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Yıl 2025, Cilt: 10 Sayı: 2, 367 - 391, 26.06.2025
https://doi.org/10.58559/ijes.1654845

Öz

Kaynakça

  • [1] Wei X, Gao Y, Zhao H, Li Y, Yang Q. Numerical study on laminar burning velocity and ignition delay time of ammonia/methanol mixtures. Int J Hydrogen Energy 2024; 82: 673–84.
  • [2] Kobayashi H, Hayakawa A, Somarathne KDKA, Okafor EC. Science and technology of ammonia combustion. Proc Combust Inst 2019; 37: 109–33.
  • [3] Nawaz B, Nasim MN, Das SK, Landis J, SubLaban A, Trelles JP, et al. Combustion characteristics and emissions of nitrogen oxides (NO, NO2, N2O) from spherically expanding laminar flames of ammonia–hydrogen blends. Int J Hydrogen Energy 2024; 65: 164–76.
  • [4] Park YK, Kim BS. Catalytic removal of nitrogen oxides (NO, NO2, N2O) from ammonia-fueled combustion exhaust: A review of applicable technologies. Chem Eng J 2023; 461: 141958.
  • [5] Liu C, Yang H, Ruan C, Yu L, Nan J, Li J, et al. Experimental study on effects of ammonia enrichment on the thermoacoustic instability of lean premixed swirling methane flames. Fuel 2024; 357: 129796.
  • [6] Meng X, Qin M, Liu L, Wei F, Tian J, Long W, et al. Visualization and simulation study of ammonia blending with hydrogen as combustion application in lean-burn condition. Fuel 2024; 357: 129812.
  • [7] Kekul O, Ilbas M, Karyeyen S. Hydrogen concentration effects on a swirl-stabilized non-premixed burner using ammonia. Int J Hydrogen Energy 2024; 52: 1288–305.
  • [8] Wei Z, Zhang X, Wang L, Song P, Chen L, Zhang M, et al. Transport and reactivity effects of H2 additive on NO formation of NH3-H2 counterflow diffusion flames. Fuel 2024; 375: 132543.
  • [9] Liu M, Chen S, Zhu H, Zhou Z, Xu J. Numerical investigation of ammonia/coal co-combustion in a low NOx swirl burner. Energy 2023; 282: 128358.
  • [10] Zhang X, Wang J, Chen Y, Li C. Effect of CH4 , Pressure, and Initial Temperature on the Laminar Flame Speed of an NH3–Air Mixture. ACS Omega 2021; 6: 11857–68.
  • [11] Bastani M, Tabejamaat S, Ashini H. Numerical and experimental study of combustion and emission characteristics of ammonia/methane fuel mixture in micro gas turbine combustor. Int J Hydrogen Energy 2024; 49: 1399-1415.
  • [12] Du Y, Zong S, Wang C, Wang Y, Lyu Q, Da Y, et al. Study on Mechanisms of NOx Formation and Inhibition during the Combustion of NH3/CH4 and NH3/CO Mixtures. Appl Sci 2023; 13: 11847.
  • [13] Wang B, Wang H, Yang C, Hu D, Duan B, Wang Y. Effect of different ammonia/methanol ratios on engine combustion and emission performance. Appl Therm Eng 2024; 236: 121519.
  • [14] Kekul O, Ilbas M, Arslan B. Numerical investigation of the laminar burning velocity and adiabatic flame temperature phenomenon for NH3/Hydrogen rich coal gases (HRCGs)/air flames. Energy Sources, Part A Recover Util Environ Eff 2024; 46: 10579–98.
  • [15] Han X, Wang Z, He Y, Zhu Y, Cen K. Experimental and kinetic modeling study of laminar burning velocities of NH3/syngas/air premixed flames. Combust Flame 2020; 213: 1–13.
  • [16] Chen Z, Jiang Y. Numerical investigation of the effects of H2/CO/syngas additions on laminar premixed combustion characteristics of NH3/air flame. Int J Hydrogen Energy 2021; 46: 12016–30.
  • [17] Wang S, Wang Z, Elbaz AM, Han X, He Y, Costa M, et al. Experimental study and kinetic analysis of the laminar burning velocity of NH3/syngas/air, NH3/CO/air and NH3/H2/air premixed flames at elevated pressures. Combust Flame 2020; 221: 270–87.
