A numerical study on the density driven circulation in the Yellow Sea Cold Water Mass

被引:0
作者
Chunyan Zhou
Ping Dong
Guangxue Li
机构
[1] Hohai University,State Key Laboratory of Hydrology
[2] Sichuan University,Water Resources and Hydraulic Engineering
[3] University of Dundee,State Key Laboratory of Hydraulics and Mountain River Engineering
[4] Ocean University of China,School of Engineering, Physics and Mathematics
来源
Journal of Ocean University of China | 2015年 / 14卷
关键词
Yellow Sea Cold Water Mass; density driven circulation; MITgcm; bottom friction;
D O I
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中图分类号
学科分类号
摘要
The circulation of Yellow Sea Cold Water Mass (YSCWM) in the Southern Yellow Sea is investigated using a diagnostic 2D MITgcm model. The resolution of the computational grid is 900 m in the horizontal and 2 m in the vertical where an initial temperature distribution corresponding to a typical measured Yellow Sea Cold Water Mass was applied. The existence of YSCWM that causes fluid density difference, is shown to produce counter-rotating cyclonic horizontal eddies in the surface layer: the inner one is anti-cyclonic (clockwise) and relatively weaker (8–10 cm s−1) while the outer one is cyclonic (anti-clockwise) and much stronger (15–20 cm s−1). This result is consistent with the surface pattern observed by Pang et al. (2004), who has shown that a mesoscale anti-cyclonic eddy (clockwise) exists in the upper layer of central southern Yellow Sea, and a basin-scale cyclonic (anticlockwise) gyre lies outside of the anti-cyclonic eddy, based on the trajectories and drifting velocities of 23 drifters. Below the thermocline, there is an anti-cyclonic (clockwise) circulation. This complex current eddy system is considered to be capable of trapping suspended sediments and depositing them near the front between YSCWM and the coastal waters off the Subei coast, providing an explanation on the sediment depth and size distribution of mud patches in the Southern Yellow Sea. Moreover, sensitive test scenarios indicate that variations of bottom friction do not substantially change the main features of the circulation structure, but will reduce the bottom current velocity, increase the surface current velocity and weaken the upwelling around the frontal area.
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页码:457 / 463
页数:6
相关论文
共 72 条
[1]  
Beardsley R. C.(1992)Lagrangian flow observations in the East China, Yellow and Japan Seas La Mer 30 297-314
[2]  
Limeburner R.(2011)Sediment transport in the Yellow Sea and East China Sea Estuarine, Coastal and Shelf Science 93 248-258
[3]  
Kim K.(1992)A theoretical solution for the thermohaline circulation in the Southern Yellow Sea Chinese Journal of Oceanology and Limnology 10 289-300
[4]  
Candela J.(2004)Interannual variability of the southern Yellow Sea Cold Water Mass Chinese Journal of Oceanology and Limnology 22 231-236
[5]  
Dong L. X.(1984)Upwelling and sedimentation dynamics I. itThe role of upwelling in sedimentation in the Huanghai Sea and East China Sea Chinese Journal of Oceanology and Limnology 2 12-19
[6]  
Guan W. B.(1991)On the Yellow Sea cold water mass-related circulation Yellow Sea Research 4 79-88
[7]  
Chen Q.(2010)Sea-surface temperature fronts in the Yellow and East China Seas from TRMM microwave imager data Deep Sea Research Part II: Topical Studies in Oceanography 57 1017-1024
[8]  
Li X. H.(1999)Influence of stratification on residual tidal currents in the Yellow Sea Journal of Geophysical Research C: Oceans 104 15679015701-106
[9]  
Liu X. H.(1992)Upwelling and surface cold patches in the Yellow Sea in summer: Effects of tidal mixing on the vertical circulation Chinese Journal of Oceanology and Limnology 10 97-632
[10]  
Zeng X. M.(2010)Development of a turbulence closure model for geophysical fluid problems Continental Shelf Research 30 620-875