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3-D geomechanical rock mass characterization for the evaluation of rockslide susceptibility scenarios

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Abstract

An integrated methodology based on traditional field and remote surveys such as terrestrial laser scanning and terrestrial infrared thermography is proposed, with the aim of defining susceptibility scenarios connected to rock slopes affected by instability processes. The proposed methodology was applied to a rock slope threatening a coastal panoramic roadway located in western Elba Island (Livorno district, central Italy). The final aim of the methodology was to obtain an accurate three-dimensional rock mass characterization in order to detect the potentially more hazardous rock mass portions, calculate their volume, and collect all the required geomechanical and geometrical parameters to perform a detailed stability analysis. The proposed approach proved to be an effective tool in the field of engineering geology and emergency management, when it is often urgently necessary to minimize survey time when operating in dangerous environments and gather all the required information as fast as possible.

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References

  • Abellan A, Vilaplana JM, Martinez J (2006) Application of a long-range terrestrial laser scanner to a detailed rockfall study at Vall de Nuria (Eastern Pyrenees, Spain). Eng Geol 88:136–148

    Article  Google Scholar 

  • Abellan A, Vilaplana JM, Calvet J, Blanchard J (2010) Detection and spatial prediction of rockfalls by means of terrestrial laser scanning modeling. Geomorphology 119:162–171

    Article  Google Scholar 

  • Adorno V, Barnobi L, La Rosa F, Leotta, Paratore M (2009) Contributo della tecnologia laser scanner e termografia IR nella caratterizzazione geomeccanica di un costone roccioso. Atti 13a conferenza Asita, Bari 1–4 December 2009 [in Italian]

  • Barberi F, Innocenti F (1965) Le rocce cornubianitico-calcaree dell’anello termometamorfico del Monte Capanne (Isola d’Elba). Atti Soc Tosc Sci Nat Mem Ser A 72:306–398 [In Italian]

    Google Scholar 

  • Baroň I, Bečkovský D, Mica L (2012) Application of infrared thermography for mapping open fractures in deep-seated rockslides and unstable cliffs. Landslides, pp 1–13, in press. doi:10.1007/s10346-012-0367-z

  • Barton NR (1973) Review of a new shear strength criterion for rock joints. Eng Geol 7:287–332

    Article  Google Scholar 

  • Barton NR (1976) The shear strength of rock and rock joints. Int J Rock Mech Min Sci Geomech Abstr 13(9):255–279

    Article  Google Scholar 

  • Barton NR, Bandis SC (1982) Effects of block size on the shear behavior of jointed rock. 23rd U.S. symp. on rock mechanics, Berkeley, pp 739–760

  • Barton NR, Choubey V (1977) The shear strength of rock joints in theory and practice. Rock Mech 10:1–54

    Article  Google Scholar 

  • Bortolotti V, Fazzuoli M, Pandeli E, Principi G, Babbini A, Corti S (2001) Geology of Central and Eastern Elba Island, Italy. Ofioliti 26(2a):97–150

    Google Scholar 

  • Clark MR, Mc Cann DM, Forde MC (2003) Application of infrared thermography to the nondestructive testing of concrete and masonry bridges. NDT Int 36:265–275

    Article  Google Scholar 

  • Dini A, Innocenti F, Rocchi S, Tonarini S, Westerman DS (2002) The magmatic evolution of the late Miocene laccolith-pluton-dyke granitic complex of Elba Island, Italy. Geol Mag 139:257–279

    Article  Google Scholar 

  • Fanti R, Gigli G, Tapete D, Mugnai F, Casagli N (2011) Monitoring and modeling slope instability in cultural heritage sites. Proc. of the Second World Landslide Forum, Rome

    Google Scholar 

  • Fanti R, Gigli G, Lombardi L, Tapete D, Canuti P (2012) Terrestrial laser scanning for rockfall stability in the cultural heritage site of Pitigliano (Italy), Landslides, 1–12, in press. doi:10.1007/s10346-012-0329-5

  • Farina F, Dini A, Innocenti F, Rocchi S, Westerman DS (2010) Rapid incremental assembly of the Monte Capanne pluton (Elba island,Tuscany) by downward stacking of magma sheets. Bulletin of the Geological Society of America 122:1463-1479

    Google Scholar 

  • Ferrara G, Tonarini S (1993) L’Isola d’Elba: un laboratorio di geocronologia. Mem Soc Geol It 49:227–232 [In Italian]

    Google Scholar 

  • Ferrero AM, Forlani G, Roncella R, Voyat HI (2009) Advanced geostructural survey methods applied to rock mass characterization. Rock Mech Rock Eng 42:631–665

