PID-like active control strategy for electroacoustic resonators to design tunable single-degree-of-freedom sound absorbers
Xinxin Guo, Maxime Volery, Herv\'e Lissek

TL;DR
This paper presents a PID-like active control method for a loudspeaker-based resonator that enables tunable, broadband sound absorption at low frequencies by adjusting acoustic impedance parameters.
Contribution
It introduces a novel active control framework that independently tunes resonator parameters, achieving perfect absorption and broader bandwidth compared to existing passive solutions.
Findings
Achieves perfect sound absorption at target frequency.
Enlarges absorption bandwidth effectively.
Demonstrates high control accuracy and tunability.
Abstract
Sound absorption at low frequencies still remains a challenge in both scientific research and engineering practice. Natural porous materials are ineffective in this frequency range, as well as acoustic resonators which present too narrow bandwidth of absorption, thus requiring alternative solutions based on active absorption techniques. In the present work, we propose an active control framework applied on a closed-box loudspeaker to enable the adjustment of the acoustic impedance at the loudspeaker diaphragm. More specifically, based on the proportionality between the pressure inside the enclosure and the axial displacement of the loudspeaker diaphragm at low frequencies, we demonstrate both analytically and experimentally that a PID-like feedback control approach allows tuning independently the compliance, the resistance and the moving mass of the closed-box loudspeaker to implement a…
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Taxonomy
TopicsAcoustic Wave Phenomena Research · Vibration Control and Rheological Fluids · Fluid Dynamics and Vibration Analysis
