论文标题

短期振荡和动态下降的水滴滴在静止的空气中

Short-term oscillation and falling dynamics for a water drop dripping in quiescent air

论文作者

Zhang, Bo, Tsai, Pei-Hsun, Wang, An-Bang, Popinet, Stéphane, Zaleski, Stéphane, Ling, Yue

论文摘要

通过模拟和实验研究了静止空气中水滴滴水的短期瞬态下降动力学。重点放在短期行为上,而被认为的时间范围涵盖了滴滴的形成后大约八个主要的第二模式振荡。由于流体惯性小,滴的生长是准静态的,并且被静态吊坠理论捕获。然而,当滴落下降时,下降的动力学和产生的后形成状态会触发非线性振荡。刚刚形成时的初始形状分解为球形谐波模式。夹紧的动力学(例如接口倾覆)在滴轮廓上引入了小规模的变化,这又有助于高阶模式的有限幅度。此外,当刚刚形成液滴时的初始动能与落水形状中包含的初始表面能一样重要,并且被发现会扩大初始振荡振幅并诱导所有模式的振荡中的相移。通过同时结合初始表面和动能,自由滴振荡的线性模型对于第二和第三模式产生了很好的预测。模式振幅光谱显示了与羔羊理论一致的主要频率和由于非线性模式耦合而引起的不同模式引起的次要频率。跌落内部和外部的复杂瞬态流是由降落运动与非线性振荡之间的相互作用引起的。流线表明,内部流量与山涡流量大不相同,无法下降而没有振荡。内流和尾流形态的时间演变均遵循主要的第二振荡模式。

The short-term transient falling dynamics of a dripping water drop in quiescent air has been investigated through both simulation and experiment. The focus is on the short term behavior and the time range considered covers about eight dominant second-mode oscillations of the drop after it is formed. Due to the small fluid inertia the growth of the drop is quasi-static and is well captured by the static pendant drop theory. Nevertheless, the pinching dynamics and the resulting post-formation state of the drop trigger a nonlinear oscillation when the drop falls. The initial shape of the drop when it is just formed is decomposed into spherical harmonic modes. The pinching dynamics such as interface overturning introduces small-scale variation on the drop contour, which in turn contributes to the finite amplitudes of the higher-order modes. Furthermore, the initial kinetic energy when the droplet is just formed is as important as the initial surface energy contained in the drop shape, and is found to amplify the initial oscillation amplitude and to induce a phase shift in the oscillation of all the modes. By incorporating both the initial surface and kinetic energy, the linear model for a free drop oscillation yields very good predictions for the second and third modes. The mode amplitude spectra show both the primary frequencies that are consistent with the Lamb's theory and the secondary frequencies arising from different modes due to nonlinear inter-mode coupling. The complex transient flow inside and outside the drop is induced by the interaction between the falling motion and the nonlinear oscillation. The streamlines indicate that the internal flow is substantially different from the Hill vortex for a falling drop without oscillation. The temporal evolutions of both the internal flow and the wake morphology follow the dominant second oscillation mode.

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