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Conceptual design of 30 kW-NBI injector using a multi-cusp ion source for heating of D-shaped Damavand tokamak plasma

机译:使用多尖端离子源加热D形Damavand托卡马克等离子体的30 kW-NBI喷射器的概念设计

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A conceptual design is presented for a neutral beam injection system using the parameters of Damavand tokamak plasma. The design is of a multi-cusp ion source, an efficient large-scale multi-aperture system, a high-energy beam neutralizer cell and a bending magnet for the Damavand neutral beam injector. It is shown that, when taking the tokamak parameters and the amount of beam absorption into consideration, the ion source must deliver an ion beam for which the critical energy, ion beam power and current are 4.5 keV, 30 +/- 1.5 kW and 6.7 A, respectively. The extractor system has three electrodes, each with a radius of 35 mm, and 69 apertures, each with a radius of 3 mm, for extraction of a proton beam with a radius of 35 mm. The extractor transparency was 50%, magnetic fields near the ion source of electron emission and ion extraction areas was less than 0.0003 T, the ion source dead space thickness was 38.4 mm, acceleration gap was 6 mm and the optimum voltage of the extractor suppressor electrode was -2.5 kV. The results show that the neutralization efficiency increased with an increase in the outgassing flux, which is equivalent to a decrease in the neutralizer length at a fixed input flux rate. The maximum efficiency obtained was about 83% at an input flux rate of 37.5 sccm. Considering the hydrogen gas pressure and density in the charge exchange cell, this was compatible with the theoretical relation and the Damavand tokamak vacuum. Iron magnets, a steel transmission chamber and a deviation angle of 180 degrees were considered. The uniform magnetic field along the path of the beam was 0.03 T, number of coils was 112 and the current of was 18.2 A.
机译:提出了一种使用Damavand托卡马克等离子体参数的中性束注入系统的概念设计。该设计包括一个多尖端离子源,一个高效的大规模多孔径系统,一个高能束中和器单元以及一个用于Damavand中性束注入器的弯曲磁体。结果表明,在考虑托卡马克参数和电子束吸收量的情况下,离子源必须提供离子束,其临界能量,离子束功率和电流分别为4.5 keV,30 +/- 1.5 kW和6.7 A分别。提取器系统具有三个电极,每个电极的半径为35 mm,以及69个小孔,每个孔的半径为3 mm,用于提取半径为35 mm的质子束。提取器的透明度为50%,电子发射和离子提取区域的离子源附近的磁场小于0.0003 T,离子源的死区厚度为38.4 mm,加速间隙为6 mm,提取器抑制器电极的最佳电压是-2.5 kV。结果表明,中和效率随排气通量的增加而增加,这等效于在固定输入通量率下中和剂长度的减少。在37.5 sccm的输入通量速率下,获得的最大效率约为83%。考虑到电荷交换池中的氢气压力和密度,这与理论关系和Damavand托卡马克真空相兼容。考虑了铁磁体,钢制传输室和180度的偏角。沿光束路径的均匀磁场为0.03 T,线圈数为112,电流为18.2A。

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