Nonreciprocity and mode conversion in a spatiotemporally modulated elastic wave circulator
Benjamin M. Goldsberry, Samuel P. Wallen, and Michael R. Haberman

TL;DR
This paper proposes a novel elastic wave circulator using spatiotemporal modulation of an elastic ring, demonstrating nonreciprocal mode conversion for longitudinal and transverse waves through numerical modeling.
Contribution
It introduces a new elastic wave circulator design with spatiotemporal modulation and provides two numerical models to analyze its nonreciprocal behavior.
Findings
High nonreciprocity achieved with specific modulation parameters
Coupled mode theory aligns well with finite element results
Mode-splitting enables directional control of elastic waves
Abstract
Acoustic and elastic metamaterials with time- and space-dependent material properties have received great attention recently as a means to break reciprocity for propagating mechanical waves, achieving greater directional control. One nonreciprocal device that has been demonstrated in the fields of acoustics and electromagnetism is the circulator, which achieves unirotational transmission through a network of ports. This work investigates an elastic wave circulator composed of a thin elastic ring with three semi-infinite elastic waveguides attached, creating a three-port network. Nonreciprocity is achieved for both longitudinal and transverse waves by modulating the elastic modulus of the ring in a rotating fashion. Two numerical models are derived and implemented to compute the elastic wave field in the circulator. The first is an approximate model based on coupled mode theory, which…
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Taxonomy
TopicsAcoustic Wave Phenomena Research · Metamaterials and Metasurfaces Applications · Electromagnetic Effects on Materials
