Combustion instability modeling using multi-mode flame transfer functions and a nonlinear Euler solver

Modern methods for predicting combustion dynamics in high-pressure combustors range from high-fidelity simulations of sub-scale model combustors, mostly for validation purposes or detailed investigations of physics, to linearized, acoustics-based analysis of full-scale practical combustors. Whereas...

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Main Authors: Gowtham Manikanta Reddy Tamanampudi, Swanand Sardeshmukh, William Anderson, Cheng Huang
Format: Article
Language:English
Published: SAGE Publishing 2020-09-01
Series:International Journal of Spray and Combustion Dynamics
Online Access:https://doi.org/10.1177/1756827720950320
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spelling doaj-d5aa89e6751d4cc793963050c88239642020-11-25T03:04:26ZengSAGE PublishingInternational Journal of Spray and Combustion Dynamics1756-82852020-09-011210.1177/1756827720950320Combustion instability modeling using multi-mode flame transfer functions and a nonlinear Euler solverGowtham Manikanta Reddy TamanampudiSwanand SardeshmukhWilliam AndersonCheng HuangModern methods for predicting combustion dynamics in high-pressure combustors range from high-fidelity simulations of sub-scale model combustors, mostly for validation purposes or detailed investigations of physics, to linearized, acoustics-based analysis of full-scale practical combustors. Whereas the high-fidelity simulations presumably capture the detailed physics of mixing and heat addition, computational requirements preclude their application for practical design analysis. The linear models that are used during design typically use flame transfer functions that relate the unsteady heat addition q ′ to oscillations in velocity and pressure ( u ′ and p ′ ) that are obtained from the wave equation. These flame transfer functions can be empirically determined from measurements or derived from theory and analysis. This paper describes a hybrid approach that uses high-fidelity simulations to generate flame transfer functions along with nonlinear Euler CFD to predict the combustor flowfield. A model rocket combustor that presented a self-excited combustion instability with pressure oscillations on the order of 10% of mean pressure is used for demonstration. Spatially distributed flame transfer functions are extracted from a high-fidelity simulation of the combustor and then used in a nonlinear Euler CFD model of the combustor to verify the approach. It is shown that the reduced-fidelity model can reproduce the unsteady behavior of the single element combustor that was both measured in the experiment and predicted by a high-fidelity simulation reasonably well.https://doi.org/10.1177/1756827720950320
collection DOAJ
language English
format Article
sources DOAJ
author Gowtham Manikanta Reddy Tamanampudi
Swanand Sardeshmukh
William Anderson
Cheng Huang
spellingShingle Gowtham Manikanta Reddy Tamanampudi
Swanand Sardeshmukh
William Anderson
Cheng Huang
Combustion instability modeling using multi-mode flame transfer functions and a nonlinear Euler solver
International Journal of Spray and Combustion Dynamics
author_facet Gowtham Manikanta Reddy Tamanampudi
Swanand Sardeshmukh
William Anderson
Cheng Huang
author_sort Gowtham Manikanta Reddy Tamanampudi
title Combustion instability modeling using multi-mode flame transfer functions and a nonlinear Euler solver
title_short Combustion instability modeling using multi-mode flame transfer functions and a nonlinear Euler solver
title_full Combustion instability modeling using multi-mode flame transfer functions and a nonlinear Euler solver
title_fullStr Combustion instability modeling using multi-mode flame transfer functions and a nonlinear Euler solver
title_full_unstemmed Combustion instability modeling using multi-mode flame transfer functions and a nonlinear Euler solver
title_sort combustion instability modeling using multi-mode flame transfer functions and a nonlinear euler solver
publisher SAGE Publishing
series International Journal of Spray and Combustion Dynamics
issn 1756-8285
publishDate 2020-09-01
description Modern methods for predicting combustion dynamics in high-pressure combustors range from high-fidelity simulations of sub-scale model combustors, mostly for validation purposes or detailed investigations of physics, to linearized, acoustics-based analysis of full-scale practical combustors. Whereas the high-fidelity simulations presumably capture the detailed physics of mixing and heat addition, computational requirements preclude their application for practical design analysis. The linear models that are used during design typically use flame transfer functions that relate the unsteady heat addition q ′ to oscillations in velocity and pressure ( u ′ and p ′ ) that are obtained from the wave equation. These flame transfer functions can be empirically determined from measurements or derived from theory and analysis. This paper describes a hybrid approach that uses high-fidelity simulations to generate flame transfer functions along with nonlinear Euler CFD to predict the combustor flowfield. A model rocket combustor that presented a self-excited combustion instability with pressure oscillations on the order of 10% of mean pressure is used for demonstration. Spatially distributed flame transfer functions are extracted from a high-fidelity simulation of the combustor and then used in a nonlinear Euler CFD model of the combustor to verify the approach. It is shown that the reduced-fidelity model can reproduce the unsteady behavior of the single element combustor that was both measured in the experiment and predicted by a high-fidelity simulation reasonably well.
url https://doi.org/10.1177/1756827720950320
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AT swanandsardeshmukh combustioninstabilitymodelingusingmultimodeflametransferfunctionsandanonlineareulersolver
AT williamanderson combustioninstabilitymodelingusingmultimodeflametransferfunctionsandanonlineareulersolver
AT chenghuang combustioninstabilitymodelingusingmultimodeflametransferfunctionsandanonlineareulersolver
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