Mechanical property of Ti6Al4V cylindrical porous structure for dental implants fabricated by selective laser melting.

IF 1.7 4区 医学 Q3 COMPUTER SCIENCE, INTERDISCIPLINARY APPLICATIONS
Yun Zhai, Hao Zhang, Tong Liu, Cong Zou, Changchun Zhou
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引用次数: 0

Abstract

The commonly used titanium alloy dental implants currently apply solid structures. However, issues such as stress shielding and stress concentration may arise due to the significant difference in elastic modulus between the implant and host. In order to address these problems, this paper proposes five porous structures based on the Gibson-Ashby theoretical model. We utilized selective laser melting technology to shape a porous structure using Ti-6Al-4V material precisely. The mechanical properties of the porous structure were verified through simulation and compression experiments. The optimal porous structure, which best matched the human bone, was a circular ring structure with a pillar diameter of 0.6 mm and a layer height of 2 mm. The stress and strain of the porous implant on the surrounding cortical and cancellous bone under different biting conditions were studied to verify the effectiveness of the optimal circular ring porous structure in alleviating stress shielding in both standard and osteoporotic bone conditions. The results confirm that the circular ring porous structure meets implant requirements and provides a theoretical basis for clinical dental implantation.

利用选择性激光熔化技术制造的用于牙科植入物的 Ti6Al4V 圆柱形多孔结构的力学性能。
目前,常用的钛合金牙科植入体采用固体结构。然而,由于种植体和宿主之间的弹性模量差异较大,可能会出现应力屏蔽和应力集中等问题。为了解决这些问题,本文根据吉布森-阿什比理论模型提出了五种多孔结构。我们利用选择性激光熔化技术,使用 Ti-6Al-4V 材料精确地塑造了多孔结构。通过模拟和压缩实验验证了多孔结构的力学性能。最符合人体骨骼的最佳多孔结构是支柱直径为 0.6 毫米、层高为 2 毫米的环形结构。研究了多孔种植体在不同咬合条件下对周围皮质骨和松质骨的应力和应变,以验证最佳圆环多孔结构在标准骨和骨质疏松骨条件下减轻应力屏蔽的有效性。结果证实,圆环多孔结构符合种植要求,为临床牙科种植提供了理论依据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
4.10
自引率
6.20%
发文量
179
审稿时长
4-8 weeks
期刊介绍: The primary aims of Computer Methods in Biomechanics and Biomedical Engineering are to provide a means of communicating the advances being made in the areas of biomechanics and biomedical engineering and to stimulate interest in the continually emerging computer based technologies which are being applied in these multidisciplinary subjects. Computer Methods in Biomechanics and Biomedical Engineering will also provide a focus for the importance of integrating the disciplines of engineering with medical technology and clinical expertise. Such integration will have a major impact on health care in the future.
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