全体会议发言:先进的高频加速

Sami G. Tantawi
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引用次数: 0

摘要

只提供摘要形式。在过去的几年里,我们已经成功地对高真空射频结构中击穿现象的基本物理特性有了定性的理解。我们已经能够利用这些几何效应和材料特性的知识来开发具有梯度的加速器结构,远远超过目前的技术水平。现在已经证明,室温直线加速器可以在高达175 MV/m的梯度下工作,这是最佳超导结构梯度的六倍。然而,在这些高梯度下运行需要极高功率的射频源,以目前的技术,这不是很划算。随着下一代高梯度结构的出现,这些问题将变得更加突出。为了进一步推动梯度,我们开发的缩放定律将需要更高的频率,更短的填充时间和相当短的脉冲。初步研究表明,在w波段,1 GV/m结构的可能性仅为3 ns。下一阶段的发展必须解决射频功率的高效生产和利用,以及高梯度结构技术。这不是一项简单的任务。用于高功率射频源的技术有着悠久的历史,似乎已经成熟,可能只有微小的改进。我们需要在艺术中创造一种范式转变。为此,我们应该将其他学科的艺术相互融合,利用直线加速器的独特特性创造专门的来源,并在从壁塞到加速器结构的各个阶段积极开展能量回收的各个方面的研究。我们将为这一需要的研究和发展提出一个愿景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Plenary Talk: Advanced high frequency acceleration
Summary form only given. During the last few years, we have successfully gained a qualitative understanding of the basic physics of breakdown phenomena in high vacuum RF structures. We have been able to use this knowledge of geometrical effects and material properties to develop accelerator structures with gradients well above the state of the art. It has now been demonstrated that room temperature linacs can operate at gradients up to 175 MV/m - six times the gradient of the best superconducting structures. However, operation at these high gradients requires extremely high power RF sources, which with current technology, are not very cost-effective. These problems will become even more pronounced with the next generation of high gradient structures. To push the gradient further, the scaling laws we developed would require higher frequency, shorter filling time and equivalently very short pulses. Initial investigation shows the possibility of a 1 GV/m structure at W-band that operates for only 3 ns. The next stage of development must address efficient production and utilization of RF power for linacs as well as high gradient structure technologies. This is not a simple task. The technologies used for high power RF sources have a long history and appear to be mature, with only minor improvements likely. We need to create a paradigm shift in the art. To this end, we should cross-fertilize the art from other disciplines, utilize the unique characteristics of the linacs to create specialized sources, and conduct active research on all fronts for energy recovery at every stage, from wall plug to accelerator structure. We will present a vision for this required research and development.
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