It highlights ongoing research to develop magnesium-rare earth (Mg-RE) alloys, which offer better strength and high-temperature resistance. The paper also outlines the limitations of magnesium alloys compared to aluminum alloys, which remain dominant due to superior overall performance.
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It highlights ongoing research to develop magnesium-rare earth (Mg-RE) alloys, which offer better strength and high-temperature resistance. The paper also outlines the limitations of magnesium alloys compared to aluminum alloys, which remain dominant due to superior overall performance.
This conclusion extends to other alloys, including those containing Al and Zn [169, 170]. In contrast to cast magnesium alloys, deformed magnesium alloy materials exhibit elevated strength, enhanced ductility, and overall superior performance, rendering them more promising for development.
However, when considering overall strength, fatigue resistance, machinability, corrosion resistance, and temperature tolerance, no magnesium alloy currently matches the performance of 2xxx aluminum alloys.
Despite their advantages, magnesium alloys face challenges, including poor corrosion resistance, low strength at high temperatures, and casting difficulties. The paper discusses the evolution of magnesium alloys, noting their early use in the 20th century and a resurgence in the 1990s.
In addition, although magnesium alloy has good impact toughness and fatigue strength, it is sensitive to stress concentration; low yield point and small modulus of elasticity also reduce the use value of magnesium alloy as a structural material.
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