
doi: 10.2172/379049
Combustion oscillations are receiving renewed research interest due to increasing application of lean premix (LPM) combustion to gas turbines. A simple, nonlinear model for premixed combustion is described; it was developed to explain experimental results and to provide guidance for developing active control schemes based on nonlinear concepts. The model can be used to quickly examine instability trends associated with changes in equivalence ratio, mass flow rate, geometry, ambient conditions, etc. The model represents the relevant processes occurring in a fuel nozzle and combustor analogous to current LPM turbine combustors. Conservation equations for the nozzle and combustor are developed from simple control volume analysis, providing ordinary differential equations that can be solved on a PC. Combustion is modeled as a stirred reactor, with bimolecular reaction between fuel and air. Although focus is on the model, it and experimental results are compared to understand effects of inlet air temperature and open loop control schemes. The model shows that both are related to changes in transport time.
20 Fossil-Fueled Power Plants, Oscillations, Nozzles, Computers, Mathematical Models, Combustion, 33 Advanced Propulsion Systems, 99 Mathematics, Management, Miscellaneous, 620, 42 Engineering Not Included In Other Categories, Combustors, Differential Equations, Nonlinear Problems, Gas Turbine Engines, Law, Information Science
20 Fossil-Fueled Power Plants, Oscillations, Nozzles, Computers, Mathematical Models, Combustion, 33 Advanced Propulsion Systems, 99 Mathematics, Management, Miscellaneous, 620, 42 Engineering Not Included In Other Categories, Combustors, Differential Equations, Nonlinear Problems, Gas Turbine Engines, Law, Information Science
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