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Analysis of the ASDEX Upgrade 3-strap antenna with TOPICA code: Curved vs. flat 3D geometry

机译:使用TOPICA代码对ASDEX升级版3带天线进行分析:弯曲3D与平面3D几何

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摘要

Before the 2015/2016 experimental campaign, the ASDEX Upgrade (AUG) 2-strap ICRF antennas with tungsten-coated limiters were replaced by 3-strap antennas. The main goal of the 3-strap launcher was to reduce the release of tungsten (W) in order to improve the ICRF operation, which appeared to be troublesome after the all-W wall installation [1]. In this paper, we analyse the behaviour of the 3-strap antenna with the help of TOPICA code [2], a numerical tool able to take into account a realistic antenna geometry and an accurate plasma description. By loading an experimental plasma profile from the AUG campaign, we characterize the antenna both in terms of input parameters and of radiated fields. In particular, we compare TOPICA results obtained with a simplified 3D flat model adopted during the design phase with the exact 3D curved geometry installed on the AUG experiment. In particular, the curved model predicts a lower coupling to plasma and higher RF electric fields with slightly different distribution in front of the launcher. The capability to include a fully 3D curved model is of great importance to correctly account for all geometrical effects on the antenna performances. The advantages and disadvantages of both geometrical representations are eventually outlined, trying to estimate how the curvature of the antenna can affect code predictions. Comparisons between measured experimental results and simulated ones are presented in [8].
机译:在2015/2016年实验性活动之前,ASDEX升级(AUG)带有钨涂层限制器的2带ICRF天线被3带天线取代。 3带发射器的主要目标是减少钨(W)的释放,以改善ICRF的运行,这在全W墙安装后似乎很麻烦[1]。在本文中,我们借助TOPICA代码[2]来分析3带天线的性能,TOPICA代码是一种能够考虑实际天线几何形状和精确等离子体描述的数值工具。通过加载来自AUG活动的实验性等离子体轮廓,我们可以根据输入参数和辐射场来表征天线。特别是,我们将在设计阶段采用的简化3D平面模型与安装在AUG实验中的精确3D弯曲几何体获得的TOPICA结果进行了比较。特别是,弯曲模型预测了与等离子体的耦合较低,而RF电场较高,发射器前面的分布略有不同。包含完整的3D弯曲模型的能力对于正确考虑所有对天线性能的几何影响非常重要。最终概述了这两种几何表示法的优缺点,试图估计天线的曲率如何影响代码预测。实测实验结果与模拟实验结果的比较在[8]中进行了介绍。

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