A mechanically driven, rotating-plate modulation of three coupled Helmholtz resonators produces strong nonreciprocal sound circulation in air at audible frequencies.
Experimental realization of an active time-modulated acoustic circulator
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abstract
Reciprocity is one of the fundamental characteristics of wave propagation in linear time-invariant media with preserved time-reversal symmetry. Breaking reciprocity opens the way to numerous applications in the fields of phononics and photonics, as it allows the unidirectional transport of information and energy carried by waves. In acoustics, achieving non-reciprocal behavior remains a challenge, for which time-varying media are one of the solutions. Here, we design and experimentally demonstrate a three-port non-reciprocal acoustic scatterer that behaves as a circulator for audible sound, by actively modulating the effective mass of the acoustic membranes over time. We discuss the conception and experimental validation of such an acoustic circulator, implemented with actively controlled loudspeakers, in the realm of audible and airborne acoustics, and demonstrate its good performance in different scenarios.
fields
physics.flu-dyn 1years
2024 1verdicts
CONDITIONAL 1representative citing papers
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Experimental demonstration of a space-time modulated airborne acoustic circulator
A mechanically driven, rotating-plate modulation of three coupled Helmholtz resonators produces strong nonreciprocal sound circulation in air at audible frequencies.