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Beam dynamics for induction accelerators

机译:感应加速器的光束动力学

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摘要

An induction linac uses pulsed power that is applied directly, without any intervening resonant cavities, to accelerate a charged particle pulse. This approach can accommodate a large multiple-beam focusing lattice capable of transporting a large total beam current with a long pulse duration, which may be compressed while accelerating as well as afterward. The mean accelerating gradient is relatively low (less than about 1.5 MV/m), but the potential efficiency of energy transfer can be large up to about 50%. A multiple-beam induction linac is therefore a natural candidate accelerator for a heavy ion fusion (HIF) driver. However, the accelerated beams must meet stringent requirements on occupied phase space volume in order to be focused accurately and with small radius onto the fusion target. Dynamical considerations in the beam injector and linac, as well as in the final compression, final focus, and the fusion chamber, determine the quality of the driver beams as they approach the target. Requirements and tolerances derived from beam dynamics strongly influence the linac configuration and component design. After a summary of dynamical considerations, two major topics are addressed here: transportable current limits, which determine the choice of focal system for the linac, and longitudinal control of the beams, which are potentially destabilized by their interaction with the pulsed power system.
机译:感应直线加速器使用直接施加的脉冲功率,而无需插入任何谐振腔,以加速带电粒子脉冲。该方法可以容纳大型多光束聚焦晶格,该光栅能够以较长的脉冲持续时间传输较大的总电子束电流,在加速时以及在加速过程中以及之后,都可以对其进行压缩。平均加速梯度相对较低(小于约1.5 MV / m),但是能量传递的潜在效率可能高达约50%。因此,多束感应直线加速器是重离子聚变(HIF)驱动程序的自然候选加速剂。但是,加速光束必须满足对所占据相空间体积的严格要求,以便准确且小半径地聚焦在聚变目标上。射束注入器和直线加速器以及最终压缩,最终聚焦和聚变室中的动力学考虑因素决定了驱动器光束接近目标时的质量。从光束动力学得出的要求和公差会极大地影响直线加速器的配置和组件设计。在对动力学方面的考虑进行了总结之后,这里讨论了两个主要主题:可运输的电流限制,它决定了直线加速器的聚焦系统的选择;光束的纵向控制,由于光束与脉冲电源系统的相互作用而可能会不稳定。

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