[1] |
柏静儒, 林卫生, 潘朔, 等. 油页岩低温热解过程中轻质气体的析出特性[J]. 化工学报, 2015, 66(3):1104-1110. BAI J R, LIN W S, PAN S, et al. Characteristics of light gases evolution during oil shale pyrolysis[J]. CIESC Journal, 2015, 66(3):1104-1110.
|
[2] |
DYNI J R. Geology and resources of some world oil shale oil deposits[J]. Shale, 2003, 20(3):193-252.
|
[3] |
GAFFNEY J S, STREIT G E, SPALL W D, et al. Beyond acid rain. Do soluble oxidants and organic toxins interact with SO2 and NOx to increase ecosystem effects[J]. Environmental Science Technology, 1987, 21(6):519-524.
|
[4] |
余岳溪, 高正阳, 季鹏, 等. 煤焦异相还原N2O的反应机理[J]. 化工学报, 2017, 68(1):369-374. YU Y X, GAO Z Y, JI P, et al. Heterogeneous reduction reaction of N2O by char[J]. CIESC Journal, 2017, 68(1):369-374.
|
[5] |
谢建军, 杨学民, 吕雪松, 等. 煤热解过程中硫氮及迁移规律研究进展[J]. 化工进展, 2004, 23(11):1214-1218. XIE J J, YANG X M, LÜ X S, et al. Progress on transformation behavior of sulfur and nitrogen during coal pyrolysis[J]. Chemical Industry and Engineering Progress, 2004, 23(11):1214-1218.
|
[6] |
LING L, ZHANG R G, WANG B J, et al. Pyrolysis mechanisms of quinoline and isoquinoline with density functional theory[J]. Chinese Journal of Chemical Engineering, 2009, 17(5):805-813.
|
[7] |
LING L, ZHANG R G, WANG B J, et al. Density functional theory study on the pyrolysis mechanism of thiophene in coal[J]. Journal of Molecular Structure (THEOCHEM), 2009, 905(1/2/3):8-12.
|
[8] |
LING L, ZHANG R G, WANG B J, et al. DFT study on the sulfur migration during benzenethiol pyrolysis in coal[J]. Journal of Molecular Structure (THEOCHEM), 2009, 952(1/2/3):31-35.
|
[9] |
DUBNIKOVA F, TAMBURU C, LIFSHITZ A. A deep insight into the details of the interisomerization and decomposition mechanism of o-quinolyl and o-isoquinolyl radicals. Quantum chemical calculations and computer modeling[J]. The Journal of Physical Chemistry A, 2016, 120(38):7538-7547.
|
[10] |
LI G Y, WANG F, WANG J P, et al. ReaxFF and DFT study on the sulfur transformation mechanism during the oxidation process of lignite[J]. Fuel, 2016, 181:238-247.
|
[11] |
KHRAPKOVSKⅡ G M, SHARIPOV D D, SHAMOV A G, et al. Theoretical study of substituents effect on C-NO2 bond strength in mono substituted nitrobenzenes[J]. Computational and Theoretical Chemistry, 2013, 1017:7-13.
|
[12] |
YU H Z, FU F, ZHANG L, et al. Accurate predictions of C-SO2R bond dissociation enthalpies using density functional theory methods[J]. Physical Chemistry Chemical Physics, 2014, 16:20964-20970.
|
[13] |
YAO X Q, HOU X J, JIAO H J, et al. Accurate calculations of bond dissociation enthalpies with density functional methods[J]. The Journal of Physical Chemistry A, 2003, 107(46):9991-9996.
|
[14] |
DEL GIACCO T, LANZALUNGA O, LAPI A, et al. Photosensitized oxidation of aryl benzyl sulfoxides. Evidence for nucleophilic assistance to the C-S bond cleavage of aryl benzyl sulfoxide radical cations[J]. Journal of Organic Chemistry, 2015, 80(4):2310-2318.
|
[15] |
KHRAPKOVSKⅡ G M, SHARIPOV D D, SHAMOV A G, et al. Enthalpies of formation of mono substituted nitrobenzenes:a quantum chemistry study[J]. Computational and Theoretical Chemistry, 2013, 1011:37-43.
