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  • Articles  (394)
  • 2010-2014  (394)
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  • 1
    Publication Date: 2012-04-24
    Description: The interaction between air quality and climate involves dynamical scales that cover a very wide range. Bridging these scales in numerical simulations is fundamental in studies devoted to megacity/hot-spot impacts on larger scales. A technique based on nudging is proposed as a bridging method that can couple different models at different scales. Here, nudging is used to force low resolution chemical composition models with a run of a high resolution model on a critical area. A one-year numerical experiment focused on the Po Valley hot spot is performed using the BOLCHEM model to asses the method. The results show that the model response is stable to perturbation induced by the nudging and that, taking the high resolution run as a reference, performances of the nudged run increase with respect to the non-forced run. The effect outside the forcing area depends on transport and is significant in a relevant number of events although it becomes weak on seasonal or yearly basis.
    Print ISSN: 1680-7316
    Electronic ISSN: 1680-7324
    Topics: Geosciences
    Published by Copernicus on behalf of European Geosciences Union.
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  • 2
    Publication Date: 2011-05-01
    Print ISSN: 1930-1855
    Electronic ISSN: 1930-1863
    Topics: Geosciences , Chemistry and Pharmacology
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  • 3
    Publication Date: 2017-04-04
    Description: Durante gli ultimi due anni l’Istituto Nazionale di Geofisica e Vulcanologia (INGV) ha sviluppato un importante infrastruttura di pronto intervento (la Rete Mobile Real-Time di Pronto Intervento), al fine di incrementare il numero di stazioni della Rete Sismica Nazionale dell’INGV (RSN) in zona epicentrale a seguito di eventi sismici rilevanti. Gli obiettivi principali della Rete Mobile Real-Time di Pronto Intervento sono il miglioramento delle localizzazioni epicentrali calcolate dalla Sala di Monitoraggio dell’INGV e l’abbassamento della soglia di detezione della micro-sismicità in area epicentrale durante una sequenza sismica. La Rete Mobile Real-Time di Pronto Intervento è composta da stazioni sismiche remote i cui dati sono telemetrati tramite ponte radio UHF (Ultra High Frequency) presso dei centri d’acquisizione intermedi (definiti “sottonodi”). I sottonodi sono a loro volta connessi tramite Wi-Fi ad un “centro stella” (nodo), ove è situato un sistema di trasmissione satellitare (Libra VSAT Nanometrics), tramite il quale vengono inviati i dati in tempo reale al centro acquisizione della Sala di Monitoraggio dell’INGV di Roma. L’acquisizione dati è ridondata inoltre presso la sala Disaster Recovery dell’Osservatorio di Grottaminarda. Il sistema d’acquisizione di dati sismici è costituito da un datalogger a tre canali, equipaggiato con un convertitore AD ad alta risoluzione (a 24 bit), dotato di un clock di precisione basato su timing GPS. I sensori sismici utilizzati presso le stazioni remote sono accelerometri Episensor FBA ES-T (Kinemetrics) con fondo scala a 2G e velocimetri a corto periodo (Lennartz Le Lite 3D). Il sistema di trasmissione dati, come accennato, si avvale di diversi apparati installati presso le stazioni remote, i sottonodi, ed il centro stella. Presso le stazioni remote è installato un radio modem operante in banda UHF (da 380 a 470 MHz), per il trasferimento trasparente di dati asincroni in modalità half-duplex. L’apparato modula in etere a 9.600 bps, realizzando collegamenti da 2 a 50 chilometri, in funzione dell’orografia locale e del sistema d’antenna utilizzato. Presso i sottonodi viene utilizzato un apparato WiFi (Wireless Fidelity) operante con frequenza di 2.4 GHz per collegamenti IP fino a 54 Mbit/s. Presso i sottonodi i dati sismici ricevuti dalle stazioni remote vengono inviati, tramite ponte Wi-Fi, al centro stella. Presso il centro stella la trasmissione dati avviene tramite il ricetrasmettitore Cygnus