通过定制多相组织增强无共钴络合浓缩合金的强度-延性协同作用

Jiantao Fan, Yanle Sun, L. Fu, Xin-bo Ji, J. Peng, Pengfei Yu, Feng Xu, Wei Wang, G. Li, M. Wen, A. Shan
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摘要

开发具有优异强度-延性协同作用的高性能合金是材料科学界长期以来的研究主题,对于新出现的复杂浓缩合金(CCAs)也是如此。通过适当的热机械加工策略,将具有多尺度晶粒分布的多非均相微观结构(包括再结晶的超细晶粒和未再结晶的粗晶粒混合)和高含量的L1 - 2纳米沉淀物引入无co的CCA中。因此,异质变形诱导(HDI)硬化和沉淀强化有效地结合在一起,获得了高达1.2 GPa的屈服强度和1.4 GPa的极限抗拉强度,均匀伸长率达到了~17.6%。与无异质晶粒的析出强化相相比,多异质显微组织的强度-塑性协同效应显著增强。研究表明,高屈服强度主要是由于纳米沉淀物的析出相强化和非均匀晶粒分布的HDI强化。由于异质界面附近存在结构不相容的变形和大量几何上必需的位错,这种多异质微观结构在应变时由于HDI硬化而表现出明显的向上应变硬化行为,从而延迟了塑性不稳定的发生。特别是,再结晶细晶粒和超细晶粒之间独特的片状分布和高密度的界面,可以有效地诱导变形过程中的大量HDI硬化。本文所述的加工策略相对简单,适合现代工业的大规模加工,且成本较低。
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Enhancing Strength-Ductility Synergy of a Co-Free Complex-Concentrated Alloy Via Tailored Multi-Heterogeneous Microstructure
The development of high-performance alloys with excellent strength-ductility synergy is a long-lasting research theme for materials science community, which also holds for the newly emerged complex-concentrated alloys (CCAs). Here, a multi-heterogeneous microstructure: featuring a multiscale grain distribution involving recrystallized ultrafine and fine grains mixed with unrecrystallized coarse grains, and high-content L1 2 nanoprecipitates, was intentionally introduced into a Co-free CCA through appropriate thermomechanical processing strategy. As such, the hetero-deformation induced (HDI) hardening and precipitation strengthening were co-effectively used, resulting in a high yield strength of 1.2 GPa, and an ultimate tensile strength of 1.4 GPa with exceptional uniform elongation of ~17.6%. The strength-ductility synergy of the multi-hetero microstructure was much enhanced over its precipitate-strengthened counterparts without heterogenous grains. We demonstrated that the high yield strength is mainly due to both the precipitate strengthening from nanoprecipitates and HDI strengthening from heterogeneous grains distribution. Benefiting from the structurally incompatible deformation accompanying with copious geometrically necessary dislocations near the hetero-interfaces, such multi-hetero microstructure revealed a distinctive up-turn strain hardening behavior due to the HDI hardening upon straining, and thus delayed the onset of plastic instability. Particularly, the unique lamellar-like distribution between recrystallized fine and ultrafine grains with high density of interfaces could effectively induce massive HDI hardening during deformation. The processing strategy described here is relatively simple and desirable for large scale process in modern industry at an economic cost.
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