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May 10, 2026Materials Science and Technology0 citations

Improved SCC resistance of biodegradable Mg–Zn–Zr alloy by rare-earth element addition

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ZSZeinab SavaediUniversity of TehranHMHamed MirzadehUniversity of TehranRARouhollah Mehdinavaz AghdamUniversity of Tehran

Key Points

  • This research aims to evaluate the stress corrosion cracking (SCC) resistance of biodegradable Mg alloys with rare-earth element addition.
  • Investigated Mg–3Zn–0.5Zr and Mg–3Zn–0.5RE–0.5Zr alloys using slow strain rate shear (SSRS) test.
  • Compared the SCC characteristics of alloys against commercially pure Mg in simulated body fluid (SBF).
  • Assessed ductility and ultimate shear stress (USS) of materials during testing.
  • The quaternary alloy (ZEK300) exhibited the lowest drop in ultimate shear stress (USS) during SBF testing.
  • ZEK300 showed the highest SCC resistance among the tested materials.
  • Improvement in ZEK300's SCC resistance was linked to its protective corrosion layer and fine-grained structure.

Abstract

SCC characteristics of the ternary Mg–3Zn–0.5Zr (ZK30) and quaternary Mg–3Zn–0.5RE–0.5Zr (ZEK300) alloys were investigated using the slow strain rate shear (SSRS) test, and compared to that of commercially pure (CP) Mg. When tested in the simulated body fluid (SBF), ductility and the ultimate shear stress (USS) of all materials decreased due to the adverse effects of the corrosive medium. The quaternary alloy showed the lowest USS drop during testing in the SBF solution and the highest SCC resistances. The observed improvement in the SCC resistance of the ZEK300 alloy was ascribed to the presence of a more protective corrosion layer on its surface, facilitated by its fine-grained structure as well as the presence of fine CeZn 5 second phase particles.

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Cite This Study

Savaedi et al. (2026) studied this question.

synapsesocial.com/papers/6a002222c8f74e3340f9d269https://doi.org/10.1177/02670836261421381
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