Please use this identifier to cite or link to this item: http://hdl.handle.net/2122/4342
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dc.contributor.authorallMassa, M.; Istituto Nazionale di Geofisica e Vulcanologia, Sezione Milano-Pavia, Milano, Italiaen
dc.contributor.authorallMorasca, P.; Dip.Te.Ris., Università Genovaen
dc.contributor.authorallMoratto, L.; Dip. Scienze della Terra, università Triesteen
dc.contributor.authorallMarzorati, S.; Istituto Nazionale di Geofisica e Vulcanologia, Sezione Milano-Pavia, Milano, Italiaen
dc.contributor.authorallCosta, G.; Dip. Scienze della Terra, università Triesteen
dc.contributor.authorallSpallarossa, D.; Dip.Te.Ris., Università Genovaen
dc.date.accessioned2008-11-26T15:03:22Zen
dc.date.available2008-11-26T15:03:22Zen
dc.date.issued2008-06en
dc.identifier.urihttp://hdl.handle.net/2122/4342en
dc.description.abstractThe goals of this work are to review the Northern-Italy ground-motion prediction equations (GMPEs) for amplitude parameters and to propose new GMPEs for frequency content and duration parameters. Approximately 10,000 weak and strong waveforms have been collected merging information from different neighboring regional seismic networks operating in the last 30 yr throughout Northern Italy. New ground-motion models, calibrated for epicentral distances ≤100 km and for both local (ML) and moment magnitude (Mw), have been developed starting from a high quality dataset (624 waveforms) that consists of 82 selected earthquakes with ML and Mw up to 6.3 and 6.5, respectively. The vertical component and the maximum of the two horizontal components of motion have been considered, for both acceleration (peak ground horizontal acceleration [PGHA] and peak ground vertical acceleration [PGVA]) and velocity (peak ground horizontal velocity [PGHV] and peak ground vertical velocity [PGVV]) data. In order to make comparisons with the most commonly used prediction equations for the Italian territory (Sabetta and Pugliese, 1996 [hereafter, SP96] and Ambraseys et al. 2005a,b [hereafter, AM05]) the coefficients for acceleration response spectra (spectral horizontal acceleration [SHA] and spectral vertical acceleration [SVA]) and for pseudovelocity response spectra (pseudospectral horizontal velocity [PSHV] and pseudospectral vertical velocity [PSVV]) have been calculated for 12 periods ranging between 0.04 and 2 sec and for 14 periods ranging between 0.04 and 4 sec, respectively. Finally, empirical relations for Arias intensities (IA), Housner intensities (IH), and strong motion duration (DV) have also been calibrated. The site classification based on Eurocode (hereafter, EC8) classes has been used (ENV, 1998, 2002). The coefficients of the models have been determined using functional forms with an independent magnitude decay rate and applying the random effects model (Abrahamson and Youngs, 1992; Joyner and Boore, 1993) that allow the determination of the interevent, interstation, and record-to-record components of variance. The goodness of fit between observed and predicted values has been evaluated using the maximum likelihood approach as in Spudich et al. (1999). Comparing the proposed GMPEs with SP96 and AM05, it is possible to observe a faster decay of predicted ground motion, in particular for distances greater than 25 km and magnitudes higher than 5.0. The result is an improvement in fit of about one order of size for magnitudes spanning from 3.5 to 4.5.en
