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Review of syngas fermentation processes for bioethanol

机译:综述生物乙醇合成气发酵工艺

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摘要

Bioethanol is recognized as an important renewable and sustainable transportation fuel. Although synthesis gas (syngas: CO, H_2, CO_2) produced from lignocellulosic biomass (forest or agricultural biomass) is being used in the production of bioethanol by both chemical catalytic and biosynthetic processes, the latter are noted to have more advantages. In the biosynthesis process, such as the fermentation of syngas, bioethanol is produced along with acetate, butanol, butyrate, methane, peptone, and formaldehyde. Although progress has been made on research and development for the utilization of syngas on fermentation technology, the major barriers for the commercialization still include low yield, expensive biological catalyst, slow kinetics, low gas-liquid mass transfer, and challenges with catalytic separation and recycling. This paper presents a review on fermentation product impurities, microorganisms, chemical reactions, separation techniques, bioreactor types, fermentation conditions, gas-liquid mass transfer, current status of the technology and economics. It seems selection of the appropriate microorganism, nutrient medium, and appropriate hollow fiber membrane biofilm reactor might lead toward achieving an increased mass transfer efficiency for commercialization of the bioethanol.
机译:生物乙醇被认为是重要的可再生和可持续运输燃料。尽管由木质纤维素生物质(森林或农业生物质)产生的合成气(合成气:CO,H_2,CO_2)已通过化学催化和生物合成方法用于生物乙醇的生产,但据指出后者具有更多优势。在诸如合成气发酵的生物合成过程中,生物乙醇与乙酸盐,丁醇,丁酸盐,甲烷,蛋白ept和甲醛一起产生。尽管在发酵技术中利用合成气的研究和开发方面已取得进展,但商业化的主要障碍仍然包括产量低,生物催化剂昂贵,动力学缓慢,气液传质低以及催化分离和回收面临的挑战。本文对发酵产物的杂质,微生物,化学反应,分离技术,生物反应器类型,发酵条件,气液传质,技术现状和经济状况进行了综述。似乎选择适当的微生物,营养培养基和适当的中空纤维膜生物膜反应器可能会导致实现生物乙醇商业化的传质效率的提高。

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