Numerical analysis of buoyant-convective liquid metal flow in channels exposed to strong magnetic fields

C. Mistrangelo, L. Buhler
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引用次数: 7

Abstract

In the currently proposed helium cooled lead lithium blanket design the liquid metal serves mainly to breed tritium and the heat flux is removed by helium flowing at high pressure in channels grooved in the walls. The use of a separate coolant has the advantage that the liquid metal can flow in the blanket with smaller velocities compared to those required in self-cooled blanket concepts. As a result the buoyant-convective flow caused by non-uniform thermal conditions and gravity may be comparable or even exceed the forced flow foreseen for tritium removal. Therefore, the knowledge of buoyancy-driven magnetohydrodynamic flows becomes fundamental to understand how the liquid metal circulates in the blanket. In this paper the main characteristics of magneto-convective duct flows are described. Effects of the direction of the temperature gradient with respect to the orientation of the applied magnetic field and the influence of electric conductivity of walls on the flow structure are investigated.
强磁场通道中浮力-对流金属液态流动的数值分析
在目前提出的氦冷却铅锂包层设计中,液态金属主要用于孕育氚,热流由氦在壁槽通道中高压流动除去。使用单独的冷却剂的优点是,与自冷毯概念所需的速度相比,液态金属可以以较小的速度在毯中流动。因此,由非均匀热条件和重力引起的浮力-对流流动可能相当于甚至超过为去除氚而预见的强迫流动。因此,浮力驱动磁流体动力学流动的知识对于理解液态金属如何在覆盖层中循环变得至关重要。本文描述了磁对流管道流动的主要特征。研究了温度梯度方向相对于外加磁场方向的影响以及壁面电导率对流动结构的影响。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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