Nonpremixed Approaches for Fuel Flexible, Low NOx Combustors in High-Efficiency Gas Turbines

Author:

Emerson Benjamin1ORCID,Patel Shivam J.23ORCID,Gubbi Srujan1ORCID,McKinney Randal G.1,Wu David1,Noble David R.4,Lieuwen Tim1

Affiliation:

1. Aerospace Engineering, Georgia Institute of Technology , Combustion Lab, 635 Strong Street NW, Atlanta, GA 30318

2. Mechanical Engineering, Georgia Institute of Technology , Combustion Lab, 635 Strong Street NW, Atlanta, GA 30318

3. Georgia Institute of Technology

4. EPRI , 1300 West WT Harris Boulevard, Charlotte, NC 28262

Abstract

Abstract Lean, premixed combustor designs have almost completely replaced nonpremixed combustors for industrial gas turbine applications where NOx emissions are regulated. Nonetheless, these designs have also introduced turndown and fuel flexibility constraints and made combustion instabilities and flashback more problematic. Future gas turbine applications will require combustors to accommodate a range of alternative fuels, provide operational flexibility, and compete for services with a host of new technologies, including energy storage and fuel cells. The purpose of this paper is to propose nonpremixed, multistage designs for the next generation of high turndown, high fuel flexibility, low NOx combustion designs—referred to here as a Nonpremixed, Rich, Relaxation, Lean (NRRL) combustor. The key concept, we explore is nonpremixed combustion, followed by additional fuel mixing to locally fuel-rich conditions, a relaxation stage, and then a lean stage. This nonpremixed approach can handle essentially any fuel composition, including pure hydrogen, liquid fuels, pure methane, pure ammonia, and any combination in between while breaking the NOx-CO tradeoff and reducing combustion instability risk. This paper provides chemical reactor network modeling calculations to identify key kinetic processes and time scales required for such a concept. This concept has completely inverted sensitivities from lean, premixed systems which prefer short residence times, low pressures, and low temperatures to minimize NO formation. This concept prefers long residence times, high pressures, and high temperatures, indicating a very different set of design trades for part load and off-design performance.

Funder

National Aeronautics and Space Administration

Publisher

ASME International

Reference12 articles.

1. Fuel Flexibility Influences on Premixed Combustor Blowout, Flashback, Autoignition, and Stability;ASME J. Eng. Gas Turbines Power,2008

2. Prediction of Minimum Achievable NOx Levels for Fuel-Staged Combustors;Combust. Flame,2019

3. Staged Combustion System for Improved Emissions Operability and Flexibility for 7HA Class Heavy Duty Gas Turbine Engine,2017

4. Evaluation of Minimum NOx Emission From Ammonia Combustion;ASME J. Eng. Gas Turbines Power,2024

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