A numerical study on the dispersion of the Yangtze River water in the Yellow and East China Seas

  • Park, Tea-Wook (School of Earth and Environmental Sciences and Research Institute of Oceanography, Seoul National University) ;
  • Oh, Im-Sang (School of Earth and Environmental Sciences and Research Institute of Oceanography, Seoul National University)
  • Published : 2004.06.30

Abstract

A three-dimensional numerical model using POM (the Princeton Ocean Model) is established in order to understand the dispersion processes of the Yangtze River water in the Yellow and East China Seas. The circulation experiments for the seas are conducted first, and then on the bases of the results the dispersion experiments for the river water are executed. For the experiments, we focus on the tide effects and wind effects on the processes. Four cases of systematic experiments are conducted. They comprise the followings: a reference case with no tide and no wind, of tide only, of wind only, and of both tide and wind. Throughout this study, monthly mean values are used for the Kuroshio Current input in the southern boundary of the model domain, for the transport through the Korea Strait, for the river discharge, for the sea surface wind, and for the heat exchange rate across the air-sea interface. From the experiments, we obtained the following results. The circulation of the seas in winter is dependent on the very strong monsoon wind as several previous studies reported. The wintertime dispersion of the Yangtze River water follows the circulation pattern flowing southward along the east coast of China due to the strong monsoon wind. Some observed salinity distributions support these calculation results. In summertime, generally, low-salinity water from the river tends to spread southward and eastward as a result of energetic vertical mixing processes due to the strong tidal current, and to spread more eastward due to the southerly wind. The tide effect for the circulation and dispersion of the river water near the river mouth is a dominant factor, but the southerly wind is still also a considerable factor. Due to both effects, two major flow directions appear near the river mouth. One of them is a northern branch flow in the northeast area of the river mouth moving eastward mainly due to the weakened southerly wind. The other is a southern branch flow directed toward the southeastern area off the river mouth mostly caused by tide and wind effects. In this case, however, the tide effect is more dominant than the wind effect. The distribution of the low salinity water follows the circulation pattern fairly well.

