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Updated: Nov 3, 2025

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Rapid Manufacturing of Thin Soft Pneumatic Actuators and Robots
Published on: November 8, 2019
7.8K
Bi-Shell Valve for Fast Actuation of Soft Pneumatic Actuators via Shell Snapping Interaction
Chuan Qiao1, Lu Liu1, Damiano Pasini1
1Department of Mechanical Engineering, McGill University, Montreal, Quebec, H3A 0C3, Canada.
Summary
This study introduces a novel bi-shell valve for fast actuation in soft pneumatic robots. The valve converts slow volume input into rapid output, enabling quick movement without complex pressure control.
Area of Science:
- Robotics
- Materials Science
- Fluid Dynamics
Background:
- Achieving rapid motion in soft pneumatic robots typically requires complex methods like fast volume input, integrated power sources, or embedded elastic instabilities.
- Existing valves primarily focus on fluidic flow regulation, not rapid actuation.
Purpose of the Study:
- To present a novel bi-shell valve capable of fast actuation for soft pneumatic robots.
- To demonstrate a mechanism that converts slow volume input into fast volume output without altering actuator architecture or relying on advanced pressure control.
Main Methods:
- The study designed and analyzed a bi-shell valve composed of a spherical cap and an imperfect shell with a defect.
- Shell snapping interaction was utilized to achieve the desired volume conversion.
- Experimental validation was performed to analyze the valve's performance and demonstrate its functionality.
Main Results:
- The bi-shell valve successfully converts slow volume input into fast volume output, enabling rapid actuation.
- The spherical cap determines snapping pressure thresholds and output bounds, while the imperfect shell facilitates energy storage and release.
- Experimental results validated the valve's performance, and geometry variations showed its versatility.
Conclusions:
- The developed bi-shell valve offers a new method for fast actuation in soft pneumatic robots.
- This technology provides a versatile and effective solution for rapid fluidic control, as demonstrated by actuating a striker.
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