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Main Authors: Nakade, Rohan K., Singh, Samarjeet, Dhadphale, Jayesh M., Sujith, R. I.
Format: Preprint
Published: 2025
Subjects:
Online Access:https://arxiv.org/abs/2502.13419
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author Nakade, Rohan K.
Singh, Samarjeet
Dhadphale, Jayesh M.
Sujith, R. I.
author_facet Nakade, Rohan K.
Singh, Samarjeet
Dhadphale, Jayesh M.
Sujith, R. I.
contents The synchronization phenomena in thermoacoustic systems leading to oscillatory instability can effectively be modeled using Kuramoto oscillators. Such models consider the nonlinear response of flame as an ensemble of Kuramoto phase oscillators constrained to collectively evolve at the rhythm of acoustic fluctuations. However, these high-dimensional models are analytically intractable and computationally expensive. In this study, we reduce the dimensionality of such a high-dimensional model and present a low-order, analytically tractable model for predicting transitions to thermoacoustic instability. We reduce the dimensionality of the phase oscillator model coupled to the acoustic field using the Ott-Antonsen ansatz. Using the reduced-order equations, we estimate the transitions to thermoacoustic instability and compare these transitions with the experiment. We validate the model for two combustor configurations, viz., the bluff-body stabilized dump combustor and the swirl-stabilized annular combustor. The low-order model accurately captures the continuous and abrupt secondary transitions observed experimentally in these distinct combustors.
format Preprint
id arxiv_https___arxiv_org_abs_2502_13419
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle A reduced-order mean-field synchronization model for thermoacoustic systems
Nakade, Rohan K.
Singh, Samarjeet
Dhadphale, Jayesh M.
Sujith, R. I.
Chaotic Dynamics
The synchronization phenomena in thermoacoustic systems leading to oscillatory instability can effectively be modeled using Kuramoto oscillators. Such models consider the nonlinear response of flame as an ensemble of Kuramoto phase oscillators constrained to collectively evolve at the rhythm of acoustic fluctuations. However, these high-dimensional models are analytically intractable and computationally expensive. In this study, we reduce the dimensionality of such a high-dimensional model and present a low-order, analytically tractable model for predicting transitions to thermoacoustic instability. We reduce the dimensionality of the phase oscillator model coupled to the acoustic field using the Ott-Antonsen ansatz. Using the reduced-order equations, we estimate the transitions to thermoacoustic instability and compare these transitions with the experiment. We validate the model for two combustor configurations, viz., the bluff-body stabilized dump combustor and the swirl-stabilized annular combustor. The low-order model accurately captures the continuous and abrupt secondary transitions observed experimentally in these distinct combustors.
title A reduced-order mean-field synchronization model for thermoacoustic systems
topic Chaotic Dynamics
url https://arxiv.org/abs/2502.13419