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Articles

A mountain slope deformation in an alpine metaophiolitic massif (Ligurian Alps, Italy)

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Pages 77-89 | Received 14 Jul 2020, Accepted 10 Nov 2020, Published online: 15 Dec 2020

References

  • Agliardi, F., Crosta, G., & Zanchi, A. (2001). Structural constraints on deep-seated slope deformation kinematics. Engineering Geology, 59(1–2), 83–102. https://doi.org/10.1016/S0013-7952(00)00066-1
  • Alvarez, W., Cocozza, T., & Wezel, F. C. (1974). Fragmentation of the alpine orogenic belt by microplate dispersal. Nature, 248(5446), 309–314. https://doi.org/10.1038/248309a0
  • Argnani, A. (2012). Plate motion and the evolution of alpine Corsica and Northern Apennines. Tectonophysics, 579, 207–219. https://doi.org/10.1016/j.tecto.2012.06.010
  • Boschi, E., Guidoboni, E., Ferrari, G., Mariotti, D., Valensise, G., & Gasperini, P. (2000). Catalogue of strong Italian earthquakes from 461 B.C. to 1980. Annali di Geofisica, 43(4), 609–868. https://doi.org/10.4401/ag-3668
  • Capponi, G., & Crispini, L. (2002). Structural and metamorphic signature of alpine tectonics in the Voltri Massif (Ligurian Alps, northwestern Italy). Eclogae Geologicae Helvetiae, 95, 31–42. ISSN:00129402.
  • Capponi, G., & Crispini, L. (2008a). Foglio 213 – 230 “Genova” della Carta Geologica d’Italia alla scala 1:50.000 [213–230 “Genova” sheet of the Italian geological map at 1:50000 scale]. APAT – Regione Liguria, Selca.
  • Capponi, G., & Crispini, L. (2008b). Note Illustrative del Foglio 213–230 «Genova» della Carta Geologica d’Italia alla scala 1:50.000 [Explanatory notes of the 213–230 “Genova” sheet of the Italian geological map at 1:50000 scale]. Apat-Regione Liguria, Selca.
  • Capponi, G., Crispini, L., & Federico, L. (2013). Note Illustrative al Foglio 212 “Spigno Monferrato” della Carta Geologica Regionale della Liguria [Explanatory notes of the 212 “Spigno Monferrato” sheet of the regional geological map of Liguria]. http://www.cartografia.regione.liguria.it/apriFoglia.asp?itemID=30208&fogliaID=1579&label=Carta%20Geologica%20Regionale%20%28CGR%29%20sc.%201:25000%20riferita%20al%20Foglio%20212%20Spigno%20Monferrato%20-%20sc.%201:50000
  • Capponi, G., Crispini, L., Federico, L., & Malatesta, C. (2016). Geology of the eastern Ligurian Alps: A review of the tectonic units. Italian Journal of Geosciences, 135(1), 157–169. https://doi.org/10.3301/IJG.2015.06
  • Capponi, G., Crispini, L., & Piazza, M. (2013a). Foglio 212.1 “Tiglieto”, scala 1/25’000, Regione Liguria [212.1 “Tiglieto” sheet at 1/25000 scale of the regional geological map of Liguria]. http://www.regione.liguria.it/opendata/dati cartografici/item/37914-cartageologica-regionale-cgr-sc-125000-riferita-al foglio-212-spigno-monferrato-sc-150000.html
  • Capponi, G., Crispini, L., & Piazza, M. (2013b). Sezione 212080 “Tiglieto”, scala 1/10’000, Regione Liguria [212080 “Tiglieto” section at 1/10000 scale of the regional geological map of Liguria]. http://www.cartografia.regione.liguria.it/apriFoglia.asp?itemID=30208&fogliaID=1575&label=Carta%20Geologica%20Regionale%20%28CGR%29%20sc.%201:10000%20riferita%20al%20Foglio%20212%20Spigno%20Monferrato%20-%20sc.%201:50000
  • Carobene, L., & Cevasco, A. (2011). A large scale lateral spreading, its genesis and quaternary evolution in the coastal sector between Cogoleto and Varazze (Liguria – Italy). Geomorphology, 129(3–4), 398–411. https://doi.org/10.1016/j.geomorph.2011.03.006
  • Crispini, L., Capponi, G., & Federico, L. (2009). Late orogenic transpressional tectonics in the «Ligurian knot». Italian Journal Geoscience, 128(2), 433–441. https://doi.org/10.3301/IJG.2009.128.2.433
  • Crosta, G. (1996). Landslide, spreading, deep seated gravitational deformation: Analysis, examples, problems and proposals. Geografia Fisica e Dinamica Quaternaria, 19, 297–313.
