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首页> 外文期刊>Global Biogeochemical Cycles >Multidecadal wind-driven shifts in northwest Pacific temperature, salinity, O-2, and PO4
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Multidecadal wind-driven shifts in northwest Pacific temperature, salinity, O-2, and PO4

机译:西北太平洋温度,盐度,O-2和PO4的多年代际风变

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摘要

The North Pacific gyre boundaries are characterized by stark contrasts in physical and biogeochemical properties. Meridional movement of gyre boundaries, influenced by climate change, can therefore exert a large influence not only on marine ecosystems but also on climate. We examine the evidence for wind-driven southward shifts in subsurface temperature, salinity, PO4, and O-2 within the northwest Pacific from the 1950s to the 2000s. Gyre boundary shifts can explain 30-60% of temperature and salinity trends zonally averaged in the northwest Pacific and observed PO4 and O-2 trends along the 137 degrees E and 144 degrees E meridians. The close tie between the wind-driven shifts in gyre boundaries and the tracer distributions is further supported by results from an eddy-resolving (0.1 degrees x0.1 degrees) Geophysical Fluid Dynamics Laboratory climate model, suggesting that the physical and biogeochemical properties averaged within the northwest Pacific gyre boundaries closely follow the latitude changes of the zero Sverdrup stream function with lags of 0 to 3years. The gyre shift effect on tracer distribution is poorly represented in a coarse resolution (1 degrees x1 degrees) model due partly to poor representations of fronts and eddies. This study suggests that future changes in northwest Pacific PO4 and O-2 content may depend not only on ocean temperature and stratification but also on the ocean gyre response to winds.
机译:北太平洋回旋边界的特征是在物理和生物地球化学性质方面形成鲜明对比。因此,受气候变化影响的回旋边界的子午线运动不仅会对海洋生态系统产生很大影响,而且还对气候产生很大影响。我们研究了从1950年代到2000年代西北太平洋内地下温度,盐度,PO4和O-2风向南移动的证据。回转边界的变化可以解释西北太平洋区域平均温度和盐度趋势的30-60%,并观察到沿东经137度和东经144度的PO4和O-2趋势。旋涡解析(0.1度x0.1度)地球物理流体动力学实验室气候模型的结果进一步支持了回旋边界中风驱动位移与示踪物分布之间的紧密联系,这表明物理和生物地球化学性质在西北太平洋回旋边界紧跟零斯维尔德鲁普河流函数的纬度变化,滞后时间为0至3年。在粗分辨率(1度x 1度)模型中,对示踪剂分布的回旋偏移效果很难表示出来,部分原因是前锋和涡流的表现不佳。这项研究表明,西北太平洋PO4和O-2含量的未来变化可能不仅取决于海洋温度和分层,还取决于海洋回旋对风的响应。

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