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首页> 外文期刊>Vacuum: Technology Applications & Ion Physics: The International Journal & Abstracting Service for Vacuum Science & Technology >Vacuum stability and residual gas density estimation for the vacuum chamber upgrade of the ATLAS interaction region of the large Hadron Collider
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Vacuum stability and residual gas density estimation for the vacuum chamber upgrade of the ATLAS interaction region of the large Hadron Collider

机译:大型强子对撞机ATLAS相互作用区域真空腔升级的真空稳定性和残余气体密度估算

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摘要

The CERN Large Hadron Collider (LHC) has 54 km of ultra-high vacuum (UHV) beam chambers out of which about 90% are at cryogenic temperature (1.9 K) and the rest at room temperature. During operation, the residual gas density in the beam pipes is dominated by beam induced effect such ion, electron and photon-stimulated gas desorption. Therefore, the computation of gas density profile is of great importance to confirm the vacuum stability, and to estimate the beam lifetime. Moreover, the gas density profiles are essential to determine the machine induced background in the experimental areas, and to define the pressure profile in the cryogenic sectors where there is no vacuum instrumentation available. In this paper, the vacuum stability is studied for a newly proposed upgrade of the vacuum chamber at the ATLAS interaction point, using the vacuum stability code called VASCO. The residual gas density profile along the ATLAS vacuum chambers and the effects of photon and electron flux hitting the vacuum chamber walls are presented and analysed.
机译:CERN大型强子对撞机(LHC)具有54公里的超高真空(UHV)光束室,其中约90%位于低温(1.9 K),其余处于室温。在操作过程中,束管中的残留气体密度受束流感应效应(例如离子,电子和光子刺激的气体解吸)的控制。因此,气体密度分布图的计算对于确认真空稳定性和估计射​​束寿命非常重要。此外,气体密度分布对于确定实验区域中的机器感应背景以及定义没有真空仪器可用的低温区域中的压力分布至关重要。在本文中,对真空稳定性进行了研究,并使用了称为VASCO的真空稳定性代码对ATLAS交互点处的真空腔进行了新的升级。呈现并分析了沿ATLAS真空室的残留气体密度分布以及光子和电子通量撞击真空室壁的影响。

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