CO2 capture from fluid catalytic crackers via chemical looping combustion: Regeneration of coked catalysts with oxygen carriers

Journal of the Energy Institute - Tập 107 - Trang 101187 - 2023
Fatih Güleç1,2, Will Meredith2, Colin E. Snape2
1Advanced Materials Research Group, Faculty of Engineering, University of Nottingham, Nottingham, NG7 2RD, UK
2Low Carbon Energy and Resources Technologies Research Group, Faculty of Engineering, University of Nottingham, Triumph Road, Nottingham, NG7 2TU, UK

Tài liệu tham khảo

Abián, 2017, Titanium substituted manganese-ferrite as an oxygen carrier with permanent magnetic properties for chemical looping combustion of solid fuels, Fuel, 195, 38, 10.1016/j.fuel.2017.01.030 Adanez, 2012, Progress in chemical-looping combustion and reforming technologies, Prog. Energy Combust. Sci., 38, 215, 10.1016/j.pecs.2011.09.001 Adánez-Rubio, 2014, Kinetic analysis of a Cu-based oxygen carrier: relevance of temperature and oxygen partial pressure on reduction and oxidation reactions rates in chemical looping with oxygen uncoupling (CLOU), Chem. Eng. J., 256, 69, 10.1016/j.cej.2014.06.102 Ali, 2011, A review on emission analysis in cement industries, Renew. Sustain. Energy Rev., 15, 2252, 10.1016/j.rser.2011.02.014 Arbel, 1995, Dynamic and control of fluidized catalytic crackers. 1. Modeling of the current generation of FCC's, Ind. Eng. Chem. Res., 34, 1228, 10.1021/ie00043a027 2013 Baowen, 2011, 2724 Bayraktar, 2003, Coke content of spent commercial fluid catalytic cracking (FCC) catalysts, J. Therm. Anal. Calorim., 71, 867, 10.1023/A:1023382327595 Behera, 2013, Structure and composition of hard coke deposited on industrial fluid catalytic cracking catalysts by solid state 13 C nuclear magnetic resonance, Appl. Catal. Gen., 466, 123, 10.1016/j.apcata.2013.06.038 Bird, 2017, 4 Analysis of biochars for C, H, N, O and S by elemental analyser, 39 Cerqueira, 2008, Deactivation of FCC catalysts, J. Mol. Catal. Chem., 292, 1 Chejne, 2000, Modelling and simulation of time-dependent coal combustion processes in stacks, Fuel, 79, 987, 10.1016/S0016-2361(99)00224-0 Cho, 2004, Comparison of iron-, nickel-, copper-and manganese-based oxygen carriers for chemical-looping combustion, Fuel, 83, 1215, 10.1016/j.fuel.2003.11.013 de Mello, 2009, Oxy-combustion for CO2 capture from fluid catalytic crackers (FCC), 31 de Mello, 2009, A technical and economical evaluation of CO2 capture from FCC units, Energy Proc., 1, 117, 10.1016/j.egypro.2009.01.018 de Mello, 2013, Oxy-combustion technology development for fluid catalytic crackers (FCC)–large pilot scale demonstration, Energy Proc., 37, 7815, 10.1016/j.egypro.2013.06.562 de Mello, 2015, FCC oxy-fuel demonstration at petrobras shale industrial business unit, 51 Digne, 2014, A technical and economical evaluation of CO2 capture from fluidized catalytic cracking (FCC) flue gas, Oil. Gas Sci. Technol. –Revue d’IFP Energies nouvelles, 69, 1081, 10.2516/ogst/2013209 Elkamel, 2008, An optimization approach for integrating planning and CO2 emission reduction in the petroleum refining industry, Ind. Eng. Chem. Res., 47, 760, 10.1021/ie070426n 2010 Feng, 2022, Enhanced performance of red mud for chemical-looping combustion of coal by the modification of transition metal oxides, J. Energy Inst., 102, 22, 10.1016/j.joei.2022.02.012 Güleç, 2018, Selective synthesis of 2, 6-triad dimethylnaphthalene isomers by disproportionation of 2-methylnaphthalene over mesoporous MCM-41, Res. Chem. Intermed., 44, 7205, 10.1007/s11164-018-3551-5 Güleç, 2018, A kinetic study on methylation of naphthalene over Fe/ZSM-5 zeolite catalysts, Res. Chem. Intermed., 44, 55, 10.1007/s11164-017-3090-5 Güleç, 2019, A novel approach to CO2 capture in fluid catalytic cracking—chemical looping combustion, Fuel, 244, 140, 