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上传日期:2010-05-27 09:48:52
说明: 本文 通 过 对己有模型和锅炉运行现状的分析,尝试用BP神经网络的方法分析讨论锅炉效率在线计算和运行优化等问题。研究工作主要包括:基于BP神经网络进行煤的工业分析结果和元素分析结果之间的转换 考虑到煤在锅炉中燃烧时有固体未燃碳存在,给出了煤组成成分的实际结果的概念 详细讨论了过量空气系数的两种定义及特点,说明运行中用烟气分析结果确定过量空气系数时,对测得的湿烟气含氧量进行修正的必要性和方法:以反平衡法为基础给出了改进的锅炉效率在线计算模型 以效率在线计算为基础,尝试运用神经网络方法确定锅炉运行中的最佳过量空气系数。
(Ac co rdi ngt ot hea nalysiso fa vailablem odelsa ndb oilerru nning
conditions, the problems in relation to the on-line calculation for
boiler efficiency and optimization operation can be discussed with
BPn euraln etworki nt histh esis.T her esearchw orkm ainlyc onclude:
The transformation between the industrial analysis results and the
element analysis results of coals based on neural network is discussed.
The concept of the actual results of coal ingredients is put forward
because there are some solid carbon not burned when coals burn in
boiler furnace. The two definitions of the excess air coefficient is
discusses in details. The necessity and methods of modifying the
oxygen content in damp gas are explained when the excess air
coefficient are determined with the results of gas analysis. The
modified on-line calculation model for the boiler efficiency on the
basis of the negative equation way is developed. Neural network
methods to determine the optimum excess air coef)
文件列表:
MATLAB.pdf,86379,2010-05-09