This paper presents the experimental approach for determination and validation of noncompact flame transfer functions of high-frequency, transverse combustion instabilities observed in a generic lean premixed gas turbine combustor. The established noncompact transfer functions describe the interaction of the flame's heat release with the acoustics locally, which is necessary due to the respective length scales being of the same order of magnitude. Spatiotemporal dynamics of the flame are measured by imaging the OH⋆ chemiluminescence signal, phase-locked to the dynamic pressure at the combustor's front plate. Radon transforms provide a local insight into the flame's modulated reaction zone. Applied to different burner configurations, the impact of the unsteady heat release distribution on the thermoacoustic driving potential, as well as distinct flame regions that exhibit high modulation intensity, is revealed. Utilizing these spatially distributed transfer functions within thermoacoustic analysis tools (addressed in this joint publication's Part II) allows then to predict transverse linear stability of gas turbine combustors.
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July 2017
Research-Article
High-Frequency Thermoacoustic Modulation Mechanisms in Swirl-Stabilized Gas Turbine Combustors—Part I: Experimental Investigation of Local Flame Response
Frederik M. Berger,
Frederik M. Berger
Lehrstuhl für Thermodynamik,
Technische Universität München,
Garching 85748, Germany
e-mail: berger@td.mw.tum.de
Technische Universität München,
Garching 85748, Germany
e-mail: berger@td.mw.tum.de
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Tobias Hummel,
Tobias Hummel
Lehrstuhl für Thermodynamik,
Technische Universität München,
Garching 85748, Germany
Technische Universität München,
Garching 85748, Germany
Institute for Advanced Study,
Technische Universität München,
Garching 85748, Germany
e-mail: hummel@td.mw.tum.de
Technische Universität München,
Garching 85748, Germany
e-mail: hummel@td.mw.tum.de
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Michael Hertweck,
Michael Hertweck
Lehrstuhl für Thermodynamik,
Technische Universität München,
Garching 85748, Germany
e-mail: hertweck@td.mw.tum.de
Technische Universität München,
Garching 85748, Germany
e-mail: hertweck@td.mw.tum.de
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Jan Kaufmann,
Jan Kaufmann
Lehrstuhl für Thermodynamik,
Technische Universität München,
Garching 85748, Germany
e-mail: kaufmannjan@gmail.com
Technische Universität München,
Garching 85748, Germany
e-mail: kaufmannjan@gmail.com
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Bruno Schuermans,
Bruno Schuermans
Institute for Advanced Study,
Technische Universität München,
Garching 85748, Germany
Technische Universität München,
Garching 85748, Germany
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Thomas Sattelmayer
Thomas Sattelmayer
Lehrstuhl für Thermodynamik,
Technische Universität München,
Garching 85748, Germany
e-mail: sattelmayer@td.mw.tum.de
Technische Universität München,
Garching 85748, Germany
e-mail: sattelmayer@td.mw.tum.de
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Frederik M. Berger
Lehrstuhl für Thermodynamik,
Technische Universität München,
Garching 85748, Germany
e-mail: berger@td.mw.tum.de
Technische Universität München,
Garching 85748, Germany
e-mail: berger@td.mw.tum.de
Tobias Hummel
Lehrstuhl für Thermodynamik,
Technische Universität München,
Garching 85748, Germany
Technische Universität München,
Garching 85748, Germany
Institute for Advanced Study,
Technische Universität München,
Garching 85748, Germany
e-mail: hummel@td.mw.tum.de
Technische Universität München,
Garching 85748, Germany
e-mail: hummel@td.mw.tum.de
Michael Hertweck
Lehrstuhl für Thermodynamik,
Technische Universität München,
Garching 85748, Germany
e-mail: hertweck@td.mw.tum.de
Technische Universität München,
Garching 85748, Germany
e-mail: hertweck@td.mw.tum.de
Jan Kaufmann
Lehrstuhl für Thermodynamik,
Technische Universität München,
Garching 85748, Germany
e-mail: kaufmannjan@gmail.com
Technische Universität München,
Garching 85748, Germany
e-mail: kaufmannjan@gmail.com
Bruno Schuermans
Institute for Advanced Study,
Technische Universität München,
Garching 85748, Germany
Technische Universität München,
Garching 85748, Germany
Thomas Sattelmayer
Lehrstuhl für Thermodynamik,
Technische Universität München,
Garching 85748, Germany
e-mail: sattelmayer@td.mw.tum.de
Technische Universität München,
Garching 85748, Germany
e-mail: sattelmayer@td.mw.tum.de
1Corresponding author.
Contributed by the Combustion and Fuels Committee of ASME for publication in the JOURNAL OF ENGINEERING FOR GAS TURBINES AND POWER. Manuscript received July 11, 2016; final manuscript received November 22, 2016; published online February 14, 2017. Editor: David Wisler.
J. Eng. Gas Turbines Power. Jul 2017, 139(7): 071501 (9 pages)
Published Online: February 14, 2017
Article history
Received:
July 11, 2016
Revised:
November 22, 2016
Citation
Berger, F. M., Hummel, T., Hertweck, M., Kaufmann, J., Schuermans, B., and Sattelmayer, T. (February 14, 2017). "High-Frequency Thermoacoustic Modulation Mechanisms in Swirl-Stabilized Gas Turbine Combustors—Part I: Experimental Investigation of Local Flame Response." ASME. J. Eng. Gas Turbines Power. July 2017; 139(7): 071501. https://doi.org/10.1115/1.4035591
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