Cite

Adrian, R. at al., 2009. Lakes as sentinels of climate change. Limnol. Oceanogr. Nov., 54, 6, 2283–2297. https://aslopubs.onlinelibrary.wiley.com/doi/abs/10.4319/lo.2009.54.6_part_2.228310.4319/lo.2009.54.6_part_2.2283285482620396409 Search in Google Scholar

Austin, J.A., Colman, S.M., 2007. Lake Superior summer water temperatures are increasing more rapidly than regional water temperature: A positive ice-albedo feed-back. Geophysical Research Letters, 34, 1–5. https://agupubs.onlinelibrary.wiley.com/doi/full/10.1029/2006GL02902110.1029/2006GL029021 Search in Google Scholar

Barsi, J.A., Schott, J.R., Hook, S.J. et al, 2014. Landsat-8 Thermal Infrared Sensor (TIRS) vicarious radiometric calibration. Remote Sens., 6, 11607–11626. https://www.mdpi.com/2072-4292/6/11/1160710.3390/rs61111607 Search in Google Scholar

Cheng, Y., Voisin, N., Yearsley, J.R., Nijssen, B., 2020. Reservoirs modify river thermal regime sensitivity to climate change: A case study in the Southeastern United States. Water Resources Research, 56, 6, 1–18. https://doi.org/10.1029/2019WR02578410.1029/2019WR025784 Search in Google Scholar

Czernecki, B., Ptak, M., 2018. The impact of global warming on lake surface water temperature in Poland – the application of empirical-statistical downscaling, 1971–2100. Journal of Limnology, 77, 2, 340–348. https://jlimnol.it/index.php/jlimnol/article/view/jlimnol.2018.1707/141710.4081/jlimnol.2018.1707 Search in Google Scholar

Efremova, T.V., Palshin, N.I., Belashov, B.Z., 2016. Water temperature in different types of lakes in Karelia under changing climate based on data of instrumental measurements in 1953–2011. Water Resourses, 43, 402–411. https://link.springer.com/article/10.1134/S009780781602002010.1134/S0097807816020020 Search in Google Scholar

Filatov, N.N. et al., 2014. Climate change impact on the ecosystem of north of European Russia. Scientific Researches of Russian State Hydrometeorological University, No 34, 48–55. (In Russian.) Search in Google Scholar

Kopylov, A.I., Lazareva, V.I., Mineeva, N.M. et al., 2012. Influence of anomalous high water temperatures on the development of the plankton community in the Middle Volga Reservoirs in summer 2010. Doklady Biological Sciences, 442, 11–13. https://www.researchgate.net/profile/Valentina-Lazareva/publication/221715635_Influence_of_anomalous_high_water_temperatures_on_the_development_of_the_plankton_community_in_the_Middle_Volga_reservoirs_in_summer_2010/links/541176b90cf264cee28b35fe/Influence-of-anomalous-high-water-temperatures-on-the-development-of-the-plankton-community-in-the-Middle-Volga-reservoirs-in-summer-2010.pdf10.1134/S001249661201001222427213 Search in Google Scholar

Lieberherr, G., Wunderle, S., 2018. Lake surface water temperature derived from 35 years of AVHRR Sensor Data for European lakes. Remote Sens., 10, 7, 990, 1–25. https://www.mdpi.com/2072-4292/10/7/99010.3390/rs10070990 Search in Google Scholar

Litvinov, A.S., Zakonnova, A.V., 2012. Thermal regime in the Rybinsk Reservoir under global warming. Russian Meteorology and Hydrology, No 9, 640–644. https://link.springer.com/article/10.3103/S106837391209008710.3103/S1068373912090087 Search in Google Scholar

Marszelewski, W., Pius, B., 2016. Long-term changes in temperature of river waters in the transitional zone of the temperate climate: A case study of Polish rivers. Hydrol. Sci. J., 61, 1430–1442. https://www.tandfonline.com/doi/full/10.1080/02626667.2015.104080010.1080/02626667.2015.1040800 Search in Google Scholar

Meilutyte-Barauskiene, D., Kovalenkoviene, M., Sarauskiene, D., 2005. The impact of runoff regulation on the thermal regime of the Nemunas. Environmental Research, Engineering and Management, 4, 34, 43–50. https://www.researchgate.net/profile/Diana-Meilutyte-Lukauskiene/publication/266340509_The_Impact_of_Runoff_Regulation_on_the_Thermal_Regime_of_the_Nemunas/links/54dc540b0cf2a7769d95c521/The-Impact-of-Runoff-Regulation-on-the-Thermal-Regime-of-the-Nemunas.pdf Search in Google Scholar

Nowak, B.M., Ptak, M., Stanek, P., 2020. Influence of a lake on river water thermal regime: a case study of Lake Sławianowskie and the Kocunia River (Pomeranian Lakeland, Northern Poland). Meteorology, Hydrology and Water Management, 8, 1, 78–83. http://yadda.icm.edu.pl/yadda/element/bwmeta1.element.baztech-252376b0-d887-4b2c-be93-18b2b18d5930 Search in Google Scholar

