Variability of the internal tide on the southern Monterey Bay continental shelf and associated bottom boundary layer sediment transport

IF 2.2 3区 地球科学 Q2 OCEANOGRAPHY Continental Shelf Research Pub Date : 2016-06-01 DOI:10.1016/j.csr.2016.03.016
Kurt J. Rosenberger, Curt D. Storlazzi, Olivia M. Cheriton
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引用次数: 11

Abstract

A 6-month deployment of instrumentation from April to October 2012 in 90 m water depth near the outer edge of the mid-shelf mud belt in southern Monterey Bay, California, reveals the importance regional upwelling on water column density structure, potentially accounting for the majority of the variability in internal tidal energy flux across the shelf. Observations consisted of time-series measurements of water-column currents, temperature and salinity, and near-bed currents and suspended matter. The internal tide accounted for 15–25% of the water-column current variance and the barotropic tide accounted for up to 35%. The subtidal flow showed remarkably little shear and was dominated by the 7–14 day band, which is associated with relaxations in the dominant equatorward winds typical of coastal California in the spring and summer. Upwelling and relaxation events resulted in strong near-bed flows and accounted for almost half of the current stress on the seafloor (not accounting for wave orbital velocities), and may have driven along-shelf geostrophic flow during steady state conditions. Several elevated suspended particulate matter (SPM) events occurred within 3 m of the bed and were generally associated with higher, long-period surface waves. However, these peaks in SPM did not coincide with the predicted resuspension events from the modeled combined wave–current shear stress, indicating that the observed SPM at our site was most likely resuspended elsewhere and advected along-isobath. Sediment flux was almost equal in magnitude in the alongshore and cross-shore directions. Instances of wave–current shear stress that exceeded the threshold of resuspension for the silty-clays common at these water depths only occurred when near-bed orbital velocities due to long-period surface waves coincided with vigorous near-bed currents associated with the internal tide or upwelling/relaxation events. Thus upwelling/relaxation dynamics are primarily responsible for variability in the internal tide, as well as transport of near-bottom sediment in the mid-self mud belt during the relatively quiescent summer months.

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蒙特利湾南部大陆架内部潮汐的变率及其相关的底边界层沉积物输运
2012年4月至10月,在加利福尼亚州蒙特利湾南部中部陆架泥带外缘附近90 m水深进行了为期6个月的仪器部署,揭示了区域上升流对水柱密度结构的重要性,可能是陆架内部潮汐能通量变化的主要原因。观测包括对水柱流、温度和盐度、近床流和悬浮物的时间序列测量。内潮占水柱流变化的15-25%,正压潮占35%。潮下流表现出明显的小切变,以7-14天的风带为主,这与春夏季加利福尼亚沿海主要的赤道风的松弛有关。上升流和松弛事件导致了强烈的近床流,几乎占了海底当前应力的一半(不考虑波轨道速度),并且可能在稳态条件下驱动了沿陆架地转流。几个悬浮颗粒物(SPM)升高的事件发生在离床3米的范围内,通常与更高的长周期表面波有关。然而,这些SPM峰值与模拟的波流联合剪应力预测的再悬浮事件不一致,表明我们观测到的SPM很可能在其他地方再悬浮并沿等深线平流。沿岸和跨岸方向的输沙量基本相等。在这些水深,波流剪切应力超过粉质粘土重悬阈值的情况仅发生在长周期表面波引起的近床轨道速度与与内部潮汐或上升流/松弛事件相关的强烈近床流相吻合时。因此,在相对平静的夏季,上升流/松弛动力学是内部潮汐变化的主要原因,也是中自泥带近底沉积物输运的主要原因。
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来源期刊
Continental Shelf Research
Continental Shelf Research 地学-海洋学
CiteScore
4.30
自引率
4.30%
发文量
136
审稿时长
6.1 months
期刊介绍: Continental Shelf Research publishes articles dealing with the biological, chemical, geological and physical oceanography of the shallow marine environment, from coastal and estuarine waters out to the shelf break. The continental shelf is a critical environment within the land-ocean continuum, and many processes, functions and problems in the continental shelf are driven by terrestrial inputs transported through the rivers and estuaries to the coastal and continental shelf areas. Manuscripts that deal with these topics must make a clear link to the continental shelf. Examples of research areas include: Physical sedimentology and geomorphology Geochemistry of the coastal ocean (inorganic and organic) Marine environment and anthropogenic effects Interaction of physical dynamics with natural and manmade shoreline features Benthic, phytoplankton and zooplankton ecology Coastal water and sediment quality, and ecosystem health Benthic-pelagic coupling (physical and biogeochemical) Interactions between physical dynamics (waves, currents, mixing, etc.) and biogeochemical cycles Estuarine, coastal and shelf sea modelling and process studies.
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