Li S J, Cui T C, Hao Y L, Yang R
Shenyang National Laboratory for Materials Science, Institute of Metal Research, Chinese Academy of Sciences, 72 Wenhua Road, Shenyang 110016, China.
Acta Biomater. 2008 Mar;4(2):305-17. doi: 10.1016/j.actbio.2007.09.009. Epub 2007 Oct 7.
Due to recent concern about allergic and toxic effects of Ni ions released from TiNi alloy into human body, much attention has been focused on the development of new Ni-free, metastable beta-type biomedical titanium alloys with a reversible phase transformation between the beta phase and the alpha'' martensite. This study investigates the effect of the stress-induced alpha'' martensite on the mechanical and fatigue properties of Ti-24Nb-4Zr-7.6Sn (wt.%) alloy. The results show that the as-forged alloy has a low dynamic Young's modulus of 55GPa and a recoverable tensile strain of approximately 3%. Compared with Ti-6Al-4V ELI, the studied alloy has quite a high low-cycle fatigue strength because of the effective suppression of microplastic deformation by the reversible martensitic transformation. Due to the low critical stress required to induce the martensitic transformation, it has low fatigue endurance comparable to that of Ti-6Al-4V ELI. Cold rolling produces a beta+alpha'' two-phase microstructure that is characterized by regions of nano-size beta grains interspersed with coarse grains containing alpha'' martensite plates. Cold rolling increases fatigue endurance by approximately 50% while decreasing the Young's modulus to 49GPa along the rolling direction but increasing it to 68GPa along the transverse direction. Due to the effective suppression of the brittle isothermal omega phase, balanced properties of high strength, low Young's modulus and good ductility can be achieved through ageing treatment at intermediate temperature.
由于近期人们对从钛镍合金释放到人体中的镍离子的过敏和毒性作用表示担忧,因此,新型无镍、具有β相和α''马氏体之间可逆相变的亚稳β型生物医学钛合金的开发备受关注。本研究调查了应力诱导α''马氏体对Ti-24Nb-4Zr-7.6Sn(重量百分比)合金力学性能和疲劳性能的影响。结果表明,锻造态合金具有55GPa的低动态杨氏模量和约3%的可恢复拉伸应变。与Ti-6Al-4V ELI相比,由于可逆马氏体相变有效抑制了微塑性变形,所研究的合金具有相当高的低周疲劳强度。由于诱导马氏体相变所需的临界应力较低,其疲劳耐久性与Ti-6Al-4V ELI相当。冷轧产生β+α''双相微观结构,其特征是纳米尺寸的β晶粒区域与含有α''马氏体板的粗晶粒相间分布。冷轧使疲劳耐久性提高约50%,同时沿轧制方向将杨氏模量降低至49GPa,但沿横向方向将其提高至68GPa。由于有效抑制了脆性等温ω相,通过中间温度时效处理可实现高强度、低杨氏模量和良好延展性的平衡性能。