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January 22, 2026International Journal of Metalcasting2 citationsOpen Access

Li-ALLOYED Mg–Zn–Ca Systems’ Phase Structure Modification, Mechanical Properties and Corrosion Performance

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MSMuhammed Ali SolakKarabük UniversityİGİdris GökalpKocaeli ÜniversitesiYAYasin AkgülKarabük University

Key Points

  • The research aims to explore how different lithium, zinc, and calcium compositions affect the phase structures and mechanical properties of magnesium-lithium alloys.
  • Produced three Mg–Li–Zn–Ca alloys (LZX110, LZX420, LZX920) via permanent mold casting.
  • Analyzed phase structures using X-ray diffraction (XRD) and scanning electron microscopy with energy-dispersive spectroscopy (SEM–EDS).
  • Measured hardness, yield strength, and ductility of the alloys.
  • LZX110 displayed only the α-Mg(Li) HCP phase, while LZX920 consisted entirely of the β-Li(Mg) BCC phase.
  • LZX420 exhibited a dual-phase structure with both α-Mg(Li) and β-Li(Mg) phases.
  • Hardness values increased with lithium content, from 50.92 HV (LZX110) to 73.56 HV (LZX920).
  • LZX920 achieved a yield strength of 195 MPa and ultimate tensile strength of 196 MPa, while LZX420 showed the highest ductility at 13.5%.

Abstract

Abstract Magnesium–lithium (Mg–Li) binary alloys have attracted significant attention in recent years due to their exceptionally low density and high specific strength. Lithium, with a density of 0.58 g/cm 3 , is lighter than magnesium, making Mg–Li alloys highly attractive for aerospace, defense, and additive manufacturing applications where weight reduction is critical. The mechanical properties of Mg–Li alloys are strongly dependent on their crystal structure, which varies with lithium content and can exist in hexagonal close-packed (HCP), body-centered cubic (BCC), or dual-phase (HCP + BCC) forms. Additional alloying with calcium (Ca) and zinc (Zn), either individually or in combination, can further enhance mechanical performance. In the present study, three Mg–Li–Zn–Ca alloys—LZX110, LZX420, and LZX920—were produced via permanent mold casting following ASTM standards, with fixed Zn and Ca contents. LZX110 consisted solely of the α-Mg(Li) HCP phase, while LZX920 was composed entirely of the β-Li(Mg) BCC phase. X-ray diffraction (XRD) and scanning electron microscopy with energy-dispersive spectroscopy (SEM–EDS) analyses revealed that LZX420 exhibited a dual-phase structure containing both α-Mg(Li) and β-Li(Mg) phases. Zn and Ca were found to dissolve within the matrix phases, contributing to solid solution strengthening without forming distinct secondary phases. Hardness increased with Li content, with average values of 50.92 HV, 66.68 HV, and 73.56 HV for LZX110, LZX420, and LZX920, respectively. LZX920 exhibited the highest yield strength (195 MPa) and ultimate tensile strength (196 MPa), whereas LZX420 demonstrated the greatest ductility (13.5%). Overall, the dual-phase LZX420 alloy provided an optimal balance of strength and ductility, making it a promising candidate for lightweight structural applications.

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Cite This Study

Solak et al. (2026) studied this question.

synapsesocial.com/papers/6971be2c642b1836717e2e2ehttps://doi.org/10.1007/s40962-026-01869-8
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