Department BioMechanical Engineering, Bio-Inspired Technology Group (BITE), Faculty of Mechanical, Maritime, and Materials Engineering, Delft University of Technology, Delft, The Netherlands.
Department of Electronic and Mechanical Support Division, Delft University of Technology, Delft, The Netherlands.
PLoS One. 2020 May 14;15(5):e0232952. doi: 10.1371/journal.pone.0232952. eCollection 2020.
In minimally invasive surgery, maneuverability is usually limited and a large number of degrees of freedom (DOF) is highly demanded. However, increasing the DOF usually means increasing the complexity of the surgical instrument leading to long fabrication and assembly times. In this work, we propose the first fully 3D printed handheld, multi-steerable device. The proposed device is mechanically actuated, and possesses five serially controlled segments. We designed a new compliant segment providing high torsion and axial stiffness as well as a low bending stiffness by merging the functions of four helicoids and a continuum backbone. Compliant segments were combined to form the compliant shaft of the new device. In order to control this compliant shaft, a control handle was designed that mimics the shaft structure. A prototype called the HelicoFlex was built using only three 3D printed parts. HelicoFlex, with its 10 degrees of freedom, showed a fluid motion in performing single and multi-curved paths. The multi-steerable instrument was 3D printed without any support material in the compliant shaft itself. This work contributes to enlarge the body of knowledge regarding how additive manufacturing could be used in the production of multi-steerable surgical instruments for personalized medicine.
在微创手术中,可操作性通常受到限制,并且需要大量的自由度(DOF)。然而,增加自由度通常意味着增加手术器械的复杂性,从而导致制造和组装时间延长。在这项工作中,我们提出了第一个完全 3D 打印的手持式、多转向装置。所提出的设备是机械驱动的,具有五个串联控制的部分。我们设计了一种新的柔顺段,通过合并四个螺旋线和一个连续体骨干的功能,提供了高扭转和轴向刚度以及低弯曲刚度。柔顺段被组合在一起,形成了新装置的柔顺轴。为了控制这个柔顺轴,我们设计了一个控制手柄,模仿轴的结构。一个名为 HelicoFlex 的原型是使用仅三个 3D 打印部件构建的。HelicoFlex 具有 10 个自由度,在执行单曲线和多曲线路径时表现出流畅的运动。多转向器械在制造时,其柔顺轴本身无需任何支撑材料。这项工作有助于扩大有关增材制造如何用于个性化医疗中多转向手术器械的生产的知识体系。