dc.language.isoEnglishen
dc.publisher.nameSeismological society of americaen
dc.relation.ispartofBulletin of the Seismological Society of Americaen
dc.relation.ispartofseries3/98 (2008)en
dc.relation.isversionofhttp://hdl.handle.net/2122/3197en
dc.subjectground motion prediction equationsen
dc.subjectnorth italyen
dc.titleEmpirical Ground-Motion Prediction Equations for Northern Italy Using Weak- and Strong-Motion Amplitudes, Frequency Content, and Duration Parametersen
dc.typearticleen
dc.description.statusPublisheden
dc.type.QualityControlPeer-revieweden
dc.description.pagenumber1319-1342en
dc.subject.INGV04. Solid Earth::04.06. Seismology::04.06.99. General or miscellaneousen
dc.subject.INGV04. Solid Earth::04.06. Seismology::04.06.04. Ground motionen
dc.subject.INGV04. Solid Earth::04.06. Seismology::04.06.11. Seismic risken
dc.identifier.doi10.1785/0120070164en
dc.relation.referencesAbrahamson, N. A., and R. R. Youngs (1992). A stable algorithm for regression analyses using the random effects model, Bull Seismol. Soc. Am. 82, 505–510. Ambraseys, N. N., J. Douglas, S. K. Sarma, and P. M. Smit (2005a). Equations for estimation of strong ground motions from shallow crustal earthquakes using data from Europe and the Middle East: horizontal peak ground acceleration and spectral acceleration, Bull. Earthq. Eng. 3, 1–53. Ambraseys, N. N., J. Douglas, S. K. Sarma, and P. M. Smit (2005b). Equations for estimation of strong ground motions from shallow crustal earthquakes using data from Europe and the Middle East: vertical peak ground acceleration and spectral acceleration, Bull. Earthq. Eng. 3, 55–73. Arias, A. (1970). A measure of earthquake intensity, in Seismic Design of Nuclear Power Plants, R. Hansen (Editor), Massachusetts Institute of Technology Press, Cambridge, Massachusetts. Atkinson, G. M., and D. M. Boore (1997). Some comparisons between recent ground-motion relations, Seism. Res. Lett. 68, 1, 24–40. Augliera, P., E. D’Alema, S. Marzorati, D. Bindi, M. Maistrello, and A. Gassi (2004). The 2003 data set of seismic waveforms recorded in Lombardia and Veneto regions (Northern Italy): site selection and ML scale calibration, in Proceedings of XXIX General Assembly of ESC, Potsdam, September 2004, 60 pp. Barnaba, C., E. Priolo, A. Vuan, and M. Romanelli (2007). Site effect on the strong motion site at Tolmezzo-Ambiesta dam in Northeastern Italy, Bull. Seismol. Soc. Am. 97, no. 1b, 339–346. Bindi, D., R. R Castro, G. Franceschina, L. Luzi, and F. Pacor (2004). The 1997–1998 Umbria-Marche sequence (central Italy): source, path, and site effects estimated from strong motion data recorded in the epicentral area, J. Geophys. Res. 109, B04312, doi 10.1029/ 2003JB002857. Bindi, D., L. Luzi, F. Pacor, G. Franceschina, and R. R. Castro (2006). Ground-motion predictions from empirical attenuation relationships versus recorded data: the case of the 1997–1998 Umbria-Marches, Central Italy, strong-motion data set, Bull. Seismol. Soc. Am. 96, no. 3, 984–1002. Bolt, B. A., and N. A. Abrahamson (1982). New attenuation relations for peak and expected accelerations of strong ground motion, Bull. Seismol. Soc. Am. 72, 2307–2321. Boore, D. M., and J. J. Bommer (2005). Processing of strong-motion accelerograms: needs, options and consequences, Soil Dyn. Earthq. Eng. 25, 93–115. Boore, D. M.,W. B. Joyner, and T. E. Fumal (1993). Estimation of response spectra and peak accelerations from Western North American