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Reactor design issues for synthesis-gas fermentations

机译:合成气发酵的反应器设计问题

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摘要

Synthesis gas is readily obtained by gasifying coal, oil, biomass, or waste organics and represents an abundant, potentially inexpensive, feedstock for bioprocessing. The primary components of synthesis gas, carbon monoxide and hydrogen, can be converted into methane, organic acids, and alcohols via anaerobic fermentations. Bioconversion of synthesis gas is an attractive alternative to catalytic processing because the biological catalysts are highly specific and often more tolerant of sulfur contaminants than inorganic catalysts. However, because the aqueous solubilities of carbon monoxide and hydrogen are low, synthesis-gas fermentations are typically limited by the rate of gas-to-liquid mass transfer. Consequently, a major engineering challenge in commercial development of synthesis-gas fermentations is to provide sufficient gas mass transfer in an energy-efficient manner. This paper reviews recent progress in the development of synthesis-gas fermentations, with emphasis on efforts to increase the efficiency of gas mass transfer. Metabolic properties of several microbes able to ferment synthesis gas are described. Results of synthesis-gas fermentations conducted in various bioreactor configurations are summarized. Recent results showing enhancement of synthesis-gas fermentations using microbubble dispersions are presented, and studies of the mass-transfer and coalescence properties of microbubbles are described.
机译:合成气可通过将煤,石油,生物质或废有机物气化而轻易获得,并且代表了丰富的,可能廉价的生物加工原料。合成气的主要成分一氧化碳和氢气可以通过厌氧发酵转化为甲烷,有机酸和醇。合成气的生物转化是催化工艺的一种有吸引力的替代方法,因为生物催化剂比无机催化剂具有更高的特异性,并且通常对硫污染物的耐受性更高。但是,由于一氧化碳和氢气在水中的溶解度很低,因此合成气发酵通常受到气液传质速率的限制。因此,合成气发酵的商业开发中的主要工程挑战是以节能的方式提供足够的气体质量传递。本文回顾了合成气发酵技术的最新进展,重点是提高气体传质效率的努力。描述了能够发酵合成气的几种微生物的代谢特性。总结了在各种生物反应器配置中进行的合成气发酵的结果。最近的研究结果表明使用微泡分散体可增强合成气发酵,并描述了微泡的传质和聚结特性研究。

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