Frequency Based Substructuring and Coupling Enhancement Using Estimated Rotational Frequency Response Functions

Accurate estimation of rotational frequency response functions (FRFs) is an essential element of successful structural coupling. It is well known that the experimental estimation of structural excitations is very difficult with current technology. This paper proposes a scheme to improve the performa...

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Published in:Experimental Techniques
Main Author: Mirza W.I.I.W.I.; Kyprianou A.; da Silva T.A.N.; Rani M.N.A.
Format: Article
Language:English
Published: Springer Science and Business Media Deutschland GmbH 2024
Online Access:https://www.scopus.com/inward/record.uri?eid=2-s2.0-85168323909&doi=10.1007%2fs40799-023-00670-0&partnerID=40&md5=92506efac237deb10c25e805bae47195
id 2-s2.0-85168323909
spelling 2-s2.0-85168323909
Mirza W.I.I.W.I.; Kyprianou A.; da Silva T.A.N.; Rani M.N.A.
Frequency Based Substructuring and Coupling Enhancement Using Estimated Rotational Frequency Response Functions
2024
Experimental Techniques
48
3
10.1007/s40799-023-00670-0
https://www.scopus.com/inward/record.uri?eid=2-s2.0-85168323909&doi=10.1007%2fs40799-023-00670-0&partnerID=40&md5=92506efac237deb10c25e805bae47195
Accurate estimation of rotational frequency response functions (FRFs) is an essential element of successful structural coupling. It is well known that the experimental estimation of structural excitations is very difficult with current technology. This paper proposes a scheme to improve the performance of the frequency-based substructuring (FBS) method by estimating unmeasured FRFs, including those corresponding to rotational degrees of freedom, from a set of experimentally determined translational FRFs. More specifically, the modal parameters extracted by modal analysis (EMA) from the experimentally determined FRFs are used for model updating, modal expansion and FRF synthesis. For this purpose, an approximate modelling approach is proposed, where a simplified and approximate finite element model (ASFE) is developed and updated to accurately reproduce the experimental responses. A modal expansion basis is then constructed from the ASFE to expand the mode shapes using the system equivalent reduction and expansion process (SEREP). FRF synthesis is then used to derive unmeasured translational and rotational FRFs. The synthesised FRFs within the frequency range of interest agree well with the experimental FRFs. The synthesised full FRF matrix is then used with the FBS method to derive the response model for the coupled structure in a bottom-up modelling approach. © The Society for Experimental Mechanics, Inc 2023.
Springer Science and Business Media Deutschland GmbH
7328818
English
Article

author Mirza W.I.I.W.I.; Kyprianou A.; da Silva T.A.N.; Rani M.N.A.
spellingShingle Mirza W.I.I.W.I.; Kyprianou A.; da Silva T.A.N.; Rani M.N.A.
Frequency Based Substructuring and Coupling Enhancement Using Estimated Rotational Frequency Response Functions
author_facet Mirza W.I.I.W.I.; Kyprianou A.; da Silva T.A.N.; Rani M.N.A.
author_sort Mirza W.I.I.W.I.; Kyprianou A.; da Silva T.A.N.; Rani M.N.A.
title Frequency Based Substructuring and Coupling Enhancement Using Estimated Rotational Frequency Response Functions
title_short Frequency Based Substructuring and Coupling Enhancement Using Estimated Rotational Frequency Response Functions
title_full Frequency Based Substructuring and Coupling Enhancement Using Estimated Rotational Frequency Response Functions
title_fullStr Frequency Based Substructuring and Coupling Enhancement Using Estimated Rotational Frequency Response Functions
title_full_unstemmed Frequency Based Substructuring and Coupling Enhancement Using Estimated Rotational Frequency Response Functions
title_sort Frequency Based Substructuring and Coupling Enhancement Using Estimated Rotational Frequency Response Functions
publishDate 2024
container_title Experimental Techniques
container_volume 48
container_issue 3
doi_str_mv 10.1007/s40799-023-00670-0
url https://www.scopus.com/inward/record.uri?eid=2-s2.0-85168323909&doi=10.1007%2fs40799-023-00670-0&partnerID=40&md5=92506efac237deb10c25e805bae47195
description Accurate estimation of rotational frequency response functions (FRFs) is an essential element of successful structural coupling. It is well known that the experimental estimation of structural excitations is very difficult with current technology. This paper proposes a scheme to improve the performance of the frequency-based substructuring (FBS) method by estimating unmeasured FRFs, including those corresponding to rotational degrees of freedom, from a set of experimentally determined translational FRFs. More specifically, the modal parameters extracted by modal analysis (EMA) from the experimentally determined FRFs are used for model updating, modal expansion and FRF synthesis. For this purpose, an approximate modelling approach is proposed, where a simplified and approximate finite element model (ASFE) is developed and updated to accurately reproduce the experimental responses. A modal expansion basis is then constructed from the ASFE to expand the mode shapes using the system equivalent reduction and expansion process (SEREP). FRF synthesis is then used to derive unmeasured translational and rotational FRFs. The synthesised FRFs within the frequency range of interest agree well with the experimental FRFs. The synthesised full FRF matrix is then used with the FBS method to derive the response model for the coupled structure in a bottom-up modelling approach. © The Society for Experimental Mechanics, Inc 2023.
publisher Springer Science and Business Media Deutschland GmbH
issn 7328818
language English
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record_format scopus
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