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Microstructure and Mechanical Properties of Rapidly Solidified β-Type Ti–Fe–Sn–Mo Alloys with High Specific Strength and Low Elastic Modulus

机译:具有高比强度和低弹性模量的快速凝固β型Ti-Fe-Sn-Mo合金的微观结构和力学性能

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摘要

The microstructure and mechanical properties of rapidly solidified β-type Ti−Fe−Sn−Mo alloys with high specific strength and low elastic modulus were investigated. The results show that the phases of Ti−Fe−Sn−Mo alloys are composed of the β-Ti, α-Ti, and TiFe phases; the volume fraction of TiFe phase decreases with the increase of Mo content. The high Fe content results in the deposition of TiFe phase along the grain boundary of the Ti phase. The Ti75Fe19Sn5Mo1 alloy exhibits the high yield strength, maximum compressive strength, large plastic deformation, high specific strength, high Vickers hardness, and large toughness value, which is a superior new engineering material. The elastic modulus (42.1 GPa) of Ti75Fe15Sn5Mo5 alloy is very close to the elastic modulus of human bone (10−30 GPa), which indicating that the alloy can be used as a good biomedical alloy. In addition, the large H/Er and H3/Er2 values of Ti75Fe19Sn5Mo1 alloy indicate the good wear resistance and long service life as biomedical materials.
机译:研究了高比强度和低弹性模量的快速凝固β型Ti-Fe-Sn-Mo合金的微观结构和机械性能。结果表明,Ti-Fe-Sn-Mo合金的相由β-Ti,α-Ti和成型阶段组成;通过Mo含量的增加,TiGe相的体积分数降低。高Fe含量导致沿Ti阶段的晶界沉积。 Ti75Fe19Sn5MO1合金具有高屈服强度,最大抗压强度,大的塑性变形,高比强度,高维氏硬度,以及大的韧性值,这是一种优越的新工程材料。 Ti75Fe15Sn5Mo5合金的弹性模量(42.1 GPa)的非常接近人骨的弹性模量(GPA 10-30),其指示该合金可以用作良好的生物医学合金。此外,Ti75Fe19SN5MO1合金的大型H / ER和H3 / ER2值表明良好的耐磨性和长期使用寿命作为生物医学材料。

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