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Effect of climate warming on a change in thermal and ice conditions in the largest lake in Poland – Lake Śniardwy Cover

Effect of climate warming on a change in thermal and ice conditions in the largest lake in Poland – Lake Śniardwy

Open Access
|Aug 2020

References

  1. Austin, J., Colman, S., 2008. A century of temperature variability in Lake Superior. Limnol. Oceanogr., 53, 6, 2724–2730. https://doi.org/10.4319/lo.2008.53.6.272410.4319/lo.2008.53.6.2724
  2. Aydin, H., Karakuş, H., 2016. Estimation of evaporation for Lake Van. Environ. Earth Sci., 75, 18, Article number 1275. DOI: 10.1007/s12665-016-6077-410.1007/s12665-016-6077-4
  3. Balayla, D., Lauridsen, T.L., Søndergaard, M., Jeppesen, E., 2010. Larger zooplankton in Danish lakes after cold winters: are winter fish kills of importance? Hydrobiologia, 646, 159–172. DOI: 10.1007/s10750-010-0164-410.1007/s10750-010-0164-4
  4. Bonacci, O., Trninić, D., Roje-Bonacci, T., 2008. Analysis of the water temperature regime of the Danube and its tributaries in Croatia. Hydrological Processes, 22, 7, 1014–1021. https://doi.org/10.1002/hyp.6975.10.1002/hyp.6975
  5. Bukowska, A., Kaliński, T., Koper, M., Kostrzewska-Szlakowska, I., Kwiatowski, J., Mazur-Marzec, H., Jasser, I., 2017. Predicting blooms of toxic cyanobacteria in eutrophic lakes with diverse cyanobacterial communities. Scientific Reports, 7, 1, Article number 8342. DOI: 10.1038/s41598-017-08701-810.1038/s41598-017-08701-8556642228827675
  6. Choiński, A., Ptak, M., Strzelczak, A., 2015a. Changeability of accumulated heat content in alpine-type lakes. Polish Journal of Environmental Studies, 24, 6, 2363–2369, DOI: 10.15244/pjoes/5887110.15244/pjoes/58871
  7. Choiński, A., Ptak, M., Skowron, R., Strzelczak, A., 2015b. Changes in ice phenology on polish lakes from 1961-2010 related to location and morphometry. Limnologica, 53, 42–49. DOI: 10.1016/j.limno.2015.05.00510.1016/j.limno.2015.05.005
  8. 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. J. Limnol., 77, 2, 330–348. https://doi.org/10.4081/jlimnol.2018.170710.4081/jlimnol.2018.1707
  9. Dąbrowski, M., 2001. Anthropogenic changes in the hydro-graphic system of Great Mazurian, Limnol. Rev., 1, 49–56.
  10. Dąbrowski, M., 2012. The role of Great Masurian Lake System in alimentation of Wisła and Pregoła rivers, anthropogenic and natural transformations of lakes. Wyd. IMGW-PIB, Poznań, 6, 67–75.
  11. Ejsmont-Karabin, J., 2013. An analysis based on rotifer indices of the effects of water and sewage management on water quality in the system of interconnected glacial lakes. Limnol. Rev., 13, 4, 191–195.10.2478/limre-2013-0021
  12. Efremova, T., Palshin, N., Zdorovennov, R., 2013. Long-term characteristics of ice phenology in Karelian lakes. Est. J. Earth Sci., 62, 1, 33–41. DOI: 10.3176/earth.2013.0410.3176/earth.2013.04
  13. Gilbert, R.O., 1987. Statistical Methods for Environmental Pollution Monitoring. Van Nostrand Reinhold Co., New York, USA, 320 p.
