六面体骨长入模拟——一种新型支架设计

IF 2.3 4区 工程技术 Q3 ENGINEERING, MANUFACTURING 3D Printing and Additive Manufacturing Pub Date : 2023-11-10 DOI:10.1089/3dp.2023.0113
Yuheng Wang, Luping Wang, Nicolas Soro, Pascal R. Buenzli, Zhiyong Li, Nicholas Green, Kevin Tetsworth, Deniz Erbulut
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引用次数: 0

摘要

骨支架植入物的应用是修复大量骨缺损的一种很有前途的方法。近年来,各种传统的支架结构被开发出来,随着材料生物学和计算机技术的进步,新的支架设计正在被评估。本研究通过计算框架研究了一种新型支架单元细胞设计(Hexanoid)的效果,并将其性能与四种知名支架设计进行了比较。通过有限元分析、数值模拟和力学试验,分析了不同支架设计的动态骨长入过程和机械强度。基于骨重塑理论,模拟Ti-6Al-4V金属支架内的骨形成过程。研究结果表明,新型支架设计(Hexanoid)获得了显著提高的最终骨体积分数(约27%),优于现有文献中发现的传统单细胞设计,例如立方体设计的骨腔体积比为19.1%,圆形设计为16.9%。这种新型结构也具有与人类致密骨组织相当的机械强度。虽然该设计并非在每个类别中都是最佳的,但与评估的五种支架结构相比,它在骨骼性能的某些关键方面提供了非常令人满意的整体性能。虽然本项目存在局限性,但类似的方法也可以应用于新脚手架结构的初步评估,从而提高效率和效果。在未来的研究中,该项目的结果可能会与临床康复过程相结合,为优化其他新型支架单元细胞结构设计提供关键评估。
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Bone Ingrowth Simulation Within the Hexanoid, a Novel Scaffold Design
The utilization of bone scaffold implants represents a promising approach for repairing substantial bone defects. In recent years, various traditional scaffold structures have been developed and, with advances in materials biology and computer technology, novel scaffold designs are now being evaluated. This study investigated the effects of a novel scaffold unit cell design (Hexanoid) through a computational framework, comparing its performance to that of four well-known scaffold designs. A finite element analysis numerical simulation and mechanical testing were conducted to analyze the dynamic bone ingrowth process and the mechanical strength of the different scaffold designs. Bone formation within the Ti-6Al-4V metal scaffolds was simulated based on the theory of bone remodeling. The outcomes of the study reveal that the novel scaffold design (Hexanoid) attains a notably elevated ultimate bone volume fraction (∼27%), it outperformed conventional unit-cell designs found in extant literature, such as cubic design with 19.1% and circular design with 16.9% in relation to the bone-to-cavity volume ratio. This novel structure also has comparable mechanical strength to that of human compact bone tissue. While the design was not optimal in every category, it provided a very satisfactory overall performance regarding certain key aspects of bone performances in comparison with the five scaffold structures evaluated. Although limitations exist in this project, similar methodologies can also be applied in the primary evaluation of new scaffold structures, resulting in improved efficiency and effectiveness. In future research, the results of this project may be integrated with clinical rehabilitation processes to offer a critical evaluation for optimization of additional novel scaffold unit-cell structure designs.
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来源期刊
3D Printing and Additive Manufacturing
3D Printing and Additive Manufacturing Materials Science-Materials Science (miscellaneous)
CiteScore
6.00
自引率
6.50%
发文量
126
期刊介绍: 3D Printing and Additive Manufacturing is a peer-reviewed journal that provides a forum for world-class research in additive manufacturing and related technologies. The Journal explores emerging challenges and opportunities ranging from new developments of processes and materials, to new simulation and design tools, and informative applications and case studies. Novel applications in new areas, such as medicine, education, bio-printing, food printing, art and architecture, are also encouraged. The Journal addresses the important questions surrounding this powerful and growing field, including issues in policy and law, intellectual property, data standards, safety and liability, environmental impact, social, economic, and humanitarian implications, and emerging business models at the industrial and consumer scales.
期刊最新文献
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