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基于BP神经网络的水力旋流器建模仿真研究
引用本文:张婧,徐文尚,盖文东,于庆明,于振波. 基于BP神经网络的水力旋流器建模仿真研究[J]. 煤矿机械, 2008, 29(9)
作者姓名:张婧  徐文尚  盖文东  于庆明  于振波
作者单位:山东科技大学,信息与电气工程学院,山东,青岛,266510
摘    要:通过对某一固定的水力旋流器自身工艺的研究,确定水力旋流器的输入与输出。分2种情况对有相互影响的输入参数分别建立BP神经网络的模型和利用Matlab工具箱中的BP神经网络建立水力旋流器的三层神经网络模型。通过对收集的该设备的实例数据进行仿真训练,结果表明不仅是旋流器本身参数,调浆槽的液位等也会对旋流器效率产生影响。

关 键 词:水力旋流器  BP神经网络  模型  样本训练

Research on Model Simulation of Hydrocyclone Based on BP Neural Network
ZHANG Jing,XU Wen-shang,GAI Wen-dong,YU Qing-ruing,YU Zhen-bo. Research on Model Simulation of Hydrocyclone Based on BP Neural Network[J]. Coal Mine Machinery, 2008, 29(9)
Authors:ZHANG Jing  XU Wen-shang  GAI Wen-dong  YU Qing-ruing  YU Zhen-bo
Abstract:Based on the research of a fixed hydrocyclone technics,definite the inputs and outputs of hydrocyclone.On the foundation of the input parameters with mutual influence divide them into two different situations to establish separately the model of BP NN(Neural Network) and use the BP neural network toolbox in Matlab to establish hydrocyclone three neural network model.Carrying on the simulation training of the equipment's collected example data,the result can indicate that not only the hydrocyclone parameters,but also the level of tank have the influence to the efficiency of hydrocyclone.
Keywords:hydrocyclone  BP neural network  model  sample training
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