基于小波网络的循环流化床锅炉燃烧过程预测模型

W. Hong, Qingyin Jiang, Zhikai Cao
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引用次数: 0

摘要

在循环流化床锅炉(CFBB)系统中,由于系统具有较强的非线性、耦合多变量、时滞和时变特性,燃烧过程特别是锅炉温度和主流压力过程的建模和控制问题一直是难点问题。本文介绍了一种将小波与神经网络相结合的建模技术,提出并优化了基于小波神经网络的循环流化床锅炉燃烧过程锅炉温度和主流压力预测模型。通过工业数据验证了该模型的准确性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Wavelet-network-based predictive model in combustion process of CFBB
In the circulating fluidized bed boiler (CFBB) system, the modeling and control problems of the combustion process, especially the boiler temperature and main stream pressure processes, have always been the difficult problems due to the strong nonlinearity, coupling multivariable, time delay and time-varying characteristics of the system. This paper introduces a modeling technique by combining wavelets and neural networks which results in a wavelet-neural-network based model proposed and optimized for the predictions of the boiler temperature and main stream pressure in the combustion process of CFBB. The accuracy of the proposed model is verified by industrial data.
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