Multi-scale annealing twins generate superior ductility in an additively manufactured high-strength medium entropy alloy

IF 9.4 1区 材料科学 Q1 ENGINEERING, MECHANICAL
Bojing Guo , Zhongsheng Yang , Qingfeng Wu , Chenbo Xu , Dingcong Cui , Yuhao Jia , Lei Wang , Junjie Li , Zhijun Wang , Xin Lin , Jincheng Wang , Feng He
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Abstract

Coherent twin boundaries (CTBs) are internal planar defects that offer a promising pathway for designing advanced metallic materials with superior strength-ductility synergy. However, incorporating nanoscale CTBs into additive manufacturing (AM) microstructures is highly challenging without severe plastic deformation. Here, by utilizing the intrinsic cellular structures in AM alloys, we for the first time achieved a high density of multi-scale annealing twins in a laser powder bed fusion (LPBF) Ni35Co35Cr25Ti3Al2 medium-entropy alloy. These multi-scale annealing twins, together with nanoprecipitates and dislocations, resulted in gigapascal strength (∼1.4 GPa) and substantial tensile ductility (∼25 %). We reveal that the AM-induced cellular structures, decorated with entangled dislocations and Ti segregation at the cellular boundaries, facilitate the abundant nucleation of multi-scale annealing twins through interactions with migrating recrystallization boundaries. Additionally, the cellular precipitation networks enhance the thermal stability of nanoscale annealing twins. Frequent dislocation-TB interactions during deformation contribute to superior strain hardenability and thus good ductility. Synergized multiple strengthening mechanisms, i.e., boundary strengthening, precipitation strengthening, and dislocation strengthening, are responsible for the excellent strength. Our present findings advance the design of AM microstructures by harnessing the beneficial effects of cellular structures and provide valuable guidance for developing alloys with exceptional mechanical properties.

Abstract Image

Abstract Image

多尺度退火孪晶在添加式制造的高强度中熵合金中产生优异的延展性
相干孪晶边界(CTB)是一种内部平面缺陷,它为设计具有优异强度-电导率协同作用的先进金属材料提供了一条前景广阔的途径。然而,在不产生严重塑性变形的情况下,将纳米级 CTB 纳入增材制造(AM)微结构极具挑战性。在这里,通过利用 AM 合金中的固有蜂窝结构,我们首次在激光粉末床熔融 (LPBF) 镍钴铬钛铝中熵合金中实现了高密度的多尺度退火孪晶。这些多尺度退火孪晶与纳米沉淀物和位错一起,产生了千兆帕强度(∼ 1.4 GPa)和巨大的拉伸延展性(∼ 25 %)。我们发现,AM 诱导的蜂窝结构在蜂窝边界上装饰着纠缠的位错和钛偏析,通过与迁移的再结晶边界相互作用,促进了多尺度退火孪晶的大量成核。此外,晶胞析出网络还增强了纳米级退火孪晶的热稳定性。变形过程中频繁的位错-TB 相互作用有助于提高应变硬化能力,从而获得良好的延展性。多种强化机制(即边界强化、析出强化和位错强化)的协同作用是产生优异强度的原因。我们目前的研究结果通过利用蜂窝结构的有利影响推进了 AM 微结构的设计,并为开发具有优异机械性能的合金提供了宝贵的指导。
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来源期刊
International Journal of Plasticity
International Journal of Plasticity 工程技术-材料科学:综合
CiteScore
15.30
自引率
26.50%
发文量
256
审稿时长
46 days
期刊介绍: International Journal of Plasticity aims to present original research encompassing all facets of plastic deformation, damage, and fracture behavior in both isotropic and anisotropic solids. This includes exploring the thermodynamics of plasticity and fracture, continuum theory, and macroscopic as well as microscopic phenomena. Topics of interest span the plastic behavior of single crystals and polycrystalline metals, ceramics, rocks, soils, composites, nanocrystalline and microelectronics materials, shape memory alloys, ferroelectric ceramics, thin films, and polymers. Additionally, the journal covers plasticity aspects of failure and fracture mechanics. Contributions involving significant experimental, numerical, or theoretical advancements that enhance the understanding of the plastic behavior of solids are particularly valued. Papers addressing the modeling of finite nonlinear elastic deformation, bearing similarities to the modeling of plastic deformation, are also welcomed.
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