用于骨科植入物的生物医学钛合金激光粉末床融合的可制造性研究:机械性能、工艺诱导的孔隙率和表面粗糙度的研究

IF 3.4 4区 工程技术 Q1 ENGINEERING, MECHANICAL
M. Rehman, Yanen Wang, K. Ishfaq, Haiou Yang, Ray Tahir Mushtaq, M. Kumar, Ammar Ahmed
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引用次数: 0

摘要

目的由于生物医学植入物具有提高的抗压强度、接近骨骼的弹性模量、可控的孔隙率和足够的表面粗糙度,可以帮助长期植入。因此,精细工艺调整在开发最佳设置以实现这些所需特性方面发挥着至关重要的作用。本文旨在寻找精细工艺调谐在生物医学钛合金承载植入物激光粉末床融合中的应用。设计/方法/方法在这项工作中,最初进行了参数孔隙率模拟,以根据全因子设计模拟选择性激光熔化Ti6Al4V的工艺诱导孔隙率。继续进行实验以验证模拟结果,并进行多响应优化以微调工艺参数。每个控制变量的三个水平,即激光功率-Pl(180190200)W,扫描速度-Vs(150016001700)mm/s和扫描方向-{1(0,0),2(0.67°),3(0.90°)},用于研究加工性能。本研究测得的性能包括压缩屈服强度、弹性模量、工艺引起的孔隙率和表面粗糙度。最后,还进行了验证性实验,并与已经发表的作品进行了比较,以验证研究结果。结果Ti6Al4V选择性激光熔化的孔隙率参数模拟和实验结果接近,总孔隙率小于10%。精细工艺调整产生最佳设置[Pl(200 W),Vs(1500 mm/s),ϴ(0,90°)],[Pl(200 W),Vs(1500 mm/s),ϴ(0.67°)],[Pl(200 W),Vs(1500 mm/s),ϴ(0,0)]和[Pl(200 W),Vs(1500 mm/s),ϴ(0,0)]具有更高的抗压强度(672.78 MPa),近皮质骨弹性模量(12.932 GPa)、工艺引起的孔隙率(0.751%)和最小表面粗糙度(2.72 µm)。选择性激光熔化(SLMed)表面的形态表明,由于激光和粉末床之间的激光能量密度较低,熔合孔的缺乏是突出的。验证性实验表明,在预测值和实验值之间发现了大约15%的总体百分比改善。独创性/价值由于没有关于用于不同承载植入物的生物医学钛合金激光粉末床融合的协同优化和精细工艺调整的重要工作。因此,这项工作涉及全面调查和多目标优化,以确定最佳参数设置,从而获得更好的机械和物理性能。另一个新颖的方面是使用Ansys Additive进行参数孔隙率模拟,以帮助选择工艺参数及其水平。因此,在最佳设置下选择性激光熔化Ti合金可能有助于检查制造用于承载应用的金属植入物的可能性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Manufacturability study in laser powder bed fusion of biomedical Ti alloys for orthopedic implants: an investigation of mechanical properties, process-induced porosity and surface roughness
Purpose Since the biomedical implants with an improved compressive strength, near bone elastic modulus, controlled porosity, and sufficient surface roughness, can assist in long term implantation. Therefore, the fine process tuning plays its crucial role to develop optimal settings to achieve these desired properties. This paper aims to find applications for fine process tuning in laser powder bed fusion of biomedical Ti alloys for load-bearing implants. Design/methodology/approach In this work, the parametric porosity simulations were initially performed to simulate the process-induced porosity for selective laser-melted Ti6Al4V as per full factorial design. Continually, the experiments were performed to validate the simulation results and perform multiresponse optimization to fine-tune the processing parameters. Three levels of each control variable, namely, laser power – Pl (180, 190, 200) W, scanning speed – Vs (1500, 1600, 1700) mm/s and scan orientation – ϴ{1(0,0), 2(0,67°), 3(0,90°)} were used to investigate the processing performance. The measured properties from this study include compressive yield strength, elastic modulus, process-induced porosity and surface roughness. Finally, confirmatory experiments and comparisons with the already published works were also performed to validate the research results. Findings The results of porosity parametric simulation and experiments in selective laser melting of Ti6Al4V were found close to each other with overall porosity (less than 10%). The fine process tuning was resulted in optimal settings [Pl (200 W), Vs (1500 mm/s), ϴ (0,90°)], [Pl (200 W), Vs (1500 mm/s), ϴ (0,67°)], [Pl (200 W), Vs (1500 mm/s), ϴ (0,0)] and [Pl (200 W), Vs (1500 mm/s), ϴ (0,0)] with higher compressive strength (672.78 MPa), near cortical bone elastic modulus (12.932 GPa), process-induced porosity (0.751%) and minimum surface roughness (2.72 µm). The morphology of the selective laser melted (SLMed) surface indicated that the lack of fusion pores was prominent because of low laser energy density among the laser and powder bed. Confirmatory experimentation revealed that an overall percent improvement of around 15% was found between predicted and the experimental values. Originality/value Since no significant works are available on the collaborative optimization and fine process tuning in laser powder bed fusion of biomedical Ti alloys for different load bearing implants. Therefore, this work involves the comprehensive investigation and multi-objective optimization to determine optimal parametric settings for better mechanical and physical properties. Another novel aspect is the parametric porosity simulation using Ansys Additive to assist in process parameters and their levels selection. As a result, selective laser melted Ti alloys at optimal settings may help in examining the possibility for manufacturing metallic implants for load-bearing applications.
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来源期刊
Rapid Prototyping Journal
Rapid Prototyping Journal 工程技术-材料科学:综合
CiteScore
8.30
自引率
10.30%
发文量
137
审稿时长
4.6 months
期刊介绍: Rapid Prototyping Journal concentrates on development in a manufacturing environment but covers applications in other areas, such as medicine and construction. All papers published in this field are scattered over a wide range of international publications, none of which actually specializes in this particular discipline, this journal is a vital resource for anyone involved in additive manufacturing. It draws together important refereed papers on all aspects of AM from distinguished sources all over the world, to give a truly international perspective on this dynamic and exciting area. -Benchmarking – certification and qualification in AM- Mass customisation in AM- Design for AM- Materials aspects- Reviews of processes/applications- CAD and other software aspects- Enhancement of existing processes- Integration with design process- Management implications- New AM processes- Novel applications of AM parts- AM for tooling- Medical applications- Reverse engineering in relation to AM- Additive & Subtractive hybrid manufacturing- Industrialisation
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