Please use this identifier to cite or link to this item: http://hdl.handle.net/10397/114071
Title: Achieving superior ductility with ultrahigh strength via deformation and strain hardening in the non-recrystallized regions of the heterogeneous-structured high-entropy alloy
Authors: Li, H 
Wang, J
Zhang, W
Zhao, J
Li, J
Fu, MW 
Issue Date: 15-Jan-2025
Source: Acta materialia, 15 Jan. 2025, v. 283, 120572
Abstract: Developing metallic structural materials with ultrahigh strength and exceptional ductility remains a significant challenge due to the trade-off between both properties. This study presents a heterogeneous-structured high-entropy alloy achieving a superior combination of strength and ductility compared to the reported heterogeneous-structured high entropy alloys through deformation and strain hardening in the non-recrystallized regions. The cold rolling followed by annealing at 760 °C resulted in a heterogeneous microstructure consisting of a small fraction of ultrafine recrystallized grains and extensive non-recrystallized regions, with a significant amount of L12 precipitates throughout the alloy. The architected microstructure led to a significant enhancement of yield strength through mechanisms including dislocation strengthening, L12 strengthening, and grain boundary strengthening. During the deformation, the non-recrystallized regions accommodated substantial strain through the reactivation of pre-existing deformation bands and the synergistic deformation of the FCC and L12 phases, thereby markedly enhancing ductility. Moreover, the metastable FCC matrix underwent FCC→BCC phase transformation, leading to the formation of numerous short-range BCC domains, which further contributed to the pronounced strain hardening. Consequently, the alloy annealing at 760 °C achieved a yield strength of 1.73 GPa, an ultimate strength of 2.05 GPa, and an elongation of 21.0 %. This study underscores a novel strategy for the concurrent enhancement of strength and ductility and provides valuable insights for the design of high-performance alloys.
Keywords: Heterogeneous-structured
High-entropy alloys
L1<sub>2</sub> strengthening
Non-recrystallized regions
Transformation-induced plasticity
Publisher: Elsevier Ltd
Journal: Acta materialia 
ISSN: 1359-6454
EISSN: 1873-2453
DOI: 10.1016/j.actamat.2024.120572
Appears in Collections:Journal/Magazine Article

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