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A Further Analysis on Ti6Al4V Lattice Structures Manufactured by Selective Laser Melting

机译:选择性激光熔融制备Ti6Al4V晶格结构的进一步分析

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Mechanical and architectural features play an important role in designing biomedical devices. The use of materials (i.e., Ti6Al4V) with Youngs modulus higher than those of natural tissues generally cause stress shielding effects, bone atrophy, and implant loosening. However, porous devices may be designed to reduce the implant stiffness and, consequently, to improve its stability by promoting tissue ingrowth. If porosity increases, mass transport properties, which are crucial for cell behavior and tissue ingrowth, increase, whereas mechanical properties decrease. As reported in the literature, it is always possible to tailor mass transport and mechanical properties of additively manufactured structures by varying the architectural features, as well as pore shape and size. Even though many studies have already been made on different porous structures with controlled morphology, the aim of current study was to provide only a further analysis on Ti6Al4V lattice structures manufactured by selective laser melting. Experimental and theoretical analyses also demonstrated the possibility to vary the architectural features, pore size, and geometry, without dramatically altering the mechanical performance of the structure.
机译:机械和建筑特征在设计生物医学设备中起着重要作用。使用杨氏模量高于天然组织的杨氏模量的材料(即Ti6Al4V)通常会导致应力屏蔽效果,骨萎缩和植入物松动。然而,可以将多孔装置设计成减小植入物的硬度,并因此通过促进组织向内生长来提高其稳定性。如果孔隙率增加,则对于细胞行为和组织向内生长至关重要的传质特性会增加,而机械性能会降低。如文献报道,总是可以通过改变建筑特征以及孔的形状和大小来调整增材制造结构的质量传递和机械性能。尽管已经对具有可控形态的不同多孔结构进行了许多研究,但当前的研究目的仅是对通过选择性激光熔化制造的Ti6Al4V晶格结构进行进一步的分析。实验和理论分析还表明,可以在不显着改变结构机械性能的情况下改变建筑特征,孔径和几何形状。

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