Interplay of inertia and external forcing in Kuramoto model

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Main Authors: Agnihotri, Pratishtha, Jalan, Sarika
Format: Preprint
Published: 2026
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author Agnihotri, Pratishtha
Jalan, Sarika
author_facet Agnihotri, Pratishtha
Jalan, Sarika
contents The impact of external forcing is well studied in the Kuramoto model without inertia, but remains unclear for inertial Kuramoto oscillators (KMI) with bimodal intrinsic frequency distributions. This article fills that gap, showing that competition between external forcing and intrinsic bimodality can suppress the intermediate standing wave states of bimodal KMI by entraining oscillators to the external forcing. Using a self-consistent analytical framework, we show that, for a bimodal distribution, forcing makes the backward transition discontinuous, unlike the continuous transition in the unimodal case. Further, for a bi-delta distribution, we derive a closed form expression for the backward solution branch. These results clarify how intrinsic frequency structure shapes the effect of external forcing, with implications for biological systems (e.g., photoreceptor and pacemaker cells) and for pinning-control strategies in multi-agent networks.
format Preprint
id arxiv_https___arxiv_org_abs_2604_22288
institution arXiv
publishDate 2026
record_format arxiv
spellingShingle Interplay of inertia and external forcing in Kuramoto model
Agnihotri, Pratishtha
Jalan, Sarika
Adaptation and Self-Organizing Systems
The impact of external forcing is well studied in the Kuramoto model without inertia, but remains unclear for inertial Kuramoto oscillators (KMI) with bimodal intrinsic frequency distributions. This article fills that gap, showing that competition between external forcing and intrinsic bimodality can suppress the intermediate standing wave states of bimodal KMI by entraining oscillators to the external forcing. Using a self-consistent analytical framework, we show that, for a bimodal distribution, forcing makes the backward transition discontinuous, unlike the continuous transition in the unimodal case. Further, for a bi-delta distribution, we derive a closed form expression for the backward solution branch. These results clarify how intrinsic frequency structure shapes the effect of external forcing, with implications for biological systems (e.g., photoreceptor and pacemaker cells) and for pinning-control strategies in multi-agent networks.
title Interplay of inertia and external forcing in Kuramoto model
topic Adaptation and Self-Organizing Systems
url https://arxiv.org/abs/2604.22288