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2-D moving mesh modeling of lithium dryout in open surface liquid metal flow applications

机译:2-D在开放式液态金属流动应用中的锂干沟模型模型

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摘要

Liquid lithium displays increasing promise as a replacement for solid plasma facing components (PFCs) in fusion device applications. The Liquid Metal Infused Trench (LiMIT) system, developed at the University of Illinois (UIUC), has demonstrated how thermoelectric magnetohydrodynamics (TEMHD) can be harnessed to drive liquid lithium flow in an open surface PFC. However, in the highest heat flux applications, large local acceleration is created via TEMHD, and the sudden increase in velocity can cause the liquid level to expose the underlying solid, eliminating the protective benefits of the lithium. In order to study potential mitigation strategies, a 2-D COMSOL Multiphysics model was developed using the moving mesh module to capture free surface flow. The model depicts the development of the dryout phenomenon for 2 test cases - slow (1 cm/s) and medium (10 cm/s) flow in 5mm deep trenches - including the liquid level reduction under the high heat flux and the pileup of slower flow both upstream and downstream of the heat stripe. The effectiveness of trench shaping dryout mitigation strategies is examined. For the slow flow case, it is shown that a 1.8 mm ledge placed under the heat stripe will stop dryout, and for the medium flow case, a 2.7 mm ledge is required to mitigate the effect. This model can be used to identify strategies for increasing the viable heat load for open surface liquid lithium PFCs.
机译:液态锂显示器随着融合装置应用中的固体等离子体面向部件(PFC)的替代品而越来越多。在伊利诺伊大学(UIUC)开发的液态金属注入沟槽(限制)系统已经证明了如何利用热电流体动力学(TemHD)在开放表面PFC中驱动液态锂流。然而,在最高的热量通量应用中,通过Temhd创建大的局部加速度,速度突然增加会导致液位暴露下面的固体,从而消除锂的保护益处。为了研究潜在的缓解策略,使用移动网格模块开发了一个2-D COMSOL多发性模型,以捕获自由表面流动。该模型描绘了2个测试用例的干沟现象的发展 - 缓慢(1cm / s)和5mm深沟中的介质(10cm / s)流动 - 包括在高热通量下的液位减少和较慢的堆积在热条纹的上游和下游流动。检查了沟槽塑造干号缓解策略的有效性。对于慢速流动情况,显示在热条上放置的1.8mm凸缘将停止干燥,并且对于介质流量外壳,需要2.7mm的凸缘来减轻效果。该模型可用于识别用于增加开放表面液态锂PFC的可行热负荷的策略。

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