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Geostrophic balance preserving interpolation in mesh adaptive linearised shallow-water ocean modelling

机译:网格自适应线性化浅水海洋建模中的地转平衡保持插值

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摘要

The accurate representation of geostrophic balance is an essential requirement for numerical modelling of geophysical flows. Significant effort is often put into the selection of accurate or optimal balance representation by the discretisation of the fundamental equations. The issue of accurate balance representation is particularly challenging when applying dynamic mesh adaptivity, where there is potential for additional imbalance injection when interpolating to new, optimised meshes. In the context of shallow-water modelling, we present a new method for preservation of geostrophic balance when applying dynamic mesh adaptivity. This approach is based upon interpolation of the Helmholtz decomposition of the Coriolis acceleration. We apply this in combination with a discretisation for which states in geostrophic balance are exactly steady solutions of the linearised equations on an f-plane; this method guarantees that a balanced and steady flow on a donor mesh remains balanced and steady after interpolation onto an arbitrary target mesh, to within machine precision. We further demonstrate the utility of this interpolant for states close to geostrophic balance, and show that it prevents pollution of the resulting solutions by imbalanced perturbations introduced by the interpolation. © 2011 Elsevier Ltd.
机译:精确描述地转平衡是地球物理流数值模拟的基本要求。通常,通过基本方程的离散化,在选择准确的或最佳的余额表示形式时会花费大量的精力。当应用动态网格自适应性时,精确的平衡表示问题尤其具有挑战性,在动态网格自适应中,当插值到新的,优化的网格时,可能会出现其他不平衡注入。在浅水建模的背景下,我们提出了一种在应用动态网格自适应性时保持地转平衡的新方法。该方法基于科里奥利加速度的亥姆霍兹分解的插值。我们将其与离散化结合应用,对于离散化而言,地转平衡中的状态恰好是f平面上线性化方程的稳定解;此方法可确保在插值到任意目标网格上后,供体网格上的平衡和稳定流在机器精度范围内保持平衡和稳定。我们进一步证明了该插值器对接近地转平衡状态的效用,并表明它可防止插值引入的不平衡扰动对所得解决方案造成污染。 ©2011爱思唯尔有限公司。

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