Seismic Vulnerability Assessment of Hybrid Mold Transformer Based on Dynamic Analyses

In the present study, the seismic vulnerability of a hybrid mold transformer was investigated using a dynamic analytical approach incorporating the experimental results of shaking table tests. The analytical model consisted of linear springs and plastic beam elements, and it has six degrees of freed...

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Main Authors: Ngoc Hieu Dinh, Joo-Young Kim, Seung-Jae Lee, Kyoung-Kyu Choi
Format: Article
Language:English
Published: MDPI AG 2019-08-01
Series:Applied Sciences
Subjects:
Online Access:https://www.mdpi.com/2076-3417/9/15/3180
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spelling doaj-3a53c0c6fd8d46e4a83b6a4ad552a5562020-11-25T02:20:26ZengMDPI AGApplied Sciences2076-34172019-08-01915318010.3390/app9153180app9153180Seismic Vulnerability Assessment of Hybrid Mold Transformer Based on Dynamic AnalysesNgoc Hieu Dinh0Joo-Young Kim1Seung-Jae Lee2Kyoung-Kyu Choi3School of Architecture, Soongsil University, 369 Sangdo-ro, Dongjak-gu, Seoul 06978, KoreaSchool of Architecture, Soongsil University, 369 Sangdo-ro, Dongjak-gu, Seoul 06978, KoreaSchool of Architecture, Soongsil University, 369 Sangdo-ro, Dongjak-gu, Seoul 06978, KoreaSchool of Architecture, Soongsil University, 369 Sangdo-ro, Dongjak-gu, Seoul 06978, KoreaIn the present study, the seismic vulnerability of a hybrid mold transformer was investigated using a dynamic analytical approach incorporating the experimental results of shaking table tests. The analytical model consisted of linear springs and plastic beam elements, and it has six degrees of freedom simulating the hybrid mold transformer. The dynamic characteristics of the analytical model were determined based on the shaking table tests. The reliability of the analytical model was verified by comparing the test results and analytical results. In order to assess the seismic vulnerability, three critical damage states observed during the shaking table tests were investigated by incorporating the three performance levels specified in ASCE 41-17. Comprehensive dynamic analyses were performed with a set of twenty earthquakes in consideration of the variation of the uncertain parameters (such as the effective stiffness and coil mass) of the mold transformer. Based on the analytical results, fragility curves were established to predict the specified exceedance probability of the mold transformer according to the performance levels.https://www.mdpi.com/2076-3417/9/15/3180hybrid mold transformerprobability of exceedanceanalytical modelnonstructural elementsfragility curveseismic vulnerability assessment
collection DOAJ
language English
format Article
sources DOAJ
author Ngoc Hieu Dinh
Joo-Young Kim
Seung-Jae Lee
Kyoung-Kyu Choi
spellingShingle Ngoc Hieu Dinh
Joo-Young Kim
Seung-Jae Lee
Kyoung-Kyu Choi
Seismic Vulnerability Assessment of Hybrid Mold Transformer Based on Dynamic Analyses
Applied Sciences
hybrid mold transformer
probability of exceedance
analytical model
nonstructural elements
fragility curve
seismic vulnerability assessment
author_facet Ngoc Hieu Dinh
Joo-Young Kim
Seung-Jae Lee
Kyoung-Kyu Choi
author_sort Ngoc Hieu Dinh
title Seismic Vulnerability Assessment of Hybrid Mold Transformer Based on Dynamic Analyses
title_short Seismic Vulnerability Assessment of Hybrid Mold Transformer Based on Dynamic Analyses
title_full Seismic Vulnerability Assessment of Hybrid Mold Transformer Based on Dynamic Analyses
title_fullStr Seismic Vulnerability Assessment of Hybrid Mold Transformer Based on Dynamic Analyses
title_full_unstemmed Seismic Vulnerability Assessment of Hybrid Mold Transformer Based on Dynamic Analyses
title_sort seismic vulnerability assessment of hybrid mold transformer based on dynamic analyses
publisher MDPI AG
series Applied Sciences
issn 2076-3417
publishDate 2019-08-01
description In the present study, the seismic vulnerability of a hybrid mold transformer was investigated using a dynamic analytical approach incorporating the experimental results of shaking table tests. The analytical model consisted of linear springs and plastic beam elements, and it has six degrees of freedom simulating the hybrid mold transformer. The dynamic characteristics of the analytical model were determined based on the shaking table tests. The reliability of the analytical model was verified by comparing the test results and analytical results. In order to assess the seismic vulnerability, three critical damage states observed during the shaking table tests were investigated by incorporating the three performance levels specified in ASCE 41-17. Comprehensive dynamic analyses were performed with a set of twenty earthquakes in consideration of the variation of the uncertain parameters (such as the effective stiffness and coil mass) of the mold transformer. Based on the analytical results, fragility curves were established to predict the specified exceedance probability of the mold transformer according to the performance levels.
topic hybrid mold transformer
probability of exceedance
analytical model
nonstructural elements
fragility curve
seismic vulnerability assessment
url https://www.mdpi.com/2076-3417/9/15/3180
work_keys_str_mv AT ngochieudinh seismicvulnerabilityassessmentofhybridmoldtransformerbasedondynamicanalyses
AT jooyoungkim seismicvulnerabilityassessmentofhybridmoldtransformerbasedondynamicanalyses
AT seungjaelee seismicvulnerabilityassessmentofhybridmoldtransformerbasedondynamicanalyses
AT kyoungkyuchoi seismicvulnerabilityassessmentofhybridmoldtransformerbasedondynamicanalyses
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