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首页> 外文期刊>Journal of Fluid Mechanics >Towards a phenomenological model on the deformation and orientation dynamics of finite-sized bubbles in both quiescent and turbulent media
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Towards a phenomenological model on the deformation and orientation dynamics of finite-sized bubbles in both quiescent and turbulent media

机译:朝向静态和湍流介质有限尺寸气泡变形和定向动态的现象学模型

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摘要

A phenomenological model is proposed to describe the deformation and orientation dynamics of finite-sized bubbles in both quiescent and turbulent aqueous media. This model extends and generalizes a previous work that is limited to only the viscous deformation of neutrally buoyant droplets, conducted by Maffettone & Minale (J. Non-Newtonian Fluid Mech., vol. 78, 1998, pp. 227-241), into a high Reynolds number regime where the bubble deformation is dominated by flow inertia. By deliberately dividing flow inertia into contributions from the slip velocity and velocity gradients, a new formulation for bubble deformation is constructed and validated against two experiments designed to capture the deformation and orientation dynamics of bubbles simultaneously with two types of surrounding flows. The relative importance of each deformation mechanism is measured by its respective dimensionless coefficient, which can be isolated and evaluated independently through several experimental constraints without multi-variable fitting, and the results agree with the model predictions well. The acquired coefficients imply that bubbles reorient through body rotation as they rise in water at rest but through deformation along a different direction in turbulence. Finally, we provide suggestions on how to implement the proposed framework for characterizing the dynamics of deformable bubbles/drops in simulations.
机译:提出了一个唯象模型来描述静态和湍流水介质中有限尺寸气泡的变形和取向动力学。该模型将Maffettone&Minale(J.Non-Newtonian Fluid Mech.,vol.781998,pp.227-241)开展的仅限于中性浮力液滴粘性变形的先前工作扩展并推广到高雷诺数区域,其中气泡变形主要由流动惯性控制。通过将流动惯性分为滑移速度和速度梯度的贡献,构造了一个新的气泡变形公式,并通过两个实验验证了该公式的有效性,这两个实验旨在同时捕获两种周围流动中气泡的变形和取向动力学。各变形机制的相对重要性由其各自的无量纲系数来衡量,无需多变量拟合,即可通过多个实验约束独立地对其进行隔离和评估,结果与模型预测吻合良好。所获得的系数意味着,当气泡在静止状态下在水中上升时,它们会通过身体旋转重新定向,但在湍流中,它们会沿着不同的方向变形。最后,我们提出了如何在模拟中实现描述可变形气泡/液滴动力学的框架的建议。

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