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HASEL 人工肌肉为新一代逼真机器人带来新机遇——最新进展与未来机遇。

HASEL Artificial Muscles for a New Generation of Lifelike Robots-Recent Progress and Future Opportunities.

机构信息

Department of Mechanical Engineering, University of Colorado, Boulder, 1111 Engineering Drive, Boulder, CO, 80309, USA.

Materials Science and Engineering Program, University of Colorado, Boulder, Sustainability, Energy & Environment Community, Boulder, CO, 80303, USA.

出版信息

Adv Mater. 2021 May;33(19):e2003375. doi: 10.1002/adma.202003375. Epub 2020 Nov 9.

Abstract

Future robots and intelligent systems will autonomously navigate in unstructured environments and closely collaborate with humans; integrated with our bodies and minds, they will allow us to surpass our physical limitations. Traditional robots are mostly built from rigid, metallic components and electromagnetic motors, which make them heavy, expensive, unsafe near people, and ill-suited for unpredictable environments. By contrast, biological organisms make extensive use of soft materials and radically outperform robots in terms of dexterity, agility, and adaptability. Particularly, natural muscle-a masterpiece of evolution-has long inspired researchers to create "artificial muscles" in an attempt to replicate its versatility, seamless integration with sensing, and ability to self-heal. To date, natural muscle remains unmatched in all-round performance, but rapid advancements in soft robotics have brought viable alternatives closer than ever. Herein, the recent development of hydraulically amplified self-healing electrostatic (HASEL) actuators, a new class of high-performance, self-sensing artificial muscles that couple electrostatic and hydraulic forces to achieve diverse modes of actuation, is discussed; current designs match or exceed natural muscle in many metrics. Research on materials, designs, fabrication, modeling, and control systems for HASEL actuators is detailed. In each area, research opportunities are identified, which together lays out a roadmap for actuators with drastically improved performance. With their unique versatility and wide potential for further improvement, HASEL actuators are poised to play an important role in a paradigm shift that fundamentally challenges the current limitations of robotic hardware toward future intelligent systems that replicate the vast capabilities of biological organisms.

摘要

未来的机器人和智能系统将自主在非结构化环境中导航,并与人类密切合作;与我们的身体和思维集成,使我们能够超越身体的限制。传统的机器人大多由刚性的金属部件和电磁马达组成,这使得它们笨重、昂贵、在靠近人的地方不安全,并且不适合不可预测的环境。相比之下,生物有机体广泛使用软材料,在灵巧性、敏捷性和适应性方面远远超过机器人。特别是,自然肌肉——进化的杰作——长期以来一直激发着研究人员创造“人工肌肉”,试图复制其多功能性、与传感的无缝集成以及自我修复的能力。迄今为止,自然肌肉在全方位性能上仍然无与伦比,但软机器人技术的快速发展使可行的替代品比以往任何时候都更接近。在此,讨论了最近开发的液压放大自修复静电(HASEL)致动器的进展,这是一类新型高性能自感测人工肌肉,它结合了静电和液压力以实现多种致动模式;当前的设计在许多指标上与自然肌肉相匹配或超过自然肌肉。详细讨论了 HASEL 致动器的材料、设计、制造、建模和控制系统的研究。在每个领域,都确定了研究机会,这些机会共同为具有大幅提高性能的致动器制定了路线图。由于其独特的多功能性和广泛的进一步改进潜力,HASEL 致动器有望在范式转变中发挥重要作用,这一转变从根本上挑战了当前机器人硬件的限制,朝着复制生物有机体广泛能力的未来智能系统迈进。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0f2f/11469257/13df60cb3c50/ADMA-33-2003375-g012.jpg

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