|
[16] |
FAYET G, ROUTUREAU P, MINISINI B. Decomposition mechanisms of trinitroalkyl compounds:a theoretical study from aliphatic to aromatic nitro compounds[J]. Physical Chemistry Chemical Physics, 2014, 16(14):6614-6622.
|
[17] |
MAROCHKIN I I, DOROFEEVA O V. Amide bond dissociation enthalpies:effect of substitution on N-C bond strength[J]. Computational and Theoretical Chemistry, 2012, 991:182-191.
|
[18] |
JOHNSON E R, CLARKIN O J, DILABIO G A. Density functional theory based model calculations for accurate bond dissociation enthalpies(3):A single approach for X-H, X-X, and X-Y (X, Y=C, N, O, S, halogen) bonds[J]. The Journal of Physical Chemistry A, 2003, 107(46):9953-9963.
|
[19] |
SONG X L, PARISH C A. Pyrolysis mechanisms of thiophene and methylthiophene in asphaltenes[J]. The Journal of Physical Chemistry A, 2011, 115(13):2882-2891.
|
[20] |
ZHENG W R, FU Y, GUO Q X. G3//BMK and its application to calculation of bond dissociation enthalpies[J]. Journal of Chemical Theory and Computation, 2008, 4(8):1324-1331.
|
[21] |
TAO X X, TANG L F, XIE M H, et al. Dielectric properties analysis of sulfur-containing models in coal and energy evaluation of their sulfur-containing bond dissociation in microwave field[J]. Fuel, 2016, 181:1027-1033.
|
[22] |
TANG L F, WANG S W, GUO J F, et al. Exploration on the removal mechanism of sulfur ether model compounds for coal by microwave irradiation with peroxyacetic acid[J]. Fuel Processing Technology, 2017, 159:442-447.
|
[23] |
BARCKHOLTZ C, BARCKHOLTZ T A, HADAD C M. C-H and N-H bond dissociation energies of small aromatic hydrocarbons[J]. Journal of the American Chemical Society, 1999, 121(3):491-500.
|
[24] |
LI L, FAN H J, HU H Q. Assessment of contemporary theoretical methods for bond dissociation enthalpies[J]. Chinese Journal of Chemical Physics, 2016, 29(4):453-461.
|
[25] |
SCHWABE T, GRIMME S. Towards chemical accuracy for the thermodynamics of large molecules:new hybrid density functionals including non-local correlation effects[J]. Physical Chemistry Chemical Physics, 2006, 8(38):4398-4401.
|
[26] |
DUNNING J T H. Gaussian basis sets for use in correlated molecular calculations(Ⅰ):The atoms boron through neon and hydrogen[J]. The Journal of Chemical Physics, 1989, 90(2):1007-1023.
|
[27] |
KENDALL R A, DUNNING J T H, HARRISON R J. Electron affinities of the first-row atoms revisited. Systematic basis sets and wave functions[J]. The Journal of Chemical Physics, 1992, 96(9):6796-6806.
|
[28] |
BOYS S F, BERNARDI F. Calculation of small molecular interactions by differences of separate total energies-some procedures with reduced errors[J]. Molecular Physics, 1970, 19(4):553.
|
[29] |
SIMON S, DURAN M, DANNENBERG J J. How does basis set superposition error change the potential surfaces for hydrogen bonded dimers[J]. Journal of Chemical Physics, 1996, 105(24):11024-11031.
|
[30] |
LI L, FAN H J, HU H Q. A theoretical study on bond dissociation enthalpies of coal based model compounds[J]. Fuel, 2015, 153:70-77.
|
[31] |
HAYES C J, HADAD C M. Combustion pathways of the alkylated heteroaromatics:bond dissociation enthalpies and alkyl group fragmentations[J]. The Journal of Physical Chemistry A, 2009, 1133(45):12370-12379.
|
[32] |
SHI J, HU X R, LIANG S. A computational study of C-S bond dissociation enthalpies in petroleum chemistry[J]. Heteroatom Chemistry, 2011, 22(2):97-105.
|