Shenghao Hu, Feng Wang, Xudong Du, Pingli Mao, Zhi Wang, Le Zhou, Ziqi Wei, Jinwei Li
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引用次数: 0
Abstract
In this paper, microstructure, mechanical properties and wear resistance of as-cast Mg-3Al-1Ca-0.4Mn/Tip magnesium matrix composites were investigated. As-cast Mg-3Al-1Ca-0.4Mn/xTip (x = 0, 1, 2, and, 3wt%) composites were prepared using a combination of mechanical stirring and permanent mold casting. The results showed that nanoscale interfacial products (Al2Ti phases) were precipitated at Ti/Mg interfaces, which contributed to the formation of strong interfacial bonding. Compared with matrix alloys, Mg-3Al-1Ca-0.4Mn/2Tip composites had better mechanical properties and wear resistance with ultimate tensile strength, yield strength, elongation, hardness and wear rate of 149 MPa, 86 MPa, 8.6%, 46 HBW and 8.4×10-3 mm3/(N m), which indicated significant improvements of 26%, 38%, 36%, 10% and 59% over the Mg-3Al-1Ca-0.4Mn alloys, respectively. Grain refinement, load transfer and strong interfacial bonding all had important effects on improving mechanical properties of composites. The increased wear resistance of composites was mainly attributed to the incorporation of high hardness phases and the formation of protective oxide films.
期刊介绍:
The International Journal of Metalcasting is dedicated to leading the transfer of research and technology for the global metalcasting industry. The quarterly publication keeps the latest developments in metalcasting research and technology in front of the scientific leaders in our global industry throughout the year. All papers published in the the journal are approved after a rigorous peer review process. The editorial peer review board represents three international metalcasting groups: academia (metalcasting professors), science and research (personnel from national labs, research and scientific institutions), and industry (leading technical personnel from metalcasting facilities).