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首页> 外文期刊>Biotechnology Journal: Healthcare,Nutrition,Technology >Fermentation broth components influence droplet coalescence and hinder advanced biofuel recovery during fermentation
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Fermentation broth components influence droplet coalescence and hinder advanced biofuel recovery during fermentation

机译:发酵液成分影响液滴聚结并阻碍发酵过程中高级生物燃料的回收

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摘要

Developments in synthetic biology enabled the microbial production of long chain hydrocarbons, which can be used as advanced biofuels in aviation or transportation. Currently, these fuels are not economically competitive due to their production costs. The current process offers room for improvement: by utilizing lignocellulosic feedstock, increasing microbial yields, and using cheaper process technology. Gravity separation is an example of the latter, for which droplet growth by coalescence is crucial. The aim of this study was to study the effect of fermentation broth components on droplet coalescence. Droplet coalescence was measured using two setups: a microfluidic chip and regular laboratory scale stirred vessel (2 L). Some fermentation broth components had a large impact on droplet coalescence. Especially components present in hydrolysed cellulosic biomass and mannoproteins from the yeast cell wall retard coalescence. To achieve a technically feasible gravity separation that can be integrated with the fermentation, the negative effects of these components on coalescence should be minimized. This could be achieved by redesign of the fermentation medium or adjusting the fermentation conditions, aiming to minimize the release of surface active components by the microorganisms. This way, another step can be made towards economically feasible advanced biofuel production.
机译:合成生物学的发展使微生物能够生产长链碳氢化合物,这些碳氢化合物可以用作航空或运输中的高级生物燃料。目前,这些燃料由于其生产成本而在经济上没有竞争力。当前的方法提供了改进的空间:通过利用木质纤维素原料,增加微生物的产量以及使用更便宜的工艺技术。重力分离是后者的一个例子,对于这种分离,通过聚结的液滴生长至关重要。这项研究的目的是研究发酵液成分对液滴聚结的影响。使用两种设置测量液滴的聚结:微流控芯片和常规实验室规模的搅拌容器(2 L)。一些发酵液成分对液滴的聚结有很大的影响。尤其是来自酵母细胞壁的水解纤维素生物质和甘露糖蛋白中存在的成分会阻碍聚结。为了实现可与发酵整合的技术上可行的重力分离,应将这些成分对聚结的负面影响降至最低。这可以通过重新设计发酵培养基或调整发酵条件来实现,目的是最大程度地减少微生物释放表面活性成分。这样,可以朝着经济可行的先进生物燃料生产迈出另一步。

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