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      Fault Diagnosis of a Wind Turbine Gearbox Based on Improved Variational Mode Algorithm and Information Entropy

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          Abstract

          The working environment of wind turbine gearboxes is complex, complicating the effective monitoring of their running state. In this paper, a new gearbox fault diagnosis method based on improved variational mode decomposition (IVMD), combined with time-shift multi-scale sample entropy (TSMSE) and a sparrow search algorithm-based support vector machine (SSA-SVM), is proposed. Firstly, a novel algorithm, IVMD, is presented for solving the problem where VMD parameters ( K and α) need to be selected in advance, which mainly contains two steps: the maximum kurtosis index is employed to preliminarily determine a series of local optimal decomposition parameters ( K and α), then from the local parameters, the global optimum parameters are selected based on the minimum energy loss coefficient (ELC). After decomposition by IVMD, the raw signal is divided into K intrinsic mode functions (IMFs), the optimal IMF(s) with abundant fault information is (are) chosen based on the minimum envelopment entropy criterion. Secondly, the time-shift technique is introduced to information entropy, the time-shift multi-scale sample entropy algorithm is applied for the analysis of the complexity of the chosen optimal IMF and extract fault feature vectors. Finally, the sparrow search algorithm, which takes the classification error rate of SVM as the fitness function, is used to adaptively optimize the SVM parameters. Next, the extracted TSMSEs are input into the SSA-SVM model as the feature vector to identify the gear signal types under different conditions. The simulation and experimental results confirm that the proposed method is feasible and superior in gearbox fault diagnosis when compared with other methods.

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          Variational Mode Decomposition

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            A novel swarm intelligence optimization approach: sparrow search algorithm

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              Approximate Entropy as a diagnostic tool for machine health monitoring

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                Author and article information

                Contributors
                Role: Academic Editor
                Journal
                Entropy (Basel)
                Entropy (Basel)
                entropy
                Entropy
                MDPI
                1099-4300
                23 June 2021
                July 2021
                : 23
                : 7
                : 794
                Affiliations
                School of Mechanical Engineering, Xinjiang University, Urumqi 830047, China; zhangfan@ 123456stu.xju.edu.cn (F.Z.); wanghongwei@ 123456stu.xju.edu.cn (H.W.); xutiantian@ 123456stu.xju.edu.cn (T.X.)
                Author notes
                [* ]Correspondence: sunwenxj@ 123456163.com
                Article
                entropy-23-00794
                10.3390/e23070794
                8306640
                34201463
                660d307c-ddfb-40b6-bcdc-c9f972177135
                © 2021 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 ( https://creativecommons.org/licenses/by/4.0/).

                History
                : 11 May 2021
                : 21 June 2021
                Categories
                Article

                wind turbine gearbox,variational mode decomposition,time-shifting multi-scale sample entropy,sparrow search algorithm,support vector machine,fault diagnosis

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