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Application of Ti6Al7Nb Alloy for the Manufacture of Biomechanical Functional Structures (BFS) for Custom-Made Bone Implants

机译:Ti6Al7Nb合金在定制骨植入物生物力学功能结构(BFS)制造中的应用

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摘要

Unlike conventional manufacturing techniques, additive manufacturing (AM) can form objects of complex shape and geometry in an almost unrestricted manner. AM’s advantages include higher control of local process parameters and a possibility to use two or more various materials during manufacture. In this work, we applied one of AM technologies, selective laser melting, using Ti6Al7Nb alloy to produce biomedical functional structures (BFS) in the form of bone implants. Five types of BFS structures (A1, A2, A3, B, C) were manufactured for the research. The aim of this study was to investigate such technological aspects as architecture, manufacturing methods, process parameters, surface modification, and to compare them with such functional properties such as accuracy, mechanical, and biological in manufactured implants. Initial in vitro studies were performed using osteoblast cell line hFOB 1.19 (ATCC CRL-11372) (American Type Culture Collection). The results of the presented study confirm high applicative potential of AM to produce bone implants of high accuracy and geometric complexity, displaying desired mechanical properties. The experimental tests, as well as geometrical accuracy analysis, showed that the square shaped (A3) BFS structures were characterized by the lowest deviation range and smallestanisotropy of mechanical properties. Moreover, cell culture experiments performed in this study proved that the designed and obtained implant’s internal porosity (A3) enhances the growth of bone cells (osteoblasts) and can obtain predesigned biomechanical characteristics comparable to those of the bone tissue.
机译:与常规制造技术不同,增材制造(AM)可以以几乎不受限制的方式形成形状和几何形状复杂的对象。 AM的优势包括对本地工艺参数的更高控制以及在制造过程中可以使用两种或更多种不同材料的可能性。在这项工作中,我们应用了AM技术之一,即选择性激光熔化,使用Ti6Al7Nb合金以骨植入物的形式生产生物医学功能结构(BFS)。研究生产了五种类型的BFS结构(A1,A2,A3,B,C)。这项研究的目的是研究诸如结构,制造方法,工艺参数,表面改性等技术方面,并将它们与诸如人造植入物的精度,机械和生物学等功能特性进行比较。最初的体外研究是使用成骨细胞系hFOB 1.19(ATCC CRL-11372)(美国典型培养物保藏中心)进行的。提出的研究结果证实了AM的高应用潜力,可以生产出具有高精度和几何复杂性,显示出所需机械性能的骨植入物。实验测试以及几何精度分析表明,方形(A3)BFS结构具有最低的偏差范围和最小的力学性能各向异性。此外,这项研究进行的细胞培养实验证明,设计并获得的植入物的内部孔隙率(A3)可以促进骨细胞(成骨细胞)的生长,并可以获得与骨组织相当的预先设计的生物力学特性。

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