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Transverse RF focusing in bunching cells for standing-wave linac

机译:横向射频聚焦在聚束电池中,用于驻波直线加速器

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Electron RF linacs for X-ray imaging applications require a small beam radius to achieve fine spatial resolution. By adopting transverse RF focusing in an accelerator, one can achieve a compact system without external magnets. A small beam radius can be obtained by transverse RF focusing with a high accelerating gradient, but the beam energy is usually limited by the available power of RF sources. In contrast, RF phase focusing (transverse RF focusing which depends on the beam phase) is enhanced by modifying the accelerating structure. Since RF phase focusing is effective while the beam velocity is low, the RF phase focusing is enhanced in the built-in bunching section which is used in compact accelerators. This paper reports two approaches to enhance the RF phase focusing. First, the phase velocities of bunching cells are optimized for maximum beam-focusing while preserving beam-bunching. Second, the first bunching cell is formed with a longitudinally asymmetric geometry to suppress the defocusing effect on a portion of the beam slices. In simulations using the PARMELA code, the beam radius was reduced by 50% compared to that produced by on-crest acceleration with longitudinally symmetric cells.
机译:用于X射线成像应用的电子RF直线加速器需要较小的射束半径才能实现良好的空间分辨率。通过在加速器中采用横向RF聚焦,无需外部磁体即可实现紧凑的系统。通过以高加速梯度进行横向RF聚焦可以获得较小的束半径,但是束能量通常受RF源的可用功率限制。相反,通过修改加速结构来增强RF相位聚焦(取决于束相位的横向RF聚焦)。由于射频相位聚焦在光束速度较低时有效,因此在紧凑型加速器中使用的内置聚束部分可以增强射频相位聚焦。本文报告了两种增强RF相位聚焦的方法。首先,优化束状单元的相速度,以在保持光束聚集的同时最大程度地聚焦光束。第二,第一聚束单元形成有纵向不对称的几何形状,以抑制对一部分光束切片的散焦效果。在使用PARMELA代码的模拟中,与通过纵向对称单元进行波峰加速产生的光束半径相比,光束半径减小了50%。

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