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首页> 外文期刊>Acta biomaterialia >Extraordinary high strength Ti-Zr-Ta alloys through nanoscaled, dual-cubic spinodal reinforcement
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Extraordinary high strength Ti-Zr-Ta alloys through nanoscaled, dual-cubic spinodal reinforcement

机译:通过纳米级,双立方纯穗增强器非凡的高强度Ti-Zr-Ta合金

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While titanium alloys represent the current state-of-the-art for orthopedic biomaterials, concerns still remain over their modulus. Circumventing this via increased porosity requires high elastic admissible strains, yet also limits traditional thermomechanical strengthening techniques. To this end, a novel beta-type Ti-Zr-Ta alloy system, comprised of Ti-45Zr-10Ta, Ti-40Zr-14Ta, Ti-35Zr-18Ta and Ti-30Zr-22Ta, was designed and characterized mechanically and microstructurally. As-cast, this system displayed extremely high yield strengths and elastic admissible strains, up to 1.4 GPa and potentially 1.48%, respectively. This strength was attributed to a nanoscaled, cuboidal structure of semi-coherent, dual body centered cubic (BCC) phases, arising from the thermodynamics of interaction between Ta and Zr; this morphology occurring with dual BCC-phases is heretofore unreported in Ti-based alloys. Further, cell proliferation investigated by MTS assay suggests this was achieved without sacrificing biocompatibility, with no significant difference to either empty-well or commercially-pure Ti controls noted.
机译:虽然钛合金代表目前用于整形外科生物材料的最先进的,但仍然存在于模量的担忧。通过增加的孔隙率来避免这种情况需要高弹性允许菌株,但也限制了传统的热机械强化技术。为此,由Ti-45ZR-10TA,Ti-40ZR-14TA,Ti-35ZR-18TA和Ti-30ZR-22TA组成的新型β型Ti-Zr-TA合金系统,设计和表征,设计和特征,和微观结构。由于铸造,该系统显示出极高的屈服强度和弹性可允许菌株,分别为1.4GPa和潜在的1.48%。这种强度归因于半相干,双体以立方(BCC)阶段的纳米级的立方体结构,由Ta和Zr之间的相互作用的热力学产生;在双BCC阶段发生的这种形态是在Ti基合金中未报告的。此外,通过MTS测定研究的细胞增殖表明,在不牺牲生物相容性的情况下实现了这一点,对空洞或商业纯的Ti对照没有显着差异。

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