The enigmatic mechanism of the flame ionization detector: Its overlooked implications for fossil fuel combustion modeling
暂无分享,去创建一个
[1] K. Becker,et al. CO Emission from Acetylene—Oxygen Flames , 1966 .
[2] S. E. Johnson,et al. Mechanism of CO fourth positive v u v chemiluminescence in the atomic oxygen reaction with acetylene. Production of C(3P, 1D) , 1973 .
[3] D. Gutman,et al. Shock‐Tube Study of the Acetylene–Oxygen Reaction. III. Absolute Rate of Chemi‐Ionization during the Induction Period , 1971 .
[4] F. Stuhl,et al. Electronic quenching of methylidyne(A2.DELTA.), imidogen(A3.PI.), imidogen(c1.PI.), and phosphinidene(A3.PI.) between 240 and 420 K , 1991 .
[5] J. Daily,et al. Measurements of CH radical concentrations in an acetylene/oxygen flame and comparisons to modeling calculations , 1988 .
[6] F. Stuhl,et al. Fate of isolated CH(B2Σ−,v=0,J) states in inelastic collisions with CO , 2002 .
[7] D. Crosley,et al. Collisional quenching of CH A 2Δ, v' = 0 at 1300 K , 1987 .
[8] Theoretical study on the dynamic properties and state-selected rate constants of the reaction CH(4Σ−)+H2→CH2(3B1)+H , 1994 .
[9] E. M. Bulewicz,et al. A CYCLOTRON RESONANCE STUDY OF IONIZATION IN LOW-PRESSURE FLAMES , 1963 .
[10] E. M. Bulewicz,et al. Spectroscopic studies of C2, CH and OH radicals in low pressure acetylene+oxygen flames , 1970, Proceedings of the Royal Society of London. A. Mathematical and Physical Sciences.
[11] A. Metropoulos,et al. Conditions conducive to the chemi-ionization reaction O(3P)+CH(X 2Π,a 4Σ−)→HCO+(X 1Σ+)+e− , 2001 .
[12] H. Eyring,et al. Ions in flames , 1961 .
[13] Timothy J. Wallington,et al. Experimental and Modeling Study of Premixed Atmospheric-Pressure Dimethyl Ether−Air Flames , 2000 .
[14] D. Hesse,et al. Rate of soot growth in atmospheric premixed laminar flames , 1985 .
[15] T. M. Sugden,et al. SOME OBSERVATIONS ON THE MECHANISM OF IONIZATION IN FLAMES CONTAINING HYDROCARBONS , 1963 .
[16] A. Hayhurst,et al. The origin and nature of “prompt” nitric oxide in flames , 1983 .
[17] G. B. Kistiakowsky,et al. Mechanism of the Acetylene—Oxygen Reaction in Shock Waves , 1964 .
[18] A. Fontijn. Mechanism of Chemiluminescence of Atomic‐Oxygen—Hydrocarbon Reactions. Formation of the Vaidya Hydrocarbon Flame Band Emitter , 1966 .
[19] H. S. Homan,et al. A carbon-14 tracer study of the relative fractions of various fuel carbons in soot , 1986 .
[20] R. Maclagan,et al. Ab initio study of CnO, CnO+ and CnHO+ species , 1993 .
[21] Charles J. Mueller,et al. Using Carbon-14 Isotope Tracing to Investigate Molecular Structure Effects of the Oxygenate Dibutyl Maleate on Soot Emissions from a DI Diesel Engine , 2004 .
[22] G. B. Kistiakowsky,et al. Ionization Accompanying the Acetylene—Oxygen Reaction in Shock Waves , 1962 .
[23] Frederick L. Dryer,et al. The reaction kinetics of dimethyl ether. I: High‐temperature pyrolysis and oxidation in flow reactors , 2000 .
[24] T. McAllister. Chemi-ionization in acetylene flames , 1982, Nature.
[25] A. J. Andreatch,et al. Continuous Trace Hydrocarbon Analysis by Flame Ionization , 1960 .
[26] D. Kittelson,et al. The positive and negative ions in oxy-acetylene flames , 1978 .
[27] K. Bayes,et al. A study of some primary and secondary chemi-ionization reactions in hydrocarbon oxidations , 1977 .
[28] B. A. Williams,et al. The effect of nitric oxide on premixed flames of CH4, C2H6, C2H4, and C2H2 , 1997 .
[29] Mohammad Hossein Fatemi,et al. Prediction of flame ionization detector response factors using an artificial neural network , 1998 .
[30] H. Tong,et al. Flame ionization detector response factors for compound classes in quantitative analysis of complex organic mixtures , 1984 .