Nanometrics. Esso permette l’invio dei dati ricevuti alla Sala di Monitoraggio tramite collegamento satellitare. Il protocollo di trasmissione satellitare dedicato sul link VSAT è di tipo IP, ma può avvenire anche su apparati esterni quali fibra ottica, linee telefoniche, ecc. Per conseguire una maggiore flessibilità d’impiego, tale sistema dispone di due differenti frequenze di trasmissione, disponibili su satellite Intelsat ed HellaSat. Tutto ciò permette di orientare la parabola in due diverse direzioni, in modo da poter ovviare l’eventuale presenza di ostacoli come alberi, montagne o edifici. L’intera struttura racchiude queste tre diverse tecnologie di trasmissione dati (UHF, Wi-Fi e satellitare) al fine di garantire maggiore flessibilità di utilizzo; questo permette di affrontare l’emergenza sismica in tutte le condizioni logistiche e/o meteorologiche mirando a rapidi tempi di intervento (raggiungimento della zona epicentrale e istallazione). L’installazione della Rete Mobile Real-Time di Pronto Intervento viene gestita e coordinata all’interno di un Sistema Informativo Geografico (GIS) che consente la scelta della disposizione geografica ottimale delle stazioni della rete di pronto intervento intorno all’area epicentrale. Il database geografico utilizzato durante l’emergenza sismica contiene informazioni territoriali di vario tipo in area epicentrale. L’INGV dispone infatti di database geografici contenenti dati territoriali di tutto il territorio nazionale le cui categorie, utili ai fini della gestione dell’emergenza sismica, sono: Ubicazione delle stazioni delle reti di monitoraggio; Cartografia topografica IGM (1:25000, 1:50000, 1:100000); Modello digitale del terreno IGM; Uso del suolo; Viabilità e grafo stradale; Catologhi di sismicità storica e strumentale; Mappe di pericolosità sismica e del territorio; Database delle Sorgenti sismogenetiche; Mappe di scuotimento; Mappe di osservazioni macrosismiche. I dati sopra elencati sono utilizzati per la realizzazione di analisi di superficie (surface spatial analysis, Viewshed, Observer Point) che consentono la produzione di scenari utili per l’individuazione delle aree più favorevoli alla collocazione degli apparati della rete Real Time. Il terremoto de L’Aquila del 6 aprile 2009 è stato il primo caso di utilizzo dell’intera infrastruttura di pronto intervento. A meno di 6 ore dalla scossa principale (Mw 6.3 delle ore 01:32 GMT) il primo accelerometro inviava già dati alla Sala di Monitoraggio dell’INGV di Roma. A 3 giorni dall’evento la struttura di pronto intervento installata era costituita da 9 stazioni sismiche real-time. Oltre alla Rete Real Time di Pronto Intervento l’INGV ha installato 5 nuove stazioni GPS permanenti nel territorio abruzzese a seguito dell’evento del 6 aprile (Fig. 3). Le stazioni GPS permanenti presenti nel settore aquilano precedentemente al terremoto erano infatti caratterizzate da un’interdistanza troppo elevata, tale da non consentire una risoluzione spaziale adeguata del campo di spostamento co- e postsismico. A poche ore di distanza dall’evento sismico del 6 aprile si è quindi attivata una squadra di pronto intervento dell’INGV coadiuvata anche da personale del DPC-Ufficio Sismico e dell’ISPRA. A partire dal 7 aprile 2009, e fino al 17 dello stesso mese, sono state installate 5 nuove stazioni GPS permanenti (3 stazioni appartenenti alla Rete Integrata Nazionale GPS dell’INGV, 1 stazione del DPC-Ufficio Sismico ed una stazione dell’ISPRA) nei settori limitrofi all’epicentro della scossa principale della sequenza dell’aquilano. In tutte e 5 i casi la stazione GPS è stata monumentata, installata e avviata nell’arco di 5-6 ore. Su tutte le stazioni GPS è stata impostata sia un’acquisizione del dato GPS a 30 secondi sia un ringbuffer con campionamento a 10 Hz, in modo da permettere la registrazione dell’intera deformazione cosismica (sia statica che dinamica) in caso di ulteriore evento sismico. Nelle settimane successive è stata poi ottimizzata la trasmissione dei dati GPS, utilizzando un sistema di trasmissione dati via GPRS/UMTS implementato dal ST-Osservatorio di Grottaminarda.
