Realization of a Contactless Acoustic Levitation Motor via Doublet Mode Control and Autoresonance
Solomon Davis, Izhak Bucher

TL;DR
This paper presents an innovative contactless acoustic levitation motor that combines resonance tracking with autoresonance feedback and controlled traveling waves to levitate and rotate objects without mechanical contact.
Contribution
It introduces a novel method integrating autoresonance control and doublet mode excitation to achieve stable, contactless levitation and propulsion in an acoustic motor.
Findings
Achieved stable levitation of objects up to a few kilograms.
Demonstrated controlled rotation using traveling acoustic waves.
Developed a single-sensor feedback control system for stability.
Abstract
This paper demonstrates analytically and experimentally an acoustic levitation motor which has the ability to levitate and rotate an object in the air without mechanical contact. To realize such a device two core methods are applied simultaneously; (i) resonance tracking with an Autoresonance feedback loop, (ii) generation of controlled structural traveling waves. The purpose of the first method is to achieve near-field acoustic levitation, which can levitate an object of a few kilograms. In this research, this is accomplished through high amplitude vibration of an aluminum annulus at ultrasonic frequencies (~30kHz). For high efficiency, the annulus is designed to have a very high Q value, and operating even slightly off resonance ceases levitation. Compounding this is the fact that the natural frequency constantly drifts as ambient conditions and loading change. To accommodate such a…
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Taxonomy
TopicsAcoustic Wave Resonator Technologies · Microfluidic and Bio-sensing Technologies · Advanced MEMS and NEMS Technologies
