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近场声流喷射

Near-field acoustic streaming jet.

作者信息

Moudjed B, Botton V, Henry D, Millet S, Garandet J P, Ben Hadid H

机构信息

Laboratoire de Mécanique des Fluides et d'Acoustique, CNRS/Université de Lyon, École Centrale de Lyon/Université Lyon 1/INSA de Lyon, ECL, 36 avenue Guy de Collongue, 69134 Ecully Cedex, France.

CEA, Laboratoire d'Instrumentation et d'Expérimentation en Mécanique des Fluides et Thermohydraulique, DEN/DANS/DM2S/STMF/LIEFT, CEA-Saclay, F-91191 Gif-sur-Yvette Cedex, France.

出版信息

Phys Rev E Stat Nonlin Soft Matter Phys. 2015 Mar;91(3):033011. doi: 10.1103/PhysRevE.91.033011. Epub 2015 Mar 19.

Abstract

A numerical and experimental investigation of the acoustic streaming flow in the near field of a circular plane ultrasonic transducer in water is performed. The experimental domain is a parallelepipedic cavity delimited by absorbing walls to avoid acoustic reflection, with a top free surface. The flow velocities are measured by particle image velocimetry, leading to well-resolved velocity profiles. The theoretical model is based on a linear acoustic propagation model, which correctly reproduces the acoustic field mapped experimentally using a hydrophone, and an acoustic force term introduced in the Navier-Stokes equations under the plane-wave assumption. Despite the complexity of the acoustic field in the near field, in particular in the vicinity of the acoustic source, a good agreement between the experimental measurements and the numerical results for the velocity field is obtained, validating our numerical approach and justifying the planar wave assumption in conditions where it is a priori far from obvious. The flow structure is found to be correlated with the acoustic field shape. Indeed, the longitudinal profiles of the velocity present a wavering linked to the variations in acoustic intensity along the beam axis and transverse profiles exhibit a complex shape strongly influenced by the transverse variations of the acoustic intensity in the beam. Finally, the velocity in the jet is found to increase as the square root of the acoustic force times the distance from the origin of the jet over a major part of the cavity, after a strong short initial increase, where the velocity scales with the square of the distance from the upstream wall.

摘要

对水中圆形平面超声换能器近场中的声流进行了数值和实验研究。实验区域是一个由吸声壁界定的平行六面体腔,以避免声反射,顶部为自由表面。通过粒子图像测速法测量流速,得到了分辨率良好的速度剖面。理论模型基于线性声传播模型,该模型能正确再现使用水听器实验测绘的声场,以及在平面波假设下引入纳维-斯托克斯方程的声学力项。尽管近场中的声场很复杂,特别是在声源附近,但在速度场的实验测量和数值结果之间仍取得了良好的一致性,验证了我们的数值方法,并证明了在事先远非显而易见的条件下平面波假设的合理性。发现流动结构与声场形状相关。实际上,速度的纵向剖面呈现出与沿光束轴的声强变化相关的波动,横向剖面呈现出受光束中声强横向变化强烈影响的复杂形状。最后,发现在腔的大部分区域,射流中的速度随着声学力的平方根乘以距射流原点的距离而增加,在经历强烈的短时间初始增加后,速度与距上游壁的距离的平方成正比。

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