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Numerical Research on the Flow Fields in the Power Generation Channel of a Liquid Metal Magnetohydrodynamic System

机译:液体金属磁流动动力学系统发电通道流域的数值研究

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The flow fields in the power generation channel of a magnetohydrodynamic system, which uses a mixture of liquid metal as the power generation medium and a low-boiling-point working medium as the carrying medium, were numerically investigated in the present paper. The influences of the magnetic field intensity, void fraction, and bubble diameter were examined, respectively. The results indicate that an increase in the magnetic field intensity will enhance the turbulence intensity and may reduce the stability of the flow fields, whereas increasing the void fraction will contribute to better flow stability in the power generation channel. The effect of the bubble diameter on the flow field stability is negligible in the range of the study. In addition, it is found that the volume fraction of the gas phase exhibits an M-shape distribution by studying the variation of the slip velocity over time. This paper presents our latest findings and will provide a fundamental theory for future design and operation of liquid metal magnetohydrodynamic systems.
机译:在本文中,在本文中对使用液体金属混合物和作为携带介质的发电介质和低沸点工作介质的磁性流动动力系统的发电通道中的流场。分别检查磁场强度,空隙率和气泡直径的影响。结果表明,磁场强度的增加将增强湍流强度,并且可以降低流场的稳定性,而增加空隙率将有助于在发电通道中更好的流动稳定性。在研究范围内,气泡直径对流场稳定的影响可忽略不计。另外,发现气相的体积分数通过研究滑移速度随时间的变化而表现出M形分布。本文介绍了我们最新的调查结果,并将为未来的液态金属磁力流体动力学系统的设计和运行提供基本理论。

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