Skip to main content
Log in

Latitudinal shifts in the Polar Front in Indian sector of the Southern Ocean: evidences from silicoflagellate assemblage

  • Published:
Geosciences Journal Aims and scope Submit manuscript

Abstract

We used silicoflagellate assemblage records to describe the polar frontal variability over the last 48kyr in the Indian sector of the Southern Ocean. The studied core was collected onboard ORV Sagar Nidhi from within the Polar frontal zone (PFZ) during the 4th Indian Scientific Expedition to Southern Ocean. The Polar front is dominated by silica-rich sediments (diatoms and silicoflagellates). Silicoflagellates were dominated by Distephanus speculum and Dictyocha fibula species. The biostratigraphic record of these silicoflagellates was used qualitatively to examine past changes in polar frontal variability in the Southern Ocean. Warming is indicated by an increase (decrease) in Dictyocha sp. (Distephanus sp.) from the LGM to the Holocene. Dictyocha sp. abundance indicates warmer temperatures during 43–45 kyr and is nearly synchronous with the warming event recorded in an Antarctic ice core. Dictyocha/Distephanus ratio also suggests a northern and southern shift in the polar front during LGM and 43–45 kyr respectively. The southward displacement of the frontal system is linked to an increase in sea surface temperature as evidenced from the δ18O Byrd Antarctic ice core data and solar insolation data. The low dust flux, higher δ18O and absence of an upwelling indicator diatom, Thallasionema nitzchoides during the Antarctic warming event also suggest stronger thermal stratification during the Antarctic warming event as compared to LGM. The present study would improve our understanding of the frontal variability under future warming scenarios.

This is a preview of subscription content, log in via an institution to check access.

Access this article

Price excludes VAT (USA)
Tax calculation will be finalised during checkout.

Instant access to the full article PDF.

Similar content being viewed by others

References

  • Bard, E. and Rickaby, R.E.M., 2009, Migration of the subtropical front as a modulator of glacial climate. Nature, 460, 380–383.

    Article  Google Scholar 

  • Belkin, I.M. and Gordon, A.L., 1996, Southern Ocean fronts from the Greenwich meridian. Journal of Geophysical Research, 101, 3675–3696.

    Article  Google Scholar 

  • Bohaty, SM. and Hawood D.M., 1998, Southern Ocean Pliocene paleotemperature variation high-resolution silicoflagellate biostratigraphy. Marine Micropaleontology, 33, 241–272.

    Article  Google Scholar 

  • Bukry, D., 1985, Tropical Pacific silicoflagellate zonation and paleotemperature trends of the Late Cenozoic. In: Mayer, L., Theyer, F., Thomas, E., et al. (eds.), Initial reports of the deep sea drilling project, LXXXV. Washington (U.S. Government Printing Office), p. 477–497.

    Google Scholar 

  • Carter, L. and Cortese, G., 2009, Change in the Southern Ocean: Responding to Antarctica. PAGES News, 17, 1–3.

    Google Scholar 

  • Charles, C., Froelich, P.N., Zibello, M.A., Mortlock, R.A., and Morley, J., 1991, Biogenic opal in southern ocean sediments over the last 450,000 years: implications for surface water chemistry and circulation. Paleoceanography, 6, 697–728.

    Article  Google Scholar 

  • Ciesielski, F.F., 1974, Silicoflagellate paleotemperature curve for the Southern Ocean. Antarctic Journal of United States, 9, 269–270.

    Google Scholar 

  • Ciesielski, P.F., 1975, Biostratigraphy and paleoecology of Neogene and Oligocene silicoflagellates from cores recovered during Antarctic Leg 28, Deep Sea Drilling Project. In: Hayes, D.E., Frakes, L.A., et al. (eds.), Initial reports of the deep sea drilling project, XXVIII. Washington (U.S. Government Printing Office), p. 625–691.

    Google Scholar 

  • De Deckker, P., Moros, M., Perner, K., and Jansen, E., 2012, Influence of the tropics and southern westerlies on glacial interhemispheric asymmetry. Nature Geoscience, 5, 266–269.

    Article  Google Scholar 

  • DeFelice, D.R. and Wise, S.W., 1981, Surface lithofacies, biofacies, and diatom diversity patterns as models for delineation of climatic change in the southeast Atlantic Ocean. Marine Micropaleontology, 6, 29–70.

