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Climatological variability of surface particulate organic carbon (POC) and physical processes based on ocean color data in the Gulf of Mexico

  • Son, Young-Baek (Korea Ocean Satellite Center, KORDI) ;
  • Gardner, Wilford D. (Department of Oceanography, Texas A&M University, College Station)
  • Received : 2011.05.16
  • Accepted : 2011.06.08
  • Published : 2011.06.30

Abstract

The purpose of this study is to investigate climatological variations from the temporal and spatial surface particulate organic carbon (POC) estimates based on SeaWiFS spectral radiance, and to determine the physical mechanisms that affect the distribution of pac in the Gulf of Mexico. 7-year monthly mean values of surface pac concentration (Sept. 1997 - Dec. 2004) were estimated from Maximum Normalized Difference Carbon Index (MNDCI) algorithm using SeaWiFS data. Synchronous 7-year monthly mean values of remote sensing data (sea surface temperature (SST), sea surface wind (SSW), sea surface height anomaly (SSHA), precipitation rate (PR)) and recorded river discharge data were used to determine physical forcing factors. The spatial pattern of POC was related to one or more factors such as river runoff, wind-derived current, and stratification of the water column, the energetic Loop Current/Eddies, and buoyancy forcing. The observed seasonal change in the POC plume's response to wind speed in the western delta region resulted from seasonal changes in the upper ocean stratification. During late spring and summer, the low-density river water is heated rapidly at the surface by incoming solar radiation. This lowers the density of the fresh-water plume and increases the near-surface stratification of the water column. In the absence of significant wind forcing, the plume undergoes buoyant spreading and the sediment is maintained at the surface by the shallow pycnocline. However, when the wind speed increases substantially, wind-wave action increases vertical motion, reducing stratification, and the sediment were mixed downward rather than spreading laterally. Maximum particle concentrations over the outer shelf and the upper slope during lower runoff seasons were related to the Loop Current/eddies and buoyancy forcing. Inter-annual differences of POC concentration were related to ENSO cycles. During the El Nino events (1997-1998 and 2002-2004), the higher pac concentrations existed and were related to high runoffs in the eastern Gulf of Mexico, but the opposite conditions in the western Gulf of Mexico. During La Nina conditions (1999-2001), low Poe concentration was related to normal or low river discharge, and low PM/nutrient waters in the eastern Gulf of Mexico, but the opposite conditions in the western Gulf of Mexico.

