TY - JOUR
T1 - Effect of Fe/Mn microalloying on the microstructural evolution and performance of Cu–Fe–Mn–P alloys
AU - Xiao, Xue
AU - Zhao, Yao
AU - Zhang, Shuya
AU - Guo, Chunwen
AU - Zhao, Hongliang
AU - Fan, Yuheng
AU - Dong, Xianglei
AU - Wang, Jincheng
N1 - Publisher Copyright:
© 2025 Elsevier B.V.
PY - 2025/12/5
Y1 - 2025/12/5
N2 - This thesis focuses on Cu–Fe–Mn–P copper alloys. Three quaternary alloys with different Fe/Mn ratios (FMP111, FMP121, FMP211) were designed and fabricated to systematically investigate the effects of Fe/Mn ratio on microstructural evolution, mechanical properties, and electrical conductivity during thermomechanical processing (hot rolling, solution treatment, and aging). Phase-diagram analysis was performed using Pandat, and multiple characterization techniques including EDS, OM, SEM, EBSD, and TEM were employed to elucidate the roles of Fe and Mn in grain refinement, precipitation kinetics, and strengthening mechanisms. The results show that the synergistic addition of Fe and Mn significantly regulates the morphology and distribution of precipitates, enabling an optimized balance between hardness and electrical conductivity. The precipitation kinetics of all alloys follow the Avrami equation; higher Fe content facilitates precipitation strengthening and accelerates the kinetic process, while Mn promotes precipitate refinement and increases their number. By judiciously designing the Fe/Mn ratio, the high-strength, high-conductivity performance of Cu–Fe–Mn–P alloys can be synergistically optimized, providing a theoretical basis for the development and application of new copper alloys.
AB - This thesis focuses on Cu–Fe–Mn–P copper alloys. Three quaternary alloys with different Fe/Mn ratios (FMP111, FMP121, FMP211) were designed and fabricated to systematically investigate the effects of Fe/Mn ratio on microstructural evolution, mechanical properties, and electrical conductivity during thermomechanical processing (hot rolling, solution treatment, and aging). Phase-diagram analysis was performed using Pandat, and multiple characterization techniques including EDS, OM, SEM, EBSD, and TEM were employed to elucidate the roles of Fe and Mn in grain refinement, precipitation kinetics, and strengthening mechanisms. The results show that the synergistic addition of Fe and Mn significantly regulates the morphology and distribution of precipitates, enabling an optimized balance between hardness and electrical conductivity. The precipitation kinetics of all alloys follow the Avrami equation; higher Fe content facilitates precipitation strengthening and accelerates the kinetic process, while Mn promotes precipitate refinement and increases their number. By judiciously designing the Fe/Mn ratio, the high-strength, high-conductivity performance of Cu–Fe–Mn–P alloys can be synergistically optimized, providing a theoretical basis for the development and application of new copper alloys.
KW - Cu–Fe–Mn–P alloy
KW - Electrical properties
KW - Microstructure
KW - Precipitation kinetics
KW - Solution treatment
KW - Strengthening mechanism
UR - https://www.scopus.com/pages/publications/105022506886
U2 - 10.1016/j.jallcom.2025.185067
DO - 10.1016/j.jallcom.2025.185067
M3 - 文章
AN - SCOPUS:105022506886
SN - 0925-8388
VL - 1047
JO - Journal of Alloys and Compounds
JF - Journal of Alloys and Compounds
M1 - 185067
ER -