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Power handling and vapor shielding of pre-filled lithium divertor targets in Magnum-PSI

机译:Magnum-PSI中预填充锂偏转器靶标的功率处理和蒸汽屏蔽

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摘要

To develop realistic liquid lithium divertors for future fusion reactors, this paper aims to improve the understanding of their power handling capabilities. A liquid lithium divertor target prototype, designed to facilitate liquid metal experiments in tokamaks, was tested in Magnum-PSI. The target has an internal reservoir pre-filled with lithium and aims to passively re-supply the textured plasma facing surface during operation. To assess the power handling capability the target was exposed to helium plasmas with increasing power flux density in the linear plasma device Magnum-PSI. The temperature response of lithium targets was recorded via an infrared camera, and compared to finite element method modeling taking into account dissipation via lithium in the plasma. It was found that the target works as intended and can take up to 9 +/- 1 MW m(-2) for 10 s before the mesh layer was damaged, and could continue operating at higher power densities even after being damaged. The total lifetime of the targets was up to 100 s. Overall the targets are found suitable for use in tokamak experiments. Additionally, a central surface temperature evolution indicative of vapor shielding was observed on intact targets. Predicting the target temperature (and consequently the evaporation rates and thermal stresses) is considered very relevant for the design of lithium divertor targets for DEMO. The observed temperature response could indeed be replicated through modeling, which showed that a significant power fraction was dissipated by the lithium in the plasma.
机译:为了开发用于未来融合反应堆的现实液体锂偏移器,本文旨在提高对其动力处理能力的理解。液体锂偏移器靶原型设计用于促进托卡马克斯的液态金属实验,在Magnum-Psi中进行测试。该目标具有内部储存器预先装满锂,并且旨在在操作期间被动地再次提供纹理化等离子体面对面。为了评估电力处理能力,目的通过增加线性等离子体器件Magnum-PSI中的功率通量密度暴露于氦等离子体。通过红外相机记录锂靶的温度响应,并与在血浆中通过锂考虑耗散的有限元方法建模。结果发现,在网格层损坏之前,目标可以按预期工作,最多可容纳9 +/- 1 mw m(-2),并且即使在损坏后也可以继续以更高的电源密度运行。目标的总寿命高达100秒。总的来说,该目标被发现适用于托卡马克实验。另外,在完整的靶标上观察到指示蒸汽屏蔽的中心表面温度演化。预测目标温度(因此,蒸发速率和热应力)被认为是对演示的锂偏移靶的设计非常相关。通过建模可以确定观察到的温度响应,这表明在血浆中锂散发出显着的功率级分。

著录项

  • 来源
    《Nuclear fusion》 |2019年第5期|056003.1-056003.13|共13页
  • 作者单位

    Eindhoven Univ Technol Sci & Technol Nucl Fus Grp Eindhoven Netherlands;

    DIFFER Zaale 20 NL-5612 AJ Eindhoven Netherlands;

    DIFFER Zaale 20 NL-5612 AJ Eindhoven Netherlands;

    Princeton Plasma Phys Lab POB 451 Princeton NJ 08543 USA;

    Eindhoven Univ Technol Sci & Technol Nucl Fus Grp Eindhoven Netherlands;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    fusion; divertor; lithium; power handling; Magnum-PSI; prototype testing;

    机译:融合;骨折;锂;功率处理;magnum-psi;原型测试;

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