Estimating the size and travel distance of Klapperhorn Mountain debris flows for risk analysis along railway, Canada

International Journal of Sediment Research - Tập 23 - Trang 275-282 - 2008
Hengxing LAN1,2, C. Derek MARTIN1, C.H. ZHOU2
1Drs., Dept. Civil and Environmental Engineering, University of Alberta, Edmonton, Alberta, Canada T6G 2W2
2Prof., LREIS, Institute of Geographic Sciences and Natural Resources Research, CAS, Beijing, P. R. China

Tài liệu tham khảo

Arattano, 2006, Influence of rheology on debris-flow simulation, Natural Hazards and Earth System Sciences, 6, 519, 10.5194/nhess-6-519-2006 Benda, 1990, Predicting deposition of debris flows in mountain channels, Canadian Geotechnical Journal, 27, 409, 10.1139/t90-057 Chen, 2000, Numerical simulation of debris flows, Journal of Can. Geotech, 37, 146, 10.1139/t99-089 Davies M. R., Froese D. G., and Cruden D. M. 2005, Klapperhorn mountain debris flows, yellowhead pass, British Columbia. Proc. of International Conference on Landslide Risk Management, Vancouver. D010 Denlinger, 2001, Flow of variably fluidized granular masses across three-dimensional terrain: 2. Numerical predictions and experimental tests, Journal Geophys. Research, 106, 553, 10.1029/2000JB900330 Fannin, 1993, Debris flows: some physical characteristics and behaviour, Canadian Geotechnical Journal, 30, 71, 10.1139/t93-007 Fannin, 2001, An empirical-statistical model for debris flow travel distance, Canadian Geotechnical Journal, 38, 982, 10.1139/t01-030 Hungr, 1995, A model for the runout analysis of rapid flow slides, debris flows, and avalanches, Canadian Geotechnical Journal, 32, 610, 10.1139/t95-063 Hutter, 1995, The dynamics of avalanches of granular materials from initiation to runout. Part II. Experiments, Acta Mechanica, 109, 127, 10.1007/BF01176820 Hutter, 1996, Debris flow modeling: A review, Continuum Mech. Thermodyn., 8, 1, 10.1007/BF01175749 Iverson, 1997, The physics of debris flows, Reviews of Geophysics, 35, 245, 10.1029/97RG00426 Iverson, 2001, Flow of variably fluidized granular masses across three-dimensional terrain 1. Coulomb mixture theory, Journal of Geophysical Research, 106, 537, 10.1029/2000JB900329 McDougall, 2005, Dynamic modelling of entrainment in rapid landslides, Journal of Canadian Geotech, 42, 1437, 10.1139/t05-064 Melton, 1965, The geomorphic paleoclimatic significance of alluvial deposits in southern Arizona, Journal of Geology, 73, 1, 10.1086/627044 Mountjoy E. W. 1980, Geology, Mount Robson, West of Sixth Meridian, Alberta-British Columbia. Geological Survey of Canada. “A” Series Map 1499A, 1:250 000 Pirulli M. and Giuseppe S. 2007, Propagation of debris flows: comparison of two numerical models. In V. R. Schaefer, R.L.Schuster & A.K.Turner (eds), Proc. of 1st North American Landslide Conference June 3–8, 2007 Vail, Colorado:1542–1551 (CD–Rom) Wilford, 2004, Recognition of debris flow, debris flood and flood hazard through watershed morphometrics, Landslides, 1, 61, 10.1007/s10346-003-0002-0 Zhu, 2005, Steady-state granular flow in a 3D cylindrical hopper with flat bottom: macroscopic analysis, Granular Matter, 7, 97, 10.1007/s10035-004-0191-9