    Article  Google Scholar 

  • Eynaud, F., Giraudeau, J., Pichon, J.J., and Pudsey, C.J., 1999, Seasurface distribution of coccolithophores, diatoms, silicoflagellates and dinoflagellates in the South Atlantic Ocean during the late austral summer 1995. Deep-Sea Research I, 46, 451–482.

    Article  Google Scholar 

  • Esper, O., Gersonde, R., and Kadagies, N., 2010, Diatom distribution in southeastern Pacific surface sediments and their relationship to modern environmental variables. Palaeogeography, Palaeoclimatology, Palaeoecology, 287, 1–27.

    Article  Google Scholar 

  • Flores, J.A. and Sierro, F.J., 2007, Pronounced mid-Pleistocene southward shift of the Polar Front in the Atlantic sector of the Southern Ocean. Deep-Sea Research II, 54, 2432–2442.

    Article  Google Scholar 

  • Gemeinhardt, K., 1934, Die Silicoflagellaten des Südatlantischen Ozeans. Wissenschaftliche Ergebnisse der deutschen atlantischen Expedition auf dem Forschungs- und Vermessungsschiff ‘Meteor’ 1925–1927, 12, 274–312.

    Google Scholar 

  • Gille, S.T., 2002, Warming of the Southern Ocean since the 1950s. Science, 295, 1275–1277.

    Article  Google Scholar 

  • Ho, S.L., Mollenhauer, G., Lamy, F., Martínez-Garcia, A., Mohtadi, M., Gersonde, R., Hebbeln, D., Nunez-Ricardo, S., Rosell-Melè, A., and Tiedemann, R., 2012, Sea surface temperature variability in the Pacific sector of the Southern Ocean over the past 700 kyr. Paleoceanography, 27, 1–15.

    Google Scholar 

  • Hopkins, J.E., 2008, Statistical Modelling and Variability of the Subtropical Front, New Zealand. Ph.D. thesis, University of Southampton, Southampton, 208 p.

    Google Scholar 

  • Howard, W.R. and Prell, W.L., 1992, Late Quaternary Surface Circulation of the Southern Indian Ocean and its Relationship to Orbital Variations. Paleoceanography, 7, 79–117.

    Article  Google Scholar 

  • Huybers, P., 2006, Early Pleistocene Glacial Cycles and the Integrated Summer Insolation Forcing. Science, 313, 508–511.

    Article  Google Scholar 

  • Johnsen, S.J., Dansgaard, W., Clausen, H.B., and Langway, Jr., C.C., 1972, Oxygen isotope profiles through the Antarctic and Greenland ice sheets. Nature, 235, 429–434.

    Article  Google Scholar 

  • Kohfeld, K., Graham, R., De Boer, A., Sime, L., Wolff, E., Le Quèrè, C., and Bopp, L., 2013, Southern Hemisphere Westerly Wind Changes during the Last Glacial Maximum: Paleo-data Synthesis. Quaternary Science Reviews, 68, 76–95.

    Article  Google Scholar 

  • Lambert, F., Delmonte, B., Petit, J.R., Bigler, M., Kaufmann, P.R., Hutterli, M.A., Stocker, T.F., Ruth, U., Steffensen, J.P., and Maggi, V., 2008, Dust-climate couplings over the past 800,000 years from the EPICA Dome C ice core. Nature, 452, 616–619.

    Article  Google Scholar 

  • Ling, H.Y., 1975, Silicoflagellates and Ebridians from Leg 31. In: Karig, D.E. and Ingle, J.C., Jr. (eds.), Initial reports of the deep sea drilling project, XXXI. Washington (U.S. Government Printing Office), p. 763–777.

    Google Scholar 

  • Manoj, M.C., Thamban, M., Basavaiah, N., and Mohan, R., 2012, Evidence for climatic and oceanographic controls on terrigenous sediment supply to the Indian Ocean sector of the Southern Ocean over the past 63,000 years. Geo-Marine Letters, DOI 10.1007/s00367-011-0267-6.

    Google Scholar 

  • McCartney, K. and Wise, S.W., 1990, Cenozoic silicoflagellates and ebridians from ODP Leg 113: biostratigraphy and notes on morphologic variability. Proceedings of ODP Science Results, 113, 729–760.

    Google Scholar 

  • Morley, J.J. and Hays, J.D., 1979, Comparison of glacial and interglacial oceanographic conditions in the South Atlantic from variations in calcium carbonate and radiolarian distributions. Quaternary Research, 12, 396–408.

