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Anonymous (1973). Standard Methods for Chemical Analysis of Surface Waters. Leningrad: Gidromeoizdat (in Russian).Search in Google Scholar

Apsite, E., Klavins, M. (1998). Assessment of the changes of COD and color in rivers of Latvia during the last twenty years. Environ. Internat., 24(5/6), 637-643.10.1016/S0160-4120(98)00039-7Search in Google Scholar

Arvola, L., Räike, A., Kortelainen, P., Järvinen, M. (2004). The effect of climate and landuse on TOC concentrations and loads in Finnish rivers. Boreal Environ. Res., 9, 381-387.Search in Google Scholar

Clair, T.A., Dennis, I.F., Vet, R., Laudon, H. (2008). Long-term trends in catchment organic carbon and nitrogen exports from three acidified catchments in Nova Scotia, Canada. Biogeochemistry, 87, 83-97.10.1007/s10533-007-9170-7Search in Google Scholar

Clark, J.M., Lane, S.N., Chapman, P.J., Adamson, J.K. (2008). Lind between DOC in near surface peat and stream water in an upland catchment. Sci. Total Environ., 404, 308-315.10.1016/j.scitotenv.2007.11.002Search in Google Scholar

Dawson, J.J.C., Soulsby, C., Tetzlaff, D., Hrachowitz, M., Dunn, S.M., Malcolm, I.A. (2008). Influence of hydrology and seasonality on DOC exports from three upland catchment. Biogeochemistry, 90, 93-113.10.1007/s10533-008-9234-3Search in Google Scholar

Depetris, P.J., Kempe, S. (1993). Carbon dynamics and sources in the Parana River. Limnol. Oceanogr., 38(2), 382-395.10.4319/lo.1993.38.2.0382Search in Google Scholar

Erlandsson, M., Buffam, I., Fölster, J., Laudon, H., Temnerud, J., Weyhenmeyer, G.A., Bishop, K. (2008). Thirty-five years of synchrony in the organic matter concentrations of Swedish rivers explained by variation in flow and sulphate. Global Change Biol., 14, 1-8.10.1111/j.1365-2486.2008.01551.xSearch in Google Scholar

European Environment Agency (2008) Waterbase Rivers http://dataservice.eea.europa.eu/dataservice/metadetails.asp?id=984Search in Google Scholar

Evans, C.D., Monteith, D.T., Cooper, D.M. (2005). Long-term increases in surface water dissolved organic carbon: observations, possible causes and environmental impacts. Environ. Pollut., 137, 55-71.10.1016/j.envpol.2004.12.031Search in Google Scholar

Fenner, N., Freeman, C., Lock, M.A., Harmens, H., Reynolds, B., Sparks, T. (2007). Interactions between elevated CO2 and warming could amplify DOC exports from peatland catchments. Environ. Sci. Technol., 41, 3146-3152.10.1021/es061765vSearch in Google Scholar

Freeman, C., Fenner, N., Ostle, N.J., Kang, H., Dowrick, D.J., Reynolds, B., Lock, M.A., Sleep, D., Hughes, S., Hudson, J. (2004). Export of dissolved organic carbon from peatlands under elevated carbon dioxide levels. Nature, 430, 195-198.10.1038/nature02707Search in Google Scholar

Gergel, S.E., Turner, M.G., Kratz, T.K. (1999). Dissolved organic carbon as an indicator of the scale of watershed influence on lakes and rivers. Ecol. Applicat., 9(4), 1377-1390.10.1890/1051-0761(1999)009[1377:DOCAAI]2.0.CO;2Search in Google Scholar

Hagedorn, F., Machwitz, M. (2007). Controls of dissolved organic matter leaching from forest litter grown under elevated atmospheric CO2. Soil Biol. Biochem., 39, 1759-1769.10.1016/j.soilbio.2007.01.038Search in Google Scholar

Hejzlar, J., Dubrovsky, M., Buchtele, J., Ružička, M. (2003). The apparent and potential effects of climate change on the inferred concentration of dissolved organic matter in a temperate stream (the Mališe River, South Bohemia). Sci. Total Environ., 310, 143-152.10.1016/S0048-9697(02)00634-4Search in Google Scholar

Hirsh, R.M., Slack, J.R. (1984). A nonparametric trend test for seasonal data with serial dependence. Water Resources Res., 20, 727-732.10.1029/WR020i006p00727Search in Google Scholar

