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arXiv · 0803.1204

Resonance Clustering in Globally Coupled Electrochemical Oscillators with External Forcing

Abstract

Experiments are carried out with a globally coupled, externally forced population of limit-cycle electrochemical oscillators with an approximately unimodal distribution of heterogeneities. Global coupling induces mutually entrained (at frequency $ω_{1}$) states; periodic forcing produces forced-entrained ($ω_{\mathrm{F}}$) states. As a result of the interaction of mutual and forced entrainment, resonant cluster states occur with equal spacing of frequencies that have discretized frequencies following a resonance rule $ω_{n}\cong nω_{1}-(n-1)ω_{\mathrm{F}}$. Resonance clustering requires an optimal, intermediate global coupling strength; at weak coupling the clusters have smaller sizes and do not strictly follow the resonance rule, while at strong coupling the population behaves similar to a single, giant oscillator.

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BibTeXRIS

Istvan Z. Kiss, Yumei Zhai, John L. Hudson. 2008-03-08. Resonance Clustering in Globally Coupled Electrochemical Oscillators with External Forcing. https://doi.org/10.1103/physreve.77.046204

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