期刊文献+

Geostrophic meridional transport in tropical Northwest Pacific based on Argo profiles 被引量:4

Geostrophic meridional transport in tropical Northwest Pacific based on Argo profiles
下载PDF
导出
摘要 Absolute geostrophic currents in the North Pacific Ocean were calculated using P-vector method from newly gridded Argo profiling float data collected during 2004-2009. The meridional volume transport of geostrophic currents differed significantly from the classical Sverdrup balance, with differences of 10×106 -20×106 m3 /s in the interior tropical Northwest Pacific Ocean. Analyses showed that errors of wind stress estimation could not explain all of the differences. The largest differences were found in the areas immediately north and south of the bifurcation latitude of the North Equatorial Current west of the dateline, and in the recirculation area of the Kuroshio and its extension, where nonlinear eddy activities were robust. Comparison of the geostrophic meridional transport and the wind-driven Sverdrup meridional transport in a high-resolution OFES simulation showed that nonlinear effects of the ocean circulation were the most likely reason for the differences. It is therefore suggested that the linear, steady wind-driven dynamics of the Sverdrup theory cannot completely explain the meridional transport of the interior circulation of the tropical Northwest Pacific Ocean. Absolute geostrophic currents in the North Pacific Ocean were calculated using P-vector method from newly gridded Argo profiling float data collected during 2004-2009. The meridional volume transport of geostrophic currents differed significantly from the classical Sverdrup balance, with differences of 10× 106-20× 10^6 m^3/s in the interior tropical Northwest Pacific Ocean. Analyses showed that errors of wind stress estimation could not explain all of the differences. The largest differences were found in the areas immediately north and south of the bifurcation latitude of the North Equatorial Current west of the dateline, and in the recirculation area of the Kuroshio and its extension, where nonlinear eddy activities were robust. Comparison of the geostrophic meridional transport and the wind-driven Sverdrup meridional transport in a high-resolution OFES simulation showed that nonlinear effects of the ocean circulation were the most likely reason for the differences. It is therefore suggested that the linear, steady wind-driven dynamics of the Sverdrup theory cannot completely explain the meridional transport of the interior circulation of the tropical Northwest Pacific Ocean.
出处 《Chinese Journal of Oceanology and Limnology》 SCIE CAS CSCD 2013年第3期656-664,共9页 中国海洋湖沼学报(英文版)
基金 Supported by the National Basic Research Program of China(973 Program)(No.2012CB956000) the National Natural Science Foundation of China(Nos.40888001,41176019) supported by KLOCAW1208
关键词 西北太平洋 ARGO 输送 热带 非线性效应 P-矢量方法 数据收集 剖面浮标 Sverdrup theory absolute geostrophic: current P-vector
  • 相关文献

参考文献18

  • 1Bning C W, Dscher R, Isemer H J. 1991. Monthly mean wind stress and Sverdrup transports in the North Atlantic: a comparison of the Hellerman-Rosenstein and Isemer- Hasse Climatologies. J. Phys. Oceanogr., 21(2): 221- 235.
  • 2Chu P C. 1995. P-vector method for determining absolute velocity from hydrographic data. Marine Tech. Soc. J., 29(2): 3-14.
  • 3Chu P C. 2000. P-vector spiral and determination ot al~solute velocities. J. Oceanogr., 56: 591-599,.
  • 4Chu P C. 2006. P-Vector Inverse Method. Springer. 605pp.
  • 5Chu P C, Fan C W, Lozano C J, Kerling J. 1998. An airborne expandable bathytbermograph (AXBT) survey of the South China Sea, May 1995. J. Geophys. Res., 103: 21 637-21 652.
  • 6Chu P C, Lan J, Fan C W. 2001. Japan Sea circulation and thermohaline structure Part I, Climatology. J. Phys. Oceano~r., 31: 244-271.
  • 7Foreman R J, Emeis S. 2010. Revisiting the definition of the drag coefficient in the marine atmospheric boundary layer. J. Phys. Oceanogr., 40:2 325-2 332.
  • 8Godfrey J S. 1989. A Sverdrup model of the depth-integrated flow for the world ocean allowing for island circulations.Geophys. Astrophys. Fluid Dyn., 45: 89-112.
  • 9Hautala S L, Roemmich D H, Schmitz Jr W J. 1994. Is the North Pacific in Sverdrup balance along 24~N? J. Geophys. Res., 99:16 041-16 052.
  • 10Large W G, Pond S. 1981. Open ocean momentum flux measurements in moderate to strong wind. J. Phys. Oceanogr., 11: 324-336.

同被引文献6

引证文献4

二级引证文献5

相关作者

内容加载中请稍等...

相关机构

内容加载中请稍等...

相关主题

内容加载中请稍等...

浏览历史

内容加载中请稍等...
;
使用帮助 返回顶部