Topographic signatures and a general transport law for deep‐seated landslides in a landscape evolution model
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[1] K. Hutter. Theoretical Glaciology: Material Science of Ice and the Mechanics of Glaciers and Ice Sheets , 1983 .
[2] J. Malet,et al. Characterization of the 3D geometry of flow-like landslides: A methodology based on the integration of heterogeneous multi-source data , 2012 .
[3] W. Dietrich,et al. Controls on the spacing of first-order valleys , 2008 .
[4] Philippe Huybrechts,et al. A 3-D model for the Antarctic ice sheet: a sensitivity study on the glacial-interglacial contrast , 1990 .
[5] P. Smolarkiewicz. A Simple Positive Definite Advection Scheme with Small Implicit Diffusion , 1983 .
[6] A. Payne,et al. Self-organization in the thermomechanical flow of ice , 1997 .
[7] Richard M. Iverson,et al. Unsteady, Nonuniform Landslide Motion: 2. Linearized Theory and the Kinematics of Transient Response , 1986, The Journal of geology.
[8] M. Liniger,et al. Landsliding and sediment flux in the Central Swiss Alps: A photogrammetric study of the Schimbrig landslide Entlebuch , 2008 .
[9] R. Janda,et al. Rate and mechanics of progressive hillslope failure in the Redwood Creek basin, northwestern California , 1995 .
[10] F. Swanson,et al. Complex mass-movement terrains in the western Cascade Range , 2010 .
[11] P. Bak,et al. Self-organized criticality. , 1988, Physical review. A, General physics.
[12] Yong Li,et al. Mass wasting triggered by the 2008 Wenchuan earthquake is greater than orogenic growth , 2011 .
[13] Alan D. Howard,et al. Channel changes in badlands , 1983 .
[14] R. Iverson,et al. Regulation of landslide motion by dilatancy and pore pressure feedback , 2004 .
[15] W. Davis. THE CONVEX PROFILE OF BAD-LAND DIVIDES. , 1892, Science.
[16] S. Carretier,et al. Tectonic interpretation of transient stage erosion rates at different spatial scales in an uplifting block , 2009 .
[17] S. Shyam Sunder,et al. Creep of Polycrystalline Ice , 1990 .
[18] L. Vulliet,et al. VISCOUS-TYPE SLIDING LAWS FOR LANDSLIDES , 1988 .
[19] C. Trotter. Weathering and regolith properties at an earthflow site , 1993, Quarterly Journal of Engineering Geology.
[20] A. Heimsath,et al. Coupling chemical weathering with soil production across soil‐mantled landscapes , 2007 .
[21] D. Montgomery,et al. Limits to Relief , 1995, Science.
[22] Geographical and Geological Survey of the Eocky Mountain Region , 2010 .
[23] B. Pratt-Sitaula,et al. Climatic controls on hillslope angle and relief in the Himalayas , 2004 .
[24] E. Foufoula‐Georgiou,et al. Channel network source representation using digital elevation models , 1993 .
[25] E. Gabet,et al. Hydrological controls on chemical weathering rates at the soil-bedrock interface , 2006 .
[26] M. Church,et al. Postglacial topographic evolution of glaciated valleys: a stochastic landscape evolution model , 2005 .
[27] G. Tucker,et al. Modelling landscape evolution , 2010 .
[28] Frederick J. Swanson,et al. 6 Complex mass-movement terrains in the western Cascade Range, Oregon , 1977 .
[29] Jeffrey A. Coe,et al. Seasonal movement of the Slumgullion landslide determined from Global Positioning System surveys and field instrumentation, July 1998–March 2002 , 2003 .
[30] W. Dietrich,et al. The soil production function and landscape equilibrium , 1997, Nature.
[31] John F. O'Callaghan,et al. The extraction of drainage networks from digital elevation data , 1984, Comput. Vis. Graph. Image Process..
[32] David R. Montgomery,et al. Landslide erosion coupled to tectonics and river incision , 2012 .
[33] B. Isacks,et al. Landslide Erosion Rate in the Eastern Cordillera of Northern Bolivia , 2007 .
[34] J. Franklin,et al. The slake-durability test , 1972 .
[35] K. S. Richards,et al. Slope stability: Geotechnical engineering and geomorphology , 1987 .
[36] F. Ahnert,et al. Some comments on the quantitative formulation of geomorphological processes in a theoretical model , 1977 .
[37] W. Dietrich,et al. Rain, rock moisture dynamics, and the rapid response of perched groundwater in weathered, fractured argillite underlying a steep hillslope , 2012 .
[38] Y. Matsukura,et al. The influence of weathering on the geotechnical properties and slope angles of mudstone in the Mineoka earth‐slide area, Japan , 1986 .
[39] J. Braun,et al. Controls on post‐mid‐Cretaceous landscape evolution in the southeastern highlands of Australia: Insights from numerical surface process models , 1999 .
[40] M. Pyles,et al. Mechanics and Stability of the Lookout Creek Earth Flow , 1987 .
