Institute of Biomaterials and Bioengineering, Tokyo Medical and Dental University, 2-3-10 Kanda-Surugadai, Chiyoda-ku, Tokyo 101-0062, Japan.
Acta Biomater. 2011 Dec;7(12):4278-84. doi: 10.1016/j.actbio.2011.07.020. Epub 2011 Jul 30.
On the basis of the microstructures and mechanical properties of as-cast Zr-(0-24)Nb alloys the effects of phase constitution on the mechanical properties and magnetic susceptibility are discussed in order to develop Zr alloys for use in magnetic resonance imaging (MRI). The microstructures were evaluated using an X-ray diffractometer, an optical microscope, and a transmission electron microscope; the mechanical properties were evaluated by a tensile test. The α' phase was dominantly formed with less than 6 mass% Nb content. The ω phase was formed in Zr-(6-20)Nb alloys, but disappeared from Zr-22Nb. The β phase dominantly existed in Zr-(9-24)Nb alloys. The mechanical properties as well as the magnetic susceptibility of the Zr-Nb alloys varied depending on the phase constitution. The Zr-Nb alloys consisting of mainly α' phase showed high strength, moderate ductility, and a high Young's modulus, retaining low magnetic susceptibility. Zr-Nb alloys containing a larger volume of ω phase were found to be brittle and, thus, should be avoided, despite their low magnetic susceptibility. When the Zr-Nb alloys consisted primarily of β phase the effect of ω phase weakened the mechanical properties, thereby leading to an increase in ductility, even with an increase in magnetic susceptibility. The minimum value of Young's modulus was obtained for Zr-20Nb, because this composition was the phase boundary between the β and ω phases. However, the magnetic susceptibility of the alloy was half that of Ti-6Al-4V alloys. Zr-Nb alloys consisting of α' or β phase have excellent mechanical properties with low magnetic susceptibility and, thus, these alloys could be useful for medical devices used in MRI.
基于铸态 Zr-(0-24)Nb 合金的微观结构和力学性能,讨论了相组成对力学性能和磁化率的影响,以期开发用于磁共振成像 (MRI) 的 Zr 合金。采用 X 射线衍射仪、光学显微镜和透射电子显微镜评估微观结构;通过拉伸试验评估力学性能。当 Nb 含量小于 6 质量%时,主要形成α'相。Zr-(6-20)Nb 合金中形成ω相,但在 Zr-22Nb 中消失。β 相主要存在于 Zr-(9-24)Nb 合金中。Zr-Nb 合金的力学性能和磁化率随相组成而变化。主要由α'相组成的 Zr-Nb 合金表现出高强度、适度的延展性和高杨氏模量,同时保持低磁化率。发现含有较大体积ω相的 Zr-Nb 合金脆性较大,因此尽管磁化率较低,但仍应避免使用。当 Zr-Nb 合金主要由β相组成时,ω 相的作用会削弱力学性能,从而导致延展性增加,即使磁化率增加也是如此。Zr-20Nb 的杨氏模量最小,因为该成分处于β相和ω相的相界。然而,该合金的磁化率是 Ti-6Al-4V 合金的一半。由α'或β相组成的 Zr-Nb 合金具有低磁化率和优异的力学性能,因此这些合金可用于 MRI 中的医疗设备。