Please use this identifier to cite or link to this item: http://hdl.handle.net/2122/10497
DC FieldValueLanguage
dc.contributor.authorallScarfì, L.; Istituto Nazionale di Geofisica e Vulcanologia, Sezione Catania, Catania, Italiaen
dc.contributor.authorallBarberi, G.; Istituto Nazionale di Geofisica e Vulcanologia, Sezione Catania, Catania, Italiaen
dc.contributor.authorallMusumeci, C.; Istituto Nazionale di Geofisica e Vulcanologia, Sezione Catania, Catania, Italiaen
dc.contributor.authorallPatanè, D.; Istituto Nazionale di Geofisica e Vulcanologia, Sezione Catania, Catania, Italiaen
dc.date.accessioned2017-03-22T14:14:50Zen
dc.date.available2017-03-22T14:14:50Zen
dc.date.issued2016-03en
dc.identifier.urihttp://hdl.handle.net/2122/10497en
dc.description• Detailed tectonic features are revealed in a crucial sector of the central Mediterranean • Seismic pattern pinpoints the activity of a lithospheric-scale tear fault • The complex of faults enables adjacent compressional and extensional domainsen
dc.description.abstractThe purpose of this study is to gain a better understanding on the tectonic structures featuring in a crucial sector of central Mediterranean area, including the Aeolian Islands, southern Calabria, and northeastern Sicily, where the convergence between Eurasian and African Plates has given rise to a complicated collisional/subduction complex. A high-quality data set of about 3000 earthquakes has been exploited for local earthquake tomography and focal mechanisms computation together with available source mechanisms from published catalogues. The results depict new details of a network of faults which enables the concurrent existence of adjacent compressional and extensional domains. In particular, tomographic images, seismic events distribution, and focal mechanisms pinpoint the geometry and activity of a lithospheric-scale tear faults system which, with a NW-SE trend through Sicily and the Tyrrhenian and Ionian Seas, represents the southern edge of the Ionian subduction trench zone. At crustal depth, this tearing is well highlighted by a rotation of the maximum horizontal stress, moving across the area from west toward east. In addition, the shallow normal fault regime, characterizing the southern Calabria and northeastern Sicily mainland, south of the NW-SE lineament, changes in the deeper part of the crust. Indeed, a NE-SW earthquake distribution, gently dipping NW, and inverse fault solutions indicate a still active contractional deformation in eastern Sicily, caused by the Africa-Eurasia convergence and well framed with the current compressive regime along the southern Tyrrhenian zone and at the front of the Sicilian Chain-Foreland.en
dc.language.isoEnglishen
dc.publisher.nameAmerican Geophysical Unionen
dc.relation.ispartofTectonicsen
dc.relation.ispartofseries3/35(2016)en
dc.subjectcentral Mediterraneanen
dc.subjectlateral slab tear faulten
dc.subjecttomographyen
dc.subjectfocal mechanismsen
dc.titleSeismotectonics of northeastern Sicily and southern Calabria (Italy): New constraints on the tectonic structures featuring in a crucial sector for the central Mediterranean geodynamicsen
dc.typearticleen
dc.description.statusPublisheden
dc.type.QualityControlPeer-revieweden
dc.description.pagenumber812-830en
dc.identifier.URLhttp://agupubs.onlinelibrary.wiley.com/hub/issue/10.1002/tect.v35.3/en
dc.subject.INGV04. Solid Earth::04.07. Tectonophysics::04.07.07. Tectonicsen
dc.identifier.doi10.1002/2015TC004022en