  • [18] Wang D, Ji C, Wang Z, Wang S, Zhang T, Yang J. Measurement of oxy-ammonia laminar burning velocity at normal and elevated temperatures. Fuel 2020; 279: 118425.
  • [19] Li J, Huang H, Kobayashi N, He Z, Osaka Y, Zeng T. Numerical study on effect of oxygen content in combustion air on ammonia combustion. Energy 2015; 93: 2053–68.
  • [20] Ilbas M, Kekul O, Bektas A, Karyeyen S. Oxidizer effects on ammonia combustion using a generated non-premixed burner. Int J Hydrogen Energy 2022; 47: 12317–37.
  • [21] Li S, Zhang S, Zhou H, Ren Z. Analysis of air-staged combustion of NH3/CH4 mixture with low NOx emission at gas turbine conditions in model combustors. Fuel 2019; 237: 50–9.
  • [22] Kurata O, Iki N, Matsunuma T, Inoue T, Tsujimura T, Furutani H, et al. Performances and emission characteristics of NH3–air and NH3CH4–air combustion gas-turbine power generations. Proc Combust Inst 2017; 36: 3351–9.
  • [23] Zhao Z, Zhang Z, Zha X, Gao G, Mao W, Wu F, et al. Fuel-NO formation mechanism in MILD-oxy combustion of CH4/NH3 fuel blend. Fuel 2023; 331: 125817.
  • [24] Mashruk S, Xiao H, Valera-Medina A. Rich-Quench-Lean model comparison for the clean use of humidified ammonia/hydrogen combustion systems. Int J Hydrogen Energy 2021; 46: 4472–84.
  • [25] Karyeyen S, Feser JS, Jahoda E, Gupta AK. Development of distributed combustion index from a swirl-assisted burner. Appl Energy 2020; 268: 114967.
  • [26] Khalil AEE, Gupta AK. Towards colorless distributed combustion regime. Fuel 2017; 195: 113–22.
  • [27] Karyeyen S. Combustion characteristics of a non-premixed methane flame in a generated burner under distributed combustion conditions: A numerical study. Fuel 2018; 230: 163–71.
  • [28] Karyeyen S, Feser JS, Gupta AK. Swirl assisted distributed combustion behavior using hydrogen-rich gaseous fuels. Appl Energy 2019; 251: 113354.
  • [29] Cavaliere A, De Joannon M. Mild combustion. vol. 30. 2004.
  • [30] Tugov AN. Contribution of Coal Electricity to Global CO2 Emissions: The Existing Situation and Current Trends of Their Reduction. Therm Eng 2024; 71: 547–59.
  • [31] Lilley DG. Swirl Flows in Combustion: A Review. AIAA J 1977; 15: 1063–78.
  • [32] Pilusa TJ, Huberts R, Muzenda E. Emissions analysis from combustion of eco-fuel briquettes for domestic applications. J Energy South Africa 2013; 24: 30–6.
  • [33] Kuang Y, He B, Wang C, Tong W, He D. Numerical analyses of MILD and conventional combustions with the Eddy Dissipation Concept (EDC). Energy 2021; 237.
  • [34] Mei B, Zhang J, Shi X, Xi Z, Li Y. Enhancement of ammonia combustion with partial fuel cracking strategy: Laminar flame propagation and kinetic modeling investigation of NH3/H2/N2/air mixtures up to 10 atm. Combust Flame 2021; 231: 111472.
  • [35] Cai Z, Huang M, Wei G, Liu Z, Fang H, Song Y, et al. Numerical study of the effect of pressure on the combustion characteristics of ammonia/coal-derived syngas mixture under gas turbine operating conditions. Fuel 2023; 347: 128463.
  • [36] Wang D, Ji C, Wang Z, Wang S, Zhang T, Yang J. Measurement of oxy-ammonia laminar burning velocity at normal and elevated temperatures. Fuel 2020; 279: 118425.
  • [37] Khalil AEE, Gupta AK. Swirling distributed combustion for clean energy conversion in gas turbine applications. Appl Energy 2011; 88: 3685–93.

