New coefficient for water quality modelling in meandering rivers: Fatigue factor
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[1] A. Dinar,et al. Decision Support Tools for Water Quality Management , 2022, Water.
[2] Badronnisa Yusuf,et al. Morphological Assessment of River Stability: Review of the Most Influential Parameters , 2022, Sustainability.
[3] Ziwei Li,et al. Review and outlook of river morphology expression , 2022, Journal of Water and Climate Change.
[4] Min Fan,et al. Spatial characteristics of vegetation habitat suitability and mountainous settlements and their quantitative relationships in upstream of Min River, southwestern of China , 2021, Ecol. Informatics.
[5] Mohamed A. Hamouda,et al. Uncertainty quantification of granular computing-neural network model for prediction of pollutant longitudinal dispersion coefficient in aquatic streams , 2021, Scientific Reports.
[6] Qian Li,et al. Evaluation of the impact of urban river bends on the enhancement of aquatic habitats using a two-dimensional habitat suitability model , 2021, Ecol. Informatics.
[7] Mohammad Najafzadeh,et al. A comprehensive uncertainty analysis of model-estimated longitudinal and lateral dispersion coefficients in open channels , 2021 .
[8] Rabin Bhattarai,et al. Reliability of functional forms for calculation of longitudinal dispersion coefficient in rivers. , 2021, The Science of the total environment.
[9] M. Azhdary Moghaddam,et al. Reservoir quality management with CE-QUAL-W2/ANN surrogate model and PSO algorithm (case study: Pishin Dam, Iran) , 2021, Arabian Journal of Geosciences.
[10] Sakshi Khullar,et al. Machine learning techniques in river water quality modelling: a research travelogue , 2020 .
[11] Arunandan Kumar,et al. Estimation of Risk to the Eco-Environment and Human Health of Using Heavy Metals in the Uttarakhand Himalaya, India , 2020, Applied Sciences.
[12] Renald Blundell,et al. Heavy metal pollution in the environment and their toxicological effects on humans , 2020, Heliyon.
[13] J. Giesy,et al. Analysis of assimilation capacity for conservation of water quality: controllable discharges of pollutants , 2020, Arabian Journal of Geosciences.
[14] S. E. Baradei. Studying the Effect of Channel Geometry on Different Water Quality Variables for Effective Designs and Waste Allocation Plans for Waterways , 2020, Water.
[15] Xia Song,et al. Model Test of the Effect of River Sinuosity on Nitrogen Purification Efficiency , 2020, Water.
[16] Khabat Khosravi,et al. Improving prediction of water quality indices using novel hybrid machine-learning algorithms. , 2020, The Science of the total environment.
[17] Yanwei Zhao,et al. The Influence of Channel Morphological Changes on Environmental Flow Requirements in Urban Rivers , 2019, Water.
[18] R. Noori,et al. Numerical modelling-based comparison of longitudinal dispersion coefficient formulas for solute transport in rivers , 2019, Hydrological Sciences Journal.
[19] Jane E. Davis,et al. Predicting the Benefits of Mine Water Treatment under Varying Hydrological Conditions using a Synoptic Mass Balance Approach. , 2019, Environmental science & technology.
[20] R. Maia,et al. Environmental Flows Under the WFD Implementation , 2018, Water Resources Management.
[21] Jing Chen,et al. Effects of river sinuosity on the self-purification capacity of the Shiwuli River, China , 2018, Water Supply.
[22] K. Williams,et al. Geochemical Exports to River From the Intrameander Hyporheic Zone Under Transient Hydrologic Conditions: East River Mountainous Watershed, Colorado , 2018, Water Resources Research.
[23] John P Giesy,et al. Assessment of tools for protection of quality of water: Uncontrollable discharges of pollutants. , 2018, Ecotoxicology and environmental safety.
[24] O. Franco,et al. Environmental toxic metal contaminants and risk of cardiovascular disease: systematic review and meta-analysis , 2018, British Medical Journal.
[25] Liwen Zhang,et al. Polycyclic aromatic hydrocarbons (PAHs) in an urban river at mid and high latitudes: A case study in Siping, a traditional industrial city in Northeast China , 2018, Journal of environmental science and health. Part A, Toxic/hazardous substances & environmental engineering.
[26] D. Véliz,et al. Heavy Metal Content in Chilean Fish Related to Habitat Use, Tissue Type and River of Origin , 2017, Bulletin of Environmental Contamination and Toxicology.
[27] S. Snyder,et al. Water Quality Planning in Rivers: Assimilative Capacity and Dilution Flow , 2017, Bulletin of Environmental Contamination and Toxicology.
[28] W. Lau,et al. Detection of contaminants in water supply: A review on state-of-the-art monitoring technologies and their applications , 2017, Sensors and Actuators B: Chemical.