dc.relation.referencesAmato, A., R. Azzara, A. Basili, C. Chiarabba, M. Cocco, M. Di Bona, and G. Selvaggi (1995), Main shock and aftershocks of the December 13, 1990, Eastern Sicily earthquake, Ann. Geofis., 38, 255–266. Anderson, H., and J. Jackson (1987), The deep seismicity of the Tyrrhenian Sea, Geophys. J. Roy. Astron. Soc., 91, 613–637. Argnani, A. (2014), Comment on the article “Propagation of a lithospheric tear fault (STEP) through the western boundary of the Calabrian accretionary wedge offshore eastern Sicily (Southern Italy)” by Gallais et al., 2013, Tectonophysics, 610, 195–199. Azzaro, R., S. Branca, K. Gwinner, and M. Coltelli (2012), The volcano-tectonic map of Etna volcano, 1:100.000 scale: an integrated approach based on a morphotectonic analysis from high-resolution DEM constrained by geologic, active faulting and seismotectonic data, Ital. J. Geosci., 131, doi:10.3301/IJG.2011.29. Barberi, F., A. Gandino, A. Gioncada, P. La Torre, A. Sbrana, and C. Zenucchini (1994), The deep structure of the Eolian arc (Filicudi–Panarea–Vulcano sector) in light of gravity, magnetic and volcanological data, J. Volcanol. Geotherm. Res., 61,189–206. Barberi, G., M.T. Cosentino, A. Gervasi, I. Guerra, G. Neri, and B. Orecchio (2004), Crustal seismic tomography in the Calabrian Arc region, South Italy, Phys. Earth Planet. Int., 147, 297–314. Barreca, G., V. Bruno, F. Cultrera, M. Mattia, C. Monaco, and L. Scarfì (2014), New insights in the geodynamics of the Lipari–Vulcano area (Aeolian Archipelago, southern Italy) from geological, geodetic and seismological data, J. Geodyn., dx.doi.org/10.1016/j.jog.2014.07.003. Beccaluva, L., G. Gabbianelli, F. Lucchini, P.L. Rossi, and C. Savelli (1985), Petrology and K/Ar ages of volcanic dredged from the Aeolian seamounts: implications for geodynamic evolution of the southern Tyrrhenian basin, Earth Planet. Sci. Lett., 74, 187–208. Ben-Avraham, Z., and M. Grasso (1991), Crustal structure variations and transcurrent faulting at the eastern and western margins of the eastern Mediterranean, Tectonophysics, 75, 269–277. Billi, A., G. Barberi, C. Faccenna, , G. Neri, F. Pepe, and A. Sulli (2006), Tectonics and seismicity of the Tindari Fault System, southern Italy: crustal deformations at the transition between ongoing contractional and extensional domains located above the edge of a subducting slab, Tectonics, 25, http://dx.doi.org/10.1029/2004TC001763. Billi, A., D. Presti, C. Faccenna, G. Neri, and B. Orecchio (2007), Seismotectonics of the Nubia plate compressive margin in the south-Tyrrhenian region, Italy: clues for subduction inception, J. Geophys. Res., 112, B08302, http://dx.doi.org/10.1029/2006JB004837. Billi, A., D. Presti, B. Orecchio, C. Faccenna, and G. Neri (2010), Incipient extension along the active convergent margin of Nubia in Sicily, Italy: Cefalù-Etna seismic zone, Tectonics, 29, TC4026, doi:10.1029/2009TC002559. Billi, A., C. Faccenna, O. Bellier, L. Minelli, G. Neri, C. Piromallo, D. Presti, D. Scrocca, and E. Serpelloni (2011), Recent tectonic reorganization of the Nubia-Eurasia convergent boundary heading for the closure of the western Mediterranean, Bull. Soc. Géol. de France, 182, 279–303. Bouillin, J.P., M. Duran-Delga, and P. Olivier (1986), Betic-Rifian and Tyrrhenian arcs: distinctive features, genesis and development stages, edited by F.C. Wezel, “The origin of Arcs”, Elsevier: 281-304. Calò, M., C. Dorbath, D. Luzio, S.G. Rotolo, and G. D’Anna (2009), Local earthquake tomography in the Southern Tyrrhenian region of Italy: Geophysical and petrological inferences on the subducting