Effects of Adiabatic Flame Temperature and Oxygen Concentration in CH4/N2/O2 Nonswirl Jet Flames: Experimental and Numerical Study

Author:

Aliyu Mansur1,Nemitallah Medhat A.234,Abdelhafez Ahmed25,Said Syed A. M.5,Okonkwo Paul C.6,Habib Mohamed A.74

Affiliation:

1. King Fahd University of Petroleum and Minerals IRC—Hydrogen and Energy Storage, , Dhahran 31261 , Saudi Arabia

2. King Fahd University of Petroleum and Minerals IRC—Hydrogen and Energy Storage, , Dhahran 31261 , Saudi Arabia ;

3. King Fahd University of Petroleum and Minerals Department of Aerospace Engineering, , Dhahran 31261 , Saudi Arabia ;

4. Researcher at K.A. CARE Energy Research & Innovation Center at Dhahran , Dhahran 31261 , Saudi Arabia

5. King Fahd University of Petroleum and Minerals Department of Mechanical Engineering, , Dhahran 31261 , Saudi Arabia

6. Dhofar University Department of Mechanical and Mechatronics Engineering, , Salalah 2509 , Oman

7. King Fahd University of Petroleum and Minerals Department of Mechanical Engineering, , Dhahran 31261 , Saudi Arabia ;

Abstract

AbstractThe combustion characteristics of oxygen-enriched air–methane (i.e., O2/N2/CH4) flames in a premixed mode are investigated using both experimentally and numerically under atmospheric conditions for emissions reduction purposes. The investigation is carried out using a gas turbine model combustor equipped with a multihole burner that mimics gas turbine micromixer burners. The resulting flame is of jet type, and the velocity of the jet is kept at 5.2 m/s for all the considered flames. Models used in the numerical study include large eddy simulation, discrete ordinate, and partially premixed combustion for turbulence, radiation, and species models, respectively. The numerical results are validated, and a suitable agreement is achieved with experimental data. The results indicated that the temperature distribution, shape, and size of O2/N2/CH4 flames are predominantly controlled by adiabatic flame temperature (Tad). However, the oxygen fraction, rather than Tad, is responsible for the reaction progress. The emission of NO, CO, and CO2 increases with an increase in oxygen fraction, and the product formation in O2/N2/CH4 flames is less compared to their oxy-fuel (i.e., O2/CO2/CH4) counterparts, because N2 is mostly inert, compared to CO2. The latter participates significantly in flame reactions, which increases the rate of product formation in O2/CO2/CH4 flames.

Funder

King Fahd University of Petroleum and Minerals

Publisher

ASME International

Subject

Geochemistry and Petrology,Mechanical Engineering,Energy Engineering and Power Technology,Fuel Technology,Renewable Energy, Sustainability and the Environment

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