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A physics based multiscale modeling of cavitating flows

机译:基于物理的空化流多尺度建模

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摘要

Numerical modeling of cavitating bubbly flows is challenging due to the wide range of characteristic lengths of the physics at play: from micrometers (e.g., bubble nuclei radius) to meters (e.g., propeller diameter or sheet cavity length). To address this, we present here a multiscale approach which integrates a Discrete Singularities Model (DSM) for dispersed microbubbles and a two-phase Navier Stokes solver for the bubbly medium, which includes a level set approach to describe large cavities or gaseous pockets. Inter-scale schemes are used to smoothly bridge the two transitioning subgrid DSM bubbles into larger discretized cavities. This approach is demonstrated on several problems including cavitation inception and vapor core formation in a vortex flow, sheet-to-cloud cavitation over a hydrofoil, cavitation behind a blunt body, and cavitation on a propeller. These examples highlight the capabilities of the developed multiscale model in simulating various form of cavitation.
机译:空化气泡流的数值模型具有挑战性,因为在起作用的物理学特征长度范围很广:从微米(例如气泡核半径)到米(例如螺旋桨直径或板腔长度)。为了解决这个问题,我们在这里提出了一种多尺度方法,该方法集成了用于离散微气泡的离散奇异模型(DSM)和用于气泡介质的两相Navier Stokes求解器,该方法包括一个描述大型空腔或气穴的水平集方法。尺度间方案用于将两个过渡子网格DSM气泡平滑地桥接到较大的离散腔中。这种方法在以下几个问题上得到了证明,包括汽蚀开始和涡流中的汽芯形成,水翼上的片状云汽化,钝体后方的汽蚀以及螺旋桨上的汽蚀。这些示例突出了已开发的多尺度模型在模拟各种形式的空化过程中的功能。

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