Department of Metallurgical and Materials Engineering, The University of Texas at El Paso, El Paso, TX 79968, USA.
J Mech Behav Biomed Mater. 2011 Oct;4(7):1396-411. doi: 10.1016/j.jmbbm.2011.05.010. Epub 2011 May 12.
Total knee replacement implants consisting of a Co-29Cr-6Mo alloy femoral component and a Ti-6Al-4V tibial component are the basis for the additive manufacturing of novel solid, mesh, and foam monoliths using electron beam melting (EBM). Ti-6Al-4V solid prototype microstructures were primarily α-phase acicular platelets while the mesh and foam structures were characterized by α(')-martensite with some residual α. The Co-29Cr-6Mo containing 0.22% C formed columnar (directional) Cr(23)C(6) carbides spaced ~2 μm in the build direction, while HIP-annealed Co-Cr alloy exhibited an intrinsic stacking fault microstructure. A log-log plot of relative stiffness versus relative density for Ti-6Al-4V and Co-29Cr-6Mo open-cellular mesh and foams resulted in a fitted line with a nearly ideal slope, n = 2.1. A stress shielding design graph constructed from these data permitted mesh and foam implant prototypes to be fabricated for compatible bone stiffness.
采用电子束熔化(EBM)技术,由 Co-29Cr-6Mo 合金股骨部件和 Ti-6Al-4V 胫骨部件组成的全膝关节置换植入物是新型实心、网眼和泡沫整体式单体制备的基础。Ti-6Al-4V 实心原型微观结构主要为α 相针状小板,而网眼和泡沫结构的特征为具有一些残余α的α(')-马氏体。含 0.22%C 的 Co-29Cr-6Mo 形成了在构建方向上间隔约 2μm 的柱状(定向)Cr(23)C(6)碳化物,而 HIP 退火的 Co-Cr 合金则表现出固有的位错结构。Ti-6Al-4V 和 Co-29Cr-6Mo 开式蜂窝网眼和泡沫的相对刚度与相对密度的对数-对数图导致拟合线具有近乎理想的斜率,n = 2.1。从这些数据构建的应力屏蔽设计图允许制造网眼和泡沫植入物原型,以实现与骨骼刚度相匹配。