Optimization of combustion and emission characteristics of coke oven gas doped ammonia/air mixture by colorless distributed combustion (CDC) technology

Yıl 2025, Cilt: 10 Sayı: 2, 367 - 391, 26.06.2025
https://doi.org/10.58559/ijes.1654845

Öz

This study’s motivation is to reduce the NO emissions of ammonia/air mixture, whose NO emissions are promoted by coke oven gas (COG) addition, by implementing the CDC technology. Within this scope, the effects of the CDC technology on the termal and emission characteristics of the COG/ammonia/air mixture were numerically investigated under the non-premixed combustion conditions. In order to perform a detailed investigation, the simulations were performed for the different operating conditions where the oxidizer inlet temperature (300 K or 600 K) and diluent type (N2 and CO2) were varied. Under the distributed combustion regimes, declines in flame thicknesses and temperatures were observed and this provided more uniform temperature fields. Besides, the flame blowout limits varied and it observed 20% and 18.5% under CO2 and N2 dilutions, respectively for the 300 K inlet temperature. Increasing the inlet temperature provided wider blowout limits up to O2 concentration of 16%. Reduction levels up to 45.83% in NO emissions were achieved compared to conventional combustion. This showed that CDC technology is a promising way to suppress the primary NO formation mechanisms of the mixture. Because the preheating promoted the reactions rates the maximum reduction in NO emissions was 29%. Therefore, it can be said that CDC method should be implemented to the mixture when the reactants are at room temperature and the diluent is N2 to obtain the most proper combustion and emission outcomes.

