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Dynamic inferential NOx emission prediction model with delay estimation for SCR de-NOx process in coal-fired power plants

机译:燃煤发电厂SCR去NOx工艺延迟估计动态推断NOx排放模型

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摘要

The selective catalytic reduction (SCR) decomposition of nitrogen oxide (de-NO x ) process in coal-fired power plants not only displays nonlinearity, large inertia and time variation but also a lag in NO x analysis; hence, it is difficult to obtain an accurate model that can be used to control NH 3 injection during changes in the operating state. In this work, a novel dynamic inferential model with delay estimation was proposed for NO x emission prediction. First, k -nearest neighbour mutual information was used to estimate the time delay of the descriptor variables, followed by reconstruction of the phase space of the model data. Second, multi-scale wavelet kernel partial least square was used to improve the prediction ability, and this was followed by verification using benchmark dataset experiments. Finally, the delay time difference method and feedback correction strategy were proposed to deal with the time variation of the SCR de-NO x process. Through the analysis of the experimental field data in the steady state, the variable state and the NO x analyser blowback process, the results proved that this dynamic model has high prediction accuracy during state changes and can realize advance prediction of the NO x emission.
机译:燃煤发电厂中氮氧化物(DE-NO X)过程的选择性催化还原(SCR)不仅显示非线性,大惯性和时间变化,而且在NO x分析中也是滞后;因此,难以获得一种准确的模型,该模型可用于控制操作状态的变化期间的NH 3喷射。在这项工作中,提出了一种具有延迟估计的新型动态推理模型,但是对于没有X发射预测。首先,用于估计描述符变量的时间延迟,然后重新重建模型数据的相位空间的k-nealest邻居互相信息。其次,用于改善预测能力的多尺度小波核部分最小二乘,然后使用基准数据集实验进行验证。最后,提出了延迟时间差法和反馈校正策略来处理SCR DE-NO X过程的时间变化。通过分析稳态的实验场数据,可变状态和无X分析仪回送过程,结果证明了该动态模型在状态变化期间具有高预测精度,可以实现NO X发射的预测。

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