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用于人类太空探索设备的螺旋形状记忆聚合物人工肌肉的材料挤出

Material Extrusion of Helical Shape Memory Polymer Artificial Muscles for Human Space Exploration Apparatus.

作者信息

Mitchell Kellen, Raymond Lily, Wood Joshua, Su Ji, Zhang Jun, Jin Yifei

机构信息

Department of Mechanical Engineering, University of Nevada Reno, Reno, NV 89557, USA.

Advanced Materials and Processing Branch, NASA Langley Research Center, Hampton, VA 23681, USA.

出版信息

Polymers (Basel). 2022 Dec 6;14(23):5325. doi: 10.3390/polym14235325.

Abstract

Astronauts suffer skeletal muscle atrophy in microgravity and/or zero-gravity environments. Artificial muscle-actuated exoskeletons can aid astronauts in physically strenuous situations to mitigate risk during spaceflight missions. Current artificial muscle fabrication methods are technically challenging to be performed during spaceflight. The objective of this research is to unveil the effects of critical operating conditions on artificial muscle formation and geometry in a newly developed helical fiber extrusion method. It is found that the fiber outer diameter decreases and pitch increases when the printhead temperature increases, inlet pressure increases, or cooling fan speed decreases. Similarly, fiber thickness increases when the cooling fan speed decreases or printhead temperature increases. Extrusion conditions also affect surface morphology and mechanical properties. Particularly, extrusion conditions leading to an increased polymer temperature during extrusion can result in lower surface roughness and increased tensile strength and elastic modulus. The shape memory properties of an extruded fiber are demonstrated in this study to validate the ability of the fiber from shape memory polymer to act as an artificial muscle. The effects of the operating conditions are summarized into a phase diagram for selecting suitable parameters for fabricating helical artificial muscles with controllable geometries and excellent performance in the future.

摘要

宇航员在微重力和/或零重力环境下会遭受骨骼肌萎缩。人工肌肉驱动的外骨骼可以在体力消耗较大的情况下帮助宇航员,以降低太空飞行任务期间的风险。目前的人工肌肉制造方法在太空飞行中执行具有技术挑战性。本研究的目的是揭示在新开发的螺旋纤维挤压方法中关键操作条件对人工肌肉形成和几何形状的影响。研究发现,当打印头温度升高、入口压力增加或冷却风扇速度降低时,纤维外径减小而螺距增加。同样,当冷却风扇速度降低或打印头温度升高时,纤维厚度增加。挤出条件也会影响表面形态和机械性能。特别是,导致挤出过程中聚合物温度升高的挤出条件可导致较低的表面粗糙度以及增加的拉伸强度和弹性模量。本研究展示了挤出纤维的形状记忆特性,以验证由形状记忆聚合物制成的纤维作为人工肌肉的能力。操作条件的影响总结在一个相图中,以便将来为制造具有可控几何形状和优异性能的螺旋人工肌肉选择合适的参数。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f57c/9738167/307d67bd2b22/polymers-14-05325-g001.jpg

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