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Models of internal jumps and the fronts of gravity currents: unifying two-layer theories and deriving new results

机译:内部跳跃模型和重力电流的前沿:统一两层理论并导出新结果

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The steady speeds of the front of a gravity current and of an internal jump on a two-layer stratification are often sought in terms of the heights of the relatively dense fluid both up- and downstream from the front or jump, the height of the channel within which they flow, the densities of the two fluids and gravitational acceleration. In this study a unifying framework is presented for calculating the speeds by balancing mass and momentum fluxes across a control volume spanning the front or jump and by ensuring the assumed pressure field is single-valued, which is shown to be equivalent to forming a vorticity balance over the control volume. Previous models have assumed the velocity field is piecewise constant in each layer with a vortex sheet at their interface and invoked explicit or implicit closure assumptions about the dissipative effects to derive the speed. The new formulation yields all of the previously presented expressions and demonstrates that analysing the vorticity balance within the control volume is a useful means of constraining possible closure assumptions, which is arguably more effective than consideration of the flow energetics. However the new approach also reveals that a novel class of models may be developed in which there is shear in the velocity field in the wake downstream of the front or the jump, thus spreading the vorticity over a layer of non-vanishing thickness, rather than concentrating it into a vortex sheet. Mass, momentum and vorticity balances applied over the control volume allow the thickness of the wake and the speed of the front/jump to be evaluated. Results from this vortex-wake model are consistent with published numerical simulations and with data from laboratory experiments, and improve upon predictions from previous formulae. The results may be applied readily to Boussinesq and non-Boussinesq systems and because they arise as simple algebraic expressions, can be straightforwardly incorporated as jump conditions into spatially and temporally varying descriptions of the motion.
机译:重力电流的前部和内部跳跃的稳定速度通常根据前部或跳跃的相对致密的流体的高度而追求的,沟道的高度在其内流动,两个流体的密度和引力加速度。在该研究中,提出了一种统一框架,用于通过平衡跨越正面或跳跃的控制体的质量和动量通量来计算速度,并且通过确保假设的压力场是单值的,其被示出相当于形成涡旋平衡在控制卷上。以前的模型已经假设速度场在每个层中具有分段常数,其接口处具有涡流表,并调用了关于耗散效果的显式或隐含的闭合假设,以导出速度。新的制剂产生了所有先前呈现的表达,并证明了在控制体积内分析涡旋平衡是约束可能的闭合假设的有用手段,这可以比考虑流量能量的考虑更有效。然而,新方法还揭示了可以开发一种小型模型,其中可以在前跳的速度或跳跃的速度场中剪切,从而在非消失的厚度层上扩散涡度,而不是将其浓缩成涡旋板。在控制体积上施加的质量,动量和涡流余量允许评估尾迹的厚度和前/跳的速度。该涡旋唤醒模型的结果与已发表的数值模拟以及来自实验室实验的数据一致,并在预先从先前公式的预测上改进。结果可以容易地应用于Boussinesq和非Boussinesq系统,并且因为它们作为简单的代数表达而产生,可以直接地掺入作为跳转条件,进入空间和时间变化的运动的描述。

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