Experimental Progress in the Development of a Metal Foil Pump for DEMO

Plasma Pub Date : 2023-11-28 DOI:10.3390/plasma6040049
Y. Kathage, Alejandro Vazquez Cortes, S. Merli, Christian Day, T. Giegerich, Stefan Hanke, J. Igitkhanov, Andreas Schulz, Matthias Walker
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Abstract

Experimental findings to contribute to the preliminary design of a metal foil pump for fuel separation in the Direct Internal Recycling loop of the DEMO fusion device are presented. In parametric studies on a small-scale superpermeation experiment with a microwave plasma source and two different metal foil materials, niobium Nb and vanadium V, a substantial increase in permeation with plasma power and with a decrease in pressure was observed. To ease operation in the typical fusion environment, in-situ heating procedures were developed to recover from impurity contamination. The temperature independence of plasma-driven permeation from 600 to 900 °C metal foil temperature was demonstrated. No proof of an isotopic effect for plasma-driven permeation of protium and deuterium could be found. The highest repeatable permeation flux achieved was 6.7 Pa∙m3/(m2∙s) or ~5.5 × 10−3 mol H/(m2∙s). The found compression ratios do safely allow the operation of the metal foil pump using ejector pumps as backing stages for the permeate. In a dedicated experimental setup, the operation of the plasma source in a strong magnetic field was tested. Parametric studies of pressure, power input, magnetic flux density, field gradient and field angle are presented.
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为 DEMO 开发金属箔泵的实验进展
实验结果有助于初步设计用于 DEMO 核聚变装置直接内部循环回路燃料分离的金属箔泵。在利用微波等离子体源和两种不同的金属箔材料(铌和钒)进行的小规模超渗透实验的参数研究中,观察到渗透率随等离子体功率和压力的降低而大幅增加。为了便于在典型的核聚变环境中运行,开发了原位加热程序,以便从杂质污染中恢复。从 600 到 900 °C 的金属箔温度范围内,等离子体驱动的渗透与温度无关。无法证明等离子体驱动的氕和氘渗透具有同位素效应。达到的最高可重复渗透通量为 6.7 Pa∙m3/(m2∙s) 或 ~5.5 × 10-3 mol H/(m2∙s)。根据所发现的压缩比,金属箔泵可以安全地使用喷射泵作为渗透液的后级。在专门的实验装置中,测试了等离子体源在强磁场中的运行情况。对压力、输入功率、磁通密度、磁场梯度和磁场角度进行了参数研究。
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