    Description: Published
    Description: Trieste- Italy
    Description: 1.1. TTC - Monitoraggio sismico del territorio nazionale
    Description: open
    Keywords: Re.Mo.Tel ; 04. Solid Earth::04.06. Seismology::04.06.06. Surveys, measurements, and monitoring
    Repository Name: Istituto Nazionale di Geofisica e Vulcanologia (INGV)
    Type: Conference paper
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  • 4
    Publication Date: 2012-12-12
    Description: The collision between Africa and Eurasia is associated with a complex pattern of deformation within the plate boundary zone, with subduction of oceanic fragments, crustal extension along formerly contracting orogenic belts and back-arc spreading in Tertiary basins. First-order scientific problems regarding the strain accumulation along seismogenic structures, the present-day activity of the Calabrian slab, the existence of rigid blocks within the plate boundary and the regional crust and upper mantle structures are still awaiting for a better understanding. To solve those open questions, the CESIS project, established in 2002 by the INGV (Istituto Nazionale di Geofisica e Vulcanologia), is deploying 60 permanent CGPS stations in Southern Italy. All the sites will be equipped with Leica GRX 1200 Pro GPS receivers acquiring at 1Hz sampling interval for seismic source analysis. The data are then transmitted at 30s sampling interval by means of a satellite system (VSAT) to two acquisition centres, located in Rome and in Irpinia. Furthermore, the network sites are integrated either with broad band and very broad band seismometers or accelerometers to improve the monitoring of the background seismicity in Southern Appennines seismic belts and to better constrain the geometry of the seismogenic structures. The satellite data transmission and the integration with seismic instruments makes this network one of the most innovative CGPS networks in Europe. New developments on the GPS monumentation have also been carried out. The research activity resulting from the data coming from the CESIS network will thus exploit the full range of temporal and spatial frequencies that characterize plate boundary deformation, allowing a large range of scientific problems, ranging from earthquake source studies to regional plate kinematics, to be tackled. Some of the most intriguing targets concern (a) the study of present activity of the Calabrian slab and its associated crustal deformation, (b) the southern boundary of the Adriatic block (a rigid microplate whose existence have been proposed on the basis of seismicity distribution, earthquake slip-vectors, and space geodesy), (c) the study of strain build-up along seismogenic faults and (d) the processes which allow the deformation to be localised or distributed on the fault systems. We present (a) a new prototype of short-drilled braced GPS monumentation, (b) the technical description of geodetic data acquisition, (c) the flow and archiving of geodetic data, and (e) the first results of data analysis
    Description: Published
    Description: Denver (USA)
    Description: 1.9. Rete GPS nazionale
    Description: open
    Keywords: GPS ; 04. Solid Earth::04.03. Geodesy::04.03.01. Crustal deformations
    Repository Name: Istituto Nazionale di Geofisica e Vulcanologia (INGV)
    Type: Poster session
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  • 5
    Publication Date: 2017-04-04
    Description: Since 2004, a continuous Global Positioning System (GPS) network has been operated by the Istituto Nazionale di Geofisica e Vulcanologia (INGV) to investigate active tectonic processes in Italy and the surrounding regions, which are still largely debated. This important infrastructure is known as Rete Integrata Nazionale GPS (RING) network, and it consists of about 130 stations that are deployed all over Italy. The development and realization of a stable GPS monumentation, its integration with seismological instruments, and the choice of both satellite and internet data transmission, make this network one of the most innovative and reliable CGPS networks in the world. The technologically advanced development of the RING network has been accompanied by the development of different data processing strategies, which are mainly dependent on the use of different GPS analysis software. The different software-related solutions are here compared at different scales for this large network, and the consistency is evaluated and quantified within an RMS value of 0.3 mm/yr.
