激光粉末床融合制备多孔定制Ti-6Al-4V颅骨种植体的研制。

IF 1.5 4区 医学 Q3 ENGINEERING, BIOMEDICAL
Mihrigul Ekşi Altan, Alperen Acar, Seyhan Özen, Yeliz Güldorum, Eren Külle, Berke Apaydınlı, Abdulkadir Günay, Meltem Eryildiz
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引用次数: 0

摘要

定制的颅骨植入物在神经外科中起着至关重要的作用,有助于在创伤或手术干预后恢复颅骨完整性并保护潜在的脑组织。Ti-6Al-4V颅骨植入物具有较高的机械强度;然而,它们的固体形式可能过重,具有高弹性模量,导致应力屏蔽效应。本研究的重点是利用计算机断层扫描数据设计颅骨植入物,结合不同的晶格和多孔结构来优化重量和力学性能。利用nTop软件进行分析,比较了不同结构的位移和von Mises应力值。等桁架晶格结构是最有效的,在保持40 MPa的von Mises应力的同时,实现了约50%的减重。在计算分析的基础上,采用激光粉末床融合(PBF-LB)技术制备了等桁架种植体,并在真实条件下进行了模拟颅骨种植体的压缩试验。与实心植入物相比,等桁架晶格颅骨植入物具有高达18,000 N的显著承重能力,同时重量减轻了50%,这表明这种轻质结构不仅具有高性能的承重能力,而且在外科应用中也显示出巨大的潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Development of porous customized Ti-6Al-4V cranial implant manufactured by laser beam powder bed fusion.

Customized cranial implants play a crucial role in neurosurgery, serving to restore cranial integrity and protect the underlying brain tissue after trauma or surgical intervention. Ti-6Al-4V cranial implants exhibit high mechanical strength; however, their solid forms can be excessively heavy and possess a high elastic modulus, leading to stress shielding effects. This study focuses on designing a cranial implant utilizing computer tomography data, incorporating different lattice and porous structures to optimize weight and mechanical performance. The analysis, conducted with nTop software, compared displacement and von Mises stress values across different structures. The isotruss lattice structure emerged as the most effective, achieving a weight reduction of approximately 50% while maintaining a von Mises stress of 40 MPa. Following the computational analysis, Laser Beam Powder Bed Fusion (PBF-LB) was employed to fabricate the isotruss implant and the compression test was performed to mimic the cranial implant under realistic conditions. The isotruss lattice cranial implant exhibited a remarkable load-bearing capacity of up to 18,000 N while achieving a 50% weight reduction compared to the solid implant, indicating that this lightweight structure not only offers high-performance load-bearing capabilities but also shows great potential for use in surgical applications.

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来源期刊
CiteScore
3.60
自引率
5.60%
发文量
122
审稿时长
6 months
期刊介绍: The Journal of Engineering in Medicine is an interdisciplinary journal encompassing all aspects of engineering in medicine. The Journal is a vital tool for maintaining an understanding of the newest techniques and research in medical engineering.
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