Materials, fuels, upgrading, economy, and life cycle assessment of the pyrolysis of algal and lignocellulosic biomass: a review

被引:0
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作者
Ahmed I. Osman
Mohamed Farghali
Ikko Ihara
Ahmed M. Elgarahy
Amir Ayyad
Neha Mehta
Kim Hoong Ng
Eman M. Abd El-Monaem
Abdelazeem S. Eltaweil
Mohamed Hosny
Seham M. Hamed
Samer Fawzy
Pow-Seng Yap
David W. Rooney
机构
[1] Queen’s University Belfast,School of Chemistry and Chemical Engineering
[2] Kobe University,Department of Agricultural Engineering and Socio
[3] Assiut University,Economics
[4] Egyptian Propylene and Polypropylene Company (EPPC),Department of Animal and Poultry Hygiene and Environmental Sanitation, Faculty of Veterinary Medicine
[5] Port Said University,Environmental Chemistry Division, Environmental Science Department, Faculty of Science
[6] Egyptian Methanex Methanol Company (EMethanex),Energy Systems and Policy Analysis Group, School of Chemical Engineering
[7] University of Birmingham,Department of Chemical Engineering
[8] Ming Chi University of Technology,Chemistry Department, Faculty of Science
[9] Alexandria University,Green Technology Group, Environmental Sciences Department, Faculty of Science
[10] Alexandria University,Department of Biology, College of Sciences
[11] Imam Mohammad Ibn Saud Islamic University,Soil Microbiology Department, Soils, Water and Environment Research Institute
[12] Agricultural Research Center,Department of Civil Engineering
[13] Xi’an Jiaotong-Liverpool University,undefined
来源
关键词
Biomass; Pyrolysis; Product distribution; Pyrolysis upgrading; Economic and life cycle assessment; Pyrolysis integration;
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学科分类号
摘要
Climate change issues are calling for advanced methods to produce materials and fuels in a carbon–neutral and circular way. For instance, biomass pyrolysis has been intensely investigated during the last years. Here we review the pyrolysis of algal and lignocellulosic biomass with focus on pyrolysis products and mechanisms, oil upgrading, combining pyrolysis and anaerobic digestion, economy, and life cycle assessment. Products include oil, gas, and biochar. Upgrading techniques comprise hot vapor filtration, solvent addition, emulsification, esterification and transesterification, hydrotreatment, steam reforming, and the use of supercritical fluids. We examined the economic viability in terms of profitability, internal rate of return, return on investment, carbon removal service, product pricing, and net present value. We also reviewed 20 recent studies of life cycle assessment. We found that the pyrolysis method highly influenced product yield, ranging from 9.07 to 40.59% for oil, from 10.1 to 41.25% for biochar, and from 11.93 to 28.16% for syngas. Feedstock type, pyrolytic temperature, heating rate, and reaction retention time were the main factors controlling the distribution of pyrolysis products. Pyrolysis mechanisms include bond breaking, cracking, polymerization and re-polymerization, and fragmentation. Biochar from residual forestry could sequester 2.74 tons of carbon dioxide equivalent per ton biochar when applied to the soil and has thus the potential to remove 0.2–2.75 gigatons of atmospheric carbon dioxide annually. The generation of biochar and bio-oil from the pyrolysis process is estimated to be economically feasible.
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页码:1419 / 1476
页数:57
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