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Predicted Distributed State Effects on Enhanced Biological Phosphorus Removal in a 5-Stage Bardenpho Wastewater Treatment Configuration

机译:在5级Bardenpho废水处理配置中增强生物除磷能力的预测分布状态影响

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摘要

Conventional wastewater treatment simulation programs use a "lumped" approach, where process rates are calculated using bulk concentrations of biomass and microbial storage products. A recently developed distributed, or agent-based, approach, where individual bacteria are modeled to account for their potentially variable hydraulic experiences, was applied to the 5-stage Bardenpho process, a type of enhanced biological phosphorus removal (EBPR) that includes internal recycle flows, which were hypothesized to affect distributed state development. Consistent with previous results, the EBPR predicted performance was worse according to the distributed approach than the lumped approach. In addition, increasing the internal recycle rate increased the anoxic reactor nitrate concentrations, tending to decrease EBPR performance. However, in the distributed approach, differences in the state distributions in internal recycle-linked reactors decreased with increasing recycle flow, tending to improve EBPR. These phenomena tend to have simultaneous and opposite effects on EBPR. The net effect will depend largely on the specific systems and the nitrate concentration in anoxic reactors.
机译:常规的废水处理模拟程序使用“集中式”方法,其中使用生物质和微生物存储产品的总浓度来计算处理速率。最近开发了一种分布式或基于代理的方法,其中对单个细菌进行建模以说明其潜在的可变水力体验,该方法已应用于5阶段Bardenpho工艺,这是一种增强的生物除磷(EBPR),包括内部循环流量,被认为会影响分布式状态的发展。与以前的结果一致,根据分布式方法,EBPR预测的性能要比集总方法差。另外,增加内部循环速率增加了缺氧反应器中硝酸盐的浓度,趋于降低EBPR性能。但是,在分布式方法中,内部循环连接的反应器中状态分布的差异随着循环流量的增加而减小,从而倾向于提高EBPR。这些现象往往会对EBPR同时产生相反的影响。净效应将主要取决于具体系统和缺氧反应器中的硝酸盐浓度。

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