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3D printing of surgical instruments for long-duration space missions

机译:进行长期太空飞行的手术器械的3D打印

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摘要

Introduction: The first off-Earth fused deposition modeling (FDM) 3D printer will explore thermoplastic manufacturing capabilities in microgravity. This study evaluated the feasibility of FDM 3D printing 10 acrylonitrile butadiene styrene (ABS) thermoplastic surgical instruments on Earth. Methods: Three-point bending tests compared stiffness and yield strength between FDM 3D printed and conventionally manufactured ABS thermoplastic. To evaluate the relative speed of using four printed instruments compared to conventional instruments, 13 surgeons completed simulated prepping, draping, incising, and suturing tasks. Each surgeon ranked the performance of six printed instruments using a 5-point Likert scale. Results: At a thickness of 5.75 mm or more, the FDM printing process had a less than 10% detrimental effect on the tested yield strength and stiffness of horizontally printed ABS thermoplastic relative to conventional ABS thermoplastic. Significant weakness was observed when a bending load was applied transversely to a 3D printed layer. All timed tasks were successfully performed using a printed sponge stick, towel clamp, scalpel handle, and toothed forceps. There was no substantial difference in time to completion of simulated surgical tasks with control vs. 3D printed instruments. Of the surgeons, 100%, 92%, 85%, 77%, 77%, and 69% agreed that the printed smooth and tissue forceps, curved and straight hemostats, tissue and right angle clamps, respectively, would perform adequately. Discussion: It is feasible to 3D print ABS thermoplastic surgical instruments on Earth. Loadbearing structures were designed to be thicker, when possible. Printing orientations were selected so that the printing layering direction of critical structures would not be transverse to bending loads.
机译:简介:首台离地熔融沉积建模(FDM)3D打印机将探索微重力下的热塑性塑料制造能力。这项研究评估了FDM 3D在地球上打印10种丙烯腈丁二烯苯乙烯(ABS)热塑性外科器械的可行性。方法:三点弯曲测试比较了FDM 3D打印和常规制造的ABS热塑性塑料之间的刚度和屈服强度。为了评估与传统仪器相比使用四种印刷仪器的相对速度,共有13位外科医生完成了模拟的准备,覆盖,切割和缝合任务。每个外科医生使用5点李克特量表对六种印刷仪器的性能进行排名。结果:相对于传统的ABS热塑性塑料,FDM印刷工艺的厚度为5.75毫米或以上,对水平印刷的ABS热塑性塑料的测试屈服强度和刚度的有害影响小于10%。当将弯曲载荷横向施加到3D打印层时,观察到明显的弱点。使用打印的海绵棒,毛巾夹,手术刀手柄和带齿的镊子成功完成了所有定时任务。使用控制工具和3D打印工具完成模拟外科手术的时间没有实质性差异。在外科医生中,分别有100%,92%,85%,77%,77%和69%的人同意印刷的光滑钳和组织钳,弯曲和直形止血钳,组织钳和直角钳将表现良好。讨论:在地球上3D打印ABS热塑外科器械是可行的。可能的话,承重结构应设计得更厚。选择印刷方向,以使关键结构的印刷分层方向不会横向于弯曲载荷。

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