Coastal Ecosystems in Transition. Группа авторов
Чтение книги онлайн.
Читать онлайн книгу Coastal Ecosystems in Transition - Группа авторов страница 19
26 Eshleman, K.N., Sabo, R.D., & Kline, K.M. (2013). Surface water quality is improving due to declining atmospheric N deposition. Environmental Science and Technology, 47(21), 12193–12200. https://doi:10.1021/es4028748
27 Focazio, M.J., Plummer, L.N., Bohlke, J.K., Busenberg, E., Bachman, L.J., & Powars, D.S. (1997). Preliminary estimates of residence times and apparent ages of ground water in the Chesapeake Bay watershed, and water‐quality data from a survey of springs (Water‐Resources Investigations Report 97‐4225, 75 pp.). Richmond, VA: US Geological Survey.
28 Forber, K.J., Withers, P.J.A., Ockenden, M.C., & Haygarth, P.M. (2018). The phosphorus transfer continuum: A framework for exploring effects of climate change. Agricultural and Environmental Letters, 3(1). https://doi:10.2134/ael2018.06.0036
29 Frantar, P. (2007). Geographical overview of water balance of Slovenia 1971–2000 by main river basins. Acta Geographica Slovenica, 47, 25–45.
30 Frignani, M., Langone, L., Ravaioli, M., Sorgente, D., Alvisi, F., & Albertazzi, S. (2005). Fine‐sediment mass balance in the western Adriatic continental shelf over a century time scale. Marine Geology, 222–223, 113–133. https://doi:10.1016/j.margeo.2005.06.016
31 Gellis, A.C., Hupp, C.R., Pavich, M.J., Landwehr, J.M., Banks, W.S.L., Hubbard, B. E., et al. (2008). Sources, transport, and storage of sediment at selected sites in the Chesapeake Bay Watershed (Scientific Investigations Report 2008‐5186, 95 pp.). Reston, VA: US Geological Survey.
32 Giani, M., Djakovac, T., Degobbis, D., Cozzi, S., Solidoro, C., & Umani, S.F. (2012). Recent changes in the marine ecosystems of the northern Adriatic Sea. Estuarine, Coastal and Shelf Science, 115, 1–13. https://doi:10.1016/j.ecss.2012.08.023
33 Glennie, E.B., Littlejohn, C., Gendebien, A., Hayes, A., Palfrey, R. Sivil, D., & Wright, K. (2002). Phosphates and alternative detergent builders—final report (UC4011, 172 pp.). EU Environment Directorate.
34 Hagy, J.D., Boynton, W.R., Keefe, C.W., & Wood, K.V. (2004). Hypoxia in Chesapeake Bay, 1950–2001: Long‐term change in relation to nutrient loading and river flow. Estuaries, 27(4), 634–658. https://doi:10.1007/bf02907650
35 Hirsch, R.M. (2012). Flux of nitrogen, phosphorus, and suspended sediment from the Susquehanna river basin to the Chesapeake Bay during Tropical Storm Lee, September 2011, as an indicator of the effects of reservoir sedimentation on water quality (Scientific Investigations Report 2012‐5185, 17 pp.). Reston, VA: US Geological Survey.
