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Extractive Batch Fermentation with CO_2 Stripping for Ethanol Production in a Bubble Column Bioreactor: Experimental and Modeling

机译:鼓泡塔生物反应器中CO_2汽提萃取分批发酵生产乙醇的实验和建模

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摘要

In alcoholic fermentation processes, ethanol is the main component that is toxic to yeast because it acts as a noncompetitive inhibitor of metabolism. One way of overcoming the inhibition effect on yeast is to extract the ethanol from the broth during the fermentation. The present work evaluates ethanol production by extractive batch fermentation using CO_2 as a stripping gas. Investigation was first made of the influence of specific CO_2 flow rate (φ) and solution temperature on ethanol stripping. The best results, in terms of ethanol removal, were obtained at 2.0 vvm and 34.0 ℃. Modeling of conventional and extractive ethanol fermentation was then performed considering cell growth, substrate consumption, ethanol production, and the entrainment of ethanol and water using first-order equations. The hybrid Andrews-Levenspiel model was able to describe the kinetics of the conventional fermentation process, and a model proposed here could accurately predict the behavior of the extractive fermentation. In all the extractive fermentations, there was raster substrate uptake and earlier substrate exhaustion, compared to the conventional fermentation. Extractive fermentation, with stripping initiated after 3 h at an ethanol concentration of 43.3 g·L~(-1), resulted in an ethanol productivity (in g·L~(-1)·h~(-1)) that was around 25% higher, and finished about 2 h earlier, compared to the control fermentation.
机译:在酒精发酵过程中,乙醇是对酵母有毒的主要成分,因为它是代谢的非竞争性抑制剂。克服对酵母的抑制作用的一种方法是在发酵过程中从肉汤中提取乙醇。本工作评估使用CO_2作为汽提气通过分批萃取发酵生产乙醇的方法。首先研究了比CO 2流量(φ)和溶液温度对乙醇汽提的影响。在2.0 vvm和34.0℃的条件下,获得最佳的乙醇去除效果。然后,考虑细胞生长,底物消耗,乙醇生产以及使用一阶方程对乙醇和水的夹带,对常规和提取性乙醇发酵进行建模。混合的Andrews-Levenspiel模型能够描述常规发酵过程的动力学,此处提出的模型可以准确地预测萃取发酵的行为。与常规发酵相比,在所有萃取发酵中,都有光栅底物吸收和较早的底物耗尽。提取发酵,在乙醇浓度为43.3 g·L〜(-1)的情况下3小时后开始汽提,产生的乙醇生产率(以g·L〜(-1)·h〜(-1)计)约为与对照发酵相比,高25%,并且提前约2小时完成。

著录项

  • 来源
    《Energy & fuels》 |2014年第novaadeca期|7552-7559|共8页
  • 作者单位

    Department of Chemical Engineering, Federal University of Sao Carlos, C.P. 676, Sao Carlos, Sao Paulo 13565-905, Brazil;

    Department of Chemical Engineering, Federal University of Sao Carlos, C.P. 676, Sao Carlos, Sao Paulo 13565-905, Brazil;

    Department of Chemical Engineering, Federal University of Sao Carlos, C.P. 676, Sao Carlos, Sao Paulo 13565-905, Brazil;

    Department of Chemical Engineering, Federal University of Sao Carlos, C.P. 676, Sao Carlos, Sao Paulo 13565-905, Brazil;

    Department of Chemical Engineering, Federal University of Sao Carlos, C.P. 676, Sao Carlos, Sao Paulo 13565-905, Brazil;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
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  • 入库时间 2022-08-18 00:40:33

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