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Exergy-based performance analysis of a continuous stirred bioreactor for ethanol and acetate fermentation from syngas via Wood-Ljungdahl pathway

机译:连续搅拌生物反应器通过Wood-Ljungdahl途径从合成气发酵乙醇和乙酸盐的基于能值的性能分析

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In this work, a thermodynamic framework was proposed to achieve improved process understanding of ethanol and acetate fermentation in a continuous stirred tank bioreactor from syngas through the Wood-Ljungdahl pathway. The bioreactor performance was evaluated using both conventional exergy and eco-exergy principles to identify the effect of different operational parameters i.e. agitation speeds and liquid media flow rates as well as syngas volume flow rates and its composition on the sustainability and renewability of the process. The exergy efficiency of the bioreactor was found to be in the range of 8.14-89.51% and 8.86-89.52% using the conventional exergy and eco-exergy concepts, respectively. The maximum exergetic productivity index was found to be 6.82 and 6.90 using the conventional exergy and eco-exergy concepts, respectively, at agitation speed of 450 rpm, liquid media flow rate of 0.55 ml/min, and syngas volume flow rate of 8 ml/min containing 10% CO2, 15% Ar, 20% H-2, and 55% CO. In general, the exergetic performance parameters computed using both concepts under the studied conditions did not display significant differences because of the low volume of the bioreactor and slow growth rate of the microorganisms. The results of the present study showed that exergy concept and its extensions could undoubtedly play a strategic role in assessing biofuel production pathways with respect to the issues currently of major interest in the renewable energy industry, i.e., sustainability and productively. (C) 2015 Elsevier Ltd. All rights reserved.
机译:在这项工作中,提出了一个热力学框架来提高对连续搅拌罐式生物反应器中乙醇和乙酸盐发酵的认识,该反应器是由合成气通过Wood-Ljungdahl途径进行的。生物反应器的性能使用常规的能动原理和生态能动原理进行评估,以识别不同运行参数的影响,即搅拌速度和液体介质流速以及合成气体积流速及其组成对工艺可持续性和可再生性的影响。使用常规的能用概念和生态能用概念,发现生物反应器的能用效率分别为8.14-89.51%和8.86-89.52%。使用常规的火用和生态火用概念,在450 rpm的搅拌速度,0.55 ml / min的液体介质流速和8 ml / s的合成气体积流速下,发现最大的能效生产率指数分别为6.82和6.90 min包含10%的CO2、15%的Ar,20%的H-2和55%的CO。一般而言,由于生物反应器和反应器的体积小,在研究的条件下使用这两种概念计算的能效参数没有显示出显着差异。微生物的生长速度慢。本研究的结果表明,就当前在可再生能源行业中最为关注的问题(即可持续性和生产性)而言,火用概念及其扩展无疑可以在评估生物燃料生产途径中发挥战略作用。 (C)2015 Elsevier Ltd.保留所有权利。

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