Synthesis of liquid biofuels from biomass by hydrothermal gasification: A critical review

Liquid transportation biofuel production is a promising strategy to reduce greenhouse gas emissions. Hydrothermal gasification (HTG) has shown great potential as an effective method for valorizing wet biomass. The high-quality syngas produced using the HTG process can be chemically/biochemically converted to liquid biofuels. Therefore, this paper aims to comprehensively review and critically discuss syngas production from biomass using the HTG process and its conversion into liquid biofuels. The basics and mechanisms of biomass HTG processing are first detailed to provide a comprehensive and deep understanding of the process. Second, the effects of the main operating parameters on the performance of the HTG process are numerically analyzed and mechanistically discussed. The syngas cleaning/conditioning and Fischer-Tropsch (FT) synthesis are then detailed, aiming to produce liquid biofuels. The economic performance and environmental impacts of liquid biofuels using the HTG-FT route are evaluated. Finally, the challenges and prospects for future development in this field are presented. Overall, the maximum total gas yield in the HTG process is obtained at temperature, pressure, and residence time in the range of 450–500 °C, 28–30 MPa, and 30–60 min, respectively. The highest C5+ liquid hydrocarbon selectivity in the FT process is achieved at temperatures between 200 and 240 °C. Generally, effective conversion of biomass to syngas using the HTG process and its successful upgrading using the FT process can offer a viable route for producing liquid biofuels. Future studies should use HTG technology in the biorefinery context to maximize biomass valorization and minimize waste generation. © 2022 Elsevier Ltd

Авторы
Shahbeik H. , Peng W. , Kazemi Shariat Panahi H. , Dehhaghi M. , Guillemin G.J. , Fallahi A. , Amiri H. , Rehan M. , Raikwar D. , Latine H. , Pandalone B. , Khoshnevisan B. , Sonne C. , Vaccaro L. , Nizami A.-S. , Gupta V.K. , Lam S.S. , Pan J. , Luque R. , Sels B. , Tabatabaei M. , Aghbashlo M.
Издательство
Elsevier Ltd
Язык
Английский
Статус
Опубликовано
Номер
112833
Том
167
Год
2022
Организации
  • 1 Henan Province Engineering Research Center for Forest Biomass Value-added Products, School of Forestry, Henan Agricultural University, Zhengzhou, 450002, China
  • 2 Faculty of Medicine and Health Sciences, Macquarie University, NSW, Australia
  • 3 Department of Mechanical Engineering of Agricultural Machinery, Faculty of Agricultural Engineering and Technology, College of Agriculture and Natural Resources, University of Tehran, Karaj, Iran
  • 4 Department of Biotechnology, Faculty of Biological Science and Technology, University of Isfahan, 81746-73441, Isfahan, Iran
  • 5 Center of Excellence in Environmental Studies (CEES), King Abdulaziz University, Jeddah, Saudi Arabia
  • 6 Center for Sustainable Catalyis and Engineering, KU Leuven, Celestijnenlaan 200F, Heverlee, 3001, Belgium
  • 7 Department of Chemical Engineering, Biotechnology and Environmental Technology, University of Southern Denmark, Denmark
  • 8 Aarhus University, Department of Bioscience, Arctic Research Centre (ARC), Frederiksborgvej 399, Roskilde, PO Box 358, Denmark
  • 9 Laboratory of Green S. O. C., Dipartimento di Chimica, Università di Perugia ViaElce di Sotto, 8, Biologia e Biotecnologie, Perugia, 06123, Italy
  • 10 Sustainable Development Study Centre, Government College University, Lahore, Pakistan
  • 11 Centre for Safe and Improved Food, Scotland's Rural College (SRUC), Kings Buildings, West Mains Road, Edinburgh, EH9 3JG, United Kingdom
  • 12 Biorefining and Advanced Materials Research Center, Scotland's Rural College (SRUC), Kings, Buildings, West Mains Road, Edinburgh, EH9 3JG, United Kingdom
  • 13 Higher Institution Centre of Excellence (HICoE), Institute of Tropical Aquaculture and Fisheries (AKUATROP), Universiti Malaysia Terengganu, 21030 Kuala Nerus, Terengganu, Malaysia
  • 14 Institute of Agricultural Resources and Regional Planning, Chinese Academy of Agricultural Sciences, Beijing, 100081, China
  • 15 Departmento de Quimica Organica, Facultad de Ciencias, Universidad de Cordoba, Campus de Rabanales, Cordoba, Spain
  • 16 Peoples Friendship University of Russia (RUDN University), 6 Miklukho-Maklaya str., Moscow, 117198, Russian Federation
  • 17 Biofuel Research Team (BRTeam), Terengganu, Malaysia
Ключевые слова
Catalyst; Fischer-tropsch synthesis; Hydrothermal gasification; Liquid biofuels; Supercritical water; Syngas
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