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Experimental investigation on splashing and nonlinear fingerlike instability of large water drops

机译:大水滴飞溅和非线性指状不稳定性的实验研究

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The fluid physics of the splashing and spreading of a large-scale water drop is experimentally observed and investigated. New phenomena of drop impact that differ from the conventional Rayleigh-Taylor instability theory are reported. Our experimental data shows good agreement with previous work at low Weber number but the number of fingers or instabilities begins to deviate from the R-T equation of Allen at high Weber numbers. Also observed were multiple waves (or rings) on the spreading liquid surface induced from pressure bouncing (or pulsation) within the impacting liquid. The first ring is transformed into a radially ejecting spray whose initial speed is accelerated to a velocity of 4-5 times that of the impacting drop. This first ring is said to be "splashing," and its structure is somewhat chaotic and turbulent, similar to a columnar liquid jet surrounded by neighboring gas jets at relatively high impact speed. At lower impact speeds, splashing occurs as a crown-shaped cylindrical sheet. A second spreading ring is observed that transforms into fingers in the circumferential direction during spreading. At higher Weber number, the spreading of a third ring follows that of the second. This third ring, induced by the pressure pulsation, overruns and has fewer fingers than the second, which is still in a transitional spreading stage. Several important relationships between the drop impact speed, the spray ejection speed of the first ring, and the number of fingers of the second and third rings are presented, based on data acquired during a set of drop impact experiments. Issues related to the traditional use of the R-T instability are also addressed.
机译:通过实验观察和研究了大水滴的飞溅和扩散的流体物理学。据报道,与传统的瑞利-泰勒不稳定性理论不同的新的跌落冲击现象。我们的实验数据表明,与先前在低Weber数下的工作相吻合,但是在高Weber数下,手指或不稳定性的数量开始偏离艾伦的R-T方程。还可以观察到,由于撞击液体中的压力弹跳(或脉动),在散布的液体表面上产生了多个波(或环)。第一环转变为径向喷射的喷雾,其初始速度被加速到冲击液滴速度的4-5倍。据说该第一环是“飞溅的”,并且其结构有些混乱和湍流,类似于以相对较高的撞击速度被周围的气体射流包围的圆柱状液体射流。在较低的撞击速度下,飞溅会形成为冠状的圆柱形薄片。观察到第二个扩展环,在扩展过程中,该第二个扩展环在圆周方向上转变为手指。在较高的韦伯数下,第三环的扩散跟随第二环的扩散。由压力脉动引起的第三环比第二环(其仍处于过渡扩展阶段)超限并且具有更少的指状部。基于在一组跌落冲击实验期间获得的数据,给出了跌落冲击速度,第一环的喷雾喷射速度以及第二和第三环的指状件数量之间的几个重要关系。还解决了与传统使用R-T不稳定性有关的问题。

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