[41] A. Payne,et al. The Glimmer community ice sheet model , 2009 .
[42] Nicholas Brozovic,et al. Bedrock incision, rock uplift and threshold hillslopes in the northwestern Himalayas , 1996, Nature.
[43] C. Torrence,et al. A Practical Guide to Wavelet Analysis. , 1998 .
[44] H. Kelsey,et al. Geomorphic processes and aquatic habitat in the Redwood Creek basin, northwestern California , 1995 .
[45] W. Dietrich,et al. Spectral signatures of characteristic spatial scales and nonfractal structure in landscapes , 2008 .
[46] Fabio Rocca,et al. Dynamics of Slow-Moving Landslides from Permanent Scatterer Analysis , 2004, Science.
[47] Paolo Tarolli,et al. Hillslope-to-valley transition morphology: new opportunities from high resolution DTMs. , 2009 .
[48] Alessandro Corsini,et al. Large reactivated landslides in weak rock masses: a case study from the Northern Apennines (Italy) , 2006 .
[49] J. Roering,et al. A 1-D Mechanistic Model for the Evolution of Earthflow-Prone Hillslopes , 2011 .
[50] W. B. Whalley,et al. Weathering , 1983 .
[51] K. Furlong,et al. Ephemeral crustal thickening at a triple junction:The Mendocino crustal conveyor , 1999 .
[52] G. K. Gilbert. The Convexity of Hilltops , 1909, The Journal of Geology.
[53] J. Pelletier. Quantitative Modeling of Earth Surface Processes , 2008 .
[54] S. Dadson,et al. Seismically Induced Erosion and the Mass Balance of a Large Earthquake , 2008 .
[55] CONTINUUM MODEL FOR NATURAL SLOPES IN SLOW MOVEMENT , 1988 .
[56] K. Furlong,et al. INFLUENCE OF THE MENDOCINO TRIPLE JUNCTION ON THE TECTONICS OF COASTAL CALIFORNIA , 2004 .
[57] H. Kelsey. Earthflows in Franciscan melange, Van Duzen River basin, California , 1978 .
[58] D. Tarboton. A new method for the determination of flow directions and upslope areas in grid digital elevation models , 1997 .
[59] M. Marden,et al. Last glacial aggradation and postglacial sediment production from the non-glacial Waipaoa and Waimata catchments, Hikurangi Margin, North Island, New Zealand , 2008 .
[60] S. Ellen,et al. Geology of the Cape Mendocino, Eureka, Garberville, and Southwestern Part of the Hayfork 30 x 60 Minute Quadrangles and Adjacent Offshore Area, Northern California , 2000 .
[61] R. Anderson,et al. Estimates of the rate of regolith production using and from an alpine hillslope , 1999 .
[62] S. Hergarten,et al. Self-organized criticality in landsliding processes , 1999 .
[63] J. Roering,et al. Using DInSAR, airborne LiDAR, and archival air photos to quantify landsliding and sediment transport , 2009 .
[64] George E. Hilley,et al. Multitemporal ALSM change detection, sediment delivery, and process mapping at an active earthflow , 2012 .
[65] Susan L. Brantley,et al. A reactive diffusion model describing transformation of bedrock to saprolite , 2007 .
[66] M. Bovis. EARTHFLOWS IN THE INTERIOR PLATEAU, SOUTHWEST BRITISH COLUMBIA , 1985 .
[67] N. Cristescu,et al. A model for slow motion of natural slopes , 2002 .
[68] B. Gomez,et al. The river it goes right on: Post-glacial landscape evolution in the upper Waipaoa River basin, eastern North Island, New Zealand , 2012 .
[69] H. Barnes,et al. An introduction to rheology , 1989 .
[70] D. Varnes,et al. Landslide types and processes , 2004 .
[71] L. Owen. Landscapes on the Edge: New horizons for Research on Earth's Surface, National Research Council. The National Academies Press, Washington D.C (2010), 163 p. , 2011 .
[72] M. Marden,et al. Tectonic and paleoclimatic significance of Quaternary river terraces of the Waipaoa river, east coast, North Island, New Zealand , 2000 .
[73] David R. Montgomery,et al. Topographic controls on erosion rates in tectonically active mountain ranges , 2002 .
[74] J. Syvitski,et al. Geomorphic/Tectonic Control of Sediment Discharge to the Ocean: The Importance of Small Mountainous Rivers , 1992, The Journal of Geology.
[75] Richard M. Iverson,et al. Unsteady, Nonuniform Landslide Motion: 1. Theoretical Dynamics and the Steady Datum State , 1986, The Journal of Geology.
[76] K. Hutter. The Application of the Shallow-Ice Approximation , 1983 .
[77] Michael A. Ellis,et al. Landsliding and the evolution of normal‐fault‐bounded mountains , 1998 .
[78] J. M. Mitchell,et al. On the Power Spectrum of “Red Noise” , 1963 .