  • Crosta, G. B., & Zanchi, A. (2000, June). Deep-seated slope deformations. Huge, extraordinary, enigmatic phenomena. In E. Bromhead, N. Dixon, & M. Ibsen (Eds.), Landslides in research, theory and practice. Proceeding 8th international symposium on landslides, Cardiff (pp. 351–358). Thomas Telford.
  • Dikau, R., Brunsden, D., Schrott, L., & Ibsen, M. (Eds.). (1996). Landslide recognition. Identification, movement and causes. Wiley.
  • Dramis, F., & Sorriso-Valvo, M. (1994). Deep-seated gravitational slope deformations, related landslides and tectonics. Engineering Geology, 38(3–4), 231–243. https://doi.org/10.1016/0013-7952(94)90040-X
  • Faccini, F., Piccazzo, M., & Robbiano, A. (2009). A deep-seated gravitational slope deformation in the Upper Bargonasco Valley (Ligurian Apennines). Geografia Fisica e Dinamica Quaternaria, 32(1), 73–82. ISSN:03919838.
  • Faccini, F., Robbiano, A., Roccati, A., & Raso, E. (2013). Gravity-driven deep-reaching deformations and large-scale landslides in recently uplifted mountain areas: The case-study of Mt. Cucco and Belpiano (Ligurian Apennine, Italy). Italian Journal of Engineering Geology and Environment – Book Series, 6, 141–152. https://doi.org/10.4408/IJEGE.2013-06.B-11
  • Fanucci, F. (1986). Evolution stratigraphique de la région du golfe de Gênes depuis l’Eocène Supérieur [Stratigraphic evolution of the Gulf of Genova region since Late Eocene]. Memorie della Societa Geologica Italiana, 36, 19–30.
  • Fanucci, F., & Nosengo, S. (1977). Rapporti tra neotettonica e fenomeni morfogenetici del versante marittimo dell’Appennino ligure e del margine continentale [Relations between neotectonics and morphogenetic phenomena of the maritime slope of the Ligurian Apennines and the continental margin]. Bollettino della Società Geologica Italiana, 96, 41–51.
  • Fanucci, F., Tedeschi, D., & Vignolo, A. (1982). Nuovi dati di neotettonica rilevati sul foglio 82 Genova. Contributi preliminari alla realizzazione della carta neotettonica d’Italia [New neotectonic data of the 82 Genova sheet. Preliminary contributions to the neotectonic map of Italy]. Pubbl. 356 del P.F. Geodinamica.
  • Federico, L., Capponi, G., Crispini, L., Scambelluri, M., & Villa, I. M. (2005). 39Ar/40Ar dating of high-pressure rocks from the Ligurian Alps: Evidence for a continuous subduction–exhumation cycle. Earth and Planetary Science Letters, 240(3–4), 668–680. https://doi.org/10.1016/j.epsl.2005.09.062
  • Federico, L., Crispini, L., Vigo, A., & Capponi, G. (2014). Unraveling polyphase brittle tectonics through multi-software fault-slip analysis: The case of the Voltri Unit, Western Alps (Italy). Journal of Structural Geology, 68, 175–193. https://doi.org/10.1016/j.jsg.2014.09.011
  • Federico, L., Faccini, F., Torchio, S., Roccati, A., Crispini, L., Vigo, A., Poggi, E., Firpo, M., & Capponi, G. (2012). Deep seated gravitational slope deformation in an alpine Ophiolites Massif: The case of “Badia Di Tiglieto” (Voltri Massif, Northern Italy). Rendiconti Online Della Società Geologica Italiana, 22, 83–85. ISSN:20358008.
