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Droplet formation and ejection from a micromachined ultrasonic droplet generator: Visualization and scaling

机译:微机械超声液滴发生器产生的液滴和喷射:可视化和缩放

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摘要

Visualization and scaling of drop-on-demand and continuous-jet fluid atomization of water are presented to elucidate the fluid physics of the ejection process and characterize the modes of operation of a novel micromachined ultrasonic droplet generator. The device comprises a fluid reservoir that is formed between a bulk ceramic piezoelectric transducer and an array of liquid horn structures wet etched into (100) silicon. At resonance, the transducer generates a standing ultrasonic pressure wave within the cavity and the wave is focused at the tip of the nozzle by the horn structure. Device operation has been demonstrated by water droplet ejection from 5 to 10 mu m orifices at multiple resonant frequencies between 1 and 5 MHz. The intimate interactions between focused ultrasonic pressure waves and capillary waves formed at the liquid-air interface located at the nozzle tip are found to govern the ejection dynamics, leading to different ejection modalities ranging from individual droplets to continuous jet. Specifically, we report the results of high-resolution stroboscopic optical imaging of the liquid-air interface evolution during acoustic pumping to elucidate the role of capillary waves in the droplet formation and ejection process. A basic understanding of the governing physics gained through careful visualization and scaling forms the basis for development of improved theoretical models for the droplet formation and ejection processes by accounting for key fluid mechanical features of the phenomena. (c) 2005 American Institute of Physics.
机译:提出了按需滴水和连续喷射水雾化的可视化和缩放比例,以阐明喷射过程的流体物理特性,并表征新型微机械超声液滴发生器的工作模式。该装置包括流体储存器,该流体储存器形成在块状陶瓷压电换能器与湿法刻蚀成(100)硅的液体喇叭结构阵列之间。在共振时,换能器在空腔内产生一个固定的超声波压力波,并且该声波通过喇叭结构聚焦在喷嘴的尖端。通过在1至5 MHz的多个共振频率下从5到10μm的孔中喷出水滴来证明设备的运行。发现聚焦超声压力波与在位于喷嘴尖端的液-气界面处形成的毛细管波之间的密切相互作用决定了喷射动力学,从而导致了从单个液滴到连续喷射的不同喷射方式。具体来说,我们报告了在声泵过程中液-气界面演化的高分辨率频闪光学成像结果,以阐明毛细波在液滴形成和喷射过程中的作用。通过仔细地可视化和缩放获得的对控制物理的基本了解,是通过考虑现象的关键流体力学特征,为改进液滴形成和喷射过程的理论模型的基础。 (c)2005年美国物理研究所。

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