[29] Guangtao Fu,et al. Cost-Effective River Water Quality Management using Integrated Real-Time Control Technology. , 2017, Environmental science & technology.
[30] Jan Adamowski,et al. Estimation of the Dispersion Coefficient in Natural Rivers Using a Granular Computing Model , 2017 .
[31] W. Zhuang,et al. Estimating and Predicting Metal Concentration Using Online Turbidity Values and Water Quality Models in Two Rivers of the Taihu Basin, Eastern China , 2016, PloS one.
[32] S. H. Monfared,et al. Evaluation of Appropriate Advective Transport Function for One-Dimensional Pollutant Simulation in Rivers , 2016 .
[33] M. Mazaheri,et al. A comprehensive one-dimensional numerical model for solute transport in rivers , 2015 .
[34] Vassilis Z. Antonopoulos,et al. Dispersion Coefficient Prediction Using Empirical Models and ANNs , 2015, Environmental Processes.
[35] H. Loáiciga,et al. Assimilative Capacity and Flow Dilution for Water Quality Protection in Rivers , 2015 .
[36] C. Rehmann,et al. Analytical Solution of a Model of Contaminant Transport in the Advective Zone of a River , 2014 .
[37] S. H. Hashemi Monfared,et al. A Three-Dimensional, Integrated Seasonal Separate Advection–Diffusion Model (ISSADM) to Predict Water Quality Patterns in the Chahnimeh Reservoir , 2014, Environmental Modeling & Assessment.
[38] Rajeev Ranjan Sahay,et al. Predicting Longitudinal Dispersion Coefficients in Sinuous Rivers by Genetic Algorithm , 2013 .
[39] Miklas Scholz,et al. Review of Ecological Engineering Solutions for Rural Non-Point Source Water Pollution Control in Hubei Province, China , 2013, Water, Air, & Soil Pollution.
[40] I. Seo,et al. Empirical equation for transverse dispersion coefficient based on theoretical background in river bends , 2013, Environmental Fluid Mechanics.
[41] A. Ducharne,et al. Impact of river bed morphology on discharge and water levels simulated by a 1D Saint–Venant hydraulic model at regional scale , 2013 .
[42] Amir Etemad-Shahidi,et al. Predicting Longitudinal Dispersion Coefficient in Natural Streams Using M5′ Model Tree , 2012 .
[43] Hamid Mehdizadeh,et al. A framework development for predicting the longitudinal dispersion coefficient in natural streams using an artificial neural network , 2011 .
[44] M. Kummu,et al. How Close Do We Live to Water? A Global Analysis of Population Distance to Freshwater Bodies , 2011, PloS one.
[45] Ruonan Li,et al. Modelling the riparian vegetation evolution due to flow regulation of Lijiang River by unstructured cellular automata , 2010, Ecol. Informatics.
[46] Andrzej Kraslawski,et al. Development, calibration and evaluation of two mathematical models for pollutant transport in a small river , 2009, Environ. Model. Softw..
[47] S. Marsili-Libelli,et al. Water quality modelling for small river basins , 2008, Environ. Model. Softw..
[48] Gregory A. Lawrence,et al. Dispersion in Varying-Geometry Rivers with Application to Methanol Releases , 2005 .
[49] J. Cho,et al. A river water quality management model for optimising regional wastewater treatment using a genetic algorithm. , 2004, Journal of environmental management.
[50] Lars Jarup,et al. Hazards of heavy metal contamination. , 2003 .
[51] R. Tharme. A global perspective on environmental flow assessment: emerging trends in the development and application of environmental flow methodologies for rivers , 2003 .
[52] Aaron I. Packman,et al. Application of the transient storage model to analyze advective hyporheic exchange with deep and shallow sediment beds , 2003 .
[53] Vijay P. Singh,et al. Longitudinal dispersion coefficient in single-channel streams , 2002 .
[54] M. Macklin,et al. The chemical and physical speciation of trace metals in fine grained overbank flood sediments in the Tyne basin, north-east England , 1989 .
[55] A. Parsaie,et al. Calculating the Longitudinal Dispersion Coefficient in River, Case Study: Severn River, UK , 2015 .
[56] L. Somly. WATER QUALITY MANAGEMENT: CAN WE IMPROVE INTEGRATION TO FACE FUTURE PROBLEMS? , 2007 .
[57] P. Gillibrand. Improving assimilative capacity modelling for Scottish coastal waters: II. A Model of Physical Exchange for Open Water Sites , 2006 .
[58] Peter A. Vanrolleghem,et al. RIVER WATER QUALITY MODELLING : I . STATE OF THE ART , 1998 .
[59] J. R. Manson,et al. Towards an accurate fate and transport model for nonuniform surface waters , 1997 .