Insights on the role of primary and secondary tar reactions in soot inception during fast pyrolysis of coal

被引:24
作者
Apicella, B. [1 ]
Russo, C. [1 ]
Cerciello, F. [1 ]
Stanzione, F. [1 ]
Ciajolo, A. [1 ]
Scherer, V. [2 ]
Senneca, O. [1 ]
机构
[1] IRC CNR, Ist Ric Combust, Ple Tecchio 80, I-80125 Naples, Italy
[2] Ruhr Univ Bochum, Dept Energy Plant Technol, Univ Str 150, D-44780 Bochum, Germany
关键词
Coal pyrolysis; Fast pyrolysis; Drop tube; Tar analysis; PAH; Soot; POLYCYCLIC AROMATIC-HYDROCARBONS; FUEL-RICH COMBUSTION; PARTICULATE SOOT; MOLECULAR-WEIGHT; PAH; CO2; TEMPERATURE; VOLATILES; PRODUCTS;
D O I
10.1016/j.fuel.2020.117957
中图分类号
TE [石油、天然气工业]; TK [能源与动力工程];
学科分类号
0807 ; 0820 ;
摘要
In the present work fast pyrolysis of coal in N-2 and CO2 atmospheres was studied in a drop tube reactor (DTR) and in a heated strip reactor (HSR). In the DTR the volatiles generated by coal pyrolysis were entrained in a hot gas stream and were collected at the reactor outlet by tar traps. In the HSR, the volatiles were ejected from the hot coal particles into a cool environment and the condensable species, including primary tar, deposited and/or condensed on a glass bridge located above the heated strip. The composition of tars produced in the two reactors was compared to study the role of gas tar reactions in soot inception, and reference compounds for each class of tar species produced were identified. In the DTR the formation and growth of polycyclic aromatic hydrocarbons (PAH) were found higher than in the HSR. Soot formation occurred only in the DTR, being negligible in the HSR. It was concluded that the hot gas environment of the DTR favours secondary tar reactions, formation of PAH and eventually soot, while in the HSR this path was prevented due to prompt cooling down of volatiles. The presence of large concentration of CO2 in the pyrolysis atmospheres further promoted formation of heavy PAH and soot in the DTR, but not in the HSR, where the cooler environment limits soot-CO2 reactions in the gas phase.
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页数:8
相关论文
共 37 条
[1]   Experimental study on the effect of different CO2 concentrations on soot and gas products from ethylene thermal decomposition [J].
Abian, M. ;
Millera, A. ;
Bilbao, R. ;
Alzueta, M. U. .
FUEL, 2012, 91 (01) :307-312
[2]   Modeling effects of soot and turbulence-radiation coupling on radiative transfer in turbulent gaseous combustion [J].
Adams, BR ;
Smith, PJ .
COMBUSTION SCIENCE AND TECHNOLOGY, 1995, 109 (1-6) :121-140
[3]  
AHLUWALIA RK, 1994, J I ENERGY, V67, P23
[4]   Mass spectrometric analysis of large PAH in a fuel-rich ethylene flame [J].
Apicella, B. ;
Carpentieri, A. ;
Alfe, M. ;
Barbella, R. ;
Tregrossi, A. ;
Pucci, P. ;
Ciajolo, A. .
PROCEEDINGS OF THE COMBUSTION INSTITUTE, 2007, 31 :547-553
[5]   The Effect of Temperature on Soot Properties in Premixed Ethylene Flames [J].
Apicella, B. ;
Tregrossi, A. ;
Ciajolo, A. ;
Abrahamson, J. ;
Vander Wal, R. L. ;
Russo, C. .
COMBUSTION SCIENCE AND TECHNOLOGY, 2019, 191 (09) :1558-1570
[6]   High temperature pyrolysis of lignite and synthetic carbons [J].
Apicella, B. ;
Russo, C. ;
Ciajolo, A. ;
Cortese, L. ;
Cerciello, F. ;
Stanzione, F. ;
Wuetscher, A. ;
Muhler, M. ;
Senneca, O. .
FUEL, 2019, 241 :264-272
[7]   Separation and characterization of carbonaceous particulate (soot and char) produced from fast pyrolysis of coal in inert and CO2 atmospheres [J].
Apicella, B. ;
Senneca, O. ;
Russo, C. ;
Heuer, S. ;
Cortese, L. ;
Cerciello, F. ;
Scherer, V. ;
Schiemann, M. ;
Ciajolo, A. .
FUEL, 2017, 201 :118-123
[8]   Fast Fourier Transform and autocorrelation function for the analysis of complex mass spectra [J].
Apicella, B. ;
Bruno, A. ;
Wang, X. ;
Spinelli, N. .
INTERNATIONAL JOURNAL OF MASS SPECTROMETRY, 2013, 338 :30-38
[9]   Formation of low- and high-molecular-weight hydrocarbon species in sooting ethylene flames [J].
Apicella, B ;
Barbella, R ;
Ciajolo, A ;
Tregrossi, A .
COMBUSTION SCIENCE AND TECHNOLOGY, 2002, 174 (11-2) :309-324
[10]  
Barnard J.A., 1985, FLAME AND COMBUSTION