A raster-based estimation of watershed phosphorus load and its impacts on surrounding rivers based on process-based modelling.
暂无分享,去创建一个
[1] Zhenyao Shen,et al. New method for scaling nonpoint source pollution by integrating the SWAT model and IHA-based indicators. , 2022, Journal of environmental management.
[2] X. Zhang,et al. Global trends of cropland phosphorus use and sustainability challenges , 2022, Nature.
[3] Zhenyao Shen,et al. An integrated source apportionment method by incorporating spatial location information and source-transfer-sink simulation , 2022, Journal of Cleaner Production.
[4] Yaqing Chang,et al. Ecological niche models for the assessment of site suitability of sea cucumbers and sea urchins in China , 2022, Scientific Reports.
[5] Jing Zhang,et al. Coupling mountain and lowland watershed models to characterize nutrient loading: an eight-year investigation in Lake Chaohu Basin , 2022, Journal of Hydrology.
[6] K. Liao,et al. A modelling framework to track phosphorus sources of the drinking water intakes in a large eutrophic lake , 2022, Journal of Hydrology.
[7] Jinshui Wu,et al. Landscape patterns of catchment and land-use regulate legacy phosphorus releases in subtropical mixed agricultural and woodland catchments. , 2022, The Science of the total environment.
[8] Jian Peng,et al. Characterizing the river water quality in China: Recent progress and on-going challenges. , 2021, Water research.
[9] Liangyun Liu,et al. Finer-Resolution Mapping of Global Land Cover: Recent Developments, Consistency Analysis, and Prospects , 2021 .
[10] Taegu Kang,et al. Predicting Cyanobacterial Blooms Using Hyperspectral Images in a Regulated River , 2021, Sensors.
[11] B. Narasimhan,et al. Simulation of rice paddy systems in SWAT: A review of previous applications and proposed SWAT+ rice paddy module , 2021, International Journal of Agricultural and Biological Engineering.
[12] Lichun Wang,et al. Modelling the sources and transport of ammonium nitrogen with the SPARROW model: A case study in a karst basin , 2021 .
[13] D. Zhu,et al. Modeling the sources and retention of phosphorus nutrient in a coastal river system in China using SWAT. , 2020, Journal of environmental management.
[14] Junfeng Gao,et al. Quantifying the impacts of climate change and land use on hydrological processes: A comparison between mountain and lowland agricultural watersheds , 2020, Hydrological Processes.
[15] D. Robinson,et al. Global phosphorus shortage will be aggravated by soil erosion , 2020, Nature Communications.
[16] P. Gassman,et al. A review of SWAT applications, performance and future needs for simulation of hydro-climatic extremes , 2020 .
[17] Mengru Wang,et al. Modelling the contribution of crops to nitrogen pollution in the Yangtze River. , 2020, Environmental science & technology.
[18] Al Arsh Basheer,et al. Advances in the smart materials applications in the aerospace industries , 2020 .
[19] Jian Peng,et al. The magnitude and drivers of harmful algal blooms in China's lakes and reservoirs: A national-scale characterization. , 2020, Water research.
[20] Qin Boqiang. Shallow lake limnology and control of eutrophication in Lake Taihu , 2020, Journal of Lake Sciences.
[21] Cheng Zhang,et al. Impacts of climate and planting structure changes on watershed runoff and nitrogen and phosphorus loss. , 2019, The Science of the total environment.
[22] Hengpeng Li,et al. Modeling phosphorus sources and transport in a headwater catchment with rapid agricultural expansion. , 2019, Environmental pollution.
[23] Ji-xi Gao,et al. Effects of fertilizer types on nitrogen and phosphorous loss from rice-wheat rotation system in the Taihu Lake region of China , 2019 .
[24] I. Ali,et al. Removal of Copper(II) and Zinc(II) Ions in Water on a Newly Synthesized Polyhydroquinone/Graphene Nanocomposite Material: Kinetics, Thermodynamics and Mechanism , 2019 .
[25] Brian L. Benham,et al. Risk-based decision making to evaluate pollutant reduction scenarios. , 2019, The Science of the total environment.
[26] Junfeng Gao,et al. Framework for quantifying rural NPS pollution of a humid lowland catchment in Taihu Basin, Eastern China. , 2019, The Science of the total environment.
[27] L. Sprague,et al. Variable impacts of contemporary versus legacy agricultural phosphorus on US river water quality , 2019, Proceedings of the National Academy of Sciences.
[28] Hengpeng Li,et al. Nitrogen transport and retention in a headwater catchment with dense distributions of lowland ponds. , 2019, The Science of the total environment.
[29] Mengru Wang,et al. Multi-scale Modeling of Nutrient Pollution in the Rivers of China , 2019, Environmental science & technology.
