Experimental Study of the Precessing Vortex Core Impact on the Liquid Fuel Spray in a Gas Turbine Model Combustor

Author:

Renaud Antoine1,Ducruix Sébastien1,Zimmer Laurent1

Affiliation:

1. Laboratoire EM2C, CNRS, CentraleSupelec, Université Paris-Saclay, Gif-sur-Yvette 91190, France

Abstract

Abstract Despite being good candidates for the reduction of pollutant emissions from gas turbines, burners operating in lean premixed prevaporized regimes often face stability issues and can be sensitive to perturbations. The swirling flow used to aerodynamically stabilize the flame can also lead to the appearance of a large-scale coherent flow structure known as the precessing vortex core (PVC). In this study, a swirl-stabilized combustor fed with liquid dodecane is studied at a globally lean operating condition with the help of high-speed diagnostics and dynamic mode decomposition (DMD) as the main postprocessing method. It is shown that the trace of a PVC originating inside the injector is still present in the fuel spray at the entrance of the chamber even though the aerodynamical structure itself is not detectable anymore. The perturbation of the fuel spray is then transmitted to the flame through local equivalence ratio fluctuations. It is observed that the PVC trace on the spray and thus on the flame can be suppressed by air flow modulations generated by a siren device. The suppression of this trace is shown to come from a decay of the aerodynamical structure itself rather than by a change in fuel mixing or vaporization. Analysis of the characteristic frequency of the PVC shows a frequency spread indicating a loss of coherence of the structure with the high-amplitude air flow rate fluctuations.

Publisher

ASME International

Subject

Mechanical Engineering,Energy Engineering and Power Technology,Aerospace Engineering,Fuel Technology,Nuclear Energy and Engineering

Reference50 articles.

1. Power Generation and Aeropropulsion Gas Turbines: From Combustion Science to Combustion Technology;Symp. (Int.) Combust.,1998

2. Low NOx Potential of Gas Turbine Engines,1990

3. The Role of Fuel Preparation in Low-Emission Combustion;ASME J. Eng. Gas Turbines Power,1995

4. NOx Emission Control in Gas Turbines for Combined Cycle Gas Turbine Plant;Inst. Mech. Eng., Part A: J. Power Energy,1997

5. Flashback in a Swirl Burner With Cylindrical Premixing Zone;ASME J. Eng. Gas Turbines Power,2004

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