Author:
Kedzierski Jakub,Chea Hero
Abstract
AbstractElectrostatic motors have traditionally required high voltage and provided low torque, leaving them with a vanishingly small portion of the motor application space. The lack of robust electrostatic motors is of particular concern in microsystems because inductive motors do not scale well to small dimensions. Often, microsystem designers have to choose from a host of imperfect actuation solutions, leading to high voltage requirements or low efficiency and thus straining the power budget of the entire system. In this work, we describe a scalable three-dimensional actuator technology that is based on the stacking of thin microhydraulic layers. This technology offers an actuation solution at 50 volts, with high force, high efficiency, fine stepping precision, layering, low abrasion, and resistance to pull-in instability. Actuator layers can also be stacked in different configurations trading off speed for force, and the actuator improves quadratically in power density when its internal dimensions are scaled-down.
Funder
United States Department of Defense | Defense Advanced Research Projects Agency
U.S. Department of Defense
Publisher
Springer Science and Business Media LLC
Subject
Electrical and Electronic Engineering,Industrial and Manufacturing Engineering,Condensed Matter Physics,Materials Science (miscellaneous),Atomic and Molecular Physics, and Optics
Reference24 articles.
1. Fan, L. S., Tai, Y. C., & Muller, R. S. IC-Processed Electrostatic Micro-Motors. Technical Digest, International Electron Devices Meeting, San Francisco, CA, USA, 666 (1988).
2. Kumada, A. A piezoelectric ultrasonic motor. Jpn J. Appl. Phys. 24, 739 (1985).
3. Hirata, H. & Ueha, S. Design of a traveling wave type ultrasonic motor. IEEE Trans. Ultrason. Ferroelectr. Frequency Control 42, 225–231 (1995).
4. Morita, T. Miniature piezoelectric motors. Sens. Actuat. A Phys. 103, 2003 (2003). 291.
5. Kedzierski, J. & Holihan, E. Linear and rotational microhydraulic actuators driven by electrowetting. Sci. Robot. 3, 22 (2018).
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