Identifying the Effect of Non-Ideal Mixing on a Pre-Denitrification Activated Sludge System Performance through Model-Based Simulations

M. Hajaya
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引用次数: 1

Abstract

Effectiveness of a pre-denitrification activated sludge treatment system is governed by the kinetics of the biological reactions, and the hydrodynamic mixing behavior in the reactors. Achieving good mixing conditions within a reactor not only enhances the transfer of reactants but also ensures homogeneous environmental conditions throughout the vessel when required, allowing for an effective usage of the reactor’s total volume, leading to optimized, low-cost operation. In this work, a pre-denitrification activated sludge system performance with regards to the biological treatment of organic carbon and nitrogen was investigated, under two scenarios for non-ideal mixing in the anoxic reactor. The system performance is simulated based upon the Activated Sludge Model 1 model’s biological reactions, and combining two non-ideal mixing two-parameter models: CSTR with bypass and dead volume, and two CSTRs with exchange. Performance discrepancies were then identified in the presence of non-ideal mixing. The system’s performance was found to be more susceptible to the presence of a dead volume/bypass scenario compared to the two CSTRs with material exchange scenario. Under non-ideal mixing conditions, effluent concentrations of Total Kjeldahl Nitrogen, organic carbon increased marginally, while effluent concentration of nitrate increased significantly. Similarly, the waste stream concentrations of Total Kjeldahl Nitrogen and organic carbon increased significantly as a result of an increase in the concentration of the heterotrophic biomass. The outcome of this study provides an insight when troubleshooting the operation of pre-denitrification activated sludge systems for non-ideal mixing conditions.
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通过基于模型的模拟确定非理想混合对预反硝化活性污泥系统性能的影响
预反硝化活性污泥处理系统的有效性取决于生物反应动力学和反应器中的流体动力混合行为。在反应器内实现良好的混合条件不仅可以增强反应物的传递,还可以在需要时确保整个容器的环境条件均匀,从而有效地利用反应器的总体积,从而实现优化的低成本运行。本文研究了预反硝化活性污泥系统在缺氧反应器中两种非理想混合情况下对有机碳和氮的生物处理性能。以1型活性污泥模型的生物反应为基础,结合两个非理想混合双参数模型:带旁路和死体积的CSTR模型和带交换的两个CSTR模型,对系统性能进行了模拟。然后在非理想混合存在的情况下确定性能差异。与具有材料交换的两个cstr相比,该系统的性能更容易受到死体积/旁路情况的影响。在非理想混合条件下,出水总凯氏定氮、有机碳浓度略有升高,而硝酸盐浓度显著升高。同样,由于异养生物量浓度的增加,废液中总凯氏定氮和有机碳的浓度也显著增加。本研究的结果为非理想混合条件下预反硝化活性污泥系统的操作故障排除提供了一个见解。
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