Hirsh, R.M., Slack, J.R., Smith, R.A. (1982). Techniques of trend analysis for monthly water quality data. Water Resources Res., 18(1), 107-121.10.1029/WR018i001p00107Search in Google Scholar

Hongve, D., Riise, G., Kristiansen, J.F. (2004). Increased colour and organic acid concentrations in Norwegian forest lakes and drinking water — a result of increased precipitation? Aq. Sci., 66, 231-238.Search in Google Scholar

Jaagus, J., Briede, A., Rimkus, E., Remm, K. Precipitation pattern in the Baltic countries under the influence of large-scale atmospheric circulation and local landscape factors. Int. J. Climatol. (in press).Search in Google Scholar

Jager, D.F., Wilmking, M., Kukkonen, J.V.K. (2009). The influence of summer seasonal extremes on dissolved organic carbon export from a boreal peatland catchment: Evidence from one dry and one wet growing season. Sci. Total Environ., 407, 1373-1382.10.1016/j.scitotenv.2008.10.00518977515Search in Google Scholar

Klavins, M., Rodinov, V. (2008). Long-term changes of river discharge regime in Latvia. Hydrol. Res., 39(2), 133-141.10.2166/nh.2008.033Search in Google Scholar

Klavins, M., Rodinovs, V., Kokorite, I. (2002). Chemistry of Surface Waters in Latvia. Rīga: LU. 285 pp.Search in Google Scholar

Libiseller, C., Grimvall, A. (2002). Performance of partial Mann-Kendall tests for trend detection in the presence of covariates. Environmetrics, 13, 71-84.10.1002/env.507Search in Google Scholar

Mattsson, T., Kortelainen, P., Räike, A. (2005). Export of DOM from boreal catchments: Impacts of land use cover and climate. Biogeochemistry, 76, 373-394.10.1007/s10533-005-6897-xSearch in Google Scholar

Pettine, M., Patrolecco, L., Camusso, M., Crescenzio, S. (1998). Transport of carbon and nitrogen to the Northern Adriatic Sea by the Po River. Estuar. Coastal Shelf Sci., 46, 127-142.10.1006/ecss.1997.0303Search in Google Scholar

Reihan, A., Koltsova, T., Kriauciuniene, J., Lizuma, L., Meilutyte-Barauskiene, D. (2007). Changes in water discharges of the Baltic states rivers in the 20th century and its relation to climate change. Nordic Hydrol., 38(4/5), 401-412.10.2166/nh.2007.020Search in Google Scholar

Roulet, N., Moore, T.R. (2006). Browning the waters. Nature, 414(7117), 283-284.Search in Google Scholar

Terauda, E., Nikodemus, O. (2007). Sulphate and nitrate in precipitation and soil water in pine forests in Latvia. Water, Air Soil Pollut. Focus, 7, 77-84.10.1007/s11267-006-9066-xSearch in Google Scholar

Vuorenmaa, J., Forsius, M., Mannio, J. (2006). Increasing trends of total organic carbon concentrations in small forest lakes in Finland from 1987 to 2003. Sci. Total Environ., 365, 47-65.10.1016/j.scitotenv.2006.02.038Search in Google Scholar

Westerhoff, P., Anning, D. (2000). Concentrations and characteristics of organic carbon in surface water in Arizona: Influence of urbanization. J. Hydrol., 236, 202-222.10.1016/S0022-1694(00)00292-4Search in Google Scholar

Worrall, F., Burt, T., Shedden, R. (2003). Long term records of riverine dissolved organic matter. Biogeochemistry, 64, 165-178.10.1023/A:1024924216148Search in Google Scholar

Worrall, F., Burt, T.P. (2007). Trends in DOC concentration in Great Britain. J. Hydrol., 346, 81-92.10.1016/j.jhydrol.2007.08.021Search in Google Scholar

Xiang, W., Freeman, C. (2009). Annual variation of temperature sensitivity of soil organic carbon decomposition in North peatlands: Implications for thermal responses of carbon cycling to global warming. Environ. Geol., 58, 499-508.10.1007/s00254-008-1523-6Search in Google Scholar

Yallop, A.R., Clutterbuck, B. (2009). Land management as a factor controlling dissolved organic carbon release from upland peat soils 1: Spatial variation in DOC productivity. Sci. Total Environ., 407, 3803-3813.10.1016/j.scitotenv.2009.03.01219345986Search in Google Scholar

ISSN:
1407-009X
Lingua:
Inglese
Frequenza di pubblicazione:
6 volte all'anno
Argomenti della rivista:
General Interest, Mathematics, General Mathematics