Multi-physics modeling and Au-Ni/Rh coating assessment for ITER ion cyclotron resonance heating radio-frequency sliding contacts

Z. Chen, J. Hillairet, V. Turq, Y. Song, R. Laloo, K. Vulliez, J. Bernard, Q. Yang, G. Lombard, C. Hernandez, L. Ferreira, F. Fesquet, P. Mollard, R. Volpe, F. Ferlay
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引用次数: 2

Abstract

ITER is a large scale fusion experimental device under construction in Cadarache (France) intended to prove the viability of fusion as an energy source. Ion Cyclotron Resonance Heating (ICRH) system is one of the three heating systems which will supply total heating power of 20 MW (40-55 MHz) up to one hour of operation. Radio-Frequency (RF) contacts are integrated within the antennas for assembly and operation considerations, which will face extremely harsh service conditions, including neutron irradiation, heavy electrical loads (RF current reaches up to 2 kA with a linear current density of 4.8 kA/m) and high thermal loads. Based on the thermal analysis, the contact resistance is expected to be lower than 7 mΩ to keep the maximum temperature on the louvers lower than 250°C. Few weeks of vacuum (∼10−5 Pa) baking at 250°C for outgassing is expected before each plasma experimental campaign, under which the RF contact materials' mechanical properties change and diffusion phenomena between different materials are inevitable. CuCrZr and 316L are proper base materials for ITER RF contact louvers and conductors respectively. In order to improve the RF contact's wear and corrosion resistivity as well as to reduce the contact resistance, Au-Ni and Rh functional layers could be electroplated on CuCrZr and 316L accordingly. The application of the Au-Ni/Rh coating pairs is assessed through the thermal ageing and diffusion tests. Wear and electrical contact performances of the Au-Ni/Rh pairs are deeply studied on a dedicated tribometer operated at ITER relevant conditions.
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ITER离子回旋共振加热射频滑动触点的多物理场建模和Au-Ni/Rh涂层评估
ITER是一个正在法国Cadarache建设的大型聚变实验装置,旨在证明聚变作为能源的可行性。离子回旋共振加热(ICRH)系统是三个加热系统之一,将提供20兆瓦(40-55兆赫)的总加热功率,可运行一小时。射频(RF)触点集成在天线内,用于组装和操作考虑,将面临极其恶劣的使用条件,包括中子辐照,重电负载(RF电流高达2 kA,线性电流密度为4.8 kA/m)和高热负载。根据热分析,接触电阻预计将低于7 mΩ,以保持百叶上的最高温度低于250°C。在每次等离子体实验之前,需要在250°C下进行几周的真空(~ 10−5 Pa)放气烘烤,在此条件下射频接触材料的机械性能会发生变化,不同材料之间的扩散现象是不可避免的。CuCrZr和316L分别是ITER射频接触百叶和导体的合适基材。为了提高射频触点的耐磨损和耐腐蚀性能,降低接触电阻,可以在CuCrZr和316L上相应电镀Au-Ni和Rh功能层。通过热老化和扩散试验对Au-Ni/Rh涂层对的应用进行了评价。在ITER相关条件下的专用摩擦计上,对Au-Ni/Rh对的磨损和电接触性能进行了深入研究。
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