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The tidally induced bottom boundary layer in the rotating frame: development of the turbulent mixed layer under stratification

机译:旋转框架中潮汐引起的底部边界层:分层下湍流混合层的发育

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摘要

To investigate turbulent properties and the developing mechanisms of the tidally induced bottom boundary layer in the linearly stratified ocean, numerical experiments have been executed with a non-hydrostatic three-dimensional model in the rotating frame, changing the temporal Rossby number Ro(t) = vertical bar sigma/f vertical bar, i.e. the ratio of the tidal frequency sigma to the Coriolis parameter f. After the flow transitions to turbulence, the entire water column can be characterized by three layers: the mixed layer where density is homogenized and the flow is turbulent (z < z(m)); the stratified layer where the initial stratification remains and the flow is laminar (z > z(t)); and the interfacial layer between them where the flow is turbulent but the stratification remains (z(m) < z < z(t)). Turbulence is scaled by the frictional velocity u(tau) and the mixed-layer thickness z (u(tau) and u(tau)/N where N is the buoyancy frequency) in the mixed (interfacial) layer, and has similarity. T he mixed layer is thickened by the process where light water of the upper stratified layer is mixed with the lower unstratified layer water through the interfacial layer. As Ro(t) approaches unity, i.e. near the critical latitude, the mixed layer develops more rapidly according to the following mechanism. As becomes Ro(t) closer to unity, the current shear in the interfacial layer is intensified, since the difference of velocity becomes larger between the lower turbulent mixed and upper laminar stratified layers, and this leads to thickening of the interracial layer. As a result, density deviation or the water entrained from above becomes larger, and this causes more rapid development of the mixed layer. In terms of the energy conversion from the eddy kinetic energy (EKE) to the potential energy (PE), the efficiency factor beta which is the ratio of the conversion rate from EKE to PE to that from the tidal shear to EKE increased from 0.25% for Ro(t) = 0.5 to 3.5% for Ro(t) = 1.05 on average. When the time is normalized by the period required for the mixed layer to be thickened to the unstratified turbulent boundary layer delta = u(tau)/vertical bar f + sigma vertical bar, the mixed layer development occurred in a similar manner in all cases. This similarity suggests the possibility of universal formulation for the turbulent tidal mixing under stratification.
机译:为了研究线性分层海洋中潮汐引起的底边界层的湍流特性和形成机理,在非静水三维模型的旋转框架中进行了数值实验,改变了时间Rossby数Ro(t)=垂直线sigma / f垂直线,即潮汐频率sigma与科里奥利参数f的比。在水流转变为湍流之后,整个水柱可以分为三层:混合层,其密度均匀,水流呈湍流(z z(t));它们之间的界面层,其中的流动是湍流的,但仍保持分层(z(m)

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