Insights into the temperature dependence of reaction pathways in hydrogen production from model biomass via NaOH thermal treatment

被引:3
|
作者
Liu, Guojie [1 ,2 ]
Lu, Houfang [1 ,2 ,4 ]
Zeng, Jianli [3 ]
Gong, Xingyu [1 ,2 ]
Wu, Kejing [2 ,4 ]
Du, Zexue [3 ]
Liang, Bin [1 ,4 ]
机构
[1] Sichuan Univ, Sch Chem Engn, Chengdu 610065, Peoples R China
[2] Sichuan Univ, Engn Res Ctr Alternat Energy Mat & Devices, Minist Educ, Chengdu 610065, Peoples R China
[3] SINOPEC, Res Inst Petr Proc, State Key Lab Catalyt Mat & React Engn, Beijing 100083, Peoples R China
[4] Sichuan Univ, Inst New Energy & Low Carbon Technol, Chengdu 610207, Peoples R China
基金
中国国家自然科学基金;
关键词
Biomass; Hydrogen production; Temperature dependence; NaOH thermal treatment; Reaction pathways; ALKALINE PYROLYSIS; KINETICS; H-2; GASIFICATION; CONVERSION; GAS;
D O I
10.1016/j.indcrop.2023.117948
中图分类号
S2 [农业工程];
学科分类号
0828 ;
摘要
Alkali thermal treatment (ATT) of biomass integrates high-quality H2 production and in-situ carbon storage. Herein, the dominant reactions at different temperatures and the critical roles of NaOH in the formation of H2 and CH4 during ATT were revealed for the first time. NaOH promotes the conversion of carbon from glucose into both solid and gas phases. H2 is primarily derived from NaOH-promoted dehydrogenation of glucose and the alkalinization of active char with NaOH near 300 degrees C. The alkalinization of graphitized char above 400 degrees C contributes to H2 production in the second stage. Meanwhile, CH4 is produced via NaOH-promoted methanation of active char near 330 degrees C. The optimized formula considering actual H2 and CH4 production indicates the NaOH: glucose stoichiometric ratio of 9:1 and H2:CH4 volume ratio of 4:1. A reaction pathway for ATT of glucose is developed to elucidate component distributions in the gas, liquid, and solid phases. The Sankey diagram of energy flow demonstrates an energy recovery of 80.48% for H2 and CH4. Especially, the recovery of NaOH by causticizing reaction can reach 98.28%. This study will contribute to establishing methods aimed at essentially improving the purity and yield of H2 production, thus accelerating the practical application of actual biomass in ATT technology.
引用
收藏
页数:10
相关论文
共 50 条
  • [11] Hydrogen Production from Biomass via Supercritical Water Gasification
    Demirbas, A.
    ENERGY SOURCES PART A-RECOVERY UTILIZATION AND ENVIRONMENTAL EFFECTS, 2010, 32 (14) : 1342 - 1354
  • [12] Hydrogen production from algal biomass via steam gasification
    Duman, Gozde
    Uddin, Md Azhar
    Yanik, Jale
    BIORESOURCE TECHNOLOGY, 2014, 166 : 24 - 30
  • [13] Hydrogen from biomass via pyrolysis: Relationships between yield of hydrogen and temperature
    Demirbas, A
    Arin, G
    ENERGY SOURCES, 2004, 26 (11): : 1061 - 1069
  • [14] Temperature-Programmed Alkaline Thermal Treatment of Lignocellulosic Biomass to Produce Fractionated Hydrogen with High Production Capacity
    Liu, Guojie
    Lu, Houfang
    Gong, Xingyu
    Wu, Kejing
    Guan, Guoqing
    Liang, Bin
    ACS SUSTAINABLE CHEMISTRY & ENGINEERING, 2024, 12 (27): : 10198 - 10208
  • [15] Biofuel and hydrogen production from biomass gasification by use of thermal plasma
    Brothier, M.
    Gramondi, P.
    Poletiko, C.
    Michon, U.
    Labrot, M.
    Hacala, A.
    HIGH TEMPERATURE MATERIAL PROCESSES, 2007, 11 (02): : 231 - 243
  • [16] Non-thermal production of pure hydrogen from biomass: HYVOLUTION
    Claassen, Pieternel A. M.
    de Vrije, Truus
    Koukios, Emmanuel
    van Niel, Ed
    Eroglu, Inci
    Modigell, Michael
    Friedl, Anton
    Wukovits, Walter
    Ahrer, Werner
    JOURNAL OF CLEANER PRODUCTION, 2010, 18 : S4 - S8
  • [17] Non-thermal production of pure hydrogen from biomass: HYVOLUTION
    Claassen, Pietemel A. M.
    de Vrije, T.
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2006, 31 (11) : 1416 - 1423
  • [18] Non-thermal production of pure hydrogen from biomass: HYVOLUTION
    Claassen, Pieternel A. M.
    de Vrije, Truus
    Urbaniec, Krzysztof
    PRES'09: 12TH INTERNATIONAL CONFERENCE ON PROCESS INTEGRATION, MODELLING AND OPTIMISATION FOR ENERGY SAVING AND POLLUTION REDUCTION, PTS 1 AND 2, 2009, 18 : 333 - +
  • [19] Production of methanol and hydrogen from biomass via advanced conversion concepts
    Faaij, A
    Larson, E
    Kreutz, T
    Hamelinck, C
    BIOMASS: A GROWTH OPPORTUNITY IN GREEN ENERGY AND VALUE-ADDED PRODUCTS, VOLS 1 AND 2, 1999, : 803 - 804
  • [20] Hydrogen production from biomass via an iron oxide thermochemical cycle
    Self, S. J.
    Reddy, B. V.
    Rosen, M. A.
    BIOFUELS-UK, 2017, 8 (06): : 709 - 716