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Observed characteristics of tidal currents and mean flow in the northern Yellow Sea

机译:观测到的黄海北部潮流和平均流量的特征

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Several bottom-mounted Acoustic Doppler Current Profiler (ADCP) moorings were deployed in the northern Yellow Sea (NYS) during the four seasons of 2006–2007 and also the summertime of 2009. A synthesis analysis on the time-continuous records was performed to examine the characteristics and variations of tidal currents and mean flow over the observation period at these stations. Tidal currents accounted for ~75% of the total kinetic energy, with the absolute dominance of M2 constituent. Visible vertical variations of tidal flow were found on all sites, featured by the decrease of amplitude, increase of rotation rate as well as a decreasing trend of the phase for M2 component with depth. A notable exception was in the central NYS, where the maximum tidal currents occurred in the upper or middle layers (~20–40 m) instead of near the surface (<10 m). The observed mean flow was relatively weak, smaller than 15 cm/s. Velocity on the northern end of Yellow Sea Trough (YST) was characterized by low magnitude and an obvious layered structure vertically. In the Bohai Strait (BS) and the northern slope area, the currents weakened and the flow direction presented a major trend to deflect counterclockwise with depth in most observations. Summertime cyclonic circulation around the Yellow Sea Cold Water Mass (YSCWM), its intensification on the frontal zone and the Yellow Sea Warm Current (YSWC) for the winter season were all evident by our direct current measurements. However, the details of water exchange through the BS appeared partly different from the traditionally-accepted pattern. The vertical differences of tidal and mean flow were larger in summer than that in winter, implying the influence of thermal structure to the local currents. Affected by the water stratification, mean flow usually reached its maximum near the thermocline in spring and summer, while showing a nearly uniform vertical distribution during winter.
机译:在2006–2007的四个季节以及2009年的夏季,在黄海北部(NYS)部署了数个底部安装的声学多普勒潮流剖面仪(ADCP)系泊设备。对时间连续记录进行了综合分析,以检查这些观测站在观测期内的潮流和平均流量的特征和变化。潮流占总动能的〜75%,其中M2绝对占主导地位。 M2分量随深度的变化在所有位置均可见潮汐垂直变化,其特征是振幅减小,转速增加以及相位减小趋势。一个明显的例外是在纽约州中部,那里最大的潮流出现在上层或中层(〜20-40 m),而不是地表附近(<10 m)。观察到的平均流量相对较弱,小于15 cm / s。黄海海槽(YST)北端的速度特征是低烈度和垂直方向明显的分层结构。在大多数观测中,在渤海海峡和北坡地区,洋流减弱,流向呈现出随深度逆时针偏转的主要趋势。通过我们的直流测量,夏季黄海冷水团(YSCWM)周围的夏季气旋环流,其在额叶带的加剧和冬季的黄海暖流(YSWC)均显而易见。但是,通过BS进行水交换的细节似乎部分不同于传统上接受的模式。夏季潮汐和垂直流的垂直差比冬季大,这说明热力结构对局部水流的影响。受水分层影响,春季和夏季,平均流量通常在温床附近达到最大值,而冬季则显示出几乎均匀的垂直分布。

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  • 来源
    《中国海洋湖沼学报(英文版)》 |2019年第2期|461-473|共13页
  • 作者单位

    College of Oceanic and Atmospheric Sciences, Ocean University of China, Qingdao 266100, China;

    Physical Oceanography Laboratory/CIMST, Ocean University of China and Qingdao National Laboratory for Marine Science and Technology, Qingdao 266100, China;

    College of Oceanic and Atmospheric Sciences, Ocean University of China, Qingdao 266100, China;

    Physical Oceanography Laboratory/CIMST, Ocean University of China and Qingdao National Laboratory for Marine Science and Technology, Qingdao 266100, China;

    Physical Oceanography Laboratory/CIMST, Ocean University of China and Qingdao National Laboratory for Marine Science and Technology, Qingdao 266100, China;

    The First Institute of Oceanography, State Oceanic Administration, Qingdao 266061, China;

    Laboratory for Regional Oceanography and Numerical Modeling, Qingdao National Laboratory for Marine Science and Technology, Qingdao 266000, China;

    National Marine Environmental Monitoring Center, State Oceanic Administration, Dalian 116023, China;

    Physical Oceanography Laboratory/CIMST, Ocean University of China and Qingdao National Laboratory for Marine Science and Technology, Qingdao 266100, China;

    Beihai Offshore Engineering Survey Institute, State Oceanic Administration, Qingdao 266061, China;

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