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Analysis of exceedance probabilities for design spectral accelerations from crustal earthquakes in Romania

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Abstract

The seismic hazard of the eastern and southern part of Romania is dominated by the Vrancea intermediate-depth seismic source, while for the western part of Romania the local crustal seismic sources are predominant. The design acceleration response spectrum of the Romanian seismic code is obtained by anchoring the design peak ground acceleration to a spectral shape which takes into account the soil conditions through the control period TC. In this study, we aim to evaluate the exceedance probabilities of the design spectral accelerations in the case of various low- and moderate-magnitude crustal earthquake scenarios. The evaluation is performed using an approach based on a ground motion prediction equation and an approach based on actual ground motion recordings. The results of the analyses show that significant differences in terms of exceedance probabilities of the design spectral ordinates occur between the two applied methodologies for larger magnitude earthquakes and small epicentral distances. Moreover, based on the results obtained, it appears that the minimum earthquake magnitudes causing exceedances of the design peak ground acceleration are quite far from the maximum magnitudes of the considered crustal seismic sources in the western part of Romania.

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References

  • Ardeleanu L, Grecu B, Raileanu V (2012) Peak ground acceleration, velocity and displacement from moderate magnitude undercrustal earthquakes of Vrancea region. Rom Rep Phys 64(2):555–570

    Google Scholar 

  • Baker JW (2007) Quantitative classification of near-fault ground motions using wavelet analysis. Bull Seismol Soc Am 97(5):1486–1501

    Article  Google Scholar 

  • Bala A, Raielanu V, Dinu C, Diaconescu M (2015) Crustal seismicity and active fault systems in Romania. Rom Rep Phys 67(3):1176–1191

    Google Scholar 

  • Cauzzi C, Faccioli E, Vanini M, Bianchini A (2015) Updated predictive equations for broadband (0.01–10 s) horizontal response spectra and peak ground motions, based on a global dataset of digital acceleration records. Bull Earthq Eng 13(6):1587–1612

    Article  Google Scholar 

  • Craiu A, Craiu M, Diaconescu M, Marmureanu A (2017) 2013 seismic swarm recorded in Galati area, Romania: focal mechanism solutions. Acta Geod Geophys 52(1):53–67

    Article  Google Scholar 

  • Craiu A, Ghita C, Craiu M, Diaconescu M, Mihai M, Ardeleanu L (2018) The source mechanism of the seismic events during the sequence of the moderate-size crustal earthquake of November 22, 2014 of Vrancea region (Romania). Ann Geophys 61(1):SE666

    Google Scholar 

  • EN 1998-1 (2004) Design of structures for earthquake resistance – part 1: general rules, seismic actions and rules for buildings. European Committee for Standardization, Brussels

  • Iervolino I, Baltzopoulos G, Chioccarelli E, Suzuki A (2017) Seismic actions on structures in the near-source region of the 2016 Central Italy sequence. Bull Earthq Eng. https://doi.org/10.1007/s10518-017-0295-3

    Article  Google Scholar 

  • Iervolino I, Giorgio M, Cito P (2019) Which earthquakes are expected to exceed the design spectra? Eq Spectra 35:1465–1483. https://doi.org/10.1193/032318EQS066O

    Article  Google Scholar 

  • Ismail-Zadeh A, Matenco L, Radulian M, Cloetingh S, Panza GF (2012) Geodynamics and intermediate-depth seismicity in Vrancea (the south-eastern Carpathians): current state-of-the art. Tectonophysics 530–531:50–79

    Article  Google Scholar 

  • Kijko A (2004) Estimation of the maximum earthquake magnitude, mmax. Pure Appl Geophys 161:1655–1681

    Article  Google Scholar 

  • Lanzano G, Puglia R, Russo E, Luzi L, Bindi D, Cotton F, D'Amico M, Felicetta C, Pacor F & ORFEUS WG5 (2018). ESM strong-motion flat-file 2018. Istituto Nazionale di Geofisica e Vulcanologia (INGV), Helmholtz-Zentrum Potsdam Deutsches GeoForschungsZentrum (GFZ), Observatories & Research Facilities for European Seismology (ORFEUS). PID: 11099/ESM_flatfile_2018