36 Hirsch, R.M., Moyer, D.L., & Archfield, S.A. (2010). Weighted Regressions on Time, Discharge, and Season (WRTDS), with an application to Chesapeake Bay River inputs. Journal of the American Water Resources Association, 46(5), 857–880. https://doi:10.1111/j.1752‐1688.2010.00482.x
37 Hoffmann, C.C., Kjaergaard, C., Uusi‐Kamppa, J., Hansen, H.C., & Kronvang, B. (2009). Phosphorus retention in riparian buffers: Review of their efficiency. Journal of Environmental Quality, 38(5), 1942–1955. https://doi:10.2134/jeq2008.0087
38 House, W.A. (2003). Geochemical cycling of phosphorus in rivers. Applied Geochemistry, 18(5), 739–748. https://doi:10.1016/s0883‐2927(02)00158‐0
39 Jarvie, H.P., Sharpley, A.N., Spears, B., Buda, A.R., May, L., & Kleinman, P.J. (2013). Water quality remediation faces unprecedented challenges from “legacy phosphorus.” Environmental Science and Technology, 47(16), 8997–8998. https://doi:10.1021/es403160a
40 Kemp, W.M., Boynton, W.R., Adolf, J.E., Boesch, D.F., Boicourt, W.C., Brush, G., et al. (2005). Eutrophication of Chesapeake Bay: Historical trends and ecological interactions. Marine Ecology Progress Series, 303, 1–29. https://doi:10.3354/meps303001
41 Kemp, W.M., Testa, J.M. Conley, D.J., Gilbert, D., & Hagy, J.D. (2009). Temporal responses of coastal hypoxia to nutrient loading and physical controls. Biogeosciences, 6(12), 2985–3008. https://doi:10.5194/bg‐6‐2985‐2009
42 Langland, M.J. (2015). Sediment transport and capacity change in three reservoirs, Lower Susquehanna River Basin, Pennsylvania and Maryland, 1900–2012 (Open‐File Report 2014–1235, 18 pp.). Reston, VA: US Geological Survey.
43 Langland, M.J., & Hainly, R.A. (1997). Changes in bottom‐surface elevations in three reservoirs on the lower Susquehanna River, Pennsylvania and Maryland, following the January 1996 flood—implications for nutrient and sediment loads to Chesapeake Bay (34 pp.). Lemoyne, PA: US Geological Survey.
44 Linker, L.C., Batiuk, R.A., Shenk, G.W., & Cerco, C.F. (2013). Development of the Chesapeake Bay Watershed Total Maximum Daily Load allocation. Journal of the American Water Resources Association, 49(5), 986–1006. https://doi:10.1111/jawr.12105
45 Linker, L.C., Dennis, R., Shenk, G.W., Batiuk, R.A., Grimm, J., & Wang, P. (2013). Computing atmospheric nutrient loads to the Chesapeake Bay watershed and tidal waters. Journal of the American Water Resources Association, 49(5), 1025–1041. https://doi:10.1111/jawr.12112
46 Litke, D.W. (1999). Review of phosphorus control measures in the United States and their effects on water quality (43 pp.). Denver, CO: US Geological Survey.
47 Marchetti, R., A. Provini, & G. Crosa (1989). Nutrient load carried by the River Po into the Adriatic Sea, 1968–1987. Marine Pollution Bulletin, 20(4), 168–172. https://doi:10.1016/0025‐326x(89)90487‐6.
48 Marchina, C., Bianchini, G., Natali, C., Pennisi, M., Colombani, N., Tassinari, R., & Knoeller, K. (2015). The Po river water from the Alps to the Adriatic Sea (Italy): New insights from geochemical and isotopic (δ18D–δD) data. Environmental Science and Pollution Research International, 22(7), 5184–5203. https://doi:10.1007/s11356‐014‐3750‐6
49 Meier, H.E.M., Eilola, K., Almroth‐Rosell, E., Schimanke, S., Kniebusch, M., Höglund, A., et al. (2018). Disentangling the impact of nutrient load and climate changes on Baltic Sea hypoxia and eutrophication since 1850. Climate Dynamics, 53(1–2), 1145–1166. https://doi:10.1007/s00382‐018‐4296‐y
50 Milly, P.C., Dunne, K.A., & Vecchia, A.V. (2005). Global pattern of trends in streamflow and water availability in a changing climate. Nature, 438(7066), 347–350. https://doi:10.1038/nature04312
51 Moyer, D.L., Hirsch, R.M., & Hyer, K.E. (2012). Comparison of two regression‐based approaches for determining nutrient and sediment fluxes and trends in the Chesapeake Bay