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Bionic mechanical design and 3D printing of novel porous Ti6Al4V implants for biomedical applications

机译:用于生物医学应用的新型多孔Ti6Al4V植入物的仿生机械设计和3D打印

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摘要

In maxillofacial surgery, there is a significant need for the design and fabrication of porous scaffolds with customizable bionic structures and mechanical properties suitable for bone tissue engineering. In this paper, we characterize the porous Ti6Al4V implant, which is one of the most promising and attractive biomedical applications due to the similarity of its modulus to human bones. We describe the mechanical properties of this implant, which we suggest is capable of providing important biological functions for bone tissue regeneration. We characterize a novel bionic design and fabrication process for porous implants. A design concept of “reducing dimensions and designing layer by layer” was used to construct layered slice and rod-connected mesh structure (LSRCMS) implants. Porous LSRCMS implants with different parameters and porosities were fabricated by selective laser melting (SLM). Printed samples were evaluated by microstructure characterization, specific mechanical properties were analyzed by mechanical tests, and finite element analysis was used to digitally calculate the stress characteristics of the LSRCMS under loading forces. Our results show that the samples fabricated by SLM had good structure printing quality with reasonable pore sizes. The porosity, pore size, and strut thickness of manufactured samples ranged from (60.95±0.27)% to (81.23±0.32)%, (480±28) to (685±31) μm, and (263±28) to (265±28) μm, respectively. The compression results show that the Young’s modulus and the yield strength ranged from (2.23±0.03) to (6.36±0.06) GPa and (21.36±0.42) to (122.85±3.85) MPa, respectively. We also show that the Young’s modulus and yield strength of the LSRCMS samples can be predicted by the Gibson-Ashby model. Further, we prove the structural stability of our novel design by finite element analysis. Our results illustrate that our novel SLM-fabricated porous Ti6Al4V scaffolds based on an LSRCMS are a promising material for bone implants, and are potentially applicable to the field of bone defect repair.
机译:在颌面外科手术中,非常需要设计和制造具有可定制的仿生结构和适用于骨组织工程的机械性能的多孔支架。在本文中,我们对多孔Ti6Al4V植入物进行了表征,由于其模量与人体骨骼相似,它是最有前途和有吸引力的生物医学应用之一。我们描述了这种植入物的机械性能,我们建议它能够为骨组织再生提供重要的生物学功能。我们表征了一种新颖的仿生设计和制造工艺的多孔植入物。采用“减小尺寸并逐层设计”的设计理念来构造分层的切片和杆状连接网状结构(LSRCMS)植入物。通过选择性激光熔化(SLM)制造了具有不同参数和孔隙率的多孔LSRCMS植入物。通过微观结构表征评估印刷样品,通过机械测试分析特定的机械性能,并使用有限元分析来数字计算LSRCMS在加载力下的应力特性。我们的结果表明,由SLM制造的样品具有良好的结构印刷质量和合理的孔径。制成样品的孔隙率,孔径和支杆厚度范围为(60.95±0.27)%至(81.23±0.32)%,(480±28)至(685±31)μm和(263±28)至(265)分别为±28)μm。压缩结果表明,杨氏模量和屈服强度分别为(2.23±0.03)MPa(6.36±0.06)GPa和(21.36±0.42)MPa(122.85±3.85)MPa。我们还表明,可以通过Gibson-Ashby模型预测LSRCMS样品的杨氏模量和屈服强度。此外,我们通过有限元分析证明了我们新颖设计的结构稳定性。我们的结果表明,我们基于LSRCMS的新型SLM制造的多孔Ti6Al4V支架是用于骨植入物的有前途的材料,并且可能适用于骨缺损修复领域。

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