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INITIAL IMPACT OF LIQUID JETS AND ENTRAPMENT OF AIR BUBBLES:A NUMERICAL STUDY

机译:液体射流的初始冲击和气泡的包裹:数值研究

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This paper presents a three-dimensional unsteady numerical simulation of a turbulent plunging liquid jet without artificial surface disturbance impinging on a quiecent liquid pool. The focal point of the study is the initial impact and air entrainment process. The multiphase, Volume of Fluid Model is used in combination with the Reynolds Averaged k-s turbulence model. The process of the initial impact of the jet on the free surface, the subsequent formation of an air cavity and the subsequent break-down of the cavity into small bubbles are captued and analyzed. These simulations show clearly and in detail the process of air carryunder by the liquid-liquid jet. The air cavity caused by the intial jet impact stretches deeply under the pool surface untill break down due to the shear created by a torroidal vortex. The predicted maximum height of the developing air cavity shows very good agreement with existing semi-empirical correlations from the literature and experiments. The velocity of the front of the air cavity is equal to about half the jet valocity at impact as shown by previous works and the predicted penetration depth shows acceptable agreement with previous correlations. The VOF model shows a strong capability of tracking the interface between two phases.
机译:本文提出了一种湍流冲入液体射流的三维非定常数值模拟,而没有人为的表面扰动撞击到一个纯净的液体池上。该研究的重点是初始撞击和空气夹带过程。多相流体体积模型与雷诺平均k-s湍流模型结合使用。对射流在自由表面上的初始撞击,随后形成气腔以及随后将腔分解成小气泡的过程进行了分析。这些模拟清楚而详细地显示了液-液射流带走空气的过程。初始射流冲击引起的空气腔深深地伸展到水池表面,直到由于环形涡流产生的剪切力而破裂。预测的正在形成的空气腔的最大高度与文献和实验中现有的半经验相关性非常吻合。如先前的工作所示,气腔前部的速度大约等于撞击时射流速度的一半,并且预测的穿透深度与先前的相关性显示出可接受的一致性。 VOF模型显示出强大的跟踪两个阶段之间的界面的能力。

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