期刊文献+

Effects of topography on the sub-tidal circulation in the southwestern Huanghai Sea(Yellow Sea)in summer 被引量:4

Effects of topography on the sub-tidal circulation in the southwestern Huanghai Sea(Yellow Sea)in summer
下载PDF
导出
摘要 A nested circulation model system based on the Princeton ocean model (POM) is set up to simulate the currentmeter data from a bottom-mounted Acoustic Doppler Profiler (ADP) deployed at the 30 m depth in the Lunan(South Shandong Province, China) Trough south of the Shandong Peninsula in the summer of 2008, and to study the dynamics of the circulation in the southwestern Huanghai Sea (Yellow Sea). The model has reproduced well the observed subtidal current at the mooring site. The results of the model simulation suggest that the bottom topography has strong steering effects on the regional circulation in summer. The model simulation shows that the Subei (North Jiangsu Province, China)coastal current flows north- ward in summer, in contrast to the southeastward current in the center of the Lunan Trough measured by the moored currentmeter. The analyses of the model results suggest that the southeastward current at the mooring site in the Lunan Trough is forced by the westward wind-driven current along the Lunan coast, which meets the northward Subei coastal current at the head of the Haizhou Bay to flow along an offshore path in the southeastward direction in the Lunan Trough. Analysis suggests that the Subei coastal current, the Lunan coastal current, and the circulation in the Lunan Trough are independent current systems con- trolled by different dynamics. Therefore, the current measurements in the Lunan Trough cannot be used to represent the Subei coastal current in general. A nested circulation model system based on the Princeton ocean model (POM) is set up to simulate the currentmeter data from a bottom-mounted Acoustic Doppler Profiler (ADP) deployed at the 30 m depth in the Lunan(South Shandong Province, China) Trough south of the Shandong Peninsula in the summer of 2008, and to study the dynamics of the circulation in the southwestern Huanghai Sea (Yellow Sea). The model has reproduced well the observed subtidal current at the mooring site. The results of the model simulation suggest that the bottom topography has strong steering effects on the regional circulation in summer. The model simulation shows that the Subei (North Jiangsu Province, China)coastal current flows north- ward in summer, in contrast to the southeastward current in the center of the Lunan Trough measured by the moored currentmeter. The analyses of the model results suggest that the southeastward current at the mooring site in the Lunan Trough is forced by the westward wind-driven current along the Lunan coast, which meets the northward Subei coastal current at the head of the Haizhou Bay to flow along an offshore path in the southeastward direction in the Lunan Trough. Analysis suggests that the Subei coastal current, the Lunan coastal current, and the circulation in the Lunan Trough are independent current systems con- trolled by different dynamics. Therefore, the current measurements in the Lunan Trough cannot be used to represent the Subei coastal current in general.
出处 《Acta Oceanologica Sinica》 SCIE CAS CSCD 2013年第3期1-9,共9页 海洋学报(英文版)
基金 The 973 Project of China under contract No.2012CB95600 the National Natural Science Foundation of China under contract Nos 40888001 and 41176019 the Chinese Academy of Sciences under contract No. KZCX2-YW-JS204 Qingdao Municipal under contract No.10-3-3-38jh
关键词 the southwestern Huanghai Sea (Yellow Sea) Subei (North ]iangsu Province China) coastal cur-rent Lunan (South Shandong Province China) coastal current circulation in the Lunan Trough topography effect the southwestern Huanghai Sea (Yellow Sea), Subei (North ]iangsu Province, China) coastal cur-rent, Lunan (South Shandong Province, China) coastal current, circulation in the Lunan Trough,topography effect
  • 相关文献