earthquakes, an interim report, U.S. Geol .Surv. Open-File Rept. 93-509. Boore, D. M., J. Watson-Lamprey, and A. Abrahamson (2006). Orientationindependent measures of ground motion, Bull. Seismol. Soc. Am. 96, no. 4, 1502–1511. Bordoni, P., V. De Rubeis, F. Doumaz, L. Luzi, L. Margheriti, F. Marra, M. Moro, D. Sorrentino, and P. Tosi (2003). Geological class map, in Terremoti probabili in Italia tra l’anno 2000 e 2030: elementi per la definizione di priorità degli interventi di riduzione del rischio sismico, National Group for Earthquakes Defence (GNDT) Project, Rome, Annex 1, Task 3.2, 3–4. Bragato, P. L., and D. Slejko (2005). Empirical ground-motion attenuation relations for the Eastern Alps in the magnitude range 2.5–6.3, Bull. Seismol. Soc. Am. 95, no. 1, 252–276. Brillinger, D. R., and H. K. Preisler (1984). An exploration analysis of the Joyner-Boore attenuation data, Bull. Seismol. Soc. Am. 74, no. 4, 1441–1450. Brillinger, D. R., and H. K. Preisler (1985). Further analysis of the Joyner- Boore attenuation data, Bull. Seismol. Soc. Am. 75, no. 2, 611–614. Campbell, K. W. (1985). Strong motion attenuation relations: a ten-year perspective, Earthq. Spectra 1, no. 4, 759–804. Campbell, K. W. (1989). The difference of peak horizontal acceleration on magnitude, distance, and site effects for small-magnitude earthquakes in California and eastern North America, Bull. Seismol. Soc. Am. 79, 1311–1341. Campbell, K. W. (1997). Empirical near-source attenuation relationships for horizontal and vertical components of peak ground acceleration, peak ground velocity and pseudo-absolute acceleration response spectra, Seism. Res. Lett. 68, no. 1, 154–180. Campbell, K. W., and Y. Bozorgnia (1994). Empirical analysis of strong ground motion from the 1992 Landers, California, earthquake, Bull. Seismol. Soc. Am. 84, no. 3, 573–588. Castro, R. R., M. Massa, P. Augliera, and F. Pacor (2008). Body wave attenuation in the region of Garda, Italy, Pure Appl. Geophys. (in press). Castro, R. R., G. Monachesi, M. Mucciarelli, L. Trojani, and F. Pacor (1999). P- and S-wave attenuation in the region of Marche, Italy, Tectonophysics 302, 123–132. Castro, R. R., G. Monachesi, M. Trojani, M. Mucciarelli, and M. Frapiccini (2002). An attenuation study using earthquakes from the 1997 Umbria- Marche sequence, J. Seism. 6, 43–59. Castro, R. R., F. Pacor, A. Sala, and C. Petrungaro (1996). S wave attenuation and site effects in the region of Friuli, Italy, J. Geophys. Res. 101, B10, 22,355–22,369. Crouse, C. B., Y. K. Vyas, and B. A. Schell (1988). Ground motion from subduction-zone earthquakes, Bull. Seismol. Soc. Am. 78, no. 1, 1–25. Decanini, L., F. Mollaioli, G. F. Panza, F. Romanelli, and F. Vaccari (2000). Pericolosità sismica della Sicilia Sud Orientale. Terremoti di scenario per Augusta, Siracusa e Noto, in Scenari di Pericolosità Sismica ad Augusta, Siracusa e Noto, L. Decanini and G. F. Panza (Editors), CNR-Gruppo Nazionale per la Difesa dei Terremoti, Roma, 129 pp. Douglas, J. (2003). Earthquake ground motion estimation using strong motion records: a review of equations for the estimation of peak ground acceleration and response spectral ordinates, Earth Sci. Rev. 61, 43–104. Douglas, J. (2004). An investigation of analysis of variance as a tool for exploring regional differences in strong ground motions, J. Seism. 