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Thermodynamic analysis of fermentation and anaerobic growth of baker's yeast for ethanol production

机译:面包酵母发酵发酵和厌氧生长的热力学分析

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Thermodynamic concepts have been used in the past to predict microbial growth yield. This may be the key consideration in many industrial biotechnology applications. It is not the case, however, in the context of ethanol fuel production. In this paper, we examine the thermodynamics of fermentation and concomitant growth of baker's yeast in continuous culture experiments under anaerobic, glucose-limited conditions, with emphasis on the yield and efficiency of bio-ethanol production. We find that anaerobic metabolism of yeast is very efficient; the process retains more than 90% of the maximum work that could be extracted from the growth medium supplied to the chemostat reactor. Yeast cells and other metabolic by-products are also formed, which reduces the glucose-to-ethanol conversion efficiency to less than 75%. Varying the specific ATP consumption rate, which is the fundamental parameter in this paper for modeling the energy demands of cell growth, shows the usual trade-off between ethanol production and biomass yield. The minimum ATP consumption rate required for synthesizing cell materials leads to biomass yield and Gibbs energy dissipation limits that are much more severe than those imposed by mass balance and thermodynamic equilibrium constraints. (C) 2010 Elsevier B.V. All rights reserved.
机译:过去已使用热力学概念来预测微生物的生长量。这可能是许多工业生物技术应用中的关键考虑因素。但是,在乙醇燃料生产的情况下并非如此。在本文中,我们在厌氧,葡萄糖受限的条件下,在连续培养实验中研究了面包酵母发酵和伴随发酵的热力学,重点是生物乙醇生产的产量和效率。我们发现酵母的厌氧代谢非常有效。该工艺保留了可从提供给化学恒温器反应器的生长培养基中提取的最大功的90%以上。还会形成酵母细胞和其他代谢副产物,从而使葡萄糖到乙醇的转化效率降低到75%以下。改变特定的ATP消耗速率(这是本文用来模拟细胞生长的能量需求的基本参数),显示了乙醇产量与生物量产量之间的通常权衡。合成细胞材料所需的最低ATP消耗速率会导致生物质产量和吉布斯能量耗散限制,其严重程度要比质量平衡和热力学平衡约束所施加的限制严格得多。 (C)2010 Elsevier B.V.保留所有权利。

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