High‐Speed and Low‐Energy Actuation for Pneumatic Soft Robots with Internal Exhaust Air Recirculation

Author:

Feng Miao12ORCID,Yang Dezhi12,Majidi Carmel3,Gu Guoying124ORCID

Affiliation:

1. Robotics Institute School of Mechanical Engineering Shanghai Jiao Tong University Shanghai 200240 China

2. State Key Laboratory of Mechanical System and Vibration Shanghai Jiao Tong University Shanghai 200240 China

3. Soft Machines Lab Carnegie Mellon University Pittsburgh PA 15213 USA

4. Meta Robotics Institute Shanghai Jiao Tong University Shanghai 200240 China

Abstract

Multichamber soft pneumatic actuators (m‐SPAs) are widely used in soft robotic systems to achieve versatile grasping and locomotion. However, existing m‐SPAs have slow actuation speed and are either limited by a finite air supply or require energy‐consuming hardware to continuously supply compressed air. Herein, these shortcomings by introducing an internal exhaust air recirculation (IEAR) mechanism for high‐speed and low‐energy actuation of m‐SPAs are addressed. This mechanism recirculates the exhaust compressed air and recovers the energy by harnessing the rhythmic actuation of multiple chambers. A theoretical model to guide the analysis of the IEAR mechanism, which agrees well with the experimental results, is developed. Comparative experimental results of several sets of m‐SPAs show that the IEAR mechanism significantly improves the actuation speed by more than 82.4% and reduces the energy consumption per cycle by more than 47.7% under typical conditions. The promising applications of the IEAR mechanism in various pneumatic soft machines and robots such as a robotic fin, fabric‐based finger, and quadruped robot are further demonstrated. An interactive preprint version of the article can be found at: https://doi.org/10.22541/au.166428178.80668101/v1.

Funder

National Natural Science Foundation of China

Publisher

Wiley

Subject

General Medicine

Reference65 articles.

1. Soft, Rotating Pneumatic Actuator

2. A soft ring oscillator

3. Soft Robotic Grippers

4. A soft manipulator for efficient delicate grasping in shallow water: Modeling, control, and real-world experiments

5. J. H.Low J. Y.Goh N.Cheng P. M.Khin Q. Q.Han C. H.Yeow presented at2020 IEEE Int. Conf. Robotics and Automation IEEE Piscataway NJ2020.

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