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  5. Combined Experimental-Operational Modal Testing of Footbridges

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Article
English
2010

Combined Experimental-Operational Modal Testing of Footbridges

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English
2010
Journal of Engineering Mechanics
Vol 136 (6)
DOI: 10.1061/(asce)em.1943-7889.0000119

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Edwin Reynders
Edwin Reynders

University Of Leuven

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Edwin Reynders
Daan Degrauwe
Guido De Roeck
+2 more

Abstract

In combined vibration testing, an artificial, measured force is used in operational conditions. This requires the identification of a system model that takes both the measured and the operational excitation into account. Advantages with respect to the classical operational modal analysis approach are the possibility of obtaining mass-normalized mode shapes and the increase of the excitation level and its frequency content. An advantage with respect to the classical experimental modal analysis approach, where the ambient excitation is not modeled, but considered as disturbing noise, is the possibility of using excitation levels that are of the same amplitude, or even smaller, than the ambient excitation levels. In this paper, combined modal testing of footbridges is explored using two case studies: a steel arch footbridge with spans of 75.2 m and 30.3 m and a concrete stress-ribbon footbridge with spans of 30 m and 28 m. The comparison of the modal parameters (eigenfrequencies, damping ratios, mode shapes, and modal scaling factors) obtained from a combined vibration test with the ones obtained from other modal tests and from a finite-element model, demonstrates the feasibility of using small and practical excitation devices for the modal testing of footbridges.

How to cite this publication

Edwin Reynders, Daan Degrauwe, Guido De Roeck, Filipe Magalhães, Elsa Caetano (2010). Combined Experimental-Operational Modal Testing of Footbridges. Journal of Engineering Mechanics, 136(6), pp. 687-696, DOI: 10.1061/(asce)em.1943-7889.0000119.

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Publication Details

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Article

Year

2010

Authors

5

Datasets

0

Total Files

0

Language

English

Journal

Journal of Engineering Mechanics

DOI

10.1061/(asce)em.1943-7889.0000119

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