Publication | Open Access
Thermal Imaging and Vibration-Based Multisensor Fault Detection for Rotating Machinery
104
Citations
21
References
2019
Year
Fault DiagnosisEngineeringVibration MeasurementDiagnosisVibration AnalysisCondition MonitoringMultisensor SystemCalibrationSystems EngineeringInstrumentationSensor DataMechatronicsComputer EngineeringStructural Health MonitoringThermal ImagingAutomatic Fault DetectionThermographySensorsFault EstimationInfrared SensorMechanical SystemsSensor HealthIndustrial InformaticsFault DetectionInfrared Imaging
In order to minimize operation and maintenance costs and extend the lifetime of rotating machinery, damaging conditions and faults should be detected early and automatically. To enable this, sensor streams should continuously be monitored, processed, and interpreted. In recent years, infrared thermal imaging has gained attention for the said purpose. However, the detection capabilities of a system that uses infrared thermal imaging is limited by the modality captured by this single sensor, as is any single sensor-based system. Hence, within this paper a multisensor system is proposed that not only uses infrared thermal imaging data, but also vibration measurements for automatic condition and fault detection in rotating machinery. It is shown that by combining these two types of sensor data, several conditions/faults and combinations can be detected more accurately than when considering the sensor streams individually.
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