    Article  Google Scholar 

  • Garfagnoli F, Menna F, Nirta G, Pandeli E, Principi G (2010) The contact metamorphic aureole of the Mt. Capanne Pluton: new data from the carg project. 85° Congresso Nazionale della Società Geologica Italiana “L'Appennino nella geologia del Mediterraneo centrale” - Pisa, 6–8 September 2010. Rend Soc Geol It 11:279–280

    Google Scholar 

  • Gigli G, Casagli N (2011) Semiautomatic extraction of rock mass structural data from high resolution LIDAR point clouds. Int J Rock Mech Min Sci 48(2):187–198

    Article  Google Scholar 

  • Gigli G, Mugnai F, Leoni L, Casagli N (2009) Brief communication: analysis of deformations in historic urban areas using terrestrial laser scanning. Nat Hazards Earth Syst Sci 9:1759–1761

    Article  Google Scholar 

  • Gigli G, Frodella W, Mugnai F, Tapete D, Cigna F, Fanti R, Intrieri E, Lombardi L (2012a) Instability mechanisms affecting cultural heritage sites in the Maltese Archipelago. Nat Hazards Earth Syst Sci 12:1–21

    Article  Google Scholar 

  • Gigli G, Morelli S, Fornera S, Casagli N (2012b) Terrestrial laser scanner and geomechanical surveys for the rapid evaluation of rock fall susceptibility scenarios. Landslides, pp 1–14, in press, doi:10.1007/s10346-012-0374-0

  • Hoek E (2007) Practical rock engineering. Rocscience, Toronto, available online at: www.rocscience.com

  • ISRM (1978) Commission on the standardization of laboratory and field test. Suggested methods for the quantitative description of discontinuities in rock masses. Int J Rock Mech Min Sci Geomech Abs 15(6):319–368

    Article  Google Scholar 

  • ISRM (1985) Suggested methods for determining point load strength. Int J Rock Mech Min Sci Geomech Abs 22(2):51–62

    Article  Google Scholar 

  • Jaboyedoff M, Metzger R, Oppikofer T, Couture R, Derron MH, Locat J, Turmel D (2007) New insight techniques to analyze rock-slope relief using DEM and 3D- imaging cloud points: COLTOP-3D software, in: Rock mechanics: meeting society’s challenges and demands. Proceedings of the 1st Canada–U.S rock mechanics symposium, Vancouver, Canada, May 27–31, Eberhardt, E,Stead, D,Morrison, T, editors. London: Taylor & Francis p 61–68

  • Jaboyedoff M, Couture R, Locat P (2009) Structural analysis of Turtle Mountain (Alberta) using digital elevation model: toward a progressive failure. Geomorphology 103:5–16

    Article  Google Scholar 

  • Juteau M, Michard A, Zimmermann JL, Albarede F (1984) Isotopic heterogeneities in the granitic intrusion of Monte Capanne (Elba Island, Italy) and dating concepts. J Petrol 25:532–545

    Article  Google Scholar 

  • Lato M, Diederichs MS, Hutchinson DJ, Harrap R (2009) Optimization of LiDAR scanning and processing for automated structural evaluation of discontinuities in rock masses. Int J Rock Mech Min Sci 46:194–199

    Article  Google Scholar 

  • Lombardi L, Casagli N, Gigli G, Nocentini M (2006) Verifica delle condizioni di sicurezza della S.P. Lodovica in seguito ai fenomeni di crollo nella cava di Sesto di Moriano (Lucca). Giornale di Geologia Applicata AIGA 3:249–256 [In Italian]

    Google Scholar 

  • Maksimovic M (1996) The shear strength components of a rough rock joint. Int J Rock Mech Min Sci Geomech Abstr 33(8):769–783

    Article  Google Scholar 

  • Menna F, Nirta G, Garfagnoli F, Principi G, Pandeli E (2008) HT shear zones related to pluton emplacement: An example from Elba Island (Tuscany, Italy), International Geological Congress, Oslo, 6–14, August

  • Oppikofer T, Jaboyedoff M, Blikra LH, Derron MH (2008) Characterization and monitoring of the Aknes rockslide using terrestrial laser scanning. In: Proceedings of the 4th Canadian conference on geohazards: from causes to management pp. 211–218

  • Patton FD (1966) Multiple modes of shear failure in rock. In: proceedings of the 1st congress of the international society of rock mechanics. Lisbon 1:509–513

    Google Scholar 

  • Rahman Z, Slob S, Hack R (2006) Deriving roughness characteristics of rock mass discontinuities from terrestrial laser scan data. Proceedings of the 10th IAEG Congress, “Engineering geology for tomorrow’s cities”. Nottingham, United Kingdom: Geological Society of London; 6–10 September 2006, paper 437, 12 pp