lithosphere, edited by Lallemand, S., and F. Funiciello, Subduction Zone, Geodynamics, 3: Berlin, Springer-Verlag, 86–100, doi: 10.1007/978-3-540-87974. Caputo, M., G.F. Panza, and D. Postpischl (1972), New evidences about the deep structure of the Lipari arc, Tectonophysics, 15, 219–231. Carminati, E., M.J.R. Wortel, W. Spakman, and R. Sabadini (1998), The role of slab detachment processes in the opening of the western central Mediterranean basins: Some geological and geophysical evidence, Earth Planet. Sci. Lett., 160, 651 –665. Carminati, E., M. Lustrino, and C. Doglioni (2012), Geodynamic evolution of the central and western Mediterranean: Tectonics vs. igneous petrology constraints, Tectonophysics, 579, 173–192. Chiarabba, C., P. De Gori, and F. Speranza (2008), The southern Tyrrhenian subduction zone: Deep geometry, magmatism and Plio-Pleistocene evolution, Earth Planet. Sci. Lett., 268 408-423. Civello, S., and L. Margheriti (2004), Toroidal mantle flow around the Calabrian slab (Italy) from SKS splitting, Geophys. Res. Lett., 31, L10601, http://dx.doi.org/10.1029/2004GL019607. Connolly, J.A.D., and D.M. Kerrick (2002), Metamorphic controls on seismic velocity of subducted oceanic crust at 100–250 km depth, Earth Planet. Sci. Lett., 204, 61–74. D’Agostino, N., E. D’Anastasio, A. Gervasi, I. Guerra, M.R. Nedimovic, L. Seeber, and M. Steckler (2011), Forearc extension and slow rollback of the Calabria Arc from GPS measurements, Geophys. Res. Lett., 38, L17304, doi:10.1029/2011GL048270. De Astis, G., G. Ventura, and G. Vilardo (2003), Geodynamic significance of the Aeolian volcanism (Southern Tyrrhenian Sea, Italy) in light of structural, seismological and geochemical data, Tectonics, 22 (4), 1040, http://dx.doi.org/10.1029/2003TC001506. De Guidi, G., G. Lanzafame, M. Palano, G. Puglisi, A. Scaltrito, and L. Scarfì (2013), Multidisciplinary study of the Tindari Fault (Sicily, Italy) separating ongoing contractional and extensional compartments along the active Africa–Eurasia convergent boundary, Tectonophysics, 558, 1–17. De Guidi, G., G. Barberi, G. Barreca, V. Bruno, F. Cultrera, S. Grassi, S. Imposa, M. Mattia, C. Monaco, L. Scarfì, and S. Scudero (2014), New Geological, seismological and geodetic evidence of active thrusting and folding south of Mt. Etna (eastern Sicily): revaluation of “seismic efficiency” of the Sicilian Basal Thrust, Rend. Online Soc. Geol. It., Suppl. 1, 31. DISS Working Group (2010), Database of Individual Seismogenic Sources (DISS), Version 3.1.1: a compilation of potential sources for earthquakes larger than M 5.5 in Italy and surrounding areas, http://diss.rm.ingv.it/diss/, INGV 2010 - Istituto Nazionale di Geofisica e Vulcanologia, doi:10.6092/INGV.IT-DISS3.1.1. Doglioni, C., F. Innocenti, and G. Mariotti (2001), Why Mt. Etna?, Terra Nova 13, 25–31. Eberhart-Phillips, D., and M. Reyners (2001), A complex, young subduction zone imaged by three-dimensional seismic velocity, Fiordland, New Zealand, Geophys. J. Int., 146, 731-746. Faccenna, C., T.W. Becker, F.P. Lucente, , L. Jolivet, and F. Rossetti (2001), History of subduction and back-arc extension in the central Mediterranean, Geophys. J. Int., 145, 809–820, doi:10.1046/j.0956- 540x.2001.01435.x. Faccenna, C., C. Piromallo, A. Crespo-Blanc, L. Jolivet, and F. Rossetti (2004), Lateral slab deformation and the origin of western Mediterranean arcs, Tectonics, 23, TC1012, doi:10.1029/2002TC001488. Faccenna, C., L. Civetta, M. D’Antonio, F. Funiciello, L. Margheriti, and C. Piromallo (2005), Constraints on mantle