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Model updating in flexible-link multibody systems
The dynamic response of flexible-link multibody systems (FLMSs) can be predicted through nonlinear models based on finite elements, to describe the coupling between rigid- body and elastic behaviour. Their accuracy should be as high as possible to synthesize controllers and observers. Model updating...
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Published in: | Journal of physics. Conference series 2016-09, Vol.744 (1), p.12073 |
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description | The dynamic response of flexible-link multibody systems (FLMSs) can be predicted through nonlinear models based on finite elements, to describe the coupling between rigid- body and elastic behaviour. Their accuracy should be as high as possible to synthesize controllers and observers. Model updating based on experimental measurements is hence necessary. By taking advantage of the experimental modal analysis, this work proposes a model updating procedure for FLMSs and applies it experimentally to a planar robot. Indeed, several peculiarities of the model of FLMS should be carefully tackled. On the one hand, nonlinear models of a FLMS should be linearized about static equilibrium configurations. On the other, the experimental mode shapes should be corrected to be consistent with the elastic displacements represented in the model, which are defined with respect to a fictitious moving reference (the equivalent rigid link system). Then, since rotational degrees of freedom are also represented in the model, interpolation of the experimental data should be performed to match the model displacement vector. Model updating has been finally cast as an optimization problem in the presence of bounds on the feasible values, by also adopting methods to improve the numerical conditioning and to compute meaningful updated inertial and elastic parameters. |
doi_str_mv | 10.1088/1742-6596/744/1/012073 |
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On the other, the experimental mode shapes should be corrected to be consistent with the elastic displacements represented in the model, which are defined with respect to a fictitious moving reference (the equivalent rigid link system). Then, since rotational degrees of freedom are also represented in the model, interpolation of the experimental data should be performed to match the model displacement vector. 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Conference series</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Belotti, R</au><au>Caneva, G</au><au>Palomba, I</au><au>Richiedei, D</au><au>Trevisani, A</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Model updating in flexible-link multibody systems</atitle><jtitle>Journal of physics. Conference series</jtitle><addtitle>J. Phys.: Conf. Ser</addtitle><date>2016-09-01</date><risdate>2016</risdate><volume>744</volume><issue>1</issue><spage>12073</spage><pages>12073-</pages><issn>1742-6588</issn><eissn>1742-6596</eissn><abstract>The dynamic response of flexible-link multibody systems (FLMSs) can be predicted through nonlinear models based on finite elements, to describe the coupling between rigid- body and elastic behaviour. Their accuracy should be as high as possible to synthesize controllers and observers. 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subjects | Dynamic response Elasticity Finite element method Interpolation Modal analysis Model updating Multibody systems Numerical methods Optimization Physics Static equilibrium |
title | Model updating in flexible-link multibody systems |
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