Sedimentation and particulate nutrient dynamics along a coastal gradient from a fjord-like bay to the open sea

Conference paper
Part of the Developments in Hydrobiology book series (DIHY, volume 135)

Abstract

Seasonal changes of total particulate material (TPM), particulate organic carbon (POC), nitrogen (PON) and phosphorus (PTP) concentrations in the water column, in sediment traps and on the sediment surface were studied in the SW coast of Finland, Baltic Sea, from March to November 1992. Sampling was carried out along a coastal gradient from the fjord-like, semi-enclosed Pojo Bay to the outer archipelago and open sea area. In Pojo Bay, TPM sedimentation rates were high and relatively constant, and had low organic carbon contents throughout the seasonal cycle. Resuspension was estimated to contribute > 90% of total sedimentation of POC and PON. Clear seasonality in sedimentation with high settling rates of primary organic material in spring, low sedimentation rates during summer and a considerable increase of resuspension during autumn was found in the outer archipelago and open sea. The C:N:P ratios of suspended, settled and sediment surface material indicated greater sedimentary loss of N (as compared to P and C) and closer coupling between pelagial and benthos in the archipelago and open sea area than in Pojo Bay. The sedimentation of P was 20–50% more effective (as compared to N and C) in Pojo Bay than elsewhere. These results indicate that the shift of planktonic nutrient limitation (from P to N limitation) is enhanced due to the more efficient sedimentation of the main limiting element along the estuarine gradient. The primary sedimentation of organic carbon (approximating export flux from the pelagic system) during the whole study period was estimated to be 30–48% of the total net primary production. This indicates that despite the differences in the salinity, nutrient dynamics and planktonic community structure along the coastal gradient, a relatively constant fraction of the annual primary production is exported from the pelagic system by sedimentation.

Key words

sedimentation carbon nitrogen phosphorus resuspension export production Baltic Sea 