8, 485–496. Douglas, J. (2007). On the regional dependence of earthquake response spectra, J. Earthq. Tech. 44, no. 1, 71–100. ENV, EUROCOD 8 (1998, 2002). CEN/TC 250, Design provisions for the earthquake resistance of structures, seismic action and general requirements of structures, Comité Europé en de Normalisation (CEN) (draft). European and Mediterranean Regional Centroid Moment Tensor (CMT) catalog, http://www.bo.ingv.it/RCMT/ (last accessed April 2008). Frisenda, M., M. Massa, D. Spallarossa, G. Ferretti, and C. Eva (2005). Attenuation relationship for low magnitude earthquakes using standard seismometric records, J. Earth. Eng. 9, no. 1, 23–40. Gasperini, P.Gruppo di lavoro per redazione della mappa di pericolosità sismica prevista dall’ordinanza PCM 3274 del 20 Marzo 2003 (2004). Catalogo dei terremoti CPTI2—App. 1 al rapporto conclusivo, Open File Rept. 1-29. Giardini, D., M. Di Donato, and E. Boschi (1997). Calibration of magnitude scales for earthquakes of the Mediterranean, J. Seism. 1, 161–180. Global Centroid Moment Tensor (CMT) Project catalog search, www. globalcmt.org/CMTsearch.html (last accessed month year). Hanks, T. C., and H. Kanamori (1979). A moment magnitude scale, J. Geophys. Res. 84, 2348–2350. Housner, G. W. (1952). Spectrum intensities of strong-motion earthquakes, in Proc. Symp. on Earthquake and Blast Effects Structures, C. M. Feigen (Editors), Univ. California, Los Angeles, 21–36. Hutton, L. K., and D. M. Boore (1987). TheML scale in Southern California, Bull. Seismol. Soc. Am. 77, no. 6, 2074–2094. Italian Electricity Company (ENEL) (1977). Strong motion earthquake accelerograms digitized and plotted data—uncorrected accelerograms— accelerograms for the Friuli, Italy earthquake of May 6, 1976 and aftershocks, in Commissione CNEN-ENEL per lo studio dei problemi sismici connessi con la realizzazione di impianti nucleari, Rome, Italy, November 1977. Joyner, W. B., and D. M. Boore (1981). Peak horizontal acceleration and velocity from strong motion records including records from the 1979 Imperial Valley, California, Bull. Seismol. Soc. Am. 71, 2011–2038. Joyner, W. B., and D. M. Boore (1993). Methods for regression analysis of strong-motion data, Bull. Seismol. Soc. Am. 83 no. 2, 469–487. Lay, T., and T. C. Wallace (1995). Modern Global Seismology, Academic Press, New York, 521 pp. Masi, A., M. Vona, and M. Mucciarelli (2006). Selezione dell’input sismico per la determinazione della vulnerabilità su base meccanica di edifici in c.a. (abstract), in XXV GNGTS conference, 263–267. Massa, M., S. Marzorati, E. D’Alema, D. Di Giacomo, and P. Augliera (2007). Site classification assessment for estimating empirical attenuation relationships for Central-Northern Italy earthquakes, J. Earthq. Eng. 11, 943–967. Mayeda, K., A. Hofstetter, J. L. O’Boyle, and W. R. Walter (2003). Stable and transportable regional magnitudes based on coda moment rate spectra, Bull. Seismol. Soc Am. 93, no. 1, 224–239. McGuire, R. K. (1977). Seismic design spectra and mapping procedures relations, J. Geotech. Eng. Struct. Dyn. 5, 211–234. Molas, G. L., and F. Yamazaki (1995). Attenuation of earthquake ground motion in Japan including deep focus events, Bull. Seismol. Soc Am. 85, no. 5, 1343–1358. Morasca, P., K. Mayeda, L. Malagnini, and W. R. Walter (2005). Coda derived source spectra, moment magnitudes, and energy-moment scaling in the Western Alps Geophys. J. Int. 160, no. 1, 263–275. Sabetta, F., and A. Pugliese (1987). Attenuation of peak horizontal acceleration and velocity from Italian strong-motion