Warder Henry H, Fairley Joseph K, Coutts Joshua, Glisson Richard R, Gall Ken
1 Duke University, Durham, NC, USA.
2 Northwestern University, Chicago, IL, USA.
Prosthet Orthot Int. 2018 Dec;42(6):644-651. doi: 10.1177/0309364618785726. Epub 2018 Jul 5.
: A low-cost, yet high-functioning, fabrication method for prosthetic components is needed to provide underserved amputee communities with quality mobility devices. Three-dimensional printing is a potential alternative, yet limitations in material characteristics have previously prevented the technology from emerging as a solution.
: To validate the application of a novel three-dimensional printing technique as a fabrication method for creating fiber composite patient end-use prosthetic feet.
: Experimental designs were iterated upon throughout mechanical testing.
: A testing apparatus capable of loading prosthetic feet in dorsiflexion and plantarflexion was constructed. Load displacement data were gathered, and energy analyses were conducted. The three-dimensionally printed feet were compared to a Freedom Innovations Renegade® MX carbon fiber foot and a solid-ankle cushion heel foot.
: The three-dimensionally printed feet achieved energy profiles that were similar, and in some cases preferable, to the energy profiles of the Renegade MX and solid-ankle cushion heel foot. The stiffness profiles of the three-dimensionally printed feet varied widely and depended greatly on the design of the feet, as well as the amount and location of the fiber reinforcement.
: Composite filament fabrication three-dimensional printing has the potential to serve as a fabrication method for the production of energy returning prosthetic feet.
: The results of this study indicate that carbon fiber reinforced three-dimensionally printed prosthetic feet have the potential to serve as a low-cost alternative to carbon fiber prosthetic feet and that three-dimensional printing has the capacity to function as a viable fabrication method for patient end-use prosthetic components.
需要一种低成本但高性能的假肢部件制造方法,为服务不足的截肢者群体提供高质量的移动设备。三维打印是一种潜在的替代方法,但材料特性的限制此前阻碍了该技术成为一种解决方案。
验证一种新型三维打印技术作为制造纤维复合材料患者最终使用的假肢脚的制造方法的应用。
在整个机械测试过程中反复进行实验设计。
构建了一种能够在背屈和跖屈状态下加载假肢脚的测试装置。收集载荷位移数据并进行能量分析。将三维打印的脚与Freedom Innovations Renegade® MX碳纤维脚和实心踝垫后跟脚进行比较。
三维打印的脚实现的能量曲线与Renegade MX和实心踝垫后跟脚的能量曲线相似,在某些情况下更优。三维打印的脚的刚度曲线差异很大,并且在很大程度上取决于脚的设计以及纤维增强材料的数量和位置。
复合长丝制造三维打印有潜力作为制造能量回馈假肢脚的一种制造方法。
本研究结果表明,碳纤维增强三维打印假肢脚有潜力作为碳纤维假肢脚的低成本替代品,并且三维打印有能力作为患者最终使用的假肢部件的可行制造方法。