The Mechanisms and Geotechnical Characteristics of Slope Failures at a Mining District, Southeast Nigeria

Authors

  • Department of Geology, University of Nigeria, Nsukka

Keywords:

Landslides, Rainfall, Strain-Softening, Dilation, Simulation, Nigeria.

Abstract

A procedure encompassing field, laboratory and numerical analyses was employed to re-analyze the mechanism of slope failures at a mining district in south eastern Nigeria. The slopes have been re-evaluated on the basis of new evidence. The study identified 43 landslide events which were mainly shallow, short run-out slides triggered during rainfall. The sand grains were analysed by scanning electron microscope for evidence of microstructures, surface texture and grain crushing. The analysis revealed that the soil particles associated with landslide are somewhat rounded, fairly sorted, and absence of any grain crushing. Shearing tests were carried out at various normal stress and relative density conditions. The specimens with relative density of about 32% responded to shearing in a strain-softening pattern; and as normal stress and over-consolidation ratio increased, there was no transition from contractive to dilative behaviour. On the contrary, under a constant normal stress (196 kPa) and increasing relative density (from 45.9% to 75.5%), the soils exhibited dilative behaviours. It is shown that increase in relative density, normal stress or overconsolidation ratio did not affect the brittleness index significantly. A numerical method based on strength reduction technique simulated a landslide which structure, run-out distance and distribution area were consistent with field observations. It is deduced that the slopes are unstable under intense rainfall conditions due to the effects of soil characteristics, excess pore water generation and the alternating swelling and shrinkage of the claystone layers interbedded with the sand bodies.

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Research Articles

Published

2015-04-01

How to Cite

Igwe, O. (2015). The Mechanisms and Geotechnical Characteristics of Slope Failures at a Mining District, Southeast Nigeria. Journal of Geological Society of India, 85(4), 471–484. Retrieved from https://www.geosocindia.com/index.php/jgsi/article/view/62922

References

AL-SAIGH, N.H. and AL-DABBAGH, TH. H. (2010) Identification of landslide slip-surface and its shear strength: A new application for shallow seismic refraction method. Jour. Geol. Soc. India, v.76(2), pp.175-180

ANDERSON, S.A. and SITAR, N. (1995) Analysis of rainfall-induced debris flow. Jour. Geotech. Engg., v.121(7), pp.544-552

ANDERSON, M.G., HOLCOMBE, E.A. and RENAUD, J.P. (2007) Assessing slope stability in unplanned settlements in developing countries. Jour. Environ. Mgmt., v.85(1), pp.101-111.

BENKHELIL, J. (1989) The Origin and Evolution of the Cretaceous Benue Trough (Nigeria). Jour. African Earth Sci., v.8, pp.251-282.

CAMPBELL, R.H. (1975) Soil slips, debris flows and rainstorms in the Santa Monica mountains and vicinity, Southern California. USGS Prof Paper, v.851

CHACON, J., IRIGARAY, C., FERNANDEZ, T. and EL HAMDOUNI R. (2006) Engineering geology maps: landslides and Geographical Information Systems (GIS). Bull. Engg. Geol. Environ., v.65, pp.341-411. doi:10.1007/s10064-006-0064-z

COROMINAS, J. (2001) Landslides and climate. In: E. Bromhead, N. Dixon and M.L. Iben (Eds.), 8th international symposium on landslides, v.4, Balkema, Cardiff, pp.1-33

CROZIER, M, (1986) Landslides: Causes, Consequences and Environment, Croom Helm, London, 252p.

CRUDEN, D.M. and VARNES, D.J. (1996) Landslide types and processes. In: A.K.Turner and R.L. Schuster (Eds.), Special report 247: landslides investigation, mitigation. National Research Council, Transportation Research Board, Washington D.C., pp 36-75.

FELL, R. (1994) Landslide risk assessment and acceptable risk. Can Geotech. Jour., v.31, pp.261-272. doi:10.1139/t94-031

FUKUOKA, M. (1980) Landslides associated with rainfall. Geotech. Engg., v.11, pp.1-29.

