Object structure
Title:

Sea-level trends along the Polish coast in the context of changes in the global ocean and the Baltic Sea

Subtitle:

Geographia Polonica Vol. 99 No. 2 (2026)

Creator:

Wolski, Tomasz : Autor ORCID

Publisher:

IGiPZ PAN

Place of publishing:

Warszawa

Date issued/created:

2026

Description:

24 cm

Subject and Keywords:

sea-level trends ; Baltic Sea ; global ocean ; Polish coast ; relative sea-level change (RSL) ; absolute sealevel change (ASL)

Abstract:

Sea level changes are among the key manifestations of contemporary climate change. This review article presents the current state of knowledge regarding global and regional drivers of sea-level variability, with particular emphasis on the specific characteristics of the semi-enclosed Baltic Sea basin and the role of post-glacial isostatic adjustment (GIA) processes. A review of available studies indicates that the Polish coast is characterized by an increasing trend in relative mean sea levels (RSL), which have been rising at a rate of 2 mm·yr-1 since the mid-20th century – averaging 15 cm over the last 75 years. The main causes of these changes are global factors (global mean sea-level rise – GMSL) and, to a lesser extent, coastal subsidence processes. Satellite and tide gauge data in the 21st century indicate significant acceleration in both relative (RSL) and absolute sea level (ASL) rise along European and southern Baltic coasts, directly resulting from anthropogenic climate change. Projections of further sea-level rise are deeply alarming for Polish administration. According to the Intergovernmental Panel on Climate Change (IPCC), depending on greenhouse gas emission scenarios, the rate of RSL rise may reach 6-7 mm·yr-1– more than three times higher than from the mid-20th century to present-which further increases the risk of erosion and storm flooding for the Polish coast.

References:

