Self-Excited Oscillations in Combustors With Spray Atomizers
Autor: | Ann P. Dowling, K. N. C. Bray, M. Zhu |
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Rok vydání: | 2000 |
Předmět: |
Materials science
business.industry Turbulence Mechanical Engineering Nozzle Energy Engineering and Power Technology Aerospace Engineering Mechanical engineering Laminar flow Mechanics Computational fluid dynamics Combustion Turbine Physics::Fluid Dynamics Fuel Technology Nuclear Energy and Engineering Combustor Combustion chamber business |
Zdroj: | Journal of Engineering for Gas Turbines and Power. 123:779-786 |
ISSN: | 1528-8919 0742-4795 |
DOI: | 10.1115/1.1376717 |
Popis: | Combustors with fuel-spray atomizers are susceptible to a low-frequency oscillation, particularly at idle and sub-idle conditions. For aero-engine combustors, the frequency of this oscillation is typically in the range 50–120 Hz and is commonly called “rumble.” In the current work, computational fluid dynamics (CFD) is used to simulate this self-excited oscillation. The combustion model uses Monte Carlo techniques to give simultaneous solutions of the Williams’ spray equation together with the equations of turbulent reactive flow. The unsteady combustion is calculated by the laminar flamelet presumed pdf method. A quasi-steady description of fuel atomizer behavior is used to couple the inlet flow in the combustor. A choking condition is employed at turbine inlet. The effects of the atomizer and the combustor geometry on the unsteady combustion are studied. The results show that, for some atomizers, with a strong dependence of mean droplet size on air velocity, the coupled system undergoes low-frequency oscillations. The numerical results are analyzed to provide insight into the rumble phenomena. Basically, pressure variations in the combustor alter the inlet air and fuel spray characteristics, thereby changing the rate of combustion. This in turn leads to local “hot spots,” which generate pressure fluctuations as they convect through the downstream nozzle. |
Databáze: | OpenAIRE |
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