GEERTSEMA, M., SCHWAB, J.W., BLAIS-STEVENS, A. and SAKALS M.E. (2009) Landslides impacting linear infrastructure in west central British Columbia. Natural Hazards, v.48, pp.59-72.

GIANNECCHINI, R. (2006) Relationship between rainfall and shallow landslides in the southern Apuan Alps (Italy). Natural Hazards Earth System Sci., v.6, pp.357-364.

GLADE, T., ANDERSON, M.G. and CROZIER, M.J. (Eds.) (2005) Landslide risk assessment. Wiley, Chichester

GOSTELOW, P. (1991) Rainfall and landslides, In: M. Almeida-Teixeira (Ed.), Prevention and Control of Landslides and Other Mass Movements, CEC, Brussels, pp.139-161.

GUPTE, S.S., SINGH, R., VISHAL, V. and SINGH, T.N. (2013) Detail investigation of stability of in-pit dump slope and its capacity optimization. Internat. Jour. Earth Sci. Engg., v.6(2), pp.146-159.

HUNGR, O., EVANS, S.G., BOVIS, M.J. and HUTCHINSON, J.N. (2001) Review of the classification of landslides of the flow type. Environ. Engg. Geosci., v.7, pp.221-238.

IGWE, O., MODE, W., NNEBEDUM, O., OKONKWO, I. and OHA, I. (2013) The analysis of rainfall-induced slope failures at Iva Valley area of Enugu State, Nigeria. Environmental Earth Science DOI 10.1007/s12665-013-2647-x

IGWE, O, (2012) ICL/IPL regional activities in West Africa andslides, v.9, pp.433-437.

IGWE, O. and FUKUOKA, H. (2010) Environmental and socioeconomic impact of erosion in Nigeria, West Africa. Internat. Jour. Erosion Control Engg., v.3(1), pp.102-109.

IGWE, O., FUKUOKA, H. and SASSA, K. (2012) The effect of relative density and confining stress on shear properties of sands with varying grading. Geotech Geol Eng. 30: 1207-1229.

IGWE, O., SASSA, K. and WANG, F.W. (2007) The influence of grading on the shear strength of loose sands in stress-controlled ring shear tests. Landslides, v.4(1), pp.43-51.

INTERNATIONAL STRATEGY FOR DISASTER REDUCTION [ISDR] (2001) For the implementation of the international strategy for disaster reduction. June 2001. http://www.unisdr.org/

INTERNATIONAL STRATEGY FOR DISASTER REDUCTION [ISDR]) (2009) UNISDR terminology on disaster risk reduction. Published by United Nations International Strategy for Disaster Reduction (UNISDR) Geneva Switzerland.

IVERSON, R.M., REID, M.E. and LAHUSEN, R.G. (1997) Debris-flow mobilization from landslides. Annual Rev. Earth Planet. Sci., v.25, pp.85-138.

JAKOB, M., HOLM, K., LANGE, O. and SCHWAB, J.W. (2006) Hydrometeorological thresholds for landslide initiation and forest operation shutdowns on the north coast of British Columbia. Landslides 3. doi:10.1007/s10346-006-0044-1

JAKOB, M. and HUNGR, O. (2005) Introduction. In: M. Jakob and O. Hungr (Eds.), Debris-flow hazards and related phenomena. Springer-Praxis, Chichester, pp.1-7.

KOGBE, C.A. (1989) Palaeogeographic History of Nigeria from Albian times. In: C.A.Kogbe (Ee.), Geology of Nigeria. Elizabethan Publ.Co. Lagos, pp.257-275

KO KO, C., CHOWDHURY, R. and FLENTJE, P. (2005) Hazard and risk assessment of rainfall-induced landsliding along a railway line. Quart. Jour. Engg. Geol. Hydrogeol., v.38, pp.197-213.

