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Exergy sustainability analysis of biomass gasification: a critical review

Journal

BIOFUEL RESEARCH JOURNAL-BRJ
Volume 9, Issue 1, Pages 1592-1607

Publisher

GREEN WAVE PUBL CANADA
DOI: 10.18331/BRJ2022.9.1.5

Keywords

Biomass; Gasification; Exergy; Sustainability; Syngas; Efficiency

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Biomass gasification technology has promising applications in producing stable gas for various purposes. The use of advanced sustainability metrics, such as exergy methods, is important for efficient and sustainable operations. This review critically examines the use of exergy methods in analyzing biomass gasification systems, including the research themes, influential factors, and limitations. The results indicate that carbon and hydrogen contents of biomass, gasifying agents, and reactor types have significant effects on the exergy efficiency of the process.
Biomass gasification technology is a promising process to produce a stable gas with a wide range of applications, from direct use to the synthesis of value-added biochemicals and biofuels. Due to the high capital/operating costs of the technology and the necessity for prudent management of thermal energy exchanges in the biomass gasification process, it is important to use advanced sustainability metrics to ensure that environmental and other sustainability factors are addressed beneficially. Consequently, various engineering techniques are being used to make decisions on endogenous and exogenous parameters of biomass gasification processes to find the most efficient, viable, and sustainable operations and conditions. Among available approaches, exergy methods have attracted much attention due to their scientific rigor in accounting for the performance, cost, and environmental impact of biomass gasification systems. Therefore, this review is devoted to critically reviewing and numerically scrutinizing the use of exergy methods in analyzing biomass gasification systems. First, a bibliometric analysis is conducted to systematically identify research themes and trends in exergy-based sustainability assessments of biomass gasification systems. Then, the effects of biomass composition, reactor type, gasifying agent, and operating parameters on the exergy efficiency of the process are thoroughly investigated and mechanistically discussed. Unlike oxygen, nitrogen, and ash contents of biomass, the exergy efficiency of the gasification process is positively correlated with the carbon and hydrogen contents of biomass. A mixed gasifying medium (CO2 and steam) provides higher exergy efficiency values. The downdraft fixed-bed gasifier exhibits the highest exergy efficiency among biomass gasification systems. Finally, opportunities and limitations of exergy methods for analyzing sustainability aspects of biomass gasification systems are outlined to guide future research in this domain. (C) 2022 BRTeam. All rights reserved.

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