[31] J. Prager,et al. Modeling ion chemistry and charged species diffusion in lean methane–oxygen flames , 2007 .
[32] A. G. Gaydon,et al. The identification of molecular spectra , 1950 .
[33] K. Bascombe,et al. THE IONIZATION PRODUCED BY ADDITION OF ACETYLENE TO A HYDROGEN-OXYGEN-NITROGEN FLAME , 1963 .
[34] W. R. Angus. The Identification of Molecular Spectra , 1941, Nature.
[35] M. A. Jackson,et al. Qualitative and Quantitative Determination of Methyl Esters, Free Fatty Acids, Mono-, Di-, and Triacylglycerols Via HPLC Coupled with a Flame Ionization Detector , 1997 .
[36] S. Peyerimhoff,et al. Ab initio investigation of the HCO+ and COH+ molecule-ions: Structure and potential surfaces for dissociation in ground and excited states , 1975 .
[37] Torkil Holm,et al. Aspects of the mechanism of the flame ionization detector , 1999 .
[38] H. F. Calcote. Ion and electron profiles in flames , 1963 .
[39] M. Schreiner,et al. Determination of the carbon deficiency in the flame ionization detector response of long-chain fatty acid methyl esters and dicarboxylic acid dimethyl esters. , 2004, Journal of chromatography. A.
[40] A. Blades. The role of thermal decomposition in the degradation of organic compounds in the flame ionization detector , 1984 .
[41] F. Ulberth,et al. Flame-ionization detector response to methyl, ethyl, propyl, and butyl esters of fatty acids , 1999 .
[42] P. A. Vlasov,et al. Detailed kinetic modeling of soot formation in hydrocarbon pyrolysis behind shock waves , 2002 .
[43] F. Slemr,et al. Study of the relative response factors of various gas chromatograph-flame ionisation detector systems for measurement of C2-C9 hydrocarbons in air. , 2004, Journal of Chromatography A.
[44] A. Hayhurst,et al. Production of ‘prompt’ nitric oxide and decomposition of hydrocarbons in flames , 1977, Nature.
[45] H. Schaefer,et al. The attractive quartet potential energy surface for the CH(a 4.SIGMA.-) + CO reaction: a role for the a 4A'' state of the ketenyl radical in combustion? , 1993 .
[46] I. G. McWilliam. The origin of the flame lonization detector , 1983 .
[47] A. Hayhurst,et al. Chemi-ionization in oxyacetylene flames , 1982, Nature.
[48] K. Devriendt,et al. Formation of ch(a(4)sigma- and/or x(2)pi) in the reaction of ketenyl radicals with oxygen-atoms - determination of the methylidyne yield at 290-k and ab-initio calculations , 1994 .
[49] K. T. Knapp,et al. An Experimental Evaluation of Remote Sensing-Based Hydrocarbon Measurements: A Comparison to FID Measurements. , 1996, Journal of the Air & Waste Management Association.
[50] D. Yarkony. Quenching of CH(a{sup 4}{Sigma}{sup -}) by CO(X{sup 1}{Sigma}{sup +}): Surface of intersection, spin-orbit interactions, and the incorporation of Kramers` degeneracy , 1996 .
[51] D. Gutman,et al. Shock‐Tube Study of the Acetylene‐Oxygen Reaction. IV. Kinetic Study of CH, C2, and Continuum Chemiluminescence During the Induction Period , 1972 .
[52] Normand M. Laurendeau,et al. Cross sections for quenching of CH A 2δ, ν′=0, by N2 and H2O from 1740 to 2160 K , 2002 .
[53] A. V. Tiggelen,et al. Experimental determination of the rate of the chemi-ionization process , 1969 .
[54] Kazuo Takahashi,et al. Shock‐tube studies on the reactions of dimethyl ether with oxygen and hydrogen atoms , 2007 .
[55] Nick Collings,et al. The fast-response flame ionization detector , 1998 .
[56] K. Bayes. Spectroscopic Study of the Chemiluminescent Reaction O + CCO , 1970 .
[57] J. Warnatz,et al. DETAILED KINETIC MODELING OF SOOT FORMATION DURING SHOCK-TUBE PYROLYSIS OF C6H6: DIRECT COMPARISON WITH THE RESULTS OF TIME-RESOLVED LASER-INDUCED INCANDESCENCE (LII) AND CW-LASER EXTINCTION MEASUREMENTS , 2004 .
[58] P. Wiesen,et al. Lifetime measurements of GeH and CH in the A 2Δ, ν′=0 state by laser-induced fluorescence , 1989 .
