[1] CHU P C, CHEN Y, LU S. Wind-driven South China Sea deep basin warm-core/cool-core eddies [J]. Journal of Oceanography, 1998, 54: 347-360.
[2] WANG G H, SU J L, CHU P C. Mesoscale eddies in the South China Sea observed with altimetry [J]. Geophysical Res. Lett., 2003, doi: 10.1029/ 2003GL018532.
[3] SHAW P T, CHAO S Y. Surface circulation in the South China Sea [J]. Deep Sea Research I, 1994, 41: 1663-1683.
[4] SHAW P T, CHAO S Y, FU L L. Sea surface height variation in the South China Sea from satellite altimetry [J]. Oceanol. Acta, 1999, 22: 1-17.
[5] MORIMOTO A, YOSHINOTO K Y, YANAGI T. Characteristics of sea surface circulation and eddy field in the South China Sea revealed by satellite altimetric data [J]. Journal of Oceanography, 2000, 56: 331-344.
[6] GAO R, ZHOU F, WANG D. Multi-scale variability of subsurface temperature in the South China Sea [J]. Acta Oceanologica Sinica, 2002, 21: 165-173.
[7] GAO R, WANG D, WANG W ET AL. Annual and semi-annual cycles of the upper thermal structure in the South China Sea [J]. Chinese Journal of Atmospheric Sciences, 2003, 27: 345-353.
[8] WANG G, CHEN D, SU J. Generation and life cycle of the dipole in the South China Sea summer circulation [J]. J Geophys Res, 2006, doi:10.1029/2005JC003314.
[9] WANG G, CHEN D, SU J. Winter eddy genesis in the eastern South China Sea due to orographic wind-jets [J]. J Phys Oceanogr, 2008, 38: 726-732.
[10] ZHANG C, WANG B, CHEN G. Annual sea level amphidromes in the South China Sea revealed by merged altimeter data [J]. Geophysical Res Lett, 2006, doi: 10.1029/2006GL026493.
[11] HAN G, HUANG W. Low-frequency sea level variability in the South China Sea and its relationship with ENSO [J]. Theoretical and Applied Climatology, 2009, 97: 41-52.
[12] WU C R, CHANG C W J. Interannual variability of the South China Sea in a data assimilation model [J]. Geophys Res Lett 2005, 32, L17611, doi:10.1029/2005GL023798.
[13] FANG G, CHEN H, WEI Z ET AL. Trends and interannual variability of the South China Sea surface winds, surface height, and surface temperature in the recent decade [J]. J Geophys Res, 2006, 111, C11S16, doi:10.1029/2005JC003276.
[14] WANG Y, FANG G, WEI Z ET AL. Interannual variation of the South China Sea circulation and its relation to El Niño, as seen from a variable grid global ocean model [J]. J Geophys Res, 2006, 111, C11S14, doi:10.1029/2005JC003269.
[15] FANG W, GUO J, SHI P ET AL. Low frequency variability of South China Sea surface circulation from 11 years of satellite altimeter data [J]. Geophys Res Lett, 2006, 33, L22612, doi:10.1029/2006GL027431.
[16] CHENG X H, QI Y Q. Trends of sea level variations in the South China Sea from merged altimetry data [J]. Global and Planetary Change, 2007, 57: 371-382.
[17] RONG Z, LIU Y, ZONG H, ET AL. Interannual sea level variability in the South China Sea and its response to ENSO [J]. Global and Planetary Change, 2007, 55: 257-272.
[18] CHANG C W J, HSU H H, WU C R, ET AL. Interannual mode of sea level in the South China Sea and the roles of El Niño and El Niño Modoki [J]. Geophys Res Lett, 2008, 35, L03601, doi:10.1029/2007GL032562.
[19] HAN G. Altimeter surveys, coastal tides and shelf circulation [M]// SCHWARTZ M L. Encyclopedia of Coastal Science. Springer, 2005: 27-28.
[20] HAN G. Coastal tides and shelf circulation by altimeter [M]// Ikeda M and Dobson F W. Oceanographic Application of Remote Sensing. CRC Press, 1995: 45-55.
[21] DUCET N, LE TRAON P Y, REVERDIN G. Global high resolution mapping of ocean circulation from TOPEX/Poseidon and ERS-1 and -2 [J]. J Geophys Res, 2000, 105: 19477-19498.
[22] HAN G, IKEDA M, SMITH P C. Annual Variation of Sea Surface Slopes over the Scotian Shelf and Grand Banks from Geosat Altimetry [J]. Atmosphere Ocean, 1993, 31: 591-615.
[23] JAN S, LIEN R-C, TING C-H. Numerical study of baroclinic tides in Luzon Strait [J]. Journal of Oceanography, 2008, 64: 789-802. |