KOTOKY, P., DUTTA, M.K., GOSWAMI, R. and BORAH, G.C. (2011) Geotechnical properties of the bank sediments along the Dhansiri River channel, Assam. Jour. Geol. Soc. India, v.78(2), pp.175-183

LUIREI, K. and BHAKUNI, S.S. (2009) Landslides along frontal part of eastern Himalaya in east Siang and lower Dibang districts, Arunachal Pradesh, India. Jour. Geol. Soc. India v.73(3), pp.442-443

MUKHLISIN, M. and TAHA, M.R. (2012) Numerical model of antecedent rainfall effect on slope stability at a hillslope of weathered granitic soil formation. Jour. Geol. Soc. India, v.79(5), pp.525-531

NAITHANI, A.K., BHATT, A.K. and MURTHY, K.S.K. (2009) Geological and geotechnical investigations of Loharinag-Pala Hydroelectric Project, Garhwal Himalaya, Uttarakhand. Jour. Geol. Soc. India, v.73(6), pp.821-836

OBI, G.C. and OKOGBUE, C.O. (2004) Sedimentary response to Tectonism in the Campanian-Maastrichian succession, Anambra Basin, Southeastern Nigeria. Jour. African Earth Sci., v.38, pp.99-108.

OBI, G.C., OKOGBUE, C.O. and NWAJIDE, C.S. (2001) Evolution of the Enugu Cuesta: A tectonically Driven Erosional Process. Global Jour. Pure Appld. Sci., v.7, pp.321-330.

OBOH-IKUENOBE, F.E., OBI, G.C. and JAMARILLO, C.A. (2005) Lithofacies, palynofacies and sequence stratigraphy of paleogene strata in Southeastern Nigeria. Jour. African Earth Sci., v.41, pp.79-101.

OJOH, K.A. (1992) Southern part of the Benue trough (Nigeria): Cretaceous stratigraphy, Basin-Analysis, Palaeo-oceanography and Geodynamic Evolution in the Equatorial Domain of the south Atlantic. National Assoc. Petrol. Explor. Bull., v.7, pp.131-152.

PERUCCA, L.P., YANINA, M. and ANGILLIERI, E. (2009) Evolution of a debris-rock slide causing a natural dam: the flash flood of Rio Santa Cruz, Province of San Juan-November 12, 2005. Natuarl Hazards, v.50, pp.305-320.

PRASANNAKUMAR, V. and VIJITH, H. (2012) Evaluation and validation of landslide spatial susceptibility in the Western Ghats of Kerala, through GIS-based Weights of Evidence model and Area Under Curve technique. Jour. Geol. Soc. India, v.80(4), pp.515-523.

SAJINKUMAR, K.S., ANBAZHAGAN, S., PRADEEPKUMAR, A.P. and RANI, V.R. (2011) Weathering and landslide occurrences in parts of Western Ghats, Kerala. Jour. Geol. Soc. India, v.78(3), pp.249-257.

SARKAR, K. and SINGH, T.N. (2010) Road cut stability analysis along NH-22 in Luhri area, Himanchal Pradesh. In: Zhao, Labiouse, Dudt and Mathie (Eds.), Rock Mechanics in Civil and Environmental Engineering. Taylor and Francis Publ., pp.659-662.

SARKAR, K., SINGH, T.N. and VERMA, A.K. (2012) A numerical simulation of landslide-prone slope in Himalayan region - a case study, Internat. Jour. Arabian Geosci., v.5, pp.73-81, DOI:10.1007/s12517-010-0148-8.

SASSA, K (1988) Geotechnical model for the motion of landslides. In: Proc. 5th Internat. Symp. on Landslides, "Landslides", Balkema, Rotterdam, v.1, pp.37-56.

SASSA, K., TAKEI, A. and KOBASHI, S. (1980) Landslides triggered by vertical subsidences. In: Proc. Internat. Symp on Landslides. New Delhi, 7-11 April 1980, pp.49-54.

SASSA, K., WANG, G. and FUKUOKA, H. (2003) Performing undrained shear tests on saturated sands in a new intelligent-type of ring shear apparatus. Geotech. Test Jour., v.26(3), pp.257-265.

