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Application of Data Driven techniques to Predict N2O Emission in Full-scale WWTPs

机译:数据驱动技术在预测大型污水处理厂N 2 O排放中的应用

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A number of data analytics techniques are deployed to measure the influence of various waste water treatment operational parameters against the nitrous oxide (N2O) emission. N2O is a major threat to the ozone layer and constitutes 80% of total Greenhouse Gas emissions of Waste Water Treatment Plants (WWTPs). The measurement and prediction of N2O emission from WWTP is challenging and costly. Thus, it is important to identify key control parameters that allows for accurately predicting and reducing N2O generation and emission. The current work compares various data driven techniques that identify key parameters and methods of predicting N2O emission. It provides insight to the suitability of each technique for control and optimisation of the target process. The main contribution of this research is introducing two new techniques that applied first time in WWTPs and could cover some current techniques shortcomings in real-time.
机译:部署了许多数据分析技术来测量各种废水处理操作参数对一氧化二氮(N 2 O)排放。 ñ 2 O是对臭氧层的主要威胁,占废水处理厂(WWTP)温室气体排放总量的80%。氮的测量与预测 2 污水处理厂的O排放具有挑战性且成本高昂。因此,重要的是要确定关键控制参数,以便准确预测和减少N 2 O的产生和排放。当前的工作比较了识别关键参数的各种数据驱动技术和预测N的方法 2 O排放。它提供了洞悉每种技术对目标过程的控制和优化的适用性。这项研究的主要贡献是介绍了两种首次应用于污水处理厂的新技术,这些新技术可以实时弥补当前的一些技术缺陷。

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