TY - JOUR
T1 - Effects of carbon segregation and interface roughness on the mobility of solid-liquid interface in Fe-C alloy
T2 - A molecular dynamics study
AU - Gui, Lintao
AU - Zhang, Hao
AU - Zhao, Yan
AU - Wang, Yangwei
AU - Chen, Dengfu
AU - Wang, Xinyi
AU - Mahmud, Gazi
AU - Long, Mujun
N1 - Publisher Copyright:
© 2021 Acta Materialia Inc.
PY - 2021/12
Y1 - 2021/12
N2 - The kinetic coefficients (μ) for the fcc Fe-(0–0.5 wt%)C alloy solidification and melting were investigated using molecular dynamics simulations. The activation energy for the diffusion of C atoms (QC) at the solid-liquid interface was calculated using the Debye-Waller factor 2> to reveal the effect of C atoms dragging on the interface mobility. The influence of C segregation and interface roughness on interface mobility was also investigated. Simulation results show that for melting, the C content has a minor effect on the μ, and the μ is mainly ranged 18.1–19.4 cm/s•K, while for solidification, the μ linearly decreases with the increasing C content, and the μ is ranged 9.6–17.9 cm/s•K. In addition, a ‘platform’ zone was observed under low undercooling, in which the interface velocity is close to zero and suggests weak interface mobility, resulting from the segregation and dragging of C atoms at the interface. The ‘platform’ zone size linearly increases with the increasing C content. The QC increases with the increasing C content, which is ranged 0.71–0.91 eV for the fcc Fe-(0.1–0.4 wt%)C alloy solidification, indicating the C atomic motion is weakened and the C atoms dragging is reinforced due to C content increasing. Interface roughness and C atoms distribution analyses show that for the fcc Fe-C alloy solidification, a smooth solid-liquid interface is unfavorable for interface mobility, and the smooth interface is usually accompanied by the non-uniform distribution of C atoms. Therefore, increasing the interface roughness may be helpful for improving interface mobility and segregation for alloy solidification.
AB - The kinetic coefficients (μ) for the fcc Fe-(0–0.5 wt%)C alloy solidification and melting were investigated using molecular dynamics simulations. The activation energy for the diffusion of C atoms (QC) at the solid-liquid interface was calculated using the Debye-Waller factor 2> to reveal the effect of C atoms dragging on the interface mobility. The influence of C segregation and interface roughness on interface mobility was also investigated. Simulation results show that for melting, the C content has a minor effect on the μ, and the μ is mainly ranged 18.1–19.4 cm/s•K, while for solidification, the μ linearly decreases with the increasing C content, and the μ is ranged 9.6–17.9 cm/s•K. In addition, a ‘platform’ zone was observed under low undercooling, in which the interface velocity is close to zero and suggests weak interface mobility, resulting from the segregation and dragging of C atoms at the interface. The ‘platform’ zone size linearly increases with the increasing C content. The QC increases with the increasing C content, which is ranged 0.71–0.91 eV for the fcc Fe-(0.1–0.4 wt%)C alloy solidification, indicating the C atomic motion is weakened and the C atoms dragging is reinforced due to C content increasing. Interface roughness and C atoms distribution analyses show that for the fcc Fe-C alloy solidification, a smooth solid-liquid interface is unfavorable for interface mobility, and the smooth interface is usually accompanied by the non-uniform distribution of C atoms. Therefore, increasing the interface roughness may be helpful for improving interface mobility and segregation for alloy solidification.
KW - Fe-C alloy
KW - Interface roughness
KW - Kinetic coefficient
KW - Molecular dynamics simulation
KW - Segregation
UR - http://www.scopus.com/inward/record.url?scp=85119098398&partnerID=8YFLogxK
U2 - 10.1016/j.mtla.2021.101266
DO - 10.1016/j.mtla.2021.101266
M3 - Article
AN - SCOPUS:85119098398
SN - 2589-1529
VL - 20
JO - Materialia
JF - Materialia
M1 - 101266
ER -