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Climate change impacts on activated sludge wastewater treatment: a case study from Norway

机译:气候变化对活性污泥废水处理的影响:来自挪威的案例研究

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We present an investigation on climate change effects on a wastewater treatment system that receive sewage collected in a combined sewer system in Oslo, Norway, during winter operation. Results obtained, by contrasting meteorological data with sewage data, show that wastewater treatment plant (WWTP) influent flow rates are significantly increased during temporary snow melting periods above a critical daily air mean temperature of approx. -1.5 degrees C degree (T-Crit) identified in the area. In order to assess melting patterns, the number of days above and below TCrit was assessed, and the annual number of melting periods was additionally evaluated using meteorological data obtained in the last decade. A striking thing about the daily air temperature pattern is that, despite the progressively warmer winter temperatures in the last decade, an increasing number of days with temperatures below -1.5 degrees C could be observed. The frequency of melting periods is shown to increase in wintertime, and it is identified as an additional climate change related factor in the Oslo region. We demonstrate that these impacts can deteriorate the WWTP operation through progressively increasing the relative frequencies of very high influent flow rate and of the very low influent sewage temperature. Such climate change related effects on sewage treatment processes can be characterised as shock-conditions, i.e. significant changes in a system's boundary conditions, occurring in a relatively short period of time. In the six year period examined, biological nitrogen removal and secondary clarification processes are shown to be significantly affected by the climate factors. A striking thing about using the state-of-the-art mathematical models of wastewater treatment processes in decision support systems is their inability of describing, and thus predicting the effects of such shock-loading events, as they have not been studied so far. Adaptation and optimisation of process models, also for use in design, optimisation as well as in real-time automation and process control schemes, are thus critical to meet the challenges of climatic changes in the future.
机译:我们对冬季运营期间气候变化对废水处理系统的影响进行了调查,该废水处理系统接收在挪威奥斯陆的联合下水道系统中收集的污水。通过将气象数据与污水数据进行对比而获得的结果表明,在临时性融雪期间,高于每天大约临界空气平均温度的过程中,废水处理厂(WWTP)的进水流量显着增加。在该区域识别出-1.5摄氏度(T-Crit)。为了评估融化模式,评估了高于和低于TCrit的天数,并使用最近十年中获得的气象数据额外评估了每年的融化期数。关于每日空气温度变化的一个惊人现象是,尽管在过去十年中冬季温度逐渐升高,但仍可以观察到温度低于-1.5摄氏度的日子越来越多。冬季融化的频率显示增加,并且被认为是奥斯陆地区与气候变化有关的另一个因素。我们证明了这些影响可以通过逐渐增加非常高的进水流量和非常低的进水污水温度的相对频率来使污水处理厂的运行恶化。这种与气候变化有关的对污水处理过程的影响可被描述为冲击条件,即系统边界条件的重大变化,发生在相对较短的时间内。在所研究的六年中,生物除氮和二次净化过程显示出受气候因素的显着影响。在决策支持系统中使用最先进的废水处理过程数学模型的一个惊人之处是它们无法描述,因此无法预测此类冲击负荷事件的影响,因为到目前为止尚未对其进行研究。过程模型的适应和优化,也用于设计,优化以及实时自动化和过程控制方案,因此对于应对未来气候变化的挑战至关重要。

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