Developing and exploring a theory for the lateral erosion of bedrock channels for use in landscape evolution models
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[1] C. Thieulot,et al. DOUAR: A new three-dimensional creeping flow numerical model for the solution of geological problems , 2008 .
[2] W. Dietrich,et al. Controls on the spacing of first-order valleys , 2008 .
[3] L. Sklar,et al. Lateral erosion in an experimental bedrock channel: The influence of bed roughness on erosion by bed load impacts , 2016 .
[4] D. Lague,et al. Cover effect in bedrock abrasion : A new derivation and its implications for the modeling of bedrock channel morphology , 2007 .
[5] G. Tucker,et al. Implications of sediment‐flux‐dependent river incision models for landscape evolution , 2002 .
[6] W. Dietrich,et al. A mechanistic model for river incision into bedrock by saltating bed load , 2004 .
[7] Philippe Fullsack,et al. Erosional control of active compressional orogens , 1992 .
[8] D. Lague. The stream power river incision model: evidence, theory and beyond , 2014 .
[9] E. Shelef,et al. Impact of flow routing on catchment area calculations, slope estimates, and numerical simulations of landscape development , 2013 .
[10] P. Beek,et al. Influence of incision rate, rock strength, and bedload supply on bedrock river gradients and valley-flat widths: Field-based evidence and calibrations from western Alpine rivers (southeast France) , 2006 .
[11] R. Bras,et al. Network‐scale dynamics of grain‐size sorting: implications for downstream fining, stream‐profile concavity, and drainage basin morphology , 2004 .
[12] Jérôme Lavé,et al. Fluvial incision and tectonic uplift across the Himalayas of central Nepal , 2001 .
[13] Nicole Gasparini,et al. A simple algorithm for the mapping of TIN data onto a static grid: Applied to the stratigraphic simulation of river meander deposits , 2006, Comput. Geosci..
[14] P. Bates,et al. Integrating the LISFLOOD‐FP 2D hydrodynamic model with the CAESAR model: implications for modelling landscape evolution , 2013 .
[15] W. Bull. Stream-terrace genesis: implications for soil development , 1990 .
[16] Kelin X. Whipple,et al. A nonlinear river meandering model and its incorporation in a landscape evolution model , 1998 .
[17] P. Davy,et al. A stochastic precipiton model for simulating erosion/sedimentation dynamics , 2001 .
[18] Daniel E. J. Hobley,et al. Field calibration of sediment flux dependent river incision , 2011 .
[19] G. Tucker,et al. Modelling landscape evolution , 2010 .
[20] M. Lamb,et al. Numerical simulations of bedrock valley evolution by meandering rivers with variable bank material , 2014 .
[21] F. Porté-Agel,et al. Application of dynamic subgrid‐scale concepts from large‐eddy simulation to modeling landscape evolution , 2006 .
[22] J. Pelletier. Persistent drainage migration in a numerical landscape evolution model , 2004 .
[23] E. Andrews. Bed-material entrainment and hydraulic geometry of gravel-bed rivers in Colorado , 1984 .
[24] Tom J. Coulthard,et al. Landscape evolution models: a software review , 2001 .
[25] M. Kirkby,et al. Landscape modelling at Regional to Continental scales , 1999 .
[26] N. Finnegan,et al. A lithologic control on active meandering in bedrock channels , 2015 .
[27] W. Dietrich,et al. Episodic bedrock strath terrace formation due to meander migration and cutoff , 2011 .
[28] R. Hooke. Distribution of Sediment Transport and Shear Stress in a Meander Bend , 1975, The Journal of Geology.
[29] G. Tucker,et al. Interpreting climate‐modulated processes of terrace development along the Colorado Front Range using a landscape evolution model , 2015 .
[30] Storage filters upland suspended sediment signals delivered from watersheds , 2017 .
[31] E. Small,et al. Variability of rock erodibility in bedrock‐floored stream channels based on abrasion mill experiments , 2015 .
[32] L. B. Leopold,et al. The hydraulic geometry of stream channels and some physiographic implications , 1953 .
[33] A. Howard. A detachment-limited model of drainage basin evolution , 1994 .