circulation around the deforming Calabrian slab, Geophys. Res. Lett., 32, L06311, doi:10.1029/2004GL021874. Faccenna, C., P. Molin, B. Orecchio, V. Olivetti, O. Bellier, F. Funiciello, L. Minelli, C. Piromallo, and A. Billi (2011), Topography of the Calabria subduction zone (southern Italy): Clues for the origin of Mt. Etna, Tectonics, 30, TC1003, doi:10.1029/2010TC002694. Faccenna, C., T.W. Becker, L. Auer, A. Billi, L. Boschi, J.P. Brun, F.A. Capitanio, F. Funiciello, F. Horvàth, L. Jolivet, C. Piromallo, L. Royden, F. Rossetti, and E. Serpelloni (2014), Mantle dynamics in the Mediterranean, Reviews of Geophysics, 52, 283–332, doi: 10.1002/2013RG000444. Finetti, I., F. Lentini, S. Carbone, S. Catalano, and A. Del Ben (1996), Il Sistema Appennino Meridionale-Arco Calabro-Sicilia nel Mediterraneo Centrale: studio geologico-geofisico, Mem. Soc. Geol. It., 115, 529-559. Finetti, I.R., F. Lentini, S. Carbone, A. Del Ben, A. Di Stefano, E. Forlin, P. Guarnieri, M. Pipan, and A. Prizzon (2005), Geological outline of Sicily and Lithospheric Tectono-dynamics of its Tyrrhenian Margin from new CROP seismic data, edited by Finetti, I.R., CROP PROJECT: Deep Seismic Exploration of the Central Mediterranean and Italy, Elsevier. Frohlich, C. (1992), Triangle diagrams: ternary graphs to display similarity and diversity of earthquake focal mechanisms, Phys. Earth Planet. Int., 75 (1), 193-198. Funiciello, F., M. Moroni, C. Piromallo, C. Faccenna, C. Cenedese, and H.A. Bui (2006), Mapping mantle flow during retreating subduction: Laboratory models analyzed by feature tracking, J. Geophys. Res., 111, B03402, doi:10.1029/2005JB003792. Gallais, F., D. Graindorge, M.A. Gutscher, and D. Klaeschen (2013), Propagation of a lithospheric tear fault (STEP) through the western boundary of the Calabrian accretionary wedge offshore eastern Sicily (southern Italy), Tectonophysics, 602, 141-152, doi:10.1016/j.tecto.2012.12.026. Gasparini, C., G. Iannacone, and R. Scarpa (1985), Fault-plane solutions and seismicity of the Italian peninsula, Tectonophysics, 117, 59-78. Gephart, J.W. (1990), Stress and the direction of slip on fault planes, Tectonics, 9, 845-858. Gephart, J.W., and D.W. Forsyth (1984), An improved method for determining the regional stress tensor using earthquake focal mechanism data: application to the San Fernando earthquake sequence, J. Geophys. Res., 89, 9305-9320. Giardini, D., and M. Velonà (1991), The deep seismicity of the Tyrrhenian Sea, Terra Nova, 3, 57–64. Gillard, D., M. Wyss, and P. Okubo (1996), Type of faulting and orientation of stress and strain as a function of space and time in Kilauea's south flank, Hawaii, J. Geophys. Res., 101, 16025-16042. Goes, S., D. Giardini, S. Jenny, C. Hollenstein, H.G. Kahle, and A. Geiger (2004), A recent reorganization in the south-central Mediterranean, Earth Planet. Sci. Lett., 226, 335–345, doi:10.1016/j.epsl.2004.07.038. Govers, R., and M.J.R. Wortel (2005), Lithosphere tearing at STEP faults: Response to edges of subduction zones, Earth and Planet. Sci. Lett., 236, 505-523. Gruppo Analisi Dati Sismici (2016), Catalogo dei terremoti della Sicilia Orientale – Calabria Meridionale (1999–2015), INGV-Catania (http://www.ct.ingv.it/ufs/analisti/catalogolist.php). Guillaume, B., L. Husson, F. Funiciello, and C. Faccenna (2013), The dynamics of laterally variable subductions: Laboratory models applied to the Hellenides, Solid Earth, 4, 179–200, doi:10.5194/se-4-179-2013. Gutscher M.A., S. Dominguez, B. Mercier De Lepinay, L. Pinheiro, F. Gallais, N. Babonneau, A. Cattaneo, Y. Le