  • Lungu D, Cornea T, Aldea A, Zaicenco A (1997) Basic representation of seismic action. In: Lungu D, Mazzolani F, Savidis S (eds) Design of structures in seismic zones: Eurocode 8—worked examples, (TEMPUS PHARE CM Project 01198: implementing of structural Eurocodes in Romanian civil engineering standards, Bridgeman Ltd., Timisoara, Romania), pp 1–60

  • Moldovan IA, Popescu E, Bazacliu O, Enescu BD, Radulian M (2006) Time, space and size distribution of earthquakes for Fagaras seismogenic region (Romania). Rom J Phys 51(3–4):479–494

    Google Scholar 

  • Nakamura Y (1989) A method for dynamic characteristics estimation of subsurface using microtremor on the ground surface. Q Rep Railw Tech Res Inst 30(1):25–33

    Google Scholar 

  • Oros E, Popa M, Diaconescu M (2018) The seismogenic sources from the west and south-eest of Romania. In: Vacareanu R, Ionescu C (eds) Seismic hazard and risk assessment - updated overview with emphasis on Romania. Springer Natural Hazards, pp 53–69

  • P100–1/2013 (2013) Code for seismic design – part I – design prescriptions for buildings. Ministry of Regional Development and Public Administration, Bucharest

  • Pavel F, Vacareanu R, Cioflan C, Iancovici M (2014) Spectral characteristics of strong ground motions from intermediate-depth Vrancea seismic source. Bull Seismol Soc Am 104(6):2842–2850

    Article  Google Scholar 

  • Pavel F, Vacareanu R, Douglas J, Radulian M, Cioflan C, Barbat A (2016) An updated probabilistic seismic hazard assessment for Romania and comparison with the approach and outcomes of the SHARE project. Pure Appl Geophys 173(6):1881–1905

    Article  Google Scholar 

  • Pavel F, Vacareanu R, Pitilakis K (2019) Intensity-dependent site amplification factors for Vrancea intermediate-depth earthquakes. Bull Earthq Eng 17(5):2363–2380

    Article  Google Scholar 

  • Pitilakis K, Riga E, Anastasiadis A, Fotopoulou S, Karafagka S (2018) Towards the revision of EC8: proposal for an alternative site classification scheme and associated intensity dependent spectral amplification factors. Soil Dn Earthq Eng. https://doi.org/10.1016/j.soildyn.2018.03.030

    Article  Google Scholar 

  • Placinta AO, Popescu E, Borleanu F, Radulian M, Popa M (2016) Analysis of source properties for the earthquake sequences in the south-western Carpathians (Romania). Rom Rep Phys 68(3):1240–1158

    Google Scholar 

  • Radu C, Toro E (1996) Two strong historical earthquakes in Transylvani (Romania): November 19, 1523 and October 3, 1880. Ann Geophys 34(5):1069–1078

    Google Scholar 

  • Radulian M, Bala A, Popescu E, Toma-Danila D (2018) Earthquake mechanism and characterization of seismogenic zones in south-eastern part of Romania. Ann Geophys 61(1): S108. ROMPLUS Catalogue. http://www.infp.ro/romplus/. Last accessed 20 May 2019

  • Shahi SK, Baker JW (2011) An empirically calibrated framework for including the effects of near-fault directivity in probabilistic seismic hazard analysis. Bull Seismol Soc Am 101(2):742–755

    Article  Google Scholar 

  • Vacareanu R, Radulian M, Iancovici M, Pavel F, Neagu C (2015) Fore-arc and back-arc ground motion prediction model for Vrancea intermediate depth seismic source. J Earthq Eng 19(3):535–562

    Article  Google Scholar 

  • Wald DJ, Allen TI (2007) Topographic slope as a proxy for seismic site conditions and amplification. Bull Seismol Soc Am 97:1379–1395

    Article  Google Scholar 

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Correspondence to Florin Pavel.

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Pavel, F., Vacareanu, R. Analysis of exceedance probabilities for design spectral accelerations from crustal earthquakes in Romania. J Seismol 23, 1327–1345 (2019). https://doi.org/10.1007/s10950-019-09869-4

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  • DOI: https://doi.org/10.1007/s10950-019-09869-4

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