[59] D. F. Lieb,et al. A radioisotopic tracer study of carbon formation in ethanol-air diffusion flames , 1970 .
[60] F. Stuhl,et al. Electronic quenching of between 300 and 950 K , 1995 .
[61] William J. Pitz,et al. DETAILED CHEMICAL KINETIC MECHANISMS FOR COMBUSTION OF OXYGENATED FUELS , 2000 .
[62] D. Yarkony,et al. On the radiative lifetime of the (a 4Σ−,v,N,Fi) levels of the CH radical: An ab initio treatment , 1994 .
[63] P. Warneck,et al. Vacuum‐Ultraviolet Chemiluminescence in the Reaction of Atomic Oxygen with Acetylene , 1967 .
[64] Alexander B. Fialkov,et al. Investigations on ions in flames , 1997 .
[65] M. Frenklach,et al. Experimental and modeling study of shock‐tube oxidation of acetylene , 2003 .
[66] J. Goldsmith,et al. Laser-enhanced flame ionization detector. , 1987, Applied optics.
[67] A. G. Gaydon. The spectroscopy of flames , 1957 .
[68] M. Castillejo,et al. Vibrational and rotational dependence of the removal of CD(A2Δ, B 2Σ− and C 2Σ+) by H2 , 1997 .
[69] R. E. Ferguson. On the Origin of the Electronically Excited C2* Radical in Hydrocarbon Flames , 1955 .
[70] M. Kállai,et al. Response of flame ionization detectors to different homologous series , 2001 .
[71] T. G. Wright,et al. Study of Chemiionization Reactions in the O + C2H2 Reaction Mixture: Evidence for Involvement of the CH(X2.PI.) and CH(a4.SIGMA.-) States , 1995 .
[72] Jay B. Jeffries,et al. Collisional Quenching of CH(A), OH(A), and NO(A) in Low Pressure Hydrocarbon Flames , 1998 .
[73] A. Blades. The Effect of the Carrier Gas on Flame lonization Detector Sensitivity , 1976 .
[74] K. Schofield. An overlooked series of gas phase diatomic metal oxide ions that are long-lived. , 2006, The journal of physical chemistry. A.
[75] P. Kydd,et al. Vacuum ultraviolet light emission from low-pressure hydrocarbon-oxygen flames , 1967 .
[76] M. Navarro,et al. Experimental and modeling study of C5H10O2 ethyl and methyl esters. , 2007, The journal of physical chemistry. A.
[77] Weile. Yu,et al. Characteristics of flame ionization detection for the quantitative analysis of complex organic mixtures , 1990 .
[78] Marshall B. Long,et al. Experimental and computational study of CH, CH*, and OH* in an axisymmetric laminar diffusion flame , 1998 .
[79] V. Pretorius,et al. Flame Ionization Detector for Gas Chromatography , 1958, Nature.
[80] W. J. Miller,et al. Ions in flames: Evaluation and prognosis , 1973 .
[81] J. Whitehead,et al. Collisional removal rates for electronically excited CH radicals (B) and (C) , 1992 .
[82] K. J. Rensberger,et al. NH and CH laser-induced fluorescence in low-pressure flames: Quantum yields from time-resolved measurements , 1989 .
[83] W. J. Miller,et al. CHEMI-IONIZATION AND CHEMILUMINESCENCE IN THE REACTION OF ATOMIC OXYGEN WITH C2H2, C2D2, AND C2H4, , 1965 .
[84] A. Hayhurst,et al. Ions and soot in flames , 1987 .
[85] K. Bayes,et al. A study of chemi-ionization in the reaction of oxygen atoms with acetylene , 1977 .
[86] K. Evenson,et al. The rotational spectrum of the CH radical in its a 4Σ− state, studied by far‐infrared laser magnetic resonance , 1990 .
[87] Jay B. Jeffries,et al. Low pressure flame determinations of rate constants for OH(A) and CH(A) chemiluminescence , 2002 .
[88] R. Schmieder. Radiotracer studies of soot formation in diffusion flames , 1985 .
[89] L. Ettre,et al. 75 years of chromatography : a historical dialogue , 1979 .
[90] C. Westbrook,et al. Chemical kinetic modeling study of the effects of oxygenated hydrocarbons on soot emissions from diesel engines. , 2006, The journal of physical chemistry. A.
[91] Bradley A. Williams,et al. Experimental and modeling study of NO formation in 10 torr methane and propane flames: Evidence for additional prompt-NO precursors , 2007 .
