交变磁场产生的液态金属流脉动

Александр Олегович Полуянов, Илья Владимирович Колесниченко
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摘要

本文对电磁力驱动的液态金属涡流进行了数值研究,电磁力是由短螺线管的交变磁场与感应电流相互作用产生的。短螺线管与圆柱形电池同轴放置,高度为其高度的一半。用于描述这一过程的数学模型是基于无感应近似的磁流体力学方程。计算是通过 ANSYS Fluent 软件包的控制体积法进行的,结果表明平均流动形式为两个环形漩涡。计算得出的速度场显示了涡旋的振荡行为,并伴随着涡旋大小的变化。在所研究的力参数范围内,主要的流动模式是单模振荡流动。利用频谱分析法获得了特征频率和雷诺数与力参数的关系。研究发现,振荡周期接近于大尺度涡旋的旋转周期。已确定振荡具有准周期性,只有在螺线管附近的流动区域才能观察到明显的振荡频率。速度波动的影响很强,在实验室条件下使用共晶镓时可以检测到。我们计划在不久的将来进行这样的实验。共晶镓的流速将通过超声波多普勒风速仪进行测量。数值建模及其验证结果有助于确定在电磁分离杂质过程中降低涡流强度的方法,电磁分离的基础是产生电磁力使粒子位移的感应机制。有关非稳定流振荡频率的数据可用于开发一种非接触技术,用于估算两相介质(如含有不良杂质的液态金属)的平均电导率。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Пульсации течения жидкого металла, генерируемые переменным магнитным полем
This paper studies numerically a vortex flow of liquid metal driven by an electromagnetic force, which is generated by the interaction of the alternating magnetic field of a short solenoid with the induced electrical current. A short solenoid is placed coaxially to a cylindrical cell at half of its height. The mathematical model used to describe the process is based on the equations of magnetic hydrodynamics in the induction-free approximation. Calculations, which are carried out by the control volume method using the ANSYS Fluent package, show that the average flow has the form of two toroidal vortices. The calculated velocity fields are indicative of the oscillatory behavior of vortices, accompanied by a change in their sizes. In the examined range of the force parameter, the predominant flow pattern is the single-mode oscillatory flow. The dependences of characteristic frequency and Reynolds number on the force parameter, are obtained using spectral analysis. It has been found that the oscillation period is close to the period of rotation of a large-scale vortex. It has been established that the oscillations are of quasi-periodic character, and a distinct oscillation frequency is observed only in the flow region near the solenoid. The effect of velocity fluctuations is strong and can be detected in laboratory conditions when using gallium eutectic. Such experiment is planned for the near future. The flow rate of gallium eutectic will be measured by an ultrasonic Doppler anemometer. The results of numerical modeling and their verifications can be useful in determining the ways of reducing the intensity of vortex flows during the electromagnetic separation of impurities, which is based on the induction mechanism responsible for the generation of electromagnetic force that displaces particles. The data on the oscillation frequency of the unsteady flow can be used in the development of a non-contact technique for estimating the average electrical conductivity of a two-phase medium, such as a liquid metal with undesirable impurities.
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