Pareeth, S. et al., 2017. Warming trends of perialpine lakes from homogenised time series of historical satellite and in-situ data. Science of the Total Environment, 578, 417–426. https://www.sciencedirect.com/science/article/abs/pii/S004896971632390710.1016/j.scitotenv.2016.10.19927839756 Search in Google Scholar

Ptak, M., Sojka, M., Choinski, A., Nowak, B., 2018. Effect of environmental conditions and morphometric parameters on surface water temperature in Polish lakes. Water, 10, 580, 1–19. https://www.mdpi.com/2073-4441/10/5/58010.3390/w10050580 Search in Google Scholar

Ptak, M., Sojka, M., Nowak, B., 2020. Effect of climate warming on a change in thermal and ice conditions in the largest lake in Poland – Lake Sniardwy. J. Hydrol. Hydromech., 68, 3, 260–270. http://www.uh.sav.sk/Portals/16/vc_articles/2020_68_3_Ptak_260.pdf10.2478/johh-2020-0024 Search in Google Scholar

Schaeffer, B.A., Iiames, J., Dwyer, J. et al., 2018. An initial validation of Landsat 5 and 7 derived surface water temperature for U.S. lakes, reservoirs, and estuaries. International Journal of Remote Sensing, 39, 7789–7805. https://www.tandfonline.com/doi/full/10.1080/01431161.2018.147154510.1080/01431161.2018.1471545 Search in Google Scholar

Sharaf, N. et al., 2019. Lake surface temperature retrieval from Landsat-8 and retrospective analysis in Karaoun Reservoir, Lebanon. Journal of Applied Remote Sensing, 13, 4, 1–14. https://www.spiedigitallibrary.org/journals/journal-of-applied-remote-sensing/volume-13/issue-4/044505/Lake-surface-temperature-retrieval-from-Landsat-8-and-retrospective-analysis/10.1117/1.JRS.13.044505.full?SSO=110.1117/1.JRS.13.044505 Search in Google Scholar

Strutynska, V.M., Grebin, V.V., 2010. Thermal and ice regime of the Dnipro River basin rivers from the second half of the twentieth century. Kyiv: Nika-Center, 196 p. (In Ukrainian.) Search in Google Scholar

Vyshnevsky, V.I., 2020a. Hydrological and hydrochemical regime of the Dnieper Reservoirs. Hydrobiological Journal, 56, 4, 103–120, http://www.dl.begellhouse.com/journals/38cb2223012b73f2,4923ebe16bbd8a7a,7cc30384093cba4a.html10.1615/HydrobJ.v56.i4.80 Search in Google Scholar

Vyshnevskyi, V.I., 2020b. Temperature and ice regimes of waterbodies under the impacts of global warming and a hydropower plant. Meteorology, Hydrology and Water Management, 2, 38–45. http://yadda.icm.edu.pl/baztech/element/bwmeta1.element.baztech-6f5b27a9-21a6-4b05-935d-539386181f99 Search in Google Scholar

Vyshnevskyi, V.I., Shevchuk, S.A., 2018. Use of remote sensing data for study of water bodies of Ukraine. Kyiv: Inter-pres LTD, 84 p. (In Ukrainian.) Search in Google Scholar

Vyshnevskyi, V.I., Shevchuk, S.A., 2020. Use of remote sensing data to study ice cover in the Dnipro Reservoirs. Journal of Geology, Geography and Geoecology, 29, 1, 206–216, https://geology-dnu.dp.ua/index.php/GG/article/view/67710.15421/112019 Search in Google Scholar

Wang, Y., Zhang, N., Wang, D., Wu, J., 2020. Impacts of cascade reservoirs on Yangtze River water temperature: Assessment and ecological implications. Journal of Hydrology, 590, 1–10. http://hpkx.cnjournals.com/uploadfile/news_images/hpkx/2020-08-20/1-s2.0-S0022169420307009-main.pdf Search in Google Scholar

Woolway, R.I., Dokulil, M.T., Marszelewski, W. et al., 2017. Warming of Central European lakes and their response to the 1980s climatic regime shift. Climate Change, 141, 759–773. https://link.springer.com/content/pdf/10.1007/s10584-017-1966-4.pdf10.1007/s10584-017-1966-4 Search in Google Scholar

Zhao, J., Li, H., Cai, X. et al., 2020. Long-term (2002–2017) impacts of Danjiangkou dam on thermal regimes of downstream Han River (China) using Landsat thermal infrared imagery. Journal of Hydrology, 589, 125135. https://www.sciencedirect.com/science/article/abs/pii/S002216942030595310.1016/j.jhydrol.2020.125135 Search in Google Scholar

eISSN:
1338-4333
Idioma:
Inglés
Calendario de la edición:
4 veces al año
Temas de la revista:
Engineering, Introductions and Overviews, other