Lignin conversion to high-octane fuel additives

被引:0
|
作者
Shabtai, J [1 ]
Zmierczak, W [1 ]
Kadangode, S [1 ]
Chornet, E [1 ]
Johnson, DK [1 ]
机构
[1] Univ Utah, Dept Chem & Fuels Engn, Salt Lake City, UT 84112 USA
关键词
D O I
暂无
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
Continuing previous studies on the conversion of lignin to reformulated gasoline compositions, new lignin upgrading processes were developed that allow preferential production of specific high-octane fuel additives of two distinct types: (1) C-7-C-10 alkylbenzenes; and (2) aryl methyl ethers, where aryl mostly = phenyl, 2-methylphenyl, 4-methylphenyl, and dimethylphenyl. Process (1) comprises base-catalyzed depolymerization (BCD) and simultaneous partial (similar to 50%) deoxygenation of lignin at 270 - 290 degrees C, in the presence of supercritical methanol as reaction medium, followed by exhaustive hydrodeoxygenation and attendant mild hydrocracking of the BCD product with sulfided catalysts to yield C-7-C-10 alkylbenzenes as main products. Process (2) involves mild BCD at 250 - 270 degrees C with preservation of the lignin oxygen, followed by selective C-C hydrocracking with solid superacid catalysts. This method preferentially yields a mixture of alkylated phenols, which upon acid-catalyzed etherification with methanol are converted into corresponding aryl methyl ethers (see above) possessing blending octane numbers in the range of 142 - 166. In a recent extension of this work, a greatly advantageous procedure for performing the BCD stage of processes (1) and (2) in water as reaction medium was developed.
引用
收藏
页码:811 / 818
页数:8
相关论文
共 50 条
  • [21] High-octane safety on a low-octane budget
    Rich, PJ
    JOURNAL OF MANAGEMENT IN ENGINEERING, 1996, 12 (05) : 9 - 10
  • [22] Production of High-Octane Fuel Components by Dehydroalkylation of Benzene with Mixtures of Ethane and Propane
    Hussin, Dennis Wan
    Traa, Yvonne
    ENERGY & FUELS, 2014, 28 (05) : 3352 - 3356
  • [23] Blending education for high-octane motivation
    Patterson, Gregory A.
    Horn, Michael
    PHI DELTA KAPPAN, 2012, 94 (02) : 14 - 18
  • [24] New technology for high-octane gasoline
    不详
    HYDROCARBON PROCESSING, 2000, 79 (03): : 30 - +
  • [25] Preparation of high-octane oxygenate fuel components from plant-derived polyols
    A. L. Maksimov
    A. I. Nekhaev
    D. N. Ramazanov
    Yu. A. Arinicheva
    A. A. Dzyubenko
    S. N. Khadzhiev
    Petroleum Chemistry, 2011, 51 : 61 - 69
  • [26] Preparation of High-Octane Oxygenate Fuel Components from Plant-Derived Polyols
    Maksimov, A. L.
    Nekhaev, A. I.
    Ramazanov, D. N.
    Arinicheva, Yu. A.
    Dzyubenko, A. A.
    Khadzhiev, S. N.
    PETROLEUM CHEMISTRY, 2011, 51 (01) : 61 - 69
  • [27] Bioethanol Conversion into High-Octane Components of Motor Fuel in the Presence of Cobalt-Containing HZSM-5 Type Zeolites
    Mamedov, E. S.
    Babayeva, B. A.
    Akhmedova, N. F.
    Mamedov, S. E.
    CHEMISTRY FOR SUSTAINABLE DEVELOPMENT, 2023, 31 (03): : 302 - 308
  • [28] Catalyst design to direct high-octane gasoline fuel properties for improved engine efficiency
    Nash, Connor P.
    Dupuis, Daniel P.
    Kumar, Anurag
    Farberow, Carrie A.
    To, Anh T.
    Yang, Ce
    Wegener, Evan C.
    Miller, Jeffrey T.
    Unocic, Kinga A.
    Christensen, Earl
    Hensley, Jesse E.
    Schaidle, Joshua A.
    Habas, Susan E.
    Ruddy, Daniel A.
    APPLIED CATALYSIS B-ENVIRONMENT AND ENERGY, 2022, 301
  • [29] Preparing High-Octane Motor Fuel Components via the Oxidation of an Industrial Isobutane Fraction
    D. P. Ivanov
    A. S. Kharitonov
    L. V. Pirutko
    M. V. Parfenov
    K. A. Dubkov
    D. E. Babushkin
    Catalysis in Industry, 2019, 11 : 313 - 322
  • [30] 'New high-octane biofuel' could improve fuel ratings and reduce carbon footprint
    Cozier, Muriel
    BIOFUELS BIOPRODUCTS & BIOREFINING-BIOFPR, 2018, 12 (04): : 519 - 519