极地海洋中的扩散-对流阶梯:双重扩散与湍流的相互作用

Yuchen Ma, W. Peltier
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摘要

我们进行了数值模拟,以研究在涡旋模式诱导的湍流作用下扩散-对流阶梯的结构。通过调节输入功率$P$和背景密度比$R_\rho$,我们在这些模拟中发现了三种不同类型的阶梯结构:即在双扩散、湍流或双扩散与湍流共同驱动的系统中维持的阶梯。我们的研究表明,双扩散主导系统中的阶梯结构可以用 Linden 和 Shirtcliffe 最初提出的现有模型(《流体力学》,第 87 卷,第 3 期,1978 年,第 417-432 页)来准确描述,我们还引入了新的物理模型来描述湍流主导系统以及湍流和双扩散共同驱动系统中的阶梯结构。我们的综合模型揭示了湍流从根本上支配着扩散-对流阶梯的整个生命周期,包括它们在北冰洋温盐阶梯中的形成、维持和最终破坏。虽然 Ma 和 Peltier 先前的研究(《流体力学》,第 931 卷,2022b)证明湍流可以启动北冰洋阶梯的形成,但这些阶梯在形成后是由湍流和双重扩散共同作用来维持的。强湍流可能会破坏阶梯结构;然而,弱湍流的存在可能会导致阶梯混合层内的不稳定分层,并增强垂直热通量和盐通量。当 $R_\rho$ 相对较大时,湍流甚至可以维持稳定的阶梯结构因子,其机制与实验室实验中观察到的密度阶梯类似。因此,以前关于穿过扩散-对流阶梯的垂直热通量的参数(如 Kelley,J.Geophys.Res.:Oceans,第 95 卷,第 C3 期,1990 年,第 3365-3371 页)可能因忽略了湍流的影响而严重低估了热传输。
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Diffusive-convection staircases in the polar oceans: the interplay between double diffusion and turbulence
Numerical simulations have been conducted to examine the structure of diffusive-convection staircases in the presence of vortical-mode-induced turbulent forcing. By modulating the input power $P$ and the background density ratio $R_\rho$ , we have identified three distinct types of staircase structures in these simulations: namely staircases maintained in the system driven by double-diffusion, by turbulence or by a combination of both double-diffusion and turbulence. While we showed that staircases maintained in the double-diffusion-dominated system are accurately characterised by the existing model originally proposed by Linden & Shirtcliffe (J. Fluid Mech., vol. 87, no. 3, 1978, pp. 417–432), we introduced new physical models to describe the staircase structures maintained in the turbulence-dominated system and the system driven by both turbulence and double-diffusion. Our integrated model reveals that turbulence fundamentally governs the entire life cycle of the diffusive-convection staircases, encompassing their formation, maintenance and eventual disruption in the Arctic Ocean's thermohaline staircases. While our previous work of Ma & Peltier (J. Fluid Mech., vol. 931, 2022b) demonstrated that turbulence could initiate the formation of Arctic staircases, these staircases are sustained by both turbulence and double-diffusion acting together after formation has occurred. Strong turbulence may disrupt staircase structures; however, the presence of weak turbulence could lead to unstable stratification within mixed layers of the staircases, as well as enhancing vertical heat and salt fluxes. Turbulence can even sustain a stable staircase structure factor when $R_\rho$ is relatively large, following a similar mechanism to the density staircases observed in laboratory experiments. Consequently, previous parameterisations (e.g. Kelley, J. Geophys. Res.: Oceans, vol. 95, no. C3, 1990, pp. 3365–3371) on the vertical heat flux across the diffusive-convection staircases may provide a significant underestimation of the heat transport by ignoring the influences of turbulence.
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