TY - JOUR
T1 - The effects of second-alloying-element on the formability of Mg-Sn alloys in respect of the stacking fault energies of slip systems
AU - Cheng, Xiongying
AU - Yuan, Yuan
AU - Chen, Tao
AU - Zheng, Zebang
AU - Ma, Lifeng
AU - Jiang, Bin
AU - Tang, Aitao
AU - Pan, Fusheng
N1 - Publisher Copyright:
© 2021 Elsevier Ltd
PY - 2021/12
Y1 - 2021/12
N2 - Generalized stacking fault (GSF) energies of the basal 0001112̅0,prismatic 101̅0112̅0 and pyramidal 112̅2112̅3 slip systems in the primary phase of Mg-Sn based-alloys have been studied using first-principles calculations in this work, where twenty-one third elements (X) have been taken in to consideration for their solution in primary (Mg, Sn) phase. The relative positions of Sn and X in Mg142Sn1X1 supercell have been determined by searching the minimum formation energies points. It is shown that, with alloying-elements of Sn and X, the unstable stacking fault energy (γus) of the basal and prismatic slip systems are decreased compared with that of Mg144. For the pyramidal slip system, only certain second-alloying-elements, namely Ag, Al, Cd, Ga, In, Li and Zn, soluted into the Mg-Sn alloys, make the γus lower than that of pure Mg. The atomic radius of element X has a significant impact on the γus value of Mg142Sn1X1, and also indirectly affects the γus by affecting the relative substitution positions of Sn and X atoms in the structure. Accordingly, the plastic formability parameters χ have been analyzed based on the calculated stacking fault energy (SFE) values. The effects of second-alloying-elements on GSF energies and χ provide a guidance for the design of high-performance multi-elements-alloying Mg alloys.
AB - Generalized stacking fault (GSF) energies of the basal 0001112̅0,prismatic 101̅0112̅0 and pyramidal 112̅2112̅3 slip systems in the primary phase of Mg-Sn based-alloys have been studied using first-principles calculations in this work, where twenty-one third elements (X) have been taken in to consideration for their solution in primary (Mg, Sn) phase. The relative positions of Sn and X in Mg142Sn1X1 supercell have been determined by searching the minimum formation energies points. It is shown that, with alloying-elements of Sn and X, the unstable stacking fault energy (γus) of the basal and prismatic slip systems are decreased compared with that of Mg144. For the pyramidal slip system, only certain second-alloying-elements, namely Ag, Al, Cd, Ga, In, Li and Zn, soluted into the Mg-Sn alloys, make the γus lower than that of pure Mg. The atomic radius of element X has a significant impact on the γus value of Mg142Sn1X1, and also indirectly affects the γus by affecting the relative substitution positions of Sn and X atoms in the structure. Accordingly, the plastic formability parameters χ have been analyzed based on the calculated stacking fault energy (SFE) values. The effects of second-alloying-elements on GSF energies and χ provide a guidance for the design of high-performance multi-elements-alloying Mg alloys.
KW - Ductility
KW - First-principle calculations
KW - Formability
KW - Magnesium alloys
KW - Stacking-fault energy
UR - http://www.scopus.com/inward/record.url?scp=85122656301&partnerID=8YFLogxK
U2 - 10.1016/j.mtcomm.2021.102829
DO - 10.1016/j.mtcomm.2021.102829
M3 - 文章
AN - SCOPUS:85122656301
SN - 2352-4928
VL - 29
JO - Materials Today Communications
JF - Materials Today Communications
M1 - 102829
ER -