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research article

Quantification of fundamental frequency drop for unreinforced masonry buildings from dynamic tests

Michel, Clotaire
•
Zapico, Beatriz
•
Lestuzzi, Pierino  
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2011
Earthquake Engineering and Structural Dynamics

The knowledge of fundamental frequency and damping ratio of structures is of uppermost importance in earthquake engineering, especially to estimate the seismic demand. However, elastic and plastic frequency drops and damping variations make their estimation complex. This study quantifies and models the relative frequency drop affecting low-rise modern masonry buildings and discusses the damping variations based on two experimental data sets: Pseudo-dynamic tests at ELSA laboratory in the frame of the ESECMaSE project and in situ forced vibration tests by EMPA and EPFL. The relative structural frequency drop is shown to depend mainly on shaking amplitude, whereas the damping ratio variations could not be explained by the shaking amplitude only. Therefore, the absolute frequency value depends mostly on the frequency at low amplitude level, the amplitude of shaking and the construction material. The decrease in shape does not vary significantly with increasing damage. Hence, this study makes a link between structural dynamic properties, either under ambient vibrations or under strong motions, for low-rise modern masonry buildings. A value of 2/3 of the ambient vibration frequency is found to be relevant for the earthquake engineering assessment for this building type. However, the effect of soil–structure interaction that is shown to also affect these parameters has to be taken into account. Therefore, an analytical methodology is proposed to derive first the fixed-base frequency before using these results.

  • Details
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Type
research article
DOI
10.1002/eqe.1088
Web of Science ID

WOS:000294176800006

Author(s)
Michel, Clotaire
Zapico, Beatriz
Lestuzzi, Pierino  
Molina, Francisco Javier
Weber, Felix
Date Issued

2011

Publisher

Wiley-Blackwell

Published in
Earthquake Engineering and Structural Dynamics
Volume

40

Issue

11

Start page

1283

End page

1296

Subjects

unreinforced masonry

•

fundamental frequency

•

damping ratio

•

seismic demand

•

pseudodynamic tests

•

forced vibrations

•

ambient vibrations

•

Earthquake Damage Detection

•

Shaking Table Tests

•

Seismic Vulnerability

•

Existing Buildings

•

Strong Motions

•

Identification

•

Walls

•

Model

•

Weak

Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
IMAC  
Available on Infoscience
August 18, 2011
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/70170
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