2023
DOI: 10.1002/ese3.1405
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A novel NOx prediction model using the parallel structure and convolutional neural networks for a coal‐fired boiler

Abstract: In this paper, a novel model with a parallel structure is proposed to predict NO x emissions from coal-fired boilers by using historical operational data, coal properties, and convolutional neural networks. The model inputs are processed and passed into three parallel subnetworks with well-designed building blocks. The features learned by the three subnetworks are fused and used to predict NO x emissions from a 330-MW pulverized coal-fired utility boiler. A comprehensive comparison of different prediction mode… Show more

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