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References

  1. Blomqvist, S. & U. Larsson, 1994. Detrital bedrock elements as tracers of settling resuspended particulate matter in a coastal area of the Baltic Sea. Limnol. Oceanogr. 39: 880–896.CrossRefGoogle Scholar
  2. Bonsdorff, E., E. M. Blomqvist, J. Mattila & A. Norkko, 1997. Coastal eutrophication: Causes, consequences and perspectives in the Archipelago Areas of the Northern Baltic Sea. Est. Coast. Shelf Sci. 44 ( Suppl. A): 63–72.Google Scholar
  3. Conley, D. J., W. M. Smith, J. C. Cornwell & T. R. Fisher, 1995. Transformation of particle bound phosphorus at the land-sea interface. Est. Coast. Shelf Sci. 40: 161–176.CrossRefGoogle Scholar
  4. Edler, L. (ed.), 1979. Recommendations on methods for marine biological studies in the Baltic Sea. Phytoplankton and chlorophyll. The Baltic Marine Biologists, Publ. 5: 1–38.Google Scholar
  5. Floderus, S., 1988. Estimating resuspension and nitrogen flux in the Kattegat. In P. Wassmann, & A. -S. Heiskanen (eds), Sediment Trap Studies in the Nordic Countries 1. Proceedings of a Workshop held at Tvärminne Zoological Station, Hanko, Finland 24–28 February 1988. Yliopistopaino, Helsinki: 118–127.Google Scholar
  6. Floderus, S., 1991. A box-model illustration of the bottom end member sampling problem in primary sedimentation flux estimation. In P. Wassmann, A. -S. Heiskanen & O. Lindahl (eds), Sediment Trap Studies in the Nordic Countries 2. Proceedings of a workshop held at Kristineberg Marine Biological Station, Fiskebäckskil, Sweden, 21–25 November 1990. Nurmi-Print, Nurmijärvi: 222–234.Google Scholar
  7. Forsgren, G. & M. Jansson, 1993. Sedimentation of phosphorus in limnetic and estuarine environments in River Öre system, northern Sweden. Hydrobiologia 253: 233–248.CrossRefGoogle Scholar
  8. Forsskähl, M., A. Laakkonen, J. -M. Leppänen, A. Niemi, A. Sund-berg and G. Tamelander, 1982. Seasonal cycle of production and sedimentation of organic matter at the entrance to the Gulf of Finland. Neth. J. Sea Res. 16: 290–299.CrossRefGoogle Scholar
  9. Garber, J. H. 1984. Laboratory study of nitrogen and phosphorus remineralization during decomposition of coastal plankton and seston. Est. Coast Shelf Sci. 18: 685–702.CrossRefGoogle Scholar
  10. Gasith, A., 1975. Tripton sedimentation in eutrophie lakes–simple correction for the resuspended matter. Verh. int. Ver. Limnol. 19: 116–122.Google Scholar
  11. Graf, G., W. Bengtsson, U. Diesner, R. Schulz & H. Theede, 1982. Benthic response to sedimentation of a spring phytoplankton bloom: process and budget. Mar. Biol. 67: 201–208.CrossRefGoogle Scholar
  12. Grasshoff, K., M. Ehrhardt & K. Kremling, 1983. Methods of seawater analysis. Verlag-Chemie. Weinheim.Google Scholar
  13. Grebmeier, J. M., C. P. McRoy & H. M. Feder, 1988. Pelagicbenthic coupling on the shelf of the northern Bering and Chukchi Seas. I. Food supply source and benthic biomass. Mar. Ecol. Prog. Ser. 48: 57–67.CrossRefGoogle Scholar
  14. Gundersen, K., 1991. Sampling precision and preservation of sediment trap material. In P. Wassmann, A. -S. Heiskanen & O. Lindahl (eds), Sediment Trap Studies in the Nordic Countries 2. Proceedings of a workshop held at Kristineberg Marine Biological Station, Fiskebäckskil, Sweden, 21–25 November 1990. Nurmi-Print, Nurmijärvi: 6–35.Google Scholar
  15. Haapala, J., 1994. Upwelling and its influence on nutrient concentration in the coastal area of the Hanko peninsula, entrance of the Gulf of Finland. Est. Coast. Shelf. Sci. 38: 507–521.CrossRefGoogle Scholar
  16. Halme, E., 1944. Planktologische Untersuchungen in der PojoBucht and angrenzenden Gewässern. I. Milieu and Gesamtplankton. Ann. Zool. Soc. ‘Vanamo’ 10: 1–80.Google Scholar
  17. Halme, E., 1958. Planktologische Untersuchungen in der PojoBucht and angrenzenden Gewässern. IV. Zooplankton. Ann. Zool. Soc. ‘Vanamo’ 19: 1–62.Google Scholar
  18. Häkanson, L., S. Floderus & M. Wallin, 1989. Sediment trap assemblages–a methodological description. Hydrobiologia 176/177: 481–490.Google Scholar
  19. Heaney, S. I. & R. W. Eppley, 1981. Light, temperature and nitrogen as interacting factors affecting diel vertical migrations of dinoflagellates in culture. J. Plankton Res. 3: 331–344.CrossRefGoogle Scholar
  20. Heiskanen, A. -S., 1995. Contamination of sediment trap fluxes by vertically migrating phototrophic micro-organisms in the coastal Baltic Sea. Mar. Ecol. Prog. Ser. 122: 45–58.CrossRefGoogle Scholar
  21. Heiskanen, A. -S. & K. Kononen, 1994. Sedimentation of vernal and late summer phytoplankton communities in the coastal Baltic Sea. Arch. Hydrobiol. 131: 175–198.Google Scholar