    Description: Published
    Description: 39-54
    Description: 1.9. Rete GPS nazionale
    Description: JCR Journal
    Description: open
    Keywords: Geodesy ; Seismotectonics ; CGPS network ; GPS data analysis ; Central Mediterranean ; 04. Solid Earth::04.03. Geodesy::04.03.07. Satellite geodesy ; 04. Solid Earth::04.03. Geodesy::04.03.09. Instruments and techniques ; 04. Solid Earth::04.07. Tectonophysics::04.07.02. Geodynamics
    Repository Name: Istituto Nazionale di Geofisica e Vulcanologia (INGV)
    Type: article
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  • 6
    Publication Date: 2017-04-04
    Description: Il confine calabro-lucano e l'area del Pollino sono da tempo noti in letteratura per l'assenza di forti (M〉6) terremoti storici (Rovida et al., 2011) che caratterizzano invece la fascia di sismicità che segue le massime elevazioni dell'Appennino meridionale e la Calabria (D'Agostino et al., 2011). Questa caratteristica, insieme alle evidenze paleosismologiche di tettonica attiva, ha suggerito che quest'area costituisse quindi un “gap” sismico (Cinti et al., 1997; Michetti et al., 1997) in cui la deformazione accumulata non è stata rilasciata in tempi sufficientemente prossimi a noi per essere conservata nei documenti storici. Studi più recenti (Sabadini et al., 2009) hanno proposto, sulla base di dati InSAR e misure episodiche GPS, un comportamento per creeping transiente della faglia del Pollino con velocità di slip localmente maggiori della sua velocità (geologica) a lungo-termine. Da tutto ciò la necessità di avere a disposizione dati GPS in continuo con l’obiettivo di verificare l'ipotesi di comportamento a regime transiente della faglia del Pollino, definirne lo stato di deformazione ed analizzarne le implicazioni in termini di potenziale sismico. Per far fronte a tale esigenza l’INGV ha portato avanti dal primo trimestre del 2011 il “Progetto Pollino” , finalizzato appunto ad infittire la rete RING (Rete Integrata Nazionale GPS) nell’area oggetto di studio.
    Description: Published
    Description: Molfertta (BA)
    Description: 1.9. Rete GPS nazionale
    Description: open
    Keywords: Pollino ; 04. Solid Earth::04.07. Tectonophysics::04.07.02. Geodynamics
    Repository Name: Istituto Nazionale di Geofisica e Vulcanologia (INGV)
    Type: Oral presentation
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  • 7
    Publication Date: 2020-02-24
    Description: We present the INGV (Italian National Institute of Geophysics and Volcanology) geodetic research infrastructure and related facilities, dedicated to the observation and monitoring of current deformation of the plate boundary between Africa and Eurasia. The recent increase of continuous GPS (CGPS) stations in the Central Mediterranean plate boundary zone offers the opportunity to study in detail the present-day kinematics of this actively deforming region. For answering all the open questions related to this complex area, INGV deployed a permanent, integrated and real-time monitoring CGPS network (RING) all over Italy. The RING network (http:/ring.gm.ingv.it) is now constituted by more than 150 stations. All stations have high quality GPS monuments and most of them are co-located with broadband or very broadband seismometers and strong motion sensors. The RING CGPS sites acquire at 1Hz and 30s sampling rates (some of them acquire at 10 Hz) and are connected in real-time to the INGV acquisition centers located in Roma and Grottaminarda. Real-time GPS data are transmitted using different systems, such as satellite systems, Internet, GPRS/UMTS and wireless networks. The differentiation of data transmission type and the integration with seismic instruments makes this network one of the most innovative CGPS networks in Europe. Furthermore, the INGV data acquisition centers acquire, archive and analyze most of the Italian CGPS stations managed by regional or national data providers (such as local Authorities and nation-wide industries), integrating more than 350 stations of the CGPS scientific and commercial networks existing in the Italian region. To manage data acquisition, storage, distribution and access we developed dedicated facilities including new softwares for data acquisition and a web-based collaborative environment for management of data and metadata. The GPS analysis is carried out with the three main geodetic-quality softwares used in the GPS scientific community: Bernese GAMIT an GIPSY-OASIS. The resulting daily solutions are aligned to the ITRF2005 reference frame. Stable plate reference