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可生物降解的电液致动器,用于可持续的软体机器人。

Biodegradable electrohydraulic actuators for sustainable soft robots.

机构信息

Robotic Materials Department, Max Planck Institute for Intelligent Systems, Stuttgart, Germany.

Paul M. Rady Department of Mechanical Engineering, University of Colorado, Boulder, CO, USA.

出版信息

Sci Adv. 2023 Mar 22;9(12):eadf5551. doi: 10.1126/sciadv.adf5551.

Abstract

Combating environmental pollution demands a focus on sustainability, in particular from rapidly advancing technologies that are poised to be ubiquitous in modern societies. Among these, soft robotics promises to replace conventional rigid machines for applications requiring adaptability and dexterity. For key components of soft robots, such as soft actuators, it is thus important to explore sustainable options like bioderived and biodegradable materials. We introduce systematically determined compatible materials systems for the creation of fully biodegradable, high-performance electrohydraulic soft actuators, based on various biodegradable polymer films, ester-based liquid dielectric, and NaCl-infused gelatin hydrogel. We demonstrate that these biodegradable actuators reliably operate up to high electric fields of 200 V/μm, show performance comparable to nonbiodegradable counterparts, and survive more than 100,000 actuation cycles. Furthermore, we build a robotic gripper based on biodegradable soft actuators that is readily compatible with commercial robot arms, encouraging wider use of biodegradable materials systems in soft robotics.

摘要

应对环境污染需要关注可持续性,特别是关注那些即将在现代社会无处不在的快速发展的技术。在这些技术中,软机器人有望取代传统的刚性机器,适用于需要适应性和灵活性的应用。对于软机器人的关键组件,如软致动器,因此探索生物衍生和可生物降解材料等可持续选项很重要。我们系统地确定了用于创建完全可生物降解、高性能电液软致动器的兼容材料系统,这些软致动器基于各种可生物降解聚合物薄膜、酯基液体电介质和注入 NaCl 的明胶水凝胶。我们证明这些可生物降解的致动器可以在高达 200 V/μm 的高电场下可靠运行,表现可与不可生物降解的对应物相媲美,并能承受超过 100,000 次的致动循环。此外,我们基于可生物降解的软致动器构建了一个机器人夹持器,该夹持器与商业机器臂完全兼容,鼓励在软机器人中更广泛地使用可生物降解材料系统。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9aac/10032599/7f025b73641a/keyimage.jpg

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