Optimized Adaptive Local Iterative Filtering Algorithm Based on Permutation Entropy for Rolling Bearing Fault Diagnosis

Author:

Lv Yong,Zhang YiORCID,Yi Cancan

Abstract

The characteristics of the early fault signal of the rolling bearing are weak and this leads to difficulties in feature extraction. In order to diagnose and identify the fault feature from the bearing vibration signal, an adaptive local iterative filter decomposition method based on permutation entropy is proposed in this paper. As a new time-frequency analysis method, the adaptive local iterative filtering overcomes two main problems of mode decomposition, comparing traditional methods: modal aliasing and the number of components is uncertain. However, there are still some problems in adaptive local iterative filtering, mainly the selection of threshold parameters and the number of components. In this paper, an improved adaptive local iterative filtering algorithm based on particle swarm optimization and permutation entropy is proposed. Firstly, particle swarm optimization is applied to select threshold parameters and the number of components in ALIF. Then, permutation entropy is used to evaluate the mode components we desire. In order to verify the effectiveness of the proposed method, the numerical simulation and experimental data of bearing failure are analyzed.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Hubei province

Publisher

MDPI AG

Subject

General Physics and Astronomy

Cited by 20 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Research on FID signal denoising method in proton precession magnetometer using adaptive local iterative filtering;International Workshop on Gravity, Electrical & Magnetic Methods and Their Applications, Shenzhen, China, May 19–22, 2024;2024-08-23

2. Adaptive local binarization feature mode decomposition and its application in combined failure identification of rolling bearings;Measurement Science and Technology;2024-07-26

3. Shift-Invariant Sparse Filtering for Bearing Weak Fault Signal Denoising;IEEE Sensors Journal;2023-11-01

4. Bearing Fault Detection Based on Multiresolution Permutation Entropy;2023 5th International Conference on System Reliability and Safety Engineering (SRSE);2023-10-20

5. Improved ALIF and its application to rolling bearing fault diagnosis;Measurement Science and Technology;2023-10-05

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