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在合成气生物转化中增强溶剂生成:过程参数和热力学的作用。

Enhanced solventogenesis in syngas bioconversion: Role of process parameters and thermodynamics.

机构信息

National University of Ireland Galway, H91 TK33, Galway, Ireland; Chemical Engineering Laboratory, Faculty of Sciences and Center for Advanced Scientific Research - Centro de Investigaciones Científicas Avanzadas (CICA), BIOENGIN Group, University of La Coruña (UDC), E-15008, La Coruña, Spain.

Chemical Engineering Laboratory, Faculty of Sciences and Center for Advanced Scientific Research - Centro de Investigaciones Científicas Avanzadas (CICA), BIOENGIN Group, University of La Coruña (UDC), E-15008, La Coruña, Spain.

出版信息

Chemosphere. 2022 Jul;299:134425. doi: 10.1016/j.chemosphere.2022.134425. Epub 2022 Mar 26.

Abstract

Biofuels, such as ethanol and butanol, obtained from carbon monoxide-rich gas or syngas bioconversion (solventogenesis) are an attractive alternative to traditional fermentation processes with merits of no competition with food production and sustainability. However, there is a lack of comprehensive understanding of some key process parameters and mechanisms enhancing solventogenesis during the fermentation process. This review provides an overview of the current state of the art of the main influencing factors during the syngas fermentation process catalyzed by acetogenic species as well as undefined mixed cultures. The role of syngas pressure, syngas components, fermentation pH, temperature, trace metals, organic compounds and additional materials is overviewed. As a so far hardly considered approach, thermodynamic calculations of the Gibbs free energy of CO conversion to acetic acid, ethanol, butyric acid and butanol under different CO pressures and pH at 25, 33 and 55 °C are also addressed and reviewed. Strategies for enhancing mass transfer and longer carbon chain solvent production are considered as well.

摘要

生物燃料,如乙醇和丁醇,可从富含一氧化碳的气体或合成气生物转化(溶剂合成)中获得,与传统的发酵工艺相比具有不与粮食生产竞争和可持续性的优势。然而,对于一些在发酵过程中增强溶剂合成的关键工艺参数和机制,还缺乏全面的了解。本文综述了在产乙酸菌和未定义混合培养物催化的合成气发酵过程中主要影响因素的最新研究进展。综述了合成气压力、合成气成分、发酵 pH 值、温度、痕量金属、有机化合物和其他材料的作用。作为迄今为止很少考虑的方法,还对不同 CO 压力和 pH 值下,25、33 和 55°C 时 CO 转化为乙酸、乙醇、丁酸和丁醇的吉布斯自由能进行了热力学计算,并进行了综述。还考虑了增强传质和生产更长碳链溶剂的策略。

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