Terryn Seppe, Mathijssen Glenn, Brancart Joost, Lefeber Dirk, Assche Guy Van, Vanderborght Bram
Robotics and Multibody Mechanics (R&MM), Vrije Universiteit Brussel (VUB), Pleinlaan 2, B-1050 Brussels, Belgium.
Bioinspir Biomim. 2015 Jul 7;10(4):046007. doi: 10.1088/1748-3190/10/4/046007.
Inspired by the intrinsic softness and the corresponding embodied intelligence principles, soft pneumatic actuators (SPA) have been developed, which ensure safe interaction in unstructured, unknown environments. Due to their intrinsic softness, these actuators have the ability to resist large mechanical impacts. However, the soft materials used in these structures are in general susceptible to damage caused by sharp objects found in the unstructured environments. This paper proposes to integrate a self-healing (SH-) mechanism in SPAs, such that cuts, tears and perforations in the actuator can be self-healed. Diels-Alder (DA-) polymers, covalent polymer network systems based on the thermoreversible DA-reaction, were selected and their mechanical, as well as SH-properties, are described. To evaluate the feasibility of developing an SPA constructed out of SH-material, a single cell prototype, a SH-soft pneumatic cell (SH-SPC), was constructed entirely out of DA-polymers. Exploiting the SH-property of the DA-polymers, a completely new shaping process is presented in this paper, referred to as 'shaping through folding and self-healing'. 3D polygon structures, like the cubic SH-SPC, can be constructed by folding SH-polymer sheet. The sides of the structures can be sealed and made airtight using a SH-procedure at relatively low temperatures (<90 °C). Both the (thermo) mechanical and SH-properties of the SH-SPC prototype were experimentally validated and showed excellent performances. Macroscopic incisions in the prototype were completely healed using a SH-procedure (<70 °C). Starting from this single-cell prototype, it is straight-forward to develop a multi-cell prototype, the first SPA ever built completely out of SH-polymers.
受内在柔软性和相应的具身智能原理启发,人们开发了软气动致动器(SPA),其可确保在非结构化、未知环境中的安全交互。由于其内在的柔软性,这些致动器能够抵抗较大的机械冲击。然而,这些结构中使用的软材料通常易受非结构化环境中尖锐物体造成的损坏。本文提出在SPA中集成自修复(SH-)机制,以使致动器中的切口、撕裂和穿孔能够自我修复。选择了基于热可逆狄尔斯-阿尔德(DA-)反应的DA-聚合物、共价聚合物网络系统,并描述了它们的机械性能以及自修复性能。为了评估开发由自修复材料构建的SPA的可行性,构建了一个单单元原型,即完全由DA-聚合物制成的自修复软气动单元(SH-SPC)。利用DA-聚合物的自修复特性,本文提出了一种全新的成型工艺,称为“通过折叠和自修复成型”。可以通过折叠SH-聚合物片材构建3D多边形结构,如立方SH-SPC。结构的侧面可以在相对较低的温度(<90°C)下使用自修复程序密封并使其气密。对SH-SPC原型的(热)机械性能和自修复性能进行了实验验证,结果显示性能优异。使用自修复程序(<70°C)可使原型中的宏观切口完全愈合。从这个单单元原型出发,很容易开发出多单元原型,这是有史以来第一个完全由自修复聚合物构建的SPA。