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Towards a consensus-based biokinetic model for green microalgae - The ASM-A

机译:建立基于共识的绿色微藻生物动力学模型-ASM-A

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Cultivation of microalgae in open ponds and closed photobioreactors (PBRs) using wastewater resources offers an opportunity for biochemical nutrient recovery. Effective reactor system design and process control of PBRs requires process models. Several models with different complexities have been developed to predict microalgal growth. However, none of these models can effectively describe all the relevant processes when microalgal growth is coupled with nutrient removal and recovery from wastewaters. Here, we present a mathematical model developed to simulate green microalgal growth (ASM-A) using the systematic approach of the activated sludge modelling (ASM) framework. The process model identified based on a literature review and using new experimental data accounts for factors influencing photoautotrophic and heterotrophic microalgal growth, nutrient uptake and storage (i.e. Droop model) and decay of microalgae. Model parameters were estimated using laboratory-scale batch and sequenced batch experiments using the novel Latin Hypercube Sampling based Simplex (LHSS) method. The model was evaluated using independent data obtained in a 24-L PBR operated in sequenced batch mode. Identifiability of the model was assessed. The model can effectively describe microalgal biomass growth, ammonia and phosphate concentrations as well as the phosphorus storage using a set of average parameter values estimated with the experimental data. A statistical analysis of simulation and measured data suggests that culture history and substrate availability can introduce significant variability on parameter values for predicting the reaction rates for bulk nitrate and the intracellularly stored nitrogen state-variables, thereby requiring scenario specific model calibration. ASM-A was identified using standard cultivation medium and it can provide a platform for extensions accounting for factors influencing algal growth and nutrient storage using wastewater resources. (C) 2016 Elsevier Ltd. All rights reserved.
机译:利用废水资源在开放式池塘和封闭式光生物反应器(PBR)中培养微藻,为生物化学养分的回收提供了机会。有效的反应堆系统设计和PBR的过程控制需要过程模型。已经开发了几种具有不同复杂度的模型来预测微藻的生长。但是,当微藻生长与营养物的去除和废水中的回收相结合时,这些模型都不能有效地描述所有相关过程。在这里,我们介绍了一种数学模型,该模型使用活性污泥建模(ASM)框架的系统方法来模拟绿色微藻生长(ASM-A)。基于文献综述并使用新的实验数据确定的过程模型解释了影响光合自养和异养微藻生长,养分吸收和储存的营养素(即下垂模型)和微藻衰变的因素。使用实验室规模的批处理和序列批处理实验(使用基于拉丁文超立方体采样的单纯形(LHSS)方法)估算模型参数。使用在以顺序批处理模式操作的24-L PBR中获得的独立数据评估模型。评估模型的可识别性。该模型可以使用根据实验数据估算的一组平均参数值,有效地描述微藻生物量的增长,氨和磷酸盐的浓度以及磷的储存量。对模拟和测量数据的统计分析表明,培养历史和底物利用率可能会在参数值上引入明显的可变性,以预测大量硝酸盐和细胞内存储的氮状态变量的反应速率,从而需要针对具体情况进行模型校准。 ASM-A是使用标准培养基鉴定的,它可以为扩展平台提供一个平台,以解决影响藻类生长和使用废水资源养分的因素。 (C)2016 Elsevier Ltd.保留所有权利。

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