SASSA, K., WANG, G., FUKUOKA, H., WANG, F.W., OCHIAI, T. and SUGIYAMA, SEKIGUCHI, T. (2004) Landslide risk evaluation and hazard mapping for rapid and long-travel landslides in urban development areas. Landslides v.1(3), pp.221-235

SELBY, M.J. (1993) Hillslope materials and processes, 2nd edn. Oxford University Press, New York, 451p.

SINGH, T.N., PATIL, H., JAIN, A. and PEDDADA, S.R. (2009) Risk analysis in landslide prone area near Agastymumi- A case study. Internat. Jour. Earth Sci. Engg., v.2(3), pp.173-179.

SINGH, C.D., BEHERA, K.K. and ROCKY, W.S. (2011) Landslide susceptibility along NH-39 between Karong and Mao, Senapati district, Manipur. Jour. Geol. Soc. India, v.78(6), pp.559-570

SINGH, Y., BHAT, G.M., SHARMA, V., PANDITA, S.K. and THAKUR, K.K. (2012) Reservoir induced landslide at Assar, J&K: A case study. Jour. Geol. Soc. India, v.80(3), pp.435-439.

SINGH, A.K., KAINTHOLA, A. and SINGH, T.N. (2012) Prediction of Factor of Safety of a Slope with an Advanced Friction Model. International Journal of Rock Mechanics and Mining Sciences, 55:164-167.

SINGH, T.N., PRADHAN, S.P. and VISHAL, V. (2013) Stability of slopes in a fire-prone mine in Jharia Coalfield, India. Arabian Jour. Geosci., v.6, pp.419-421. DOI 10.1007/s12517-011-0341-4

SKEMPTON, A.W. (1964) Long-term stability of clay slopes. Geotechnique, v.14(2), pp.77-102.

TAKAHASHI, T. (2001) Process of occurrence, flow and deposition of viscous debris flow. In: G. Seminara and P. Blondeaux (Eds.), River, coastal and estuarine morphodynamics. Springer, Berlin, pp 93-118.

TERLIEN, M. (1998) The determination of statistical and deterministic hydrological landslide-triggering thresholds. Environ. Geol., v.35(2-3), pp.124-130.

TRIVEDI, R., VISHAL, V., PRADHAN, S.P., SINGH, T.N. and JHANWAR, J.C. (2012) Slope stability analysis in limestone mines. Internat. Jour. Earth Sci. Engg., v.5(4), pp.759-766.

VARNES, D.J. (1984) Landslide hazard zonation: a review of principles and practice. Commission on landslides of the IAEG, UNESCO, Paris. Natural Hazards 3.

VISHAL, V., PRADHAN, S.P. and SINGH, T.N. (2010) Instability Assessment of Mine slope-A finite element approach. Internat. Jour. Earth Sci. Engg., v.3, pp.11-23.

VISHAL, V., DAS, R. and SINGH, T.N. (2012) Investigating the frictional response of granite rock surface:An experimental Approach. Jour. Geol. Soc. India, v.80, pp.493-498.

WIECZOREK, G.F. (1996) Landslides triggering mechanisms, In: Turner (Ed.), Landslides: Investigation and Mitigation, National Research Council, Transportation Research Board, Washington, pp.76-90.

ZHANG, L.L., Fredlund, D.G., ZHANG, L.M. and TANG, W.H. (2004) Conditions under which soil suction can be maintained. Can, Geotech, Jour., v.41(4), pp.569-582.

ZHANG, L.L., ZHANG, L.M. and TANG, W.H. (2005) Rainfall-induced slope failure considering variability of soil properties. Geotechnique, v.55(2), pp.183-188.

ZHANG, L.L., ZHANG, J., ZHANG, L.M. and TANG, W.H. (2011a) Stability analysis of rainfall-induced slope failures: a review. Geotech Engg. Proc. Inst. Civil Engg., v.164(5), pp.299-316.

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