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Characterization of mechanical and microstructural properties of constrained groove pressed nitinol shape memory alloy for biomedical applications

机译:基于受约束槽的机械和微结构性能的表征压制镍钛烯醇形状记忆合金的生物医学应用

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摘要

Among shape memory alloys, nitinol alloy is biocompatible in nature and thus widely used in bone tissue engineering, stents, dental and orthopedic implants. To improve mechanical properties and extend its application window, in this paper, the Ni50.5Ti49.5 (nitinol) sheets are processed by constrained groove pressing (CGP) process, which is one of the effective severe plastic deformation (SPD) techniques for refining microstructure and enhancing mechanical properties in sheet metals. The microstructure and X-ray diffraction studies of CGPed sheets show uniform grain refinement and increase in martensitic variant. Based on tensile and microhardness tests on water quenched (WQ) and CGPed nitinol alloy, the results show about up to 2.5 times increment in ultimate tensile strength and yield strength, significant enhancement in microhardness and change in strain hardening behavior. For characterizing the strain hardening behavior, Holloman and Voce models have been determined to have strong correlation with the experimental data for WQ and CGPed nitinol alloy respectively. Thus, nitinol alloy after CGP exhibits grain refinement and microstructural evolution, showing an increase in stress induced martensite phase which indicates superior mechanical properties such as high strength, uniform deformation regime and microhardness. These enhancements will help in reduction of other supporting materials generally used for improving structural integrity and load bearing capacity in biomedical applications of nitinol alloy.
机译:在形状记忆合金中,Nitinol合金本质上是生物相容性的,因此广泛用于骨组织工程,支架,牙科和整形外科植入物。为了改善机械性能并延伸其应用窗口,本文通过约束槽压(CGP)工艺加工Ni50.5Ti49.5(Nitinol)片,这是用于精炼的有效严重塑性变形(SPD)技术之一薄板金属中的微观结构和增强机械性能。 CgPed片材的微观结构和X射线衍射研究显示出均匀的晶粒细化和不含马氏体变体的增加。基于水猝灭(WQ)和CgPed Nitinol合金的拉伸和显微硬度试验,结果表明,最终拉伸强度和屈服强度,显微硬度显着增强以及菌株硬化行为的变化显着增加了2.5倍。为了表征应变硬化行为,已经确定与WQ和CgPed Nitinol合金的实验数据具有强相关性的霍洛曼和Voce模型。因此,CGP后Nitinol合金表现出晶粒细化和微观结构的演化,显示出应力诱导的马氏体相增加,其表明优异的机械性能,例如高强度,均匀的变形状态和微硬度。这些增强将有助于减少通常用于改善镍钛合金的生物医学应用中的结构完整性和承载能力的其他支撑材料。

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