Stripping mechanisms and remediation for H − beams

Negative hydrogen ions are often used for injecting protons from linacs to storage rings via chargeexchange injection. In this process, the two electrons are stripped by a foil or laser to produce protons which can be merged with an existing beam without significantly affecting its dynamics, allowin...

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Veröffentlicht in:Physical review. Accelerators and beams 2021-07, Vol.24 (7), p.074201, Article 074201
Hauptverfasser: Folsom, B. T., Eshraqi, M., Kraljevic, N. Blaskovic, Gålnander, B.
Format: Artikel
Sprache:eng
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Zusammenfassung:Negative hydrogen ions are often used for injecting protons from linacs to storage rings via chargeexchange injection. In this process, the two electrons are stripped by a foil or laser to produce protons which can be merged with an existing beam without significantly affecting its dynamics, allowing high intensities of protons to be accumulated. However, this capability comes with the drawback that the outer electron of an H- ion has a low binding energy and can easily be stripped away prior to injection. This paper addresses the following stripping mechanisms: interactions with residual gas in the beam pipe, blackbody radiation from accelerator components, and electromagnetic fields from accelerator optics (Lorentz-force stripping) and particles within the bunch itself (intrabeam stripping); with a discussion on how to avoid excessive activation from stripped H degrees particles and protons. We also demonstrate that the proportion of stripped H degrees colliding with a nearby beam pipe or machine-element walls presents only roughly 10% of those lost in stripping; the remaining stripped particles traverse to the end of a linac or local straight section, which may relax the limits for allowable stripping-based beam loss in H- accelerators.
ISSN:2469-9888
2469-9888
DOI:10.1103/PhysRevAccelBeams.24.074201