Response of particle detachment and hydrological processes on windward slope in laboratory flume experiments at different wind velocities and rainfall intensities

[1]  J. J. del Coz-Díaz,et al.  Directional characterisation of annual and temporary exposure to rainwater penetration on building façades throughout Mexico , 2022, Building and Environment.

[2]  C. O. Delang,et al.  Soil detachment capacity by rill flow for five typical loess soils on the Loess Plateau of China , 2021 .

[3]  F. Zheng,et al.  Flow hydraulics in an ephemeral gully system under different slope gradients, rainfall intensities and inflow conditions , 2021 .

[4]  Yaonan Zhang,et al.  Simulations in the Topography Effects of Tianshan Mountains on an Extreme Precipitation Event in the Ili River Valley, China , 2021, Atmosphere.

[5]  M. Mahmoodabadi,et al.  Enrichment of soil organic carbon in the eroded sediments due to the simultaneous occurrence of rain and wind , 2021 .

[6]  X. Mu,et al.  Effect of shrub-grass vegetation coverage and slope gradient on runoff and sediment yield under simulated rainfall , 2021 .

[7]  Tian Wang,et al.  Experimental Study of Freeze-Thaw/Water Compound Erosion and Hydraulic Conditions as Affected by Thawed Depth on Loessal Slope , 2020, Frontiers in Environmental Science.

[8]  Xinxiao Yu,et al.  Field studies on the influence of rainfall intensity, vegetation cover and slope length on soil moisture infiltration on typical watersheds of the Loess Plateau, China , 2020, Hydrological Processes.

[9]  Bing-hui He,et al.  Hydrological response and soil detachment rate from dip/anti-dip slopes as a function of rock strata dip in karst valley revealed by rainfall simulations , 2020 .

[10]  H. Pasdarshahri,et al.  Quantifying impacts of wind speed and urban neighborhood layout on the infiltration rate of residential buildings , 2020 .

[11]  J. Hou,et al.  Experimental study for effects of terrain features and rainfall intensity on infiltration rate of modelled permeable pavement. , 2019, Journal of environmental management.

[12]  Jian Luo,et al.  Assessing the contribution of the sediment content and hydraulics parameters to the soil detachment rate using a flume scouring experiment , 2019, CATENA.

[13]  M. Mahmoodabadi,et al.  Experimental investigation of rain-induced splash and wash processes under wind-driven rain , 2019, Geoderma.

[14]  M. Mahmoodabadi,et al.  Sediment flux, wind erosion and net erosion influenced by soil bed length, wind velocity and aggregate size distribution , 2018, Geoderma.

[15]  Yan Zeng,et al.  High‐resolution precipitation downscaling in mountainous areas over China: development and application of a statistical mapping approach , 2018 .

[16]  Ren Li,et al.  Characteristics of the ratios of snow, rain and sleet to precipitation on the Qinghai-Tibet Plateau during 1961–2014 , 2017 .

[17]  J. Ries,et al.  Impact of severe rain storms on soil erosion: Experimental evaluation of wind-driven rain and its implications for natural hazard management. , 2017, The Science of the total environment.

[18]  F. Zheng,et al.  Response of soil detachment rate to the hydraulic parameters of concentrated flow on steep loessial slopes on the Loess Plateau of China , 2017 .

[19]  Tianyang Li,et al.  Effects of land disturbance on runoff and sediment yield after natural rainfall events in southwestern China , 2017, Environmental Science and Pollution Research.

[20]  J. Ries,et al.  The effect of rain, wind-driven rain and wind on particle transport under controlled laboratory conditions , 2016 .

[21]  S. Ren,et al.  Slope length effects on processes of total nitrogen loss under simulated rainfall , 2016 .

[22]  Le-tao Zhang,et al.  Dynamic processes of soil erosion by runoff on engineered landforms derived from expressway construction: A case study of typical steep spoil heap , 2015 .

[23]  J. Ries,et al.  Quantification of particle detachment by rain splash and wind-driven rain splash , 2015 .

[24]  Guo-ce Xu,et al.  Runoff and sediment yield under simulated rainfall on sand-covered slopes in a region subject to wind–water erosion , 2015, Environmental Earth Sciences.

[25]  Qinghe Zhao,et al.  Effects of rainfall intensity and slope gradient on erosion characteristics of the red soil slope , 2015, Stochastic Environmental Research and Risk Assessment.

