Abstract

The mechanical properties of Mg-6Sn-3Al-1Zn alloy were enhanced with bimodal grain size disturbed in the microstructure uniformly; the Mg-6Sn-3Al-1Zn alloys were rolled with 60% thickness reduction at different rolling temperatures. The results have shown that the Mg-6Sn-3Al-1Zn alloys are composed of Mg2Sn phase and α-Mg matrix phase. When the rolling temperature was less than or equal to 400°C, with the rolling temperature increasing, the average size and volume fraction of Mg2Sn phase and the average grain size of small grains remained unchanged, the average grain size of large grains decreased, the volume fraction of small grains increased, and the yield strength of the alloy increased. When the rolling temperature reached 450°C, the average size and volume fraction of Mg2Sn phase and the average grain size of large grains increased, and the volume fraction of small grains and the yield strength of the alloy decreased. The elongation increased with the rolling temperature increasing, but the change trend of hardness was just opposite. When the alloy was rolled at 400°C, the average sizes of small grains, large grains, and Mg2Sn phases were 3.66 μm, 9.24 μm, and 19.5 μm, respectively. The volume fractions of small grains, large grains, and Mg2Sn phases were 18.6%, 77.6%, and 3.8%, respectively. And the tensile properties reached the optimum; for example, the tensile strength, yield strength, elongation, and Vickers hardness were 361 MPa, 289.5 MPa, 20.5%, and 76.3 HV, respectively.

Highlights

  • Magnesium alloys are the lightest metallic structural materials [1,2,3]

  • How to improve the strength and ductility of the alloy is a hot research topic. e research has found that bimodal microstructures formed in magnesium alloys or Al–Mg alloys could simultaneously improve the strength and ductility [9,10,11,12,13]

  • After the Mg-6Sn-3Al-1Zn alloy was rolled at 400°C, large grains and Advances in Materials Science and Engineering small grains of bimodal microstructure distributed uniformly in the alloy, which leads to simultaneous enhancements of the strength and ductility of Mg-6Sn-3Al-1Zn alloy compared to the casting alloy. e present studies have significant value for the development of high mechanical properties Mg-6Sn-3Al-1Zn alloy, and the guiding function for fabricating high mechanical properties magnesium alloys in the future

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Summary

Introduction

Magnesium alloys are the lightest metallic structural materials [1,2,3]. Besides, magnesium alloys have widespread applications in modern aerospace, automobile industries, and electrical appliances, due to their strong specific strength, excellent electrode conductivity, electromagnetic shielding capability, and being easy to reuse [4,5,6,7,8]. Magnesium alloys play an important role in modern industry Both the strength and ductility of the alloy cannot be enhanced at the same time. E research has found that bimodal microstructures formed in magnesium alloys or Al–Mg alloys could simultaneously improve the strength and ductility [9,10,11,12,13]. The effect of rolling temperature on the microstructure and mechanical properties of Mg-6Sn-3Al-1Zn alloy was seldom studied systematically. After the Mg-6Sn-3Al-1Zn alloy was rolled at 400°C, large grains and Advances in Materials Science and Engineering small grains of bimodal microstructure distributed uniformly in the alloy, which leads to simultaneous enhancements of the strength and ductility of Mg-6Sn-3Al-1Zn alloy compared to the casting alloy. After the Mg-6Sn-3Al-1Zn alloy was rolled at 400°C, large grains and Advances in Materials Science and Engineering small grains of bimodal microstructure distributed uniformly in the alloy, which leads to simultaneous enhancements of the strength and ductility of Mg-6Sn-3Al-1Zn alloy compared to the casting alloy. e present studies have significant value for the development of high mechanical properties Mg-6Sn-3Al-1Zn alloy, and the guiding function for fabricating high mechanical properties magnesium alloys in the future

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