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Pollution load modelling in sewer systems: an approach of combining long term online sensor data with multi-objective auto-calibration schemes

机译:下水道系统中的污染负荷建模:一种将长期在线传感器数据与多目标自动校准方案相结合的方法

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摘要

Pollutant load modelling for sewer systems is state-of-the-art, especially for the estimation of discharged pollutant loads and development of sewer management strategies. However, conventionally obtained calibration data sets are often not exhaustive and have significant drawbacks. In the Graz West catchment area (Graz, Austria), continuous high-resolution long-term online measurements for discharge and pollutant concentration have been carried out since 2002. In this paper, the application of single- and multi-objective auto-calibration schemes based on evolution strategies for a deterministic hydrological pollutant load model will be discussed. Three approaches for pollutant load modelling are examined and compared: using a constant storm weather concentration and two surface accumulation-wash-off approaches with basic respectively extended wash-off equations. It is shown that the applied auto-calibration method leads to very satisfying results for both the calibration and the validation data set, and also for the dry and the storm weather runoff. Results from multi-objective calibration show better robustness in validation events than single- objective calibration. The build-up wash-off approach using the basic wash-off equation gives the best correlations between measured data and simulation results.
机译:下水道系统的污染物负荷建模是最先进的,尤其是在估算排放污染物负荷和制定下水道管理策略方面。然而,常规获得的校准数据集通常不是穷举的并且具有明显的缺点。自2002年以来,在格拉茨西部集水区(奥地利格拉茨),对排放和污染物浓度进行了连续的高分辨率长期在线测量。在本文中,单目标和多目标自动校准方案的应用基于进化策略的确定性水文污染物负荷模型将被讨论。研究并比较了三种污染物负荷建模方法:使用恒定的暴风雨天气浓度和两种分别具有基本扩展的冲洗方程的表面累积冲洗方法。结果表明,所应用的自动校准方法对于校准和验证数据集以及干旱和暴风雨径流都产生了非常令人满意的结果。多目标校准的结果在验证事件中显示出比单目标校准更好的鲁棒性。使用基本冲洗方程的累积冲洗方法可在测量数据和模拟结果之间实现最佳关联。

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