  22. Heiskanen, A. -S. & J. -M. Leppänen, 1995. Estimation of export production in the coastal Baltic Sea: Effect of resuspension and microbial decomposition on sedimentation measurements. Hydrobiologia 316: 211–224.Google Scholar
  23. Heiskanen, A. -S., T. Tamminen & K. Gundersen, 1996. The impact of planktonic food web structure on nutrient retention and loss from a late summer pelagic system in the coastal northern Baltic Sea. Mar. Ecol. Prog. Ser. 145: 195–208.CrossRefGoogle Scholar
  24. Heiskanen, A. -S., J. Haapala & K. Gundersen, 1998. Sedimentation and sources of settling C, N and P in the coastal northern Baltic Sea. Est. Coast. Shelf Sci. 46: 703–712.CrossRefGoogle Scholar
  25. Kahru, M., U. Horstmann & O. Rud, 1994. Satellite detection of increased cyanobacteria blooms in the Baltic Sea: Natural fluctuations of ecosystem change? Ambio 23: 469–472.Google Scholar
  26. Kansanen, P. H., T. Jaakkola, S. Kulmala & R. Suutarinen, 1991. Sedimentation and distribution of gamma-emitting radionuclides in bottom sediments of southern Lake Päijänne, Finland. after the Chernobyl accident. Hydrobiologia 222: 121–140.CrossRefGoogle Scholar
  27. Kivi, K., S. Kaitala, H. Kuosa, J. Kuparinen, E. Leskinen, R. Lignell, B. Marcussen & T. Tamminen, 1993. Nutrient limitation and grazing control of the Baltic plankton community during annual succession. Limnol. Oceanogr. 38: 893–905.CrossRefGoogle Scholar
  28. Koop, K., W. R. Boynton, F. Wulff & R. Carman, 1990. Sediment-water oxygen and nutrient exchanges along a depth gradient in the Baltic Sea. Mar. Ecol. Prog. Ser. 63: 65–77.CrossRefGoogle Scholar
  29. Korhonen, J. & H. Kuosa, 1994. Pohjanpitäjänlanden minimiravinne. In R. Kristoffersson, A. Niemi & J. Pokki, (eds), Tvärminnen Eläintieteellisen Aseman Tutkimusalueeseen Kuuluvan Pohjanpitäjänlanden Biologisen Tilan Ja Sen Vuotuisvaihtelun Perusselvitys (Project Aqua). Loppuraportti. Helsingin yliopisto, Tvärminnen eläintieteellinen asema, Hanko: 6–7.Google Scholar
  30. Koski, M., M. Viitasalo & H. Kuosa. Seasonal development of mesozooplankton biomass and production on the SW coast of Finland. Ophelia (in press).Google Scholar
  31. Kristoffersson, R., A. Niemi & J. Pokki, 1994. Tvärminnen eläintieteellisen aseman tutkimusalueeseen kuuluvan Pohjanpitäjänlanden biologisen titan ja sen vuotuisvaihtelun perusselvitys (Project Aqua). Loppuraportti. Helsingin yliopisto, Tvärminnen eläintieteellinen asema, Hanko.Google Scholar
  32. Kuparinen, J., J. -M. Leppänen, J. Sarvala, A. Sundberg & A. Virtanen, 1984. Production and utilization of organic matter in a Baltic ecosystem off Tvärminne, southwest coast of Finland. Rapp. P.-v. Rdun. Cons. in Explor. Mer 183: 180–192.Google Scholar
  33. Lebo, M. E. 1991. Particle-bound phosphorus along an urbanized coastal plain estuary. Mar. Chem. 34: 225–246.CrossRefGoogle Scholar
  34. Leppänen, J -M., 1988. Cycling of organic matter during the vernal growth period in the open northern Baltic Proper. VI. Sinking of particulate matter. Finnish Mar. Res. 255: 97–118.Google Scholar
  35. Liebezeit, G., 1986. Pelagic and benthic sources of sedimentary carbohydrates in a shallow-water environment, Kiel Bight, Baltic Sea. Mar. Geol. 71: 201–213.CrossRefGoogle Scholar
  36. Lignell, R., 1990. Excretion of organic carbon by phytoplankton: its relation to algal biomass, primary productivity and bacterial secondary productivity in the Baltic Sea. Mar. Ecol. Prog. Ser. 68: 85–99.CrossRefGoogle Scholar
  37. Lignell, R., S. Kaitala & H. Kuosa, 1992. Factors controlling phytoand bacterioplankton in late spring on a salinity gradient in the northern Baltic. Mar. Ecol. Prog. Ser. 94: 239–252.CrossRefGoogle Scholar
  38. Liss, P. S., 1976. Conservative and non-conservative behavior of dissolved constituents during estuarine mixing. In J.D. Burton & P. S. Liss (eds), Estuarine Chemistry. Academic Press, 93–130.Google Scholar
  39. Lucotte, M. & B. D’Anglean, 1983. Forms of phosphorus and phosphorus-iron relationships in the suspended matter of the St. Lawrence estuary. Cam J. Earth Sci. 20: 1880–1890.Google Scholar
  40. Mälkki, P. & R. Tamsalu, 1985. Physical features of the Baltic Sea. Finnish Mar. Res. 252: 1–110.Google Scholar
  41. Niemi, A., 1973. Ecology of phytoplankton in the Tvärminne area SW coast of Finland. I. Dynamics of hydrography, nutrients, chlorophyll a and phytoplankton. Acta Bot. Fennica 100: 1–68.Google Scholar
  42. Niemi, A., 1975. Ecology of phytoplankton in the Tvärminne area SW coast of Finland. II. Primary production and environmental conditions in the archipelago zone and sea zone. Acta Bot. Fennica 105: 1–73.Google Scholar
  43. Niemi, A., 1978. Ecology of phytoplankton in the Tvärminne area SW coast of Finland. III. Environmental conditions and primary production in Pojo Bay in the 1970’s. Acta Bot. Fennica 106: 1–28.Google Scholar