[92] K. Becker,et al. CO Chemiluminescence from Flames , 1968 .
[93] H. F. Calcote. Mechanisms for the formation of ions in flames , 1957 .
[94] Y. Matsui,et al. Spectroscopic study of prompt nitrogen oxide formation mechanism in hydrocarbon-air flames , 1978 .
[95] Anthony J. Marchese,et al. A wide-ranging kinetic modeling study of methyl butanoate combustion , 2007 .
[96] W. A. Dietz,et al. Response Factors for Gas Chromatographic Analyses , 1967 .
[97] K. Schofield. Problems with flame ionization detectors in automotive exhaust hydrocarbon measurements , 1974 .
[98] C. Vinckier,et al. Production of chemi-ions and formation of CH and CH2 radicals in methane-oxygen and ethylene-oxygen flames* , 1975 .
[99] M. J. Dyer,et al. Time-resolved CH (A(2)Delta and B(2)Sigma(-)) laser-induced fluorescence in low pressure hydrocarbon flames. , 1988, Applied optics.
[100] Alan R. Katritzky,et al. Prediction of Gas Chromatographic Retention Times and Response Factors Using a General Quantitative Structure-Property Relationship Treatment , 1994 .
[101] H. F. Calcote. Ion production and recombination in flames , 1961 .
[102] I. Pályka,et al. Flame ionization detector response factors using the effective carbon number concept in the quantitative analysis of esters , 1992 .
[103] Saralees Nadarajah,et al. Letter to the editor , 2007, Int. Trans. Oper. Res..
[104] James E. Anderson,et al. C14 Study of Relative Fuel-to-Soot Carbon Conversion in Premixed Flames , 1986 .
[105] J. Craske,et al. Analysis of fatty acid methyl esters with high accuracy and reliability. V. Validation of theoretical relative response factors of unsaturated esters in the flame lonization detector , 1986 .
[106] Joyce A. Generali,et al. Response to Letter to the Editor , 2009 .
[107] C. Vinckier. Determination of the rate constant of the reaction CH + O .fwdarw. CHO+ + e- at 295 K , 1979 .
[108] H. Hill,et al. Analysis of hydrocarbons in a hydrogen atmosphere by gas chromatography with flame ionization , 1980 .
[109] Y. Sheng,et al. Investigation of the collisional quenching of CH(A 2Δ and B 2Σ−) by Ar, O2, CS2, alcohol, and halomethane molecules , 1994 .
[110] A. Clark,et al. A study of hydrocarbon flames , 1967 .
[111] T. Cool,et al. Direct observations of chemi-ionization in hydrocarbon flames enhanced by laser excited CH*(A 2 Δ) and CH*(B2Σ−) , 1984 .
[112] Gerald A. Sullivan,et al. Extending worksheet modelling software with expert system technology , 1986, APL '86.
[113] R. G. Ackman. The Flame lonization Detector: Further Comments on Molecular Breakdown and Fundamental Group Responses , 1968 .
[114] K. Bayes,et al. Identification of the primary chemi-ion in hydrocarbon oxidations , 1975 .
[115] R. G. Ackman. Fundamental Groups in the Response of Flame Ionization Detectors to Oxygenated Aliphatic Hydrocarbons , 1964 .
[116] A. El-naggar. Factors Affecting Linearity and Response of Flame Ionization Detector , 2006 .
[117] N. S. Barnett,et al. Private communication , 1969 .
[118] Michael J. Pilling,et al. Unravelling combustion mechanisms through a quantitative understanding of elementary reactions , 2005 .
[119] P. A. Bonczyk,et al. Laser-induced saturated fluorescence investigations of CH, CN and No in flames , 1981 .
[120] Nils Hansen,et al. Isomer-specific fuel destruction pathways in rich flames of methyl acetate and ethyl formate and consequences for the combustion chemistry of esters. , 2007, The journal of physical chemistry. A.
[121] W. Vaidya. The emitter of hydrocarbon flame bands , 1961 .
[122] Jay B. Jeffries,et al. Absolute CH concentration measurements in low-pressure methane flames: comparisons with model results , 2000 .
[123] Jorge Luque,et al. A note on chemiluminescence in low-pressure hydrogen and methane-nitrous oxide flames , 2005 .
[124] K. Bayes,et al. Rate constants for the reaction of methyne(a4.SIGMA.) with nitric oxide, dinitrogen, nitrous oxide, carbon monoxide, carbon dioxide and water , 1993 .
[125] L. Ettre. Relative response of the flame ionization detector , 1962 .
[126] G. Herzberg. Molecular Spectra and Molecular Structure IV. Constants of Diatomic Molecules , 1939 .
