EM and Thermo-Mechanical Analysis and Design of a Compact-RFQ

J. Portilla, J. Feuchtwanger, I. Arredondo, E. Asua, V. Etxebarria, N. Vallis, R. Enparantza, I. Ariz, I. Muñoz, U. Etxebeste, I. Hernández
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Abstract

The design and optimization of a Radio-Frequency Quadrupole (RFQ) for focusing, bunching and accelerating charged particles needs to simultaneously deal with electromagnetic, thermal and mechanical issues to achieve a fully operational structure. Four resonant cavities along the RFQ together with the ending cut backs have to provide a quadrupolar mode at the desired frequency and to produce a flat transversal electrical field amplitude across the overall length of the structure. The operation of an RFQ needs the injection of a very high RF signal power, so a high quality factor Q and appropriate handling of thermal losses is mandatory. A water-cooling circuit is commonly employed inserted in between the resonant lobes, close to the vane tips. On the other hand, RF and vacuum ports have to introduce minimal perturbations in the structure and, finally, a number of RF signal pick-ups and tuners are added to test and adjust the RFQ performance. The complexity of such structure together with the mechanical feasibility with required accuracy and tunability options is even more challenging when dealing with compact RFQ designs. The paper describes the EM and thermo-mechanical design and optimization of a compact RFQ intended for proton acceleration. The main aspects in this work are linked to the RFQ compactness and with the novel RF signal injection design.
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紧凑型rfq的电磁与热力学分析与设计
射频四极杆(RFQ)的设计和优化,用于聚焦、聚束和加速带电粒子,需要同时处理电磁、热和机械问题,以实现一个完全可操作的结构。RFQ上的四个谐振腔以及末端的切回必须在所需频率下提供四极模式,并在整个结构长度上产生平坦的横向电场振幅。RFQ的运行需要注入非常高的射频信号功率,因此高质量因子Q和适当的热损耗处理是强制性的。通常在靠近叶片尖端的共振叶之间插入水冷却回路。另一方面,射频和真空端口必须在结构中引入最小的扰动,最后,添加一些射频信号拾取器和调谐器来测试和调整RFQ性能。在处理紧凑型RFQ设计时,这种结构的复杂性以及所需精度和可调性选项的机械可行性更具挑战性。本文介绍了用于质子加速的小型RFQ的电磁和热机械设计与优化。本工作的主要方面与RFQ的紧凑性和新颖的射频信号注入设计有关。
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