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Mathematical Modeling of a Raceway Pond System for Biofuels Production

机译:生物燃料生产滚道池塘系统的数学建模

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The need for low-cost biofuels has sparked renewed interest in raceway pond systems as cheap means for microbial biomass cultivation. The development of reliable dynamic bioprocess models is necessary for the optimal design of raceway pond systems. This paper presents a detailed model based on the high-rate algal-bacterial pond model and dynamic flux balance analysis (DFBA). With DFBA, all possible growth modes of the microorganisms in the pond are considered, as opposed to unstructured models which can only consider single growth modes. Multiple growth modes can occur over time in raceway pond systems due to day/night transitions and multiple substrate limitations. Different cultivation alternatives for oleaginous yeast and algae are explored and their biomass and lipids productivities are predicted. The case studies show that algae growth can become CO2 and light limited and yeast growth can become O2 limited. The model predicts better carbon utilization by an algae/yeast coculture than the respective monocultures and it captures complex phenomena such as the exchange of CO2 and O2, the competition for nitrogen sources, and the effect of pH on growth rates. The model predicts that the lipids productivity attained by the algae/yeast coculture is attractive for biofuels production. This paper is a summary of the results presented in Gomez et al. (2016).
机译:低成本生物燃料的需求引发了对滚道池塘系统的再生兴趣,作为微生物生物量栽培的廉价手段。可靠动态生物过程模型的开发是滚道池塘系统的最佳设计所必需的。本文介绍了基于高速率藻类池模型和动态通量平衡分析(DFBA)的详细模型。对于DFBA,考虑了池塘中微生物的所有可能的生长模式,而不是仅考虑单一生长模式的非结构化模型。由于日/夜过渡和多个基板限制,滚道池塘系统中可以随着时间的推移发生多种增长模式。探索了不同栽培溶液和藻类的替代品,预测其生物质和脂质生产率。案例研究表明,藻类生长可以成为二氧化碳,并且光线有限,酵母生长可以成为O2限制。该模型预测藻类/酵母共培养的更好的碳利用而不是相应的单一栽培,并且它捕获复杂现象,例如CO 2和O2的交换,氮源的竞争以及pH对生长速率的影响。该模型预测,藻类/酵母共培养的脂质生产率对于生物燃料生产具有吸引力。本文是在Gomez等人中呈现的结果的摘要。 (2016)。

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