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Prop. Power, 17, 461, 10.2514\u002F2.5765\nHong, 2019, Soot formation of dodecane, aviation bio-paraffins and their blends with propylbenzene in diffusion flames, Renew. Energy, 136, 84, 10.1016\u002Fj.renene.2018.12.105\nDagaut, 2006, The ignition, oxidation, and combustion of kerosene: a review of experimental and kinetic modeling, Prog. Energy Combust. Sci., 32, 48, 10.1016\u002Fj.pecs.2005.10.003\nDagaut, 2014, Experimental and detailed kinetic model for the oxidation of a gas to liquid (GtL) jet fuel, Combust. Flame, 161, 835, 10.1016\u002Fj.combustflame.2013.08.015\nMalewicki, 2013, Experimental and modeling study on the oxidation of Jet A and the n-dodecane\u002Fiso-octane\u002Fn-propylbenzene\u002F1,3,5-trimethylbenzene surrogate fuel, Combust. Flame, 160, 17, 10.1016\u002Fj.combustflame.2012.09.013\nBraun-Unkhoff, 2015, Alternative fuels in aviation, CEAS Aeronaut. 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Inst., 30, 201, 10.1016\u002Fj.proci.2004.08.195\nHuang, 2006, Measurements of laminar burning velocities for natural gas-hydrogen-air mixtures, Combust. Flame, 146, 302, 10.1016\u002Fj.combustflame.2006.03.003\nBouvet, 2013, On the effective Lewis number formulations for lean hydrogen\u002Fhydrocarbon\u002Fair mixtures, Int. J. Hydrog. Energy, 38, 5949, 10.1016\u002Fj.ijhydene.2013.02.098\nCheng, 1984, Autoignition in methane hydrogen mixtures, Combust. Flame, 58, 125, 10.1016\u002F0010-2180(84)90088-9\nDryer, 2008, Ignition of syngas\u002Fair and hydrogen\u002Fair mixtures at low temperatures and high pressures: experimental data interpretation and kinetic modeling implications, Combust. Flame, 152, 293, 10.1016\u002Fj.combustflame.2007.08.005\nLieuwen, 2008, Fuel flexibility influences on premixed combustor blowout, flashback, autoignition, and stability, J. Eng. Gas Turbines Power, 130, 011506, 10.1115\u002F1.2771243\nEbi, 2016, Experimental investigation of upstream flame propagation during boundary layer flashback of swirl flames, Combust. Flame, 168, 39, 10.1016\u002Fj.combustflame.2016.03.027\nPitts, 1989, Assessment of theories for the behavior and blowout of lifted turbulent jet diffusion flames, Symp. (Int.) Combust., 22, 809, 10.1016\u002FS0082-0784(89)80090-6\nLyons, 2007, Toward an understanding of the stabilization mechanisms of lifted turbulent jet flames: experiments, Prog. Energy Combust. Sci., 33, 211, 10.1016\u002Fj.pecs.2006.11.001\nVanquickenborne, 1966, The stabilization mechanism of lifted diffusion flames, Combust. 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Flame, 161, 484, 10.1016\u002Fj.combustflame.2013.09.016\nGuiberti, 2020, Assessment of the stabilization mechanisms of turbulent lifted jet flames at elevated pressure using combined 2-D diagnostics, Combust. Flame, 214, 323, 10.1016\u002Fj.combustflame.2020.01.001\nCandel, 2014, Dynamics of swirling flames, Annu. Rev. Fluid Mech., 46, 147, 10.1146\u002Fannurev-fluid-010313-141300\nTummers, 2009, Hysteresis and transition in swirling nonpremixed flames, Combust. Flame, 156, 447, 10.1016\u002Fj.combustflame.2008.10.027\nStöhr, 2011, Dynamics of lean blowout of a swirl-stabilized flame in a gas turbine model combustor, Proc. Combust. Inst., 33, 2953, 10.1016\u002Fj.proci.2010.06.103\nGalley, 2011, Mixing and stabilization study of a partially premixed swirling flame using laser induced fluorescence, Combust. 