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Elastic Modulus, Microplastic Properties and Durability of Titanium Alloys for Biomedical Applications

机译:生物医学应用钛合金的弹性模量,微塑性和耐久性

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This research was focused on a new low-modulus β-type titanium alloy Ti-26Nb- 7Mo-12Zr (wt.%). The microstructure effects on elastic modulus (measured by the acoustic resonance method) as well as microplastic, mechanical, tribological, and corrosive properties of Ti-26Nb-7Mo-12Zr alloy after thermomechanical processing were examined. The microstructure was characterized in detail by scanning electron microscopy and electron backscatter diffraction methods. The experimental research results have shown that formation of the fully recrystallized structure in the titanium alloy leads to an increase in elastic modulus, microplastic flow stress and plasticity, as compared to the corresponding characteristics of the alloy having partially recrystallized and coarse-grained structures. The durability of β titanium alloy was examined and compared with that of commercially pure α titanium (CP Ti). It was found that, in the same creep loading conditions, the low-modulus Ti-26Nb-7Mo-12Zr alloy exhibits a longer time to creep fracture, as compared to the pure α titanium.
机译:该研究集中于新型低模量β型钛合金Ti-26Nb-7Mo-12Zr(wt。%)。研究了热机械加工后,Ti-26Nb-7Mo-12Zr合金对弹性模量(通过声共振法测量)以及微观塑性,力学,摩擦学和腐蚀性能的影响。通过扫描电子显微镜和电子背散射衍射法详细表征了微观结构。实验研究结果表明,与具有部分重结晶和粗晶粒结构的合金的相应特征相比,在钛合金中形成完全重结晶的结构导致弹性模量,微塑性流动应力和塑性的增加。检查了β钛合金的耐久性,并将其与商业纯α钛(CP Ti)的耐久性进行了比较。发现在相同蠕变载荷条件下,与纯α钛相比,低模量Ti-26Nb-7Mo-12Zr合金具有更长的蠕变断裂时间。

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