Aromatic chemicals from the catalytic pyrolysis of scrap tyres

被引:0
|
作者
机构
[1] Williams, Paul T.
[2] Brindle, Alexander J.
来源
Williams, P.T. (p.t.williams@leeds.ac.uk) | 1600年 / Elsevier卷 / 67期
基金
英国工程与自然科学研究理事会;
关键词
Aromatic compounds - Catalysis - Catalysts - Coke - Pore size - Pyrolysis;
D O I
暂无
中图分类号
学科分类号
摘要
Scrap tyres were pyrolysed in a fixed bed reactor and the evolved pyrolysis gases were passed through a secondary catalytic reactor. The main objective was to maximise the concentration of single ring aromatic compounds, which are of known higher commercial value. Three types of zeolite catalyst were examined of different surface acidity and pore size. The influence of catalyst to tyre ratio on the yield and composition of the derived oils was examined. The results showed that the influence of the catalyst was to reduce the yield of oil with a consequent increase in the gas yield. Coke formation on the catalyst amounted to approximately 4 wt.%. However, there was a dramatic increase in the concentration of certain single ring aromatic compounds in the derived oils after catalysis. For example, toluene reached a maximum value in the oil of 24 wt.%, benzene 5 wt.%, m/p-xylenes 20 wt.% and o-xylene 7 wt.%. The yield in terms of conversion of the mass of tyre to mass of individual chemical were 7.7 wt.% toluene, 1.4 wt.% benzene, 6.4 wt.% m/p-xylenes and 2.2 wt.% o-xylene, representing a very significant potential increase in the value of the derived oils. The yield of aromatic hydrocarbons in the derived oils were related to the different properties of the three catalysts such as pore size, which influenced selectivity, and the silica/alumina ratio which influenced the number of catalytically active sites on the catalyst surface. © 2002 Elsevier Science B.V. All Rights Reserved.
引用
下载
收藏
相关论文
共 50 条
  • [31] Synergistic effect of co-pyrolysis of tea seed shells and scrap tyres and product evaluation
    Ouyang, Shaobo
    Zhu, Cong
    Xia, Yong
    Yang, Yu
    Zhang, Caixia
    Tsang, Chi-Wing
    Xiong, Daolin
    Li, Liqing
    Yang, Kai
    BIOMASS CONVERSION AND BIOREFINERY, 2022, 14 (22) : 28089 - 28104
  • [32] Catalytic Lignin Depolymerization to Aromatic Chemicals
    Zhang, Chaofeng
    Wang, Feng
    ACCOUNTS OF CHEMICAL RESEARCH, 2020, 53 (02) : 470 - 484
  • [33] Scrap tyres used to filter wastewater
    不详
    FILTRATION + SEPARATION, 2007, 44 (01) : 12 - 12
  • [34] Gasification of the char derived from distillation of granulated scrap tyres
    Lopez, Felix A.
    Centeno, Teresa A.
    Jose Alguacil, Francisco
    Lobato, Belen
    Lopez-Delgado, Aurora
    Fermoso, Javier
    WASTE MANAGEMENT, 2012, 32 (04) : 743 - 752
  • [35] Analysis of Carbon Black from Tyres Pyrolysis
    Budzyn, Stanislaw
    Tora, Barbara
    INZYNIERIA MINERALNA-JOURNAL OF THE POLISH MINERAL ENGINEERING SOCIETY, 2015, (02): : 149 - 154
  • [36] Controlling the selectivity to chemicals from lignin via catalytic fast pyrolysis
    Ma, Zhiqiang
    Troussard, Ekaterina
    van Bokhoven, Jeroen A.
    APPLIED CATALYSIS A-GENERAL, 2012, 423 : 130 - 136
  • [37] Production of high grade fuels and chemicals from catalytic pyrolysis of biomass
    Bridgwater, AV
    CATALYSIS TODAY, 1996, 29 (1-4) : 285 - 295
  • [38] US controversy over scrap tyres
    Blumenthal, M.
    World Cement, 1997, 28 (12):
  • [39] Emissions from Pyrolysis of Tyres and Municipal Waste
    Lapcik, Vladimir
    Nimracek, Toms
    INZYNIERIA MINERALNA-JOURNAL OF THE POLISH MINERAL ENGINEERING SOCIETY, 2015, (02): : 177 - 182
  • [40] Production of light aromatic hydrocarbons from biomass by catalytic pyrolysis
    Wang, Chang
    Hao, Qinglan
    Lu, Dingqiang
    Jia, Qingzhu
    Li, Guiju
    Xu, Bo
    Cuihua Xuebao / Chinese Journal of Catalysis, 2008, 29 (09): : 907 - 912