首页> 外文期刊>Journal of the mechanical behavior of biomedical materials >Fatigue and biological properties of Ti-6Al-4V ELI cellular structures with variously arranged cubic cells made by selective laser melting
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Fatigue and biological properties of Ti-6Al-4V ELI cellular structures with variously arranged cubic cells made by selective laser melting

机译:用不同排列的立方电池进行Ti-6Al-4V Eli细胞结构的疲劳和生物学性质,通过选择性激光熔化制造

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Abstract Traditional implants made of bulk titanium are much stiffer than human bone and this mismatch can induce stress shielding. Although more complex to produce and with less predictable properties compared to bulk implants, implants with a highly porous structure can be produced to match the bone stiffness and at the same time favor bone ingrowth and regeneration. This paper presents the results of the mechanical and dimensional characterization of different regular cubic open-cell cellular structures produced by Selective Laser Melting (SLM) of Ti6Al4V alloy, all with the same nominal elastic modulus of 3GPa that matches that of human trabecular bone. The main objective of this research was to determine which structure has the best fatigue resistance through fully reversed fatigue tests on cellular specimens. The quality of the manufacturing process and the discrepancy between the actual measured cell parameters and the nominal CAD values were assessed through an extensive metrological analysis. The results of the metrological assessment allowed us to discuss the effect of manufacturing defects (porosity, surface roughness and geometrical inaccuracies) on the mechanical properties. Half of the specimens was subjected to a stress relief thermal treatment while the other half to Hot Isostatic Pressing (HIP), and we compared the effect of the treatments on porosity and on the mechanical properties. Fatigue strength seems to be highly dependent on the surface irregularities and notches introduced during the manufacturing process. In fully reversed fatigue tests, the high performances of stretching dominated structures compared to bending dominated structures are not found. In fact, with thicker struts, such structures proved to be more resistant, even if bending actions were present. Highlights ? Fatigue strength of cellular structures is affected mainly by sharp notches. ? Thicker cell wall junctions improve fatigue resistance. ? Bending actions in the cell walls allow thicker junctions at the same stiffness. ? Regular cubic structures showed better cellular proliferation.
机译:摘要由散装钛制成的传统植入物比人骨更硬,这种不匹配可以诱导应力屏蔽。虽然与散装植入物相比,产生更复杂的和更易于预测的性质,但是可以制造具有高多多孔结构的植入物以匹配骨刚度,同时有利于骨骼发热和再生。本文介绍了通过Ti6Al4V合金选择性激光熔化(SLM)产生的不同常规立方开孔细胞结构的机械和尺寸表征的结果,所有与人的小梁骨骼的3GPa相同的标称弹性模量。本研究的主要目的是通过对细胞样品的完全逆转疲劳试验确定哪种结构具有最佳的疲劳性。通过广泛的计量分析评估制造过程的质量和实际测量的细胞参数和标称CAD值之间的差异。计量评估的结果允许我们讨论制造缺陷(孔隙,表面粗糙度和几何不准确)对机械性能的影响。将一半的标本进行应激释放热处理,而另一部分到热等静压(臀部),并且我们比较了治疗对孔隙率和机械性能的影响。疲劳强度似乎高度依赖于制造过程中引入的表面不规则性和凹口。在完全反转的疲劳试验中,未找到与弯曲主导结构相比拉伸主导结构的高性能。实际上,由于较厚的支柱,即使存在弯曲动作,这种结构也被证明是更抗性的。强调 ?细胞结构的疲劳强度主要受到尖锐槽口的影响。还更厚的细胞壁连接可提高疲劳性。还细胞壁中的弯曲动作允许在相同的刚度下更厚的结。还常规立方体结构显示出更好的细胞增殖。

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