Kaynakça

  • [1] Wei X, Gao Y, Zhao H, Li Y, Yang Q. Numerical study on laminar burning velocity and ignition delay time of ammonia/methanol mixtures. Int J Hydrogen Energy 2024; 82: 673–84.
  • [2] Kobayashi H, Hayakawa A, Somarathne KDKA, Okafor EC. Science and technology of ammonia combustion. Proc Combust Inst 2019; 37: 109–33.
  • [3] Nawaz B, Nasim MN, Das SK, Landis J, SubLaban A, Trelles JP, et al. Combustion characteristics and emissions of nitrogen oxides (NO, NO2, N2O) from spherically expanding laminar flames of ammonia–hydrogen blends. Int J Hydrogen Energy 2024; 65: 164–76.
  • [4] Park YK, Kim BS. Catalytic removal of nitrogen oxides (NO, NO2, N2O) from ammonia-fueled combustion exhaust: A review of applicable technologies. Chem Eng J 2023; 461: 141958.
  • [5] Liu C, Yang H, Ruan C, Yu L, Nan J, Li J, et al. Experimental study on effects of ammonia enrichment on the thermoacoustic instability of lean premixed swirling methane flames. Fuel 2024; 357: 129796.
  • [6] Meng X, Qin M, Liu L, Wei F, Tian J, Long W, et al. Visualization and simulation study of ammonia blending with hydrogen as combustion application in lean-burn condition. Fuel 2024; 357: 129812.
  • [7] Kekul O, Ilbas M, Karyeyen S. Hydrogen concentration effects on a swirl-stabilized non-premixed burner using ammonia. Int J Hydrogen Energy 2024; 52: 1288–305.
  • [8] Wei Z, Zhang X, Wang L, Song P, Chen L, Zhang M, et al. Transport and reactivity effects of H2 additive on NO formation of NH3-H2 counterflow diffusion flames. Fuel 2024; 375: 132543.
  • [9] Liu M, Chen S, Zhu H, Zhou Z, Xu J. Numerical investigation of ammonia/coal co-combustion in a low NOx swirl burner. Energy 2023; 282: 128358.
  • [10] Zhang X, Wang J, Chen Y, Li C. Effect of CH4 , Pressure, and Initial Temperature on the Laminar Flame Speed of an NH3–Air Mixture. ACS Omega 2021; 6: 11857–68.
  • [11] Bastani M, Tabejamaat S, Ashini H. Numerical and experimental study of combustion and emission characteristics of ammonia/methane fuel mixture in micro gas turbine combustor. Int J Hydrogen Energy 2024; 49: 1399-1415.
  • [12] Du Y, Zong S, Wang C, Wang Y, Lyu Q, Da Y, et al. Study on Mechanisms of NOx Formation and Inhibition during the Combustion of NH3/CH4 and NH3/CO Mixtures. Appl Sci 2023; 13: 11847.
  • [13] Wang B, Wang H, Yang C, Hu D, Duan B, Wang Y. Effect of different ammonia/methanol ratios on engine combustion and emission performance. Appl Therm Eng 2024; 236: 121519.
  • [14] Kekul O, Ilbas M, Arslan B. Numerical investigation of the laminar burning velocity and adiabatic flame temperature phenomenon for NH3/Hydrogen rich coal gases (HRCGs)/air flames. Energy Sources, Part A Recover Util Environ Eff 2024; 46: 10579–98.
  • [15] Han X, Wang Z, He Y, Zhu Y, Cen K. Experimental and kinetic modeling study of laminar burning velocities of NH3/syngas/air premixed flames. Combust Flame 2020; 213: 1–13.
  • [16] Chen Z, Jiang Y. Numerical investigation of the effects of H2/CO/syngas additions on laminar premixed combustion characteristics of NH3/air flame. Int J Hydrogen Energy 2021; 46: 12016–30.
  • [17] Wang S, Wang Z, Elbaz AM, Han X, He Y, Costa M, et al. Experimental study and kinetic analysis of the laminar burning velocity of NH3/syngas/air, NH3/CO/air and NH3/H2/air premixed flames at elevated pressures. Combust Flame 2020; 221: 270–87.
  • [18] Wang D, Ji C, Wang Z, Wang S, Zhang T, Yang J. Measurement of oxy-ammonia laminar burning velocity at normal and elevated temperatures. Fuel 2020; 279: 118425.
  • [19] Li J, Huang H, Kobayashi N, He Z, Osaka Y, Zeng T. Numerical study on effect of oxygen content in combustion air on ammonia combustion. Energy 2015; 93: 2053–68.
  • [20] Ilbas M, Kekul O, Bektas A, Karyeyen S. Oxidizer effects on ammonia combustion using a generated non-premixed burner. Int J Hydrogen Energy 2022; 47: 12317–37.
  • [21] Li S, Zhang S, Zhou H, Ren Z. Analysis of air-staged combustion of NH3/CH4 mixture with low NOx emission at gas turbine conditions in model combustors. Fuel 2019; 237: 50–9.
  • [22] Kurata O, Iki N, Matsunuma T, Inoue T, Tsujimura T, Furutani H, et al. Performances and emission characteristics of NH3–air and NH3CH4–air combustion gas-turbine power generations. Proc Combust Inst 2017; 36: 3351–9.
  • [23] Zhao Z, Zhang Z, Zha X, Gao G, Mao W, Wu F, et al. Fuel-NO formation mechanism in MILD-oxy combustion of CH4/NH3 fuel blend. Fuel 2023; 331: 125817.
  • [24] Mashruk S, Xiao H, Valera-Medina A. Rich-Quench-Lean model comparison for the clean use of humidified ammonia/hydrogen combustion systems. Int J Hydrogen Energy 2021; 46: 4472–84.
  • [25] Karyeyen S, Feser JS, Jahoda E, Gupta AK. Development of distributed combustion index from a swirl-assisted burner. Appl Energy 2020; 268: 114967.
  • [26] Khalil AEE, Gupta AK. Towards colorless distributed combustion regime. Fuel 2017; 195: 113–22.
  • [27] Karyeyen S. Combustion characteristics of a non-premixed methane flame in a generated burner under distributed combustion conditions: A numerical study. Fuel 2018; 230: 163–71.
  • [28] Karyeyen S, Feser JS, Gupta AK. Swirl assisted distributed combustion behavior using hydrogen-rich gaseous fuels. Appl Energy 2019; 251: 113354.
  • [29] Cavaliere A, De Joannon M. Mild combustion. vol. 30. 2004.
  • [30] Tugov AN. Contribution of Coal Electricity to Global CO2 Emissions: The Existing Situation and Current Trends of Their Reduction. Therm Eng 2024; 71: 547–59.
  • [31] Lilley DG. Swirl Flows in Combustion: A Review. AIAA J 1977; 15: 1063–78.
  • [32] Pilusa TJ, Huberts R, Muzenda E. Emissions analysis from combustion of eco-fuel briquettes for domestic applications. J Energy South Africa 2013; 24: 30–6.
  • [33] Kuang Y, He B, Wang C, Tong W, He D. Numerical analyses of MILD and conventional combustions with the Eddy Dissipation Concept (EDC). Energy 2021; 237.
  • [34] Mei B, Zhang J, Shi X, Xi Z, Li Y. Enhancement of ammonia combustion with partial fuel cracking strategy: Laminar flame propagation and kinetic modeling investigation of NH3/H2/N2/air mixtures up to 10 atm. Combust Flame 2021; 231: 111472.
  • [35] Cai Z, Huang M, Wei G, Liu Z, Fang H, Song Y, et al. Numerical study of the effect of pressure on the combustion characteristics of ammonia/coal-derived syngas mixture under gas turbine operating conditions. Fuel 2023; 347: 128463.
  • [36] Wang D, Ji C, Wang Z, Wang S, Zhang T, Yang J. Measurement of oxy-ammonia laminar burning velocity at normal and elevated temperatures. Fuel 2020; 279: 118425.
  • [37] Khalil AEE, Gupta AK. Swirling distributed combustion for clean energy conversion in gas turbine applications. Appl Energy 2011; 88: 3685–93.
Toplam 37 adet kaynakça vardır.

