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Impact of Geoid Improvement on Ocean Mass and Heat Transport Estimates

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Abstract

One long-standing difficulty in estimating the large-scale ocean circulation is the inability to observe absolute current velocities. Both conventional hydrographic measurements and altimetric measurements provide observations of currents relative to an unknown velocity at a reference depth in the case of hydrographic data, and relative to mean currents calculated over some averaging period in the case of altimetric data. Space gravity missions together with altimetric observations have the potential to overcome this difficulty by providing absolute estimates of the velocity of surface oceanic currents. The absolute surface velocity estimates will in turn provide the reference level velocities that are necessary to compute absolute velocities at any depth level from hydrographic data.

Several studies have been carried out to quantify the improvements expected from ongoing and future space gravity missions. The results of these studies in terms of volume flux estimates (transport of water masses) and heat flux estimates (transport of heat by the ocean) are reviewed in this paper. The studies are based on ocean inverse modeling techniques that derive impact estimates solely from the geoid error budgets of forthcoming space gravity missions. Despite some differences in the assumptions made, the inverse modeling calculations all point to significant improvements in estimates of oceanic fluxes. These improvements, measured in terms of reductions of uncertainties, are expected to be as large as a factor of 2.

New developments in autonomous ocean observing systems will complement the developments expected from space gravity missions. The synergies of in situ and satellite observing systems are considered in the conclusion of this paper.

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References

  • Coachman, L.K., and K. Aagaard: 1988, ‘Transports through the Bering Strait: Annual and interannual variability’, J. Geophys. Res. 93, 15,535-15,539.

    ADS  Google Scholar 

  • Fofonoff, N.P.: 1985, ‘Physical properties of seawater: new salinity scale and equation of state for seawater’, J. Geophys. Res. 90, 3,332-3,342.

    ADS  Google Scholar 

  • IPCC Third Assessment Report: 2001, ‘Climate Change 2001: The Scientific Basis, Contribution of Working Group I to the Third Assessment Report of the Intergovernmental Panel on Climate Change (IPCC)’, J. T. Houghton, Y. Ding, D.J. Griggs, M. Noguer, P. J. van der Linden and D. Xiaosu (Eds.), Cambridge University Press, UK. pp 944.

  • Ganachaud, A., and C. Wunsch: 2000, ‘Improved estimates of global ocean circulation, heat transport and mixing from hydrographic data’, Nature 408, 453-457.

    Article  ADS  Google Scholar 

  • Ganachaud, A., C. Wunsch, M.-C. Kim, and B. Tapley: 1997, ‘Combination of TOPEX/Poseidon data with a hydrographic inversion for determination of the oceanic general circulation and its relation to geoid accuracy’, Geophys. J. Int. 128, 708-722.

    ADS  Google Scholar 

  • Hall, M.M., and H.L. Bryden: 1982, ‘Direct estimates and mechanisms of ocean heat transport’, Deep-Sea Res. 29, 339-359.

    Article  Google Scholar 

  • LeGrand, P., H. Mercier, and T. Reynaud: 1998, ‘Combining T/P altimetric data with hydrographic data to estimate the mean dynamic topography of the North Atlantic and improve the geoid’, Ann. Geophys. 16, 638-650.

    ADS  Google Scholar 

  • LeGrand, P.: 2001,’ Impact of the Gravity Field and Steady-State Ocean Circulation Explorer (GOCE) mission on ocean circulation estimates. Volume fluxes in a climatological inverse model of the Atlantic’, J. Geophys. Res. 106, 19,597-19,610.

    ADS  Google Scholar 

  • LeGrand, P., E.J.O. Schrama, and J. Tournadre: 2002, ‘An inverse modeling estimate of the dynamic topography of the ocean’, Geophys. Res. Letters, 30(2), 34-1, Cite ID 1062, DOI 10.1029/2002GLO14917

    Google Scholar 

  • Lemoine, F.G., S.C. Kenyon, J.K. Factor, R.G. Trimmer, N.K. Pavlis, D.S. Chinn, C.M. Cox, S.M. Klosko, S.B. Luthcke, M.H. Torrence, Y.M. Wang,, R.G. Wiliamson, E.C. Pavlis, R.H. Rapp, and T.R. Olson: 1998, ‘The development of the joint NASA GSFC and the National Imagery and Mapping Agency (NIMA) geopotential model EGM96',: NASA Technical Publication, NASA Technical Publication NASA, Center for Aerospace Information. Hanover, MD.

    Google Scholar 

  • Milliff, R.F., M.H. Freilich, W.T. Liu, R. Atlas, and W.G. Large: 2001,’ Global ocean surface vector wind observations from space’, Observing the Oceans in the 21st Century, p102-119, C.J Koblinsky and N.R. Smith (Eds.), GODAE Project Office and Bureau of Meteorology, Melbourne.

    Google Scholar 

  • Pond, S., and G.L. Pickard: 1983, ‘Introductory dynamical oceanography’, 329 pp., Pergamon Press, Oxford.

    Google Scholar 

  • Schröter, J., M. Losch, and B. Sloyan: 2002,’ Impact of the Gravity Field and Steady-State Ocean Circulation Explorer (GOCE) mission on ocean circulation estimates 2. Volume and heat fluxes across hydrographic sections of unequally spaced stations’, J. Geophys. Res. 107, 4-1-4-20.

    Article  Google Scholar 

  • Sigman, D.M., and E.A. Boyle: 2000, ‘Glacial/interglacial variations in atmospheric carbon dioxide’, Nature 407, 171-174.

    Article  Google Scholar 

  • Wunsch, C.: 1978,’ The North Atlantic general circulation west of 50W determined by inverse methods’, Revs. Geophys. and Space Phys. 16, 583-620.

    Article  ADS  Google Scholar 

  • Wunsch, C.: 1984,’ An eclectic Atlantic Ocean circulation model. Part I: The meridional flux of heat’, J. Phys. Oc. 15, 1521-1531.

    Article  Google Scholar 

  • Wunsch, C.: 1996, ‘The Ocean Circulation Inverse Problem’, 422 pp., Cambridge Univ. Press, New York.

    Google Scholar 

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Le Grand, P. Impact of Geoid Improvement on Ocean Mass and Heat Transport Estimates. Space Science Reviews 108, 225–238 (2003). https://doi.org/10.1023/A:1026263022219

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