PL EN


Preferencje help
Widoczny [Schowaj] Abstrakt
Liczba wyników

Czasopismo

2002 | 44 | 4 |

Tytuł artykułu

Variability of coastal water hydrodynamics in the Southern Baltic - hindcast modelling of an upwelling event along the Polish coast

Autorzy

Treść / Zawartość

Warianty tytułu

Języki publikacji

EN

Abstrakty

EN
This paper presents the results of an attempt to reproduce, with the aid of a numerical circulation model, the hydrological conditions observed in the coastal area of the southern Baltic in September 1989. A large fall in surface layer seawater temperature was recorded in September 1989 at two coastal stations in the vicinity of Kołobrzeg and Władysławowo. This upwelling-like phenomenon was assumed to be related to the specific anemobaric situation in September 1989, however typical of this phenomenon to occur along the Polish Baltic coast (Malicki & Miętus 1994). A three-dimensional (3-D) σ-coordinate baroclinic model of the Baltic Sea, with a horizontal resolution of ∼5 km and 24 sigma-levels in the vertical, was applied to investigate water circulation and thermohaline variability. Hindcast numerical simulation showed that the model provided a good reproduction of the temporal history of the surface seawater temperature and the duration of the upwelling-like fall, but that the model results were underestimated. The maxima of this large fall in the surface layer temperature at both coastal stations are closely related to the phase of change of the upwelling-favourable wind direction to the opposite one. The results of simulation runs showed details of upwelling development due to wind field fluctuations in time and differences in shaping the temperature and current patterns in conjunction with the variations in topography and coastline features in some areas along the Polish coast. Two different hydrodynamic regimes of water movements along the coast resulting from topographical features (the Słupsk Bank) can be distinguished. From the model simulation the specific conditions for the occurrence and development of upwelling at the eastern end of the Polish coast (in the vicinity of Władysławowo) can be deduced.

Wydawca

-

Czasopismo

Rocznik

Tom

44

Numer

4

Opis fizyczny

p.395-418,fig.,ref.

Twórcy

autor
  • Polish Academy of Sciences, Powstancow Warszawy 55, 81-712 Sopot, Poland

