Bed Agglomeration during Bio-oil Fast Pyrolysis in a Fluidized-Bed Reactor

被引:21
作者
Gao, Wenran [1 ]
Zhang, Mingming [1 ]
Wu, Hongwei [1 ]
机构
[1] Curtin Univ, Dept Chem Engn, GPO Box U1987, Perth, WA 6845, Australia
基金
澳大利亚研究理事会;
关键词
WATER-SOLUBLE FRACTION; BIOMASS FAST PYROLYSIS; MALLEE BIOMASS; WESTERN-AUSTRALIA; BIOSLURRY FUELS; CRUDE GLYCEROL; COMBUSTION; BIOCHAR; QUANTIFICATION; GASIFICATION;
D O I
10.1021/acs.energyfuels.8b00333
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
This study investigates bed agglomeration during fast pyrolysis of bio-oil in a fluidized-bed reactor at temperatures of 500-800 degrees C. The samples used include bio-oil, bio-oil water-soluble fraction (WSF), bio-oil water-insoluble fraction (WIF), and selected model compounds. Increasing pyrolysis temperature from 500 to 800 degrees C decreases the agglomeration yields of bio-oil, WSF, and WIF from 40% to 15%, 26.2% to 11.6%, and 15.0% to 5.2%, respectively. Investigation using model compounds suggests that the interactions between lignin-derived oligomers and sugar are mainly responsible for the high bed agglomeration yields of bio-oil and WSF, and such interactions weaken as pyrolysis temperature increases. Water has an insignificant effect on bed agglomeration during bio-oil or WSF pyrolysis. The results also show that the bed agglomeration yield and the formation of tar (and/or coke) are in broad linear correlations, indicating that the tar (and/or coke) formed during fast pyrolysis contributes to the bed agglomeration of bio-oil. The linear correlation from the data of bio-oil has a steeper gradient compared to that of WSF and WIF, clearly indicating the synergy taking place between the WSF and WIF during fast pyrolysis in enhancing bed agglomeration.
引用
收藏
页码:3608 / 3613
页数:6
相关论文
共 41 条
[1]   Bioslurry as a Fuel. 4. Preparation of Bioslurry Fuels from Biochar and the Bio-oil-Rich Fractions after Bio-oil/Biodiesel Extraction [J].
Abdullah, Hanisom ;
Wu, Hongwei .
ENERGY & FUELS, 2011, 25 (04) :1759-1771
[2]   Bioslurry as a Fuel. 3. Fuel and Rheological Properties of Bioslurry Prepared from the Bio-oil and Biochar of Mallee Biomass Fast Pyrolysis [J].
Abdullah, Hanisom ;
Mourant, Daniel ;
Li, Chun-Zhu ;
Wu, Hongwei .
ENERGY & FUELS, 2010, 24 (10) :5669-5676
[3]   Mechanisms of bed agglomeration during fluidized-bed combustion of biomass fuels [J].
Brus, E ;
Öhman, M ;
Nordin, A .
ENERGY & FUELS, 2005, 19 (03) :825-832
[4]   Influence of biomass particle size on bed agglomeration during biomass pyrolysis in fluidised bed [J].
Burton, Alan ;
Wu, Hongwei .
PROCEEDINGS OF THE COMBUSTION INSTITUTE, 2017, 36 (02) :2199-2205
[5]   Diagnosis of bed agglomeration during biomass pyrolysis in fluidized-bed at a wide range of temperatures [J].
Burton, Alan ;
Wu, Hongwei .
FUEL, 2016, 179 :103-107
[6]   Bed Agglomeration during the Drying of Mallee Leaf in Fluidized Bed [J].
Burton, Alan ;
Wu, Hongwei .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2016, 55 (06) :1796-1800
[7]   Quantification of Interactions between Sand and Pyrolyzing Biomass Particles in Fluidized-Bed under Fast Pyrolysis Conditions Pertinent to Bio-Oil Production [J].
Burton, Alan ;
Wu, Hongwei .
INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2015, 54 (32) :7990-7997
[8]   Differences in Bed Agglomeration Behavior during the Fast Pyrolysis of Mallee Bark, Leaf, and Wood in a Fluidized-Bed Reactor at 500 °C [J].
Burton, Alan ;
Wu, Hongwei .
ENERGY & FUELS, 2015, 29 (06) :3753-3759
[9]   Mechanistic Investigation into Bed Agglomeration during Biomass Fast Pyrolysis in a Fluidized-Bed Reactor [J].
Burton, Alan ;
Wu, Hongwei .
ENERGY & FUELS, 2012, 26 (11) :6979-6987
[10]   Biomass feedstocks for renewable fuel production: a review of the impacts of feedstock and pretreatment on the yield and product distribution of fast pyrolysis bio-oils and vapors [J].
Carpenter, Daniel ;
Westover, Tyler L. ;
Czernik, Stefan ;
Jablonski, Whitney .
GREEN CHEMISTRY, 2014, 16 (02) :384-406