The way forward: Can connectivity be useful to design better measuring and modelling schemes for water and sediment dynamics?
暂无分享,去创建一个
Saskia Keesstra | Tony Parsons | Artemi Cerdà | Joao Pedro Nunes | Patricia Saco | Ronald Poeppl | Rens Masselink | S. Keesstra | J. Nunes | R. Poeppl | P. Saco | R. Masselink | T. Parsons | A. Cerdà
[1] Leonard J. Lane,et al. Processes controlling sediment yield from watersheds as functions of spatial scale , 1997 .
[2] J. Støttrup,et al. A Systems Approach Framework for Coastal Zones , 2011 .
[3] G. Webber,et al. COMPARISON OF CHEMICAL COMPOSITION OF SOILS AND BEDROCK OF MONT ST. HILAIRE, QUEBEC , 1965 .
[4] Tyler Smith,et al. Using field data to inform and evaluate a new model of catchment hydrologic connectivity , 2013 .
[5] Keith Beven,et al. A dynamic TOPMODEL , 2001 .
[6] D. Walling,et al. Fallout 210Pb as a soil and sediment tracer in catchment sediment budget investigations: A review , 2014 .
[7] João Pedro Nunes,et al. Time series analysis of the long-term hydrologic impacts of afforestation in the Águeda watershed of north-central Portugal , 2014 .
[8] Nicole M. Gasparini,et al. The Channel-Hillslope Integrated Landscape Development Model (CHILD) , 2001 .
[9] A. Harvey. Effective timescales of coupling within fluvial systems , 2002 .
[10] C. Pringle. What is hydrologic connectivity and why is it ecologically important? , 2003 .
[11] D. Badía,et al. Comparison of different methods to measure soil erosion in the Central Ebro Valley , 2015 .
[12] Mark A. Nearing,et al. Sediment tracers in water erosion studies: current approaches and challenges , 2013, Journal of Soils and Sediments.
[13] J. N. Callow,et al. The effect of farm dams and constructed banks on hydrologic connectivity and runoff estimation in agricultural landscapes , 2009, Environ. Model. Softw..
[14] A. Cerdà. Soil erosion after land abandonment in a semiarid environment of southeastern Spain , 1997 .
[15] A. Harvey,et al. Coupling between hillslopes and channels in upland fluvial systems: implications for landscape sensitivity, illustrated from the Howgill Fells, northwest England , 2001 .
[16] Timothy H. Keitt,et al. LANDSCAPE CONNECTIVITY: A GRAPH‐THEORETIC PERSPECTIVE , 2001 .
[17] L. H. Cammeraat. A review of two strongly contrasting geomorphological systems within the context of scale , 2002 .
[18] J. Nunes,et al. A simple water balance model adapted for soil water repellency: application on Portuguese burned and unburned eucalypt stands , 2016 .
[19] Keli Zhang,et al. Modeling Interrill Erosion on Unpaved Roads in the Loess Plateau of China , 2015 .
[20] Doerthe Tetzlaff,et al. Towards a simple dynamic process conceptualization in rainfall–runoff models using multi-criteria calibration and tracers in temperate, upland catchments , 2009 .
[21] T. Heckmann,et al. Geomorphic coupling and sediment connectivity in an alpine catchment - exploring sediment cascades using graph theory , 2013 .
[22] Wolfgang Schwanghart,et al. Graph theory-recent developments of its application in geomorphology , 2014 .
[23] P. Forster,et al. Using a migration systems approach to understand the link between climate change and urbanisation in Malawi , 2015 .
[24] Thomas Maxwell,et al. Comparing modelling frameworks - A workshop approach , 2006, Environ. Model. Softw..
[25] G. Zhao,et al. Dynamics of Runoff and Suspended Sediment Transport in a Highly Erodible Catchment on the Chinese Loess Plateau , 2016 .
[26] Jonathan D. Phillips,et al. Emergence and pseudo-equilibrium in geomorphology , 2011 .
[27] K. Fryirs,et al. Buffers, barriers and blankets : the (dis)connectivity of catchment-scale sediment cascades , 2007 .
[28] G. Merriam,et al. The elements of connectivity where corridor quality is variable , 1990, Landscape Ecology.
[29] Jean L. Steiner,et al. A system’s approach to assess the exposure of agricultural production to climate change and variability , 2016, Climatic Change.
