TY - JOUR
T1 - Heterogeneous deformation and damage mechanisms in multiphase Mg-Li alloys
T2 - In-situ XCT and coupled CPFE-PF analysis
AU - Su, Hui
AU - Wang, Junsheng
AU - Xue, Chengpeng
AU - Yang, Xinghai
AU - Li, Quan
AU - Li, Xingxing
AU - Miao, Yisheng
AU - Tian, Ye
AU - Li, Jingren
AU - Zhang, Chi
N1 - Publisher Copyright:
© 2025 Elsevier Ltd
PY - 2025/7/1
Y1 - 2025/7/1
N2 - In material design, preventing crack propagation is crucial for improving structural reliability and extending service life. Here, we report a new phenomenon where the soft β-Li phase in Mg alloys coexists with the hard α-Mg phase, and very hard Al2RE precipitates form at the interface between the β-Li and α-Mg phases, exhibiting a multiphase heterogeneous microstructure. By using X-ray tomography, we have observed the arresting of cracks at the β-Li/a-Mg interface and cracking is only allowed along the very hard Al2RE precipitates, increasing the strength and ductility of the three-phase alloy significantly. From atomistic molecular dynamic simulation, three-phase alloys enhance strain hardening through {112} dislocation slip mechanisms, which create barriers to crack propagation. In-situ observation and crystal plasticity finite element coupled with phase field (CPFE-PF) have shown that most cracks are arrested by the interconnected β-Li phase network, and cracks have to propagate along the tortuous paths, limiting their mobility. Therefore, this finding lays the foundation for high ductility and durability design of Mg alloy by arresting the initial cracks in their diversifying soft/hard neighboring cells.
AB - In material design, preventing crack propagation is crucial for improving structural reliability and extending service life. Here, we report a new phenomenon where the soft β-Li phase in Mg alloys coexists with the hard α-Mg phase, and very hard Al2RE precipitates form at the interface between the β-Li and α-Mg phases, exhibiting a multiphase heterogeneous microstructure. By using X-ray tomography, we have observed the arresting of cracks at the β-Li/a-Mg interface and cracking is only allowed along the very hard Al2RE precipitates, increasing the strength and ductility of the three-phase alloy significantly. From atomistic molecular dynamic simulation, three-phase alloys enhance strain hardening through {112} dislocation slip mechanisms, which create barriers to crack propagation. In-situ observation and crystal plasticity finite element coupled with phase field (CPFE-PF) have shown that most cracks are arrested by the interconnected β-Li phase network, and cracks have to propagate along the tortuous paths, limiting their mobility. Therefore, this finding lays the foundation for high ductility and durability design of Mg alloy by arresting the initial cracks in their diversifying soft/hard neighboring cells.
KW - CPFE-PF simulation
KW - Crack propagation
KW - Damage resistance
KW - Grain boundary
KW - Heterogeneous structure
KW - Mg alloys
UR - http://www.scopus.com/inward/record.url?scp=105005497178&partnerID=8YFLogxK
U2 - 10.1016/j.ijmecsci.2025.110385
DO - 10.1016/j.ijmecsci.2025.110385
M3 - Article
AN - SCOPUS:105005497178
SN - 0020-7403
VL - 297-298
JO - International Journal of Mechanical Sciences
JF - International Journal of Mechanical Sciences
M1 - 110385
ER -