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首页> 外文期刊>The Journal of the Acoustical Society of America >Theoretical and numerical calculations for the time-averaged acoustic force and torque acting on a rigid cylinder of arbitrary size in a low viscosity fluid
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Theoretical and numerical calculations for the time-averaged acoustic force and torque acting on a rigid cylinder of arbitrary size in a low viscosity fluid

机译:时间平均声力和扭矩作用于低粘度流体中任意大小的刚性圆柱体的理论和数值计算

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摘要

In this paper, theoretical calculations as well as numerical simulations are performed for the time-averaged acoustic force and torque on a rigid cylinder of arbitrary size in a fluid with low viscosity, i.e., the acoustic boundary layer is thin compared to the cylinder radius. An exact analytical solution and its approximation are proposed in the form of an infinite series including Bessel functions. These solutions can be evaluated easily by a mathematical software package such as mathematica and matlab. Three types of incident waves, plane traveling wave, plane standing wave, and dual orthogonal standing waves, are investigated in detail. It is found that for a small particle, the viscous effects for an incident standing wave may be neglected but those for an incident traveling wave are notable. A nonzero viscous torque is experienced by the rigid cylinder when subjected to dual orthogonal standing waves with a phase shift even when the cylinder is located at equilibrium positions without imposed acoustic forces. Furthermore, numerical simulations are carried out based on the FVM algorithm to verify the proposed theoretical formulas. The theoretical results and the numerical ones agree with each other very well in all the cases considered.
机译:在本文中,对粘度低的流体(即,与圆柱半径相比,声边界层较薄)在任意尺寸的刚性圆柱体上的时间平均声力和扭矩进行了理论计算和数值模拟。精确的解析解及其逼近形式以包含贝塞尔函数的无穷级数形式提出。这些解决方案可以通过数学软件包(如mathematica和matlab)轻松评估。详细研究了三种入射波:平面行波,平面驻波和双正交驻波。发现对于小颗粒,入射驻波的粘性效应可以忽略,但是对于入射行波的粘性效应是显着的。当刚性圆柱体经受具有相移的双正交驻波时,即使圆柱体位于平衡位置而没有施加声力,刚性圆柱体也会经历非零粘性转矩。此外,基于FVM算法进行了数值模拟,以验证所提出的理论公式。在所有考虑的情况下,理论结果和数值结果都非常吻合。

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