[127] A. Blades,et al. The effect of diluent gases on ion formation in hydrocarbon flames , 1978 .
[128] B. S. Fialkov,et al. Experimental determination of primary ions in flame , 1992 .
[129] F. Jones. Estimation of Flame-Ionization Detector Relative Response Factors for Oligomers of Alkyl and Aryl Ether Polyethoxylates using the Effective Carbon Number Concept , 1998 .
[130] L. Bernstein,et al. Formation of Triplet CO in Atomic Oxygen Flames of Acetylene and Carbon Suboxide , 1996 .
[131] Raymond W. Walker,et al. Evaluated kinetic data for combustion modelling supplement I , 1994 .
[132] R. E. Ferguson. An isotopic tracer study of carbon formation in hydrocarbon flames , 1957 .
[133] J. Lambert,et al. Mechanisms of C2* and CH* formation in a hydrogen-oxygen flame containing hydrocarbon traces , 1971 .
[134] N. Elander,et al. Predissociation effects in the A, B, and C states of CH and the interstellar formation rate of CH via inverse predissociation. [Lifetime measurements, rotation-vibration levels] , 1976 .
[135] Stijn Vranckx,et al. CH(A2Δ) Formation in Hydrocarbon Combustion: The Temperature Dependence of the Rate Constant of the Reaction C2H + O2 → CH(A2Δ) + CO2 , 2005 .
[136] H. Calcote,et al. Electrical properties of flames , 1948 .
[137] T. Just,et al. Determination of absolute OH and CH concentrations in a low pressure flame by laser-induced saturated fluorescence , 1985 .
[138] C. Blanco,et al. Flame ionization detection relative response factors of some polycyclic aromatic compounds: Determination of the main components of the coal tar pitch volatile fraction , 1992 .
[139] A. Metropoulos. The importance of the diabatic channels in the chemi-ionization reaction O(3P)+CH(a 4Σ−)→HCO+(X 1Σ+)+e− , 2002 .
[140] T. Holm. Mechanism of the flame ionization detector. II. Isotope effects and heteroatom effects , 1997 .
[141] H. Niki,et al. Reaction of Atomic Oxygen with Acetylene. II. Chemi‐Ionization and Chemiluminescence , 1965 .
[142] Keith Schofield,et al. Critically evaluated rate constants for gaseous reactions of several electronically excited species , 1979 .
[143] A. Nicholson. Decomposition reactions in the flame ionization detector , 1982 .
[144] J. Schneiderman,et al. C2 Swan band laser-induced fluorescence and chemiluminescence in low-pressure hydrocarbon flames , 2005 .
[145] J. Jeffries,et al. Collisional quenching of A 2Σ+ NO and A 2Δ CH in low pressure flames , 1991 .
[146] H. F. Calcote,et al. Are ions important in soot formation , 1988 .
[147] D. E. Willis,et al. Calculation of Flame Ionization Detector Relative Response Factors Using the Effective Carbon Number Concept , 1985 .
[148] R. G. Ackman,et al. FLAME IONIZATION DETECTOR RESPONSE FOR THE CARBONYL CARBON ATOM IN THE CARBOXYL GROUP OF FATTY ACIDS AND ESTERS. , 1964, Journal of chromatography.
[149] Katia Devriendt,et al. Direct Identification of the C2H(X2Σ+) + O(3P) → CH(A2Δ) + CO Reaction as the Source of the CH(A2Δ→X2Π) Chemiluminescence in C2H2/O/H Atomic Flames , 1997 .
[150] P. Wiesen,et al. Measurements on the CH*(A2Δ → X2Π) Chemiluminescence in the C2H2 + O Flame and Quenching Rate Constants for Different Reactants at 297 K , 1989 .
[151] K. Xie,et al. Identification of chemi-ions formed by reactions of deuterated fuels in the reflected shock zone , 1990 .
[152] A. Fontijn,et al. Chemi‐Ionization in the Room‐Temperature Reaction of Oxygen Atoms with Acetylene , 1963 .
[153] H. F. Calcote,et al. Negative and secondary ion formation in low-pressure flames , 1965 .
[154] A. Blades. The Flame Ionization Detector , 1973 .
[155] V. C. Stamoudis,et al. Prediction of gas chromatography flame ionization detector response factors from molecular structures , 1990 .
[156] R. J. Locke,et al. Laser-based flame species profile measurements: A comparison with flame model predictions , 1993 .
[157] T. M. Sugden,et al. Mass spectrometry of the ions present in hydrocarbon flames , 1958 .