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Space-charge transport limits of ion beams in periodic quadrupole focusing channels

机译:周期性四极聚焦通道中离子束的空间电荷传输极限

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It has been empirically observed in both experiments and particle-in-cell simulations that space-charge-dominated beams suffer strong growth in statistical phase-space area (degraded quality) and particle losses in alternating gradient quadrupole transport channels when the undepressed phase advance sigma(0) increases beyond about 85 degrees per lattice period. Although this criterion has been used extensively in practical designs of strong focusing intense beam transport lattices, the origin of the limit has not been understood. We propose a mechanism for the transport limit resulting from strongly chaotic classes of halo particle resonances near the core of the beam that allow near-edge particles to rapidly increase in oscillation amplitude when the space-charge intensity and the flutter of the matched beam envelope are both sufficiently large. When coupled with a diffuse beam edge and/or perturbations internal to the beam core that can drive particles outside the edge, this mechanism can result in large and rapid halo-driven increases in the statistical phase-space area of the beam, lost particles, and degraded transport. A core-particle model is applied to parametrically analyze this process. Extensive self-consistent particle in cell simulations is employed to better quantify properties of the space-charge limits and to verify core-particle model predictions. (c) 2006 Elsevier B.V. All rights reserved.
机译:在实验和单元格模拟中均已通过经验观察到,当未受压的相位超前sigma时,以空间电荷为主的光束在统计相空间区域(质量下降)中会遭受强烈的增长,并且在交替梯度四极传输通道中会遭受颗粒损失。 (0)增加超过每个晶格周期约85度。尽管此标准已在强聚焦强光束传输晶格的实际设计中广泛使用,但尚未理解极限的起源。我们提出了一种用于传输限制的机制,这种传输限制是由光束中心附近的强烈混沌类的晕粒子共振引起的,当空间电荷强度和匹配光束包络的颤动为时,允许近边缘粒子的振荡幅度迅速增加。两者都足够大。当与漫射束边缘和/或束芯内部的扰动(可以将粒子驱动到边缘外)耦合时,此机制会导致束的统计相空间区域中大量快速的光晕驱动增加,丢失的粒子,和运输质量下降。应用核心粒子模型对这个过程进行参数分析。在细胞模拟中使用广泛的自洽粒子来更好地量化空间电荷极限的性质并验证核粒子模型的预测。 (c)2006 Elsevier B.V.保留所有权利。

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