Title :
Residual life predictions from vibration-based degradation signals: a neural network approach
Author :
Gebraeel, Nagi ; Lawley, Mark ; Liu, R. ; Parmeshwaran, Vijay
Author_Institution :
Sch. of Ind. Eng., Purdue Univ., West Lafayette, IN, USA
fDate :
6/1/2004 12:00:00 AM
Abstract :
Maintenance of mechanical and rotational equipment often includes bearing inspection and/or replacement. Thus, it is important to identify current as well as future conditions of bearings to avoid unexpected failure. Most published research in this area is focused on diagnosing bearing faults. In contrast, this paper develops neural-network-based models for predicting bearing failures. An experimental setup is developed to perform accelerated bearing tests where vibration information is collected from a number of bearings that are run until failure. This information is then used to train neural network models on predicting bearing operating times. Vibration data from a set of validation bearings are then applied to these network models. Resulting predictions are then used to estimate the bearing failure time. These predictions are then compared with the actual lives of the validation bearings and errors are computed to evaluate the effectiveness of each model. For the best model, we find that 64% of predictions are within 10% of actual bearing life, while 92% of predictions are within 20% of the actual life.
Keywords :
backpropagation; failure analysis; fault diagnosis; life testing; neural nets; prediction theory; preventive maintenance; rolling bearings; vibrations; accelerated bearing tests; actual bearing life; backpropagation; bearing fault diagnosing; bearing inspection; error computation; mechanical maintenance; neural networks; prediction methods; rotational equipment; vibration data; vibration-based degradation signals; Condition monitoring; Degradation; Fatigue; Frequency; Life estimation; Neural networks; Performance evaluation; Predictive models; Testing; Vibrations; Backpropagation; neural networks; prediction methods; vibrations;
Journal_Title :
Industrial Electronics, IEEE Transactions on
DOI :
10.1109/TIE.2004.824875