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Review

Biomass Gasification as a Scalable, Green Route to Combined Heat and Power (CHP) and Synthesis Gas for Materials: A Review

1
Circe Biotechnologie GmbH, Kerpengasse 125, 1210 Vienna, Austria
2
School of Chemical Engineering and Technology, Xi’an Jiaotong University, Xi’an 710049, China
3
State Key Laboratory of Meso-Science and Engineering, Institute of Process Engineering, Chinese Academy of Sciences, Beijing 100190, China
4
Shanghai GTLB Biotech Co., Ltd., 1688 North Guoquan Road, Shanghai 200438, China
*
Author to whom correspondence should be addressed.
Fuels 2024, 5(4), 625-649; https://doi.org/10.3390/fuels5040034
Submission received: 30 April 2024 / Revised: 1 August 2024 / Accepted: 19 August 2024 / Published: 4 October 2024

Abstract

The high externalized and still partly unknown costs of fossil fuels through air pollution from combustion, and their limited resources have caused mankind to (re)turn to renewable sources such as wind, solar, and biomass to meet its energy needs. Converting biomass to synthesis gas is advantageous since it can utilize a wide variety of (waste) feedstocks to obtain an energetic and versatile product at low cost in large quantities. Gasification is no new technology; yet in recent years, biomass gasification has attracted significant attention. Due to the non-depletable nature of agricultural waste and similar biomass side streams, which have little value and can bring environmental problems when mismanaged such as methane emissions, it is possible to obtain cheap electrical or thermal energy through the gas produced with high efficiencies. Combined heat and power (CHP) is the preferred use case, and recently the focus has moved to polygeneration, e.g., to make value-added products from the synthesis gas. Fischer–Tropsch synthesis from coal-derived syngas is now being complemented by the gas fermentation of biobased synthesis gas, where microorganisms yield materials from CO/H2 (and CO2) in an anaerobic process and from CH4/O2 in an aerobic process. Syngas methanation offers an alternative route to produce synthetic natural gas (SNG, or bio-SNG) as additional feedstock for gas fermentation. Materials made from syngas are decoupled from primary agricultural operations and do not compete with feed and food production. Due to the ample raw material base for gasification, which can basically be all kinds of mostly dry biomass, including waste such as municipal solid waste (MSW), syngas-derived products are highly scalable. Amongst them are bioplastics, biofuels, biobased building blocks, and single-cell protein (SCP) for feed and food. This article reviews the state-of-the-art in biomass gasification with a spotlight on gas fermentation for the sustainable production of high-volume materials.
Keywords: gasification; gasifier; biomass; environment; polygeneration; combined heat and power (CHP); gas fermentation; single cell protein (SCP); biopolymers; polyhydroxyalkanoates (PHA); hydrogen gasification; gasifier; biomass; environment; polygeneration; combined heat and power (CHP); gas fermentation; single cell protein (SCP); biopolymers; polyhydroxyalkanoates (PHA); hydrogen

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MDPI and ACS Style

Lackner, M.; Fei, Q.; Guo, S.; Yang, N.; Guan, X.; Hu, P. Biomass Gasification as a Scalable, Green Route to Combined Heat and Power (CHP) and Synthesis Gas for Materials: A Review. Fuels 2024, 5, 625-649. https://doi.org/10.3390/fuels5040034

AMA Style

Lackner M, Fei Q, Guo S, Yang N, Guan X, Hu P. Biomass Gasification as a Scalable, Green Route to Combined Heat and Power (CHP) and Synthesis Gas for Materials: A Review. Fuels. 2024; 5(4):625-649. https://doi.org/10.3390/fuels5040034

Chicago/Turabian Style

Lackner, Maximilian, Qiang Fei, Shuqi Guo, Ning Yang, Xiaoping Guan, and Peng Hu. 2024. "Biomass Gasification as a Scalable, Green Route to Combined Heat and Power (CHP) and Synthesis Gas for Materials: A Review" Fuels 5, no. 4: 625-649. https://doi.org/10.3390/fuels5040034

APA Style

Lackner, M., Fei, Q., Guo, S., Yang, N., Guan, X., & Hu, P. (2024). Biomass Gasification as a Scalable, Green Route to Combined Heat and Power (CHP) and Synthesis Gas for Materials: A Review. Fuels, 5(4), 625-649. https://doi.org/10.3390/fuels5040034

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