Faou, G. Barreca, A. Micallef, and M. Rovere (2016), Tectonic expression of an active slab tear from high-resolution seismic and bathymetric data offshore Sicily (Ionian Sea), Tectonics, 35, 39-54, doi:10.1002/2015TC003898. Tectonic expression of an active slab tear from high-resolution seismic and bathymetric data offshore Sicily (Ionian Sea) Marc-André Gutscher 1 , Stephane Dominguez 2 , Bernard Mercier de Lepinay 3 , Luis Pinheiro 4 , Flora Gallais 1,5 , Nathalie Babonneau 1 , Antonio Cattaneo 5 , Yann Le Faou 6 , Giovanni Barreca 7 , Aaron Micallef 8 , and Marzia Rovere 9 Gvirtzman, Z., and A. Nur (1999), The formation of Mount Etna as the consequence of slab rollback, Nature, 401, 782–785. Hacker B.R., G.A. Abers, and S.M. Peacock (2003), Subduction factory 1) Theoretical mineralogy, densities, seismic wave speeds, and H2O contents, J. Geoph. Res., 108 (B1) 2029, 03311, doi:10.129/2001JB001127. Jolivet, L., and C. Faccenna (2000), Mediterranean extension and the Africa-Eurasia collision, Tectonics, 19(6), 1095–1106, doi:10.1029/2000TC900018. Jolivet, L., C. Faccenna, B. Huet, L. Labrousse, L. Le Pourhiet, O. Lacombe, E. Lecomte, E. Burov, Y. Denèle, J.P. Brun, M. Philippon, A. Paul, G. Salaün, H. Karabulut, C. Piromallo, P. Monié, F. Gueydan, A.I. Okay, R. Oberhänsli, A. Pourteau, R. Augier, L. Gadenne, and O. Driussi (2013), Aegean tectonics: Strain localisation, slab tearing and trench retreat, Tectonophysics, 597–598, 1 –33. Kagan, Y.Y. (1991), 3-D rotation of double-couple earthquake sources, Geophys. J. Int., 106, 709-716. Koulakov, I. (2009), LOTOS code for local earthquake tomographic inversion. Benchmarks for testing tomographic algorithms, Bull. Seismol. Soc. Am., 99, 1, 194-214, doi: 10.1785/0120080013. Langer, H., R. Raffaele, A. Scaltrito, and L. Scarfi (2007), Estimation of an optimum velocity model in the Peloritani Mountains-assessment of the variance of model parameters and variability of earthquake locations, Geophys. J. Int., 170 (3), 1151–1164, doi:10.1111/j.1365-246X.2007.03459.x. Lanzafame, G., and J.C. Bousquet (1997), The Maltese escarpment and its extension from Mt. Etna to the Aeolian Islands (Sicily): Importance and evolution of a lithosphere discontinuity, Acta Vulcanol., 9, 113–120. Lavecchia, G., F. Ferrarini, R. De Nardis, F. Visini, and S. Barbano (2007), Active thrusting as a possible seismogenic source in Sicily (Southern Italy): some insights from integrated structural-kinematic and seismological data, Tectonophysics, 445, 145–167. Lu, Z., and M. Wyss (1996), Segmentation of the Aleutian plate boundary derived from stress direction estimates based on fault plane solutions, J. Geophys. Res., 101, 803-816. Lu, Z., M. Wyss, and H. Pulpan (1997), Details of stress directions in the Alaska subduction zone from fault plane solutions, J. Geophys. Res., 102, 5385-5402. Malinverno, A., and W.B.F. Ryan (1986), Extension in the Tyrrhenian Sea and shortening in the Apennines as result of arc migration driven by slab sinking in the lithosphere, Tectonics, 5, 227–245. Mantovani, E., D. Albarello, C. Tamburelli, and D. Babbucci (1996), Evolution of the Tyrrhenian basin and surrounding regions as a result of the Africa–Euroasia convergence, J. Geodyn., 21, 35–72. Michael, A.J. (1987), Use of Focal Mechanisms to Determine Stress: A Control Study, J. Geophys. Res., 92, 357-368. Michelini, A., and T.V. McEvilly (1991), Seismological studies at Parkfield I: Simultaneous inversion for velocity structure and hypocenters using cubic B-splines