records, Bull. Seismol. Soc. Am. 77, 1491–1513. Sabetta, F., and A. Pugliese (1996). Estimation of response spectra and simulation of non-stationary earthquake ground motions, Bull. Seismol. Soc Am. 86, no. 2, 337–352. Spudich, P., W. B. Joyner, A. G. Lindh, D. M. Boore, B. M. Margaris, and J. B. Fletcher (1999). SEA99: a revised ground motion prediction for use in extensional tectonic regimes, Bull. Seismol. Soc. Am. 89, 1156– 1170. Suhadolc, P., and C. Chiaruttini (1987). A theoretical study of the dependence of the peak ground acceleration on source and structure parameters, in Strong Ground Motion Seismology, M. Erdik and M. Toksoz (Editors), Reidel, Dordrecht, 143–183. Tento, A., L. Franceschina, and A. Marcellini (1992). Expected ground motion evaluation for Italian sites, in Proceedings of 10th World Conference on Earthquake Engineering, Madrid, Spain, 19–24 July, 1992, A. A. Balkema, Rotterdam, 1, 489–494. Vanmarcke, E. H., and S. P. Lai (1980). Strong motion duration and RMS amplitude of earthquake records, Bull. Seismol. Soc. Am. 70, 1293– 1307. Zhu, T., K. Y. Chun, and G.West (1991). Geometrical spreading and Q of Pn waves: an investigative study in eastern Canada, Bull. Seismol. Soc. Am. 81, 882–896.en
dc.description.obiettivoSpecifico1.1. TTC - Monitoraggio sismico del territorio nazionaleen
dc.description.journalTypeJCR Journalen
dc.description.fulltextreserveden
dc.contributor.authorMassa, M.en
dc.contributor.authorMorasca, P.en
dc.contributor.authorMoratto, L.en
dc.contributor.authorMarzorati, S.en
dc.contributor.authorCosta, G.en
dc.contributor.authorSpallarossa, D.en
dc.contributor.departmentIstituto Nazionale di Geofisica e Vulcanologia (INGV), Sezione Milano, Milano, Italiaen
dc.contributor.departmentDip.Te.Ris., Università Genovaen
dc.contributor.departmentDip. Scienze della Terra, università Triesteen
dc.contributor.departmentIstituto Nazionale di Geofisica e Vulcanologia (INGV), Sezione Milano, Milano, Italiaen
dc.contributor.departmentDip. Scienze della Terra, università Triesteen
dc.contributor.departmentDip.Te.Ris., Università Genovaen
item.openairetypearticle-
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item.openairecristypehttp://purl.org/coar/resource_type/c_18cf-
item.fulltextWith Fulltext-
crisitem.author.deptIstituto Nazionale di Geofisica e Vulcanologia (INGV), Sezione Milano, Milano, Italia-
crisitem.author.deptIstituto Nazionale di Geofisica e Vulcanologia (INGV), Sezione Milano, Milano, Italia-
crisitem.author.deptOGS-
crisitem.author.deptIstituto Nazionale di Geofisica e Vulcanologia (INGV), Sezione ONT, Roma, Italia-
crisitem.author.deptUniversità di Trieste, Dipartimento di Geoscienze-
crisitem.author.deptDipTeRis Università di Genova-
crisitem.author.orcid0000-0003-0696-2035-
crisitem.author.orcid0000-0002-6525-4867-
crisitem.author.orcid0000-0002-5803-4882-
crisitem.author.orcid0000-0002-8021-3908-
crisitem.author.parentorgIstituto Nazionale di Geofisica e Vulcanologia-
crisitem.author.parentorgIstituto Nazionale di Geofisica e Vulcanologia-
crisitem.author.parentorgIstituto Nazionale di Geofisica e Vulcanologia-
crisitem.classification.parent04. Solid Earth-
crisitem.classification.parent04. Solid Earth-
crisitem.classification.parent04. Solid Earth-
crisitem.department.parentorgIstituto Nazionale di Geofisica e Vulcanologia-
crisitem.department.parentorgIstituto Nazionale di Geofisica e Vulcanologia-
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