Dynamics of coupled thermoacoustic oscillators under asymmetric forcing: Experiments and theoretical modeling
Ankit Sahay, Amitesh Roy, Samadhan A. Pawar, R. I. Sujith

TL;DR
This study explores how combined mutual coupling and asymmetric external forcing influence the quenching of limit cycle oscillations in thermoacoustic oscillators, revealing enhanced oscillation suppression and insights into coupled nonlinear systems.
Contribution
It provides the first combined experimental and theoretical analysis of thermoacoustic oscillators under simultaneous mutual coupling and asymmetric forcing, highlighting their collective effects.
Findings
Larger parameter space for oscillation quenching with combined mechanisms
Partial and complete amplitude death observed under mutual coupling
Asymmetric forcing has limited effect on unforced oscillator synchronization
Abstract
Quenching of limit cycle oscillations (LCO), either through mutual coupling or external forcing, has attracted wide attention in several fields of science and engineering. However, the simultaneous utilization of these coupling schemes in quenching of LCO has rarely been studied despite its practical applicability. We study the dynamics of two thermoacoustic oscillators simultaneously subjected to mutual coupling and asymmetric external forcing through experiments and theoretical modeling. We investigate the forced response of both identical and non-identical thermoacoustic oscillators for two different amplitudes of LCO. Under mutual coupling alone, identical thermoacoustic oscillators display the occurrence of partial amplitude death and amplitude death, whereas under forcing alone, asynchronous quenching of LCO is observed at non-resonant conditions. When the oscillators are…
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Taxonomy
TopicsNonlinear Dynamics and Pattern Formation · Advanced Thermodynamic Systems and Engines · Mechanical and Optical Resonators
