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Design integration of liquid surface divertors

机译:液体表面分流器的设计集成

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The US Enabling Technology Program in fusion is investigating the use of free flowing liquid surfaces facing the plasma. We have been studying the issues in integrating a liquid surface divertor into a configuration based upon an advanced tokamak, specifically the ARIES-RS configuration. The simplest form of such a divertor is to extend the flow of the liquid first wall into the divertor and thereby avoid introducing additional fluid streams. In this case, one can modify the flow above the divertor to enhance thermal mixing. For divertors with flowing liquid metals (or other electrically conductive fluids) MHD (magneto-hydrodynamics) effects are a major concern and can produce forces that redirect flow and suppress turbulence. An evaluation of Flibe (a molten salt) as a working fluid was done to assess a case in which the MHD forces could be largely neglected. Initial studies indicate that, for a tokamak with high power density, an integrated Flibe first wall and divertor does not seem workable. We have continued work with molten salts and replaced Flibe with Flinabe, a mixture of lithium, sodium and beryllium fluorides, that has some potential because of its lower melting temperature. Sn and Sn-Li have also been considered, and the initial evaluations on heat removal with minimal plasma contamination show promise, although the complicated 3D MHD flows cannot yet be fully modeled. Particle pumping in these design concepts is accomplished by conventional means (ports and pumps). However, trapping of hydrogen in these flowing liquids seems plausible and novel concepts for entrapping helium are also being studied.
机译:美国融合技术研究计划正在研究使用自由流动的面向等离子体的液体表面。我们一直在研究将液体表面分流器集成到基于高级托卡马克的配置中的问题,特别是ARIES-RS配置。这种分流器的最简单形式是将液体第一壁的流动扩展到分流器中,从而避免引入额外的流体流。在这种情况下,可以改变分流器上方的流量以增强热混合。对于带有流动性液态金属(或其他导电流体)的偏滤器,MHD(磁流体动力学)效应是一个主要问题,它会产生重新导向流动并抑制湍流的力。对作为工作流体的Flibe(一种熔融盐)进行了评估,以评估可以大大忽略MHD力的情况。初步研究表明,对于具有高功率密度的托卡马克,集成式Flibe第一壁和分流器似乎不可行。我们继续研究熔融盐,并用Flinabe(一种锂,钠和铍的氟化物的混合物)代替了Flibe,由于其较低的熔融温度,因此具有一定的潜力。还考虑了Sn和Sn-Li,尽管对复杂的3D MHD流量尚无法完全建模,但对散热效果的初步评估显示出了极低的等离子体污染前景。这些设计概念中的颗粒抽吸是通过常规方式(端口和泵)完成的。但是,在这些流动的液体中捕获氢似乎是合理的,并且正在研究捕获氦的新概念。

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