High spatial-resolution loss estimation using dense array strong-motion near-fault records. Case study for Hveragerði and the Mw 6.3 Ölfus earthquake, South Iceland

The most recent and costliest damaging earthquake in Iceland is the ????w6.3 29-May-2008 Ölfus earthquake to date. In particular, Hveragerði town located in the extreme near-fault region, suffered intense horizontal peak ground accelerations (PGA) of ∼40–90%g and large amplitude and long-period near...

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Published in:International Journal of Disaster Risk Reduction
Main Authors: Darzi, Atefe, Bessason, Bjarni, Halldorsson, Benedikt, Molina-Palacios, Sergio, Kharazian, Alireza, Moosapoor, Mojtaba
Other Authors: Universidad de Alicante. Departamento de Física Aplicada, Universidad de Alicante. Instituto Multidisciplinar para el Estudio del Medio "Ramón Margalef", Grupo de Ingeniería y Riesgo Sísmico (GIRS)
Format: Article in Journal/Newspaper
Language:English
Published: Elsevier 2022
Subjects:
Online Access:http://hdl.handle.net/10045/122155
https://doi.org/10.1016/j.ijdrr.2022.102894
id ftunivalicante:oai:rua.ua.es:10045/122155
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collection RUA - Repositorio Institucional de la Universidad de Alicante
op_collection_id ftunivalicante
language English
topic Loss estimation
Intensity measure variability
South Iceland
Empirical Bayesian kriging
Geostatistical analyses
Seismic risk assessment
Física de la Tierra
spellingShingle Loss estimation
Intensity measure variability
South Iceland
Empirical Bayesian kriging
Geostatistical analyses
Seismic risk assessment
Física de la Tierra
Darzi, Atefe
Bessason, Bjarni
Halldorsson, Benedikt
Molina-Palacios, Sergio
Kharazian, Alireza
Moosapoor, Mojtaba
High spatial-resolution loss estimation using dense array strong-motion near-fault records. Case study for Hveragerði and the Mw 6.3 Ölfus earthquake, South Iceland
topic_facet Loss estimation
Intensity measure variability
South Iceland
Empirical Bayesian kriging
Geostatistical analyses
Seismic risk assessment
Física de la Tierra
description The most recent and costliest damaging earthquake in Iceland is the ????w6.3 29-May-2008 Ölfus earthquake to date. In particular, Hveragerði town located in the extreme near-fault region, suffered intense horizontal peak ground accelerations (PGA) of ∼40–90%g and large amplitude and long-period near-fault pulses, recorded on a dense urban strong-motion array in the town. In this study we collated a high-spatial resolution exposure database (building-by-building) complete with actual reported losses and classified the buildings by building materials and construction year according to the code design requirements in place at the time. We took advantage of the array data and evaluated a set of well-known ground motion intensity measures (IM), including PGA, pseudo-acceleration response spectra at short-to-long periods, Arias Intensity and Cumulative Absolute Velocity. We applied empirical Bayesian kriging geostatistical analyses to generate high-resolution shakemaps and provide IM estimates for each building. The shakemaps showed significant and systematic variation of the IMs across the small study area, with the lowest ground motions observed centrally and highest values in the outskirts. Furthermore, correlation analysis was carried out for the damage ratio and the exposure data IMs, but only low-to-moderate correlations were observed. A key reason is the incurred losses were primarily due to damage to non-structural components, to which the code design requirements do not apply. We carried out a seismic loss assessment in Hveragerði for the earthquake scenario of the Ölfus earthquake both on building-by-building, and municipality levels of spatial resolution. We applied both local and global fragility models for associated with detail building typologies identified based on the SERA taxonomy scheme. The results show that the global fragility functions severely underestimate the seismic performance of the building stock, except for one-story reinforced concrete buildings, while overall the masonry buildings were associated with the most predicted and observed losses. On the other hand, the local models predicted losses that conformed well with the observed damages to timber and concrete buildings. The high-spatial resolution predictions of losses gave results that better correlated with the observed losses in most typologies. This study was funded by the TURNkey H2020 European project (Towards more Earthquake-Resilient Urban Societies through a Multi-Sensor-Based Information System enabling Earthquake Forecasting, Early Warning and Rapid Response Actions) [www.earthquake-turnkey.eu] under grant agreement No 821046. This work was facilitated by an Erasmus+ staff mobility grant No. IS-TS2020-87850 for the lead author to the University of Alicante, Spain. This work was also partly supported by a Postdoctoral fellowship (No. 218255-051), grant of excellence (No. 218149-051) from the Icelandic Research Fund of the Icelandic Centre for Research, and the University of Iceland Research Fund.
