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Effect of aeration rates on hydraulic characteristics and pollutant removal in an up-flow biological aerated filter

机译:曝气速率对上流式生物曝气滤池水力特性和污染物去除的影响

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Biological aerated filters (BAFs) are an effective biological treatment technology for pollutant removal in municipal wastewater secondary treatment. However, one potential drawback of the BAF system is the need for an appropriate level of aeration. The appropriate level of aeration can reduce the energy consumption of the BAF system and improve wastewater treatment efficiency. In this study, an up-flow BAF reactor was established to study the effect of aeration rates on pollutant removal, hydraulic characteristics, dissolved oxygen (DO), and the microbial community. A computational fluid dynamics (CFD) model that combined the Euler-Euler model, porous media model and turbulence model was used to simulate the flow behaviour under a gas-liquid-solid three-phase system at aeration rates ranging from 40 L h(-1) to 90 L h(-1). The biofilm microbial community was analysed using high-throughput sequencing technology. The increase in the aeration rate reduced nitrogen removal and increased total phosphorus (TP) removal. The simulation results showed that the gas-liquid two phase velocity in the filter media layer exhibited an increasing trend with the aeration rates. The lower DO concentration at an aeration rate of 65 L h(-1) showed that the condition could improve the abundance and activity of the microbes. Planctomycetes, Nitrospirae and Proteobacteria were classified as nitrogen and phosphorus removing bacteria and were detected in all samples in the up-flow BAF. These results demonstrated that an aeration rate of 65 L h(-1) improved the pollutant removal efficiency by forming suitable DO and microbial community distributions. Optimizing the aeration rate can achieve efficient pollutant removal from the perspective of the flow field in an up-flow BAF.
机译:曝气生物滤池(BAFs)是一种有效的生物处理技术,用于市政污水二级处理中的污染物去除。然而,BAF系统的一个潜在缺点是需要适当水平的通气。适当的曝气水平可以减少BAF系统的能耗并提高废水处理效率。在这项研究中,建立了一个上流式BAF反应器,以研究曝气速率对污染物去除,水力特性,溶解氧(DO)和微生物群落的影响。结合Euler-Euler模型,多孔介质模型和湍流模型的计算流体动力学(CFD)模型用于模拟气液固三相系统在40 L h(- 1)至90 L h(-1)。使用高通量测序技术分析了生物膜微生物群落。曝气速率的增加减少了氮的去除,增加了总磷(TP)的去除。仿真结果表明,随着通气量的增加,滤料层中的气液两相速度呈增加趋势。曝气速率为65 L h(-1)时较低的DO浓度表明该条件可以改善微生物的丰度和活性。浮生菌,硝化螺旋菌和变形杆菌被归类为脱氮除磷细菌,并且在向上流动的BAF中的所有样品中都被检出。这些结果表明,通气量为65 L h(-1)可以通过形成合适的DO和微生物群落分布来提高污染物去除效率。从上流BAF中的流场角度来看,优化曝气速率可以实现有效的污染物去除。

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