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Design and measuring performance of the ITER plasma position reflectometer in-port-plug antennas

机译:ITER等离子位置反射仪端口插入式天线的设计和测量性能

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Design parameters of the ITER Plasma Position Reflectometer (PPR) in-port-plug antennas are determined and their measurement performance is assessed using 2D full wave analysis. Two ITER scenarios were selected in order to determine the optimum antenna position and orientation, namely the ITER Q(DT) = 10 baseline scenario (15 MA) and the low density one planned for the initial non-active phase at 7.5 MA. Using them to feed a 3D ray tracing code, the spatial position and optimum orientation angles of each set of emission and detection antennas were determined. Additionally, a far field analysis of the launching radiation patterns led to the definition of the antenna dimensions in terms of optimal power coupling. After this preliminary work, 2D full wave simulations using a finite difference time domain (FDTD) code were carried out to assess the measurement performance of the system. To this end, the detected wave amplitudes and phases were evaluated for each scenario and two models of the scrape-off layer (SOL) density profiles. By calculating the spectrogram of the complex amplitude of the detected wave, the reconstruction of the plasma density profile can be made and be directly compared with the input profiles. As a result from this synthetic diagnostic analysis, an estimation of the error in the determination of the last closed flux surface position was possible.
机译:确定了ITER等离子位置反射仪(PPR)端口内插入天线的设计参数,并使用2D全波分析评估了它们的测量性能。为了确定最佳天线位置和方向,选择了两个ITER场景,即ITER Q(DT)= 10个基线场景(15 MA)和为7.5 MA的初始非活动阶段计划的低密度场景。使用它们馈送3D射线跟踪代码,可以确定每组发射和检测天线的空间位置和最佳定向角。另外,对发射辐射方向图的远场分析导致根据最佳功率耦合来定义天线尺寸。在进行了这项初步工作之后,使用有限时域(FDTD)码进行了二维全波仿真,以评估系统的测量性能。为此,针对每种情况和刮擦层(SOL)密度分布的两个模型,评估了检测到的波幅和相位。通过计算检测波的复振幅的频谱图,可以进行等离子体密度分布图的重建,并将其直接与输入分布图进行比较。通过这种综合诊断分析的结果,可以估计出最后闭合的磁通表面位置时的误差。

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