Microstructure and Mechanical Properties of Ti-Mo-Zr-Cr Biomedical Alloys by Powder Metallurgy

被引:0
作者
Abou Bakr Elshalakany
Shady Ali
A. Amigó Mata
Ashraf K. Eessaa
P. Mohan
T. A. Osman
V. Amigó Borrás
机构
[1] University Polytechnic of Valencia (UPV),Institute of Materials Technology (ITM)
[2] Akhbar El Yom Academy,Production Engineering and Printing Technology Department
[3] Cairo University,Mechanical Design and Production Engineering Department
[4] Electronics Research Institute,undefined
来源
Journal of Materials Engineering and Performance | 2017年 / 26卷
关键词
implant material; microstructure; mechanical properties; powder metallurgy; titanium alloys;
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学科分类号
摘要
Titanium and its alloys have been widely used as biometals due to their excellent biocompatibility, corrosion resistance and moderate mechanical properties. Ti-15Mo-6Zr-based alloys and a series of Ti-15Mo-6Zr-xCr (x = 1, 2, 3, 4 wt.%) alloys were designed and fabricated by powder metallurgy for the first time to develop novel biomedical materials. The microstructure, internal porosity and mechanical properties of the sintered Ti-15Mo-6Zr and Ti-15Mo-6Zr-xCr alloys were investigated using scanning electronic microscopy (SEM) and bending and compression tests. The experimental results indicated that the microstructure and mechanical properties of these alloys changed as different Cr levels were added. The addition of small Cr levels further increased the β-phase stability, improving the properties of the Ti-15Mo-6Zr-xCr alloy. However, all of the alloys had good ductility, and the Ti-15Mo-6Zr-2Cr alloy had lower bending and compression moduli (31 and 23 GPa, respectively) than the Ti-15Mo-6Zr-based alloys (40 and 36 GPa, respectively). Moreover, the Ti-15Mo-6Zr-2Cr alloys exhibited higher bending and compression strength/modulus ratios, which were as large as 48.4 and 52.2, respectively; these were higher than those of the Ti-15Mo-6Zr-based alloy (41.3 and 33.6, respectively). In the search for a better implant material, β phase Ti-15Mo-6Zr-2Cr, with its low modulus, ductile properties and reasonably high strength, is a promising candidate.
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页码:1262 / 1271
页数:9
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