    Article  Google Scholar 

  • Mortlock, R.A., Charles, C.D., Froelich, P.N., Zibello, M.A., Saltzman, J., Hays, J.D., and Burckle, L.H., 1991, Evidence for lower productivity in the Antarctic Ocean during the last deglaciation. Nature, 351, 220–223.

    Article  Google Scholar 

  • Nurnberg, C.C., Bohrmann, G., Schltiter, M., and Frank, M., 1997, Barium accumulation in the Atlantic sector of the Southern Ocean: Results from 190,000-year records. Paleoceanography, 12, 594–603.

    Article  Google Scholar 

  • Olbers, D., Borowski, D., Völker, C., and Wölff, J.O., 2004, The dynamical balance, transport and circulation of the Antarctic Circumpolar Current. Antarctic Science, 16, 439–470.

    Article  Google Scholar 

  • Pichon, J.J., Labracherie, M., Labeyrie, L.D., and Duprat, J., 1987, Transfer functions between diatom assemblages and surface hydrology in the Southern Ocean. Palaeogeography, Palaeoclimatology, Palaeoecology, 61, 79–95.

    Article  Google Scholar 

  • Poelchau H.S., 1974, Holocene silicoflagellates of the North Pacific: their distribution and use for paleotemperature determination. Ph.D. Thesis, University of California, San Diego, 165 p.

    Google Scholar 

  • Pollard, R., Lucas, M., and Read, J., 2002, Physical controls on biogeochemical zonation in the Southern Ocean. Deep Sea Research II, 49, 3289–3305.

    Article  Google Scholar 

  • Prell, W.L., Hutson, W.H., Williams, D.F., Bè, A.W.H., Geitzenauer, K., and Molfino, B., 1980, Surface circulation of the Indian Ocean during the last glacial maximum, approximately 18,000 yr BP. Quaternary Research, 14, 309–336.

    Article  Google Scholar 

  • Schrader, H. and Baumgartner, T.R., 1983, Decadal variation of upwelling in the central Gulf of California. In: Theide, J. and Suess, E. (eds.), Coastal upwelling: its sediment record, Part B: Sedimentary records of ancient coastal upwelling. Plenum Press, New York. p. 247–276.

    Chapter  Google Scholar 

  • Sigman, D.M. and Boyle, E.A., 2000, Glacial/interglacial variations in atmospheric carbon dioxide. Nature, 407, 859–869.

    Article  Google Scholar 

  • Sprintall, J., 2010, An Observed Poleward Shift of the Polar Front in Drake Passage. American Geophysical Union, Fall Meeting, Abstract #OS41E-08.

    Google Scholar 

  • Stuiver, M., Reimer, P.J., and Reimer, R.W., 2005, CALIB 6.0 [Program and documentation]. http://www.calib.qub.ac.uk.

    Google Scholar 

  • Takahashi, K. and Blackwelder, PL., 1992, The spatial distribution of silicoflagellates in the region of the Gulf Stream warm-core ring 82B: application to water mass tracer studies. Deep-Sea Research I, 39, S327–S346.

    Article  Google Scholar 

  • Toggweiler, J.R., Russell, J.L., and Carson, S.R., 2006, Midlatitude westerlies, atmospheric CO2, and climate change during the ice ages. Paleoceanography, 21, 1–15.

    Article  Google Scholar 

  • Van der Spoel, S., Hallegraeff, G.M., and Van Soest, R.W.M., 1973, Notes on variation of diatoms and silicoflagellates in the South Atlantic Ocean. Netherland Journal of Sea Research, 6, 518–541.

    Article  Google Scholar 

  • Whitworth, T., 1983, Monitoring the Transport of the Antarctic Circumpolar Current at Drake Passage. Journal of Physical Oceanography, 13, 2045–2057.

    Article  Google Scholar 

Download references

Author information

Authors and Affiliations

Authors

Corresponding author

Correspondence to Suhas S. Shetye.

Rights and permissions

Reprints and permissions

About this article

Cite this article

Shetye, S.S., Mohan, R. & Nair, A. Latitudinal shifts in the Polar Front in Indian sector of the Southern Ocean: evidences from silicoflagellate assemblage. Geosci J 18, 241–246 (2014). https://doi.org/10.1007/s12303-013-0061-8

Download citation

  • Received:

  • Accepted:

  • Published:

  • Issue Date:

  • DOI: https://doi.org/10.1007/s12303-013-0061-8

Key words

Navigation