frames are realized by minimizing the horizontal velocities at sites on the Eurasia and Nubia plates, respectively. The different software-related solutions consistency RMS is within 0.3 mm/yr (Avallone et al., 2010). The solutions are then evaluated with regard to the numerous scientific motivations behind this presentation, ranging from the definition of strain distribution and microplate kinematics within the plate boundary, to the evaluation of tectonic strain accumulation on active faults. The RING network is strongly contributing to the definition of GPS velocity field in the Italian region, and now is able to furnish a newly and up to date view of this actively deforming part of the Nubia-Eurasia plate boundary. INGV is now aiming to make the RING (and integrated CGPS networks) data and related products publicly available for the scientific community. We believe that our network represents an important reality in the framework of the EPOS infrastructure and we strongly support the idea of an European research approach to data sharing among the scientific community. We will present (a) the current CGPS site distribution, (b) the technological description of the data acquisition, storage and distribution at INGV centers, (c) the results of CGPS data analysis, and (d) the planned data access for the scientific community.
    Description: Published
    Description: Vienna, Geophysical Research Abstracts Vol. 13, EGU2011-8626, 2011
    Description: 1.9. Rete GPS nazionale
    Description: 3.2. Tettonica attiva
    Description: open
    Keywords: GPS network ; Italy ; active deformation ; infrastructure ; 04. Solid Earth::04.03. Geodesy::04.03.99. General or miscellaneous ; 04. Solid Earth::04.03. Geodesy::04.03.01. Crustal deformations ; 04. Solid Earth::04.03. Geodesy::04.03.06. Measurements and monitoring ; 04. Solid Earth::04.03. Geodesy::04.03.07. Satellite geodesy ; 04. Solid Earth::04.03. Geodesy::04.03.09. Instruments and techniques
    Repository Name: Istituto Nazionale di Geofisica e Vulcanologia (INGV)
    Type: Poster session
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  • 8
    Publication Date: 2020-02-24
    Description: The plate boundary between Africa and Eurasia represents an interesting geodynamical region characterized by a complex pattern of deformation. First-order scientific problems regarding the existence of rigid blocks within the plate boundary, the present-day activity of the Calabrian slab and the regional crust and upper mantle structures are still awaiting for a better understanding. For answering these open questions, INGV deployed a permanent, integrated and real-time monitoring GPS network (RING) all over Italy. The RING is now constituted by about 120 stations. The CGPS sites, acquiring at 1Hz and 30s sampling rate, are integrated either with broad band and very broad band seismometers or accelerometers to improve the monitoring of the background seismicity in the Apennines seismic belts and to better constrain the geometry of the seismogenic structures. Most of the network is connected to the acquisition centre (located in Rome and duplicated in Grottaminarda) by a satellite system (VSAT), while the remaining sites transmit data by Internet and classical phone connections. The satellite data transmission and the integration with seismic instruments makes this network one of the most innovative CGPS networks in Europe. Either the heterogeneity of the installed instrumentation and of the transmission types or the continuous increasing number of stations needed a central monitoring and acquisition system. Thus, in Grottaminarda, for the seismic monitoring we chose to use the open source system Earthworm, developed by USGS, with which we store waveforms and implement automatic localization of the seismic events occurred in the area. As most of the GPS sites are acquired by means of Nanometrics satellite technology, we decided to develop a new software (GpsView), written in Java, to monitor the state of health of those CGPS. This software receives GPS data from NaqsServer (Nanometrics acquisition system) and outputs information about the sites (i.e. position, number of satellites) in real-time. Furthermore, we developed also a web-based application for the management of the data and the metadata relative to the GPS sites of the RING. We present (a) the existing and planned CGPS site distribution, (b) the technological description of the seismic and GPS data acquisitions in Grottaminarda INGV centre, and (c) the first results of CGPS data analysis.
