Abstract
magnesium (Mg) alloys have garnered considerable attention across diverse sectors, encompassing aerospace, automotive, and biomedical domains, owing to their advantageous attributes, which include a notably low density (1.7 g/m3), high strength-to-weight ratio, augmented specific stiffness, heightened damping capacity, and exceptional machinability. This paper provides a comprehensive review of the influence of strain amplitude, strain rate, and temperature on the fatigue life of magnesium alloys. The investigation entails a comparative analysis of fatigue life modeling using established models such as Walker's and Wheeler's models, employing a synthesis of experimental and analytical methodologies. Furthermore, the monotonic mechanical properties, encompassing tensile strength and yield stress, are elucidated across a wide temperature range from room temperature (RT) to 300°C, alongside a comparative evaluation vis-a-vis other material counterpart. The paper also encapsulates a comprehensive review and tabulation of the limited analytical studies pertaining to magnesium alloys available in the literature.
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CITATION STYLE
Kumar, R., Mursaleen, M., & Harmain, G. A. (2024). A Comprehensive Review of Modeling Approaches for Analyzing Mechanical Properties and Fatigue Performance in Magnesium Alloys. International Journal of Integrated Engineering, 16(6), 265–284. https://doi.org/10.30880/ijie.2024.16.06.026
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