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Is the whole the sumof its parts? Agent-basedmodelling of wastewater treatment systems

机译:整体是各个部分的总和吗?基于主体的废水处理系统建模

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Agent-based models (ABMs) simulate individual units within a system, such as the bacteria in a biological wastewater treatment system. This paper outlines past, current and potential future applications of ABMs to wastewater treatment. ABMs track heterogeneities within microbial populations, and this has been demonstrated to yield different predictions of bulk behaviors than the conventional, "lumped" approaches for enhanced biological phosphorus removal (EBPR) completely mixed reactors systems. Current work included the application of the ABM approach to bacterial adaptation/evolution, using the model system of individual EBPR bacteria that are allowed to evolve a kinetic parameter (maximum glycogen storage) in a competitive environment. The ABM approach was successfully implemented to a simple anaerobic-aerobic system and it was found the differing initial states converged to the same optimal solution under uncertain hydraulic residence times associated with completely mixed hydraulics. In another study, an ABM was developed and applied to simulate the heterogeneity in intracellular polymer storage compounds, including polyphosphate (PP), in functional microbial populations in enhanced biological phosphorus removal (EBPR) process. The simulation results were compared to the experimental measurements of single-cell abundance of PP in polyphosphate accumulating organisms (PAOs), performed using Raman microscopy. The model-predicted heterogeneity was generally consistent with observations, and it was used to investigate the relative contribution of external (different life histories) and internal (biological) mechanisms leading to heterogeneity. In the future, ABMs could be combined with computational fluid dynamics (CFD) models to understand incomplete mixing, more intracellular states and mechanisms can be incorporated, and additional experimental verification is needed.
机译:基于代理的模型(ABM)模拟系统中的各个单元,例如生物废水处理系统中的细菌。本文概述了ABM在废水处理中的过去,当前和潜在的未来应用。 ABMs跟踪微生物种群内的异质性,并且与传统的“集总”方法可增强生物除磷(EBPR)的完全混合反应器系统相比,其对散装行为的预测不同。当前的工作包括将ABM方法应用于细菌适应/进化,使用单个EBPR细菌的模型系统,该模型系统可以在竞争环境中进化动力学参数(最大糖原存储量)。 ABM方法已成功地应用于简单的厌氧-好氧系统,并且发现在与完全混合的液压系统相关的不确定的液压停留时间下,不同的初始状态收敛到相同的最优解。在另一项研究中,开发了一种ABM并将其应用于增强生物除磷(EBPR)过程的功能性微生物种群中细胞内聚合物存储化合物(包括多磷酸盐(PP))的异质性。将模拟结果与使用拉曼显微镜进行的多磷酸盐蓄积生物(PAO)中PP单细胞丰度的实验测量结果进行了比较。该模型预测的异质性通常与观察结果一致,用于研究导致异质性的外部(不同的生活史)和内部(生物)机制的相对贡献。将来,ABMs可以与计算流体力学(CFD)模型结合起来以理解不完全混合,可以结合更多的细胞内状态和机制,还需要其他实验验证。

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