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A novel in situ gas stripping-pervaporation process integrated with acetone-butanol-ethanol fermentation for hyper n-butanol production

机译:与丙酮-丁醇-乙醇发酵相结合的新型原位气体汽提-全蒸发工艺,可生产高正丁醇

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Butanol is considered as an advanced biofuel, the development of which is restricted by the intensive energy consumption of product recovery. A novel two-stage gas stripping-pervaporation process integrated with acetone-butanol-ethanol (ABE) fermentation was developed for butanol recovery, with gas stripping as the first-stage and pervaporation as the second-stage using the carbon nanotubes (CNTs) filled polydimethylsiloxane (PDMS) mixed matrix membrane (MMM). Compared to batch fermentation without butanol recovery, more ABE (27.5g/L acetone, 75.5g/L butanol, 7.0g/L ethanol vs. 7.9g/L acetone, 16.2g/L butanol, 1.4g/L ethanol) were produced in the fed-batch fermentation, with a higher butanol productivity (0.34g/Lh vs. 0.30g/Lh) due to reduced butanol inhibition by butanol recovery. The first-stage gas stripping produced a condensate containing 155.6g/L butanol (199.9g/L ABE), which after phase separation formed an organic phase containing 610.8g/L butanol (656.1g/L ABE) and an aqueous phase containing 85.6g/L butanol (129.7g/L ABE). Fed with the aqueous phase of the condensate from first-stage gas stripping, the second-stage pervaporation using the CNTs-PDMS MMM produced a condensate containing 441.7g/L butanol (593.2g/L ABE), which after mixing with the organic phase from gas stripping gave a highly concentrated product containing 521.3g/L butanol (622.9g/L ABE). The outstanding performance of CNTs-PDMS MMM can be attributed to the hydrophobic CNTs giving an alternative route for mass transport through the inner tubes or along the smooth surface of CNTs. This gas stripping-pervaporation process with less contaminated risk is thus effective in increasing butanol production and reducing energy consumption. Biotechnol. Bioeng. 2016;113: 120-129. (c) 2015 Wiley Periodicals, Inc.
机译:丁醇被认为是一种先进的生物燃料,其发展受到产品回收过程中大量能源消耗的限制。开发了一种结合丙酮-丁醇-乙醇(ABE)发酵的新型两段式汽提-全汽化工艺,用于回收丁醇,其中第一步是使用填充的碳纳米管(CNTs)进行汽提,然后进行全汽化。聚二甲基硅氧烷(PDMS)混合基质膜(MMM)。与不回收丁醇的间歇发酵相比,产生了更多的ABE(27.5g / L丙酮,75.5g / L丁醇,7.0g / L乙醇与7.9g / L丙酮,16.2g / L丁醇,1.4g / L乙醇)在分批补料发酵中,由于丁醇回​​收对丁醇的抑制作用降低,丁醇生产率更高(0.34g / L 。0.30g / L h )。第一步气提产生的冷凝液含有155.6g / L的丁醇(199.9g / L ABE),相分离后形成了含有610.8g / L的丁醇(656.1g / L ABE)的有机相和含有85.6的水相。 g / L丁醇(129.7g / L ABE)。在第一阶段气体汽提中注入冷凝水的水相后,使用CNTs-PDMS MMM进行第二阶段全蒸发,生成的冷凝水含有441.7g / L丁醇(593.2g / L ABE),将其与有机相混合气提分离得到的高浓缩产物含有521.3g / L的丁醇(622.9g / L的ABE)。 CNT-PDMS MMM的出色表现可归因于疏水性CNT,它为通过内管或沿CNT光滑表面的质量传输提供了另一种途径。因此,这种具有较少污染风险的汽提-全蒸发方法可有效地提高丁醇产量并降低能耗。生物技术。生恩2016; 113:120-129。 (c)2015年威利期刊有限公司

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