TY - JOUR
T1 - Microstructure and Properties of FeCoCrNiMo/5083 Aluminiummatrix Composites
AU - He, Yiqiang
AU - Wang, Yinghao
AU - Qian, Sicheng
AU - Huan, Changbao
AU - Gu, Hang
AU - Tao, Kai
AU - TongWang,
AU - Hu, Honglei
AU - Lu, Shuangli
N1 - Publisher Copyright:
© The Author(s) under exclusive licence to The Korean Institute of Metals and Materials 2025.
PY - 2026
Y1 - 2026
N2 - FeCoCrNiMo high-entropy alloy (HEA) particles enhance the strength of 5083 Al while maintaining favourable plasticity and toughness. To address the strength–ductility constraints of particle-reinforced 5083 Al-matrix composites, composites were fabricated by hot equal-channel angular pressing (ECAP). The contributions of distinct strengthening mechanisms were quantitatively deconvoluted, the formation mechanism of the interfacial diffusion layer was elucidated, and immersion tests of varying duration were conducted to clarify the seawater corrosion behaviour. The composite containing 15 vol% HEA exhibited the best overall mechanical performance, with a hardness of 156.55 HV, a tensile strength of 350 MPa, and an elongation to failure of 12.41%. The improvements are attributed to Hall-Petch strengthening, geometrically necessary dislocation (GND) strengthening, Orowan strengthening, and load transfer. Variations in elemental content and spatial distribution within the diffusion layer are ascribed to differences in diffusivity and diffusion activation energy during hot ECAP, together with inter-element interactions. Mo, Co, and Cr promote the formation of a stable passive film, thereby enhancing corrosion resistance in seawater.
AB - FeCoCrNiMo high-entropy alloy (HEA) particles enhance the strength of 5083 Al while maintaining favourable plasticity and toughness. To address the strength–ductility constraints of particle-reinforced 5083 Al-matrix composites, composites were fabricated by hot equal-channel angular pressing (ECAP). The contributions of distinct strengthening mechanisms were quantitatively deconvoluted, the formation mechanism of the interfacial diffusion layer was elucidated, and immersion tests of varying duration were conducted to clarify the seawater corrosion behaviour. The composite containing 15 vol% HEA exhibited the best overall mechanical performance, with a hardness of 156.55 HV, a tensile strength of 350 MPa, and an elongation to failure of 12.41%. The improvements are attributed to Hall-Petch strengthening, geometrically necessary dislocation (GND) strengthening, Orowan strengthening, and load transfer. Variations in elemental content and spatial distribution within the diffusion layer are ascribed to differences in diffusivity and diffusion activation energy during hot ECAP, together with inter-element interactions. Mo, Co, and Cr promote the formation of a stable passive film, thereby enhancing corrosion resistance in seawater.
KW - Equal-channel angular pressing
KW - High-entropy alloy
KW - Interfacial diffusion layer
KW - Pitting corrosion
KW - Seawater corrosion
UR - https://www.scopus.com/pages/publications/105047451126
U2 - 10.1007/s12540-025-02205-1
DO - 10.1007/s12540-025-02205-1
M3 - 文章
AN - SCOPUS:105047451126
SN - 1598-9623
JO - Metals and Materials International
JF - Metals and Materials International
ER -