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Corrective interface tracking approach to simulate finite-size bubbly flows

机译:纠正界面跟踪方法模拟有限尺寸起泡流动

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This work reports on the development and application of a new approach, corrective interface tracking, to simulate finite size bubbles. Finite-size bubbles, which are by definition bigger than the grid cell size but not well resolved, are not capable of being modeled with any standard two-phase flow approaches, such as interface tracking (IT), Euler-Euler (EE), or Lagrangian particle tracking (LPT). This poses a problem when simulating bubbly flows with different bubble sizes on the same computational grid. The Finite-size Lagrangian particle tracking (FSL) approach (Badreddine et al., 2015), aimed at simulating finite-size bubbly flows by inheriting features of IT and LPT approaches, simulated a single bubble with good accuracy. However, deficiencies with the FSL approach led to a newly developed approach based on interface tracking with the addition of a correcting force. The correcting force, derived from modeling the hydrodynamic forces on a bubble, attempts to correct for errors introduced when a coarse grid is used and the flow and pressure fields around the bubble are under-resolved. Therefore, as a finer grid is used the correcting force decreases. The corrective interface tracking approach is validated against a single bubble rising in stagnant and linear flow, and then results are compared to FSL and to finely resolved IT simulations. (C) 2017 Elsevier Ltd. All rights reserved.
机译:这项工作报告了一种新方法的开发和应用,纠正界面跟踪,模拟有限尺寸气泡。通过定义大于网格单元尺寸但不良好解决的有限尺寸气泡不能与任何标准的两相流方法进行建模,例如界面跟踪(IT),Euler-euler(EE),或拉格朗日粒子跟踪(LPT)。当在相同的计算网格上模拟使用不同的气泡尺寸模拟气泡流动时,这会出现问题。有限尺寸的拉格朗日粒子跟踪(FSL)方法(Badreddine等,2015),旨在通过继承它和LPT方法的遗传功能来模拟有限尺寸的气泡流动,模拟具有良好精度的单个泡沫。然而,具有FSL方法的缺陷导致了基于界面跟踪的新开发的方法,添加了纠正力。衍生自模拟气泡上的流体动力力的校正力试图在使用粗网格时纠正引入的误差,并且掩盖了气泡周围的流动和压力场。因此,随着使用更精细的网格,校正力减小。纠正界面跟踪方法针对在停滞和线性流动中上升的单个气泡验证,然后将结果与FSL进行比较,并精确地解决了IT模拟。 (c)2017 Elsevier Ltd.保留所有权利。

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