[30] K. Takara,et al. Non-point source pollution estimation in the Pingqiao River Basin, China, using a spatial hydrograph-separation approach , 2019, Hydrological Sciences Journal.
[31] M. Thieme,et al. Mapping the world’s free-flowing rivers , 2019, Nature.
[32] P. Burek,et al. Excess nutrient loads to Lake Taihu: Opportunities for nutrient reduction. , 2019, The Science of the total environment.
[33] Lei Chen,et al. Temporal and spatial scaling effects of parameter sensitivity in relation to non-point source pollution simulation , 2019, Journal of Hydrology.
[34] I. Ali,et al. Advances in carbon nanomaterials as lubricants modifiers , 2019, Journal of Molecular Liquids.
[35] K. Calvin,et al. Societal decisions about climate mitigation will have dramatic impacts on eutrophication in the 21st century , 2019, Nature Communications.
[36] George B. Arhonditsis,et al. How successful are the restoration efforts of China's lakes and reservoirs? , 2019, Environment international.
[37] L. Hongbin,et al. Effects of anthropogenic activities on long-term changes of nitrogen budget in a plain river network region: A case study in the Taihu Basin. , 2018, The Science of the total environment.
[38] Bing Zhang,et al. Trophic state assessment of global inland waters using a MODIS-derived Forel-Ule index , 2018, Remote Sensing of Environment.
[39] I. Ali,et al. Stereoselective uptake and degradation of (±)-o,p-DDD pesticide stereomers in water-sediment system. , 2018, Chirality.
[40] Zhanghua Wu,et al. Identification of watershed priority management areas under water quality constraints: A simulation-optimization approach with ideal load reduction , 2018, Journal of Hydrology.
[41] A. Basheer. New generation nano-adsorbents for the removal of emerging contaminants in water , 2018, Journal of Molecular Liquids.
[42] A. Basheer. Chemical chiral pollution: Impact on the society and science and need of the regulations in the 21st century. , 2018, Chirality.
[43] Xin Fu,et al. Deriving suitability factors for CA-Markov land use simulation model based on local historical data. , 2018, Journal of environmental management.
[44] Jiapeng Huang,et al. Sustainable Development of Green Paper Packaging , 2017 .
[45] George B. Arhonditsis,et al. A Bayesian approach for estimating phosphorus export and delivery rates with the SPAtially Referenced Regression On Watershed attributes (SPARROW) model , 2017, Ecol. Informatics.
[46] Stephen R Carpenter,et al. Reducing Phosphorus to Curb Lake Eutrophication is a Success. , 2016, Environmental science & technology.
[47] Junfeng Gao,et al. How can we reduce phosphorus export from lowland polders? Implications from a sensitivity analysis of a coupled model. , 2016, The Science of the total environment.
[48] Junfeng Gao,et al. A Phosphorus Dynamic model for lowland Polder systems (PDP) , 2016 .
[49] Qin Huang,et al. The influence of watershed subdivision level on model assessment and identification of non-point source priority management areas , 2016 .
[50] Guonian Lv,et al. Watershed delineation using hydrographic features and a DEM in plain river network region , 2016 .
[51] L. V. Beek,et al. Coupling global models for hydrology and nutrient loading to simulate nitrogen and phosphorus retention in surface water – description of IMAGE–GNM and analysis of performance , 2015 .
[52] J. Elser,et al. Long-term accumulation and transport of anthropogenic phosphorus in three river basins , 2015 .
[53] Chuan Luo,et al. Assessment of the AnnAGNPS model in simulating runoff and nutrients in a typical small watershed in the Taihu Lake basin, China , 2015 .
[54] Naresh Pai,et al. Hydrologic and Water Quality Models: Performance Measures and Evaluation Criteria , 2015 .
[55] Lei Chen,et al. Development of an integrated modeling approach for identifying multilevel non‐point‐source priority management areas at the watershed scale , 2014 .
[56] K. Cho,et al. Evaluating causes of trends in long-term dissolved reactive phosphorus loads to Lake Erie. , 2012, Environmental science & technology.
[57] I. Ali,et al. Chiral Analysis of Ibuprofen Residues in Water and Sediment , 2009 .
[58] Tomislav Hengl,et al. Finding the right pixel size , 2006, Comput. Geosci..
[59] Gordon H. Huang,et al. An evaluation of grid size uncertainty in empirical soil loss modeling with digital elevation models , 2005 .
[60] Penny J Johnes,et al. Evaluation and management of the impact of land use change on the nitrogen and phosphorus load delivered to surface waters: the export coefficient modelling approach , 1996 .
[61] P. Dillon,et al. The effects of geology and land use on the export of phosphorus from watersheds , 1975 .