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首页> 外文期刊>Chemical engineering journal >Enhancement of carbon monoxide mass transfer using an innovative external hollow fiber membrane (HFM) diffuser for syngas fermentation: Experimental studies and model development
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Enhancement of carbon monoxide mass transfer using an innovative external hollow fiber membrane (HFM) diffuser for syngas fermentation: Experimental studies and model development

机译:使用创新的外部中空纤维膜(HFM)扩散器促进合成气发酵来改善一氧化碳的传质:实验研究和模型开发

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摘要

Syngas fermentation is a promising technology for sustainable production of fuels and chemicals. Gas-liquid mass transfer of syngas, however, is regarded as a limiting step of the fermentation process. The authors designed an innovative external hollow fiber membrane (HFM) diffuser to remove this hurdle. In this study, the gas-liquid mass transfer of carbon monoxide, the major component of syngas, was optimized by implementing three operational factors, membrane surface area per working volume (A/v), water velocity (V_L), and specific gas flow rate (V_g). The maximum observed CO mass transfer coefficient (K_La) of 385.01/h in water, which is higher than that yielded by previous CO transfer methods, was achieved at an Ajv of 0.561 /cm, a V_L of 2.20 cm/s, and a V_g of 1.021 /min. At these conditions, the gas void fraction rate, the syngas supply rate per working volume, was lower than all reported values as well. The high volumetric mass transfer coefficient at low gas supply rate of the HFM diffuser would make syngas fermentation a feasible alternative industrial process. A three-factor quadratic model and a dimensionless model with high correlation coefficients were developed from the experimental data for a process scale-up. These two models verified that the membrane surface area is the most significant design factor with respect to the K_La. Three screen analyses also indicated that the membrane surface area had the highest positive impact on the K_La. As a result, the external HFM diffuser appears to be a feasible technology that can considerably increase the yield of syngas fermentation to fuels and chemicals.
机译:合成气发酵是可持续生产燃料和化学品的有前途的技术。然而,合成气的气液传质被认为是发酵过程的限制步骤。作者设计了一种创新的外部中空纤维膜(HFM)扩散器,以消除这一障碍。在这项研究中,通过实现三个操作因素,即每工作体积的膜表面积(A / v),水速度(V_L)和比气体流量,优化了合成气的主要成分一氧化碳的气液传质率(V_g)。在Ajv为0.561 / cm,V_L为2.20 cm / s和V_g的情况下,在水中观察到的最大CO传质系数(K_La)为385.01 / h,高于以前的CO传递方法产生的系数。为1.021 / min。在这些条件下,气体空隙率,每工作体积的合成气供应率也低于所有报告的值。 HFM扩散器在低供气速率下的高体积传质系数将使合成气发酵成为可行的替代工业过程。从实验数据中建立了一个三因子二次模型和一个具有高相关系数的无量纲模型,以扩大工艺规模。这两个模型验证了相对于K_La,膜表面积是最重要的设计因素。三个屏幕分析还表明,膜表面积对K_La具有最大的积极影响。结果,外部HFM扩散器似乎是一种可行的技术,可以大大提高合成气发酵成燃料和化学品的产量。

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