首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Mechanical properties and corrosion behavior of beta-type Ti-Zr-Nb-Mo alloys for biomedical application
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Mechanical properties and corrosion behavior of beta-type Ti-Zr-Nb-Mo alloys for biomedical application

机译:Beta型Ti-ZR-NB-MO合金用于生物医学应用的机械性能和腐蚀行为

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A series of novel beta-type Ti-Zr-Nb-Mo alloys was fabricated to develop potential biomedical materials. The effects of the Mo content on microstructure, mechanical properties and electrochemical behavior were investigated in depth. The phase composition of all Ti-Zr-Nb-Mo alloys consists of a single beta phase. The grains are obviously refined due to the addition Mo. The average grain size of the (TiZr)(72)Nb15Mo13 alloy is the smallest. The yield strength and hardness of the alloys are significantly improved as the content of the Mo element increases. Due to the contributions of the fine-grained and solution strengthening, the (TiZr)(70)Nb15Mo15 alloy exhibits the highest yield strength (834 MPa) and hardness (486 HV). The elastic modulus of the Ti-Zr-Nb-Mo alloys ranges from 96 GPa to 105 GPa, which is lower than that of the Ti-6Al-4V alloy. The potentiodynamic polarization curves and electrochemical impedance spectroscopy show that each sample exhibits a great corrosion behavior in the simulated body fluid at 37 degrees C. The corrosion resistance of Ti-Zr-Nb-Mo alloys is markedly altered by adding the Mo element. In particular, the (TiZr)(72)Nb15Mo13 alloy exhibits the best corrosion resistance of all the samples, ant its corrosion potential and corrosion current density are -0.344 +/- 0.005 V and 71.9 +/- 5.3 nA.cm(-2), respectively. This finding is potenially explained by the fact that grain refinement leads to the formation of a compact and stable passive film on the surface of the alloy. (C) 2020 Elsevier B.V. All rights reserved.
机译:制造了一系列新的β型Ti-ZR-NB-Mo合金以开发潜在的生物医学材料。深入研究了Mo含量对微观结构,机械性能和电化学行为的影响。所有Ti-ZR-NB-MO合金的相组合物由单一β相组成。由于加入MO,晶粒显然是细化的。(TIZR)(72)NB15MO13合金的平均晶粒尺寸是最小的。随着Mo元素的含量增加,合金的屈服强度和硬度显着提高。由于细菌和溶液强化的贡献,(TizR)(70)Nb15MO15合金具有最高屈服强度(834MPa)和硬度(486HV)。 Ti-ZR-NB-MO合金的弹性模量为96gPa至105gPa,其低于Ti-6Al-4V合金的GPA。电位动力学偏振曲线和电化学阻抗谱表明,每个样品在模拟体液中在37℃下表现出很大的腐蚀行为。通过添加MO元素,Ti-Zr-Nb-Mo合金的耐腐蚀性显着改变。特别地,(TIZR)(72)NB15MO13合金表现出所有样品的最佳耐腐蚀性,抗腐蚀电位和腐蚀电流密度为-0.344 +/- 0.005 V和71.9 +/- 5.3 na.cm(-2 ), 分别。这种发现是由谷物改进导致在合金表面上形成紧凑且稳定的无源膜的事实。 (c)2020 Elsevier B.v.保留所有权利。

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