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RF Physics of ICWC Discharge at High Cyclotron Harmonics

机译:高回旋谐波下ICWC放电的RF物理

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Recent experiments on Ion Cyclotron Wall Conditioning (ICWC) performed in tokamaks TEXTOR and ASDEX Upgrade with standard ICRF antennas operated at fixed frequencies but variable toroidal magnetic field demonstrated rather contrasting parameters of ICWC discharge in scenarios with on-axis fundamental ion cyclotron resonance (ICR) for protons, ω=ω_(cH+), and with its high cyclotron harmonics (HCH),ω=10ω_(cH+). HCH scenario: very high antenna coupling to low density RF plasmas (P_(pl≈0.9P_(RF-G)) and low energy Maxwellian distribution of CX hydrogen atoms with temperature T_H≈350 eV. Fundamental ICR: lower antenna-plasma coupling efficiency (by factor of about 1.5 times) and generation of high energy non-Maxwellian CX hydrogen atoms (with local energy E_(⊥H) >1.0 keV). In the present paper, we analyze the obtained experimental results numerically using (i) newly developed 0-D transport code describing the process of plasma production with electron and ion collisional ionization in helium-hydrogen gas mixture and (ii) earlier developed 1-D Dispersion Relation Solver accounting for finite temperature effects and collision absorption mechanisms for all plasma species in addition to conventionally examined Landau/TTPM damping for electrons and cyclotron absorption for ions. The numerical study of plasma production in helium with minor hydrogen content in low and high toroidal magnetic fields is presented. The investigation of the excitation, conversion and absorption of plasma waves as function of B_T-field suggests that only fast waves (FW) may give a crucial impact on antenna coupling and characteristics of the ICWC discharge using standard poloidally polarized ICRF antennas designed to couple RF power mainly to FW. The collisional (non-resonant) absorption by electrons and ions and IC absorption by resonant ions of minor concentration in low T_e plasmas is studied at fundamental ICR and its high harmonics.
机译:在Tokamaks Textor中进行的离子回旋壁调节(ICWC)的最新实验,并使用以固定频率运行的标准ICRF天线进行的ASDEX升级,但可变环形磁场在具有轴上的ICWC放电的相当对比参数中,具有联轴基础离子回旋谐振(ICR)对于质子,Ω=ω_(CH +),其高回旋谐波(HCH),ω=10Ω_(CH +)。 HCH场景:非常高的天线耦合到低密度RF等离子体(P_(PL≈0.9p_(rf-g))和Cx氢原子的低能量麦克风分布,具有温度T_h≈350eV。基本ICR:较低的天线 - 等离子体耦合效率(按因素约1.5倍),并产生高能非最高世界CX氢原子(用局部能量E_(√H)> 1.0 keV)。在本文中,我们新增开发的0-D传输代码描述了氦气 - 氢气混合物中电子和离子碰撞电离的等离子体产生的过程和(ii)早期开发的1-D色散关系求解器,用于所有等离子体物种的有限温度效应和碰撞吸收机制除了传统上检查的Landau / TTPM阻尼的电子和反气管吸收离子。低于高环形磁场较小氢含量的血浆产生的数值研究是p怨恨。等离子体波的激发,转换和吸收的研究表明,只有快速波(FW)可以使​​用旨在耦合RF的标准针向极化的ICRF天线对天线耦合和ICWC放电的特性产生至关重要的影响主要是FW。基本的ICR及其高谐波研究了电子和离子的群体和离子和IC吸收的碰撞(非共振)和IC吸收。

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