Assessment of Phosphorus Buffering Capacity of Drainage Canal Sediments in Paddy-Field Districts
Author:
Affiliation:
1. Graduate School of Science and Technology, Kumamoto University, Japan
2. Ministry of Agriculture, Forestry and Fisheries, Japan
3. Graduate School of Agriculture, Kyoto University, China
Publisher
Japan Society on Water Environment
Subject
Health, Toxicology and Mutagenesis,Pollution,Waste Management and Disposal,Water Science and Technology,Ecological Modeling,Environmental Engineering
Link
https://www.jstage.jst.go.jp/article/jwet/13/1/13_63/_pdf
Reference27 articles.
1. Barlow K., Fenton J., Nash D. and Grayson R. (2006) Modelling phosphorus transport in a surface irrigation drain. Adv. Water Resour., 29, 1383-1398.
2. Bström B., Andersen J. M., Fleischer S. and Jansson M. (1988) Exchange of phosphorus across the sediment-water interface. Hydrobiologia, 170(1), 229-244.
3. Froelich P. N. (1988) Kinetic control of dissolved phosphate is natural rivers and estuaries: A primer on the phosphate buffer mechanism. Limnol. Oceanogr., 33, 649-668.
4. Haggard B. E., Smith D. R. and Brye K. R. (2007) Variations in stream water and sediment phosphorus among select Ozark Catchments. J. Environ. Qual., 36, 1725-1734.
5. Hama T., Aoki T., Osuga K., Sugiyama S. and Iwasaki D. (2013) Reducing the phosphorus effluent load from a paddy-field district through cyclic irrigation. Ecol. Eng., 54, 107-115.
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1. Phosphorus sorption kinetics and sorption capacity in agricultural drainage ditch sediments in reclaimed land, Kasaoka Bay, Japan;Water Quality Research Journal;2016-07-20
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