[30] S. Trimble,et al. The cow as a geomorphic agent — A critical review , 1995 .
[31] C. Birkel,et al. Modelling storage‐driven connectivity between landscapes and riverscapes: towards a simple framework for long‐term ecohydrological assessment , 2016 .
[32] Hubert H. G. Savenije,et al. HESS Opinions "The art of hydrology" , 2008 .
[33] Dino Torri,et al. Prolegomena to sediment and flow connectivity in the landscape: A GIS and field numerical assessment , 2008 .
[34] R. Shakesby,et al. Post-wildfire soil erosion in the Mediterranean: Review and future research directions , 2011 .
[35] Mike Kirkby,et al. Hillslope runoff processes and models , 1988 .
[36] D. Nir. Man, a Geomorphological Agent: An Introduction to Anthropic Geomorphology , 1984 .
[37] M. Wolman,et al. Magnitude and Frequency of Forces in Geomorphic Processes , 1960, The Journal of Geology.
[38] R. Evans. The erosional impacts of grazing animals , 1998 .
[39] L. C. Bonham. Migration of Hydrocarbons in Compacting Basins , 1980 .
[40] Robert E. Dickinson,et al. Time scales of land surface hydrology , 2004 .
[41] S. Keesstra,et al. Effects of soil management techniques on soil water erosion in apricot orchards. , 2016, The Science of the total environment.
[42] Nadja Kunz,et al. The utility of a systems approach for managing strategic water risks at a mine site level , 2016 .
[43] M. Wolman,et al. Relative scales of time and effectiveness of climate in watershed geomorphology , 1978 .
[44] J. McDonnell,et al. Isotope tracers in catchment hydrology , 1998 .
[45] J. G. King,et al. Mountain erosion over 10 yr, 10 k.y., and 10 m.y. time scales , 2001 .
[46] David C. Garen,et al. CURVE NUMBER HYDROLOGY IN WATER QUALITY MODELING: USES, ABUSES, AND FUTURE DIRECTIONS 1 , 2005 .
[47] S. Keesstra,et al. Assessing hillslope-channel connectivity in an agricultural catchment using rare-earth oxide tracers and random forests models , 2017 .
[48] Jean Poesen,et al. The importance of plant root characteristics in controlling concentrated flow erosion rates , 2003 .
[49] Greg Hancock,et al. Eco-geomorphology of banded vegetation patterns in arid and semi-arid regions , 2006 .
[50] Viral B. Shah,et al. Using circuit theory to model connectivity in ecology, evolution, and conservation. , 2008, Ecology.
[51] M. Bonell. Progress in the understanding of runoff generation dynamics in forests , 1993 .
[52] Nicole M. Gasparini,et al. Creative computing with Landlab: an open-source toolkit for building, coupling, and exploring two-dimensional numerical models of Earth-surface dynamics , 2016 .
[53] Jeroen M. Schoorl,et al. Modelling runoff and erosion for a semi-arid catchment using a multi-scale approach based on hydrological connectivity , 2009 .
[54] Peter A. Troch,et al. Catchment coevolution: A useful framework for improving predictions of hydrological change? , 2015 .
[55] A. Pearce,et al. Storm runoff generation in humid headwater catchments 1 , 1986 .
[56] Noemí Lana-Renault,et al. Effects of farming terraces on hydrological and geomorphological processes. A review , 2015 .
[57] Roger Moore,et al. An overview of the open modelling interface and environment (the OpenMI) , 2005 .
[58] D. Tullos,et al. Geomorphic and Ecological Disturbance and Recovery from Two Small Dams and Their Removal , 2014, PloS one.
[59] J. Herbohn,et al. A systems approach to improving the quality of tree seedlings for agroforestry, tree farming and reforestation in the Philippines , 2015 .
[60] C. Troendle,et al. Streamflow Generation by Variable Source Area , 1988 .
[61] Stuart N. Lane,et al. Does hydrological connectivity improve modelling of coarse sediment delivery in upland environments , 2007 .
[62] Gary Brierley,et al. Landscape connectivity: the geographic basis of geomorphic applications , 2006 .
[63] Jacky Croke,et al. Runoff generation and re-distribution in logged eucalyptus forests, south-eastern Australia , 1999 .
[64] Cherie J. Westbrook,et al. Beaver dams and overbank floods influence groundwater–surface water interactions of a Rocky Mountain riparian area , 2006 .