  • Rocchi S, Dini A, Innocenti F, Tonarini S, Westerman DS (2003) Elba Island: intrusive magmatism. In: Poli G, Perugini D, Rocchi S, Dini A (eds). Miocene to Recent Plutonism and Volcanism in the Tuscan Magmatic Province (Central Italy). Periodico di Mineralogia 72:73–104, Special Issue no 2

    Google Scholar 

  • Rocscience (2004a) RocPlane user's guide. RocScience Inc, Toronto, Ontario, Canada

    Google Scholar 

  • Rocscience (2004b) Swedge user's guide. RocScience Inc, Toronto, Ontario, Canada

    Google Scholar 

  • Slob S, Hack HRGK (2004) 3D terrestrial laser scanning as a new field measurement and monitoring technique. In: Engineering geology for infrastructure planning in Europe: a European perspective/editor Hack HRGK, Azzam R, Charlier R - Berlin etc.: Springer (Lecture Notes in Earth Sciences; 104) pp 179–190

  • Slob S, Hack, HRGK (2007) Fracture mapping using 3D laser scanning techniques. In: 11th congress of the International Society for Rock Mechanics : the second half century of rock mechanics, 9–13, July, 2007, Lisbon, Portugal/ed by LR e Sousa, CON Grossmann Leiden : Taylor & Francis/Balkema ISBN 978-0-41545-084-3. pp. 299–302

  • Slob S, Hack HRGK, Turner K (2002) Approach to automate discontinuity measurements of rock faces using laser scanning techniques. In: Proceedings of ISRM EUROCK 2002: Funchal, Portugal, 25–28 November 2002/ed. by C. Dinid da Gama and L Riberia e Sousa Lisboa, Sociedade Portuguesa de Geotecnia pp 87–94

  • Slob S, Hack HRGK, Van Knapen B, Turner K, Kemeny J (2005) A method for automated discontinuity analysis of rock slopes with 3-D laser scanning. Transp Res Rec 1913:187–208

    Article  Google Scholar 

  • Spohn A (1981) Die ophiolitführenden Gesteine von West-Elba: stratigraphie, tektonik, Metamorphose. Berliner Geowiss Abh Reihe A 37:124

    Google Scholar 

  • Sturzenegger M, Stead D (2009) Quantifying discontinuity orientation and persistence on high mountain rock slopes and large landslides using terrestrial remote sensing techniques. Nat Hazards Earth Syst Sci 9:267–287

    Article  Google Scholar 

  • Tapete D, Gigli G, Mugnai F, Vannocci P, Pecchioni E, Morelli S, Fanti R, Casagli N (2012) Correlation between erosion patterns and rockfall hazard susceptibility in hilltop fortifications by terrestrial laser scanning and diagnostic investigations. In: IEEE International Geoscience and Remote Sensing Symposium. Remote Sensing for a Dynamic Earth. Munich, Germany, 22–27 July 2012, pp. 4809–4812

  • Tavukçuoğlu A, Düzgüneş A, Caner-Saltik EN, Demirci Ş (2005) Use of IR thermography for the assessment of surface-water drainage problems in a historical building, Agzikarahan (Aksaray), Turkey. NDT E Int 38(5):402–410

    Article  Google Scholar 

  • Teza G, Marcato G, Castelli E, Galgaro A (2012) IRTROCK a matlab toolbox for contactless recognition of surface and shallow weakness traces of a rock mass by infrared thermography. Comput Geosci 45:109–118

    Article  Google Scholar 

  • Trevisan L (1950) L’Elba orientale e la sua tettonica di scivolamento per gravità. Mem Ist Geol Univ Padova 16:5–39 [In Italian]

    Google Scholar 

  • Turner AK, Kemeny J, Slob S, Hack HRGK (2006) Evaluation and management of unstable rock slopes by 3-D laser scanning. IAEG 404:1–11

    Google Scholar 

  • Westerman DS, Dini A, Innocenti F, Rocchi S (2003) When and where did hybridization occur? The case of the Monte Capanne pluton, Italy. Atl Geol 39(2):147–162

    Google Scholar 

  • Wu JH, Lin HM, Lee DH, Fang SC (2005) Integrity assessment of rock mass behind the shotcreted slope using thermography. Eng Geol 80:164–173

    Article  Google Scholar 

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Gigli, G., Frodella, W., Garfagnoli, F. et al. 3-D geomechanical rock mass characterization for the evaluation of rockslide susceptibility scenarios. Landslides 11, 131–140 (2014). https://doi.org/10.1007/s10346-013-0424-2

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