DocumentCode :
2796545
Title :
Supporting maintenance decisions with expert and event data
Author :
Kunttu, Susanna ; Kortelainen, Helena
Author_Institution :
VTT Ind. Syst., Tampere, Finland
fYear :
2004
fDate :
26-29 Jan. 2004
Firstpage :
593
Lastpage :
599
Abstract :
A successful maintenance program incorporates planning and follow-up processes, including systematic feedback and data collection systems and routines. The aim of our study is to find methods for predicting the number of failures and the time to the next failure using expert data, which is updated with the collected event data. In this study, three methods for predicting the number of failures were compared. The event and expert data was collected from a Finnish board mill. Tested predicted methods included the moving average, and models for the Poisson process and power law process. With our data set, moving average delivered as good estimates as the more sophisticated ones. One of the four test cases showed especially large variations in the recorded yearly failure rate and none of the testing predicting methods delivered reliable estimates in this case. Because maintenance actions are carried out also during other stoppages, the event data proved to be insufficient for time to failure predictions. The results proved that a continuously improving maintenance program should be based, not only on the event data, but also on all other relevant information. This means than data from different sources need to be combined and the quality of the recorded data must be high.
Keywords :
decision making; failure analysis; maintenance engineering; process planning; stochastic processes; Finnish board mill; Poisson process; data collection systems; event data; expert data; failure predictions; maintenance decision program; moving average; power law process; systematic feedback; Availability; Continuous production; Feedback; Machinery; Maintenance; Milling machines; Predictive models; Process planning; Research and development; Testing;
fLanguage :
English
Publisher :
ieee
Conference_Titel :
Reliability and Maintainability, 2004 Annual Symposium - RAMS
Print_ISBN :
0-7803-8215-3
Type :
conf
DOI :
10.1109/RAMS.2004.1285511
Filename :
1285511
Link To Document :
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