BACC II Author Team (Eds.). (2015). Second assessment of climate change for the Baltic Sea Basin. Regional Climate Studies. Cham: Springer International Publishing. https://doi.org/10.1007/978-3-319-16006-1 DOI
Bogdanov, V. I., Medvedev, M. Y., Solodov, V. A., Trapeznikov, Y. A., Troshkov, G. A., & Trubitsina, A. A. (2000). Mean monthly series of sea level observations (1777-1993) at the Kronstadt Gauge. Reports of the Finnish Geodetic Institute. Kirkkonummi: Finnish Geodetic Institute.
Börgel, F., Frauen, C., Neumann, T., Schimanke, S., & Meier, H. E. M. (2018). Impact of the Atlantic multidecadal oscillation on Baltic Sea variability. Geophysical Research Letters, 45(18), 9880-9888. https://doi.org/10.1029/2018GL078943 DOI
Church, J. A., Clark, P. U., Cazenave, A., Gregory, J. M., Jevrejeva, S., Levermann, A., … & Unnikrishnan,A. S. (2013). Sea level change. PM Cambridge University Press.
Cieślikiewicz, W., & Paplińska-Swerpel, B. (2008). A 44-year hindcast of wind wave fields over the Baltic Sea. Coastal Engineering, 55(11), 894-905. https://doi.org/10.1016/j.coastaleng.2008.02.017 DOI
Dailidienė, I., Davulienė, L., Tilickis, B., Stankevičius, A., & Myrberg, K. (2006). Sea level variability at the Lithuanian coast of the Baltic Sea. Boreal Environment Research, 11, 109-121.
Dobracki, R., & Uścinowicz, S. (2007). Geozagrożenia polskiego brzegu Bałtyku. Przegląd Geologiczny, 55(8), 639-640.
Dziadziuszko, Z., & Jednorał, T. (1988). Wahania poziomów morza na polskim wybrzeżu Bałtyku. Studia i Materiały Oceanologiczne 52, Dynamika Morza 6, 215-238.
Ekman, M. (2009). The changing level of the Baltic Sea during 300 years: A clue to understanding the Earth. Aland Islands: Summer Institute for Historical Geophysics.
Elken, J., Barzandeh, A., Maljutenko, I., & Rikka, S. (2024). Reconstruction of Baltic gridded sea levels from tide gauge and altimetry observations using spatiotemporal statistics from reanalysis. Remote Sensing, 16(15), 2702. https://doi.org/10.3390/rs16152702 DOI
European Environment Agency. (2019; accessed December 2025). Trend in absolute sea level across Europe based on satellite measurements, 1993-2019.
European Environment Agency. (2025a; accessed December 2025). Past trend and projected change in relative sea level across Europe. https://www.eea.europa.eu/en/analysis/indicators/global-and-europe-an-sea-level-rise-1764145665/past-trend-and-projected-change
European Environment Agency. (2025b; accessed December 2025). Extreme sea levels and coastal flooding in Europe. https://www.eea.europa.eu/en/analysis/indicators/extreme-sea-levels-and-coastal-flooding?activeAccordion=ecdb3bcf-bbe9-4978-b5cf-0b136399d9f8#footnote-WKSFX8AH
Girjatowicz, J. P. (2007). The North Atlantic Oscillation influence on the Odra river estuary hydrological conditions. Estuarine Coastal and Shelf Science, 74, 395-402. https://doi.org/10.1016/j.ecss.2007.04.037 DOI
Groh, A., Richter, A., & Dietrich, R. (2017). Recent Baltic Sea level changes induced by past and present ice masses. In: Coastline changes of the Baltic Sea from south to east: Past and future projection (pp. 55-68). Cham: Springer International Publishing. DOI
Harff, J., Deng, J., Dudzińska-Nowak, J., Fröhle, P., Groh, A., Hünicke, B.,. & Zhang, W.(2017). What Determines the Change of Coastlines in the Baltic Sea?. In J. Harff, K. Furmańczyk, K., & von Storch, H. (Eds.), Coastline Changes of the Baltic Sea from South to East (pp. 15-35). Coastal Research Library, vol. 19. Cham: Springer. https://doi.org/10.1007/978-3-319-49894-2_2 DOI
Hünicke, B., Zorita, E., Soomere, T., Madsen, K. S., Johansson, M., & Suursaar, Ü. (2015). Recent Change - Sea Level and Wind Waves. In The BACC II Author Team, (Eds.), Second Assessment of Climate Change for the Baltic Sea Basin. Regional Climate Studies. Cham: Springer. https://doi.org/10.1007/978-3-319-16006-1_9 DOI
Hünicke, B.; Zorita, E (2008). Trends in the amplitude of Baltic Sea level annual cycle. Tellus A: Dynamic Meteorology and Oceanography, 60, 154-164. https://doi.org/10.1111/j.1600-0870.2007.00277.x DOI
