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Dynamics of thermoacoustic oscillations leading to lean flame blowout
Published in
2012
Volume: 2
   
Issue: PARTS A AND B
Pages: 469 - 477
Abstract
Lean flame blowout induced by thermoacoustic oscillations is a serious problem faced by the power and propulsion industry. We analyze a prototypical thermoacoustic system through systematic bifurcation analysis and find that starting from a steady state, this system exhibits successive bifurcations resulting in complex nonlinear oscillation states, eventually leading to flame blowout. To understand the observed bifurcations, we analyze the oscillation states using nonlinear time series analysis, particularly through the representation of pressure oscillations on a reconstructed phase space. Prior to flame blowout, a bursting phenomenon is observed in pressure oscillations. These burst oscillations are found to exhibit similarities with the phenomenon known as intermittency in the dynamical systems theory. This investigation based on nonlinear analysis of experimentally acquired data from a thermoacoustic system sheds light on how thermoacoustic oscillations lead to flame blowout. Copyright © 2012 by ASME.
About the journal
JournalProceedings of the ASME Turbo Expo
Open AccessNo
Concepts (18)
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    Bifurcation analysis
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    BURST OSCILLATION
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    Nonlinear oscillation
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    NONLINEAR TIME-SERIES ANALYSIS
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    PRESSURE OSCILLATION
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    RECONSTRUCTED PHASE SPACE
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    THERMOACOUSTIC OSCILLATIONS
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    THERMOACOUSTIC SYSTEMS
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    Bifurcation (mathematics)
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    BLOWOUTS
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    Exhibitions
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    Gas turbines
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    Nonlinear analysis
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    Phase space methods
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    PLASMA OSCILLATIONS
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    Thermoacoustics
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    Time series analysis
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    Flame research