Energy balance and greenhouse gas emissions from the production and sequestration of charcoal from agricultural residues

被引:19
|
作者
Thakkar, Jignesh [1 ]
Kumar, Amit [1 ]
Ghatora, Sonia [1 ]
Canter, Christina [1 ]
机构
[1] Univ Alberta, Donadeo Innovat Ctr Engn 10 263, Edmonton, AB T6G 1H9, Canada
关键词
Greenhouse gas emissions; Charcoal production; Net energy ratio; Life cycle assessment; Lignocellulosic biomass; PYROLYSIS BIOCHAR SYSTEMS; SOIL; CARBON; BIOENERGY; COST;
D O I
10.1016/j.renene.2016.03.087
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
Agricultural residues (wheat/barley/oat straw) can be used to produce charcoal, which can then be either landfilled off-site or spread on the agricultural field as a means for sequestering carbon. One centralized and five portable charcoal production technologies were explored in this paper. The centralized system produced 747.95 kg-CO(2)eq/tonne-straw and sequestered 0.204 t-C/t-straw. The portable systems sequestered carbon at 0.141-0.217 t-C/t-straw. The net energy ratio (NER) of the portable systems was higher than the centralized one at 10.29-16.26 compared to 6.04. For the centralized system, the carbon sequestration and the cumulative energy demand were most sensitive to the charcoal yield. Converting straw residues into charcoal can reduce GHG emissions by 80% after approximately 8.5 years relative to the baseline of in-field decomposition, showing these systems are effective carbon sequestration methods. (C) 2016 Elsevier Ltd. All rights reserved.
引用
下载
收藏
页码:558 / 567
页数:10
相关论文
共 50 条
  • [31] Soil organic carbon sequestration and agricultural greenhouse gas emissions in the southeastern USA
    Franzluebbers, AJ
    SOIL & TILLAGE RESEARCH, 2005, 83 (01): : 120 - 147
  • [32] Determining national greenhouse gas emissions from waste-to-energy using the Balance Method
    Schwarzboeck, Therese
    Rechberger, Helmut
    Cencic, Oliver
    Fellner, Johann
    WASTE MANAGEMENT, 2016, 49 : 263 - 271
  • [33] Energy Intensity and Greenhouse Gas Emissions from Tight Oil Production in the Bakken Formation
    Brandt, Adam R.
    Yeskoo, Tim
    McNally, Michael S.
    Vafi, Kourosh
    Yeh, Sonia
    Cai, Hao
    Wang, Michael Q.
    ENERGY & FUELS, 2016, 30 (11) : 9613 - 9621
  • [34] Greenhouse gas emissions and energy balance of biodiesel production from microalgae cultivated in photobioreactors in Denmark: a life-cycle modeling
    Monari, Chiara
    Righi, Serena
    Olsen, Stig Irving
    JOURNAL OF CLEANER PRODUCTION, 2016, 112 : 4084 - 4092
  • [35] Energy Intensity and Greenhouse Gas Emissions from Oil Production in the Eagle Ford Shale
    Yeh, Sonia
    Ghandi, Abbas
    Scanlon, Bridget R.
    Brandt, Adam R.
    Cai, Hao
    Wang, Michael Q.
    Vafi, Kourosh
    Reedy, Robert C.
    ENERGY & FUELS, 2017, 31 (02) : 1440 - 1449
  • [36] Identifying key drivers of greenhouse gas emissions from biomass feedstocks for energy production
    Johnson, David R.
    Curtright, Aimee E.
    Willis, Henry H.
    ENVIRONMENTAL SCIENCE & POLICY, 2013, 33 : 109 - 119
  • [37] Assessment of energy biomass potential and greenhouse gas emissions from biogas production from perennial grasses
    Nekrosius, Arvydas
    Navickas, Kestutis
    Venslauskas, Kestutis
    Kadziuliene, Zydre
    Tilvikiene, Vita
    ZEMDIRBYSTE-AGRICULTURE, 2014, 101 (03) : 271 - 278
  • [38] A global study on decoupling greenhouse gas emissions from agricultural development
    Batoukhteh, Fereshteh
    Darzi-Naftchali, Abdullah
    ENVIRONMENT DEVELOPMENT AND SUSTAINABILITY, 2023, 26 (5) : 13159 - 13183
  • [39] Machine learning for predicting greenhouse gas emissions from agricultural soils
    Hamrani, Abderrachid
    Akbarzadeh, Abdolhamid
    Madramootoo, Chandra A.
    SCIENCE OF THE TOTAL ENVIRONMENT, 2020, 741
  • [40] Editorial: Greenhouse Gas Emissions Mitigation From Agricultural and Horticultural Systems
    Schwarz, Dietmar
    Harrison, Matthew Tom
    Katsoulas, Nikolaos
    FRONTIERS IN SUSTAINABLE FOOD SYSTEMS, 2022, 6