Mobile QR Code QR CODE : Journal of the Korean Society of Civil Engineers
1 
Korea Institute of Geoscience and Mineral Resources (2011) Development of practical technologies for countermeasures for hazards in steep slope and abandoned mine areas, Ministry of Knowledge Economy, GP2009-020-2011(3), 306p.
2 
Bishop, A.W., Green, G.E., Garga, V.K., Andersen, A. and Brown, J.D. (1971) A new ring-shear apparatus and its application to the measurement of residual strength, Geotechnique, Vol. 21, pp. 273-328.DOI
3 
Comegna, L., Picarelli, L., Urciuoli, G. (2007) The mechanics of mudslides as a cyclic undrained-drained process, Landslides, Vol. 4, pp. 217-232.DOI
4 
Coussot, P., Tocquer, L., Lanos, C., and Ovalez, G. (2009) Macroscopic vs. local rheology of yield stress fluids, Journal of Non-Newtonian Fluid Mechanics, Vol. 158, pp. 85-90.DOI
5 
Hungr, O., and Morgenstern, N.R. (1984) High-velocity ring-shear tests on sand, Geotechnique, Vol. 34, No. 3, pp. 415-421.DOI
6 
Hvorslev, M.J. (1939) Torsion shear tests and their place in the determination of the shearing resistance of soils. Proc. Am. Soc. Test Mater, Vol. 39, pp. 999-1022.
7 
Jongmans, D., Bievre, G., Schwartz, S., Renalier, F., Beaurez, N., Orengo, Y. (2009) Geophysical investigation of a large landslide in glaciolacustrine clays in the Trieves area (French Alps), Engineering Geology, Vol. 109, pp. 45-56.DOI
8 
Jeong, S.W., Locat, J., Leroueil, S. and Malet, J.-P. (2010). Rheological properties of fine-grained sediments: the roles of texture and mineralogy, Canadian Geotechnical Journal, Vol. 47, pp. 1085-1100.DOI
9 
Jeong, S.W. (2010) Grain size dependent rheology on the mobility of debris flows, Geosciences Journal, Vol. 14, pp. 359-369.DOI
10 
Leroueil, S. (2001) Natural slopes and cuts: movement and failure mechanisms, Geotechnique, Vol. 51, No. 3, pp. 197-243.DOI
11 
Locat, J. and Demers, D. (1988) Viscosity, yield stress, remoulded strength, and liquidity index relationships for sensitive clays, Canadian Geotechnical Journal, Vol. 25, pp. 799-806.DOI
12 
Locat, J. (1997) Normalized rheological behaviour of fine muds and their flow properties in a pseudoplastic regime, Proc. 1stInt. Conf. on Debris-Flow Hazards Mitigation, San Francisco. ASCE, New York, pp. 260-269.
13 
Malet, J.-P., Laigle, D., Remaitre, A., Maquaire, O. (2005) Triggering conditions and mobility of debris flows associated to complex earthflows, Geomorphology, Vol. 66, pp. 215-235.DOI
14 
Ovalez, G., Rodts, S., Chateau, X., Coussot, P. (2009) Phenomenology and physical origin of shear localization and shear banding in complex fluids, Rheologica Acta, Vol. 48, pp. 831-844.DOI
15 
Picarelli, L., Urciuoli, G., Ramondini, M., Comegna, L. (2005) Main features of mudslides in tectonised highly fissured clay shales, Landslides, Vol. 2, pp. 15-30.DOI
16 
Sadrekarimi A., and Olson, S.M. (2010) Particle damage observed in ring shear tests on sands, Canadian Geotechnical Journal, Vol. 47, pp. 497-515.DOI
17 
Sassa, K. (1992) Access to the dynamics of landslides during earthquakes by a new cyclic loading high-speed ring-shear apparatus, Proc. 6th International Symposium on Landslides, Christchurch, Vol. 3, pp. 1919-1937.
18 
Sassa, K. (1997) A new intelligent-type dynamic-loading ring-shear apparatus. Landslide News, No. 10, p. 33.
19 
Sassa, K., Fukuoka, H., Wang, G., Ishikawa, N. (2004) Undrained dynamic-loading ring-shear apparatus and its application to landslide dynamics, Landslides, Vol. 1, pp. 7-19.DOI
20 
Stark, T.D., and Vettel, J.J. (1992) Bromhead ring shear test procedure, Geotechnical Testing Journal, ASTM, Vol.15, No.1, pp. 24-32.DOI
21 
Rodts, S., Baudez, J.C., and Coussot, P. (2005) From discrete to continuum flow in foams, Europhysics Letters, Vol. 69, No. 4, pp. 636-642.DOI
22 
Tika, T.E., Vaughan, P.R., and Lemos, L.J. (1996) Fast shearing of pre-existing shear zones in soil, Geotechnique, Vol. 46, No. 2, pp. 197-233.DOI
23 
Tika, T.E. and Hutchinson, J.N. (1999) Ring shear tests on soil from the Vaiont landslide slip surface, Geotechnique, Vol. 49, No. 1, pp. 59-74.DOI
24 
Van Asch, Th.W.J., Malet, J.-P., Van Beek, L.P.H., and Amitrano, D. (2007) Techniques, issues and advances in numerical modeling of landslide hazard, Bulletin de la Société Géologique de France, Vol. 178, No. 2, pp. 65-88.DOI
25 
Van Asch, Th.W.J., Van Beek, L.P.H., and Boggard, T.A. (2007) Problems in predicting the mobility of slow-moving landslides, Engineering Geology, Vol. 91, pp. 46-55.DOI
26 
Wang. F.W., Sassa, K., and Wang, G. (2002) Mechanism of a long-runout landslide triggered by the August 1998 heavy rainfall in Fukushima Prefecture, Japan, Engineering Geology, Vol. 63, pp. 169-185.DOI
27 
WP/WLI. (1995) A suggested method for describing the rate of movement of a landslide. International Union of Geological Sciences Working Group on Landslides: Bulletin of the International Association of Engineering Geology, Vol. 52, No. 1, pp. 75-78.DOI