Design and Characterisation of a Muscle-Mimetic Dielectrophoretic Ratcheting Actuator
Martin Stephen Garrad, Mohammad Naghavi Zadeh, Christian Romero, Fabrizio Scarpa, Andrew T. Conn, Jonathan Rossiter
Abstract
The high potential impact of soft robotics is hampered by a lack of actuators that combine high-force, high-work and high-power capabilities, limiting application in real-world problems. Typically, soft actuators are tuned to an application by gearing - for example, trading power for strain. An example of a recently developed soft-actuator which exploits such gearing is the dielectrophoretic liquid zipping (DLZ) actuator. DLZs can produce large strains ( <inline-formula xmlns:mml="http://www.w3.org/1998/Math/MathML" xmlns:xlink="http://www.w3.org/1999/xlink"><tex-math notation="LaTeX">$>\!99\%$</tex-math></inline-formula> ) and power densities comparable to biological muscles, but cannot achieve both in a single actuator. In this work, we introduce a muscle-mimetic DLZ ratcheting actuator (DLZ-R) that allows multiple DLZ-R heads to operate in parallel, thereby increasing force output without sacrificing stroke or power. We first characterise the effect of geometry on the performance of a 1-head DLZ-R, before demonstrating that the force, work, and power output of the DLZ-R scale linearly with the number of active DLZ heads. Next, we investigate the relationship between driving frequency and power output. Finally, we demonstrate a 12-head DLZ ratchet. We believe the DLZ-R represents a step towards soft actuators that can provide both high-work and high-power and the widespread use of soft technologies.
BibTeX
@inproceedings{ral2022_designandcharact,
title = {Design and Characterisation of a Muscle-Mimetic Dielectrophoretic Ratcheting Actuator},
author = {Martin Stephen Garrad and Mohammad Naghavi Zadeh and Christian Romero and Fabrizio Scarpa and Andrew T. Conn and Jonathan Rossiter},
booktitle = {RA-L 2022},
year = {2022}
}