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Capturing multifractality of pressure fluctuations in thermoacoustic systems using fractional-order derivatives

  • The stable operation of a turbulent combustor is not completely silent; instead, there is a background of small amplitude aperiodic acoustic fluctuations known as combustion noise. Pressure fluctuations during this state of combustion noise are multifractal due to the presence of multiple temporal scales that contribute to its dynamics. However, existing models are unable to capture the multifractality in the pressure fluctuations. We conjecture an underlying fractional dynamics for the thermoacoustic system and obtain a fractional-order model for pressure fluctuations. The data from this model has remarkable visual similarity to the experimental data and also has a wide multifractal spectrum during the state of combustion noise. Quantitative similarity with the experimental data in terms of the Hurst exponent and the multifractal spectrum is observed during the state of combustion noise. This model is also able to produce pressure fluctuations that are qualitatively similar to the experimental data acquired during intermittency andThe stable operation of a turbulent combustor is not completely silent; instead, there is a background of small amplitude aperiodic acoustic fluctuations known as combustion noise. Pressure fluctuations during this state of combustion noise are multifractal due to the presence of multiple temporal scales that contribute to its dynamics. However, existing models are unable to capture the multifractality in the pressure fluctuations. We conjecture an underlying fractional dynamics for the thermoacoustic system and obtain a fractional-order model for pressure fluctuations. The data from this model has remarkable visual similarity to the experimental data and also has a wide multifractal spectrum during the state of combustion noise. Quantitative similarity with the experimental data in terms of the Hurst exponent and the multifractal spectrum is observed during the state of combustion noise. This model is also able to produce pressure fluctuations that are qualitatively similar to the experimental data acquired during intermittency and thermoacoustic instability. Furthermore, we argue that the fractional dynamics vanish as we approach the state of thermoacoustic instability.zeige mehrzeige weniger

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Metadaten
Verfasserangaben:Alan J. Varghese, Aleksei ChechkinORCiDGND, Ralf MetzlerORCiDGND, Raman I. SujithORCiD
DOI:https://doi.org/10.1063/5.0032585
ISSN:1054-1500
ISSN:1089-7682
Pubmed ID:https://pubmed.ncbi.nlm.nih.gov/33810715
Titel des übergeordneten Werks (Englisch):Chaos : an interdisciplinary journal of nonlinear science
Verlag:American Institute of Physics, AIP
Verlagsort:Melville
Publikationstyp:Wissenschaftlicher Artikel
Sprache:Englisch
Datum der Erstveröffentlichung:02.03.2021
Erscheinungsjahr:2021
Datum der Freischaltung:24.01.2024
Band:31
Ausgabe:3
Aufsatznummer:033108
Seitenanzahl:9
Fördernde Institution:DAADDeutscher Akademischer Austausch Dienst (DAAD)European Commission; J. C. Bose fellowship from the Department of Science and Technology (DST), Government of India [JCB/2018/000034/SSC]
Organisationseinheiten:Mathematisch-Naturwissenschaftliche Fakultät / Institut für Physik und Astronomie
DDC-Klassifikation:5 Naturwissenschaften und Mathematik / 53 Physik / 530 Physik
Peer Review:Referiert
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