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High-speed monodisperse droplet generation by ultrasonically controlled micro-jet breakup

机译:超声控制微射流破碎产生高速单分散液滴

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A liquid jet that is ejected from a nozzle into air will disintegrate into drops via the well-known Plateau– Rayleigh instability within a certain range of Ohnesorge and Reynolds numbers. With the focus on the micrometer scale, we investigate the control of this process by superimposing a suitable ultrasonic signal, which causes the jet to break up into a very precise train of monodisperse droplets. The jet leaves a pressurized container of liquid via a small orifice of about 20 lm diameter. The break-up process and the emerging droplets are recorded via highspeed imaging. An extended parameter study of exit speed and ultrasonic frequency is carried out for deionized water to evaluate the jet’s state and the subsequent generation of monodisperse droplets. Maximum exit velocities obtained reach almost 120 m s-1, and frequencies have been applied up to 1.8 MHz. Functionality of the method is confirmed for five additional liquids for moderate jet velocities.38 m s-1. For the uncontrolled jet disintegration, the drop size spectra revealed broad distributions and downstream drop growth by collision, while the acoustic control generated monodisperse droplets with a standard deviation less than 0.5 %. By adjustment of the acoustic excitation frequency, drop diameters could be tuned continuously from about 30 to 50 lm for all exit speeds. Good agreement to former experiments and theoretical approaches is found for the relation of overpressure and jet exit speed, and for the observed stability regions of monodisperse droplet generation in the parameter plane of jet speed and acoustic excitation frequency. Fitting of two free parameters of the general theory to the liquids and nozzles used is found to yield an even higher precision. Furthermore, the high-velocity instability limit of regular jet breakup described by von Ohnesorge has been superseded by more than a factor of two without entering the wind-induced instability regime, and monodisperse droplet generation was always achievable. Thus, the reliable and robust realization of tunable high-speed monodisperse micro-droplet trains is demonstrated. Some implication for applications is discussed.
机译:从喷嘴喷射到空气中的液体射流将通过在Ohnesorge和Reynolds数的一定范围内众所周知的Plateau-Rayleigh不稳定性分解成液滴。着重于千分尺,我们通过叠加合适的超声信号来研究此过程的控制,该超声信号会导致射流分解成非常精确的单分散液滴列。射流通过直径约20 lm的小孔离开加压的液体容器。通过高速成像记录破裂过程和出现的液滴。对去离子水进行了出口速度和超声频率的扩展参数研究,以评估射流的状态和随后产生的单分散液滴。获得的最大出口速度达到近120 m s-1,并且频率已施加到1.8 MHz。确认了该方法的功能,适用于中等喷射速度38 m s-1的另外五种液体。对于不受控制的射流崩解,液滴尺寸谱显示了较宽的分布和下游液滴由于碰撞而增长,而声学控制产生的单分散液滴的标准偏差小于0.5%。通过调节声激发频率,对于所有出口速度,墨滴直径可以连续地从大约30 lm调整到50 lm。对于过压和射流出口速度的关系,以及在射流速度和声激发频率的参数平面中观察到的单分散液滴产生的稳定区域,发现与先前的实验和理论方法有很好的一致性。已发现将通用理论的两个自由参数拟合到所使用的液体和喷嘴可产生更高的精度。此外,冯·奥内斯堡(von Ohnesorge)描述的常规射流破裂的高速不稳定性极限已被两个以上的因素所取代,而未进入风致不稳定性状态,并且始终可以实现单分散液滴的产生。因此,证明了可调谐高速单分散微滴列车的可靠和强大的实现。讨论了对应用程序的一些含义。

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