Experimental Estimation of the Elastic Modulus of Concrete Girders from Drive-By Inspections with Force-Balance Accelerometers
Parametric identification of bridges using instrumented vehicles can be challenging, mainly due to the reduced length of the time series associated with the bridge span under test. This research discusses the practicability of a time-domain identification method based on the use of an instrumented v...
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Hindawi Limited
2021-01-01
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Series: | Shock and Vibration |
Online Access: | http://dx.doi.org/10.1155/2021/1617526 |
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doaj-59aa0520d50c4a4aa4d1281b6b34246c2021-08-16T00:01:08ZengHindawi LimitedShock and Vibration1875-92032021-01-01202110.1155/2021/1617526Experimental Estimation of the Elastic Modulus of Concrete Girders from Drive-By Inspections with Force-Balance AccelerometersAngelo Aloisio0Rocco Alaggio1Università degli Studi dell’AquilaUniversità degli Studi dell’AquilaParametric identification of bridges using instrumented vehicles can be challenging, mainly due to the reduced length of the time series associated with the bridge span under test. This research discusses the practicability of a time-domain identification method based on the use of an instrumented vehicle. The highest cross-correlation between the bridge response from an elementary analytical model and the experimental one, acquired by a moving force-balance accelerometer, yields the unknown model parameter. The effect of vehicle-bridge interaction is removed by proper filtering of the signals. Specifically, the authors estimate the elastic moduli of seven prestressed concrete bridges and compare a subset of the results to the outcomes of static load tests carried out on the same bridges. There is a good correlation between the elastic moduli from the instrumented vehicle and those from static load tests: the method grasps the approximate value of the elastic modulus of concrete. Still, the data do not return an excellent match due to the bias in the estimation of the deflection shape—the paper remarks on the issues faced during the experimental tests and proposes possible enhancements of these procedures.http://dx.doi.org/10.1155/2021/1617526 |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Angelo Aloisio Rocco Alaggio |
spellingShingle |
Angelo Aloisio Rocco Alaggio Experimental Estimation of the Elastic Modulus of Concrete Girders from Drive-By Inspections with Force-Balance Accelerometers Shock and Vibration |
author_facet |
Angelo Aloisio Rocco Alaggio |
author_sort |
Angelo Aloisio |
title |
Experimental Estimation of the Elastic Modulus of Concrete Girders from Drive-By Inspections with Force-Balance Accelerometers |
title_short |
Experimental Estimation of the Elastic Modulus of Concrete Girders from Drive-By Inspections with Force-Balance Accelerometers |
title_full |
Experimental Estimation of the Elastic Modulus of Concrete Girders from Drive-By Inspections with Force-Balance Accelerometers |
title_fullStr |
Experimental Estimation of the Elastic Modulus of Concrete Girders from Drive-By Inspections with Force-Balance Accelerometers |
title_full_unstemmed |
Experimental Estimation of the Elastic Modulus of Concrete Girders from Drive-By Inspections with Force-Balance Accelerometers |
title_sort |
experimental estimation of the elastic modulus of concrete girders from drive-by inspections with force-balance accelerometers |
publisher |
Hindawi Limited |
series |
Shock and Vibration |
issn |
1875-9203 |
publishDate |
2021-01-01 |
description |
Parametric identification of bridges using instrumented vehicles can be challenging, mainly due to the reduced length of the time series associated with the bridge span under test. This research discusses the practicability of a time-domain identification method based on the use of an instrumented vehicle. The highest cross-correlation between the bridge response from an elementary analytical model and the experimental one, acquired by a moving force-balance accelerometer, yields the unknown model parameter. The effect of vehicle-bridge interaction is removed by proper filtering of the signals. Specifically, the authors estimate the elastic moduli of seven prestressed concrete bridges and compare a subset of the results to the outcomes of static load tests carried out on the same bridges. There is a good correlation between the elastic moduli from the instrumented vehicle and those from static load tests: the method grasps the approximate value of the elastic modulus of concrete. Still, the data do not return an excellent match due to the bias in the estimation of the deflection shape—the paper remarks on the issues faced during the experimental tests and proposes possible enhancements of these procedures. |
url |
http://dx.doi.org/10.1155/2021/1617526 |
work_keys_str_mv |
AT angeloaloisio experimentalestimationoftheelasticmodulusofconcretegirdersfromdrivebyinspectionswithforcebalanceaccelerometers AT roccoalaggio experimentalestimationoftheelasticmodulusofconcretegirdersfromdrivebyinspectionswithforcebalanceaccelerometers |
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1721206093159333888 |