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蜘蛛折纸:用于仿生流体致动器的跳蛛腿部关节折叠原理

Spider Origami: Folding Principle of Jumping Spider Leg Joints for Bioinspired Fluidic Actuators.

作者信息

Göttler Chantal, Elflein Karin, Siegwart Roland, Sitti Metin

机构信息

Physical Intelligence Department Max Planck Institute for Intelligent Systems Stuttgart 70569 Germany.

Autonomous Systems Laboratory ETH Zurich Zürich 8092 Switzerland.

出版信息

Adv Sci (Weinh). 2021 Jan 21;8(5):2003890. doi: 10.1002/advs.202003890. eCollection 2021 Mar.

Abstract

Jumping spiders () are known for their ability to traverse various terrains and have targeted jumps within the fraction of a second to catch flying preys. Different from humans and insects, spiders use muscles to flex their legs, and hydraulic actuation for extension. By pressurizing their inner body fluid, they can achieve fast leg extensions for running and jumping. Here, the working principle of the articular membrane covering the spider leg joint pit is investigated. This membrane is highly involved in walking, grasping, and jumping motions. Hardness and stiffness of the articular membrane is studied using nanoindentation tests and preparation methods for scanning electron microscopy and histology are developed to give detailed information about the inner and outer structure of the leg joint and its membrane. Inspired by the stroller umbrella-like folding mechanism of the articular membrane, a robust thermoplastic polyurethane-based rotary semifluidic actuator is demonstrated, which shows increased durability, achieves working angles over 120°, produces high torques which allows lifts over 100 times of its own weight and jumping abilities. The developed actuator can be used for future grasping tasks, safe human-robot interactions and multilocomotion ground robot applications, and it can shed light into spider locomotion-related questions.

摘要

跳蛛以其穿越各种地形的能力而闻名,并且能够在瞬间进行有目标的跳跃以捕捉飞行中的猎物。与人类和昆虫不同,蜘蛛利用肌肉弯曲腿部,并通过液压驱动来伸展腿部。通过对其体内液体加压,它们能够实现快速的腿部伸展以用于奔跑和跳跃。在此,对覆盖蜘蛛腿部关节窝的关节膜的工作原理进行了研究。该膜在行走、抓握和跳跃运动中高度参与。使用纳米压痕测试研究了关节膜的硬度和刚度,并开发了用于扫描电子显微镜和组织学的制备方法,以提供有关腿部关节及其膜的内部和外部结构的详细信息。受关节膜类似婴儿车雨伞的折叠机制启发,展示了一种坚固的基于热塑性聚氨酯的旋转半流体致动器,该致动器具有更高的耐用性,工作角度超过120°,能产生高扭矩,可实现超过自身重量100倍的提升和跳跃能力。所开发的致动器可用于未来的抓取任务、安全的人机交互以及多运动地面机器人应用,并且能够为与蜘蛛运动相关的问题提供启示。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/ce10/7927609/b39dd9a66aef/ADVS-8-2003890-g001.jpg

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