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Bottom Boundary Potential Vorticity Injection from an Oscillating Flow: A PV Pump

机译:振荡流的底部边界势涡注入:PV泵

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摘要

Oceanic boundary currents over the continental slope exhibit variability with a range of time scales. Numerical studies of steady, along-slope currents over a sloping bathymetry have shown that cross-slope Ekman transport can advect buoyancy surfaces in a bottom boundary layer (BBL) so as to produce vertically sheared geostrophic flows that bring the total flow to rest: a process known as buoyancy shutdown of Ekman transport or Ekman arrest. This study considers the generation and evolution of near-bottom flows due to a barotropic, oscillating, and laterally sheared flow over a slope. The sensitivity of the boundary circulation to changes in oscillation frequency ω, background flow amplitude, bottom slope, and background stratification is explored. When ω/f ≪ 1, where f is the Coriolis frequency, oscillations allow the system to escape from the steady buoyancy shutdown scenario. The BBL is responsible for generating a secondary overturning circulation that produces vertical velocities that, combined with the potential vorticity (PV) anomalies of the imposed barotropic flow, give rise to a time-mean, rectified, vertical eddy PV flux into the ocean interior: a “PV pump.” In these idealized simulations, the PV anomalies in the BBL make a secondary contribution to the time-averaged PV flux. Numerical results show the domain-averaged eddy PV flux increases nonlinearly with ω with a peak near the inertial frequency, followed by a sharp decay for ω/f > 1. Different physical mechanisms are discussed that could give rise to the temporal variability of boundary currents.
机译:大陆坡上的海洋边界流表现出随时间尺度变化的变化。对倾斜测深仪上稳定的,沿斜坡的电流进行的数值研究表明,横坡的Ekman输运可以平移底部边界层(BBL)中的浮力表面,从而产生垂直剪切的地转流,从而使总流保持静止:这个过程称为Ekman运输的浮力关闭或Ekman逮捕。这项研究考虑了由于斜面上的正压,振荡和横向剪切流而产生的近底流。探索了边界循环对振荡频率ω,背景流量幅度,底部斜率和背景分层变化的敏感性。当ω/ f≪ 1时,其中f是科里奥利频率,振荡使系统摆脱了稳定的浮力停机情况。 BBL负责产生二次倾覆环流,产生二次垂直环流,再加上所施加的正压流的潜在涡度(PV)异常,导致进入海洋内部的时间平均,校正垂直涡流通量: “ PV泵”。在这些理想化的模拟中,BBL中的PV异常对时间平均的PV通量产生了次要影响。数值结果表明,域平均涡流PV通量随着ω非线性地增加,并在惯性频率附近达到峰值,随后在ω/ f> 1时急剧衰减。讨论了不同的物理机制,这可能会引起边界电流的时间变化。 。

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