parametrization, Bull. Seismol. Soc. Am., 81, 524-552. Monaco, C., L. Tortorici, R. Nicolich, L. Cernobori, and M. Costa (1996), From collisional to rifted basins: an example from the southern Calabrian arc (Italy), Tectonophysics, 266, 233–249. Montuori C., G.B. Cimini, and P. Favali (2007), Teleseismic tomography of the southern Tyrrhenian subduction zone: new results from seafloor and land recordings, J. Geoph. Res., 112 (B0) 3311, doi:10.129/2005JB004114. Musumeci, C., L. Scarfì, M. Palano, and D. Patanè (2014), Foreland segmentation along an active convergent margin: New constraints in southeastern Sicily (Italy) from seismic and geodetic observations, Tectonophysics, http://dx.doi.org/10.1016/j.tecto.2014.05.017. Neri, G., G. Barberi, B. Orecchio, and M. Aloisi (2002), Seismotomography of the crust in the transition zone between the southern Tyrrhenian and Sicilian tectonic domains, Geophys. Res. Lett., 29(23), 2135, doi:10.1029/2002GL015562. Neri, G., G. Barberi, G. Oliva, and B. Orecchio (2005), Spatial variations of seismogenic stress orientations in Sicily, south Italy, Phys. Earth Planet. Int., 148, 175–191. Neri, G., B. Orecchio, C. Totaro, G. Falcone, and D. Presti (2009), Subduction beneath southern Italy close the ending: results from seismic tomography, Seismol. Res. Lett., 80, 63–70. Neri, G., A.M. Marotta, B. Orecchio, D. Presti, C. Totaro, R. Barzaghi, and A. Borghi (2012), How lithospheric subduction changes along the Calabrian Arc in southern Italy: geophysical evidences, Int. J. Earth Sci., 101, 1949–1969. O’Connel, R.J., and B. Budiansky (1974), Seismic velocities in dry and saturated cracked solids, J. Geophys. Res. 79, 5412–5426. Orecchio, B., D. Presti, C. Totaro, and G. Neri (2014), What earthquakes say concerning residual subduction and STEP dynamics in the Calabrian Arc region, south Italy, Geophys. J. Int., 199, 1929–1942, doi: 10.1093/gji/ggu373. Palano, M., L. Ferranti, C. Monaco, M. Mattia, M. Aloisi, V. Bruno, F. Cannavò, and G. Siligato (2012), GPS velocity and strain fields in Sicily and southern Calabria, Italy: updated geodetic constraints on tectonic block interaction in the central Mediterranean, J. Geophys. Res., 117, B07401. Palano, M. (2015), On the present-day crustal stress, strain-rate fields and mantle anisotropy pattern of Italy. Geophys. J. Int., 200 (2), 969-985, doi:10.1093/gji/ggu451. Patacca, E., and P. Scandone (1989), Post Tortonian mountain building in the Apennines: the role of the passive sinking of a relict lithospheric slab, edited by A. Boriani et al., The Lithosphere in Italy, vol. 80, Atti Conv. Lincei, Rome, 157–176. Pepe, F., A. Sulli, G. Bertotti, and R. Catalano (2005), Structural highs formation and their relationship to sedimentary basins in the north Sicily continental margin (southern Tyrrhenian Sea): Implication for the Drepano Thrust Front, Tectonophysics, 409, 1 – 18. Piromallo C., and A. Morelli (2003), P wave tomography of the mantle under the Alpine-Mediterranean area, J. Geophys. Res., 108, NO. B2, 2065. Polonia, A., L. Torelli, P. Mussoni, L. Gasperini, A. Artoni, and D. Klaeschen (2011), The Calabrian arc subduction complex in the Ionian Sea: regional architecture, active deformation and seismic hazard, Tectonics, 30, TC5018, doi:10.1029/2010TC002821. Pondrelli, S., C. Piromallo, and E. Serpelloni (2004), Convergence vs retreat in Southern Tyrrhenian Sea: insights from kinematics, Geophys. Res. Lett., 31, L06611, http://dx.doi.org/10.1029/2003GL019223. Pondrelli, S., S. Salimbeni, G. Ekström, A. Morelli, P. Gasperini, and