[26]  Laosheng Wu,et al.  Flow hydraulic characteristic effect on sediment and solute transport on slope erosion , 2013 .

[27]  Pute Wu,et al.  Effects of rainfall intensity, underlying surface and slope gradient on soil infiltration under simulated rainfall experiments , 2013 .

[28]  M. Seeger,et al.  The role of wind-driven rain for soil erosion – an experimental approach , 2013 .

[29]  Mingguo Zheng,et al.  Flow–sediment relationship as functions of spatial and temporal scales in hilly areas of the Chinese Loess Plateau , 2012 .

[30]  Vahid Moosavi,et al.  Soil erosion assessment and prioritization of affecting factors at plot scale using the Taguchi method , 2012 .

[31]  B. Baetz,et al.  Probabilistic rainfall‐runoff transformation considering both infiltration and saturation excess runoff generation processes , 2012 .

[32]  Chongfa Cai,et al.  Effects of rock fragment cover on hydrological response and soil loss from Regosols in a semi-humid environment in South-West China , 2012 .

[33]  R. Houze Orographic effects on precipitating clouds , 2012 .

[34]  G. Sterk,et al.  Effect of hydraulic parameters on sediment transport capacity in overland flow over erodible beds , 2011 .

[35]  J. Zhao,et al.  Effects of rainfall intensity and antecedent soil water content on soil infiltrability under rainfall conditions using the run off-on-out method , 2011 .

[36]  W. Cornelis,et al.  Sand detachment under rains with varying angle of incidence , 2008 .

[37]  L. Starkel,et al.  Extreme rainfalls in Eastern Himalaya and southern slope of Meghalaya Plateau and their geomorphologic impacts , 2007 .

[38]  Z. Shangguan,et al.  Runoff hydraulic characteristics and sediment generation in sloped grassplots under simulated rainfall conditions , 2006 .

[39]  Jan Carmeliet,et al.  Impact of wind on the spatial distribution of rain over micro‐scale topography: numerical modelling and experimental verification , 2006 .

[40]  Keith Beven,et al.  Robert E. Horton's perceptual model of infiltration processes , 2004 .

[41]  J. Carmeliet,et al.  A review of wind-driven rain research in building science , 2004 .

[42]  G. Erpul,et al.  Wind effects on sediment transport by raindrop‐impacted shallow flow: a wind‐tunnel study , 2004 .

[43]  W. Cornelis,et al.  Splash-saltation of sand due to wind-driven rain: horizontal flux and sediment transport rate , 2004 .

[44]  G. Erpul Detachment and sediment transport from interrill areas under wind -driven rain , 2003 .

[45]  Vijay P. Singh,et al.  The influence of storm movement on water erosion: storm direction and velocity effects , 2003 .

[46]  Joe M. Bradford,et al.  Analyses of Slope and Runoff Factors Based on the WEPP Erosion Model , 1993 .

[47]  P. Dijk,et al.  Splash-saltation transport under wind-driven rain , 1992 .

[48]  Mark A. Nearing,et al.  Soil Detachment by Shallow Flow at Low Slopes , 1991 .

[49]  J. Lima Raindrop splash anisotropy: Slope, wind and overland flow velocity effects , 1989 .

[50]  Chenyang Zhao,et al.  Effects of different wind directions on soil erosion and nitrogen loss processes under simulated wind-driven rain , 2022, CATENA.

[51]  Zhiqiang Gao,et al.  Multiple surface runoff and soil loss responses by sandstone morphologies to land-use and precipitation regimes changes in the Loess Plateau, China , 2022, CATENA.

[52]  Jürgen Schmidt,et al.  Wind effects on soil erosion by water — A sensitivity analysis using model simulations on catchment scale , 2017 .

[53]  W. Cornelis,et al.  Splash–Saltation of Sand due to Wind-Driven Rain , 2004 .

[54]  G. R. Foster,et al.  A Laboratory Study of Rill Hydraulics: II. Shear Stress Relationships , 1984 .

[55]  Lowell A. Disrud,et al.  Examining the Process of Soil Detachment from Clods Exposed to Wind-Driven Simulated Rainfall , 1971 .

[56]  R. Horton An Approach Toward a Physical Interpretation of Infiltration-Capacity1 , 1941 .