    Description: Unpublished
    Description: San Francisco, USA
    Description: 1.1. TTC - Monitoraggio sismico del territorio nazionale
    Description: 1.9. Rete GPS nazionale
    Description: open
    Keywords: RING and Seismic network ; Italy ; 04. Solid Earth::04.03. Geodesy::04.03.99. General or miscellaneous ; 04. Solid Earth::04.03. Geodesy::04.03.09. Instruments and techniques ; 04. Solid Earth::04.06. Seismology::04.06.99. General or miscellaneous ; 04. Solid Earth::04.06. Seismology::04.06.06. Surveys, measurements, and monitoring
    Repository Name: Istituto Nazionale di Geofisica e Vulcanologia (INGV)
    Type: Poster session
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  • 9
    Publication Date: 2017-04-04
    Description: Geographic data sharing and collection are becoming key activities among geological and geophysical studies worldwide, and the recent increase of infrastructures is demanding to scientific and civil community an effort to manage and disseminate their products as efficiently as possible. With this effort in mind, INGV began some years ago to collaborate with civilian and commercial subjects in order to promote the integration and sharing of data from GNSS (Global Navigation Satellite System) networks existing in Italy. Since 2004, INGV deployed a permanent, integrated and real-time monitoring CGPS network (RING, Rete Integrata Nazionale GPS, http://ring.gm.ingv.it), which is now constituted by about 170 stations all over Italy (Selvaggi et al., 2006; Avallone et al, 2010). All stations have high quality GPS monuments (D’Ambrosio, 2007; Minichiello et al., 2010) and most of them are co-located with broadband or very broadband seismometers and strong motion sensors. This scientific network is aimed to monitor crustal deformation in Italy in order to study earthquake deformation processes, from interseismic strain accumulation to rupture processes, and is giving an effective contribute to Italian Civil Protection for seismic hazard monitoring. Moreover, in the last years, local Authorities, nation-wide industries and other scientific institutions started to establish GPS/GNSS networks all over the Italian territory mainly for cartographic and positioning purposes. More than 500 CGPS stations are actually operating in Italy. The INGV acquire and analyze most of these networks, promoting at the same time actions to integrate the RING with the ones managed by regional and national data providers (D’Anastasio et al., 2010). The Regione Calabria in 2009 planned and established a network of 17 CGPS stations for cartographic and civil protection purposes covering the Calabria region (hereafter ReCal network). The CGPS stations are good quality monument connected in real time and, in the next future, will start to furnish to the civil community a positioning service. In order to share the RING and ReCal data and relative products, a synergy between the CNT-INGV (Centro Nazionale Terremoti) and the Regione Calabria started in 2011. An official agreement between the two institutions state the sharing of CGPS data, the collaboration between CNT-INGV and Regione Calabria to test the efficiency and the positioning service of ReCal network, and the contribution of ReCal network to scientific monitoring of Calabria, one of the most seismically active region in Italy. Moreover, this agreement included also the commissioning of the ReCal network and of its positioning services performed by CNT-INGV. Figure 1 shows the GPS and GNSS stations currently operating in Italy. In the inset it could be noticed how the RING and ReCal networks are integrated in order to have the best spatial coverage of the Calabrian territory. We will present the first results of the agreement between INGV-CNT and Regione Calabria, and of the commissioning of ReCal network. Moreover, we will focus on the infrastructure already existing and developed by CNT-INGV to manage data acquisition, storage, distribution and access (Cecere, 2007; Cardinale et al., 2010; Falco, 2006; 2008; Memmolo et al., 2010; Pignone et al., 2009). INGV developed dedicated facilities including new softwares for data acquisition and a web-based collaborative environment for management of data and metadata. These facilities are used to manage data coming from the RING as well as from agreements with ReCal and other CGPS networks in Italy. We believe that this infrastructure represents an important reality in the framework of GNSS data sharing development in Italy.
