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Stability of a Double-Diffusive Interface in the Diffusive Convection Regime

机译:扩散对流系统中双扩散界面的稳定性

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In this paper, the authors explore the conditions under which a double-diffusive interface may become unstable. Focus is placed on the case of a cold, freshwater layer above a warm, salty layer [i.e., the diffusive convection (DC) regime]. The "diffusive interface" between these layers will develop gravitationally unstable boundary layers due to the more rapid diffusion of heat (the destabilizing component) relative to salt. Previous studies have assumed that a purely convective-type instability of these boundary layers is what drives convection in this system and that this may be parameterized by a boundary layer Rayleigh number. The authors test this theory by conducting both a linear stability analysis and direct numerical simulations of a diffusive interface. Their linear stability analysis reveals that the transition to instability always occurs as an oscillating diffusive convection mode and at boundary layer Rayleigh numbers much smaller than previously thought. However, these findings are based on making a quasi-steady assumption for the growth of the interfaces by molecular diffusion. When diffusing interfaces are modeled (using direct numerical simulations), the authors observe that the time dependence is significant in determining the instability of the boundary layers and that the breakdown is due to a purely convective-type instability. Their findings therefore demonstrate that the relevant instability in a DC staircase is purely convective.
机译:在本文中,作者探索了双扩散界面可能变得不稳定的条件。重点放在温暖的咸水层上方的冷淡水层的情况下(即扩散对流(DC)状态)。这些层之间的“扩散界面”将形成重力不稳定的边界层,这是由于热量(不稳定成分)相对于盐的扩散速度更快。先前的研究假设这些边界层的纯粹对流型不稳定性是驱动该系统中对流的原因,并且可以通过边界层瑞利数来对其进行参数化。作者通过对扩散界面进行线性稳定性分析和直接数值模拟来测试该理论。他们的线性稳定性分析表明,向不稳定的过渡总是以振荡扩散对流模式发生,并且在边界层瑞利数比以前认为的小得多。但是,这些发现是基于通过分子扩散对界面的生长做出准稳态假设的。当对扩散界面进行建模(使用直接数值模拟)时,作者观察到,时间依赖性在确定边界层的不稳定性方面很重要,并且击穿是由于纯对流型不稳定性引起的。因此,他们的发现表明,DC楼梯中的相关不稳定性纯粹是对流的。

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  • 来源
    《Journal of Physical Oceanography》 |2012年第5期|p.840-854|共15页
  • 作者单位

    Eawag, Swiss Federal Institute of Aquatic Science and Technology, Kastanienbaum, Switzerland,Department of Geology and Geophysics,Yale University, New Haven, Connecticut,Departmentof Geology and Geophysics, Yale University, 210 Whitney Ave.,New Haven, CT 06511;

    Eawag, Swiss Federal Institute of Aquatic Science and Technology, Kastanienbaum, and Instituteof Biogeochemistry and Pollutant Dynamics, Environmental Science, ETH, Zuerich, Switzerland;

    Eawag, Swiss Federal Institute of Aquatic Science and Technology, Kastanienbaum, and Instituteof Biogeochemistry and Pollutant Dynamics, Environmental Science, ETH, Zuerich, Switzerland;

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