Design, Modeling, and Application of Reinforced-Airbag-Based Pneumatic Actuators with High Load and Cellular Rearrangement

执行机构 攀登 安全气囊 机器人 气动执行机构 气动人工肌肉 变形(气象学) 软机器人 弯曲 结构工程 计算机科学 机械工程 控制理论(社会学) 工程类 模拟 汽车工程 人工肌肉 材料科学 人工智能 航空航天工程 复合材料 控制(管理)
作者
Manjia Su,Yu Qiu,Hongkai Chen,Cheng Huang,Yisheng Guan,Haifei Zhu
出处
期刊:Soft robotics [Mary Ann Liebert, Inc.]
卷期号:10 (6): 1083-1098 被引量:7
标识
DOI:10.1089/soro.2022.0062
摘要

Although various soft pneumatic actuators have been studied, their performance, including load capacity, has not been satisfied yet. Enhancing their actuation capability and using them to develop soft robots with high performance is still an open and challenging issue. In this study, we developed novel pneumatic actuators based on fiber-reinforced airbags as a solution to this problem, of which the maximum pressure reaches more than 100 kPa. Through cellular rearrangement, the developed actuators could bend uni- or bidirectionally, achieving large driving force, large deformation, and high conformability. Hence, they could be used to develop soft manipulators with relatively large payload (up to 10 kg, about 50 times the body self-weight) and soft climbing robots with high mobility. In this article, we first present the design of the airbag-based actuators and then model the airbag to obtain the relationship between the pneumatic pressure, external force, and deformation. Subsequently, we validate the models by comparing the simulated and measured results and test the load capacity of the bending actuators. Afterward, we present the development of a soft pneumatic robot that can rapidly climb horizontal, inclined, and vertical poles with different cross-sectional shapes and even outdoor natural objects, like bamboos, at a speed of 12.6 mm/s generally. In particular, it can dexterously transition between poles at any angle, which, to the best of our knowledge, has not been achieved before.
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