  • Federico, L., Spagnolo, C., Crispini, L., & Capponi, G. (2008). Fault-slip analysis in the metaophiolites of the Voltri Massif: Constraints for the tectonic evolution at the Alps/Apennine boundary. Geological Journal, 44(2), 225–240. https://doi.org/10.1002/gj.1139
  • Ferraris, F., Firpo, M., & Pazzaglia, F. J. (2012). DEM analyses and morphotectonic interpretation: The Plio-Quaternary evolution of the eastern Ligurian Alps, Italy. Geomorphology, 149–150, 27–40. https://doi.org/10.1016/j.geomorph.2012.01.009
  • Fioraso, G. (2017). Impact of massive deep-seated rock slope failures on mountain valley morphology in the northern Cottian Alps (NW Italy). Journal of Maps, 13(2), 575–587. https://doi.org/10.1080/17445647.2017.1342211
  • Fioraso, G., Balestro, G., Festa, A., & Lanteri, L. (2019). Role of structural inheritance in the gravitational deformation of the Monviso meta-ophiolite complex: The Pui-Orgiera serpentinite landslide (Varaita Valley, Western Alps). Journal of Maps, 15(2), 372–381. https://doi.org/10.1080/17445647.2019.1602854
  • Gelati, R., & Gnaccolini, M. (1988). Sequenze deposizionali in un bacino episuturale, nella zona di raccordo tra. Atti Ticinesi di Scienze della Terra Alpi ed Appennino settentrionale, 31, 340–350.
  • Giammarino, S., Capponi, G., Crispini, L., Giglia, G., & Piazza, M. (2002). Carta Geologica della LIGURIA – Scala 1: 200.000. LAC (Firenze). https://doi.org/10.13140/RG.2.2.14791.50081
  • Guido, M. A., Mariotti Lippi, M., Menozzi, B. I., Placereani, S., & Montanari, C. (2004). Il paesaggio vegetale montano della Liguria centro-occidentale nell’età del Ferro: area del monte Beigua (Savona) [Mountain green landscape of central-western Liguria during the Iron Age: Mount Beigua area (Savona)]. In R. C. de Marinis & G. Spadea (Eds.), I Liguri, un antico popolo europeo tra Alpi e Mediterraneo. Skira ed.
  • Hermann, S. W., Madritsch, G., Rauth, H., & Becker, L. P. (2000). Modes and structural conditions of large scale mass movements (Sackungen) on crystalline basement units of the Eastern Alps (Niedere Tauern, Austria. Mitteilungen des Naturwissenschaftlichen Vereines für Steiermark, 130, 31–42.
  • Hungr, O., Leroueil, S., & Picarelli, L. (2014). The Varnes classification of landslide types, an update. Landslides, 11(2), 167–194. https://doi.org/10.1007/s10346-013-0436-y
  • Hutchinson, J. N. (1988). General report. Morphological and geotechnical parameters of landslides in relation to geology and hydrogeology. In Proceedings 5th international symposium on landslides, Lausanne (Vol. 1, pp. 3–35).
  • INGV Seismological Data Centre. (2006, January 1). Rete Sismica Nazionale (RSN). Istituto Nazionale di Geofisica e Vulcanologia (INGV), Italy. https://doi.org/10.13127/SD/X0FXNH7QFY
  • Jaboyedoff, M. (2011). Slope tectonics. Geological society, special publications n° 351.
