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首页> 外文期刊>Bioresource Technology: Biomass, Bioenergy, Biowastes, Conversion Technologies, Biotransformations, Production Technologies >Investigation of nutrient feeding strategies in a countercurrent mixed-acid multi-staged fermentation: Development of segregated-nitrogen model
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Investigation of nutrient feeding strategies in a countercurrent mixed-acid multi-staged fermentation: Development of segregated-nitrogen model

机译:逆流混合酸多阶段发酵中营养物补给策略的研究:分离氮模型的建立

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摘要

The MixAlco process is a biorefinery based on the production of carboxylic acids via mixed-culture fermentation. Nitrogen is essential for microbial growth and metabolism, and may exist in soluble (e.g., ammonia) or insoluble forms (e.g., cells). Understanding the dynamics of nitrogen flow in a countercurrent fermentation is necessary to develop control strategies to maximize performance. To estimate nitrogen concentration profiles in a four-stage fermentation train, a mass balance-based segregated-nitrogen model was developed, which uses separate balances for solid- and liquid-phase nitrogen with nitrogen reaction flux between phases assumed to be zero. Comparison of predictions with measured nitrogen profiles from five trains, each with a different nutrient contacting pattern, shows the segregated-nitrogen model captures basic behavior and is a reasonable tool for estimating nitrogen profiles. The segregated-nitrogen model may be used to (1) estimate optimal nitrogen loading patterns, (2) develop a reaction-based model, (3) understand influence of model inputs (e.g., operating parameters, feedstock properties, nutrient loading pattern) on the steady-state nitrogen profile, and (4) determine the direction of the nitrogen reaction flux between liquid and solid phases.
机译:MixAlco工艺是基于混合培养发酵生产羧酸的生物精炼厂。氮对于微生物的生长和代谢必不可少,并且可以以可溶形式(例如氨)或不溶形式(例如细胞)存在。了解逆流发酵中氮气流动的动力学对于开发控制策略以最大化性能至关重要。为了估算四阶段发酵过程中的氮浓度分布,建立了基于质量平衡的分离氮模型,该模型使用固相和液相氮的单独平衡,并且假设相之间的氮反应通量为零。将来自五列火车的氮素预测值与不同养分接触方式的测量结果进行比较,结果表明,分离氮模型捕捉了基本行为,是估算氮素分布状况的合理工具。分离氮模型可用于(1)估算最佳氮负荷模式,(2)建立基于反应的模型,(3)了解模型输入(例如,操作参数,原料特性,养分负荷模式)的影响(4)确定液相和固相之间氮反应通量的方向。

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