Compensation of beamlet deflection by mechanical offset of the grids apertures in the SPIDER ion source

P. Agostinetti, V. Antoni, N. Pilan, G. Serianni
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引用次数: 1

Abstract

The SPIDER experiment has the main goal to test the extraction of negative ions from an ITER size ion source. It is designed to extract 1280 negative ion beamlets and accelerate them up to a 100 kV potential. The negative ion beam at exit and the operating parameters will be carefully measured and optimized in order to match the ITER requirements for the NBI (Neutral Beam Injector) ion sources. Inside a negative ion accelerator, there are generally two main factors that can cause deflection of the ion beamlets: the repulsion among beamlets and the electron suppression magnetic field. These two effects are both to be considered highly detrimental for the ITER NBI, as they are expected to cause higher heat loads on the ITER NBI neutralizer and decrease the overall beam quality (in terms of aiming and divergence). Hence they should be considered and minimized also for the SPIDER device, where it will be possible to precisely investigate the beamlet footprint using an instrumented calorimeter relatively close to the accelerator exit. This paper presents a design optimization process aiming at compensating the two described effects. To make this, a mechanical offset of the grounded grid apertures is considered. The OPERA-3d code (Vector Fields Co. Ltd.) is used as the main tool for this optimization process, as it can take into account the beamlet repulsion and the interaction between beamlets and grids. This is made by solving the electrostatic Poisson's equation with a finite element approach, to calculate the particle trajectories of the negative ions under the influence of electrostatic fields, magnetic fields and space charge.
蜘蛛离子源中网格孔径的机械偏移补偿激光束偏转
SPIDER实验的主要目标是测试从ITER大小的离子源中提取负离子。它被设计用来提取1280个负离子束,并将它们加速到100千伏的电位。为了满足ITER对中性束注入器(NBI)离子源的要求,将仔细测量和优化出口的负离子束和运行参数。在负离子加速器内部,通常有两个主要因素可以导致离子束偏转:离子束之间的排斥和电子抑制磁场。这两种影响都被认为对ITER NBI非常有害,因为它们预计会对ITER NBI中和器造成更高的热负荷,并降低整体光束质量(在瞄准和发散方面)。因此,对于SPIDER设备,也应该考虑并最小化它们,在这种设备中,使用相对靠近加速器出口的仪器量热计,可以精确地研究束流足迹。本文提出了一种旨在补偿上述两种效应的设计优化过程。为此,考虑了接地栅极孔径的机械偏移。OPERA-3d代码(Vector Fields Co. Ltd.)被用作该优化过程的主要工具,因为它可以考虑光束排斥以及光束与网格之间的相互作用。这是通过用有限元方法求解静电泊松方程,计算出负离子在静电场、磁场和空间电荷影响下的粒子运动轨迹。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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