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Rock fall hazard along the railway corridor to Jerusalem, Israel, in the Soreq and Refaim valleys

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Abstract

We evaluate rock fall hazard along the railway corridor to Jerusalem, Israel, in the Soreq and Refaim valleys. For the purpose, we use a combination of historical information on past rock fall events, field surveys aided by the interpretation of aerial photographs, and numerical rock fall modeling. Historical information indicates that on July 11, 1927 an m L 6.2 Dead-Sea transform earthquake caused rock falls in the studied area. The seismically induced rock falls damaged the railway tracks. Field observations revealed that the source area for the 1927 failures was located in the Aminadav formation, at the contact with the Moza formation. At the stratigraphic contact, rock blocks 100–101 m3 in size are formed as a result of tensile stresses and associated fracturing in the dolomite of the Aminadav formation, combined with continuous creep of the blocks on the marl of the underlying Moza formation. We use topographical, geological, and geomorphological information to calibrate a three-dimensional numerical simulation of rock falls in the studied area. We use the results of the numerical modeling, and additional independent information, to assess rock fall hazard and the associated risk in the Soreq and Refaim valleys. Results indicate that in the studied area, rock fall risk to the railway line to Jerusalem is due primarily to Dead-Sea transform earthquakes, with m L  > 6. We identify nine sections of the railway line where rock fall risk exists, for a total length of 2.5 km. We further note that seismically induced rock falls can produce damage to the road network in the studied area, make it difficult or impossible for earthquake casualties to reach hospitals in Jerusalem. We conclude offering recommendations on how to mitigate the risk posed by earthquake-induced rock falls in the studied area.

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References

  • Arkin Y (1976) Jerusalem and vicinity, Geological map, 1:50,000, Geological Survey, Israel

  • Arkin Y, Braun M, Starinsky A (1965) Type sections of Cretaceous Formations in the Jerusalem-Bet Shemesh area, GSI Stratigraphic sections No. 1, Part 1, Lithostratigraphy, Geological Survey of Israel

  • Avni R (1999) The 1927 Jericho earthquake, comprehensive macroseismic analysis based on contemporary sources, Ph.D. Thesis, Ben Gurion University of the Negev, Beer-Sheva, Israel (in Hebrew with English abstract)

  • Azzoni A, de Freitas MH (1995) Experimentally gained parameters, decisive for rock fall analysis. Rock Mech Rock Eng 28:111–124

    Article  Google Scholar 

  • Begin ZB (2005) Destructive earthquakes in the Jordan Valley and the Dead Sea–their reoccurrence interval and the probability of their occurrence, Geol. Surv. Israel, Report GSI/12/2005

  • Ben-Menahem A (1976) Tectonics, seismicity and structure of the Afro-Eurasian Junction; the breaking of an incoherent plate. Phys Earth Planet Inter 12:1–50

    Article  Google Scholar 

  • Boore DM, Joyner WB, Fumal TE (1997) Equations for estimating horizontal response spectra and peak acceleration from western North American earthquakes: a summary of recent work. Seismol Res Lett 68:128–153

    Google Scholar 

  • Bourrier F, Dorren LKA, Nicot F, Berger F, Darve F (2009) Towards objective rockfall trajectory modeling using a stochastic rebound algorithm. Geomorphology 110:68–79

    Article  Google Scholar 

  • Broili L (1973) In situ tests for the study of rockfall. Geologia Applicata e Idrogeologia 8:105–111 (in Italian)

    Google Scholar 

  • Brunetti MT, Guzzetti F, Rossi M (2009) Probability distributions of landslide volumes. Non Linear Process Geophys 16:179–188

    Article  Google Scholar 

  • Cardinali M, Galli M, Guzzetti F, Ardizzone F, Reichenbach P, Bartoccini P (2006) Rainfall induced landslides in December 2004 in South-Western Umbria, Central Italy: types, extent, damage and risk assessment. Nat Hazards Earth Syst Sci 6:237–260

    Article  Google Scholar 

  • Chau KT, Wong RHC, Wu JJ (2002) Coefficient of restitution and rotational motions of rockfall impacts. Int J Rock Mech Min Sci 39:69–77

    Article  Google Scholar 

  • Chau KT, Wong RHC, Liu J, Lee CF (2003) Rock fall hazard analysis for Hong Kong based on rock fall inventory. Rock Mech Rock Eng 36:383–408

    Article  Google Scholar 

  • Crosta GB, Agliardi F (2004) Parametric evaluation of 3D dispersion of rockfall trajectories. Nat Hazards Earth Syst Sci 4:583–598

    Article  Google Scholar 

  • Cruden DM, Varnes DJ (1996) Landslide types and processes. In: Turner AK, Schuster RL (eds) Landslides, investigation and mitigation, special report 247. Transportation Research Board, Washington, pp 36–75

    Google Scholar 

  • Davies MCR, Hamza O, Harris C (2001) The effect of rise in mean annual temperature on the stability of rock slopes containing ice-filled discontinuities. Permafrost Periglac Process 12:137–144