[65] H. Wanner,et al. Five hundred years of gridded high-resolution precipitation reconstructions over Europe and the connection to large-scale circulation , 2006 .
[66] S. Keesstra,et al. The geomorphic legacy of small dams — An Austrian study , 2015 .
[67] David Clark,et al. THE FORMAL AND FUNCTIONAL STRUCTURE OF WALES , 1973 .
[68] A. Howard. Equilibrium and time scales in geomorphology: Application to sand-bed alluvial streams , 1982 .
[69] Jonathan F. Hansen,et al. Effects of Stronach Dam removal on fluvial geomorphology in the Pine River, Michigan, United States. , 2009 .
[70] Mark Brenner,et al. Quantification of soil erosion rates related to ancient Maya deforestation , 2007 .
[71] S. Keesstra,et al. Evolution of the Morphology of the River Dragonja (SW Slovenia) due to Land-Use Changes , 2005 .
[72] J. Hewlett. Factors affecting the response of small watersheds to precipitation in humid areas , 1967 .
[73] A. Díaz,et al. Relationship of runoff, erosion and sediment yield to weather types in the Iberian Peninsula , 2015 .
[74] Louise J. Bracken,et al. The concept of hydrological connectivity and its contribution to understanding runoff‐dominated geomorphic systems , 2007 .
[75] J. Stanford,et al. An Ecosystem Perspective of Alluvial Rivers: Connectivity and the Hyporheic Corridor , 1993, Journal of the North American Benthological Society.
[76] Stuart N. Lane,et al. Representation of landscape hydrological connectivity using a topographically driven surface flow index , 2009 .
[77] B. Leake,et al. Effect of connectivity on the activity of neural net models. , 1976, Journal of theoretical biology.
[78] Hervé Squividant,et al. Incorporating landscape features to obtain an object‐oriented landscape drainage network representing the connectivity of surface flow pathways over rural catchments , 2011 .
[79] Panos Panagos,et al. Soil Conservation in Europe: Wish or Reality? , 2016 .
[80] C. Helling,et al. Evaluation of molecular connectivity as a predicitive method for the adsorption of pesticides by soils , 1985 .
[81] J. Blondel. The ‘Design’ of Mediterranean Landscapes: A Millennial Story of Humans and Ecological Systems during the Historic Period , 2006 .
[82] M. López‐Vicente,et al. Hydrological Connectivity Does Change Over 70 Years of Abandonment and Afforestation in the Spanish Pyrenees , 2017 .
[83] Manuel López-Vicente,et al. Assessment of soil redistribution at catchment scale by coupling a soil erosion model and a sediment connectivity index (central spanish pre-pyrenees) , 2015 .
[84] I. Stavi,et al. Small‐scale Geodiversity Regulates Functioning, Connectivity, and Productivity of Shrubby, Semi‐arid Rangelands , 2018 .
[85] Mathieu Javaux,et al. Integrating subgrid connectivity properties of the micro-topography in distributed runoff models, at the interrill scale , 2011 .
[86] J. López‐Moreno,et al. An Exceptional Rainfall Event in the Central Western Pyrenees: Spatial Patterns in Discharge and Impact , 2015 .
[87] Johan Bouma,et al. The significance of soils and soil science towards realization of the United Nations sustainable development goals , 2016 .
[88] W. Freimund,et al. Influence of Llamas, Horses, and Hikers on Soil Erosion from Established Recreation Trails in Western Montana, USA , 1998, Environmental management.
[89] J. Keizer,et al. Assessing water contamination risk from vegetation fires: Challenges, opportunities and a framework for progress , 2018 .
[90] Peter R. Robichaud,et al. Current research issues related to post-wildfire runoff and erosion processes , 2013 .
[91] C. Soulsby,et al. Spatial organization of groundwater dynamics and streamflow response from different hydropedological units in a montane catchment , 2016 .
[92] J. Ward,et al. The Four-Dimensional Nature of Lotic Ecosystems , 1989, Journal of the North American Benthological Society.
[93] G. Whyburn. The Cyclic and Higher Connectivity of Locally Connected Spaces , 1931 .
[94] O. Slaymaker. Towards the identification of scaling relations in drainage basin sediment budgets , 2006 .
