Nutrient export from Finnish rivers into the Baltic Sea has not decreased despite water protection measures
Author:
Publisher
Springer Science and Business Media LLC
Subject
Ecology,Environmental Chemistry,Geography, Planning and Development,General Medicine
Link
http://link.springer.com/content/pdf/10.1007/s13280-019-01217-7.pdf
Reference47 articles.
1. Basu, N.B., G. Destouni, J.W. Jawitz, S.E. Thompson, N.V. Loukinova, A. Darracq, S. Zanardo, M. Yaeger, et al. 2010. Nutrient loads exported from managed catchments reveal emergent biogeochemical stationarity. Geophysical Research Letters 37: L23404. https://doi.org/10.1029/2010gl045168 .
2. Beusen, A.H.W., A.F. Bouwman, L.P.H. Van Beek, J.M. Mogollón, and J.J. Middelburg. 2016. Global riverine N and P transport to ocean increased during the 20th century despite increased retention along the aquatic continuum. Biogeosciences 13: 2441–2451. https://doi.org/10.5194/bg-13-2441-2016 .
3. Ekholm, P., K. Rankinen, H. Rita, A. Räike, H. Sjöblom, A. Raateland, L. Vesikko, J.E. Cano Bernal, et al. 2015. Phosphorus and nitrogen fluxes carried by 21 Finnish agricultural rivers in 1985–2006. Environmental Monitoring and Assessment. https://doi.org/10.1007/s10661-015-4417-6 .
4. Granlund, K., A. Räike, P. Ekholm, K. Rankinen, and S. Rekolainen. 2005. Assessment of water protection targets for agricultural nutrient loading in Finland. Journal of Hydrology 304: 251–260. https://doi.org/10.1016/j.jhydrol.2004.07.033 .
5. Grimvall, A. 2004. FLOWNORM 2.0—A Visual Basic program for computing riverine loads of substances and extracting anthropogenic signals from time series of load data. User’s Manual.
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