[34] J. Avouac,et al. Autogenic entrenchment patterns and terraces due to coupling with lateral erosion in incising alluvial channels , 2017 .
[35] T. Knutson,et al. Sufficient conditions for river meandering: A simulation approach , 1984 .
[36] G. Tucker,et al. Self‐formed bedrock channels , 2006 .
[37] David R. Montgomery,et al. Geologic constraints on bedrock river incision using the stream power law , 1999 .
[38] J. Kirchner,et al. Spatial patterns of erosion in a bedrock gorge , 2017 .
[39] Declan A. Valters. Modelling Geomorphic Systems: Landscape Evolution , 2016 .
[40] Gregory E. Tucker,et al. Natural experiments in landscape evolution , 2009 .
[41] John E. Gilley,et al. Darcy-Weisbach Roughness Coefficients for Gravel and Cobble Surfaces , 1992 .
[42] 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 .
[43] K. Whipple,et al. 9.28 Bedrock Rivers , 2013 .
[44] I. Rodríguez‐Iturbe,et al. A coupled channel network growth and hillslope evolution model: 1. Theory , 1991 .
[45] D. Lague,et al. Distribution of erosion across bedrock channels , 2008 .
[46] L. Sklar,et al. Interplay of sediment supply, river incision, and channel morphology revealed by the transient evolution of an experimental bedrock channel , 2007 .
[47] B. Pratt-Sitaula,et al. Landscape disequilibrium on 1000-10,000 year scales Marsyandi River, Nepal, central Himalaya , 2004 .
[48] Paola Passalacqua,et al. A sub-grid scale closure for nonlinear hillslope sediment transport models , 2012 .
[49] R. Anderson,et al. Unsteady late Pleistocene incision of streams bounding the Colorado Front Range from measurements of meteoric and in situ 10Be , 2012 .
[50] N. Hovius,et al. Climate-Driven Bedrock Incision in an Active Mountain Belt , 2002, Science.
[51] D. Lague,et al. Rapid post-seismic landslide evacuation boosted by dynamic river width , 2017 .
[52] A. Mather,et al. Exceptional river gorge formation from unexceptional floods , 2015, Nature Communications.
[53] Frank J. Pazzaglia,et al. Quantitative testing of bedrock incision models for the Clearwater River, NW Washington State , 2003 .
[54] R. Anderson,et al. Numerical modeling of fluvial strath-terrace formation in response to oscillating climate , 2002 .
[55] N. Hovius,et al. River gorge eradication by downstream sweep erosion , 2014 .
[56] T. Quine,et al. Modeling alluvial landform change in the absence of external environmental forcing , 2007 .
[57] E. J. Hickin,et al. A statistical analysis of bank erosion and channel migration in western Canada , 1986 .
[58] Tao Sun,et al. A computer model for meandering rivers with multiple bed load sediment sizes: 1. Theory , 2001 .
[59] Brian D. Collins,et al. Rates and mechanisms of bedrock incision and strath terrace formation in a forested catchment, Cascade Range, Washington , 2016 .
[60] D. Lague. Reduction of long‐term bedrock incision efficiency by short‐term alluvial cover intermittency , 2010 .
[61] David R. Montgomery,et al. Observations on the role of lithology in strath terrace formation and bedrock channel width , 2004 .
[62] J. Roering,et al. Controls on valley width in mountainous landscapes: The role of landsliding and implications for salmonid habitat , 2012 .
[63] G. Willgoose. Mathematical Modeling of Whole Landscape Evolution , 2005 .
[64] D. Tarboton. A new method for the determination of flow directions and upslope areas in grid digital elevation models , 1997 .
[65] M. Horng,et al. Magnitude‐frequency distributions of boundary shear stress along a rapidly eroding bedrock river , 2009 .
[66] G. Tucker,et al. Hillslope‐derived blocks retard river incision , 2016 .
[67] O. Chadwick,et al. Chronology of Pleistocene glacial advances in the central Rocky Mountains , 1997 .
[68] S. Schumm. Meander Wavelength of Alluvial Rivers , 1967, Science.
[69] G. Tucker,et al. Controls and limits on bedrock channel geometry , 2010 .
