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MHD stabilities of liquid metal jet flows with gradient magnetic field

机译:梯度磁场下液态金属射流的MHD稳定性

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Liquid metal free surface flows (films, jets and droplets) are considered as prospective coolants in diverter/limiter system and first wall in fusion reactor, but the knowledge of liquid metal free surface, particularly jet flows, is very limited. In this article, the stability of a jet flow under a gradient magnetic field is investigated, and its MHD effects are the top concern. Firstly, a simplified model is developed to analyze the MHD effects of the jet flow and to explain the reason why it can keep stable, and the examination of the induced electric potential and currents of the jet flow is also included. Secondly, numerical simulation based on the approach of solving the electric potential equation was proceeded to support the theoretical analysis. Finally, experiments with different value of B_0 (maximum value of the magnetic field) and υ_0 (average fluid velocity at the nozzle exit), and different kind of nozzle were performed on the Liquid Metal Experimental Loop (LMEL) in Southwestern Institute of Physics (SWIP), and there's a good agreement with experimental data and theoretical results. Qualitatively, a jet flow under a gradient magnetic field can keep its shape stable due to electromagnetic (EM) force in its direction and the compressed EM force in its cross-section, meanwhile, the reduction in velocity leads to a shorter range distance and a lager radius of cross-section of the jet flow. These effects are closely related to the parameters of the radius of the nozzle, the values of B_0 and υ_0.
机译:液态金属自由表面流(膜,射流和液滴)被认为是分流器/限制器系统和聚变反应堆第一壁中的预期冷却剂,但是液态金属自由表面的知识(特别是射流)非常有限。在本文中,研究了梯度磁场下射流的稳定性,并且其MHD效应是最受关注的问题。首先,建立了简化模型以分析射流的MHD效应并解释其保持稳定的原因,并且还包括对射流的感应电势和电流的检查。其次,基于求解电势方程的方法进行了数值模拟,以支持理论分析。最后,在西南物理学院的液态金属实验回路(LMEL)上进行了B_0(磁场最大值)和υ_0(喷嘴出口处的平均流体速度)值不同以及喷嘴种类不同的实验( SWIP),并且与实验数据和理论结果有很好的一致性。定性地,在梯度磁场下的射流可以通过其方向上的电磁(EM)力和其横截面中的压缩EM力来保持其形状稳定,同时,速度的降低导致射程距离更短,并且射流横截面的较大半径。这些效果与喷嘴半径的参数,B_0和υ_0的值密切相关。

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