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First principles studies on structural, elastic and electronic properties of new Ti-Mo-Nb-Zr alloys for biomedical applications

机译:用于生物医学的新型Ti-Mo-Nb-Zr合金的结构,弹性和电子性能的基本原理研究

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Stress shielding phenomenon has become a major drawback to the use of metallic biomaterials for orthopaedic implants applications. In this study, a Ti-Mo-(Nb, Zr and Nb + Zr) alloy system was investigated to design and develop novel low elastic Young's modulus Ti based alloy for implant application. The development and application of predictive modelling and simulation are transforming the materials engineering discovery process. To this end, ab initio calculation was used to evaluate the effects of composition on structural, elastic and electronic properties of the materials. The data obtained from both theory and experiment were analysed and compared with each other. Notable findings include low elastic Young's modulus values of 70.2 GPa, 80.6 GPa, 76.5 GPa, 59.1 GPa and 32.3 GPa for the Ti-6Mo-6Zr, Ti-6Mo-6Nb, Ti-6Mo-6Nb-2Zr, Ti-6Mo-5Nb-3Zr and Ti-6Mo-4Nb-4Zr alloys, respectively ascribed to the unique elastic softening of their C' and C-44 shear moduli. The consistency in both results is discussed in terms of the sensitivity of the physical and electronic properties to the alloying additions. Thus, the result indicates the approach can enhance the reduction of elastic Young's modulus of metallic biomaterials for replacing some commonly used high modulus materials and prevent stress shielding in orthopaedic implants. (C) 2016 Elsevier Ltd. All rights reserved.
机译:应力屏蔽现象已经成为将金属生物材料用于整形外科植入物应用的主要缺点。在这项研究中,研究了Ti-Mo-(Nb,Zr和Nb + Zr)合金系统,以设计和开发新型的低弹性杨氏模量Ti基合金,用于植入应用。预测建模和仿真的开发和应用正在改变材料工程发现过程。为此,使用从头算来评估组成对材料的结构,弹性和电子性能的影响。分析和比较了从理论和实验获得的数据。值得注意的发现包括Ti-6Mo-6Zr,Ti-6Mo-6Nb,Ti-6Mo-6Nb-2Zr,Ti-6Mo-5Nb的低弹性杨氏模量值分别为70.2 GPa,80.6 GPa,76.5 GPa,59.1 GPa和32.3 GPa -3Zr和Ti-6Mo-4Nb-4Zr合金分别归因于其C'和C-44剪切模量的独特弹性软化。关于物理和电子性质对合金添加物的敏感性,讨论了两个结果的一致性。因此,结果表明该方法可以增强金属生物材料的弹性杨氏模量的降低,以代替某些常用的高模量材料,并防止骨科植入物中的应力屏蔽。 (C)2016 Elsevier Ltd.保留所有权利。

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