G. Vannucci (2006), The Italian CMT dataset from 1977 to the present, Phys. Earth Planet. Int., http://dx.doi.org/10.1016/j.pepi.2006.07.008, 159/3-4, 286–303. Pondrelli, S., S. Salimbeni, A. Morelli, G. Ekström, L. Postpischl, G. Vannucci and E. Boschi (2011), European–Mediterranean Regional Centroid Moment Tensor catalog: Solutions for 2005–2008, Phys. Earth Planet. Int., doi:10.1016/j.pepi.2011.01.007. Presti, D., A. Billi, B. Orecchio, C. Totaro, C. Faccenna, G. Neri (2013), Earthquake focal mechanisms, seismogenic stress, and seismotectonics of the Calabrian Arc, Italy. Tectonophysics, doi: 10.1016/j.tecto.2013.01.030. Reasenberg, P.A., and D. Oppenheimer (1985), Fortran computer programs for calculating and displaying earthquake fault-plane solutions, U.S. Geol. Surv., Open File Rept., 85-379. Réhault J.P., G. Boillot and A. Mauffret (1984), The western Mediterranean basin geological evolution, Mar. Geol., 5 5, 447-477. Rosenbaum, G., M. Gasparon, F.P. Lucente, A. Peccerillo, and M.S. Miller (2008), Kinematics of slab tear faults during subduction segmentation and implications for Italian magmatism, Tectonics, 27 (2), doi:10.1029/2007TC002143. Roure, F., D.G. Howell, C. Muller, and I. Moretti (1990), Late Cenozoic subduction complex of Sicily, Journ. Struct. Geol., 12, 259-266. Scandone, P. (1979), Origin of the Tyrrhenian Sea and Calabrian Arc, Boll. Soc. Geol. It., 98, 27-34. Scarfì, L., H. Langer, and A. Scaltrito (2009), Seismicity, seismotectonics and crustal velocity structure of the Messina Strait (Italy), Phys. Earth Planet. Int., 177, 65–78, http://dx.doi.org/10.1016/j.pepi.2009.07.010. Scarfì, L., A. Messina, and C. Cassisi (2013), Sicily and Southern Calabria focal mechanism database: a valuable tool for the local and regional stress field determination, Ann. Geophys., 56, 1, D0109, doi:10.4401/ag-6109. Selvaggi, G., and C. Chiarabba (1995), Seismicity and P-wave velocity image of the Southern Tyrrhenian subduction zone, Geophys. Res. Lett., 121, 818–826. Serpelloni, E., R. Bürgmann, M. Anzidei, P. Baldi, B. Mastrolembo Ventura, E. Boschi (2010), Strain accumulation across the Messina Straits and kinematics of Sicily and Calabria from GPS data and dislocation modeling, Earth Planet. Sci. Lett., 298, 347-360, doi:10.1016/j.epsl.2010.08.005. Spakman,W., and R. Wortel (2004), A tomographic view on western Mediterranean geodynamics, in The TRANSMED Atlas: The Mediterranean Region from Crust to Mantle, 31–52, Springer. Thurber, C. H. (1993), Local earthquake tomography: Velocities and Vp/Vs theory, edited by H. M. Iyer and K. Hirahara, Seismic Tomography: Theory and Practise, pp. 563–583, Chapman and Hall, New York. Thurber, C.H., S. Roecker, W. Ellsworth, Y. Chen, W. Lutter, and R. Sessions (1997), Two dimensional seismic image of the San Andreas fault in the northern Gabilan Range, central California: evidence for fluids in the fault zone, Geophys. Res. Lett., 24, 1591–1594. Ventura, G., G. Vilardo, G. Milano, and N.A. Pino (1999), Relationship among crustal structure, volcanism and strike-slip tectonics in the Lipari–Vulcano volcanic complex (Aeolian Islands, Southern Tyrrhenian Sea, Italy), Phys. Earth Planet. Int., 116, 31–52. Vignaroli, G., F. Rossetti, T. Theye, and C. Faccenna (2008), Styles and regimes of orogenic thickening in the Peloritani mountains (Sicily, Italy) : new constraints on the tectono-metamorphic evolution of the Apennine belt, Geol. Mag., 145, 552-569. Westaway, R. (1993), Quaternary uplift of southern Italy, J. Geophys. Res, 98 (21), 741–721, 