Schiefer H, Bram M, Buchkremer H P, Stöver D
Institut für Energieforschung (IEF-1), Forschungszentrum Jülich GmbH, Jülich, Germany.
J Mater Sci Mater Med. 2009 Aug;20(8):1763-70. doi: 10.1007/s10856-009-3733-1. Epub 2009 Mar 26.
Due to its good biocompatibility, porous titanium is an interesting material for biomedical applications. Bone tissue can grow inside the porous structure and maintain a long and stable connection between the implant and the human bone. To investigate its long term stability, the mechanical behavior of porous titanium was tested under static and dynamic conditions and was compared to human bone tissue. A promising application of this material is the coating of dental implants. A manufacturing technique was developed and implants were produced. These implants were fatigue tested according to modified ISO 14801 and the micro structural change was examined. The fatigue test was statically modeled using finite element analysis (FEA). The results show that the implants resist a continuous load which is comparable to the loading conditions in the human jaw. The experiments show that the porous titanium has bone-like mechanical properties. Additionally the porous titanium shows an anisotropic behavior of its mechanical properties depending on the alignment of the pores. Finally, other potential applications of porous titanium are outlined.
由于其良好的生物相容性,多孔钛是一种用于生物医学应用的有趣材料。骨组织可以在多孔结构内生长,并在植入物与人体骨骼之间保持长期稳定的连接。为了研究其长期稳定性,对多孔钛在静态和动态条件下的力学行为进行了测试,并与人体骨组织进行了比较。这种材料的一个有前景的应用是牙科植入物的涂层。开发了一种制造技术并生产了植入物。这些植入物根据修改后的ISO 14801进行了疲劳测试,并检查了微观结构变化。使用有限元分析(FEA)对疲劳试验进行了静态建模。结果表明,植入物能够抵抗与人类颌骨加载条件相当的连续载荷。实验表明,多孔钛具有类似骨的力学性能。此外,多孔钛的力学性能表现出各向异性,这取决于孔隙的排列。最后,概述了多孔钛的其他潜在应用。