TY - JOUR
T1 - Tailoring the stability of iron carbides to enhance the mechanical performances of Fe–C–Mn–Si alloys
AU - Yu, Jieru
AU - Du, Jinglian
AU - Shang, Shun Li
AU - Fu, Hejian
AU - Hao, Yang
AU - He, Liubaixiang
AU - Liu, Zi Kui
AU - Liu, Feng
N1 - Publisher Copyright:
© The Author(s), under exclusive licence to Springer Science+Business Media, LLC, part of Springer Nature 2024.
PY - 2024/6
Y1 - 2024/6
N2 - The Fe–C–Mn–Si alloys are promising advanced high strength steels (AHSSs) with their performances greatly influenced by iron carbides precipitated in quenching and partitioning process. To date, the structural characteristics and physicochemical properties of iron carbides, particularly the non-stoichiometric carbides like η and ε phases, still remain elusive. In the present work, the atomic structures, phase stability, mechanical properties, and temperature-dependent thermodynamic properties of potential iron carbides precipitated in Fe–C–Mn–Si alloys, including η-Fe2C-Pnnm, ε-Fe2C-P63/mmc, ε-FenC-P6322, θ-Fe3C-Pnma and χ-Fe5C2-C2/c, are investigated by performing the first-principles calculations based on density functional theory. It turns out that the hexagonal Fe2.4C and Fe3C carbides have the same space group of P6322, with their local atomic structure being featured by the C-centered CFe6 principal cluster with coordination number of six. Thus, these two phases are regarded as the same ε iron carbide. The orthorhombic η-Fe2C and θ-Fe3C phases are more stable than the hexagonal ε-Fe2C and ε-FenC (n = 2.4, 3) carbides, resulting in a potential phase transition from ε to η and/or θ. Analysis on stabilities indicate that the C atoms in iron carbides prefer to occupy the ordered octahedral and prismatic interstices. In comparison with the ε-FenC (n = 2.4, 3) carbides, which is stiffer at low temperatures, the precipitation of the θ-Fe3C and η-Fe2C carbides can benefit to strengthen the Fe–C–Mn–Si alloys at elevated temperatures. The present work provides an important insight for understanding the atomic structures and thermodynamic properties of iron carbides along with their contribution to the mechanical performances of AHSSs.
AB - The Fe–C–Mn–Si alloys are promising advanced high strength steels (AHSSs) with their performances greatly influenced by iron carbides precipitated in quenching and partitioning process. To date, the structural characteristics and physicochemical properties of iron carbides, particularly the non-stoichiometric carbides like η and ε phases, still remain elusive. In the present work, the atomic structures, phase stability, mechanical properties, and temperature-dependent thermodynamic properties of potential iron carbides precipitated in Fe–C–Mn–Si alloys, including η-Fe2C-Pnnm, ε-Fe2C-P63/mmc, ε-FenC-P6322, θ-Fe3C-Pnma and χ-Fe5C2-C2/c, are investigated by performing the first-principles calculations based on density functional theory. It turns out that the hexagonal Fe2.4C and Fe3C carbides have the same space group of P6322, with their local atomic structure being featured by the C-centered CFe6 principal cluster with coordination number of six. Thus, these two phases are regarded as the same ε iron carbide. The orthorhombic η-Fe2C and θ-Fe3C phases are more stable than the hexagonal ε-Fe2C and ε-FenC (n = 2.4, 3) carbides, resulting in a potential phase transition from ε to η and/or θ. Analysis on stabilities indicate that the C atoms in iron carbides prefer to occupy the ordered octahedral and prismatic interstices. In comparison with the ε-FenC (n = 2.4, 3) carbides, which is stiffer at low temperatures, the precipitation of the θ-Fe3C and η-Fe2C carbides can benefit to strengthen the Fe–C–Mn–Si alloys at elevated temperatures. The present work provides an important insight for understanding the atomic structures and thermodynamic properties of iron carbides along with their contribution to the mechanical performances of AHSSs.
UR - http://www.scopus.com/inward/record.url?scp=85195377928&partnerID=8YFLogxK
U2 - 10.1007/s10853-024-09824-w
DO - 10.1007/s10853-024-09824-w
M3 - 文章
AN - SCOPUS:85195377928
SN - 0022-2461
VL - 59
SP - 11157
EP - 11176
JO - Journal of Materials Science
JF - Journal of Materials Science
IS - 24
ER -