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      Research on Fault Diagnosis of Gearbox with Improved Variational Mode Decomposition

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          Abstract

          Variational Mode Decomposition (VMD) can decompose signals into multiple intrinsic mode functions (IMFs). In recent years, VMD has been widely used in fault diagnosis. However, it requires a preset number of decomposition layers K and is sensitive to background noise. Therefore, in order to determine K adaptively, Permutation Entroy Optimization (PEO) is proposed in this paper. This algorithm can adaptively determine the optimal number of decomposition layers K according to the characteristics of the signal to be decomposed. At the same time, in order to solve the sensitivity of VMD to noise, this paper proposes a Modified VMD (MVMD) based on the idea of Noise Aided Data Analysis (NADA). The algorithm first adds the positive and negative white noise to the original signal, and then uses the VMD to decompose it. After repeated cycles, the noise in the original signal will be offset to each other. Then each layer of IMF is integrated with each layer, and the signal is reconstructed according to the results of the integrated mean. MVMD is used for the final decomposition of the reconstructed signal. The algorithm is used to deal with the simulation signals and measured signals of gearbox with multiple fault characteristics. Compared with the decomposition results of EEMD and VMD, it shows that the algorithm can not only improve the signal to noise ratio (SNR) of the signal effectively, but can also extract the multiple fault features of the gear box in the strong noise environment. The effectiveness of this method is verified.

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          Most cited references24

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          Variational Mode Decomposition

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            Permutation entropy: a natural complexity measure for time series.

            We introduce complexity parameters for time series based on comparison of neighboring values. The definition directly applies to arbitrary real-world data. For some well-known chaotic dynamical systems it is shown that our complexity behaves similar to Lyapunov exponents, and is particularly useful in the presence of dynamical or observational noise. The advantages of our method are its simplicity, extremely fast calculation, robustness, and invariance with respect to nonlinear monotonous transformations.
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              A parameter-adaptive VMD method based on grasshopper optimization algorithm to analyze vibration signals from rotating machinery

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                Author and article information

                Journal
                Sensors (Basel)
                Sensors (Basel)
                sensors
                Sensors (Basel, Switzerland)
                MDPI
                1424-8220
                18 October 2018
                October 2018
                : 18
                : 10
                : 3510
                Affiliations
                College of Mechanical Engineering, North University of China, Taiyuan 030051, China; wangzhijian1013@ 123456163.com (Z.W.); yihuina01161013@ 123456163.com (W.D.)
                Author notes
                [* ]Correspondence: wjy@ 123456nuc.edu.cn or wangyi01161013@ 123456163.com ; Tel.: +86-186-3616-2629
                Article
                sensors-18-03510
                10.3390/s18103510
                6210352
                30340341
                733dc355-00a7-4a91-93f5-5a24d8e0bbb0
                © 2018 by the authors.

                Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license ( http://creativecommons.org/licenses/by/4.0/).

                History
                : 31 August 2018
                : 26 September 2018
                Categories
                Article

                Biomedical engineering
                gearbox,multiple fault features,permutation entropy optimization,variational mode decomposition

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