TY - JOUR
T1 - Molecular dynamics simulations of interaction between a super edge dislocation and interstitial dislocation loops in irradiated L12-Ni3Al
AU - Chen, Cheng
AU - Qin, Dongyang
AU - Wang, Yiding
AU - Xu, Fei
AU - Song, Jun
N1 - Publisher Copyright:
© 2024 Elsevier B.V.
PY - 2025/2
Y1 - 2025/2
N2 - The study employed MD simulations to investigate the interactions between a 〈11¯0〉 super-edge dislocation, consisting of the four Shockley partials, and interstitial dislocation loops (IDLs) in irradiated L12-Ni3Al. Accounting for symmetry breakage in the L12 lattice, the superlattice planar faults with four distinct fault vectors have been considered for different IDL configurations. The detailed dislocation reactions and structural evolution events were identified as the four partials interacted with various IDL configurations. The slipping characteristics of Shockley partials within the IDLs and the resultant shearing and looping mechanisms were also clarified, revealing distinct energetic transition states determined by the fault vectors after the Shockley partials sweeping the IDL. Furthermore, significant variations in critical resolved shear stress (CRSS) required for the super-edge dislocation to move past the IDL were observed, attributed to various sizes and faulted vectors of enclosed superlattice planar faults in the IDLs. The current study extends the existing dislocation-IDL interaction theory from pristine FCC to L12 lattice, advances the understanding of irradiation hardening effects in L12-Ni3Al, and suggests potential applicability to other L12 systems.
AB - The study employed MD simulations to investigate the interactions between a 〈11¯0〉 super-edge dislocation, consisting of the four Shockley partials, and interstitial dislocation loops (IDLs) in irradiated L12-Ni3Al. Accounting for symmetry breakage in the L12 lattice, the superlattice planar faults with four distinct fault vectors have been considered for different IDL configurations. The detailed dislocation reactions and structural evolution events were identified as the four partials interacted with various IDL configurations. The slipping characteristics of Shockley partials within the IDLs and the resultant shearing and looping mechanisms were also clarified, revealing distinct energetic transition states determined by the fault vectors after the Shockley partials sweeping the IDL. Furthermore, significant variations in critical resolved shear stress (CRSS) required for the super-edge dislocation to move past the IDL were observed, attributed to various sizes and faulted vectors of enclosed superlattice planar faults in the IDLs. The current study extends the existing dislocation-IDL interaction theory from pristine FCC to L12 lattice, advances the understanding of irradiation hardening effects in L12-Ni3Al, and suggests potential applicability to other L12 systems.
KW - Interstitial dislocation loops
KW - Irradiation
KW - L1-NiAl
KW - Molecular dynamics simulations
KW - Super edge dislocation
KW - Superlattice planar fault
UR - http://www.scopus.com/inward/record.url?scp=85211022911&partnerID=8YFLogxK
U2 - 10.1016/j.jnucmat.2024.155541
DO - 10.1016/j.jnucmat.2024.155541
M3 - 文章
AN - SCOPUS:85211022911
SN - 0022-3115
VL - 605
JO - Journal of Nuclear Materials
JF - Journal of Nuclear Materials
M1 - 155541
ER -