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Short circuiting in a denitrifying activated sludge tank

机译:反硝化活性污泥池中的短路

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The presence of a short circuit flow in a denitrifying activated sludge tank was identified and modelled. Tracer tests with pulse addition of lithium salt were used to investigate the hydraulics of the tank. The lithium concentration in the effluent was detected and residence time distribution (RTD) curves were generated. Hydraulic models based on completely stirred tank reactors (CSTRs) in series were generated from the RTD curves and the models were compared. The short circuit problem was successfully described using the Martin model, where the inflow is divided into two strands. Each strand was modelled as a number of CSTRs in series. At a normal flow the results of the model show that the tank has 12.8% dead volume, 85.8% main volume and 1.3% short circuiting volume. The inflow was divided into 91.9% entering the main volume and 8.1% entering the short circuiting volume. The mean velocity of the short circuiting stream was estimated to 0.4 m/s. At maximum flow the short circuiting stream was even larger and handled 24.3% of the flow. The short circuiting stream was identified in the upper part of the tank due to the position of the inlet and the outlet. The configuration of a tank including the use of baffles, the geometry of the inlet and mixer configuration should be considered carefully if short circuiting is to be avoided.
机译:识别并建模了反硝化活性污泥池中是否存在短路流。脉冲添加锂盐的示踪剂测试用于研究水箱的液压性能。检测废水中的锂浓度,并生成停留时间分布(RTD)曲线。从RTD曲线生成了基于串联的完全搅拌釜反应器(CSTR)的水力模型,并对模型进行了比较。使用马丁模型成功地描述了短路问题,其中流入分为两股。每条链被建模为一系列串联的CSTR。在正常流量下,模型的结果表明,储罐的死体积为12.8%,主体积为85.8%,短路体积为1.3%。流入量分为进入主体积的91.9%和进入短路体积的8.1%。短路流的平均速度估计为0.4 m / s。在最大流量下,短路流甚至更大,并且处理了24.3%的流量。由于入口和出口的位置,在罐的上部识别出短路流。如果要避免发生短路,应仔细考虑使用折流板的储罐配置,入口和混合器配置的几何形状。

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