10.1016/j.fuel.2019.01.168 Güleç, 2019, Selective low temperature chemical looping combustion of higher alkanes with Cu-and Mn-oxides, Energy, 173, 658, 10.1016/j.energy.2019.02.099 Güleç, 2020, Progress in the CO2 capture technologies for fluid catalytic cracking (FCC) units—a review, Front. Energy Res., 8, 10.3389/fenrg.2020.00062 Güleç, 2020, Demonstrating the applicability of chemical looping combustion for the regeneration of fluid catalytic cracking catalysts, Chem. Eng. J., 389, 10.1016/j.cej.2020.124492 Güleç, 2021, Investigation of the hydrodynamics in the regenerator of fluid catalytic cracking unit integrated by chemical looping combustion, Fuel Process. Technol., 223, 10.1016/j.fuproc.2021.106998 Güleç, 2021, Hydrothermal conversion of different lignocellulosic biomass feedstocks–Effect of the process conditions on hydrochar structures, Fuel, 302, 10.1016/j.fuel.2021.121166 2016 John, 2005, Sources of CO2, 75 Kerr, 2005, Capture and separation technology gaps and priority research needs Kerr, 2005, Capture and separation technology gaps and priority research needs- Ksepko, 2012, Effect of H2S on chemical looping combustion of coal-derived synthesis gas over Fe–Mn oxides supported on sepiolite, ZrO2, and Al2O3, Energy Fuel., 26, 2461, 10.1021/ef201441k Li, 2022, Influence of doping Al on the reactivity performance of Cu–Fe spinel-type oxygen carrier during chemical-looping combustion, J. Energy Inst., 105, 25, 10.1016/j.joei.2022.07.014 Long, 2021, NiO and CuO coated monolithic oxygen carriers for chemical looping combustion of methane, J. Energy Inst., 94, 199, 10.1016/j.joei.2020.09.004 Mattisson, 2009, Chemical-looping with oxygen uncoupling for combustion of solid fuels, Int. J. Greenh. Gas Control, 3, 11, 10.1016/j.ijggc.2008.06.002 Melien, 2009, Economics, 3, 237 Miracca, 2015, CO2 capture from A fluid catalytic cracking unit: technical/economical evaluation, 4, 67 Niftaliyeva, 2020, 1 2010 Peng, 2012, The evaluation and comparison of carbon dioxide capture technologies applied to FCC flue gas, 1479 Rawlence, 1988, FCC catalyst performance evaluation, Appl. Catal., 43, 213, 10.1016/S0166-9834(00)82729-3 Rydén, 2014, Combined oxides as oxygen-carrier material for chemical-looping with oxygen uncoupling, Appl. Energy, 113, 1924, 10.1016/j.apenergy.2013.06.016 Shabani, 2017, Evaluation of ash-free coal for chemical looping combustion-part I: thermogravimetric single cycle study and the reaction mechanism, Can. J. Chem. Eng., 95, 623, 10.1002/cjce.22721 Siriwardane, 2009, Chemical-looping combustion of coal with metal oxide oxygen carriers, Energy Fuel., 23, 3885, 10.1021/ef9001605 Siriwardane, 2010, Evaluation of reaction mechanism of coal–metal oxide interactions in chemical-looping combustion, Combust. Flame, 157, 2198, 10.1016/j.combustflame.2010.06.008 van Straelen, 2009, CO2 capture for refineries, a practical approach, Energy Proc., 1, 179, 10.1016/j.egypro.2009.01.026 van Straelen, 2010, CO2 capture for refineries, a practical approach, Int. J. Greenh. Gas Control, 4, 316, 10.1016/j.ijggc.2009.09.022 Wang, 2011, Investigation of chemical looping combustion of coal with CuFe2O4 oxygen carrier, Energy Fuel., 25, 3344, 10.1021/ef2004078 Wang, 2013, Experimental study on coal chemical looping combustion using CuFe2O4 as oxygen carrier, 1387 Wang, 2014, TGA-FTIR investigation of chemical looping combustion by coal with CoFe2O4 combined oxygen carrier, J. Anal. Appl. Pyrol., 105, 369, 10.1016/j.jaap.2013.12.002 Wang, 2015, Chemical-looping combustion and gasification of coals and oxygen carrier development: a brief review, Energies, 8, 10605, 10.3390/en81010605 Wang, 2022, Effects of pressure on the chemical looping combustion of coal with CuFe2O4 combined oxygen carrier, J. Energy Inst., 100, 22, 10.1016/j.joei.2021.10.009