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超声液态金属加工:空化气泡在控制声流中的关键作用。

Ultrasonic liquid metal processing: The essential role of cavitation bubbles in controlling acoustic streaming.

作者信息

Lebon G S Bruno, Tzanakis Iakovos, Pericleous Koulis, Eskin Dmitry, Grant Patrick S

机构信息

Brunel Centre for Advanced Solidification Technology (BCAST), Brunel University London, Uxbridge UB8 3PH, United Kingdom; Computational Science and Engineering Group (CSEG), Department of Mathematics, University of Greenwich, London SE10 9LS, United Kingdom.

Faculty of Technology, Design and Environment, Oxford Brookes University, Oxford OX33 1HX, United Kingdom; Department of Materials, University of Oxford, Oxford OX1 3PH, United Kingdom.

出版信息

Ultrason Sonochem. 2019 Jul;55:243-255. doi: 10.1016/j.ultsonch.2019.01.021. Epub 2019 Jan 18.

Abstract

The acoustic streaming behaviour below an ultrasonic sonotrode in water was predicted by numerical simulation and validated by experimental studies. The flow was calculated by solving the transient Reynolds-Averaged Navier-Stokes equations with a source term representing ultrasonic excitation implemented from the predictions of a nonlinear acoustic model. Comparisons with the measured flow field from Particle Image Velocimetry (PIV) water experiments revealed good agreement in both velocity magnitude and direction at two power settings, supporting the validity of the model for acoustic streaming in the presence of cavitating bubbles. Turbulent features measured by PIV were also recovered by the model. The model was then applied to the technologically important area of ultrasonic treatment of liquid aluminium, to achieve the prediction of acoustic streaming for the very first time that accounts for nonlinear pressure propagation in the presence of acoustic cavitation in the melt. Simulations show a strong dependence of the acoustic streaming flow direction on the cavitating bubble volume fraction, reflecting PIV observations. This has implications for the technological use of ultrasound in liquid metal processing.

摘要

通过数值模拟预测了超声换能器下方水中的声流行为,并通过实验研究进行了验证。通过求解瞬态雷诺平均纳维-斯托克斯方程来计算流动,其中包含一个表示超声激励的源项,该源项根据非线性声学模型的预测来实现。与粒子图像测速(PIV)水实验测量的流场进行比较,发现在两种功率设置下,速度大小和方向都具有良好的一致性,这支持了该模型在存在空化气泡时声流的有效性。模型还恢复了通过PIV测量的湍流特征。然后将该模型应用于液态铝超声处理这一具有重要技术意义的领域,首次实现了在熔体中存在声空化时考虑非线性压力传播的声流预测。模拟结果表明,声流流动方向强烈依赖于空化气泡体积分数,这与PIV观测结果相符。这对于超声在液态金属加工中的技术应用具有重要意义。

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