[79] L. Vulliet,et al. SET OF CONSTITUTIVE MODELS FOR SOILS UNDER SLOW MOVEMENT , 1988 .
[80] A. Howard. A detachment-limited model of drainage basin evolution , 1994 .
[81] G. K. Gilbert. Geology of the Henry Mountains , 1877 .
[82] R. Hindmarsh. Consistent generation of ice‐streams via thermo‐viscous instabilities modulated by membrane stresses , 2009 .
[83] J. Kirchner,et al. Functional relationships between denudation and hillslope form and relief , 2007 .
[84] C. Werner,et al. Survey and monitoring of landslide displacements by means of L-band satellite SAR interferometry , 2005 .
[85] P. Allen,et al. Sediment flux from a mountain belt derived by landslide mapping , 1997 .
[86] Jon J. Major,et al. Rainfall, ground-water flow, and seasonal movement at Minor Creek landslide, northwestern California: Physical interpretation of empirical relations , 1987 .
[87] W. Dietrich,et al. Geomorphic transport laws for predicting landscape form and dynamics , 2013 .
[88] M. Selby,et al. Hillslope materials and processes , 1982 .
[89] I. Rodríguez‐Iturbe,et al. A coupled channel network growth and hillslope evolution model: 1. Theory , 1991 .
[90] F. Bretherton,et al. Stability and the conservation of mass in drainage basin evolution , 1972 .
[91] J. McKean,et al. Long-term kinematics and sediment flux of an active earthflow, Eel River, California , 2009 .
[92] Arvid M. Johnson,et al. Earth flows; morphology, mobilization, and movement , 1983 .
[93] R. M. Kirk,et al. Development of shore platforms on Kaikoura Peninsula, South Island, New Zealand: II: The role of subaerial weathering , 2000 .
[94] G. Griffiths. Spatial and Temporal Variability in Suspended Sediment Yields of North Island Basins, New Zealand , 1982 .
[95] S. Hensley,et al. Fault-zone controls on the spatial distribution of slow-moving landslides , 2013 .
[96] Gregory E. Tucker,et al. Hillslope processes, drainage density, and landscape morphology , 1998 .
[97] C. Veen,et al. Ice Sheets and Climate , 1984 .
[98] K. Whipple,et al. Knickpoint initiation and distribution within fluvial networks: 236 waterfalls in the Waipaoa River, North Island, New Zealand , 2006 .
[99] K. Furlong,et al. Late Neogene and Quaternary landscape evolution of the northern California Coast Ranges: Evidence for Mendocino triple junction tectonics , 2006 .
[100] William E. Dietrich,et al. Quantification of soil production and downslope creep rates from cosmogenic 10Be accumulations on a hillslope profile , 1993 .
[101] H. J. Neugebauer,et al. Self‐organized criticality in a landslide model , 1998 .
[102] Jason W. Kean,et al. Landslide movement in southwest Colorado triggered by atmospheric tides , 2009 .
[103] W. Stephenson,et al. Development of shore platforms on Kaikoura Peninsula, South Island, New Zealand , 2000 .
[104] D. Jongmans,et al. Geophysical investigation of landslides : a review , 2007 .
[105] W. Culling,et al. Analytical Theory of Erosion , 1960, The Journal of Geology.
[106] William E. Dietrich,et al. Evidence for nonlinear, diffusive sediment transport on hillslopes and implications for landscape morphology , 1999 .
[107] D. Turcotte,et al. Self-organized criticality , 1999 .
[108] C. Phillips,et al. Internal deformation of a fast-moving earthflow, Raukumara Peninsula, New Zealand , 1991 .
[109] F. Guzzetti,et al. Landslide rupture and the probability distribution of mobilized debris volumes , 2009 .
[110] J. Roering,et al. Sediment yield, spatial characteristics, and the long-term evolution of active earthflows determined from airborne LiDAR and historical aerial photographs, Eel River, California , 2011 .
[111] W. Z. Savage,et al. A plastic flow model for the Acquara-Vadoncello landslide in Senerchia, Southern Italy , 2006 .
[112] Bruce D. Malamud,et al. Landslides, earthquakes, and erosion , 2003 .
[113] David G. Tarboton,et al. On the extraction of channel networks from digital elevation data , 1991 .
[114] G. Tucker,et al. Dynamics of the stream‐power river incision model: Implications for height limits of mountain ranges, landscape response timescales, and research needs , 1999 .
[115] C. Phillips,et al. A comparison of earthflow movement mechanisms on forested and grassed slopes, Raukumara Peninsula, North Island, New Zealand , 1993 .
[116] O. Korup. Rock type leaves topographic signature in landslide‐dominated mountain ranges , 2008 .
[117] J. D. Kibler,et al. Relations between hydrology and velocity of a continuously moving landslide—evidence of pore-pressure feedback regulating landslide motion? , 2009 .
[118] R. Wheatcroft,et al. River sediment flux and shelf sediment accumulation rates on the Pacific Northwest margin , 2005 .