  14. Haddout, S., Priya, K.L., Boko, M., 2018. Thermal response of Moroccan lakes to climatic warming: First results. Ann. Limnol. – Int. J. Lim., 54, Article number 2017029. https://doi.org/10.1051/limn/201702910.1051/limn/2017029
  15. Hampton, S.E., Izmest’eva, L.R., Moore, M.V., Katz, S.L., Dennis, B., Silow, E.A., 2008. Sixty years of environmental change in the world’s largest freshwater lake - Lake Baikal, Siberia. Global Change Biol., 14, 8, 1947–1958. https://doi.org/10.1111/j.1365-2486.2008.01616.x10.1111/j.1365-2486.2008.01616.x
  16. Hewitt, B.A., Lopez, L.S., Gaibisels, K.M., Murdoch, A., Higgins, S.N., Magnuson, J.J., Paterson, A.M., Rusak, J.A., Yao, H., Sharma, S., 2018. Historical trends, drivers, and future projections of ice phenology in small north temperate lakes in the Laurentian Great Lakes Region. Water, 10, 1, Article number 70. https://doi.org/10.3390/w1001007010.3390/w10010070
  17. Huang, W., Cheng, B., Zhang, J., Zhang, Z., Vihma, T., Li, Z., Niu, F., 2019. Modeling experiments on seasonal lake ice mass and energy balance in the Qinghai-Tibet Plateau: A case study. Hydrol. Earth Syst. Sci., 23, 4, 2173–2186. https://doi.org/10.5194/hess-23-2173-201910.5194/hess-23-2173-2019
  18. Kendall, M.G., Stuart, A., 1968. The Advanced Theory of Statistics, 3. Charles Griffin Ltd., London, UK.10.2307/2986781
  19. Kiersztyn, B., Kauppinen, E.S., Kaliński, T., Chróst, R., Siuda, W., 2018. Quantitative description of respiration processes in meso-eutrophic and eutrophic freshwater environments. J. Microbiol. Methods, 149, 1–8. DOI: 10.1016/j.mimet.2018.04.01010.1016/j.mimet.2018.04.01029673788
  20. Kintisch, E., 2015. Earth’s lakes are warming faster than its air: First ever global survey reveals summer lake temperatures rising at an alarming rate. Science, 350, 1449. DOI: 10.1126/science.350.6267.144910.1126/science.350.6267.144926680165
  21. Kolendowicz, L., Czernecki, B., Półrolniczak, M., Taszarek, M., Tomczyk, A.M., Szyga-Pluga, K., 2019. Homogenization of air temperature and its long-term trends in Poznań (Poland) for the period 1848–2016. Theor. Appl. Climatol., 136, 3–4, 1357–1370. https://doi.org/10.1007/s00704-018-2560-z10.1007/s00704-018-2560-z
  22. Kopiejewska, W., 1989. A reserve of the oocytes of protoplasmatic growth in the ovaries of bream (Abramis brama L.) females in Lake Śniardwy. Acta Ichthyologica et Piscatoria, 19, 2, 117–129.10.3750/AIP1989.19.2.10
  23. Kowalski, W., 1954. Dolina Wielkich Jezior Mazurskich. Przewodnik turystyczny. Warszawa.
  24. Leppäranta, M., 2015. Freezing of Lakes and the Evolution of their Ice Cover. Springer, 301 p. DOI: 10.1007/978-3-642-29081-7.10.1007/978-3-642-29081-7
  25. Li, X., Peng, S., Deng, X., Su, M., Zeng, H., 2019. Attribution of lake warming in four shallow lakes in the middle and lower Yangtze River Basin. Environ. Sci. Technol., 53, 21, 12548–12555. https://doi.org/10.1021/acs.est.9b0309810.1021/acs.est.9b0309831600439
  26. Lisicki, S., 2001. Origin of the lake Śniardwy basin and geological structure of its vicinity based on new geologic data. Biul. Państw. Inst. Geol, 397, 133–150.
  27. Lossow, K., 1996. Znaczenie jezior w krajobrazie młodoglacjalnym Pojezierza Mazurskiego. Zeszyty Problemowe Postępów Nauk Rolniczych, 431, 47–59.
