J. Mater. Sci. Technol. ›› 2024, Vol. 179: 114-124.DOI: 10.1016/j.jmst.2023.09.018

• Research Article • Previous Articles     Next Articles

In-situ study of damage mechanisms in Mg-6Li dual-phase alloy

Jing Lia,b,c,d, Li Jinc,*, Sangbong Yid,*, Xin Zhanga,b, Jie Dongc, Ming Luoa,b   

  1. aKey Laboratory of High Performance Manufacturing for Aero Engine (Northwestern Polytechnical University), Ministry of Industry and Information Technology, Xi'an 710072, China;
    bEngineering Research Center of Advanced Manufacturing Technology for Aero Engine, Ministry of Education, Northwestern Polytechnical University, Xi'an 710072, China;
    cNational Engineering Research Center of Light Alloy Net Forming and State Key Laboratory of Metal Matrix Composite, School of Materials Science and Engineering, Shanghai Jiao Tong University, Shanghai 200240, China;
    dInstitute of Materials and Process Design, Helmholtz-Zentrum Hereon, Geesthacht 21502, Germany
  • Received:2023-07-12 Revised:2023-09-20 Accepted:2023-09-29 Published:2024-04-20 Online:2024-04-15
  • Contact: *E-mail addresses: j_jinli@sjtu.edu.cn (L. Jin), sangbong.yi@hereon.de (S. Yi).

Abstract: Interfaces play a crucial role in influencing the mechanical properties of Mg alloys. For Mg-Li dual-phase alloy, the type of interfaces is complex, which includes both grain boundary and phase boundary, and the influence of such interfaces on the damage nucleation is yet to be explored. In this paper, in-situ scanning electron microscopy (SEM) based measurements were carried out to investigate the meso-scale damage nucleation mechanisms of the Mg-6Li dual-phase alloy. Results show that 94.8% of cracks are nucleated at the α-Mg grain boundary in the post-uniform elongation stage, while 5.2% are at phase boundary and almost no crack at the β-Li grain boundary. The initiation of α-Mg grain boundary cracks is attributed to strain incompatibility, which induces micro-strain localization, and then causes grain boundary sliding (GBS) and crack nucleation. Deformation compatibility analysis reveals that the geometric compatibility factor (Mk) can be used to predict the nucleation of α-Mg grain boundary crack. When Mk is lower than0.075, α-Mg grain boundary cracks tend to form. Few cracks are generated at the phase boundary is due to the mild strain partitioning between α-Mg phase and β-Li phase and may also be partly attributed to multiple slip systems in body-centered cubic (BCC)-structured β-Li phase, which can accommodate well with the deformation of adjacent α-Mg phase.

Key words: Crack nucleation, Strain localization, Grain boundary sliding, Phase boundary, Mg-6Li dual-phase alloy