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采用三维粒子模拟对DIII-D偏滤器减速场能量分析仪进行新型数据解释的方法。

Novel data interpretation method for DIII-D divertor retarding field energy analyzer with 3-D particle-in-cell simulations.

作者信息

Zhao B, Donovan D C, Ren J, Phillips M D

机构信息

Department of Nuclear Engineering, University of Tennessee, Knoxville, Tennessee 37916, USA.

出版信息

Rev Sci Instrum. 2024 Jul 1;95(7). doi: 10.1063/5.0218761.

Abstract

A novel data interpretation process that utilizes comprehensive particle-in-cell (PIC) simulations is developed for the new retarding field energy analyzer (RFEA) currently being constructed at DIII-D for the lower divertor using the Divertor Material Evaluation System. This probe is expected to survive a heat load of up to 100 MW/m2 for up to 5 s and reliably measure the main ion temperature (Ti) on the divertor target ranging from 10 to 200 eV. These extreme conditions posed significant engineering limitations on the probe geometry, thus extensive validation work has been performed. The conventional fitting method for the RFEA I-V characteristics is based on a simplified 1-D model without considering the ion space charge inside the probe cavity and may not be sufficient for probes designed for the DIII-D divertor environment. In this article, a more realistic description of the particle propagation process within the RFEA cavity is achieved by including both 3-D geometric effects and ion space charge in the PIC simulations, and the capability to reconstruct the ion energy distribution functions is demonstrated with reasonable consistency.

摘要

利用全粒子模拟开发了一种新颖的数据解释过程,用于正在DIII-D上使用偏滤器材料评估系统为下部偏滤器建造的新型减速场能量分析仪(RFEA)。该探针预计能够承受高达100 MW/m²的热负荷达5秒,并可靠地测量偏滤器靶上10至200 eV范围内的主离子温度(Ti)。这些极端条件对探针几何形状提出了重大工程限制,因此已经进行了广泛的验证工作。RFEA I-V特性的传统拟合方法基于简化的一维模型,未考虑探针腔内的离子空间电荷,对于为DIII-D偏滤器环境设计的探针可能不够充分。在本文中,通过在粒子模拟中纳入三维几何效应和离子空间电荷,实现了对RFEA腔内粒子传播过程更真实的描述,并以合理的一致性展示了重建离子能量分布函数的能力。

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