Method and device for intelligent diagnosis of important service water pump

An intelligent diagnosis and water pump technology, applied in neural learning methods, nuclear power generation, greenhouse gas reduction, etc., can solve the problem that performance depends on the depth model, cannot establish direct linear or nonlinear mapping, etc., to improve robustness and generalization. The effect of reducing the dependence on prior knowledge and expert experience, and improving the diagnosis effect

Pending Publication Date: 2022-05-27
CHINA NUCLEAR POWER ENG CO LTD
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Problems solved by technology

However, there are still deficiencies in deep learning models: (1) It is impossible to establish a direct linear or nonlinear mapping between raw data and corresponding failure modes, and the performance of these fault diagnosis methods depends on the quality of b

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  • Method and device for intelligent diagnosis of important service water pump
  • Method and device for intelligent diagnosis of important service water pump
  • Method and device for intelligent diagnosis of important service water pump

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Embodiment Construction

[0070] In order to make the object of the present invention, the technical solution and advantages more clearly understood, the following in conjunction with the accompanying drawings and embodiments, the present invention will be further elaborated in detail. It should be understood that the specific embodiments described herein are only used to explain the present invention and are not intended to qualify the present invention.

[0071] The present invention takes into account the important plant pump fault types more, the use of traditional supervision methods is not only time-consuming and labor-intensive and diagnostic accuracy is not high, so the design of a fault game model, reinforcement learning and deep learning combined, the fault signal is preprocessed, and then by stacking self-coding neural network to reduce the dimensionality of multiple hidden layers and feature extraction, the use of BP neural network to optimize the initial parameters, to obtain a deep neural net...

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Abstract

The invention relates to an important service water pump intelligent diagnosis method and device, and the method comprises the steps: S1, collecting vibration signals of an important service water pump under different working conditions, and obtaining sample points of the vibration signals containing different fault states; s2, carrying out wavelet threshold denoising preprocessing on the sample points; s3, establishing a fault game model to provide an interactive environment of observation, action and award obtaining for a fault diagnosis agent; s4, dimensionality reduction and feature extraction are carried out on the multiple hidden layers through a stacked self-encoding neural network, initial parameters are optimized through a BP neural network, and a deep neural network model with feature extraction and mode recognition functions is obtained; and S5, outputting a diagnosis result. According to vibration signals in different states, the deep neural network model can be effectively established by designing a fault diagnosis game environment and combining reinforcement learning and deep learning, intelligent diagnosis is realized, and a good diagnosis effect is achieved.

Description

Technical field [0001] The present invention relates to mechanical fault diagnosis and computer artificial intelligence field, specifically to an important plant pump intelligent diagnosis method and apparatus. Background [0002] The Important Plant Water Pump is an important nuclear safety tertiary equipment for nuclear power plants, which is a device that serves the heat exchanger of the cooling water system of the nuclear power plant equipment. The seawater transported by the pumps of important plants transfers the heat from the heat exchanger to the natural world (the sea) to ensure the safe and reliable operation of various equipment in nuclear power plants. The failure of the pump will lead to a decrease in performance, which may cause huge economic losses or even catastrophic accidents. [0003] In the prior art, the commonly used rotating machinery fault diagnosis method preprocesses the data by acquiring signal data and performing empirical modal decomposition, local me...

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Application Information

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IPC IPC(8): G06K9/00G06K9/62G06N3/04G06N3/08
CPCG06N3/088G06N3/047G06N3/044G06F2218/00G06F2218/06G06F2218/12G06F18/2415Y02E30/00
Inventor 张荣勇智一凡李奇张文杰代丽李娜黄倩
Owner CHINA NUCLEAR POWER ENG CO LTD
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