Fault diagnosis method of water power set
A technology for hydroelectric generating units and fault diagnosis, applied in neural learning methods, testing of machine/structural components, measuring devices, etc., can solve problems such as deterioration of optimization performance and complicated processing process, and achieves overcoming unstable processing and clear diagnosis results. , widely used effect
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[0087] According to the collected sample data of vibration faults of hydropower units, the adaptive cuckoo search neural network (abbreviated as ACSBP) is used for fault diagnosis. In the experiment, the population size is set to 30, the maximum number of iterations is set to 200, the system parameter is 110, the conversion parameter is equal to 0.15, p amax = 1,p amin = 0.05. For comparative analysis, BP neural network and cuckoo search neural network model (CSBP) are also used in the fault diagnosis system of hydropower units. Among them, the training error curves of CSBP and ACSBP models are as follows figure 2 shown. In addition, for the convenience of drawing, the four coded failure modes correspond to 1, 2, 3 and 4, respectively. For the selected 28 groups of test samples, the distribution of the diagnostic results of the three models is as follows image 3 shown.
[0088] from figure 2 It can be seen that the CSBP model has lower convergence accuracy and slower...
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