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Vibration-induced drop atomization and the numerical simulation of low-frequency single-droplet ejection

机译:振动引起的液滴雾化和低频单液滴喷射的数值模拟

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Vibration-induced droplet ejection is a novel way to create a spray. In this method, a liquid drop is placed on a vertically vibrating solid surface. The vibration leads to the formation of waves on the free surface. Secondary droplets break off from the wave crests when the forcing amplitude is above a critical value. When the forcing frequency is small, only low-order axisymmetric wave modes are excited, and a single secondary droplet is ejected from the tip of the primary drop. When the forcing frequency is high, many high-order non-axisymmetric modes are excited, the motion is chaotic, and numerous small secondary droplets are ejected simultaneously from across the surface of the primary drop. In both frequency regimes a crater may form that collapses to create a liquid spike from which droplet ejection occurs. An axisymmetric, incompressible, Navier-Stokes solver was developed to simulate the low-frequency ejection process. A volume-of-fluid method was used to track the free surface, with surface tension incorporated using the continuum-surface-force method. A time sequence of the simulated interface shape compared favourably with an experimental sequence. The dynamics of the droplet ejection process was investigated, and the conditions under which ejection occurs and the effect of the system parameters on the process were determined. [References: 69]
机译:振动引起的液滴喷射是产生喷雾的新颖方法。在这种方法中,将液滴放置在垂直振动的固体表面上。振动导致在自由表面上形成波。当强迫幅度高于临界值时,次级液滴从波峰折断。当强迫频率较小时,仅激发低阶轴对称波模式,并且单个次级液滴从初级液滴的尖端喷出。当施力频率高时,许多高阶非轴对称模式被激发,运动变得混乱,并且从主液滴的整个表面同时喷射出许多小的次级液滴。在这两种频率范围内,都可能形成陷坑,陷坑会塌陷,形成一个液体尖峰,从该液滴中会发生液滴喷射。开发了轴对称,不可压缩的Navier-Stokes求解器,以模拟低频弹射过程。使用流体体积法跟踪自由表面,并使用连续表面力法合并表面张力。模拟界面形状的时间序列与实验序列相比具有优势。研究了液滴喷射过程的动力学,并确定了发生喷射的条件以及系统参数对该过程的影响。 [参考:69]

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