Department of Environmental Engineering (DTU Environment), Technical University of Denmark, Miljøvej, Building 113, DK-2800, Kgs. Lyngby, Denmark.
CAPEC-Department of Chemical and Biochemical Engineering, Technical University of Denmark, Building 229, DK-2800 Kgs. Lyngby, Denmark.
Water Res. 2014 Oct 15;63:209-21. doi: 10.1016/j.watres.2014.05.054. Epub 2014 Jun 11.
Current research focuses on predicting and mitigating the impacts of high hydraulic loadings on centralized wastewater treatment plants (WWTPs) under wet-weather conditions. The maximum permissible inflow to WWTPs depends not only on the settleability of activated sludge in secondary settling tanks (SSTs) but also on the hydraulic behaviour of SSTs. The present study investigates the impacts of ideal and non-ideal flow (dry and wet weather) and settling (good settling and bulking) boundary conditions on the sensitivity of WWTP model outputs to uncertainties intrinsic to the one-dimensional (1-D) SST model structures and parameters. We identify the critical sources of uncertainty in WWTP models through global sensitivity analysis (GSA) using the Benchmark simulation model No. 1 in combination with first- and second-order 1-D SST models. The results obtained illustrate that the contribution of settling parameters to the total variance of the key WWTP process outputs significantly depends on the influent flow and settling conditions. The magnitude of the impact is found to vary, depending on which type of 1-D SST model is used. Therefore, we identify and recommend potential parameter subsets for WWTP model calibration, and propose optimal choice of 1-D SST models under different flow and settling boundary conditions. Additionally, the hydraulic parameters in the second-order SST model are found significant under dynamic wet-weather flow conditions. These results highlight the importance of developing a more mechanistic based flow-dependent hydraulic sub-model in second-order 1-D SST models in the future.
目前的研究重点是预测和减轻高水力负荷对集中式污水处理厂(WWTP)在湿天气条件下的影响。WWTP 的最大允许流量不仅取决于二次沉淀池(SST)中活性污泥的沉降性能,还取决于 SST 的水力行为。本研究调查了理想和非理想流量(干、湿天气)和沉降(良好沉降和膨胀)边界条件对 WWTP 模型输出对一维(1-D)SST 模型结构和参数固有不确定性的敏感性的影响。我们通过使用基准模拟模型 1 结合一阶和二阶 1-D SST 模型进行全局敏感性分析(GSA),确定 WWTP 模型中的关键不确定性源。结果表明,沉降参数对关键 WWTP 工艺输出的总方差的贡献在很大程度上取决于进水流量和沉降条件。影响的大小因所使用的 1-D SST 模型类型而异。因此,我们确定并推荐 WWTP 模型校准的潜在参数子集,并提出在不同流量和沉降边界条件下选择 1-D SST 模型的最佳选择。此外,二阶 SST 模型中的水力参数在动态湿天气流量条件下具有显著意义。这些结果强调了在未来开发更基于机制的、与流量相关的二阶 1-D SST 模型水力子模型的重要性。