Manufacturability of functionally graded porous β-Ti21S auxetic architected biomaterials produced by laser powder bed fusion: Comparison between 2D and 3D metrological characterization.

IF 6.8 3区 医学 Q1 ENGINEERING, BIOMEDICAL International Journal of Bioprinting Pub Date : 2023-01-01 DOI:10.18063/ijb.728
Lorena Emanuelli, Alireza Jam, Anton du Plessis, Carlo Lora, Raffaele De Biasi, Matteo Benedetti, Massimo Pellizzari
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引用次数: 1

Abstract

Functionally graded porous structures (FGPSs) are attracting increasing interest in the manufacture of prostheses that benefit from lower stiffness and optimized pore size for osseointegration. In this work, we explore the possibility of employing FGPSs with auxetic unit cells. Their negative Poisson's ratio was exploited to reduce the loss of connection between prosthesis and bone usually occurring in standard implant loaded under tension and therefore undergoing lateral shrinking. In addition, to further improve osseointegration and mitigate stress shielding effects, auxetic FGPSs were fabricated in this work using a novel β-Ti21S alloy characterized by a lower Young's modulus compared to traditional α + β Ti alloys. Specifically, two different auxetic FGPSs with aspect ratio equal to 1.5 and angle θ of 15° and 25° with a relative density (ρr) gradient of 0.34, 0.49, 0.66 and of 0.40, 0.58, 0.75 were designed and printed by laser powder bed fusion. The 2D and 3D metrological characterization of the as-manufactured structures was compared with the design. 2D metrological characterization was carried out using scanning electron microscopy analysis, while for the 3D characterization, X-ray micro-CT imaging was used. An undersizing of the pore size and strut thickness in the as-manufactured sample was observed in both auxetic FGPSs. A maximum difference in the strut thickness of -14 and -22% was obtained in the auxetic structure with θ = 15° and 25°, respectively. On the contrary, a pore undersizing of -19% and -15% was evaluated in auxetic FGPS with θ = 15° and 25°, respectively. Compression mechanical tests allowed to determine stabilized elastic modulus of around 4 GPa for both FGPSs. Homogenization method and analytical equation were used and the comparison with experimental data highlights a good agreement of around 4% and 24% for θ = 15° and 25°, respectively.

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激光粉末床融合制备功能梯度多孔β-Ti21S仿生生物材料的可制造性:二维和三维计量表征的比较
功能梯度多孔结构(FGPSs)由于具有较低的刚度和优化的孔隙尺寸而有利于骨整合,因此越来越受到人们的关注。在这项工作中,我们探索了使用fgps与辅助单元细胞的可能性。他们的负泊松比被用来减少假体和骨之间的连接损失,通常发生在标准种植体在张力载荷下,因此进行侧缩。此外,为了进一步改善骨整合和减轻应力屏蔽效应,本研究使用一种新型β- ti21s合金制备了auxetic fgps,该合金与传统的α + β Ti合金相比具有更低的杨氏模量。具体而言,设计了两种不同的辅助fgps,其纵横比为1.5,角θ分别为15°和25°,相对密度(ρr)梯度分别为0.34、0.49、0.66和0.40、0.58、0.75。将制造结构的二维和三维计量特性与设计进行了比较。二维计量表征采用扫描电镜分析,三维表征采用x射线微ct成像。在这两种不饱和FGPSs中,观察到制造样品的孔径和支撑厚度过小。当θ = 15°和25°时,支撑厚度差异最大,分别为- 14%和-22%。相反,在θ = 15°和25°的辅助FGPS中,孔隙尺寸分别为-19%和-15%。压缩力学测试允许确定两种FGPSs的稳定弹性模量约为4 GPa。采用均匀化方法和解析方程与实验数据的比较表明,θ = 15°和25°时的一致性分别在4%和24%左右。
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来源期刊
CiteScore
6.90
自引率
4.80%
发文量
81
期刊介绍: The International Journal of Bioprinting is a globally recognized publication that focuses on the advancements, scientific discoveries, and practical implementations of Bioprinting. Bioprinting, in simple terms, involves the utilization of 3D printing technology and materials that contain living cells or biological components to fabricate tissues or other biotechnological products. Our journal encompasses interdisciplinary research that spans across technology, science, and clinical applications within the expansive realm of Bioprinting.
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