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通过可再生化学品生产提升厌氧发酵的价值:循环生物经济的可持续融合。

Upgrading the value of anaerobic fermentation via renewable chemicals production: A sustainable integration for circular bioeconomy.

机构信息

School of Civil and Environmental Engineering, Yonsei University, Seoul 03722, Republic of Korea; Department of Environmental Science and Technology, University of Maryland, College Park, MD 20742, USA.

Biochemical Process Engineering, Division of Chemical Engineering, Department of Civil, Environmental, and Natural Resources Engineering, Luleå University of Technology, 971‑87, Luleå, Sweden.

出版信息

Sci Total Environ. 2022 Feb 1;806(Pt 1):150312. doi: 10.1016/j.scitotenv.2021.150312. Epub 2021 Sep 14.

Abstract

The single bioprocess approach has certain limitations in terms of process efficiency, product synthesis, and effective resource utilization. Integrated or combined bioprocessing maximizes resource recovery and creates a novel platform to establish sustainable biorefineries. Anaerobic fermentation (AF) is a well-established process for the transformation of organic waste into biogas; conversely, biogas CO separation is a challenging and expensive process. Biological fixation of CO for succinic acid (SA) mitigates CO separation issues and produces commercially important renewable chemicals. Additionally, utilizing digestate rich in volatile fatty acid (VFA) to produce medium-chain fatty acids (MCFAs) creates a novel integrated platform by utilizing residual organic metabolites. The present review encapsulates the advantages and limitations of AF along with biogas CO fixation for SA and digestate rich in VFA utilization for MCFA in a closed-loop approach. Biomethane and biohydrogen processes CO utilization for SA production is cohesively deliberated along with the role of biohydrogen as an alternative reducing agent to augment SA yields. Similarly, MCFA production using VFA as a substrate and functional role of electron donors namely ethanol, lactate, and hydrogen are comprehensively discussed. A road map to establish the fermentative biorefinery approach in the framework of AF integrated sustainable bioprocess development is deliberated along with limitations and factors influencing for techno-economic analysis. The discussed integrated approach significantly contributes to promote the circular bioeconomy by establishing carbon-neutral processes in accord with sustainable development goals.

摘要

单一的生物工艺方法在工艺效率、产品合成和有效资源利用方面存在一定的局限性。集成或组合生物加工最大限度地回收资源,并为建立可持续的生物精炼厂创造了一个新的平台。厌氧发酵 (AF) 是一种将有机废物转化为沼气的成熟工艺;相反,沼气 CO 分离是一个具有挑战性和昂贵的过程。生物固定 CO 生产琥珀酸 (SA) 可以缓解 CO 分离问题,并生产具有商业重要性的可再生化学品。此外,利用富含挥发性脂肪酸 (VFA) 的消化物生产中链脂肪酸 (MCFA),通过利用残留的有机代谢物创建了一个新的集成平台。本综述总结了 AF 的优点和局限性,以及生物沼气 CO 固定用于 SA 生产和富含 VFA 的消化物用于 MCFA 的利用,采用闭环方法。还综合考虑了生物甲烷和生物氢气过程中 CO 用于 SA 生产的利用,以及生物氢气作为替代还原剂来提高 SA 产量的作用。同样,也全面讨论了 VFA 作为底物和电子供体(如乙醇、乳酸盐和氢气)的功能作用用于生产 MCFA。根据 AF 集成可持续生物加工开发的框架,制定了建立发酵生物精炼厂方法的路线图,并讨论了技术经济分析的限制因素和影响因素。所讨论的集成方法通过建立符合可持续发展目标的碳中和过程,为促进循环生物经济做出了重要贡献。

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