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    A Finite Element Method for Three-Dimensional Analysis of Thermo-acoustic Combustion Instability

    Source: Journal of Engineering for Gas Turbines and Power:;2011:;volume( 133 ):;issue: 001::page 11506
    Author:
    S. M. Camporeale
    ,
    B. Fortunato
    ,
    G. Campa
    DOI: 10.1115/1.4000606
    Publisher: The American Society of Mechanical Engineers (ASME)
    Abstract: A method for predicting the onset of acoustically driven combustion instabilities in gas turbine combustor is examined. The basic idea is that the governing equations of the acoustic waves can be coupled with a flame heat release model and solved in the frequency domain. The paper shows that a complex eigenvalue problem is obtained that can be solved numerically by implementing the governing equations in a finite element code. This procedure allows one to identify the frequencies at which thermo-acoustic instabilities are expected and the growth rate of the pressure oscillations, at the onset of instability, when the hypothesis of linear behavior of the acoustic waves can be applied. The method can be applied virtually to any three-dimensional geometry, provided the necessary computational resources that are, anyway, much less than those required by computational fluid dynamics methods proposed for analyzing the combustion chamber under instability condition. Furthermore, in comparison with the “lumped” approach that characterizes popular acoustics networks, the proposed method allows one for much more flexibility in defining the geometry of the combustion chamber. The paper shows that different types of heat release laws, for instance, heat release concentrated in a flame sheet, as well as distributed in a larger domain, can be adopted. Moreover, experimentally or numerically determined flame transfer functions, giving the response of heat release to acoustic velocity fluctuations, can be incorporated in the model. To establish proof of concept, the method is validated at the beginning against simple test cases taken from literature. Over the frequency range considered, frequencies and growth rates both of stable and unstable eigenmodes are accurately evaluated. Then the method is applied to a much more complex annular combustor geometry in order to evaluate frequencies and growth rates of the unstable modes and to show how the variation in the parameters of the heat release law can influence the transition to instability.
    keyword(s): Pressure , Heat , Combustion , Acoustics , Fluctuations (Physics) , Finite element methods , Combustion chambers , Flames , Ducts , Frequency , Delays , Geometry , Eigenvalues , Oscillations AND Waves ,
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      A Finite Element Method for Three-Dimensional Analysis of Thermo-acoustic Combustion Instability

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    https://yetl.yabesh.ir/yetl1/handle/yetl/146109
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    • Journal of Engineering for Gas Turbines and Power

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    contributor authorS. M. Camporeale
    contributor authorB. Fortunato
    contributor authorG. Campa
    date accessioned2017-05-09T00:43:50Z
    date available2017-05-09T00:43:50Z
    date copyrightJanuary, 2011
    date issued2011
    identifier issn1528-8919
    identifier otherJETPEZ-27150#011506_1.pdf
    identifier urihttp://yetl.yabesh.ir/yetl/handle/yetl/146109
    description abstractA method for predicting the onset of acoustically driven combustion instabilities in gas turbine combustor is examined. The basic idea is that the governing equations of the acoustic waves can be coupled with a flame heat release model and solved in the frequency domain. The paper shows that a complex eigenvalue problem is obtained that can be solved numerically by implementing the governing equations in a finite element code. This procedure allows one to identify the frequencies at which thermo-acoustic instabilities are expected and the growth rate of the pressure oscillations, at the onset of instability, when the hypothesis of linear behavior of the acoustic waves can be applied. The method can be applied virtually to any three-dimensional geometry, provided the necessary computational resources that are, anyway, much less than those required by computational fluid dynamics methods proposed for analyzing the combustion chamber under instability condition. Furthermore, in comparison with the “lumped” approach that characterizes popular acoustics networks, the proposed method allows one for much more flexibility in defining the geometry of the combustion chamber. The paper shows that different types of heat release laws, for instance, heat release concentrated in a flame sheet, as well as distributed in a larger domain, can be adopted. Moreover, experimentally or numerically determined flame transfer functions, giving the response of heat release to acoustic velocity fluctuations, can be incorporated in the model. To establish proof of concept, the method is validated at the beginning against simple test cases taken from literature. Over the frequency range considered, frequencies and growth rates both of stable and unstable eigenmodes are accurately evaluated. Then the method is applied to a much more complex annular combustor geometry in order to evaluate frequencies and growth rates of the unstable modes and to show how the variation in the parameters of the heat release law can influence the transition to instability.
    publisherThe American Society of Mechanical Engineers (ASME)
    titleA Finite Element Method for Three-Dimensional Analysis of Thermo-acoustic Combustion Instability
    typeJournal Paper
    journal volume133
    journal issue1
    journal titleJournal of Engineering for Gas Turbines and Power
    identifier doi10.1115/1.4000606
    journal fristpage11506
    identifier eissn0742-4795
    keywordsPressure
    keywordsHeat
    keywordsCombustion
    keywordsAcoustics
    keywordsFluctuations (Physics)
    keywordsFinite element methods
    keywordsCombustion chambers
    keywordsFlames
    keywordsDucts
    keywordsFrequency
    keywordsDelays
    keywordsGeometry
    keywordsEigenvalues
    keywordsOscillations AND Waves
    treeJournal of Engineering for Gas Turbines and Power:;2011:;volume( 133 ):;issue: 001
    contenttypeFulltext
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