Synergistic grain boundary engineering for achieving strength-ductility balance in ultrafine-grained high-Cr-bearing multicomponent alloys

IF 12.8 1区 材料科学 Q1 ENGINEERING, MECHANICAL
Xiaoming Liu , Kaikai Song , Zongde Kou , Jianhong Gong , Xiangyan Chen , Qingwei Gao , Hui Sun , Pingping Liu , Ruitao Qu , Lina Hu , Zequn Zhang , Parthiban Ramasamy , Zengqian Liu , Zhenjun Zhang , Feng Liu , Zhefeng Zhang , Jürgen Eckert
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Abstract

Precipitation strengthening is a crucial strategy for ensuring the overall performance of conventional and multicomponent alloys to meet industrial demands. However, the mechanical properties of high-Cr-bearing alloys are often compromised by brittle Cr-rich precipitates at grain boundaries (GBs), leading to severe embrittlement. In this work, a multi-step thermomechanical process is employed to regulate discontinuous dynamic recrystallization (DDRX) and static recrystallization, achieving an ultrafine-grained microstructure. This optimized approach simultaneously impedes the continuous precipitation of the ordered L12 nanocrystals within the matrix and actively encourages the synergistic discontinuous precipitations of submicron L12 and Cr-rich σ particles at GBs, thereby enhancing (yield) strength and high-temperature thermal stability. The ultrafine grains facilitate uniform plastic deformation, characterized by pronounced parallel dislocation slip and stacking faults (SFs) within face-centered cubic (fcc) grains, while second-direction slips, SFs, and Lomer-Cottrell (L-C) lock networks near GB precipitates greatly alleviate stress concentration. Critically, the submicron L12 particles enveloping σ precipitates at GBs also display plastic deformation via mechanical twinning and dislocations, effectively impeding rapid crack propagation along GBs. This research not only provides new insights into the ductility-strength balance in advanced alloys but also proposes a compelling route for optimizing biphasic precipitation, expanding the applicability of high-Cr multicomponent alloys.

Abstract Image

协同晶界工程实现超细晶粒高碳铬多组分合金的强度-电导率平衡
沉淀强化是确保传统合金和多组分合金整体性能以满足工业需求的重要策略。然而,高含铬合金的机械性能往往会受到晶界(GB)处富铬脆性沉淀的影响,导致严重脆化。在这项工作中,采用了一种多步骤热机械工艺来调节不连续动态再结晶(DDRX)和静态再结晶,从而获得超细晶粒微观结构。这种优化方法同时阻碍了有序 L12 纳米晶体在基体中的连续析出,并积极促进了亚微米级 L12 和富含铬的σ颗粒在 GB 上的协同非连续析出,从而提高了(屈服)强度和高温热稳定性。超细晶粒促进了均匀的塑性变形,其特征是面心立方晶粒(fcc)内明显的平行位错滑移和堆叠断层(SF),而 GB 沉淀附近的第二方向滑移、SF 和 Lomer-Cottrell (L-C)锁定网络极大地缓解了应力集中。关键的是,在 GB 处包裹着 σ 沉淀的亚微米 L12 颗粒还通过机械孪晶和位错显示出塑性变形,有效地阻止了裂纹沿 GB 的快速扩展。这项研究不仅为先进合金的延展性-强度平衡提供了新的见解,还为优化双相析出提出了令人信服的途径,扩大了高铬多组分合金的适用范围。
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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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