author2 Universidad de Alicante. Departamento de Física Aplicada
Universidad de Alicante. Instituto Multidisciplinar para el Estudio del Medio "Ramón Margalef"
Grupo de Ingeniería y Riesgo Sísmico (GIRS)
format Article in Journal/Newspaper
author Darzi, Atefe
Bessason, Bjarni
Halldorsson, Benedikt
Molina-Palacios, Sergio
Kharazian, Alireza
Moosapoor, Mojtaba
author_facet Darzi, Atefe
Bessason, Bjarni
Halldorsson, Benedikt
Molina-Palacios, Sergio
Kharazian, Alireza
Moosapoor, Mojtaba
author_sort Darzi, Atefe
title High spatial-resolution loss estimation using dense array strong-motion near-fault records. Case study for Hveragerði and the Mw 6.3 Ölfus earthquake, South Iceland
title_short High spatial-resolution loss estimation using dense array strong-motion near-fault records. Case study for Hveragerði and the Mw 6.3 Ölfus earthquake, South Iceland
title_full High spatial-resolution loss estimation using dense array strong-motion near-fault records. Case study for Hveragerði and the Mw 6.3 Ölfus earthquake, South Iceland
title_fullStr High spatial-resolution loss estimation using dense array strong-motion near-fault records. Case study for Hveragerði and the Mw 6.3 Ölfus earthquake, South Iceland
title_full_unstemmed High spatial-resolution loss estimation using dense array strong-motion near-fault records. Case study for Hveragerði and the Mw 6.3 Ölfus earthquake, South Iceland
title_sort high spatial-resolution loss estimation using dense array strong-motion near-fault records. case study for hveragerði and the mw 6.3 ölfus earthquake, south iceland
publisher Elsevier
publishDate 2022
url http://hdl.handle.net/10045/122155
https://doi.org/10.1016/j.ijdrr.2022.102894
long_lat ENVELOPE(-21.186,-21.186,64.000,64.000)
geographic Hveragerði
geographic_facet Hveragerði
genre Iceland
genre_facet Iceland
op_relation https://doi.org/10.1016/j.ijdrr.2022.102894
info:eu-repo/grantAgreement/EC/H2020/821046
International Journal of Disaster Risk Reduction. 2022, 73: 102894. https://doi.org/10.1016/j.ijdrr.2022.102894
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http://hdl.handle.net/10045/122155
doi:10.1016/j.ijdrr.2022.102894
op_rights © 2022 The Authors. Published by Elsevier Ltd. This is an open access article under the CC BY-NC license (http://creativecommons.org/licenses/by-nc/4.0/).
