The demand for aviation propulsion systems with ever higher power requirements, reliability, and reduced emissions has been steadily increasing. Desirable features for next generation high-efficiency gas turbine engines include improvements in combustion efficiency, fuel economy, and stable operation in the fuel lean limit. Despite recent advances, a significant issue facing gas turbine designers is sustaining flame stability during lean operation, which could otherwise lead to global extinction events, or lean blow out (LBO), resulting in a severe loss of operability, particularly at higher altitudes. Flame stabilization is a complex physical and chemical process which is determined by the competing effects of the rates of chemical reactions and rate of turbulence advection-diffusion of species and energy to and from the flame leading to a local ignition and extinction phenomena. The goal of the present study is to perform a high fidelity numerical investigation of the turbulent diffusion flame in a realistic turbine combustor to evaluate the potential to predict the local lean-blow-off dynamics and to gain more insights of the complex physics. A comparative study on LBO characteristics is performed using Finite Rate Chemistry, Large Eddy Simulation and Adaptive Mesh Refinement, for different fuels using a realistic gas turbine combustor. The fuels investigated include a petroleum based fuel and an alternative fuel candidate. The simulation was broken down in two phases: flame stabilization and a subsequent staged ramp-down of fuel flow rate to initiate LBO. It is shown that the simulations successfully predict LBO occurring at different equivalence ratios for the two fuels. Although, the simulations predict LBO occurring at slightly smaller equivalence (fuel-to-air) ratio than the experimental data, the difference between the equivalence ratios of the two fuels at LBO is very close to the experimental observation.
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ASME Turbo Expo 2018: Turbomachinery Technical Conference and Exposition
June 11–15, 2018
Oslo, Norway
Conference Sponsors:
- International Gas Turbine Institute
ISBN:
978-0-7918-5106-7
PROCEEDINGS PAPER
On Predictions of Fuel Effects on Lean Blow Off Limits in a Realistic Gas Turbine Combustor Using Finite Rate Chemistry
Joshua Piehl,
Joshua Piehl
Wayne State University, Detroit, MI
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Luis Bravo,
Luis Bravo
US Army Research Laboratory, Aberdeen, MD
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Waldo Acosta,
Waldo Acosta
US Army Research Laboratory, Cleveland, OH
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Gaurav Kumar,
Gaurav Kumar
Convergent Science Inc., New Braunfels, TX
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Scott Drennan,
Scott Drennan
Convergent Science Inc., New Braunfels, TX
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Omid Samimi-Abianeh
Omid Samimi-Abianeh
Wayne State University, Detroit, MI
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Joshua Piehl
Wayne State University, Detroit, MI
Luis Bravo
US Army Research Laboratory, Aberdeen, MD
Waldo Acosta
US Army Research Laboratory, Cleveland, OH
Gaurav Kumar
Convergent Science Inc., New Braunfels, TX
Scott Drennan
Convergent Science Inc., New Braunfels, TX
Omid Samimi-Abianeh
Wayne State University, Detroit, MI
Paper No:
GT2018-77070, V04BT04A049; 10 pages
Published Online:
August 30, 2018
Citation
Piehl, J, Bravo, L, Acosta, W, Kumar, G, Drennan, S, & Samimi-Abianeh, O. "On Predictions of Fuel Effects on Lean Blow Off Limits in a Realistic Gas Turbine Combustor Using Finite Rate Chemistry." Proceedings of the ASME Turbo Expo 2018: Turbomachinery Technical Conference and Exposition. Volume 4B: Combustion, Fuels, and Emissions. Oslo, Norway. June 11–15, 2018. V04BT04A049. ASME. https://doi.org/10.1115/GT2018-77070
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