Beam gas curtain monitor: Vacuum studies for LHC integration and operation

A beam gas curtain (BGC) monitor has been designed to obtain information about the relative position between the LHC proton beam and the hollow electron lens electron beam through a minimally invasive process. Its working principle relies on intersecting the path of both beams with a supersonic gas...

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Veröffentlicht in:Physical review. Accelerators and beams 2024-04, Vol.27 (4), Article 043201
Hauptverfasser: Castro Sequeiro, C., Ady, M., Bregliozzi, G., Chatzigeorgiou, N., Churchman, A. R., Kersevan, R., Lefevre, T., Mazzoni, S., Pigny, G., Rossi, A., Sameed, M., Schneider, G., Sedlacek, O., Sidorowski, K., Vazquez Pelaez, C., Veness, R., Zygaropoulos, L., Stringer, O., Webber-Date, A., Welsch, C. P., Zhang, H., Forck, P., Udrea, S.
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Sprache:eng
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Zusammenfassung:A beam gas curtain (BGC) monitor has been designed to obtain information about the relative position between the LHC proton beam and the hollow electron lens electron beam through a minimally invasive process. Its working principle relies on intersecting the path of both beams with a supersonic gas curtain, introduced transversely into the LHC beamline, to produce a fluorescence signal. As an intermediate project stage (phase II), a preliminary version of the BGC monitor has been installed into the LHC beamline. To ensure the successful integration of the monitor and subsequent operation under LHC ultrahigh vacuum conditions, a series of vacuum studies have been performed. These can be classified as follows: An off-line laboratory test campaign, to assess BGC behavior during pump down and gas injections; simulations and analytical calculations, to evaluate BGC behavior and estimate the impact of its installation and operation in the LHC. This document will briefly present the off-line tests campaign, followed by a more extensive description of the simulations performed.
ISSN:2469-9888
2469-9888
DOI:10.1103/PhysRevAccelBeams.27.043201