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Plasma ignition and detection for in-situ cleaning of 1.3 GHz 9-cell cavities

机译:等离子体点火和检测,用于1.3 GHz 9腔腔体的原位清洁

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Superconducting radio frequency cavities performance preservation is crucial, from vertical test to accelerator operation. Field emission is still one of the performance limiting factors to overcome, and plasma cleaning has been proven successful by the Spallation Neutron Source (SNS), in cleaning field emitters (hydrocarbon contaminants) and increasing the work function of Nb. The cleaning for Linac Coherent Light Source-II will follow the same plasma composition adopted at SNS, which allows in situ processing of cavities installed in cryomodules. A novel method for plasma ignition has been developed at the Fermi National Accelerator Laboratory: a plasma glow discharge is ignited using high order modes to overcome limitations imposed by the fundamental power coupler. The plasma can be easily ignited and tuned in each of the cavity cells using low radio frequency (RF) power, from 100W to as low as 2W depending on the gas and pressure. A method for RF plasma detection has been developed: the plasma location is identified within the cavity without the need of cameras. The presented method can be applied to other multicell cavity designs, even for accelerators where the coupling for the fundamental modes at room temperature is very weak. (c) 2019 Author(s).
机译:从垂直测试到加速器运行,超导射频腔的性能保持至关重要。场发射仍然是要克服的性能限制因素之一,等离子体清理已被散裂中子源(SNS)证明是成功的,可用于清理场发射器(碳氢化合物污染物)并提高Nb的功函。直线加速器相干光源II的清洗将遵循SNS采用的相同等离子体组成,从而可以对安装在低温模块中的腔体进行原位处理。费米国家加速器实验室已经开发出一种新颖的等离子体点火方法:使用高阶模式点火等离子体辉光放电,以克服基本功率耦合器施加的限制。使用低射频(RF)功率(取决于气体和压力,从100W到低至2W),可以轻松地在每个型腔单元中点燃和调整等离子体。已经开发出一种用于RF等离子体检测的方法:无需照相机即可在腔体内识别等离子体位置。所提出的方法可以应用于其他的多单元腔设计,甚至用于加速器,在加速器中,室温下基本模式的耦合非常弱。 (c)2019作者。

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