Hydro IMGW-PIB. (2025; accessed November 2025). https://hydro.imgw.pl/#/map?sh=true&she=true&lo=18.0663&la=54.7288&zo=7.543987073736913&bl=hydro&tstp=24&omt=1
IPCC. (2022). Summary for Policymakers. In Special Report on the Ocean and Cryosphere in a Changing Climate (SROCC). Intergovernmental Panel on Climate Change. https://doi.org/10.1017/9781009157964.001 DOI
IPCC. (2023). Summary for policymakers. In Climate change 2021: The physical science basis. contribution of working group i to the sixth assessment report of the intergovernmental panel on climate change. Cambridge University Press. https://doi.org/10.1017/9781009157896.00 DOI
IPCC AR6. (2023). Climate Change 2021: The Physical Science Basis. Contribution of Working Group I to the Sixth Assessment Report of the Intergovernmental Panel on Climate Change. Cambridge University Press. https://doi.org/10.1017/9781009157896 DOI
IPCC AR6 Sea Level Projection Tool. (2025; accessed November 2025). https://sealevel.nasa.gov/ipcc-ar6-sea-level-projection-tool
ISOK. (2025; accessed December 2025). https://isok.gov.pl/hydroportal.html
Jakusik, E., Wójcik, R., Pilarski, M., Biernacik, D. M. M., & Miętus, M. (2012). Poziom morza w polskiej strefie brzegowej - stan obecny i spodziewane zmiany w przyszłości. In KLIMAT: 'Wpływ zmian klimatu na środowisko, gospodarkę i społeczeństwo (zmiany, skutki i sposoby ich ograniczania, wnioski dla nauki, praktyki inżynierskiej i planowania gospodarczego)'. zadanie 6 (pp. 146-169).
Jakusik, J., Wójcik, R., Biernacik, D., Pilarski, M., Miętus, M., & Wójcik, R. (2010). Zmiany poziomu morza wzdłuż polskiego wybrzeża Morza Bałtyckiego. Rezultaty projektu KLIMAT. In E. Bednorz, & L. Kolendowicz (Eds.), Klimat Polski na tle klimatów Europy. Zmiany i ich konsekwencje (pp. 219-234). Poznań: Bogucki Wydawnictwo Naukowe
Jędrasik, J. (2014). Modelowanie retrospektywne i prognozowanie hydrodynamiki Morza Bałtyckiego. Gdańsk: Wydawnictwo Uniwersytetu Gdańskiego.
Johansson, M., Kahma, K., & Boman, H. (2003). An improved estimate for the long-term mean sea level on the Finnish coast. Geophysica, 39(1-2), 51-73
Johansson, M., Kahma, K., Boman, H., & Launiainen, J. (2004). Scenarios for sea level on the Finnish coast. Boreal Environment Research, 9, 153-166
Kapsi, I., Kall, T., & Liibusk, A. (2023). Sea level rise and future projections in the Baltic Sea. Journal of Marine Science and Engineering, 11(8), 1514. https://doi.org/10.3390/jmse11081514 DOI
Klimat Polski. (2024; accessed November 2025). Raport Instytutu Meteorologii i Gospodarki Wodnej. https://imgw.pl/wp-content/uploads/2025/07/RAPORT-IMGW-PIB-Klimat-Polski-2024.pdf
Knudsen, P., Andersen, O., Sørensen, C., & Vognsen, K. (2010; accessed December 2025). Spatial variability in sea level rise and storm surge levels along the Danish coastline, Storm Surges Congress, Hamburg, Germany, 13-17 September 2010, 1-19. https://meetingorganizer.copernicus.org/SSC2010/SSC2010-108.pdf
Komunikat PAN. (2021; accessed November 2025). Komunikat interdyscyplinarnego Zespołu doradczego do spraw kryzysu klimatycznego przy prezesie PAN na temat zmiany klimatu i wzrostu poziomu morza. https://bip.pan.pl/artykul/159-462-zmiany-klimatu-a-wzrost-poziomu-morza-komunikat-02-2021-z-26-stycznia-2021
Kowalewska-Kalkowska, H., & Marks, R. (2011). 200 years of sea level measurements at the Świnoujście tide gauge - an unique opportunity to study sea level variability at a regional scale. In Scientific symposium: 200 years of oldest continuous record of tide-gauge in Świnoujście, 18 November 2011. Świnoujście, Poland.
Kowalska, B., & Kubicka, A. (2020). Wysokie Poziomy Wody - Zagrożenia Polskiej Strefy Brzegowej w latach 1955-2017. In T. Walczykiewicz (Ed.), Współczesne Problemy Gospodarki Wodnej w Kontekście Zagospodarowania Przestrzennego (pp. 57-66). Warszawa: Instytut Meteorologii i Gospodarki Wodnej Państwowy Instytut Badawczy.
Łyszkowicz, A., & Bernatowicz, A. (2018). Geocentric changes of the mean sea level of the Baltic Sea from altimeter and tide gauge data. In 2018 Baltic Geodetic Congress (BGC Geomatics) (pp. 202-206). IEEE. https://doi.org/10.1109/bgc-geomatics.2018.00044
