscale internal stresses leading to the extra back stress in GNT Cu. Altogether, this work establishes a fundamental connection between the gradient structure and extra strength in GNT Cu through the mechanistic linkages of plastic strain gradient, heterogeneous dislocation structure, microscale internal stress, and extra back stress. Broadly, this work exemplifies a general approach to unraveling the strengthening mechanisms in heterogeneous nanostructured materials.

摘要

含有不均匀纳米结构的材料在实现优异的机械性能方面具有很大的潜力。然而,不均匀纳米结构中塑性不均匀变形的强化效果尚未得到清晰的理解。在这里,我们研究了梯度纳米孪晶(GNT)Cu 的典型不均匀纳米结构材料,以揭示其相对于均匀纳米孪晶对应物的梯度纳米孪晶结构所带来的额外强度的起源。我们测量了具有不同纳米孪晶厚度梯度的 GNT Cu 的背应力和有效应力,并将其与具有不同均匀纳米孪晶厚度的均匀纳米孪晶 Cu 的背应力和有效应力进行了比较。我们发现,GNT Cu 的额外强度主要是由纳米孪晶厚度梯度引起的额外背应力引起的,而有效应力几乎与梯度结构无关。结合实验和应变梯度塑性模型表明,GNT Cu 中的结构梯度增加会产生增加的塑性应变梯度,从而提高额外的背应力。塑性应变梯度通过在不均匀位错结构的形式中积累位错的几何必要位错来得到适应,这种不均匀位错结构产生微观内部应力,从而导致 GNT Cu 中的额外背应力。总的来说,这项工作通过塑性应变梯度、不均匀位错结构、微观内部应力和额外背应力的力学联系,在 GNT Cu 的梯度结构和额外强度之间建立了基本联系。广义而言,这项工作例证了一种揭示不均匀纳米结构材料强化机制的一般方法。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e5a2/8784114/853df60808ff/pnas.2116808119fig01.jpg

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