Keywords

References

  1. Bang, I.K: and H.J. Lie, 1999. A numerical experiment on the dispersion of the Changjiang River plume. J. Oceanol. Soc. Korea, 34: 185-199
  2. Beardsley, R.C., R. Limeburner, H. Yu and G.A. Cannon, 1985. Discharge of the Changjiang (Yangtze River) into the East China Sea. Cant. Shelf Res., 4: 57-76
  3. Blumberg, A.F. and G.L. Mellor, 1987. A description of a three-dimensional coastal ocean circulation model. In: Three dimensional coastal ocean models, AGU, pp, 1-15
  4. Chen, C. and R.C. Beardsley, 1995. A numerical study of stratified tidal rectification over finite-amplitude banks, Part I: Symmetric banks. J. Phys. Oceanogr., 25: 2090-2110
  5. Chen, C.T,A. and S.L. Wang, 2003. Rare northward flow in the Taiwan Strait in winter: a note. Cant. Shelf Res., 23: 387-391
  6. Czitrom, S.P.R, G. Budeus and G. Krause, 1988. A tidal mixing front in an area influenced by land runoff. Cant. Shelf Res., 8: 225-237
  7. Edinger, J.E., D.K. Bradly and J.C. Geyer, 1974. Heat exchange and transport in the environment, Report No. 14. The Johns Hopkins University, Electric Power Research Institute Publication, No. 74-049-00-3, 125 pp
  8. Garratt, J.R, 1977. Review of drag coefficients over oceans and continents. Mon. Wea. Rev., 105: 915-929
  9. Guan, B., 1994. Patterns and structures of the currents in Bohai, Huanghai, and East China Seas. In: Oceanology of China Seas. Vol. 1. edited by D. Zhou, Y.B. Liang and C.K. Zeng, Kluwer Academic Publishers, Dordrecht, Netherlands, pp. 17-26
  10. Hu, D., 1994. Some striking features of circulation in Huanghai Sea and East China Sea. In: Oceanology of China Seas, Vol. 1, edited by D. Zhou, Y.B. Liang and C.K Zeng, Kluwer Academic Publishers, Dordrecht, Netherlands, pp. 27-38
  11. Isobe, A., 1994. On the Tsushima Warm Current in the Tsushima Strait. Kaiyo Monthly, 26: 802-809
  12. Jacobs, G.A., H.B. Hur and S.K. Riedlinger, 2000. Yellow and East China Seas response the winds and currents. J. Geophys. Res., 105: 21947-21968
  13. Kim, K, H.K. Rho and S.H. Lee, 1991. Water masses and circulation around Cheju-Do in summer. J. Oceanol. Soc. Korea, 26: 262-277 (in Korean with English abstract)
  14. Lee, D.E., 1999. Three-dimensional modeling of the circulation in the Yellow and East China Seas. M.S. Thesis, Seoul National University, Seoul, Korea, 102 pp
  15. Lee, H.J., K.T. Jung, J.K So and J.Y. Chung, 2002. A three-dimensional mixed finite-difference Galerkin function model for the oceanic circulation in the Yellow Sea and the East China Sea in the presence of $M_{2}$ tide. Cant. Shelf Res., 22: 67-91
  16. Lee, J.H., H.J. Lie and C.H. Cho, 2000. The dispersal of the Yangtze River diluted water in the northern East China Sea in summer. EOS Trans. AGU, 2000 Western Pacific Geophysics Meeting, 84 pp
  17. Lee, S.H. and R.C. Beardsley, 1999. Influence of stratification on residual tidal currents in the Yellow Sea. J. Geophys. Res., 104: 15679-15701
  18. Lee, T.N., W.E. Johns, C.-T. Liu, D. Zhang, R. Zantopp and Y. Yang, 2001. Mean transport and seasonal cycle of the Kuroshio east of Taiwan with comparison to the Florida Current. J. Geophys. Res., 106: 22143-22158
  19. Levitus, S. and T.P. Boyer, 1994. World Ocean Atlas 1994 Vol. 4: Temperature. NOAA Atlas NESDIS 4, Washington, D.C.
  20. Levitus, S., R. Burgett and T.P. Boyer, 1994. World Ocean Atlas 1994 Vol. 3: Salinity. NOAA Atlas NESDIS 3, Washington, D.C.
  21. Lie, H.-J., 1986. Summertime hydrographic features in the south-eastern Hwanghae. J. Oceanol. Soc. Korea, 17: 229-242
  22. Mao, H.-L., Z.-J. Gan and S.-F. Lan, 1963. A preliminary study of the Yangtze Diluted Water and its mixing process (in Chinese with English abstract). Oceanologia et Limnologia Sinica, 5: 183-206
  23. Mellor, G.L. and T. Yamada, 1982. Development of a turbulence closure model for geophysical fluid problems. Rev. Geophys. Space Phys., 20: 851-875
  24. Na, J.Y. and J.W. Seo, 1998. The sea surface winds in the east Asian marginal seas, version 2.2. A booklet (CD-ROM), Hanyang University, Korea
  25. NFRDI, 2001. Oceanographic information on Korean waters in 2000. National Fisheries Research and Development Institute, Busan, Korea, 102 pp
  26. Oey, L.-Y. and P. Chen, 1992. A model simulation of circulation in the northeast Atlantic shelves and seas. J. Geophys. Res., 97: 20087-20115
  27. Oh, I.S. and D.E. Lee, 1998. Tides and tidal currents of the Yellow and East China Seas during the last 13,000 years. J. Oceanol. Soc. Korea, 33: 137-145
  28. Qiu, B. and N. Imasato, 1988. Baroclinic instability of buoyancydriven coastal density currents. J. Geophys. Res., 93: 5037-5050
  29. Shen, H., C. Zhang, C. Xiao and J. Zhu, 1998. Change of the discharge and sediment flux to estuary in Changjiang River. In: Health of The Yellow Sea, Edited by G.H. Hong, J. Zhang and B.K. Park, The Earth Love Publication Association, Seoul, pp. 129-148
  30. Simpson, J.H. and J.R. Hunter, 1974. Fronts in the Irish Sea. Nature, 250: 404-406