[95] Paolo Vezza,et al. Cost‐Effectiveness of Soil and Water Conservation Measures on the Catchment Sediment Budget–The Laaba Watershed Case Study, Burkina Faso , 2015 .
[96] E. Taguas,et al. Sediment loss and its cause in Puerto Rico watersheds , 2015 .
[97] Lorenzo Marchi,et al. Geomorphometric assessment of spatial sediment connectivity in small Alpine catchments , 2013 .
[98] John Wainwright,et al. Sediment connectivity: a framework for understanding sediment transfer at multiple scales , 2015 .
[99] Nicolas Bellin,et al. Application of connectivity theory to model the impact of terrace failure on runoff in semi‐arid catchments , 2009 .
[100] T. Burt,et al. The permanence of stream networks in Britain: Further comments , 1982 .
[101] George Perkins Marsh,et al. Man and Nature , 2002 .
[102] José Alfonso Gómez Calero,et al. Characteristics and importance of rill and gully erosion: a case study in a small catchment of a marginal olive grove , 2015 .
[103] J. Nyssen,et al. Sediment in Alluvial and Lacustrine Debris Fans as an Indicator for Land Degradation Around Lake Ashenge (Ethiopia) , 2016 .
[104] M. Märker,et al. Modelling Post‐Tree‐Harvesting Soil Erosion and Sediment Deposition Potential in the Turano River Basin (Italian Central Apennine) , 2015 .
[105] E. Cammeraat,et al. Ecohydrological adaptation of soils following land abandonment in a semi‐arid environment , 2010 .
[106] Penny J Johnes,et al. MODELLING THE IMPACT OF LAND USE CHANGE ON WATER QUALITY IN AGRICULTURAL CATCHMENTS , 1997 .
[107] J. Wainwright,et al. Use of carbon isotope analysis to understand semi-arid erosion dynamics and long-term semi-arid land degradation. , 2008, Rapid communications in mass spectrometry : RCM.
[108] Arnaud J.A.M. Temme,et al. A network theory approach for a better understanding of overland flow connectivity , 2016 .
[109] John A. Cherry,et al. Solute transport through fractured media: 2. Column study of fractured till , 1980 .
[110] André G. Roy,et al. Revisiting Hydrologic Sampling Strategies for an Accurate Assessment of Hydrologic Connectivity in Humid Temperate Systems , 2009 .
[111] L. Bracken,et al. Introduction to special issue on connectivity in water and sediment dynamics , 2015 .
[112] M. Doyle,et al. Channel-Forming Discharge Selection in River Restoration Design , 2007 .
[113] Walter Munk,et al. ON THE WIND-DRIVEN OCEAN CIRCULATION , 1950 .
[114] A. Rapoport,et al. A statistical approach to the theory of the central nervous system. , 1948, The Bulletin of mathematical biophysics.
[115] James P. M. Syvitski,et al. Strategies for integrated modeling: The community surface dynamics modeling system example , 2013, Environ. Model. Softw..
[116] Chi-Hua Huang,et al. Aggregate Stability and Water Retention Near Saturation Characteristics as Affected by Soil Texture, Aggregate Size and Polyacrylamide Application , 2017 .
[117] O. Evrard,et al. Preface—Addressing challenges to advance sediment fingerprinting research , 2015, Journal of Soils and Sediments.
[118] B. Bronson,et al. Prehistoric Investigations at Tianko Panjang Cave, Sumatra: An Interim Report , 1976 .
[119] Michael L. Shelley,et al. A dynamic model of bioavailability of metals in constructed wetland sediments , 1999 .
[120] K. Fryirs. (Dis)Connectivity in catchment sediment cascades: a fresh look at the sediment delivery problem , 2013 .
[121] M. Marchamalo,et al. Flow and Sediment Connectivity in Semi‐arid Landscapes in SE Spain: Patterns and Controls , 2016 .
[122] Sim Reaney,et al. The influence of land use, soils and topography on the delivery of hillslope runoff to channels in SE Spain , 2002 .
[123] M. Mahmoodabadi,et al. Aggregate breakdown and surface seal development influenced by rain intensity, slope gradient and soil particle size , 2015 .
[124] L. Bracken,et al. The importance of surface controls on overland flow connectivity in semi‐arid environments: results from a numerical experimental approach , 2014 .
[125] J. Qu,et al. Satellite remote sensing applications for surface soil moisture monitoring: A review , 2009 .
