Stand-alone and biorefinery pathways to produce hydrogen through gasification and dark fermentation using Pinus Patula

被引:44
作者
Garcia, Carlos A. [1 ]
Betancourt, Ramiro [1 ]
Cardona, Carlos A. [1 ]
机构
[1] Univ Nacl Colombia, Dept Ingn Quim, Inst Biotecnol & Agroind, Cra 27 64-60, Manizales, Colombia
关键词
Hydrogen; Pinus Patula; Bioenergy; Sustainability; CHEMICAL LOOPING GASIFICATION; ENRICHED GAS-PRODUCTION; STEAM GASIFICATION; BIOMASS GASIFICATION; DOWNDRAFT GASIFIER; PROCESS PARAMETERS; ETHANOL-PRODUCTION; AIR; SUGARCANE; DESIGN;
D O I
10.1016/j.jenvman.2016.04.001
中图分类号
X [环境科学、安全科学];
学科分类号
08 ; 0830 ;
摘要
New efforts in the search of alternative clean and renewable energy to replace the current energy precursors have been assessed in order to reduce emissions to the environment. Lignocellulosic Biomass (LB) can be used to produce bioenergy due to its high energy potential and availability. Different ways are proposed for the transformation of these residues into high added-value products. Thermochemical and biochemical technologies are the most interest concepts focusing on the use of biomass as source for energy production at positive net balances. This study presents the techno-economic, energy and environmental assessment of five scenarios for the hydrogen production through gasification and dark fermentation based on the biorefinery and stand-alone concepts. The results demonstrated that the production of hydrogen based on the concept of a biorefinery can improve the profitability, energy efficiency and reduce the emissions of the processes compared to that based on the stand-alone way. The selection of ethanol and electricity as valuable co-products of the biorefinery in the hydrogen production process confirmed that the process scale and products diversity makes possible a flexible and suitable process to produce hydrogen and other energy carriers from Pinus Patula. (C) 2016 Elsevier Ltd. All rights reserved.
引用
收藏
页码:695 / 703
页数:9
相关论文
共 35 条
  • [1] [Anonymous], 2014, PIL TEST GBEP SUST I
  • [2] Asocana, 2014, GEN ASP SUG SECT 201
  • [3] Integration of biohydrogen fermentation and gas separation processes to recover and enrich hydrogen
    Belafi-Bako, K.
    Bucsu, D.
    Pientka, Z.
    Balint, B.
    Herbel, Z.
    Kovacs, K. L.
    Wessling, M.
    [J]. INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2006, 31 (11) : 1490 - 1495
  • [4] Cardona Alzate Carlos Ariel, 2004, Revista Colombiana de Biotecnologia, V6, P78
  • [5] Four Zones Modeling of the Downdraft Biomass Gasification Process: Effects of moisture content and air to fuel ratio
    Dejtrakulwong, C.
    Patumsawad, S.
    [J]. 2013 INTERNATIONAL CONFERENCE ON ALTERNATIVE ENERGY IN DEVELOPING COUNTRIES AND EMERGING ECONOMIES (2013 AEDCEE), 2014, 52 : 142 - 149
  • [6] Recent progresses in polymeric hollow fiber membrane preparation, characterization and applications
    Feng, C. Y.
    Khulbe, K. C.
    Matsuura, T.
    Ismail, A. F.
    [J]. SEPARATION AND PURIFICATION TECHNOLOGY, 2013, 111 : 43 - 71
  • [7] A review on dark fermentative biohydrogen production from organic biomass: Process parameters and use of by-products
    Ghimire, Anish
    Frunzo, Luigi
    Pirozzi, Francesco
    Trably, Eric
    Escudie, Renaud
    Lens, Piet N. L.
    Esposito, Giovanni
    [J]. APPLIED ENERGY, 2015, 144 : 73 - 95
  • [8] Kinetic modeling of reduction zone in biomass gasification
    Hameed, Samreen
    Ramzan, Naveed
    Rahman, Zaka-ur
    Zafar, Muhammad
    Riaz, Sheema
    [J]. ENERGY CONVERSION AND MANAGEMENT, 2014, 78 : 367 - 373
  • [9] Kerry F, 2006, GAS SEPARATION PURIF
  • [10] Mathematical modelling of ethanol production from glucose/xylose mixtures by recombinant Zymomonas mobilis
    Leksawasdi, N
    Joachimsthal, EL
    Rogers, PL
    [J]. BIOTECHNOLOGY LETTERS, 2001, 23 (13) : 1087 - 1093