Niinomi Mitsuo
Department of Biomaterial Science, Institute for Materials Research, Tohoku University, 2-1-1, Katahira, Aoba-ku, Sendai, 980-8577, Japan.
J Mech Behav Biomed Mater. 2008 Jan;1(1):30-42. doi: 10.1016/j.jmbbm.2007.07.001. Epub 2007 Aug 27.
Young's modulus as well as tensile strength, ductility, fatigue life, fretting fatigue life, wear properties, functionalities, etc., should be adjusted to levels that are suitable for structural biomaterials used in implants that replace hard tissue. These factors may be collectively referred to as mechanical biocompatibilities. In this paper, the following are described with regard to biomedical applications of titanium alloys: the Young's modulus, wear properties, notch fatigue strength, fatigue behaviour on relation to ageing treatment, improvement of fatigue strength, fatigue crack propagation resistance and ductility by the deformation-induced martensitic transformation of the unstable beta phase, and multifunctional deformation behaviours of titanium alloys.
杨氏模量以及拉伸强度、延展性、疲劳寿命、微动疲劳寿命、磨损性能、功能等,都应调整到适合用于替代硬组织的植入物的结构生物材料的水平。这些因素可统称为机械生物相容性。本文介绍了钛合金在生物医学应用方面的以下内容:杨氏模量、磨损性能、缺口疲劳强度、与时效处理相关的疲劳行为、疲劳强度的提高、通过不稳定β相的变形诱导马氏体相变提高疲劳裂纹扩展阻力和延展性,以及钛合金的多功能变形行为。