[126] T. Lasanta,et al. Changes in Runoff and Erosion as a Consequence of Land-Use Changes in the Central Spanish Pyrenees , 1995 .
[127] Jesús Carrera,et al. On the use of apparent hydraulic diffusivity as an indicator of connectivity , 2006 .
[128] J. Wainwright,et al. Linking environmental régimes, space and time: Interpretations of structural and functional connectivity , 2008 .
[129] Pablo Ochoa-Cueva,et al. Spatial Estimation of Soil Erosion Risk by Land‐cover Change in the Andes OF Southern Ecuador , 2015 .
[130] L. H. Cammeraat,et al. The effects of ants' nests on the physical, chemical and hydrological properties of a rangeland soil in semi-arid Spain , 2002 .
[131] Chris S. Renschler,et al. Soil erosion assessment tools from point to regional scales—the role of geomorphologists in land management research and implementation , 2002 .
[132] Peter B. Hairsine,et al. Sediment delivery in managed forests: a review , 2006 .
[133] L. Smith. Satellite remote sensing of river inundation area, stage, and discharge: a review , 1997 .
[134] Ronald E. Poeppl,et al. A conceptual connectivity framework for understanding geomorphic change in human-impacted fluvial systems , 2017 .
[135] D. Vericat,et al. Temporal Dynamics of Sediment Transport and Transient In‐channel Storage in a Highly Erodible Catchment , 2016 .
[136] Jantiene E.M. Baartman,et al. Better models are more effectively connected models , 2016 .
[137] P. Saco,et al. Ecogeomorphic coevolution of semiarid hillslopes: Emergence of banded and striped vegetation patterns through interaction of biotic and abiotic processes , 2013 .
[138] E. Nadal‐Romero,et al. Linking Land Cover Changes in the Sub‐Alpine and Montane Belts to Changes in a Torrential River , 2016 .
[139] Artemi Cerdà,et al. Parent material and vegetation affect soil erosion in eastern Spain , 1999 .
[140] Zhenduo Zhu,et al. Integrated urban hydrologic and hydraulic modelling in Chicago, Illinois , 2016, Environ. Model. Softw..
[141] John Woodward,et al. Interannual surface evolution of an Antarctic blue-ice moraine using multi-temporal DEMs , 2015 .
[142] Matthias Ruth,et al. Using Dynamic Modeling to Scope Environmental Problems and Build Consensus , 1998, Environmental management.
[143] J. McDonnell,et al. Stable Isotope Tracers in Watershed Hydrology , 2008 .
[144] R. Horton. The Rôle of infiltration in the hydrologic cycle , 1933 .
[145] D. M. Powell,et al. A transport‐distance approach to scaling erosion rates: 2. sensitivity and evaluation of Mahleran , 2008 .
[146] Bruno De Fraine,et al. OpenMI-based integrated sediment transport modelling of the river Zenne, Belgium , 2013, Environ. Model. Softw..
[147] Stuart N. Lane,et al. A network‐index‐based version of TOPMODEL for use with high‐resolution digital topographic data , 2004 .
[148] A. Klik,et al. Magnitude and Occurrence Probability of Soil Loss: A Risk Analytical Approach for the Plot Scale For Two Sites in Lower Austria , 2016 .
[149] K. Butzer. Environmental history in the Mediterranean world: cross-disciplinary investigation of cause-and-effect for degradation and soil erosion , 2005 .
[150] Debra P. C. Peters,et al. Connectivity in dryland landscapes: shifting concepts of spatial interactions , 2015 .
[151] Doerthe Tetzlaff,et al. Concepts of hydrological connectivity: Research approaches, pathways and future agendas , 2013 .
[152] Jamie Pittock. National Climate Change Policies and Sustainable Water Management: Conflicts and Synergies , 2011 .
[153] Jan Nyssen,et al. Effect of beaver dams on the hydrology of small mountain streams: Example from the Chevral in the Ourthe Orientale basin, Ardennes, Belgium , 2011 .
[154] A. Melland,et al. Storm Event Suspended Sediment-Discharge Hysteresis and Controls in Agricultural Watersheds: Implications for Watershed Scale Sediment Management. , 2016, Environmental science & technology.
[155] William J. Doucette,et al. Use of molecular connectivity indices to estimate soil sorption coefficients for organic chemicals , 1988 .