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Microstructure and compression properties of 3D powder printed Ti-6Al-4V scaffolds with designed porosity: Experimental and computational analysis

机译:3D粉末的微观结构和压缩性能Ti-6Al-4V支架设计孔隙度:实验和计算分析

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The osseointegration of metallic implants depends on an effective balance among designed porosity to facilitate angiogenesis, tissue in-growth and bone-mimicking elastic modulus with good strength properties. While addressing such twin requirements, the present study demonstrates a low temperature additive manufacturing based processing strategy to fabricate Ti-6Al-4V scaffolds with designed porosity using inkjet-based 3D powder printing (3DPP). A novel starch-based aqueous binder was prepared and the physico-chemical parameters such as pH, viscosity, and surface tension were optimized for drop-on-demand (DOD) based thermal inkjet printing. Micro-computed tomography (micro-CT) of sintered scaffolds revealed a 57% total porosity in homogeneously porous scaffold,and 45% in the gradient porous scaffold with 99% interconnectivity among the micropores. Under uniaxial compression testing, the strength of homogeneously porous and gradient porous scaffolds were similar to 47 MPa and similar to 90 MPa, respectively. The progressive failure in homogeneously porous scaffold was recorded. In parallel to experimental measurements, finite element (FE) analyses have been performed to study the stress distribution globally and also locally around the designed pores. Consistent with FE analyses, a higher elastic modulus was recorded with gradient porous scaffoldS (similar to 3 GPa) than the homogenously porous scaffolds (2 GPa). While comparing with the existing literature reports, the present work, for the first time, establishes 'direct powder printing methodology' of Ti-6Al-4V porous scaffolds with biomedically relevant microstructural and mechanical properties. Also, a new FE analysis approach, based on the critical understanding of the porous architecture using micro-CT results, is presented to realistically predict the compression response of porous scaffolds. (C) 2016 Elsevier B.V. All rights reserved.
机译:金属植入物的骨整合取决于所设计的孔隙率之间的有效平衡,以促进血管生成,组织生长和骨模拟的弹性模量良好。在解决此类双胞胎要求的同时,本研究表明,基于低温添加剂制造的加工策略,用于使用基于喷墨的3D粉末印刷(3DPP)制造具有设计孔隙的Ti-6Al-4V支架。制备了一种新的淀粉基含水粘合剂,并针对PH值,诸如pH,粘度和表面张力等物理化学参数进行了优化,用于基于需求(DOD)的热喷墨印刷。烧结支架的微型计算机断层扫描(Micro-CT)在均匀多孔支架中显示出57%的总孔隙率,并且在梯度多孔支架中具有45%的微孔,微孔之间的互连99%。在单轴压缩测试下,均匀多孔和梯度多孔支架的强度与47MPa相似并类似于90MPa。记录了均匀多孔支架中的逐渐失败。与实验测量平行,已经进行了有限元(Fe)分析以研究全球和在设计的孔周围的压力分布。与Fe分析一致,用梯度多孔支架(类似于3GPa)记录更高的弹性模量,而不是均匀多孔支架(2GPa)。同时与现有的文献报告进行比较,首次建立目前的工作,并将Ti-6AL-4V多孔支架的“直接粉末印刷方法”具有生物学相关的微观结构和机械性能。此外,提出了一种基于使用微型CT结果对多孔架构的关键理解的新FE分析方法,以实际地预测多孔支架的压缩响应。 (c)2016年Elsevier B.v.保留所有权利。

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