LI Yangchun, XU Yongfu. Formation and transport of intermediate water masses in a model of the Pacific Ocean[J]. Acta Oceanologica Sinica, 2014, 33(5): 8-16. doi: 10.1007/s13131-014-0480-z
Citation: LI Yangchun, XU Yongfu. Formation and transport of intermediate water masses in a model of the Pacific Ocean[J]. Acta Oceanologica Sinica, 2014, 33(5): 8-16. doi: 10.1007/s13131-014-0480-z

Formation and transport of intermediate water masses in a model of the Pacific Ocean

doi: 10.1007/s13131-014-0480-z
  • Received Date: 2012-12-11
  • Rev Recd Date: 2013-07-01
  • A basin-wide ocean general circulation model of the Pacific Ocean was used to investigate how the interior restoration in the Okhotsk Sea and the isopycnal diffusion affect the circulation and intermediate water masses. Four numerical experiments were conducted, including a run with the same isopycnal and thickness diffusivity of 1.0×103 m2/s, a run employing the interior restoration of temperature and salinity in the Okhotsk Sea with a time scale of 3 months, a run that is the same as the first run except for the enhanced isopycnal mixing, and a final run with the combination of the restoration in the Okhotsk Sea and large isopycnal diffusivity. Simulated results show that the intermediate water masses reproduced in the first run are relatively weak. An increase in isopycnal diffusivity can improve the simulation of both Antarctic and North Pacific intermediate waters, mainly increasing the transport in the interior ocean, but inhibiting the outflow from the Okhotsk Sea. The interior restoration generates the reverse current from the observation in the Okhotsk Sea, whereas the simulation of the temperature and salinity is improved in the high latitude region of the Northern Hemisphere because of the reasonable source of the North Pacific Intermediate Water. A comparison of vertical profiles of temperature and salinity along 50°N between the simulation and observations demonstrates that the vertical mixing in the source region of intermediate water masses is very important.
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  • Danabasoglu G, Gent P R. 1994. The role of mesoscale tracer transport in the global ocean circulation. Science, 264: 1123-1126
    Danabasoglu G, McWilliams J C. 1995. Sensitivity of the global ocean circulation to parameterizations of mesoscale tracer transports. J Climate, 8: 2967-2987
    Duffy P B, Caldeira K, Selvaggi J, et al. 1997. Effects of subgrid-scale mixing parameterizations on simulated distributions of natural 14C, temperature, salinity in a three-dimensional ocean general circulation model. J Phys Oceanogr, 27: 498-524
    England M H. 1995. Using chlorofluorocabons to assess ocean climate models. Geophys Res Lett, 22: 3051-3054
    England M H, Rahmstorf S. 1999. Sensitivity of ventilation rates and radiocarbon uptake to subgrid-scale mixing in ocean models. J Phys Oceanogr, 29: 2802-2827
    Gent P R, McWilliams J C. 1990. Isopycnal mixing in ocean circulation models. J Phys Oceanogr, 20: 150-155
    Gent P R, Willebrand J, McDougall T J, et al. 1995. Parameterizing eddyinduced tracer transports in ocean circulation models. J Phys Oceanogr, 25: 463-474
    Hirst A C, Godfrey J S. 1993. The role of Indonesian throughflow in a global ocean GCM. J Phys Oceangr, 23: 1057-1086
    Hirst A C, McDougall T J. 1996. Deep-water properties and surface buoyancy flux as simulated by a z-coordinate model including eddy-induced advection. J Phys Oceanogr, 26: 1320-1343
    Levitus S, Boyer T P. 1994. World Ocean Atlas 1994 Volume 4: Temperature. NOAA Atlas NESDIS 4. Washington: US Gov Printing Office, 117
    Levitus S, Burgett R, Boyer T P. 1994. World Ocean Atlas 1994 Volume 3: Salinity. NOAA Atlas NESDIS 3. Washington: US Gov Printing Office, 99
    Liu Hailong, Zhang Xuehong, Li Wei, et al. 2004. An eddy-permitting oceanic general circulation model and its preliminary evaluation. Adv Atmos Sci, 21: 675-690
    McDougall T J, Hirst A C, England M H, et al. 1996. Implications of a new eddy parameterization for ocean models. Geophys Res Lett, 23: 2085-2088
    Nakamura T, Awaji T, Hatayama T, et al. 2000. The generation of largeamplitude unsteady lee waves by subinertial K1 tidal flow: a possible vertical mixing mechanism in the Kuril Straits. J Phys Oceanogr, 30: 1601-1621
    Ohshima K I, Wakatsuchi M, Fukamachi Y. 2002. Near-surface circulation and tidal currents of the Okhotsk Sea observed with satellite-tracked drifters. J Geophysic Res, 107: C11m3195, doi: 10.1029/2001JC001005
    Orr J, Maier-Reimer E, Mikolajewicz U, et al. 2001. Estimates of anthropogenic carbon uptake from four 3-D global ocean models. Global Biogeochem Cycles, 15: 43-60
    Roeske F. 2001. An atlas of surface flues based on the ECMWF re-analysis- a climatological dataset to force global ocean general circulation models. Report No. 323, Hamburg, Max-Planck-Institut für Meteorologie, 1-31
    Semtner Jr A J, Chervin R M. 1992. Ocean general circulation from a global eddy-resolving model. J Geophys Res, 97: 5493-5550.
    Simizu D, Ohshima K I. 2006. A model simulation on the circulation in the Sea of Okhotsk and the East Sakhalin Current. J Geophysic Res, 111: C05016, doi: 10.1029/2005JC002980
    Talley L D. 1993. An Okhotsk Sea water anomaly: Implications for ventilation in the North Pacific. Deep-Sea Res, 38: S171-S190
    Xu Yongfu, Aoki S, Harada K. 2006. Sensitivity of the simulated distributions of water masses, CFCs, and Bomb 14C to parameterizations of mesoscale tracer transports in a model of the North Pacific. J Phys Oceanogr, 36: 273-285
    Xu Yongfu, Li Yangchun, Zhao Liang, et al. 2006. A basinwide ocean general circulation model of the Pacific Ocean and its simulation results. Chinese J Atmospheric Sci (in Chinese), 30(5): 927-938
    Xu Yongfu, Nakata K, Ishida A, et al. 1999. Simulations of chlorofluorocarbon uptake in a model of the North Pacific. J Adv Mar Sci Technol Soc, 5: 1-18
    Yamanaka G, Kitamura Y, Endoh M. 1998a. Formation of North Pacific Intermediate Water in Meteorological Research Institute ocean general circulation model 1. subgrid-scale mixing and marginal sea fresh water. J Geophys Res, 103(C13): 30885-30903
    Yamanaka G, Kitamura Y, Endoh M. 1998b, Formation of North Pacific Intermediate Water in Meteorological Research Institute ocean general circulation model 2. Transient tracer experiments. J Geophys Res, 103(C13): 30905-30921
    You Y. 2003a. Implications of cabbeling on the formation and transformation mechanism of North Pacific Intermediate Water. J Geophys Res, 108(C5): 3134, doi: 10.1029/2001JC001285
    You Y. 2003b. The pathway and circulation of North Pacific Intermediate Water. Geophysical Res Lett, 30(24): doi: 10.1029/2003GL018561
    You Y, Suginohara N, Fukasawa M, et al. 2000. Roles of the Okhotsk Sea and Gulf of Alaska in forming the North Pacific Intermediate Water. J Geophys Res, 105: 3253-3280
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