772. Wiemer, S. (2001), A software package to analyze seismicity: ZMAP, Seismological Research Letters, 72, 373-382. Wortel, R., and W. Spakman (2000), Subduction and slab detachment in the Mediterranean-Carpathian region, Science, 290, 1910–1917. Wyss, M., B. Liang, W.R. Tanigawa, and W. Xiaoping (1992), Comparison of orientations of stress and strain tensor based on fault plane solutions in Kaoiki, Hawaii, J. Geophys. Res., 97, 4769-4790. Wyss, M., and Z. Lu (1995), Plate boundary segmentation by stress directions: southern San Andreas fault, California, Geophys. Res. Lett., 22, 547-550. Zhang, H., and C. Thurber (2003), Double-difference tomography: the method and its application to the Hayward fault, California, Bull. Seismol. Soc. Am. 93, 1875–1889. Zhang, H., C. Thurber, and P. Bedrosian (2009), Joint inversion for Vp, Vs, and Vp/Vs at SAFOD, Parkfield, California, Geochem. Geophys. Geosyst., 10, Q110032, http://dx.doi.org/10.1029/2009GC002709. Zoback, M.L. (1992). First- and second-order patterns of stress in the lithosphere: theWorld Stress Map Project., J. Geophys. Res., 97 (B8), 11703–11728.en
dc.description.obiettivoSpecifico1T. Geodinamica e interno della Terraen
dc.description.journalTypeJCR Journalen
dc.description.fulltextrestricteden
dc.relation.issn0278-7407en
dc.relation.eissn1944-9194en
dc.contributor.authorScarfì, L.en
dc.contributor.authorBarberi, G.en
dc.contributor.authorMusumeci, C.en
dc.contributor.authorPatanè, D.en
dc.contributor.departmentIstituto Nazionale di Geofisica e Vulcanologia (INGV), Sezione OE, Catania, Italiaen
dc.contributor.departmentIstituto Nazionale di Geofisica e Vulcanologia (INGV), Sezione OE, Catania, Italiaen
dc.contributor.departmentIstituto Nazionale di Geofisica e Vulcanologia (INGV), Sezione OE, Catania, Italiaen
dc.contributor.departmentIstituto Nazionale di Geofisica e Vulcanologia (INGV), Sezione OE, Catania, Italiaen
item.openairetypearticle-
item.cerifentitytypePublications-
item.languageiso639-1en-
item.grantfulltextrestricted-
item.openairecristypehttp://purl.org/coar/resource_type/c_18cf-
item.fulltextWith Fulltext-
crisitem.author.deptIstituto Nazionale di Geofisica e Vulcanologia (INGV), Sezione OE, Catania, Italia-
crisitem.author.deptIstituto Nazionale di Geofisica e Vulcanologia (INGV), Sezione OE, Catania, Italia-
crisitem.author.deptIstituto Nazionale di Geofisica e Vulcanologia (INGV), Sezione OE, Catania, Italia-
crisitem.author.deptIstituto Nazionale di Geofisica e Vulcanologia (INGV), Sezione OE, Catania, Italia-
crisitem.author.orcid0000-0002-5995-3880-
crisitem.author.orcid0000-0002-8273-0458-
crisitem.author.orcid0000-0002-0143-4594-
crisitem.author.orcid0000-0001-9410-5126-
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.author.parentorgIstituto Nazionale di Geofisica e Vulcanologia-
crisitem.classification.parent04. Solid Earth-
crisitem.department.parentorgIstituto Nazionale di Geofisica e Vulcanologia-
crisitem.department.parentorgIstituto Nazionale di Geofisica e Vulcanologia-
crisitem.department.parentorgIstituto Nazionale di Geofisica e Vulcanologia-
crisitem.department.parentorgIstituto Nazionale di Geofisica e Vulcanologia-
Appears in Collections:Article published / in press
Files in This Item:
File Description SizeFormat Existing users please Login
16_Scarfi et al.Tectonics.pdfMain article11.94 MBAdobe PDF
Show simple item record

WEB OF SCIENCETM
Citations

15
checked on Feb 10, 2021

Page view(s)

634
checked on Apr 24, 2024

Download(s)

11
checked on Apr 24, 2024

Google ScholarTM

Check

Altmetric