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spelling ftunivalicante:oai:rua.ua.es:10045/122155 2023-05-15T16:48:05+02:00 High spatial-resolution loss estimation using dense array strong-motion near-fault records. Case study for Hveragerði and the Mw 6.3 Ölfus earthquake, South Iceland Darzi, Atefe Bessason, Bjarni Halldorsson, Benedikt Molina-Palacios, Sergio Kharazian, Alireza Moosapoor, Mojtaba Universidad de Alicante. Departamento de Física Aplicada Universidad de Alicante. Instituto Multidisciplinar para el Estudio del Medio "Ramón Margalef" Grupo de Ingeniería y Riesgo Sísmico (GIRS) 2022-03-10 http://hdl.handle.net/10045/122155 https://doi.org/10.1016/j.ijdrr.2022.102894 eng eng Elsevier https://doi.org/10.1016/j.ijdrr.2022.102894 info:eu-repo/grantAgreement/EC/H2020/821046 International Journal of Disaster Risk Reduction. 2022, 73: 102894. https://doi.org/10.1016/j.ijdrr.2022.102894 2212-4209 http://hdl.handle.net/10045/122155 doi:10.1016/j.ijdrr.2022.102894 © 2022 The Authors. Published by Elsevier Ltd. This is an open access article under the CC BY-NC license (http://creativecommons.org/licenses/by-nc/4.0/). info:eu-repo/semantics/openAccess CC-BY-NC Loss estimation Intensity measure variability South Iceland Empirical Bayesian kriging Geostatistical analyses Seismic risk assessment Física de la Tierra info:eu-repo/semantics/article 2022 ftunivalicante https://doi.org/10.1016/j.ijdrr.2022.102894 2022-03-23T00:19:27Z The most recent and costliest damaging earthquake in Iceland is the ????w6.3 29-May-2008 Ölfus earthquake to date. In particular, Hveragerði town located in the extreme near-fault region, suffered intense horizontal peak ground accelerations (PGA) of ∼40–90%g and large amplitude and long-period near-fault pulses, recorded on a dense urban strong-motion array in the town. In this study we collated a high-spatial resolution exposure database (building-by-building) complete with actual reported losses and classified the buildings by building materials and construction year according to the code design requirements in place at the time. We took advantage of the array data and evaluated a set of well-known ground motion intensity measures (IM), including PGA, pseudo-acceleration response spectra at short-to-long periods, Arias Intensity and Cumulative Absolute Velocity. We applied empirical Bayesian kriging geostatistical analyses to generate high-resolution shakemaps and provide IM estimates for each building. The shakemaps showed significant and systematic variation of the IMs across the small study area, with the lowest ground motions observed centrally and highest values in the outskirts. Furthermore, correlation analysis was carried out for the damage ratio and the exposure data IMs, but only low-to-moderate correlations were observed. A key reason is the incurred losses were primarily due to damage to non-structural components, to which the code design requirements do not apply. We carried out a seismic loss assessment in Hveragerði for the earthquake scenario of the Ölfus earthquake both on building-by-building, and municipality levels of spatial resolution. We applied both local and global fragility models for associated with detail building typologies identified based on the SERA taxonomy scheme. The results show that the global fragility functions severely underestimate the seismic performance of the building stock, except for one-story reinforced concrete buildings, while overall the masonry buildings were associated with the most predicted and observed losses. On the other hand, the local models predicted losses that conformed well with the observed damages to timber and concrete buildings. The high-spatial resolution predictions of losses gave results that better correlated with the observed losses in most typologies. This study was funded by the TURNkey H2020 European project (Towards more Earthquake-Resilient Urban Societies through a Multi-Sensor-Based Information System enabling Earthquake Forecasting, Early Warning and Rapid Response Actions) [www.earthquake-turnkey.eu] under grant agreement No 821046. This work was facilitated by an Erasmus+ staff mobility grant No. IS-TS2020-87850 for the lead author to the University of Alicante, Spain. This work was also partly supported by a Postdoctoral fellowship (No. 218255-051), grant of excellence (No. 218149-051) from the Icelandic Research Fund of the Icelandic Centre for Research, and the University of Iceland Research Fund. Article in Journal/Newspaper Iceland RUA - Repositorio Institucional de la Universidad de Alicante Hveragerði ENVELOPE(-21.186,-21.186,64.000,64.000) International Journal of Disaster Risk Reduction 73 102894