  28. Maberly, S.C., O’Donnell, R.A., Woolway, R.I., Cutler, M.E., J., Gong, M., Jones, I.D., Merchant, C.J., Miller, C.A., Politi, E., Scott, E.M., Thackeray, S.J., Tyler, A.N., 2020. Global lake thermal regions shift under climate change. Nat. Commun., 11, 1232, 2. https://doi.org/10.1038/s41467-020-15108-z10.1038/s41467-020-15108-z706024432144247
  29. Magnuson, J.J., Robertson, D.M., Benson, B.J., Wynne, R.H., Livingstone, D.M., Arai, T., et al., 2000. Historical trends in lake and river ice cover in the Northern Hemisphere. Science, 289, 5485, 1743–1746. https://doi.org/10.1126/science.289.5485.174310.1126/science.289.5485.174310976066
  30. Magee, M.R., Wu, C.H., Robertson, D.M., Lathrop, R.C., Hamilton, D.P., 2016. Trends and abrupt changes in 104 years of ice cover and water temperature in a dimictic lake in response to air temperature, wind speed, and water clarity drivers. Hydrol. Earth Syst. Sci., 20, 5, 1681–1702. https://doi.org/10.5194/hess-20-1681-201610.5194/hess-20-1681-2016
  31. Napiórkowska-Krzebietke, A., Zdanowski, B., Bajkiewicz-Grabowska, E., Stawecki, K., Czarnecki, B., 2020. The Great Masurian Lakes: Hydrological Regime and Summer Phytoplankton. Handbook of Environmental Chemistry, Vol. 86, pp. 209–230. Springer.10.1007/978-3-030-12123-5_11
  32. Naumenko, M.A., Guzivaty, V.V., Karetnikov, S.G., 2012. Variability of the horizontal gradients of the air and the water surface temperatures in the vernal frontal zone period of Lake Ladoga. Oceanology, 52, 6, 735–740.10.1134/S0001437012060082
  33. North, R.P., Livingstone, D.M., Hari, R.E., Köster, O., Nieder-hauser, P., Kipfer, R., 2013. The physical impact of the late 1980s climate regime shift on Swiss rivers and lakes. Inland Waters, 3, 3, 341–350. https://doi.org/10.5268/IW-3.3.56010.5268/IW-3.3.560
  34. Nowak, B., Nowak, D., Ptak, M., 2018. Variability and course of occurrence of ice cover on selected lakes of the Gnieźnieńskie Lakeland (Central Poland) in the period 1976-2015. E3S Web of Conferences, 44, art. No 00126. https://doi.org/10.1051/e3sconf/2018440012610.1051/e3sconf/20184400126
  35. Nowak, B., Ławniczak-Malińska, A.E., 2019. The influence of hydrometeorological conditions on changes in littoral and riparian vegetation of a meromictic lake in the last half-century. Water, 11, 2651. https://doi.org/10.3390/w11122651.10.3390/w11122651
  36. Nowak, B., Ptak, M., 2019. Natural and anthropogenic conditions of water level fluctuations in lakes – Powidzkie Lake case study (Central-Western Poland). Journal of Water and Land Development, 40, 13–25. DOI: 10.2478/jwld-2019-000210.2478/jwld-2019-0002
  37. Ohata, Y., Toyota, T., Fraser, A.D., 2017. The role of snow in the thickening processes of lake ice at Lake Abashiri, Hokkaido, Japan. Tellus A, 69, 1, 1391655. https://doi.org/10.1080/16000870.2017.139165510.1080/16000870.2017.1391655
  38. Olszewski, P., 1951. Śniardwy jezioro bez termokliny. Wszechświat, 5, 157–159.
  39. Olszewski, P., Paschalski, P., 1959. Wstępna charakterystyka limnologiczna niektórych jezior Pojezierza Mazurskiego. Zesz. Nauk. WSR w Olsztynie, 4, 1–109.
  40. Pettitt, A.N., 1979. A non-parametric approach to the change-point problem. Applied Statistics, 28, 126–135.10.2307/2346729
  41. Piccolroaz, S., Woolway, R.I., Merchant, C.J., 2020. Global reconstruction of twentieth century lake surface water temperature reveals different warming trends depending on the climatic zone. Clim. Change, 160, 427–442. https://doi.org/10.1007/s10584-020-02663-z10.1007/s10584-020-02663-z
  42. Popielarczyk, D., Templin, T., 2014. Application of GIS technology to increase the safety of inland waterway transport on Lake Śniardwy (Poland). Logistyka, 3, 5259–5267.