[70] Gregory E. Tucker,et al. A stochastic approach to modeling the role of rainfall variability in drainage basin evolution , 2000 .
[71] E. Kirby,et al. Tectonic and lithologic controls on bedrock channel profiles and processes in coastal California , 2004 .
[72] L. Hin. Determination of apparent and composite friction factors for flooded equatorial natural rivers , 1991 .
[73] M. Macklin,et al. Embedding reach-scale fluvial dynamics within the CAESAR cellular automaton landscape evolution model , 2007 .
[74] Guy Simpson,et al. Coupled model of surface water flow, sediment transport and morphological evolution , 2006, Comput. Geosci..
[75] A.J.A.M. Temme,et al. Developing, choosing and using landscape evolution models to inform field‐based landscape reconstruction studies , 2017 .
[76] Nicole M. Gasparini,et al. Predictions of steady state and transient landscape morphology using sediment‐flux‐dependent river incision models , 2007 .
[77] G. Tucker,et al. Contrasting transient and steady‐state rivers crossing active normal faults: new field observations from the Central Apennines, Italy , 2007 .
[78] M. Wiel,et al. A cellular model of river meandering , 2006 .
[79] Nicole M. Gasparini,et al. The Channel-Hillslope Integrated Landscape Development Model (CHILD) , 2001 .
[80] Wonsuck Kim,et al. River channel lateral mobility: metrics, time scales, and controls , 2013 .
[81] Nicole M. Gasparini,et al. The Landlab v1.0 OverlandFlow component: a Python tool for computing shallow-water flow across watersheds , 2017 .
[82] D. Montgomery,et al. Downstream variations in the width of bedrock channels , 2001 .
[83] Stephen T. Lancaster,et al. A simple model of river meandering and its comparison to natural channels , 2002 .
[84] R. Bras,et al. Geoarchaeological simulation of meandering river deposits and settlement distributions: A three‐dimensional approach , 2006 .
[85] N. Snyder,et al. Dynamic adjustments in channel width in response to a forced diversion: Gower Gulch, Death Valley National Park, California , 2007 .
[86] Chien-Chih Chen,et al. The influence of sediment cover variability on long‐term river incision rates: An example from the Peikang River, central Taiwan , 2011 .
[87] G. Tucker,et al. Channel response to tectonic forcing: field analysis of stream morphology and hydrology in the Mendocino triple junction region, northern California , 2003 .
[88] Dimitri Lague,et al. Fluvial erosion/transport equation of landscape evolution models revisited , 2009 .
[89] R. Anderson,et al. Dating of river terraces along Lefthand Creek, western High Plains, Colorado, reveals punctuated incision , 2017 .
[90] W. Dietrich,et al. A new framework for modeling the migration of meandering rivers , 2011 .
[91] David R. Montgomery,et al. Lithologic controls on valley width and strath terrace formation , 2016 .
[92] J. Wallinga,et al. Testing for sufficient signal resetting during sediment transport using a polymineral multiple-signal luminescence approach , 2015 .
[93] Y. Hayakawa,et al. The Climatic Signature of Incised River Meanders , 2010, Science.
[94] M. Lamb,et al. A vector‐based method for bank‐material tracking in coupled models of meandering and landscape evolution , 2013 .
[95] Martin Reich,et al. Modelling sediment clasts transport during landscape evolution , 2015 .
[96] Colin P. Stark,et al. A CHANNELIZATION MODEL OF LANDSCAPE EVOLUTION , 2001 .
[97] N. Finnegan,et al. Sediment supply, base level, braiding, and bedrock river terrace formation: Arroyo Seco, California, USA , 2013 .
[98] G. Tucker,et al. Importance of a stochastic distribution of floods and erosion thresholds in the bedrock river incision problem , 2003 .
[99] D. Lague,et al. Response of bedrock channel width to tectonic forcing: Insights from a numerical model, theoretical considerations, and comparison with field data , 2009 .
[100] K. Whipple,et al. Evaluating the controls of shear stress, sediment supply, alluvial cover, and channel morphology on experimental bedrock incision rate , 2010 .
[101] M. Kirkby,et al. A cellular model of Holocene upland river basin and alluvial fan evolution , 2002 .