    Article  Google Scholar 

  • Dorren LKA (2003) A review of rockfall mechanics and modeling approaches. Prog Phys Geogr 27(1):69–87

    Article  Google Scholar 

  • Dorren LKA, Berger F, Putters US (2006) Real size experiments and 3D simulation of rockfall on forested and non-forested slopes. Nat Hazards Earth Syst Sci 6:145–153

    Article  Google Scholar 

  • ERM-Hong Kong Ltd (1998) Landslides and boulder falls from natural terrain: interim risk guidelines, Geotechnical Engineering Office. Geo Report 75:182

    Google Scholar 

  • Evans SG (1997) Fatal landslides and landslide risk in Canada, Proceedings International Workshop on Landslide Risk Assessment, 19-21 February 1997, Honolulu, USA, Balkema, Rotterdam, pp 620–636

  • Evans SG, Hungr O (1993) The assessment of rockfall hazard at the base of talus slopes. Can Geotech J 30:620–636

    Article  Google Scholar 

  • Flageollet JC, Weber D (1996) Fall. In: Dikau R, Schrott L, Brunsden D, Ibsen M (eds) Landslide recognition. Wiley, West Sussex, pp 13–28

    Google Scholar 

  • Fornaro M, Peila D, Nebbia M (1990) Block falls on rock slopes–Application of a numerical simulation program to some real cases. Proceedings 6th International Association of Engineering Geology Congress. Balkema, Rotterdam, pp 2173–2180

  • Frattini P, Crosta GB, Carrara A, Agliardi F (2008) Assessment of rockfall susceptibility by integrating statistical and physically-based approaches. Geomorphology 94:419–437

    Article  Google Scholar 

  • Gardner JS (1983) Rockfall frequency and distribution in the Highwood Pass area, Canadian Rocky Mountains. Zeitschrift für Geomorphologie NF 27:311–324

    Google Scholar 

  • Garfunkel Z (1981) Internal structure of the Dead Sea leaky transform (rift) in relation to plate kinematics. Tectonophysics 80:81–108

    Article  Google Scholar 

  • Geli L, Bard PY, Jullien B (1988) The effect of topography on earthquake ground motion: a review and new results. Bull Seismological Soc Am 78:42–63

    Google Scholar 

  • Guzzetti F (2000) Landslide fatalities and evaluation of landslide risk in Italy. Eng Geol 58:89–107

    Article  Google Scholar 

  • Guzzetti F, Reichenbach P (2009) Rock falls and their hazard. In: Stoffel M, Bollschweiler M, Butler DR, Luckman BH (eds.) Tree Rings and Natural Hazards. Advances in Global Change Research Series, Springer (in press)

  • Guzzetti F, Crosta GB, Detti R, Agliardi F (2002) STONE: a computer program for the three-dimensional simulation of rock-falls. Comput Geosci 28:1079–1093

    Article  Google Scholar 

  • Guzzetti F, Reichenbach P, Wieczorek GF (2003) Rockfall hazard and risk assessment in the Yosemite Valley, California, USA. Nat Hazards Earth Syst Sci 3:491–503

    Article  Google Scholar 

  • Guzzetti F, Reichenbach P, Ghigi S (2004) Rockfall hazard and risk assessment along a transportation corridor in the Nera Valley, Central Italy. Environ Manage 34:191–208

    Article  Google Scholar 

  • Guzzetti F, Stark CP, Salvati P (2005) Evaluation of flood and landslide risk to the population of Italy. Environ Manage 36:15–36

    Article  Google Scholar 

  • Hall JK (1993) The GSI digital terrain model (DTM) completed. In: Bogoch R, Eshet Y (eds) GSI Current Research 8:47–50

  • Hall JK, Weinberger R, Marco S, Steinitz G (1999) Test of the accuracy of the DTM of Israel, Geological Survey of Israel, Report TR-GSI/1/99

  • Hungr O, Evans SG, Hazzard J (1999) Magnitude and frequency of rock falls and rock slides along the main transportation corridors of South Western British Columbia. Can Geotech J 36:224–238

    Article  Google Scholar 

  • Israeli A (1977) Geotechnical map of Jerusalem and surroundings, Scale 1:12,000, Geological Survey of Israel, Rep. M.M.12/77

  • Jaboyedoff M, Dudt JP, Labiouse V (2005) An attempt to refine rockfall zoning based on kinetic energy, frequency and fragmentation degree. Nat Hazards Earth Syst Sci 5:621–632

    Article  Google Scholar 

  • Kagan EJ, Agnon A, Bar-Matthew M, Ayalon A (2005) Dating large infrequent earthquakes by damaged cave deposits. Geology 33:261–264

    Article  Google Scholar 

  • Kanari M (2008) Evaluation of rockfall hazard to Qiryat Shemona–possible correlation to earthquakes, Geological Survey of Israel, Report GSI/24/2008

