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  4. Application of Time Series Methods on Long-Term Structural Monitoring Data for Fatigue Analysis
 
conference paper

Application of Time Series Methods on Long-Term Structural Monitoring Data for Fatigue Analysis

Ahmadivala, Morteza
•
Sawicki, Bartlomiej
•
Brühwiler, Eugen  
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2019
SMAR 2019 Programme and Downloads
SMAR 2019 - 5th International Conference on Smart Monitoring, Assessment and Rehabilitation of Civil Structures

Structural health monitoring (SHM) can be employed to reduce uncertainties in different aspects of structural analysis such as: load modeling, crack development, corrosion rates, etc. Fatigue is one of the main degradation processes of structures that causes failure before the end of their design life. Fatigue loading is among those variables that have a great influence on uncertainty in fatigue damage assessment. Conventional load models such as Rain-flow counting and Markov chains work under stationarity assumption, and they are unable to deal with the seasonality effect in fatigue loading. Time series methods, such as ARIMA (Auto-Regressive Integrated Moving Average), are able to deal with this effect in the data; hence, they can be helpful for fatigue load modelling. The goal of this study is to implement seasonal ARIMA to prepare a load model for long-term fatigue loading that can capture more details of the loading scenario regarding the seasonal effects in traffic loading.

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Type
conference paper
Author(s)
Ahmadivala, Morteza
Sawicki, Bartlomiej
Brühwiler, Eugen  
Yamalas, Thierry
Gayton, Nicolas
Mattrand, Cécile
Orcesi, André
Date Issued

2019

Published in
SMAR 2019 Programme and Downloads
Subjects

GIS_PUBLI

Note

License: https://creativecommons.org/licenses/by/4.0/

URL

Proceedings' page

https://www.smar2019.org/Programme#
Editorial or Peer reviewed

REVIEWED

Written at

EPFL

EPFL units
MCS  
Event nameEvent placeEvent date
SMAR 2019 - 5th International Conference on Smart Monitoring, Assessment and Rehabilitation of Civil Structures

Postdam, Germany

August 27-29, 2019

Available on Infoscience
September 18, 2019
Use this identifier to reference this record
https://infoscience.epfl.ch/handle/20.500.14299/161242
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