Ayrıntılar

Birincil Dil İngilizce
Konular Enerji, Enerji ve Yakmada Kimyasal ve Termal Süreçler, Enerji Üretimi, Dönüşüm ve Depolama (Kimyasal ve Elektiksel hariç), Otomotiv Yanma ve Yakıt Mühendisliği
Bölüm Research Article
Yazarlar

Ozan Kekul 0000-0002-7327-0920

Yayımlanma Tarihi 26 Haziran 2025
Gönderilme Tarihi 10 Mart 2025
Kabul Tarihi 10 Nisan 2025
Yayımlandığı Sayı Yıl 2025 Cilt: 10 Sayı: 2

Kaynak Göster

APA Kekul, O. (2025). Optimization of combustion and emission characteristics of coke oven gas doped ammonia/air mixture by colorless distributed combustion (CDC) technology. International Journal of Energy Studies, 10(2), 367-391. https://doi.org/10.58559/ijes.1654845
AMA Kekul O. Optimization of combustion and emission characteristics of coke oven gas doped ammonia/air mixture by colorless distributed combustion (CDC) technology. International Journal of Energy Studies. Haziran 2025;10(2):367-391. doi:10.58559/ijes.1654845
Chicago Kekul, Ozan. “Optimization of combustion and emission characteristics of coke oven gas doped ammonia/air mixture by colorless distributed combustion (CDC) technology”. International Journal of Energy Studies 10, sy. 2 (Haziran 2025): 367-91. https://doi.org/10.58559/ijes.1654845.
EndNote Kekul O (01 Haziran 2025) Optimization of combustion and emission characteristics of coke oven gas doped ammonia/air mixture by colorless distributed combustion (CDC) technology. International Journal of Energy Studies 10 2 367–391.
IEEE O. Kekul, “Optimization of combustion and emission characteristics of coke oven gas doped ammonia/air mixture by colorless distributed combustion (CDC) technology”, International Journal of Energy Studies, c. 10, sy. 2, ss. 367–391, 2025, doi: 10.58559/ijes.1654845.
ISNAD Kekul, Ozan. “Optimization of combustion and emission characteristics of coke oven gas doped ammonia/air mixture by colorless distributed combustion (CDC) technology”. International Journal of Energy Studies 10/2 (Haziran2025), 367-391. https://doi.org/10.58559/ijes.1654845.
JAMA Kekul O. Optimization of combustion and emission characteristics of coke oven gas doped ammonia/air mixture by colorless distributed combustion (CDC) technology. International Journal of Energy Studies. 2025;10:367–391.
MLA Kekul, Ozan. “Optimization of combustion and emission characteristics of coke oven gas doped ammonia/air mixture by colorless distributed combustion (CDC) technology”. International Journal of Energy Studies, c. 10, sy. 2, 2025, ss. 367-91, doi:10.58559/ijes.1654845.
Vancouver Kekul O. Optimization of combustion and emission characteristics of coke oven gas doped ammonia/air mixture by colorless distributed combustion (CDC) technology. International Journal of Energy Studies. 2025;10(2):367-91.