  • Katz O (2004) Evaluation of earthquake induced landslide hazard in the city of Jerusalem area, Geological Survey of Israel, Report GSI/12/2004, 34 p. (in Hebrew)

  • Katz O, Aharonov E (2006) Landslides in vibrating sand-box: what controls types of slope-failure and frequency magnitude relations? Earth Planet Sci Lett 247:280–294

    Article  Google Scholar 

  • Keefer DK (1984) Landslide caused by earthquakes. Geol Soc Am Bull 95:406–421

    Article  Google Scholar 

  • Lewy Z (1989) Correlation of lithostratigraphic units in the upper Judea Group (Late Cenomanian–Late Coniacian), Israel. Isr J Earth Sci 38:37–43

    Google Scholar 

  • Lewy Z (1991) Periodicity of cretaceous epeirogenic pulses and the disappearance of the carbonate platform facies in Late Cretaceous times (Israel). Isr J Earth Sci 40:51–58

    Google Scholar 

  • Malamud BD, Turcotte DL, Guzzetti F, Reichenbach P (2004) Landslide inventories and their statistical properties. Earth Surf Process Landforms 29:687–711

    Article  Google Scholar 

  • Matsuoka N, Sakai H (1999) Rockfall activity from an alpine cliff during thawing periods. Geomorphology 28:309–328

    Article  Google Scholar 

  • Papadopoulos GA, Plessa A (2000) Magnitude–distance relations for earthquake-induced landslides in Greece. Eng Geol 58:377–386

    Article  Google Scholar 

  • Ritchie AM (1963) Evaluation of rockfall and its control, Vol. 17, Highway Research Board, Highway Research Record, National Academy of Sciences-National Research Council, Washington, pp 13–28

  • Rodríguez CE, Bommer JJ, Chandler RJ (1999) Earthquake induced landslides: 1980–1997. Soil Dyn Earthq Eng 18:325–346

    Article  Google Scholar 

  • Salamon A, Abelson M, Amit R, Ashkenazi S, Avni Y, Baer G, Begin BZ, Carmi Z, Crouvi O, Enzel Y, Gavrieli E, Gvirtzman Z, Hamiel A, Hemo H, Katz O, Malik U, Nachmias Y, Porat N, Steinberg J, Steinitz G, Weinberger R, Yechieli Y, Zilberman E (2004) Seismically induced ground effects of the February 11, 2004, ML = 5.2, northeastern Dead Sea earthquake, Geological Survey of Israel, Report GSI/30/04

  • Shapira A (1979) Redetermined magnitude of Earthquakes in the Afro-Eurasian Junction. Isr J Earth Sci 28:107–109

    Google Scholar 

  • Shapira A, Avni R, Nur A (1993) Note: A new estimate for the epicentre of the Jericho earthquake of the 11 July 1927. Isr J Earth Sci 42:93–96

    Google Scholar 

  • Tagliavini F, Reichenbach P, Maragna D, Guzzetti F, Pasuto A (2009) Comparison of 2-D and 3-D computer models for the M. Salta rock fall, Vajont Valley, northern Italy. Geoinformatica 13:323–337

    Article  Google Scholar 

  • Varnes DJ (1978) Slope movements: types and processes. In: Schuster RL and Krizek RJ (eds.) Landslide analysis and control, Transportation Research Board, Special Report No. 176, Washington, pp 11–33

  • Whalley WB (1984) Rockfalls. In: Brunsden D, Prior DB (eds) Slope stability. Wiley, New York, pp 217–256

    Google Scholar 

  • Wieczorek GF, Jäger S (1996) Triggering mechanisms and depositional rates of postglacial slope-movement processes in the Yosemite Valley, California. Geomorphology 15:17–31

    Article  Google Scholar 

  • Wieczorek GF, Stock GM, Reichenbach P, Snyder JB, Borchers JW, Godt JW (2008) Investigation and hazard assessment of the 2003 and 2007 Staircase Falls rock falls, Yosemite National Park, California, USA. Nat Hazards Earth Syst Sci 8:421–432

    Article  Google Scholar 

  • Zaslavsky Y, Gorstein M, Kalmanovich M, Giller V, Livshits I, Giller D, Dan I, Shapira A, Fleischer L, Leonov J, Peled U (2001) Microzoning of the earthquake hazard in Israel, Project 1: Seismic microzoning of Lod and Ramla. The Geophysical Institute of Israel, Job No 569/143/01

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Acknowledgments

We thank S. Romem for the field map**, E. Almog, H. Hecht, G. Petranker, and Y. Ganot for the interpretation of the aerial photographs, and M.T. Brunetti for analyzing the statistics of rock fall volumes. Two anonymous reviewers are thanked for their comments and suggestions that significantly contributed to the quality and clarity of this manuscript.

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Katz, O., Reichenbach, P. & Guzzetti, F. Rock fall hazard along the railway corridor to Jerusalem, Israel, in the Soreq and Refaim valleys. Nat Hazards 56, 649–665 (2011). https://doi.org/10.1007/s11069-010-9580-z

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