4.7 Article

Prediction model of natural gas pipeline crack evolution based on optimized DCNN-LSTM

期刊

出版社

ACADEMIC PRESS LTD- ELSEVIER SCIENCE LTD
DOI: 10.1016/j.ymssp.2022.109557

关键词

Acoustic emission; Time series prediction; CNN-LSTM; Attention mechanism; Original CEEMD algorithm

资金

  1. National Key Research and Development Program of China [2018YFF0215003]
  2. State Key Laboratory of Process Automation in Mining Metallurgy
  3. Beijing Key Laboratory of Process Automation in Mining Metallurgy [BGRIMM-KZSKL-2021-04]

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This paper proposes a time series prediction method based on acoustic emission signals, which can effectively predict crack evolution in natural gas pipelines. It improves the prediction accuracy and is significant for the safe operation of gas projects.
Pipelines are one of the most important tools for natural gas transportation. To avoid accidents caused by local cracks in the pipeline, it is necessary to develop a model that can predict crack evolution. A time series prediction method for the evolution of natural gas pipeline crack based on acoustic emission signals is proposed in this paper based on the convolutional neural network (CNN), and long-short-term memory (LSTM) models (CNN-LSTM), on attention mechanism (AM), and optimized noise reduction. The model includes three structures. First, based on the original CEEMD algorithm combined with wavelet threshold denoising, the crack evolution signal features are effectively enhanced by improving the denoising threshold function. Then, the crack evolution features are extracted and predicted for the noise-reduced acoustic emission signal through an AM-based bidirectional CNN-LSTM network. Lastly, the final prediction result of the model is output by the fully connected layer. The experimental results show that the method effectively improves the prediction accuracy of crack evolution and achieves end-to-end prediction. Compared with other prediction models, the results obtained in this paper demonstrate that the proposed model is characterized by higher effectiveness and superiority in predicting time series failures. The aforementioned is significant for improving the long-term safe operation of natural gas projects.

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