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Liquid metal buoyancy driven convection heat transfer in a rectangular enclosure in the presence of a transverse magnetic field

机译:横向磁场作用下矩形壳体中液态金属浮力驱动的对流换热

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摘要

Liquid metal, an electrically conducting fluid, buoyancy driven convection heat transfer processes are fundamental problems in the design of the fusion reactor due to the influence of the large temperature difference and the strong magnetic field. An investigation of liquid metal buoyancy driven convection heat transfer is conducted in a rectangular enclosure with a square cross-section under the influence of a uniform horizontal magnetic field. Two opposite vertical walls are maintained at different temperatures and the other four walls are thermally insulating. The applied magnetic field is perpendicular to the temperature gradient. Ultrasound Doppler velocimetry measurement method is used to get natural convection velocity in different temperature difference and different magnetic field intensities. The flow is characterized by the external Grashof number, Gr, determined from the temperature difference of the side walls, and the Hartmann number, Ha, determined from the intensities of the imposed magnetic field. Two multiple linear regression models of the Nusselt number based on the Hartmann layers theory are summarized which indicate that the induced current's restraining influence determines the natural convection heat transfer process of viscous electric liquids in a strong magnetic field.
机译:由于大的温差和强磁场的影响,液态金属,一种导电流体,浮力驱动的对流传热过程是聚变反应堆设计中的基本问题。在均匀的水平磁场的影响下,在横截面为正方形的矩形外壳中对液态金属浮力驱动的对流换热进行了研究。两个相对的垂直壁保持不同的温度,而其他四个壁则是隔热的。施加的磁场垂直于温度梯度。超声多普勒测速法用于获得不同温度差和不同磁场强度下的自然对流速度。该流动的特征在于,外部Grashof数Gr由侧壁的温度差确定,而Hartmann数Ha由施加的磁场强度确定。总结了两个基于哈特曼层理论的Nusselt数线性回归模型,表明在强磁场中,感应电流的抑制作用决定了粘性液体的自然对流传热过程。

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