  • Jaboyedoff, M., Penna, I., Pedrazzini, A., Baron, I., & Crosta, G. B. (2013). An introductory review on gravitational-deformation induced structures, fabrics and modeling. Tectonophysics, 605, 1–12. https://doi.org/10.1016/j.tecto.2013.06.027
  • Jomard, H., Lebourg, T., & Guglielmi, Y. (2014). Morphological analysis of deep-seated gravitational slope deformation (DSGSD) in the western part of the Argentera massif. A morpho-tectonic control? Landslides, 11(1), 107–117. https://doi.org/10.1007/s10346-013-0434-0
  • Jordan, G., Meijninger, B. M. L., Van Hinsbergen, D. J. J., Meulenkamp, J. E., & Van Dijk, P. M. (2005). Extraction of morphotectonic features from DEMs: Development and applications for study areas in Hungary and NW Greece. International Journal of Applied Earth Observation and Geoinformation, 7(3), 163–182. https://doi.org/10.1016/j.jag.2005.03.003
  • Kastens, K., Mascle, J., Auroux, C., Bonatti, E., Broglia, C., Channell, J., Curzi, P., Emeis, K.-C., Glaçon, G., Hasegawa, S., Hieke, W., Mascle, G., Mccoy, F., Mckenzie, J., Mendelson, J., Müller, C., Réhault, J.-P., Robertson, A., Sartori, R., … Torii, M. (1988). ODP leg 107 in the Tyrrhenian Sea: Insights into passive margin and back-arc basin evolution. Geological Society of America Bulletin, 100(7), 1140–1156. https://doi.org/10.1130/0016-7606(1988)100<1140:OLITTS>2.3.CO;2
  • Lorenz, C. (1984). Evolution stratigraphique et structurale des Alpes Ligures depuis l’Eocène Superieur. Memorie della Societa Geologica Italiana, 28, 211–228.
  • Marini, M. (1984). Le deformazioni fragili del Pliocene Ligure: implicazioni nella Geodinamica Alpina [Brittle deformations of Ligurian Pliocene: Implications for alpine geodynamics]. Memorie della Societa Geologica Italiana, 29, 157–169.
  • Martinotti, G., Giordan, D., Giardino, M., & Ratto, S. (2012). Controlling factors for deep-seated gravitational slope deformation (DSGSD) in the Aosta Valley (NW Alps, Italy). In M. Jaboyedoff (Ed.), Slope tectonics (Special publications, 351, pp. 113–131). Geological Society. https://doi.org/10.1144/SP351.6
  • Mortara, G., & Sorzana, P. F. (1987). Fenomeni di deformazione gravitativa profonda nell’Arco Alpino Occidentale Italiano. Considerazioni lito-strutturali e morfologiche [Deep-seated gravitational slope deformations in the Western Italian Alps. Litho-structural and morphological considerations]. Bollettino della Società Geologica Italiana e del Servizio Geologico d’Italia, 106, 303–314.
  • Piana, F., D’atri, A., & Orione, P. (1997). The Visone formation: A marker for the Early Miocene tectonics in the Alto Monferrato domain (Tertiary Piemonte Basin, NW, Italy). Memorie Scienze Geologiche Università Padova, 49, 145–162.
  • Sacchini, A., Faccini, F., Ferraris, F., Firpo, M., & Angelini, S. (2016a). Large-scale landslide and deep-seated gravitational slope deformation of the Upper Scrivia Valley (Northern Apennine, Italy). Journal of Maps, 1021393. https://doi.org/10.1080/17445647.2015.1021393
  • Sacchini, A., Faccini, F., & Luino, F. (2016b). Deep seated gravitational slope deformations in a Ligurian Apennines catchment (Italy): Evidences, characterizations and consequences. Disaster Advances, 9(3), 1–18. ISSN:0974262X.
  • Sanchez, G., Rolland, Y., Corsini, M., Braucher, R., Bourlès, D., Arnold, M., & Aumaître, G. (2010). Relationships between tectonics, slope instability and climate change: Cosmic ray exposure dating of active faults, landslides and glacial surfaces in the SW Alps. Geomorphology, 117(1–2), 1–13. https://doi.org/10.1016/j.geomorph.2009.10.019
  • Spagnolo, C., Crispini, L., & Capponi, G. (2007). Late structural evolution in an accretionary wedge: Insights from the Voltri Massif (Ligurian Alps, Italy). Geodinamica Acta, 20(1–2), 21–35. https://doi.org/10.3166/ga.20.21-35
  • Spagnolo, M., & Firpo, M. (2007). Geomorphic evolution of the seaward escarpment in the NE Ligurian Alps (Italy). Zeitschrift für Geomorphologie, 51(1), 115–134. https://doi.org/10.1127/0372-8854/2007/0051-0115