一种具有本体感觉和触觉能力的多材料机器人手指

A. Georgopoulou, Stijn Hamelryckx, Kai Junge, L. Eckey, Simon Rogler, Robert K. Katzschmann, Josie Hughes, F. Clemens
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引用次数: 0

摘要

在开发或设计具有刚性和柔性部件以及集成传感器的仿生机器人手指时,在使用装配和铸造加工技术时,制造往往是一个瓶颈。本研究介绍了一种热塑性多材料制造方法,该方法允许在一次射击中打印带有传感元件的手指。选择热塑性塑料和热塑性弹性体为基础的材料来演示圆形制造工艺。为了展示该方法的潜力,使用聚丙烯(PP)作为刚性骨,苯乙烯基三嵌段共聚物(TPS)作为柔软皮肤,基于TPS和炭黑(CB)的电阻复合材料作为传感材料,制作了一个传感多材料手指。3D打印机配备了组合颗粒和长丝挤出机,使材料的组合制造加工无需额外组装。这使得探索一系列具有不同几何和填充特性的设计成为可能。为了证明循环过程,制造的手指被回收,机械性能没有导致明显的退化。所描述的柔性机器人部件的多材料制造允许生产方法的时间效率和材料的可重复使用,这有助于在未来建立一个可持续的循环过程。
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A multi-material robotic finger with integrated proprioceptive and tactile capabilities produced with a circular process
When developing or designing biomimetic robotic fingers with rigid and soft components and integrated sensors, fabrication is often a bottle-neck when assembling and casting processing techniques are used. This study introduces a thermoplastic multi-material fabrication approach that allows the printing of fingers with incorporated sensing elements in a single shot. Thermoplastics and thermoplastic elastomers based materials have been selected to demonstrate the circular fabrication process. To exhibit the potential of the method, a sensorized multi-material finger was fabricated using polypropylene (PP) for the rigid bone, styrene-based tri-block co-polymer (TPS) for the soft skin and resistive composites based on TPS and carbon black (CB) for the sensing. The 3D printer was equipped with combined pellet- and filament-based extruders to enable the combined fabrication processing of the materials without additional assembling. This allowed the exploration of a range of designs with different geometric and infill properties. To demonstrate the circular process, the fabricated fingers were recycled and the mechanical properties did not result in a visible degradation. The described multi-material fabrication of soft robotic components allows time efficiency of the production method and the reusability of the materials, which contribute to establishing a sustainable circular process in the future.
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