Scenario-based earthquake hazard and risk assessment for Baku (Azerbaijan)

A rapid growth of population, intensive civil and industrial building, land and water instabilities (e.g. landslides, significant underground water level fluctuations), and the lack of public awareness regarding seismic hazard contribute to the increase of vulnerability of Baku (the capital city of...

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Main Authors: G. Babayev, A. Ismail-Zadeh, J.-L. Le Mouël
Format: Article
Language:English
Published: Copernicus Publications 2010-12-01
Series:Natural Hazards and Earth System Sciences
Online Access:http://www.nat-hazards-earth-syst-sci.net/10/2697/2010/nhess-10-2697-2010.pdf
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author G. Babayev
A. Ismail-Zadeh
J.-L. Le Mouël
author_facet G. Babayev
A. Ismail-Zadeh
J.-L. Le Mouël
author_sort G. Babayev
collection DOAJ
description A rapid growth of population, intensive civil and industrial building, land and water instabilities (e.g. landslides, significant underground water level fluctuations), and the lack of public awareness regarding seismic hazard contribute to the increase of vulnerability of Baku (the capital city of the Republic of Azerbaijan) to earthquakes. In this study, we assess an earthquake risk in the city determined as a convolution of seismic hazard (in terms of the surface peak ground acceleration, PGA), vulnerability (due to building construction fragility, population features, the gross domestic product per capita, and landslide's occurrence), and exposure of infrastructure and critical facilities. The earthquake risk assessment provides useful information to identify the factors influencing the risk. A deterministic seismic hazard for Baku is analysed for four earthquake scenarios: near, far, local, and extreme events. The seismic hazard models demonstrate the level of ground shaking in the city: PGA high values are predicted in the southern coastal and north-eastern parts of the city and in some parts of the downtown. The PGA attains its maximal values for the local and extreme earthquake scenarios. We show that the quality of buildings and the probability of their damage, the distribution of urban population, exposure, and the pattern of peak ground acceleration contribute to the seismic risk, meanwhile the vulnerability factors play a more prominent role for all earthquake scenarios. Our results can allow elaborating strategic countermeasure plans for the earthquake risk mitigation in the Baku city.
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spelling doaj.art-28a340410e234daba504f091d8d027a52022-12-21T19:51:04ZengCopernicus PublicationsNatural Hazards and Earth System Sciences1561-86331684-99812010-12-0110122697271210.5194/nhess-10-2697-2010Scenario-based earthquake hazard and risk assessment for Baku (Azerbaijan)G. BabayevA. Ismail-ZadehJ.-L. Le MouëlA rapid growth of population, intensive civil and industrial building, land and water instabilities (e.g. landslides, significant underground water level fluctuations), and the lack of public awareness regarding seismic hazard contribute to the increase of vulnerability of Baku (the capital city of the Republic of Azerbaijan) to earthquakes. In this study, we assess an earthquake risk in the city determined as a convolution of seismic hazard (in terms of the surface peak ground acceleration, PGA), vulnerability (due to building construction fragility, population features, the gross domestic product per capita, and landslide's occurrence), and exposure of infrastructure and critical facilities. The earthquake risk assessment provides useful information to identify the factors influencing the risk. A deterministic seismic hazard for Baku is analysed for four earthquake scenarios: near, far, local, and extreme events. The seismic hazard models demonstrate the level of ground shaking in the city: PGA high values are predicted in the southern coastal and north-eastern parts of the city and in some parts of the downtown. The PGA attains its maximal values for the local and extreme earthquake scenarios. We show that the quality of buildings and the probability of their damage, the distribution of urban population, exposure, and the pattern of peak ground acceleration contribute to the seismic risk, meanwhile the vulnerability factors play a more prominent role for all earthquake scenarios. Our results can allow elaborating strategic countermeasure plans for the earthquake risk mitigation in the Baku city.http://www.nat-hazards-earth-syst-sci.net/10/2697/2010/nhess-10-2697-2010.pdf
spellingShingle G. Babayev
A. Ismail-Zadeh
J.-L. Le Mouël
Scenario-based earthquake hazard and risk assessment for Baku (Azerbaijan)
Natural Hazards and Earth System Sciences
title Scenario-based earthquake hazard and risk assessment for Baku (Azerbaijan)
title_full Scenario-based earthquake hazard and risk assessment for Baku (Azerbaijan)
title_fullStr Scenario-based earthquake hazard and risk assessment for Baku (Azerbaijan)
title_full_unstemmed Scenario-based earthquake hazard and risk assessment for Baku (Azerbaijan)
title_short Scenario-based earthquake hazard and risk assessment for Baku (Azerbaijan)
title_sort scenario based earthquake hazard and risk assessment for baku azerbaijan
url http://www.nat-hazards-earth-syst-sci.net/10/2697/2010/nhess-10-2697-2010.pdf
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