L. Giuliano, F. Bosco, M. Carillo, G. Felici, L. Ficcadenti, A. Mostacci, M. Migliorati, L. Palumbo, B. Spataro, L. Faillace
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引用次数: 1
摘要
在本文中,我们介绍了超高剂量率医用直线加速器C波段原型结构的射频设计和测量。(1) 背景:FLASH放射治疗(RT)是治疗癌症的革命性新技术。它在微秒短脉冲中释放超高辐射剂量率(超过100 Gy/s)。为了在很短的时间内获得高剂量,必须开发具有高强度电流(峰值电流为100mA的量级)的加速器。在这场比赛中,萨皮恩扎大学与SIT Sordina IORT Technology spa合作,正在开发一种新的C波段直线加速器,以实现FLASH方案。(2) 方法:我们使用CST STUDIO Suite Code对C波段直线加速器原型进行了射频电磁设计,并在罗马萨皮恩扎大学进行了射频低功率射频测试。已经用拉珠技术对空腔中的场进行了测量。(3) 结果:该器件是一个在5.712GHz(C波段)π/2模式下工作的九单元结构。我们报告并讨论了全尺寸铜原型的测试测量结果,显示出与CST RF模拟的良好一致性。为了确保适当的工作频率并达到百分之几量级的场轮廓平坦度,已经实施了调谐程序。(4) 结论:用于FLASH应用的C波段直线加速器原型在萨皮恩扎大学以低RF功率成功测试。本文对制造和特殊调谐程序进行了优化和讨论。
RF Design and Measurements of a C-Band Prototype Structure for an Ultra-High Dose-Rate Medical Linac
In this paper, we illustrate the RF design and measurements of a C-band prototype structure for an Ultra High Dose Rate medical linac. (1) Background: FLASH Radiotherapy (RT) is a revolutionary new technique for cancer cure. It releases ultra-high radiation dose rates (above 100 Gy/s) in microsecond short pulses. In order to obtain a high dose in a very short time, accelerators with high-intensity currents (the order of 100 mA peak currents) have to be developed. In this contest, Sapienza University, in collaboration with SIT-Sordina IORT Technology spa, is developing a new C-band linac to achieve the FLASH regime. (2) Methods: We performed the RF electromagnetic design of the prototype of the C band linac using CST STUDIO Suite Code and the RF low power RF test at Sapienza University of Rome. The measurements of the field in the cavity have been done with the bead-pull technique. (3) Results: This device is a nine-cell structure operating on the π/2 mode at 5.712 GHz (C-band). We report and discuss the test measurement results on a full-scale copper prototype, showing good agreement with CST RF simulations. A tuning procedure has been implemented in order to ensure proper operating frequency and to reach a field profile flatness of the order of a few percent. (4) Conclusions: The prototype of a C-band linac for FLASH applications was successfully tested with low RF power at Sapienza University. The fabrication and ad hoc tuning procedures have been optimized and discussed in the paper.