Banerjee R, Nag S, Samuel S, Fraser H L
Department of Materials Science and Engineering, University of North Texas, Denton, USA.
J Biomed Mater Res A. 2006 Aug;78(2):298-305. doi: 10.1002/jbm.a.30694.
The complex quaternary Ti-35Nb-7Zr-5Ta orthopedic alloy has been successfully deposited from a powder feedstock consisting of a blend of elemental titanium, niobium, zirconium, and tantalum powders, using the laser engineered net-shaping (LENStrade mark) process. In the as laser-deposited form, these alloys exhibit a substantially higher tensile strength as compared with more conventionally processed counterparts of similar composition, while maintaining excellent ductility and a low modulus. Furthermore, the as-deposited alloys appear to exhibit a <001> texture, with a substantially large number of grains of the beta phase aligning one of their <001> axes nearly normal to the substrate or parallel to the growth direction. The microstructure of the as-deposited as well as tensile-tested alloys have been characterized in detail using scanning electron microscopy (SEM), orientation microscopy (OM), and transmission electron microscopy (TEM). Formation of a high density of shear bands, possibly arising from slip localization due to precipitates of the omega phase in the beta matrix, is clearly evident in the tensile-tested sample. The enhanced tensile strength and low modulus in these laser-deposited alloys coupled with the ability to form near-net shape components makes LENS an attractive processing technology for orthopedic implants.
采用激光工程化净成形(LENStrade mark)工艺,已成功地从由元素钛粉、铌粉、锆粉和钽粉混合而成的粉末原料中沉积出复杂的四元Ti-35Nb-7Zr-5Ta骨科合金。在激光沉积态下,与类似成分的传统加工合金相比,这些合金表现出显著更高的拉伸强度,同时保持优异的延展性和低模量。此外,沉积态合金似乎呈现出<001>织构,大量β相晶粒的一个<001>轴几乎垂直于基体或平行于生长方向。使用扫描电子显微镜(SEM)、取向显微镜(OM)和透射电子显微镜(TEM)对沉积态以及拉伸试验后的合金微观结构进行了详细表征。在拉伸试验后的样品中,明显可见由于β基体中ω相析出导致滑移局部化而形成的高密度剪切带。这些激光沉积合金的拉伸强度提高和模量降低,再加上能够形成近净形部件,使得激光工程化净成形成为一种有吸引力的骨科植入物加工技术。