首页> 外文期刊>Atomization and Sprays: Journal of the International Institutes for Liquid Atomization and Spray Systems >BREAKING THE RAYLEIGH-PLATEAU INSTABILITY LIMIT USING THERMOCAVITATION WITHIN A DROPLET
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BREAKING THE RAYLEIGH-PLATEAU INSTABILITY LIMIT USING THERMOCAVITATION WITHIN A DROPLET

机译:利用液滴内的热运动突破瑞雷高原的不稳定极限

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Original Manuscript Submitted: 02/06/2013; Final Draft Received: 03/21/2013 We report on the generation of liquid columns that extend far beyond the traditional Rayleigh-Plateau instability onset. The columns are driven by the acoustic pressure wave emitted after bubble collapse. A high-speed video imaging device, which records images at a rate of up to 10~5 fps, was employed to follow their dynamics. These bubbles, commonly termed thermocavitation bubbles, are generated by focusing a midpower (275 mW) continuous wavelength laser into a highly absorbing liquid droplet. A simple model of the propagation of the pressure wavefront emitted after the bubble collapse shows that focusing the pressure wave at the liquid-air interface drives the evolution of the liquid columns. Control over the aspect ratio of the liquid column is realized by adjusting the cavitation bubble's size, beam focus position, and droplet volume.
机译:提交的原稿:2013年2月6日;收到的最终草案:2013年3月21日我们报告了液柱的产生,这些液柱的范围远远超出了传统的瑞利高原不稳定现象。气泡破裂后发出的声压波驱动色谱柱。使用高速视频成像设备以高达10〜5 fps的速率记录图像,以跟踪其动态。这些气泡(通常称为热空化气泡)是通过将中功率(275 mW)连续波长激光聚焦到高吸收性液滴中而产生的。气泡破裂后发出的压力波前传播的简单模型表明,将压力波聚焦在液-气界面会驱动液柱的演化。通过调节空化气泡的大小,束焦点位置和液滴体积,可以控制液柱的长宽比。

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