DocumentCode :
1381737
Title :
Predictive Control Considering Model Uncertainty for Variation Reduction in Multistage Assembly Processes
Author :
Zhong, Jing ; Liu, Jian ; Shi, Jianjun
Author_Institution :
Microsoft Corp., Bellevue, WA, USA
Volume :
7
Issue :
4
fYear :
2010
Firstpage :
724
Lastpage :
735
Abstract :
Active control for dimensional variation reduction in multistage assembly processes (MAPs) is a challenging issue for quality assurance. It is desirable to implement a system-level control strategy to minimize the end-of-line product variance, which is propagated from upstream manufacturing stages. Research has been conducted to realize such objective, based on the variation propagation models derived from the nominal parameters of product and process design. However, due to the uncertainties induced by the significant changes of process parameters, such designated model will be different from that of the actual process, and will not precisely represent the actual physics of the process. This model discrepancy may lead to the performance deterioration of the controllers. This paper proposed a feed-forward MAP control strategy that explicitly takes into account the uncertainties of model coefficients. The case study demonstrates that, when the model uncertainties are significant, the controller derived from the proposed approach outperforms that derived without considering the model uncertainty.
Keywords :
assembling; feedforward; predictive control; process design; product design; quality control; uncertain systems; active control; end-of-line product variance; feedforward MAP control strategy; multistage assembly processes; performance deterioration; predictive control; process design; product design; quality assurance; system-level control strategy; uncertainty; variation propagation models; Assembly; Control systems; Feedforward systems; Manufacturing; Physics; Predictive control; Predictive models; Process design; Quality assurance; Uncertainty; Model uncertainty; multistage assembly processes; predicative control; variation reduction;
fLanguage :
English
Journal_Title :
Automation Science and Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
1545-5955
Type :
jour
DOI :
10.1109/TASE.2009.2038714
Filename :
5382492
Link To Document :
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