  43. Piccolroaz, S., Amadori, M., Toffolon, M., Dijkstra, H.A., 2019. Importance of planetary rotation for ventilation processes in deep elongated lakes: Evidence from Lake Garda (Italy). Sci. Rep., 9, 1, 8290. https://doi.org/10.1038/s41598-019-44730-110.1038/s41598-019-44730-1654925031165755
  44. Preston, D.L., Caine, N., McKnight, D.M., Williams, M.W., Hell, K., Miller, M.P., Hart, S.J., Johnson, P.T.J., 2016. Climate regulates alpine lake ice cover phenology and aquatic ecosystem structure. Geophys. Res. Lett., 43, 10, 5353–5360. https://doi.org/10.1002/2016GL06903610.1002/2016GL069036
  45. Przytulska, A., Bartosiewicz, M., Vincent, W.F., 2017. Increased risk of cyanobacterial blooms in northern high-latitude lakes through climate warming and phosphorus enrichment. Freshwater Biol., 62, 12, 1986–1996. https://doi.org/10.1111/fwb.1304310.1111/fwb.13043
  46. Ptak, M., 2013a. Lake evolution in the Żnin region in the years 1912-1960 (central Poland), Quaest. Geogr., 32, 1, 21–26.10.2478/quageo-2013-0003
  47. Ptak, M., 2013b. Zmienność temperatury i przebiegu zjawisk lodowych jeziora Łebsko i Gardno (Słowiński Park Narodowy). Parki Narodowe i Rezerwaty Przyrody, 32, 2, 45–55.
  48. Ptak, M., Nowak, B., 2016. Variability of oxygen-thermal conditions in selected lakes in Poland. Ecol. Chem. Eng. S, 23, 4, 639–650. https://doi.org/10.1515/eces-2016-004510.1515/eces-2016-0045
  49. Ptak, M., Wrzesiński, D., Choiński, A., 2017. Long-term changes in the hydrological regime of high mountain lake Morskie Oko (Tatra Mountains, Central Europe). J. Hydrol. Hydromech., 65, 2, 146–153. https://doi.org/10.1515/johh-2017-000510.1515/johh-2017-0005
  50. Ptak, M., Tomczyk, A.M., Wrzesiński, D., 2018. Effect of teleconnection patterns on changes in water temperature in Polish lakes. Atmosphere, 9, 66, 1–17. https://doi.org/10.3390/atmos9020066.10.3390/atmos9020066
  51. Ptak, M., Tomczyk, A., Wrzesiński, D., Bednorz, E., 2019a. Effect of teleconnection patterns on ice conditions in lakes in lowland Poland. Theor. Appl. Climatol., 138, 1961–1969. https://doi.org/10.1007/s00704-019-02929-210.1007/s00704-019-02929-2
  52. Ptak, M., Sojka, M., Nowak, B., 2019b. Changes in ice regime of Jagodne Lake (North-Eastern Poland). Acta Scientiarum Polonorum Formatio Circumiectus, 18,1, 89–100. https://doi.org/10.15576/ASP.FC/2019.18.1.8910.15576/ASP.FC/2019.18.1.89
  53. Ptak, M., Sojka, M, Kałuża, T., Nowak, B., 2020. Tendenzen der Veränderungen der Wassertemperatur von Seen in Nord-Ost-Polen. Wasserwirtschaft, 4, 41–45.10.1007/s35147-020-0365-3
  54. Punsalmaa, B., Nyamsuren B., Buyndalai B., 2004. Trendsin river and lake ice in Mongolia. AIACC Working Papers 4. (www.aiaccproject.org).
  55. Robbins, J.A., Jasinski, A.W., 1995. Chernobyl fallout radionuclides in Lake Sniardwy, Poland. J. Environ. Radioactiv., 26, 2, 157–184. https://doi.org/10.1016/0265-931X(94)00005-H10.1016/0265-931X(94)00005-H
  56. Siuda, W., Grabowska, K., Kaliński, T., Kiersztyn, B., Chróst, R.J., 2020. Trophic state, eutrophication, and the threats for water quality of the Great Mazurian lake system. In: Korzeniewska, E., Harnisz, M. (Eds.): Polish River Basins and Lakes – Part I. The Handbook of Environmental Chemistry, vol 86. Springer.10.1007/978-3-030-12123-5_12
  57. Soja, A.M., Kutics, K., Maracek, K., Molnár, G., Soja, G., 2014. Changes in ice phenology characteristics of two Central European steppe lakes from 1926 to 2012 - influences of local weather and large scale oscillation patterns. Clim. Change, 126, 119–133. DOI: 10.1007/s10584-014-1199-810.1007/s10584-014-1199-8
