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经高压扭转处理的医用 β 型 Ti-29Nb-13Ta-4.6Zr 的非均匀结构和力学硬度。

Heterogeneous structure and mechanical hardness of biomedical β-type Ti-29Nb-13Ta-4.6Zr subjected to high-pressure torsion.

机构信息

Tohoku University, Sendai 980-8579, Japan.

出版信息

J Mech Behav Biomed Mater. 2012 Jun;10:235-45. doi: 10.1016/j.jmbbm.2012.02.022. Epub 2012 Mar 4.

Abstract

A novel β-type titanium alloy, Ti-29Nb-13Ta-4.6Zr (TNTZ), has been developed as a candidate for biomedical applications. TNTZ exhibits non-toxicity and a low Young's modulus close to that of bone (10-30 GPa). Such a low Young's modulus of this alloy is achieved by comprising a single metastable β phase. Greater mechanical biocompatibility, which implies higher mechanical strength and hardness while maintaining a low Young's modulus, has been aimed for TNTZ. Therefore, strengthening by grain refinement and increasing dislocation density is expected to provide TNTZ high mechanical strength while keeping a low Young's modulus because they keep the original β phase. In this case, high-pressure torsion (HPT) processing is one of the effective ways to obtain these properties simultaneously in TNTZ. Thus, in this study, the effect of HPT processing on the microstructure and mechanical hardness of TNTZ was systematically investigated at rotation numbers (N) of 1 to 20 under a pressure of around 1.25 GPa at room temperature. On the cross sections of TNTZ subjected to HPT processing (TNTZ(HPT)) after cold rolling (TNTZ(CR)) at any rotation number, a heterogeneous microstructure consisting of a matrix and a non-etched band, which is not corroded by etching solution, can be observed. The thickness of non-etched band increases as rotation number and distance from specimen center increase. Both matrix and non-etched band comprise a single β phase, but their grain geometries are different each other. Equiaxed grains and elongated grains are observed in the matrix and the non-etched band, respectively. The equiaxed grain diameter, which is ranged from 155 nm to 44 nm, in the matrix decreases with increasing rotation number. Contrastingly, the elongated grains with a length of around 300 nm and a width of 30 nm, which are nearly constant with rotation number, are observed in the non-etched band. The mechanical hardness of TNTZ(HPT) is consistently much higher than that of TNTZ(CR). The mechanical hardness distribution on the surface of TNTZ(HPT) is heterogeneous in the radial and depth directions, while that of TNTZ(CR) is homogeneous; the mechanical hardness is higher in the peripheral region than in the central region on the surfaces of TNTZ(HPT) at all N. Further, the mechanical hardness distribution on the cross sections of TNTZ(HPT) at all N is also heterogeneous in depth direction; the mechanical hardness is higher in the peripheral region than in the central region. The heterogeneous mechanical hardness distribution depending on the position on the surface and cross section of TNTZ(HPT) is considered to be related to grain refinement and imposed strain due to HPT processing.

摘要

一种新型的β型钛合金 Ti-29Nb-13Ta-4.6Zr(TNTZ)已被开发用于生物医学应用。TNTZ 表现出无毒和接近骨骼的低杨氏模量(10-30GPa)。这种合金的低杨氏模量是通过包含单一的亚稳β相来实现的。更高的机械生物相容性,即保持低杨氏模量的同时具有更高的机械强度和硬度,是 TNTZ 的目标。因此,通过细化晶粒和增加位错密度来强化有望为 TNTZ 提供高机械强度,同时保持低杨氏模量,因为它们保持了原始的β相。在这种情况下,高压扭转(HPT)处理是在室温下在约 1.25GPa 的压力下同时获得这些特性的有效方法之一。因此,在这项研究中,系统研究了在室温下约 1.25GPa 的压力下,在旋转数(N)为 1 到 20 的范围内,HPT 处理对 TNTZ 微观结构和机械硬度的影响。在经过任何旋转数下冷轧(TNTZ(CR))后的 TNTZ(HPT)的横截面中,可以观察到由基体和未蚀刻带组成的不均匀微观结构,该未蚀刻带未被蚀刻溶液腐蚀。未蚀刻带的厚度随着旋转数和距样品中心的距离的增加而增加。基体和未蚀刻带都包含单一的β相,但它们的晶粒几何形状彼此不同。在基体和未蚀刻带中分别观察到等轴晶粒和伸长晶粒。基体中等轴晶粒的直径范围为 155nm 至 44nm,随旋转数的增加而减小。相比之下,在未蚀刻带中观察到长度约为 300nm、宽度为 30nm 的伸长晶粒,其随旋转数基本保持不变。TNTZ(HPT)的机械硬度始终明显高于 TNTZ(CR)。TNTZ(HPT)表面的机械硬度在径向和深度方向上呈不均匀分布,而 TNTZ(CR)的机械硬度呈均匀分布;在所有 N 下,TNTZ(HPT)的表面的外围区域的机械硬度高于中心区域。此外,在所有 N 下,TNTZ(HPT)的横截面的机械硬度分布在深度方向上也是不均匀的;外围区域的机械硬度高于中心区域。TNTZ(HPT)表面和横截面位置依赖的不均匀机械硬度分布被认为与 HPT 处理引起的晶粒细化和施加应变有关。

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