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一种增材制造的锁定固定系统,可潜在应用于患者专用植入物。

An additively manufactured locking fixation system for potential application in patient-specific implants.

机构信息

Materials Research and Education Center, Auburn University, Auburn, AL, 36849, USA.

Voxelmed, Germersheim, 76726, Germany.

出版信息

J Mech Behav Biomed Mater. 2021 Dec;124:104867. doi: 10.1016/j.jmbbm.2021.104867. Epub 2021 Sep 29.

Abstract

This study introduces a novel technique to implement a locking hole system into AM patient-specific implants without the need of additional post-processing steps such as mechanical machining. This has the potential to decrease the time and cost of manufacturing these implants, providing surgeons with an additional option, that is better suited in cases where the underlying bone is already weakened or bone porosis is an inherent risk. A commercially available locking system was chosen and replicated using high-resolution X-ray CT. A biocompatible material, 316L stainless steel was used to print specimen on a L-PBF machine in different orientations. The specimen were heat treated to tune the mechanical properties to enable the locking system to work. The accuracy of the printed holes was confirmed using a nominal/actual comparison between the original and printed holes. The strength of the system was evaluated by measuring the force needed to push the screw out of the locking plate. The 316L stainless steel samples, when annealed to tailor hardness, performed similarly to the commercial system. This included different build orientations that suggest the locking system can be included in AM implants without the need for additional post-processing steps.

摘要

本研究介绍了一种将锁定孔系统集成到 AM 患者专用植入物中的新技术,而无需额外的后处理步骤,如机械加工。这有可能减少这些植入物的制造时间和成本,为外科医生提供另一种选择,特别是在基础骨骼已经较弱或存在骨多孔性风险的情况下。选择了一种市售的锁定系统,并使用高分辨率 X 射线 CT 进行复制。使用生物相容性材料 316L 不锈钢在 L-PBF 机上以不同的方向打印标本。对标本进行热处理,以调整机械性能,使锁定系统能够工作。通过对原始孔和打印孔进行名义/实际比较,确认了打印孔的精度。通过测量将螺钉从锁定板中推出所需的力来评估系统的强度。经退火以调整硬度的 316L 不锈钢样品与商业系统表现相似。这包括不同的构建方向,表明无需额外的后处理步骤即可将锁定系统集成到 AM 植入物中。

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