Łyszkowicz, A., & Bernatowicz, A. (2019). Geocentric Baltic Sea level changes along the southern coastline. Advances in Space Research, 64(9), 1807-1815. https://doi.org/10.1016/j.asr.2019.07.040 DOI
Madsen, K. S., Høyer, J. L., Suursaar, Ü., She, J., & Knudsen, P. (2019). Sea level trends and variability of the Baltic Sea from 2D statistical reconstruction and altimetry. Frontiers in Earth Science, 7, 243. https://doi.org/10.3389/feart.2019.00243 DOI
Meier, H. E., Kniebusch, M., Dieterich, C., Gröger, M., Zorita, E., Elmgren, R., … & Zhang, W. (2022a). Climate change in the Baltic Sea region: A summary. Earth System Dynamics, 13, 457-593. https://doi.org/10.5194/esd-13-457-2022 DOI
Meier, H. E. M., Dieterich, C., Gröger, M., Dutheil, C., Börgel, F.,Safonova, K., … & Kjellström, E. (2022b). Oceanographic regional climate projections for the Baltic Sea until 2100, Earth System Dynamics, 13, 159-199. https://doi.org/10.5194/esd13-159-2022 DOI
Meier, H. M., Reckermann, M., Langner, J., Smith, B., & Didenkulova, I. (2023). Overview: The Baltic earth assessment reports (BEAR). Earth System Dynamics, 14(2), 519-531. https://doi.org/10.5194/esd-14-519-2023 DOI
Mengel, M., Nauels, A., Rogelj, J., & Schleussner, C. F. (2018). Committed sea-level rise under the Paris Agreement and the legacy of delayed mitigation action. Nature Communications, 9, 601. https://doi.org/10.1038/s41467-018-02985-8 DOI
Miętus, M., Filipiak, J., & Owczarek, M. (2004). Klimat wybrzeża południowego Bałtyku. Stan obecny i perspektywy zmian. In: J. Cyberski (Ed.), Środowisko polskiej strefy południowego Bałtyku - stan obecny i przewidywanie zmiany w przededniu integracji europejskiej (pp. 11-44). GTN.
Moberg, A., Tuomenvirta, H., & Nordli, P. Ø. (2005). Recent climatic trends. In M. Seppälä (Ed.), The Physical Geography of Fennoscandia (pp. 113-133). The Oxford Regional Environments Series, Oxford University Press.
Musielak, S., Furmańczyk, K., & Bugajny, N. (2017). Factors and Processes Forming the Polish Southern Baltic Sea Coast on Various Temporal and Spatial Scales. In J. Harff, K. Furmańczyk, & H. von Storch (Eds.), Coastline changes of the Baltic Sea from south to east (69-85). Cham: Springer. https://doi.org/10.1007/978-3-319-49894-2_5 DOI
Nauka o Klimacie. (2021; accessed November 2025). Wprowadzenie do 6 Raportu IPCC. https://naukaoklimacie.pl/aktualnosci/wprowadzenie-do-6-raportu-ipcc-490
Novotny, K., Liebsch, G., Dietrich, R., & Lehmann, A. (2005). Combination of Sea-Level Observations and an Oceanographic Model for Geodetic Applications in the Baltic Sea. In A Window on the Future of Geodesy (pp. 195-200). Springer Series of IAG Symposia. Berlin-Heidelberg: Springer. https://doi.org/10.1007/3-540-27432-4_34 DOI
Pająk, K., & Błaszczak-Bąk, W. (2019). Baltic sea level changes from satellite altimetry data based on the OptD method. Acta Geodynamica et Geomaterialia, 16, 235-244. https://doi.org/10.13168/agg.2019.0019 DOI
Palmer, M. D., Domingues, C. M., Slangen, A. B. A., & Boeira Dias, F. (2021). An ensemble approach to quantify global mean sea-level rise over the 20th century from tide gauge reconstructions. Environmental Research Letters, 16(4), 044043. https://doi.org/10.1088/1748-9326/abdaec DOI
Passaro, M., Müller, F. L., Oelsmann, J., Rautiainen, L., Dettmering, D., Hart-Davis, M. G., … & Benveniste, J. (2021). Absolute Baltic Sea level trends in the satellite altimetry era: A revisit. Frontiers in Marine Science, 8, 647607. https://doi.org/10.3389/fmars.2021.647607 DOI
Pugh, D. (2004). Changing sea levels: Effects of tides, weather and climate. Cambridge: University Press.
Przygrodzki, P., & Letkiewicz, B. (2015). Charakterystyka wezbrań sztormowych wzdłuż polskiego wybrzeża Morza Bałtyckiego. Inżynieria Morska i Geotechnika, 3, 158-165.
Richter, A., Groh, A., & Dietrich, R. (2012). Geodetic observation of sea-level change and crustal deformation in the Baltic Sea region. Physics and Chemistry of the Earth, Parts A/B/C, 53, 43-53. https://doi.org/10.1016/j.pce.2011.04.011 DOI
