Mechanisms of thermochemical biomass conversion processes. Part 1: Reactions of pyrolysis

被引:149
|
作者
Balat, M. [1 ]
机构
[1] Univ Mah, Trabzon, Turkey
关键词
kinetic parameters for pyrolysis; mechanisms of pyrolysis; pyrolysis of biomass;
D O I
10.1080/15567030600817258
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
The present work is a study on the pyrolysis mechanisms of biomass structural constituents. Biomass resources include wood and wood wastes, agricultural crops and their waste byproducts, municipal solid waste, animal wastes, waste from food processing, and aquatic plants and algae. The major organic components of biomass can be classified as cellulose, hemicelluloses, and lignin. The pyrolysis is thermal degradation of biomass by heat in the absence of oxygen, which results in the production of charcoal (solid), bio-oil (liquid), and fuel gas products. Thermal degradation of cellulose proceeds through two types of reaction: a gradual degradation, decomposition, and charring on heating at lower temperatures; and a rapid volatilization accompanied by the formation of levoglucosan on pyrolysis at higher temperatures. The hemicelluloses reacted more readily than cellulose during heating. Of the hemicelluloses, xylan is the least thermally stable, because pentosans are most susceptible to hydrolysis and dehydration reactions. Dehydration reactions around 473 K are primarily responsible for thermal degradation of lignin. Between 423 K and 573 K, cleavage of alpha- and beta-aryl-alkyl-ether linkages occurs. Around 573 K, aliphatic side chains start splitting off from the aromatic ring.
引用
收藏
页码:620 / 635
页数:16
相关论文
共 50 条
  • [21] Thermochemical conversion of Datura stramonium L. by supercritical liquefaction and pyrolysis processes
    Aysu, Tevfik
    Durak, Halil
    JOURNAL OF SUPERCRITICAL FLUIDS, 2015, 102 : 98 - 114
  • [22] Thermochemical conversion of raw and defatted algal biomass via hydrothermal liquefaction and slow pyrolysis
    Vardon, Derek R.
    Sharma, Brajendra K.
    Blazina, Grant V.
    Rajagopalan, Kishore
    Strathmann, Timothy J.
    BIORESOURCE TECHNOLOGY, 2012, 109 : 178 - 187
  • [23] Applications of catalysts in thermochemical conversion of biomass (pyrolysis, hydrothermal liquefaction and gasification): A critical review
    Wu, Yujian
    Wang, Haoyu
    Li, Haoyang
    Han, Xue
    Zhang, Mingyuan
    Sun, Yan
    Fan, Xudong
    Tu, Ren
    Zeng, Yimin
    Xu, Chunbao Charles
    Xu, Xiwei
    RENEWABLE ENERGY, 2022, 196 : 462 - 481
  • [24] Pyrolysis Kinetics Study of Three Biomass Solid Wastes for Thermochemical Conversion into Liquid Fuels
    Tuly, S. S.
    Parveen, M.
    Islam, M. R.
    Rahman, M. S.
    Haniu, H.
    7TH BSME INTERNATIONAL CONFERENCE ON THERMAL ENGINEERING (ICTE), 2017, 1851
  • [25] Thermochemical conversion of Phellinus pomaceus via supercritical fluid extraction and pyrolysis processes
    Durak, Halil
    ENERGY CONVERSION AND MANAGEMENT, 2015, 99 : 282 - 298
  • [26] Biomass valorization by using a sequence of acid hydrolysis and pyrolysis processes. Application to Leucaena leucocephala
    Loaiza, J. M.
    Lopez, F.
    Garcia, M. T.
    Garcia, J. C.
    Diaz, M. J.
    FUEL, 2017, 203 : 393 - 402
  • [27] Modeling of Fast Reaction Mechanisms for Biomass Conversion Processes
    Roman, Monica
    Selisteanu, Dan
    COMBUSTION SCIENCE AND TECHNOLOGY, 2016, 188 (02) : 290 - 305
  • [28] Fe catalysis for lignocellulosic biomass conversion to fuels and materials via thermochemical processes
    Skoulou, V.
    Zabaniotou, A.
    CATALYSIS TODAY, 2012, 196 (01) : 56 - 66
  • [29] Special Issue: Biochemical and Thermochemical Conversion Processes of Lignocellulosic Biomass Fractionated Streams
    Trubetskaya, Anna
    Matsakas, Leonidas
    PROCESSES, 2021, 9 (06)
  • [30] Comparison of thermochemical conversion processes of biomass to hydrogen-rich gas mixtures
    Demirbas, Ayhan
    ENERGY SOURCES PART A-RECOVERY UTILIZATION AND ENVIRONMENTAL EFFECTS, 2016, 38 (20) : 2971 - 2976