Investigation of gasification reactivity and properties of biocarbon at high temperature in a mixture of CO/CO2

被引:1
作者
Wang, Liang [1 ]
Skreiberg, Oyvind [1 ]
Smith-Hanssen, Nicholas [2 ]
Jayakumari, Sethulakshmy [2 ]
Rorvik, Stein [2 ]
Jahrsengene, Goril [2 ]
Turn, Scott [3 ]
机构
[1] SINTEF Energy Res, POB 4761 Torgarden, NO-7465 Trondheim, Norway
[2] SINTEF Ind, Richard Birkelands vei 3, NO-7034 Trondheim, Norway
[3] Univ Hawaii Manoa, Hawaii Nat Energy Inst, Sch Ocean & Earth Sci & Technol, Honolulu, HI 96822 USA
关键词
CHARCOAL PRODUCTION; MINERAL MATTER; BLAST-FURNACE; BIOMASS; COKE; PYROLYSIS; CARBONIZATION; COMBUSTION; PRESSURE; RATES;
D O I
10.1016/j.fuel.2023.128233
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
Understanding the conversion behaviors of biocarbon under conditions relevant to industrial conditions is important to ensure proper and efficient utilization of the biocarbon for a dedicated metallurgical process. The present work studied the reactivity of biocarbon by using a Macro-TGA at 1100 degrees C in a gas mixture of CO2 and CO to simulate the conditions in an industrial closed submerged arc manganese alloy furnace. The conversion residues from the Macro-TGA tests were collected for detailed characterization through a combination of different analytical techniques. Results showed that biocarbons produced under various conditions have different reactivities under the studied conditions. The biocarbon produced in an atmospheric fixed bed reactor with continuous purging of N2 has the highest reactivity. Its fixed carbon loss started as the gas atmosphere shifted from the inert Ar to a mixture of CO and CO2 at 1100 degrees C. And only 450 s was needed to reach a desired fixed -carbon loss of 20%. The high reactivity of the biocarbon is mainly related to its porous structure and high content of catalytic inorganic elements, which favor gasification reactions of the carbon matrix towards the surrounding gas atmosphere and consumption of carbon consequently. In contrast, biocarbon produced under constrained conditions and from wood pellets and steam exploded pellets have more compact appearance and dense structures. Significant fixed carbon loss for these biocarbons started 80-200 s later than that of the biocarbon produced at atmospheric conditions with purging of N2. Additionally, it took longer time, 557-1167 s, for these biocarbons to realize the desired fixed-carbon loss. SEM-EDX analyses results revealed clear accumulation and aggregation of inorganic elements, mainly Ca, on the external surface of the residues from gasification of biocarbon produced in the fixed bed reactor with purging of N2. It indicates more intensive migration and transformation of inorganic elements during gasification at this condition. This resulted in formation of a carbon matrix with more porous structure and active sites on the carbon surface, promoting the Boudouard reaction and conversion of carbon.
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页数:17
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  • [1] Steam Explosion Pre-Treatment of Sawdust for Biofuel Pellets
    Alizadeh, Peyman
    Dumonceaux, Tim
    Tabil, Lope G. G.
    Mupondwa, Edmund
    Soleimani, Majid
    Cree, Duncan
    [J]. CLEAN TECHNOLOGIES, 2022, 4 (04): : 1175 - 1192
  • [2] Production of Bio-Coke from spent mushroom substrate for a sustainable solid fuel
    Baharin, Nur Syahirah Kamal
    Koesoemadinata, Vidya Cundasari
    Nakamura, Shunsuke
    Azman, Nadia Farhana
    Yuzir, Muhamad Ali Muhammad
    Akhir, Fazrena Nadia
    Iwamoto, Koji
    Yahya, Wira Jazair
    Othman, Nor'azizi
    Ida, Tamio
    Hara, Hirofumi
    [J]. BIOMASS CONVERSION AND BIOREFINERY, 2022, 12 (09) : 4095 - 4104
  • [3] Comparative study on the thermal behavior of untreated and various torrefied bark, stem wood, and stump of Norway spruce
    Barta-Rajnai, E.
    Wang, L.
    Sebestyen, Z.
    Barta, Z.
    Khalil, R.
    Skreiberg, O.
    Gronli, M.
    Jakab, E.
    Czegeny, Z.
    [J]. APPLIED ENERGY, 2017, 204 : 1043 - 1054
  • [4] GC/MS characterization of liquids generated from low-temperature pyrolysis of wood
    Branca, C
    Giudicianni, P
    Di Blasi, C
    [J]. INDUSTRIAL & ENGINEERING CHEMISTRY RESEARCH, 2003, 42 (14) : 3190 - 3202
  • [5] Insight into biomass pyrolysis mechanism based on cellulose, hemicellulose, and lignin: Evolution of volatiles and kinetics, elucidation of reaction pathways, and characterization of gas, biochar and bio-oil
    Chen, Dengyu
    Cen, Kehui
    Zhuang, Xiaozhuang
    Gan, Ziyu
    Zhou, Jianbin
    Zhang, Yimeng
    Zhang, Hong
    [J]. COMBUSTION AND FLAME, 2022, 242
  • [6] Degradation of Structure and Properties of Coke in Blast Furnace: Effect of High-Temperature Heat Treatment
    Chen, Jingbo
    Ren, Wei
    Guo, Yan
    Zhang, Shengfu
    [J]. CHARACTERIZATION OF MINERALS, METALS, AND MATERIALS 2022, 2022, : 163 - 175
  • [7] A state-of-the-art review of biomass torrefaction, densification and applications
    Chen, Wei-Hsin
    Peng, Jianghong
    Bi, Xiaotao T.
    [J]. RENEWABLE & SUSTAINABLE ENERGY REVIEWS, 2015, 44 : 847 - 866
  • [8] Combustion and gasification rates of lignocellulosic chars
    Di Blasi, Colomba
    [J]. PROGRESS IN ENERGY AND COMBUSTION SCIENCE, 2009, 35 (02) : 121 - 140
  • [9] Alkali transformation during single pellet combustion of soft wood and wheat straw
    Fagerstrom, Jonathan
    Steinvall, Erik
    Bostrom, Dan
    Boman, Christoffer
    [J]. FUEL PROCESSING TECHNOLOGY, 2016, 143 : 204 - 212
  • [10] Variation of the pore structure of coal chars during gasification
    Feng, B
    Bhatia, SK
    [J]. CARBON, 2003, 41 (03) : 507 - 523