Rotnicki, K., & Borzyszkowska, W. (1999). Przyspieszony wzrost poziomu morza i jego składowe na polskim wybrzeżu Bałtyku w latach 1951-1990. In R. K. Borówka, Z. Młynarczyk, & A. Wojciechowski (Eds.), Ewolucja geosystemów nadmorskich południowego Bałtyku (pp. 141-160). Poznań: Bogucki Wydawnictwo Naukowe.
Rutgersson, A., Kjellström, E., Haapala, J., Stendel, M., Danilovich, I., Drews, M., … & Wasmund, N. (2022). Natural hazards and extreme events in the Baltic Sea region. Earth System Dynamics, 13, 251-301. https://doi.org/10.5194/esd-13-251-2022 DOI
Schöne, T., Esselborn, S., Rudenko, S., & Raimondo, J. C. (2010). Radar altimetry derived sea level anomalies - The benefit of new orbits and harmonization. In System earth via geodetic-geophysical space techniques (pp. 317-324). Berlin-Heidelberg: Springer. https://doi.org/10.1007/978-3-642-10228-8_25 DOI
Suursaar, Ü., & Kullas, T. (2009). Decadal changes in wave climate and sea level regime: the main causes of the recent intensification of coastal geomorphic processes along the coasts of Western Estonia. WIT Transactions on Ecology and the Environment, 126, 105-116. https://doi.org/10.2495/cp090101 DOI
Sztobryn, M., Kowalska, B., Stanisławczyk, I., & Krzysztofik, K. (2012). Wezbrania sztormowe - geneza, tendencje i skutki działania w strefie brzegowej Bałtyku. In H. Lorenc (Ed.), Klęski żywiołowe a bezpieczeństwo wewnętrzne kraju (pp. 195-217). Warszawa: Instytut Meteorologii i Gospodarki Wodnej Państwowy Instytut Badawczy.
Sztobryn, M., & Stigge, H. J. (Eds.) (2005). Wezbrania sztormowe wzdłuż południowego Bałtyku (zachodnia i środkowa część). Warszawa: Instytut Meteorologii i Gospodarki Wodnej.
Uścinowicz, S. (2003). Relative sea level changes, glacio-isostatic rebound and shoreline displacement in the southern Baltic. Warszawa: Państwowy Instytut Geologiczny.
Voosen, P. (2020). Seas are rising faster than ever. Science, 370(6519), 901. https://doi.org/10.1126/science.370.6519.901 DOI
WCRP Global Sea Level Budget Group. (2018). Global sea-level budget 1993-present. Earth System Science Data, 10(3), 1551-1590. https://doi.org/10.5194/essd-10-1551-2018 DOI
Weisse, R., Dailidiene, I., Hünicke, B., Kahma, K., Madsen, K., Omstedt, A., … & Zorita, E. (2021). Sea level dynamics and coastal erosion in the Baltic Sea region. Earth System Dynamics Discussions, 2021, 1-40. https://doi.org/10.5194/esd-12-871-2021 DOI
Wiśniewski, B., & Wolski, T. (2009). Katalogi wezbrań i obniżeń sztormowych poziomów morza oraz ekstremalne poziomy wód na polskim wybrzeżu. Szczecin: Wydawnictwo Naukowe Akademii Morskiej.
Wolski, T. (2017). Czasowa i przestrzenna charakterystyka ekstremalnych poziomów wód Morza Bałtyckiego. Szczecin: Wydawnictwo Naukowe Uniwersytetu Szczecińskiego. DOI
Wolski, T., Giza, A., & Wiśniewski, B. (2025). Application of the probability of extreme sea levels at selected Baltic Sea tide gauge stations. Water, 17(3), 291. https://doi.org/10.3390/w17030291 DOI
Wolski, T., & Wiśniewski, B. (2021). Characteristics and long-term variability of occurrences of storm surges in the Baltic Sea. Atmosphere, 12(12), 1679. https://doi.org/10.3390/atmos12121679 DOI

Relation:

Geographia Polonica

Volume:

99

Issue:

2

Start page:

147

End page:

165

Resource type:

Text

Detailed Resource Type:

Article

Resource Identifier:

0016-7282 (print) ; 2300-7362 (online) ; 10.7163/GPol.0321

Source:

CBGiOS. IGiPZ PAN, call nos.: Cz.2085, Cz.2173, Cz.2406 ; click here to follow the link

Language:

eng

Language of abstract:

eng

Rights:

Creative Commons Attribution BY 4.0 license

Terms of use:

Copyright-protected material. [CC BY 4.0] May be used within the scope specified in Creative Commons Attribution BY 4.0 license, full text available at: ; -

Digitizing institution:

Institute of Geography and Spatial Organization of the Polish Academy of Sciences

Original in:

Central Library of Geography and Environmental Protection. Institute of Geography and Spatial Organization PAS

Projects co-financed by:

European Union. European Regional Development Fund ; Programme Innovative Economy, 2010-2014, Priority Axis 2. R&D infrastructure

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