TY - JOUR
T1 - Heterostructured Al-Cu alloy unifying high strength and enhanced ductility
AU - Wang, Yuqing
AU - Pan, Jiubin
AU - Zhu, Ruibo
AU - Xue, Hang
AU - Yang, Chong
AU - Zhang, Peng
AU - Wu, Shenghua
AU - Lu, Liwei
AU - Liu, Gang
AU - Sun, Jun
N1 - Publisher Copyright:
© 2026 The Author(s). Published by Informa UK Limited, trading as Taylor & Francis Group.
PY - 2026
Y1 - 2026
N2 - Microalloying effects have been proved to be efficient in artificially manipulating the solid-state transformation in heat-treatable aluminum alloys. Varying grain size from coarse-grained to nanocrystalline, the microalloying effect displays a significant length-scale dependence. Here we report that the coupling of Sc microalloying and cryogenic rolling can produce a highly heterogeneous lamella structure in the ultrafine-grained Al-Cu alloys. Artificial aging leads to prominent grain size-dependent precipitation behaviors: large-sized θ′ precipitates form in micro-grained lamellae while finely distributed θ′′ precipitation exclusively occurs in hard ultrafine-grained lamella matrix. The largely promoted back stress, originating from the heterogeneously distributed lamellae and further enhanced by the grain size-dependent precipitations, yields to remarkable hetero-deformation-induced strengthening and work hardening, and thus achieves a superior strength/ductility synergy in the lamella structured Al-Cu-Sc alloys. The novelty of microstructural design lies in the coupled effects of heterogenous lamella structure and grain size-dependent precipitation, which are promising to be generalized to other precipitation hardening alloy systems or adapted to reduce the Sc content, thereby increasing the broader application.
AB - Microalloying effects have been proved to be efficient in artificially manipulating the solid-state transformation in heat-treatable aluminum alloys. Varying grain size from coarse-grained to nanocrystalline, the microalloying effect displays a significant length-scale dependence. Here we report that the coupling of Sc microalloying and cryogenic rolling can produce a highly heterogeneous lamella structure in the ultrafine-grained Al-Cu alloys. Artificial aging leads to prominent grain size-dependent precipitation behaviors: large-sized θ′ precipitates form in micro-grained lamellae while finely distributed θ′′ precipitation exclusively occurs in hard ultrafine-grained lamella matrix. The largely promoted back stress, originating from the heterogeneously distributed lamellae and further enhanced by the grain size-dependent precipitations, yields to remarkable hetero-deformation-induced strengthening and work hardening, and thus achieves a superior strength/ductility synergy in the lamella structured Al-Cu-Sc alloys. The novelty of microstructural design lies in the coupled effects of heterogenous lamella structure and grain size-dependent precipitation, which are promising to be generalized to other precipitation hardening alloy systems or adapted to reduce the Sc content, thereby increasing the broader application.
KW - Al-Cu alloy
KW - back-stress strengthening
KW - heterogeneous lamella structure
KW - mechanical properties
KW - microalloying effect
UR - https://www.scopus.com/pages/publications/105031833022
U2 - 10.1080/21663831.2026.2624024
DO - 10.1080/21663831.2026.2624024
M3 - 文章
AN - SCOPUS:105031833022
SN - 2166-3831
VL - 14
SP - 438
EP - 447
JO - Materials Research Letters
JF - Materials Research Letters
IS - 4
ER -