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Flame, 162, 4342, 10.1016\u002Fj.combustflame.2015.07.001\nMercier, 2016, Experimental and numerical investigation of the influence of thermal boundary conditions on premixed swirling flame stabilization, Combust. Flame, 171, 42, 10.1016\u002Fj.combustflame.2016.05.006\nTangirala, 1987, Effect of heat release and swirl on the recirculation within swirl-stabilized flames, Combust. Sci. Technol., 51, 75, 10.1080\u002F00102208708960316\nChen, 1989, The role of the recirculation vortex in improving fuel-air mixing within swirling flames, Symp. (Int.) Combust., 22, 531, 10.1016\u002FS0082-0784(89)80060-8\nDegeneve, 2021, Impact of co- and counter-swirl on flow recirculation and liftoff of non-premixed oxy-flames above coaxial injectors, Proc. Combust. Inst., 38, 5501, 10.1016\u002Fj.proci.2020.06.279\nMarragou, 2022, Stabilization regimes and pollutant emissions from a dual fuel CH4\u002FH2 and dual swirl low NOx burner, Int. J. Hydrog. 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Flame, 238, 10.1016\u002Fj.combustflame.2021.111755","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS0010218021004983",{"doi":1763},"10.1016\u002Fj.combustflame.2021.111755",{"id":1765,"text":1766,"url":1767,"identifiers":1768},"868ee040-515c-40c2-a9f1-ff991f4a6fc1","Ning, 2022, Temperature and phase transitions of laser-ignited single iron particle, Combust. Flame, 236, 10.1016\u002Fj.combustflame.2021.111801","https:\u002F\u002Fwww.sciencedirect.com\u002Fscience\u002Farticle\u002Fpii\u002FS0010218021005447",{"doi":1769},"10.1016\u002Fj.combustflame.2021.111801",{"id":18,"text":1771,"url":1772,"identifiers":1773},"Li, 2022, Visualizing particle melting and nanoparticle formation during single iron particle oxidation with multi-parameter optical diagnostics, Combust. Flame, 245, 10.1016\u002Fj.combustflame.2022.112357","https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.combustflame.2022.112357",{"openalex":1774,"doi":1775},"W4295141338","10.1016\u002Fj.combustflame.2022.112357",{"id":18,"text":1777,"url":1778,"identifiers":1779},"Hessels, 2022, Reduction kinetics of combusted iron powder using hydrogen, Powder Technol., 407, 10.1016\u002Fj.powtec.2022.117540","https:\u002F\u002Fdoi.org\u002F10.1016\u002Fj.powtec.2022.117540",{"openalex":1780,"doi":1781},"W4281783833","10.1016\u002Fj.powtec.2022.117540",{"id":1783,"createTime":1784,"updateTime":1785,"relativeEntities":1786,"slug":1787,"properties":1788,"entityType":257,"verifyStatus":258,"verifyTime":1797,"verifyNote":260,"languages":18,"translateLanguages":18,"viewCount":19,"primaryUrl":1798,"fullTextUrl":18,"authors":1799,"publicationType":335,"publisherRelationship":1860,"citationCount":19,"citationInfo":1922,"publishDate":1925,"publishYear":1923,"citationAnalyzeStatus":1383,"lastCitationAnalyze":1926,"indexDatabases":1927,"openAccess":18,"references":18,"isForceReanalyzing":404},"395a6a23-9fda-4d11-8165-eee9e9759b93","2024-01-11T11:04:10.725+00:00","2026-07-25T13:10:13.177+00:00",[],"Theoretical-kinetic-studies-for-low-temperature-oxidation-of-two-typical-methylcyclohexyl-radicals",{"title":1789,"gsPaper":1791,"references":1793,"doi":1795},{"EN":1790},"Theoretical kinetic studies for low temperature oxidation of two typical methylcyclohexyl radicals",{"VOID":1792},"[\"15599189193231384045\"]",{"VOID":1794},"Pitz, 2011, Recent progress in the development of diesel surrogate fuels, Prog. 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