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      Multiple-Fault Detection Methodology Based on Vibration and Current Analysis Applied to Bearings in Induction Motors and Gearboxes on the Kinematic Chain

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          Abstract

          Gearboxes and induction motors are important components in industrial applications and their monitoring condition is critical in the industrial sector so as to reduce costs and maintenance downtimes. There are several techniques associated with the fault diagnosis in rotating machinery; however, vibration and stator currents analysis are commonly used due to their proven reliability. Indeed, vibration and current analysis provide fault condition information by means of the fault-related spectral component identification. This work presents a methodology based on vibration and current analysis for the diagnosis of wear in a gearbox and the detection of bearing defect in an induction motor both linked to the same kinematic chain; besides, the location of the fault-related components for analysis is supported by the corresponding theoretical models. The theoretical models are based on calculation of characteristic gearbox and bearings fault frequencies, in order to locate the spectral components of the faults. In this work, the influence of vibrations over the system is observed by performing motor current signal analysis to detect the presence of faults. The obtained results show the feasibility of detecting multiple faults in a kinematic chain, making the proposed methodology suitable to be used in the application of industrial machinery diagnosis.

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          Most cited references34

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          Advances in Diagnostic Techniques for Induction Machines

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            Bearing Health Monitoring Based on Hilbert–Huang Transform, Support Vector Machine, and Regression

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              Trends in Fault Diagnosis for Electrical Machines: A Review of Diagnostic Techniques

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                Author and article information

                Journal
                Shock and Vibration
                Shock and Vibration
                Hindawi Limited
                1070-9622
                1875-9203
                2016
                2016
                : 2016
                :
                : 1-13
                Article
                10.1155/2016/5467643
                f29a9b7b-fea8-4923-be0c-62d43a26d670
                © 2016

                http://creativecommons.org/licenses/by/4.0/

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