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Cognitive optimization of microbial PHB production in an optimally dispersed bioreactor by single and mixed cultures

机译:单一和混合培养对最佳分散生物反应器中微生物PHB产生的认知优化

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Cognitive (or intelligent) models are often superior to mechanistic models for nonideal bioreactors. Two kinds of cognitive models-cybernetic and neural-were applied recently to fed-batch fermentation by Ralstonia eutropha in a bioreactor with optimum finite dispersion. In the present work, these models have been applied in simulation studies of co-cultures of R. eutropha and Lcictobacillus delbrueckii. The results for both cognitive and mechanistic models have been compared with single cultures. Neural models were the most effective for both types of cultures and mechanistic models the least effective. Simulations with co-culture fermentations predicted more PHB than single cultures with all three types of models. Significantly, the predicted enhancements in PHB concentration by cognitive methods for mixed cultures were four to five times larger than the corresponding increases in biomass concentration. Further improvements are possible through a hybrid combination of all three types of models.
机译:对于非理想的生物反应器,认知(或智能)模型通常优于机械模型。最近,在具有最佳有限分散性的生物反应器中,将两种认知模型(cybernetic和神经网络)应用于富营养小球藻的补料分批发酵。在目前的工作中,这些模型已被应用于富营养的罗氏菌和德氏乳杆菌的共培养的模拟研究中。认知和机制模型的结果已与单一文化进行了比较。神经模型对于两种类型的文化都是最有效的,而机械模型最不起作用。在所有这三种类型的模型中,共培养发酵的模拟预测的PHB均比单一培养的PHB多。值得注意的是,通过认知方法对混合培养物预测的PHB浓度增加比生物量浓度的相应增加大四到五倍。通过将所有三种类型的模型进行混合组合,可以实现进一步的改进。

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