Keywords

Acknowledgement

Supported by : KORDI

References

  1. Berelson, W.M., 2001. The flux of particulate organic carbon into the ocean interior: a comparison of four U.S. JGOFS regional studies, Oceanography, 13(4): 59-67.
  2. Brooks, D.A. and R.V. Legeckis, 1982. A ship and satellite view of hydrographic features in the western Gulf of Mexico, Journal of Geophysical Research, 87: 4195-4206. https://doi.org/10.1029/JC087iC06p04195
  3. Chung, S.P., W.D. Gardner, M.R. Landry, M.J. Richardson, and I.D. Walsh, 1998. Beam attenuation by microorganisms and detrital particles in the equatorial Pacific, Journal of Geophysical Research-Ocean, 103: 12669-12681. https://doi.org/10.1029/98JC00608
  4. Deser, C. and M.L. Blackmon, 1993. Surface climate variations over the North Atlantic Ocean during winter: 1900-1989, Journal of Climate, 6: 1743-1753. https://doi.org/10.1175/1520-0442(1993)006<1743:SCVOTN>2.0.CO;2
  5. Emery, W.J. and R.E. Thomson, 1997. Data Analysis Methods in Physical Oceanography, Pergamon, Oxford, 643pp.
  6. Frankignoul, C., F. Bonjean, and G. Reverdin, 1996. Interannual variability of surface currents in the tropical Pacific during 1987-1993, Journal of Geophysical Research, 101(C2): 3629-3647. https://doi.org/10.1029/95JC03439
  7. Frolov, S.A., G.G. Sutyrin, G.D. Rowe, and L.M. Rothstein, 2004. Loop Current eddy interaction with the western boundary in the Gulf of Mexico, Journal of Physical Oceanography, 34: 2223-2237. https://doi.org/10.1175/1520-0485(2004)034<2223:LCEIWT>2.0.CO;2
  8. Gardner, W.D., I.D. Walsh, and M.J. Richardson, 1993. Biophysical forcing of particle production and distribution during a spring bloom in the North Atlantic, Deep-Sea Research II, 40: 171-195. https://doi.org/10.1016/0967-0645(93)90012-C
  9. Gardner, W.D., M.J. Richardson, and W.O. Smith, 2000. Seasonal patterns of water column particulate organic carbon and fluxes in the Ross Sea, Antarctica, Deep-Sea Research II, 47: 3423-3449. https://doi.org/10.1016/S0967-0645(00)00074-6
  10. Gardner, W.D., A.V. Mishonov, and M.J. Richardson, 2006. Global POC concentrations from in-situ and satellite data, Deep Sea Research II, 53: 718-740. https://doi.org/10.1016/j.dsr2.2006.01.029
  11. Gilbes, F., C. Thomas, J.J. Walsh, and F.E. Muller- Karger, 1996. An episodic chlorophyll plume on the West Florida Shelf, Continental Shelf Research, 16: 1201-1224. https://doi.org/10.1016/0278-4343(95)00065-8
  12. Hamilton, P., G.S. Fargion, and D.C. Biggs, 1999. Loop Current eddy paths in the western Gulf of Mexico, Journal of Physical Oceanography, 29: 1180-1207. https://doi.org/10.1175/1520-0485(1999)029<1180:LCEPIT>2.0.CO;2
  13. Hamilton, P., T.J. Berger, and W. Johnson, 2002. On the structure and motions of cyclones in the northern Gulf of Mexico, Journal of Geophysical Research-Oceans, 107: 3208-3226. https://doi.org/10.1029/1999JC000270
  14. Hofmann, E.E. and S.J. Worley, 1986. An investigation of the circulation of the Gulf of Mexico, Journal of Geophysical Research-Oceans, 91: 14221-14236. https://doi.org/10.1029/JC091iC12p14221
  15. Kantha, L.H. and C.A. Clayson, 2000. Numerical Models of Ocean and Oceanic Processes. Academic Press, New York, 940pp.
  16. Latif, M., and T.P. Barnett, 1994. Causes of decadal climate variability over the North Pacific and North America, Science, 206: 643-637.
  17. McClain, C.R., G.C. Feldman, and S.B. Hooker, 2004. An overview of the SeaWiFS project and strategies for producing a climate research quality global ocean bio-optical time series, Deep Sea Research II, 51: 5-42. https://doi.org/10.1016/j.dsr2.2003.11.001
  18. Miller, A.J., D.R. Cayan, T.P. Barnett, N.E. Graham, and J.M. Oberhuber, 1994. Interdecadal variability of the Pacific Ocean: model response to observed heat flux and wind stress anomalies, Climate Dynamics, 9: 287-302. https://doi.org/10.1007/BF00204744
  19. Mishonov, A.V., W.D. Gardner, and M.J. Richardson, 2000. Prospects for using historical transmissometer data in large-scale assessment of POC, EOS, 80(49): 122.
  20. Mishonov, A.V., W.D. Gardner, and M.J. Richardson, 2003. Remote sensing and surface POC concentration in the South Atlantic, Deep-Sea Research II, 50: 2997-3015. https://doi.org/10.1016/j.dsr2.2003.07.007
  21. Morey, S.L., P.J. Martin, J.J. O􀁳Brien, A.A. Wallcraft, and J. Zavala-Hidalgo, 2003. Export pathways for river discharged fresh water in the northern Gulf of Mexico, Journal of Geophysical Research, 108(C10): 3303 (doi:10.1029/20002JC001674).
  22. Paden, C.A., M.R. Abbott, and C.D. Winant, 1991. Tidal and atmospheric forcing of the upper ocean in the Gulf of California, 1: sea surface zemperature variability, Journal of Geophysical Research-Ocean, 96(C10): 18337-18359. https://doi.org/10.1029/91JC01597
  23. Preisendorfer, R.W., 1988. Principal Component Analysis in Meteorology and Oceanography. Elsevier, Amsterdam, 452pp.
  24. Rabalais, N.N., R.E. Turner, D. Justic, Q. Dortch, W.J. Wiseman, and B.K. Sen Gupta, 1996. Nutrient Changes in the Mississippi River and system responses on the adjacent continental shelf, Estuaries, 19: 386-407. https://doi.org/10.2307/1352458
  25. Son, Y.B., 2006. POC algorithms based on spectral remote sensing data and its temporal and spatial variability in the Gulf of Mexico, Ph.D. thesis, 200 pp., Texas A&M Univ., College Station.
  26. Son, Y.B., W.D. Gardner, A.V. Mishonov, and M.J. Richardson, 2009a. Model-based remote sensing algorithms for particulate organic carbon(POC) in the Northeastern Gulf of Mexico, Journal of Earth System Science, 1: 1-10. https://doi.org/10.5194/essd-1-1-2009
  27. Son, Y.B., W.D. Gardner, A.V. Mishonov, and M.J. Richardson, 2009b. Multispectral remotesensing algorithms for particulate organic carbon(POC): The Gulf of Mexico, Remote Sensing of Environment, 113: 50-61. https://doi.org/10.1016/j.rse.2008.08.011
  28. Son, Y.B. and W.D. Gardner, 2010. Determining spatial and temporal variations of surface particulate organic carbon(POC) using in situ measurements and remote sensing data in the Northeastern Gulf of Mexico during El Nino and La Nina, 'The Sea' Journal of the Korean Society of Oceanography, 15(2): 51-61.
  29. Stramski, D., R.A. Reynolds, M. Kahru, and B.G. Mitchell, 1999. Estimation of particulate organic carbon in the ocean from satellite remote sensing, Science, 285: 239-242.
  30. Sturges, W. and R. Leben, 2000. Frequency of ring separation from the Loop Current in the Gulf of Mexico:A revised estimate, Journal of Physical Oceanography, 30: 1814-1819. https://doi.org/10.1175/1520-0485(2000)030<1814:FORSFT>2.0.CO;2
  31. Thomas, A.C., D.W. Townsend, and R. Weatherbee, 2003. Satellite-measured phytoplankton variability in the Gulf of Maine, Continental Shelf Research, 23: 971-989. https://doi.org/10.1016/S0278-4343(03)00086-4
  32. Thurman, H.V. and A.P. Trujillo, 2002. Essentials of Oceanography. Prentice Hall, New Jersey, 524pp.
  33. Walker, N.D., L.J. Rouse, B. Rouge, G.S. Fargion, and D.C. Biggs, 1994. The great flood of summer 1993: Mississippi River discharge studied, EOS, 75: 409-415.
  34. Walker, N.D., 1996. Satellite assessment of Mississippi River plume variability: causes and predictability, Remote Sensing of Environment, 58: 21-35. https://doi.org/10.1016/0034-4257(95)00259-6
  35. Wolter, K. and M.S. Timlin, 1998. Measuring the strength of ENSO - how does 1997/98 rank? , Weather, 53: 315-324. https://doi.org/10.1002/j.1477-8696.1998.tb06408.x

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