  44. Niemi, A., 1982. Dynamics of phytoplankton in the brackish-water inlet Pojoviken, southern coast of Finland. Hydrobiologia 86: 33–39.CrossRefGoogle Scholar
  45. Nilsson, P., L. Brydsten & M. Jansson, 1997. Turnover of particulate matter in a Baltic estuary. Est. Coast. Shelf Sci. 44 ( Suppl. A): 107–116.Google Scholar
  46. Nixon, S. W., 1981. Remineralization and nutrient cycling in coastal marine ecosystems. In B.J. Neilson, & L. E. Cronin (eds), Estuaries and Nutrients. Humana Press, Clifton, New Jersey: 111–138.CrossRefGoogle Scholar
  47. Peinert, R., A. Saure, P. Stegmann, C. Stien, H. Haardt & V. Smetacek, 1982. Dynamics of primary production and sedimentation in a coastal ecosystem. Neth. J. Sea Res. 16: 276–289.CrossRefGoogle Scholar
  48. Persson, J. & L. Hâkasson, 1993. Prediction of bottom dynamic conditions in coastal waters. In K. Pettersson & L. Forsell (eds), Proceedings of the 21st Nordic Sediment Symposium, 27–29 April 1993, Uppsala, Sweden: 52–66.Google Scholar
  49. Pritchard, D. W. & J. R. Schubel, 1981. Physical and geological processes controlling nutrient levels in estuaries. In B.J. Neilson & L. E. Cronin (eds), Estuaries and Nutrients. Humana Press, Clifton, NJ: 47–70.CrossRefGoogle Scholar
  50. Segersträle, S., 1951. The seasonal fluctuation in the salinity off the coast of Finland and their biological significance. Soc. Scient. Fennica, Comment. Biol. 13 (3): 1–27.Google Scholar
  51. Smetacek, V., 1980. Annual cycle of sedimentation in relation of plankton ecology in Western Kiel Bight. Ophelia, Suppl. 1: 65–76.Google Scholar
  52. Solorzano L. & J. H. Sharp, 1980. Determination of total dissolved phosphorus and particulate phosphorus in natural waters. Limnol. Oceanogr. 25: 754–758.CrossRefGoogle Scholar
  53. Stipa, T., 1996. Water renewal and vertical circulation in Pohja Bay. Report Series in Geophysics 34. Dept. of Geophysics, University of Helsinki.Google Scholar
  54. Tallberg, P. & A. -S. Heiskanen, 1998. Species-specific phytoplankton sedimentation in relation to primary production along an inshore-offshore gradient. J. Plankton Res. 20: 2053–2070.CrossRefGoogle Scholar
  55. Taguchi, S., 1982. Sedimentation of newly produced particulate organic matter in a subtropical inlet, Kaneohe Bay, Hawaii. Est. Coast. Shelf Sci. 14: 533–544.CrossRefGoogle Scholar
  56. Tamminen, T., S. Kaitala, K. Kivi & J. Kuparinen, 1985. Response of planktonic brackish water community to single and combined additions of ammonium and phosphate in a factorial mesocosm experiment. In J. Gray & M. E. Christiansen (eds), Marine Biology in Polar Regions and Effects of Stress on Marine Organisms. John Wiley & Sons, Chichester, 363–378.Google Scholar
  57. Tuomi, R, K. Suominen & R. Autio, 1999. Phytoplankton and bacterioplankton production and bacterial biomass in a fjord-like bay - open sea gradient. Hydrobiologia (this issue).Google Scholar
  58. Valeur, J. R., 1995. Resuspension–mechanisms and measuring methods. In S. Floderus, A. -S. Heiskanen, M. Olesen, M. & P. Wassmann, (eds.), Seasonal Dynamics of Planktonic Ecosystems and Sedimentation in Coastal Nordic waters. Sediment trap studies in the Nordic Countries 3. Proceedings of a workshop held at the Helsingör Marine Biological Laboratory, Denmark, 21–26 January 1994. Nurmi-Print, Nurmijärvi. 184–202.Google Scholar
  59. Wallin, M. & L. Hâkanson, 1992. Morphometry and sedimentation as regulating factors for nutrient recycling and trophic state in coastal waters. Hydrobiologia 235/236: 33–45.Google Scholar
  60. Wassmann, P., 1986. Benthic nutrient regeneration as related to primary productivity in the west-Norwegian coastal zone. Ophelia 26: 443–456.CrossRefGoogle Scholar
  61. Wassman, P., 1990. Relationship between primary and export production in the boreal coastal zone of the North Atlantic. Limnol. Oceanogr. 35: 464–471.CrossRefGoogle Scholar
  62. Wassmann, R, 1991. Dynamics of primary production and sedimentation in shallow fjords and polls of western Norway. Oceanogr. Mar. Biol. ann. Rev. 29: 87–154.Google Scholar
  63. Wassmann, P., A. -S. Heiskanen & O. Lindahl, O. (eds), 1991. Sediment Trap Studies in the Nordic Countries 2. Proceedings of a workshop held at Kristineberg Marine Biological Station, Fiskebäckskil, Sweden, 21–25 November 1990. Nurmi-Print, Nurmijärvi.Google Scholar

Copyright information

© Springer Science+Business Media Dordrecht 1999

Authors and Affiliations

  1. 1.Finnish Environment InstituteHelsinkiFinland
  2. 2.Department of Limnology and Environmental ProtectionUniversity of HelsinkiHelsinkiFinland

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