Murr Lawrence E, Gaytan Sara M, Martinez Edwin, Medina Frank, Wicker Ryan B
Department of Metallurgical and Materials Engineering, The University of Texas at El Paso, El Paso, TX 79968, USA.
Int J Biomater. 2012;2012:245727. doi: 10.1155/2012/245727. Epub 2012 Aug 21.
This paper presents some examples of knee and hip implant components containing porous structures and fabricated in monolithic forms utilizing electron beam melting (EBM). In addition, utilizing stiffness or relative stiffness versus relative density design plots for open-cellular structures (mesh and foam components) of Ti-6Al-4V and Co-29Cr-6Mo alloy fabricated by EBM, it is demonstrated that stiffness-compatible implants can be fabricated for optimal stress shielding for bone regimes as well as bone cell ingrowth. Implications for the fabrication of patient-specific, monolithic, multifunctional orthopaedic implants using EBM are described along with microstructures and mechanical properties characteristic of both Ti-6Al-4V and Co-29Cr-6Mo alloy prototypes, including both solid and open-cellular prototypes manufactured by additive manufacturing (AM) using EBM.
本文展示了一些包含多孔结构且采用电子束熔炼(EBM)以整体形式制造的膝关节和髋关节植入部件的示例。此外,利用通过EBM制造的Ti-6Al-4V和Co-29Cr-6Mo合金的开孔结构(网状和泡沫部件)的刚度或相对刚度与相对密度设计图,证明了可以制造出刚度兼容的植入物,以实现对骨骼区域的最佳应力屏蔽以及骨细胞向内生长。文中描述了使用EBM制造患者特异性、整体式、多功能骨科植入物的意义,以及Ti-6Al-4V和Co-29Cr-6Mo合金原型的微观结构和机械性能特征,包括通过使用EBM的增材制造(AM)制造的实心和开孔原型。