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Experimental And Numerical Study On The Effects Of Oxygen Methane Flames With Water Dilution For Different Pressures

Authors: Chica Cano, Juan Pablo; Cabot, Gilles; de Persis, Stéphanie; Foucher, Fabrice;

Experimental And Numerical Study On The Effects Of Oxygen Methane Flames With Water Dilution For Different Pressures

Abstract

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Comput Mater Sci 2003;28:169-78. http://www.kintechlab.com/products/chemical-workbench.\n[16]\tSmith GP, Golden DM, Frenklach M, Moriarty NW, Eiteneer B, Goldenberg M, Bowman CT, Hanson RK, Song S, Gardiner WC, Lissianski VV, Qin Z, GRImech3.0 Mechanism (1999), http://www.me.berkeley.edu/gri_mech/.\n[17]\tKee, R. J.; Grcar, J. F.; Smooke, M. D.; Miller, J. A. A Fortran Program for Modeling Steady Laminar One-Dimensional Premixed Flames, Sandia Technical Report SAND85-8240; Sandia National Laboratory: Albuquerque, NM, 1985.\n[18]\tBuckmaster J. Slowly varying laminar flames. Combustion and Flame 1977; 28: 225e39.\n[19]\tTahtouh T, Halter F, Mouna\u00efm-Rousselle C. Measurement of laminar burning speeds and Markstein lengths using a novel methodology. Combustion and Flame 2009; 156:1735-43.\n[20]\tBradley D, Hicks R.A, Lawes M, Sheppard C.G.W, Woolley R. 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Gas Turbine Power 2008, 130, 041502-1,10.\n[25]\tChica Cano JP, Cabot G, Foucher F, De Persis S; Fuel 2017 (submitted); Effects of oxygen enrichment and water dilution on laminar methane flames at high pressure.\n[26]\tPugh DG, Bowen PJ, Marsh R, Crayford AP, et al. Dissosiative influence of H2O vapour/spray on lean blowoff and NOx reduction for heavily carbonaceous syngas swirling flames. Combustion and Flame 177: 37-48(2017)."]}

Among all possibilities to combat global warming, CO2 capture and sequestration (CCS) is presented as a great alternative to reduce greenhouse gas (GHG) emission. Several strategies for CCS from industrial and power plants are being considered. The concept of combined oxy-fuel combustion has been the most alternative solution. Nevertheless, due to the high cost of pure O2 production, additional ways recently emerged. In this paper, an innovative combustion process for a gas turbine cycle was studied: it was composed of methane combustion with oxygen enhanced air (OEA), exhaust gas recirculation (EGR) and H2O issuing from STIG (Steam Injection Gas Turbine), and the CO2 capture was realized by membrane separator. The effect on this combustion process was emphasized, and it was shown that a study of the influence of H2O dilution on the combustion parameters by experimental and numerical approaches had to be carried out. As a consequence, the laminar burning velocities measurements were performed in a stainless steel spherical combustion from atmospheric pressure to high pressure (up to 0.5 MPa), at 473 K for an equivalence ratio at 1. These experimental results were satisfactorily compared with Chemical Workbench v.4.1 package in conjunction with GRIMech 3.0 reaction mechanism. The good correlations so obtained between experimental and calculated flame speed velocities showed the validity of the GRIMech 3.0 mechanism in this domain of combustion: high H2O dilution, low N2, medium pressure. Finally, good estimations of flame speed and pollutant emissions were determined in other conditions compatible with real gas turbine. In particular, mixtures (composed of CH4/O2/N2/H2O/ or CO2) leading to the same adiabatic temperature were investigated. Influences of oxygen enrichment and H2O dilution (compared to CO2) were disused.

Country
France
Keywords

660, [SPI.FLUID]Engineering Sciences [physics]/Reactive fluid environment, CO 2 capture, [SPI.FLUID] Engineering Sciences [physics]/Reactive fluid environment, oxygen enrichment, CO2 capture, laminar burning velocity, water dilution, pollutants emissions, pollutants emissions.

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