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基于概率神经网络的风机故障诊断
引用本文:李铁军,朱成实,吕营,王丹,王学平. 基于概率神经网络的风机故障诊断[J]. 煤矿机械, 2007, 28(10): 187-189
作者姓名:李铁军  朱成实  吕营  王丹  王学平
作者单位:沈阳化工学院,机械工程学院,沈阳,110142
摘    要:针对风机常见故障征兆与故障类型之间的非线性映射关系,结合专家知识建立了风机系统故障知识库,提出了基于PNN神经网络的风机故障诊断方法,结果表明该方法能克服BP算法诊断过程中容易陷入局部极小的缺点,并能满足故障诊断的快速性和准确性要求,适用于在线检测,具有实际应用价值。

关 键 词:PNN神经网络  故障诊断  风机
文章编号:1003-0794(2007)10-0187-03
修稿时间:2007-07-05

Fault Diagnosis of Fan Based on Probabilistic Neural Network
LI Tie-jun,ZHU Cheng-shi,LV Ying,WANG Dan,WANG Xue-ping. Fault Diagnosis of Fan Based on Probabilistic Neural Network[J]. Coal Mine Machinery, 2007, 28(10): 187-189
Authors:LI Tie-jun  ZHU Cheng-shi  LV Ying  WANG Dan  WANG Xue-ping
Affiliation:College of Mechanical Engineering, Shenyang Institute of Chemical Technology, Shenyang 11014% China
Abstract:Based on nonlinear mapping relationship between fault symptom and fan faults,probabilistic neural network(PNN) approach was presented for fault diagnosis.Then fault features were extracted from fan failures and the extracted features were regarded as fault symptom eigenvector.Fault diagnosis model and fault diagnosis algorithm were given using probabilistic neural network.The result shows that probabilistic neural network can overcome the limitation of local infinitesimal of BP,and can meet the requirement for fast diagnosis rate and high diagnosis precision during fault diagnosis process,so probabilistic neural network can be used in the real time diagnosis.And it shows that the fault diagnosis based on probabilistic neural network is useful.
Keywords:probabilistic neural network   fault diagnosis   fan
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