Considerations and findings on beam vorticity dynamics

Fuente: arXiv
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Main Author: Groening, L.
Format: Preprint
Published: 2024
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author Groening, L.
author_facet Groening, L.
contents This document is on considerations and findings on modelling of spinning beams. Spinning has been proposed for stabilizing beams against perturbations notably risen by non-linear space charge forces, see [Y.-L. Cheon et al., Effects of beam spinning on the fourth-order particle resonance of 3D bunched beams in high-intensity linear accelerators, Phys. Rev. Accel. & Beams 25, 064002 (2022)]. Although not further treated therein, spinning can be quantified by angular momentumor by vorticity. Considering vorticity revealed that the latter has remarkable similarity w.r.t. its modelling along solenoid channels to modelling the beam envelope. Matrices of vorticity transport, corresponding phase advances, and Twiss parameters look very similar and are partially even identical to their counterparts concerning envelopes. Corresponding to emittance, the quantity of vortissance, being a constant of motion, is defined. Unlike emittance, for vorticity-dominated beams it may take imaginary values, causing Twiss parameters, and negative or zero phase advances along a finite beam line section. This imposes considerable consequences on respective periodic solutions.
format Preprint
id arxiv_https___arxiv_org_abs_2401_13644
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Considerations and findings on beam vorticity dynamics
Groening, L.
Accelerator Physics
This document is on considerations and findings on modelling of spinning beams. Spinning has been proposed for stabilizing beams against perturbations notably risen by non-linear space charge forces, see [Y.-L. Cheon et al., Effects of beam spinning on the fourth-order particle resonance of 3D bunched beams in high-intensity linear accelerators, Phys. Rev. Accel. & Beams 25, 064002 (2022)]. Although not further treated therein, spinning can be quantified by angular momentumor by vorticity. Considering vorticity revealed that the latter has remarkable similarity w.r.t. its modelling along solenoid channels to modelling the beam envelope. Matrices of vorticity transport, corresponding phase advances, and Twiss parameters look very similar and are partially even identical to their counterparts concerning envelopes. Corresponding to emittance, the quantity of vortissance, being a constant of motion, is defined. Unlike emittance, for vorticity-dominated beams it may take imaginary values, causing Twiss parameters, and negative or zero phase advances along a finite beam line section. This imposes considerable consequences on respective periodic solutions.
title Considerations and findings on beam vorticity dynamics
topic Accelerator Physics
url https://arxiv.org/abs/2401.13644