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Design and Characterization of a Pneumatic Tunable-Stiffness Bellows Actuator.

Rongqian Chen, Jun Kwon,Wei-Hsi Chen,Cynthia R. Sung

International Conference on Soft Robotics(2024)

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摘要
We introduce a self-contained pneumatic actuator capable of 1.43 times stiffness gain from 1332 N/m to 1913 N/m without needing an external air source or valve. The design incorporates an air chamber bellows and a spring bellows, connected and sealed. Stiffness modulation is achieved by altering the air chamber volume. We present an approach for computing the volume, pressurized force, and stiffness of a single bellows component, as well as methods for composing single bellows models to predict the change in stiffness of the dual bellows actuator as a function of air chamber compression. We detail the fabrication of the actuator and verify the models on the fabricated prototype. This actuator holds promise for future integration in tunable stiffness robots demanding high strength and adaptability in dynamic scenarios.
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关键词
Pneumatic Actuators,Changes In Stiffness,Air Chamber,Young’s Modulus,Atmospheric Pressure,Systemic Pressure,Reaction Force,Changes In Force,Geometric Model,Larger Radius,Internal Pressure,Silicone Rubber,Buckling,Shape Memory,High-pressure Conditions,DC Motor,Augmented Model,Ideal Gas Law,Lower Displacement,Range Of Stiffness,Magnetorheological,Force Prediction,Rubber Tube,Force Output,Force Curves,Material Properties,Pressure Sensor,Volume Change,High Pressure,Wall Thickness
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