参考文献24

  • 1Zhang Fagao, Mao Hanli, Leng Yangui. 1987. Analysis of drifter bottle and drift card experiments in Bohai Sea and Huanghai Sea (1975-1980). ChinJ Oceanol Limnol, 5(1): 67-72.
  • 2Guan B, Mao H. 1982. A note on circulation on the East China Sea. Chinese J Oceanol and Limnol, 1(1): 5-16.
  • 3Li Yao. 2010. Structure and dynamics of the subtidal circulation in the southwestern Yellow Sea (in Chinese) [dissertation]. Qingdao: Institute of Oceanology, Chinese Academy of Sciences, 33-38.
  • 4Levitus Sydney. 1982. Climatological Atlas of the World Ocean, EOS. Trans AGII, 64(49): 962, doi:IO.1029/E0064i049P00962.02.
  • 5Hsueh Y, Yuan D. 1997. A numerical study of currents, heat advection, and sea level fluctuations in the Yellow Sea in winter 1986. J Phy Oceanog,27:2313-2326.
  • 6Gary E, Bennett A, Foreman M. 1994. TOPEX/Poseidon tides estimated using a global inverse model. J Geophys Res, 99(CI2): 821-852.
  • 7Mellor George L, Yamada Tetsuji. 1982. Development of a turbulence closure model for geophysical fluid problems. Rev Geophys, 20(4): 851-875.
  • 8Xia Changshui, Qiao Fangli, Yang Yongzeng, et al. 2006. Three dimensional structure of the summertime circulation in the Yellow Sea from a wave-tide-circulation coupled model. J Geophys Res, 111: CllS03, doi: 1O.1029/2005JC003218.
  • 9Qiao F, Ma D, Zhu M, et al. 2008. Characteristics and scientific response of 2008 Enteromorpha prolifera bloom in the Yellow Sea. Adv Mar Sci (in Chinese), 26(3): 409-410.
  • 10Silva D, Young A C, Levitus S. 1994. Atlas of Surface Marine Data 1994, Vol. 1, Algorithms and Procedures, NOAA Atlas NESDIS 6. Washington, D C: U S Dep of Commer.

二级参考文献18

  • 1da Silva, A.M., C.C. Young and S. Levitus, 1994a. Atlas of Surface Marine Data 1994, Volume 3, Anomalies of Heat and Momentum Fluxes. NOAA Atlas NESDIS 8. U.S. Department of Commerce, NOAA, NESDIS,411p.
  • 2, A AIT-.da Silva, A.M., C.C. Young and S. Levitus, 1994b. Atlas of Surface Marine Data 1994, Volume 4, Anomalies of Fresh Water Fluxes. NOAA Atlas NESDIS 9. U.S. Department of Commerce, NOAA, NESDIS, 308p.
  • 3Mellor, G. and T. Yamada, 1982. Development of a turbulence closure model for geophysical fluid problems, Rev. Geophys. Space Phys. 20:851-875.
  • 4Qiao, F., Y. Yuan and T. Ezer, 2004a. A description of the 3-D wave-current coupled model: 1. Wave-coupled circulation model. J. Phys. Oceanogr. (submitted).
  • 5Qiao, F., Y. Yuan and T. Ezer, 2004b. A description of the 3-D wave-current coupled model: 2. Current coupled wave model, J. Phys. Oceanogr. (submitted).
  • 6Qiao, F., Y. Yuan, Y. Yang et al., 2004c. Wave-induced mixing in the upper ocean: Distribution and applicationto a global ocean circulation model. Geophys. Res. Lett31:L11303, doi: 10.1029/2004GL019824.
  • 7Wang, Z., B. Xu et al., 1997. A numerical Forecasting model of the thermocline in the Bohai Sea and the Yellow Sea, Acta Ocenol. Sin. 19 (4): 1-9. (in Chinese).
  • 8Yu, W., F. Qiao, Y. Yuan and Z. Pan, 1997. Numerical modeling of wind and waves for Typhoon Betty (8710). Acta Ocenol. Sin. 16 (4): 459-473.
  • 9Yuan, Y., F. Qiao, F. Hua, and Z. Wan, 1999. The development of a coastal circulation numerical model: 1.Wave-induced mixing and wave-current interaction. J. Hydrodyn., Ser. A. 14: 1-8. (in Chinese).
  • 10Yuan, Y. and H. Li, 1993. Research on the circulation structure and forming mechanism of the Yellow Sea cold water mass. Science in China 23 (1): 93-103. (in Chinese).

共引文献40

同被引文献37

引证文献4

二级引证文献17

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