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Unusual plastic deformation behavior of nanotwinned Cu/high entropy alloy FeCoCrNi nanolaminates

机译:不寻常的塑性变形行为nanotwinned铜/高熵合金FeCoCrNinanolaminates

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Compared with coarse-grained FeCoCrNi-based high entropy alloys (HEAs), their nanocrystalline (NC) siblings with ultra-high strength often suffer from notably reduced deformability. Here, to enhance the deformability of these NC HEAs without losing their high strength, we design equal layered nanotwinned (NT) Cu/HEA (HEA = FeCoCrNi) crystalline/crystalline nanolaminates (C/CNLs) with coherent crystalline/crystalline interfaces (CCIs). In contrast to the tenet that in conventional bimetal C/CNLs, the soft/ductile phase plays the dominant major role, we discover that in NT Cu/HEA C/CNLs, the hard HEA phase unusually makes more contribution to the plastic deformation. The underlying reason is that the soft NT Cu layers without dislocation pile-up serve as the dislocation donator and export abundant dislocations that transmit across the coherent CCIs into the hard HEA accepter, and thus trigger their great deformability. The size-dependent hardness was explained based on dislocation-based models considering the stability of extremely small nanotwins with thickness less than similar to 10 nm. These findings provide a new pathway to achieve great deformability of strong alloys with high lattice friction stresses in ultra-strong metallic composites: control the size of NT soft phases to suppress dislocation pile-up in conjunction with coherent CCIs to facilitate continuity of dislocation slip.
机译:较粗粒度FeCoCrNi-based高熵合金(头脑),他们的纳米晶体(NC)兄弟姐妹与超高强度经常受到影响从可变形性明显减少。提高这些数控头脑的可变形性没有失去强度高,我们的设计平等的分层nanotwinned (NT)铜/头脑(他=FeCoCrNi)结晶/结晶nanolaminates(C /主办)的结晶/结晶接口(CCIs)。在传统双金属C /主办,软/韧性阶段占主导地位的重大作用,我们发现在NT铜/头脑C /主办,艰难的头脑阶段异常更对塑料的贡献变形。没有位错堆积软NT铜层作为位错捐赠者和出口丰富的传播在混乱相干CCIs到困难的头脑接受器,因此引发的可变形性。尺度依赖的硬度是基于解释道dislocation-based模型考虑到非常小的稳定nanotwins厚度小于10 nm相似。实现伟大的发现提供了一个新的途径可变形性强高的合金晶格在超强金属摩擦应力复合材料:控制NT软阶段的大小抑制位错堆积在一起相干CCIs促进的连续性位错滑移。

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