    Description: Published
    Description: Arcavacata di Rende (Cosenza), Italy
    Description: 1.9. Rete GPS nazionale
    Description: open
    Keywords: GPS and GNSS networks ; infrastrucutres ; database and knowledge management ; 04. Solid Earth::04.03. Geodesy::04.03.99. General or miscellaneous ; 04. Solid Earth::04.03. Geodesy::04.03.06. Measurements and monitoring ; 04. Solid Earth::04.03. Geodesy::04.03.09. Instruments and techniques
    Repository Name: Istituto Nazionale di Geofisica e Vulcanologia (INGV)
    Type: Oral presentation
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  • 10
    Publication Date: 2017-04-04
    Description: In May-July 2012, a seismic sequence struck a broad area of the Po Plain Region in northern Italy. The sequence in- cluded two ML 〉5.5 mainshocks. The first one (ML 5.9) oc- curred near the city of Finale Emilia (ca. 30 km west of Ferrara) on May 20 at 02:03:53 (UTC), and the second (ML 5.8) occurred on May 29 at 7:00:03 (UTC), about 12 km south- west of the May 20 mainshock (Figure 1), near the city of Mirandola. The seismic sequence involved an area that ex- tended in an E-W direction for more than 50 km, and in- cluded seven ML ≥5.0 events and more than 2,300 ML 〉1.5 events (http://iside.rm.ingv.it). The focal mechanisms of the main events [Pondrelli et al. 2012, Scognamiglio et al. 2012, this volume] consistently showed compressional kinematics with E-W oriented reverse nodal planes. This sector of the Po Plain is known as a region charac- terized by slow deformation rates due to the northwards mo- tion of the northern Apennines fold-and-thrust belt, which is buried beneath the sedimentary cover of the Po Plain [Pi- cotti and Pazzaglia 2008, Toscani et al. 2009]. Early global po- sitioning system (GPS) measurements [Serpelloni et al. 2006] and the most recent updates [Devoti et al. 2011, Bennett et al. 2012] recognized that less than 2 mm/yr of SW-NE short- ening are accommodated across this sector of the Po Plain, in agreement with other present-day stress indicators [Mon- tone et al. 2012] and known active faults [Basili et al. 2008]. In the present study, we describe the GPS data used to study the coseismic deformation related to the May 20 and 29 mainshocks, and provide preliminary models of the two seismic sources, as inverted from consensus GPS coseismic deformation fields.
    Description: Published
    Description: 759-766
    Description: 3.1. Fisica dei terremoti
    Description: 3.2. Tettonica attiva
    Description: JCR Journal
    Description: open
    Keywords: Crustal deformations, Measurements and monitoring, earthquake source and dynamics, GPS, Emilia sequence ; 04. Solid Earth::04.03. Geodesy::04.03.01. Crustal deformations ; 04. Solid Earth::04.03. Geodesy::04.03.07. Satellite geodesy ; 04. Solid Earth::04.06. Seismology::04.06.01. Earthquake faults: properties and evolution ; 04. Solid Earth::04.07. Tectonophysics::04.07.07. Tectonics
    Repository Name: Istituto Nazionale di Geofisica e Vulcanologia (INGV)
    Type: article
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