Bibliografia

  • BED, 2000, Atmospheric inputs, [in:] The BED database, http://data.ecology.su.se/Models/bedcontent.htm.
  • Blumberg A. F., Mellor G. L., 1987, A description of a three-dimensional coastal ocean circulation model, pp. 1–16, [in:] Three-dimensional coastal ocean models, N. S. Heaps (ed.), Am. Geophys. Union, 4, 208 pp.
  • Bock K.-H., 1971, Monatskarten des Salzgehaltes der Ostsee, dargestellt fur verschiedene Tiefenhorizonte, Dt. Hydrogr. Z., 12, 148 pp.
  • Bychkova I.A., Viktorov S.V., 1987, Elucidation and systematization of upwelling zones in the Baltic Sea based on satellite data, Okieanologiya, 27, 218–223, (in Russian).
  • Bychkova I.A., Viktorov S.V., Shumakher D.A., 1988, A relationship between the large-scale atmospheric circulation and the origin of coastal upwelling in the Baltic Sea, Meteor. Gidrol., 10, 91–98, (in Russian).
  • Csanady G.T., 1982, Circulation in the Coastal Ocean, D.Reidel Publ. Co., Boston, MA, 279 pp.
  • Fennel W., Seifert T., 1995, Kelvin wave controlled upwelling in the western Baltic, J. Mar. Sys., 6, 286–300.
  • Fennel W., Sturm M., 1992, Dynamics of the western Baltic, J. Mar. Sys., 3, 183–205.
  • Gidhagen L., 1984, Coastal upwelling in the Baltic Sea, Proc. 14th Conf. Baltic Oceanographers, Gdynia, vol. 1, 182–190.
  • Gill A. E., 1982, Atmoshere-Ocean Dynamics, Acad. Press, New York, 662 pp.
  • Gill A. E., Clarke A. J., 1974, Wind-induced upwelling, coastal currents and sea-level changes, Deep-Sea Res., 21, 325–345.
  • Haapala J., 1994, Upwelling and its influence on nutrient concentration in the coastal Area of the Hanko Peninsula, Entrance of the Gulf of Finland, Estuar., Coast. Shelf Sci., 38, 507–521.
  • Hansen L., Højerslev N. K., Soogaard H., 1993, Temperature monitoring of the Danish marine environment and the Baltic Sea, Københavns Univ., Rep. No. 52, 77 pp.
  • Jankowski A., 2000, Wind induced variability of hydrological parameters in the coastal zone of the southern Baltic Sea – numerical study, Oceanol. Stud., 29 (3), 5–34.
  • Jankowski A., 2002, Application of a σ-coordinate baroclinic model to the Baltic Sea, Oceanologia, 44 (1), 59–80.
  • Jankowski A., Masłowski W., 1991, Methodological aspects of wind momentum, heat and moisture fluxes evaluation from the standard hydrometeorological measurements on board a ship, Stud. i Mater. Oceanol., 58, 63–76.
  • Kowalewski M., 1998, Coastal upwellings in a shallow stratified sea, for example, in the Baltic Sea, Ph.D thesis, Uniw. Gd., Gdynia, 85 pp., (in Polish).
  • Kowalik Z., Murty T. S., 1993, Numerical modeling of ocean dynamics, Adv. Ser. on Ocean Eng., 5, World Sci., Singapore–New Jersey–London–Hong Kong, 481 pp.
  • Krężel A., 1997, Recognition of mesoscale hydrophysical anomalies in a shallow sea using broadband satelitte teledetection methods, Wyd. Uniw. Gd., Gdańsk, 173 pp., (in Polish).
  • Large W.G., Pond S., 1981, Open ocean momentum flux measurements in moderate to strong winds, J. Phys. Oceanogr., 11, 324–336.
  • Launiainen J., 1979, Studies of energy exchange between the air and the sea surface on the coastal area of the Gulf of Finland, Finnish Mar. Res., 246, 3–110.
  • Lehmann A., 1995, A three-dimensional baroclinic eddy-resolving model of the Baltic Sea, Tellus, 47 (A), 1013–1031.
  • Lenz W., 1971, Monatskarten der Temperatur der Ostsee, dargestellt fur verschiedene Tiefenhorizonte, Dt. Hydrogr. Z., 11, 148 pp.
  • Malicki J., Miętus M., 1994, Climate, pp. 60–69, [in:] The Baltic Sea atlas, A. Majewski & Z. Lauer (eds.), Inst. Meteor. i Gosp. Wod., Warszawa, 214 pp., (in Polish).
  • Matciak M., Urbański J., Piekarek-Jankowska H., Szymelfenig M., 2001, Presumable groundwater seepage influence on the upwelling events along the Hel Peninsula, Oceanol. Stud., 30 (3)–(4), 125–132.
  • Meier H.E.M, 1999, First results of multi-year simulations using a 3D Baltic Sea model, SMHI, Rep. Oceanogr. No. 27, 1–48.
  • Meier H. E.M, D¨oscher R., Coward A.C., Nycander J., D¨o¨os K., 1999, RCO –Rossby Centre regional Ocean climate model: model description (version 1.0) and first results from the hindcast period 1992/93, SMHI, Rep. Oceanogr. No. 26, 1–102.
  • Mellor G. L., 1993, User’s guide for a three-dimensional, primitive equation, numerical ocean model, Prog. Atmos. Ocean. Sci., Princeton University, 35 pp.
  • Mellor G. L., Yamada T., 1974, A hierarchy of turbulence closure models for planetary boundary layers, J. Atmos. Sci., 13, 1791–1806.
  • Mellor G. L., Yamada T., 1982, Development of a turbulent closure model for geophysical fluid problems, Rev. Geophys., 20, 851–875.
  • Mesinger F., Arakawa A., 1976, Numerical models used in atmospheric models, GARP Publ. Ser., 17 (1), WMO–ICSU, 64 pp.
  • Oey L.-Y., Chen P., 1992, A model simulation of circulation in the northeast Atlantic shelves and seas, J. Geophys. Res., 97, 20087–20115.
  • Robinson I. S., 1985, Satellite oceanography: an introduction for oceanographers and remote-sensing scientists, Ellis Horwood Limited, Chichester, 455 pp.
  • Schmidt M., Seifert T., Lass H.-U., Fennel W., 1998, Patterns of salts propagation in the Southwestern Baltic Sea, Dt. Hydrogr. Z., 50, 345–364.
  • Seifert T., Kayser B., 1995, A high resolution spherical grid topography of the Baltic Sea, Meereswissensch. Ber., Inst. f¨ur Ostseeforschung, Warnemunde, 9, 72–88.
  • Siegel H., Gerth M., Rudloff R., Tschersich G., 1994, Dynamic features in the western Baltic Sea investigated using NOAA–AVHRR Data, Dt. Hydrogr. Z., 46, 191–209.
  • Smagorinsky J., 1963, General circulation experiments with the primitive equations. I. The basic experiment, Mont. Weather Rev., 91, 99–164.
  • Smith R. L., 1968, Upwelling, Oceanogr. Mar. Biol., Ann. Rev., 6, 11–46.
  • Stevenson J. W., 1982, Computation of heat and momentum fluxes at the sea surface during the Hawaii to Tahiti Shuttle Experiment, Joint Inst. Mar. Atmos. Res. Univ. of Hawaii No. 82–0044, Honolulu, 42 pp.
  • Svansson A., 1975, Interaction between the coastal zone and the open sea, Finnish Mar. Res., 239, 11–28.
  • Svendsen E., Berntsen J., Skogen M., ˚Adlandsvik B., Martinsen E., 1996, Model simulation of the Skagerrak circulation and hydrography during Skagex, J. Mar. Sys., 8, 219–236.
  • UNESCO, 1983, Algorithms for the computation of fundamental properties of sea water, UNESCO Tech. Pap. Mar. Sci., 44, 53 pp.
  • Urbański J., 1995, Upwellings along the Polish coasts of the Baltic Sea, Prz.Geofiz., 40, 141–153, (in Polish).

Typ dokumentu

Bibliografia

Identyfikatory

Identyfikator YADDA

bwmeta1.element.agro-article-23625798-9936-435f-a0d5-093bdde23b1b
JavaScript jest wyłączony w Twojej przeglądarce internetowej. Włącz go, a następnie odśwież stronę, aby móc w pełni z niej korzystać.