  58. Szostak, M., 1967. Pochodzenie jeziora Śniardwy i jego zasoby wodne. Prace Geograficzne, 58. PWN, Warszawa, 69 p.
  59. Šmejkalová, T., Edwards, M.E., Dash, J., 2016. Arctic lakes show strong decadal trend in earlier spring ice-out. Sci. Rep., 6, 38449. DOI: 10.1038/srep3844910.1038/srep38449514145027924914
  60. Virdis, S.G.P., Soodcharoen, N., Lugliè, A., Padedda, B.M., 2020. Estimation of satellite-derived lake water surface temperatures in the western Mediterranean: Integrating multisource, multi-resolution imagery and a long-term field dataset using a time series approach. Sci. Total. Environ., 707, 135567. https://doi.org/10.1016/j.scitotenv.2019.13556710.1016/j.scitotenv.2019.13556731780156
  61. Wang, W., Lee, X., Xiao, W., Liu, S., Schultz, N., Wang, Y., Zhang, M., Zhao, L., 2018. Global lake evaporation accelerated by changes in surface energy allocation in a warmer climate. Nat. Geosci., 11, 6, 410–414. https://doi.org/10.1038/s41561-018-0114-810.1038/s41561-018-0114-8
  62. Winslow, L.A., Leach, T.H., Rose, K.C., 2018. Global lake response to the recent warming hiatus. Environ. Res. Lett., 13, 5, 054005. https://doi.org/10.1088/1748-9326/aab9d710.1088/1748-9326/aab9d7
  63. Wrzesiński, D., Ptak, M., Baczyńska, A., 2013. Effect of the North Atlantic Oscillation on ice phenomena on selected lakes in Poland over the years 1961-2010. Quaest. Geogr., 32, 3, 119–128.10.2478/quageo-2013-0020
  64. Wrzesiński, D., Ptak, M., 2016. Water level changes in Polish lakes during 1976–2010. J. Geogr. Sci., 26, 1, 83–101. https://doi.org/10.1007/s11442-016-1256-510.1007/s11442-016-1256-5
  65. Yang, K., Yu, Z., Luo, Y., Yang, Y., Zhao, L., Zhou, X., 2018. Spatial and temporal variations in the relationship between lake water surface temperatures and water quality - A case study of Dianchi Lake. Sci. Total Environ., 624, 859–871. DOI: 10.1016/j.scitotenv.2017.12.11910.1016/j.scitotenv.2017.12.11929274610
  66. Zhu, S., Ptak, M., Yaseend, Z.M., Daia, J., Sivakumare, B., 2020. Forecasting surface water temperature in lakes: A comparison of approaches. J. Hydrol., 585, 124809, 1–10. https://doi.org/10.1016/j.jhydrol.2020.12480910.1016/j.jhydrol.2020.124809
  67. Zhu, S., Heddam, S., 2020. Prediction of dissolved oxygen in urban rivers at the Three Gorges Reservoir, China: extreme learning machines (ELM) versus artificial neural network (ANN). Water Quality Research Journal, 55, 1, 106–118. https://doi.org/10.2166/wqrj.2019.05310.2166/wqrj.2019.053
DOI: https://doi.org/10.2478/johh-2020-0024 | Journal eISSN: 1338-4333 | Journal ISSN: 0042-790X
Language: English
Page range: 260 - 270
Submitted on: Apr 16, 2020
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Accepted on: Jun 25, 2020
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Published on: Aug 10, 2020
In partnership with: Paradigm Publishing Services
Publication frequency: 4 issues per year

© 2020 Mariusz Ptak, Mariusz Sojka, Bogumił Nowak, published by Slovak Academy of Sciences, Institute of Hydrology
This work is licensed under the Creative Commons Attribution-NonCommercial-NoDerivatives 3.0 License.