Minimal activation with maximal reach: Reachability clouds of bio-inspired slender manipulators

IF 4.3 3区 工程技术 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY
Bartosz Kaczmarski , Derek E. Moulton , Alain Goriely , Ellen Kuhl
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引用次数: 0

Abstract

In the field of soft robotics, flexibility, adaptability, and functionality define a new era of robotic systems that can safely deform, reach, and grasp. To optimize the design of soft robotic systems, it is critical to understand their configuration space and full range of motion across a wide variety of design parameters. Here we integrate extreme mechanics and soft robotics to provide quantitative insights into the design of bio-inspired soft slender manipulators using the concept of reachability clouds. For a minimal three-actuator design inspired by the elephant trunk, we establish an efficient and robust reduced-order method to generate reachability clouds of almost half a million points each to visualize the accessible workspace of a wide variety of manipulator designs. We generate an atlas of 256 reachability clouds by systematically varying the key design parameters including the fiber count, revolution, tapering angle, and activation magnitude. Our results demonstrate that reachability clouds not only offer an immediately clear perspective into the inverse problem of control, but also introduce powerful metrics to characterize reachable volumes, unreachable regions, and actuator redundancy to quantify the performance of soft slender robots.

最小激活,最大触及:生物启发细长机械手的可达性云图
在软体机器人领域,灵活性、适应性和功能性决定了机器人系统的新时代,它可以安全地变形、伸手和抓取。要优化软机器人系统的设计,关键是要了解其配置空间和各种设计参数下的全部运动范围。在这里,我们将极限力学和软机器人学结合起来,利用可触及性云的概念,为生物启发的柔软细长机械手的设计提供定量见解。对于受大象躯干启发的最小三触动器设计,我们建立了一种高效、稳健的降阶方法,生成每个触动器有近 50 万个点的可达性云,以可视化各种机械手设计的可达工作空间。我们通过系统地改变关键设计参数,包括纤维数、旋转度、锥角和激活幅度,生成了包含 256 个可达性云的图集。我们的研究结果表明,可达性云不仅为控制的逆问题提供了一个一目了然的视角,而且还引入了强大的指标来描述可达体积、不可达区域和致动器冗余,从而量化软体细长机器人的性能。
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来源期刊
Extreme Mechanics Letters
Extreme Mechanics Letters Engineering-Mechanics of Materials
CiteScore
9.20
自引率
4.30%
发文量
179
审稿时长
45 days
期刊介绍: Extreme Mechanics Letters (EML) enables rapid communication of research that highlights the role of mechanics in multi-disciplinary areas across materials science, physics, chemistry, biology, medicine and engineering. Emphasis is on the impact, depth and originality of new concepts, methods and observations at the forefront of applied sciences.
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