Coastal Ecosystems in Transition. Группа авторов

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      54 New York State Department of Environmental Conservation (2007). New York State tributary strategy for Chesapeake Bay restoration.

      55 Palmeri, L., Bendoricchio, G., & Artioli, Y. (2005). Modelling nutrient emissions from river systems and loads to the coastal zone: Po River case study, Italy. Ecological Modelling, 184(1), 37–53. https://doi:10.1016/j.ecolmodel.2004.11.007

      56 Pennsylvania Department of Environmental Protection (2004). Pennsylvania's Chesapeake Bay tributary strategy.

      57 Pizzuto, J., Schenk, E.R., Hupp, C.R., Gellis, A., Noe, G., Williamson, E., et al. (2014). Characteristic length scales and time‐averaged transport velocities of suspended sediment in the mid‐Atlantic Region, USA. Water Resources Research, 50(2), 790–805. https://doi:10.1002/2013wr014485

      58 Rankinen, K., Keinänen, H., & Cano Bernal, J. E. (2016). Influence of climate and land use changes on nutrient fluxes from Finnish rivers to the Baltic Sea. Agriculture, Ecosystems and Environment, 216, 100–115. https://doi:10.1016/j.agee.2015.09.010

      59 Rice, K.C., & Jastram, J.D. (2014). Rising air and stream‐water temperatures in Chesapeake Bay region, USA. Climate Change, 128(1–2), 127–138. https://doi:10.1007/s10584‐014‐1295‐9

      60 Rice, K.C., Moyer, D.L., & Mills, A.L. (2017). Riverine discharges to Chesapeake Bay: Analysis of long‐term (1927–2014) records and implications for future flows in the Chesapeake Bay basin. Journal of Environmental Management, 204(Pt 1), 246–254. https://doi:10.1016/j.jenvman.2017.08.057

      61 Rinaldi, A. (2014). Fioriture algali in Adriatico. Il bacino padano‐adriatico tra sviluppo e scienza. Brossura cucita.

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      63 Sanford, W.E., & Pope, J.P. (2013). Quantifying groundwater's role in delaying improvements to Chesapeake Bay water quality. Environmental Science and Technology, 47(23), 13330–13338. https://doi:10.1021/es401334k

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      65 Seagle, S.W., Pagnotta, R., & Cross, F.A. (1999). The Chesapeake Bay and Northern Adriatic Sea drainage basins: Land‐cover and nutrient export. In T.C. Malone, A. Malej, L.W. Harding Jr., N. Smodlaka, R.E. Turner (Eds.), Ecosystems at the land‐sea margin: Drainage basin to coastal sea (Coastal and Estuarine Studies, Vol. 55, pp. 7–27). Washington, DC: American Geophysical Union.

      66 Sekulić, B., Martinis, M. & Nađ, K. (2004). Estimate of sea loading by pollutants originating from the littoral counties in the Republic of Croatia. Chemistry and Ecology, 20(6), 437–447. https://doi:10.1080/02757540412331304199

      67 Sharpley, A., Jarvie, H.P., Buda, A., May, L., Spears, B., & Kleinman, P. (2013). Phosphorus legacy: Overcoming the effects of past management practices to mitigate future water quality impairment. Journal of Environmental Quality, 42(5), 1308–1326. https://doi:10.2134/jeq2013.03.0098

      68 Shenk, G.W., & Linker, L.C. (2013). Development and application of the 2010 Chesapeake Bay Watershed Total Maximum Daily Load Model. Journal of the American Water Resources Association, 49(5), 1042–1056. https://doi:10.1111/jawr.12109

      69 Shields, C.A., Band, L.E., Law, N., Groffman, P.M., Kaushal, S.S., Savvas, K., et al. (2008). Streamflow distribution of non‐point source nitrogen export from urban‐rural catchments in the Chesapeake Bay watershed. Water Resources Research, 44(9). https://doi:10.1029/2007wr006360

      70 Sinha, E., Michalak, A.M., & Balaji, V. (2017). Eutrophication will increase during the 21st century as a result of precipitation changes. Science, 357(6349), 405–408. https://doi:10.1126/science.aan2409

      71 Stachowitsch, M. (2014). Preface “Coastal hypoxia and anoxia: a multi‐tiered holistic approach.” Biogeosciences, 11(8), 2281–2285. https://doi:10.5194/bg‐11‐2281‐2014

      72 Teodosiu, C., Barjoveanu, G., & Teleman, D. (2003). Sustainable water resources management 1. River basin management and the EC Water Framework Directive. Environmental Engineering and Management Journal, 2(4), 377–394.

      73 Tesi, T., Miserocchi, S., Acri, F., Langone, L., Boldrin, A., Hatten, J.A. & Albertazzi, S. (2013). Flood‐driven transport of sediment, particulate organic matter, and nutrients from the Po River watershed to the Mediterranean Sea. Journal of Hydrology, 498, 144–152. https://doi:10.1016/j.jhydrol.2013.06.001

      74 Testa, J.M., Li, Y., Lee, Y.J., Li, M., Brady, D.C, Di Toro, D.M., et al. (2014). Quantifying the effects of nutrient loading on dissolved O2 cycling and hypoxia in Chesapeake Bay using a coupled hydrodynamic–biogeochemical model. Journal of Marine Systems, 139, 139–158. https://doi:10.1016/j.jmarsys.2014.05.018

      75  Testa, J.M., Lyubchich, V., & Zhang, Q. (2019). Patterns and trends in Secchi disk depth over three decades in the Chesapeake Bay estuarine complex. Estuaries and Coasts, 42(4), 927–943. https://doi:10.1007/s12237‐019‐00547‐9

      76 The EU.WATER Project (2010). Transnational integrated management of water resources in agriculture for European water emergency control (47 pp.).

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