Symmetric achromatic low-beta collider interaction region design concept

We present a new symmetry-based concept for an achromatic low-beta collider interaction region design. A specially designed symmetric chromaticity compensation block (CCB) induces an angle spread in the passing beam such that it cancels the chromatic kick of the final focusing quadrupoles. Two such...

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Main Authors: V. S. Morozov, Ya. S. Derbenev, F. Lin, R. P. Johnson
Format: Article
Language:English
Published: American Physical Society 2013-01-01
Series:Physical Review Special Topics. Accelerators and Beams
Online Access:http://doi.org/10.1103/PhysRevSTAB.16.011004
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spelling doaj-1e4696598e5a40c9966a32c6917c7f1a2020-11-25T01:22:56ZengAmerican Physical SocietyPhysical Review Special Topics. Accelerators and Beams1098-44022013-01-0116101100410.1103/PhysRevSTAB.16.011004Symmetric achromatic low-beta collider interaction region design conceptV. S. MorozovYa. S. DerbenevF. LinR. P. JohnsonWe present a new symmetry-based concept for an achromatic low-beta collider interaction region design. A specially designed symmetric chromaticity compensation block (CCB) induces an angle spread in the passing beam such that it cancels the chromatic kick of the final focusing quadrupoles. Two such CCBs placed symmetrically around an interaction point allow simultaneous compensation of the 1st-order chromaticities and chromatic beam smear at the IP without inducing significant 2nd-order aberrations to the particle trajectory. We first develop an analytic description of this approach and explicitly formulate 2nd-order aberration compensation conditions at the interaction point. The concept is next applied to develop an interaction region design for the ion collider ring of an electron-ion collider. We numerically evaluate performance of the design in terms of momentum acceptance and dynamic aperture. The advantages of the new concept are illustrated by comparing it to the conventional distributed-sextupole chromaticity compensation scheme.http://doi.org/10.1103/PhysRevSTAB.16.011004
collection DOAJ
language English
format Article
sources DOAJ
author V. S. Morozov
Ya. S. Derbenev
F. Lin
R. P. Johnson
spellingShingle V. S. Morozov
Ya. S. Derbenev
F. Lin
R. P. Johnson
Symmetric achromatic low-beta collider interaction region design concept
Physical Review Special Topics. Accelerators and Beams
author_facet V. S. Morozov
Ya. S. Derbenev
F. Lin
R. P. Johnson
author_sort V. S. Morozov
title Symmetric achromatic low-beta collider interaction region design concept
title_short Symmetric achromatic low-beta collider interaction region design concept
title_full Symmetric achromatic low-beta collider interaction region design concept
title_fullStr Symmetric achromatic low-beta collider interaction region design concept
title_full_unstemmed Symmetric achromatic low-beta collider interaction region design concept
title_sort symmetric achromatic low-beta collider interaction region design concept
publisher American Physical Society
series Physical Review Special Topics. Accelerators and Beams
issn 1098-4402
publishDate 2013-01-01
description We present a new symmetry-based concept for an achromatic low-beta collider interaction region design. A specially designed symmetric chromaticity compensation block (CCB) induces an angle spread in the passing beam such that it cancels the chromatic kick of the final focusing quadrupoles. Two such CCBs placed symmetrically around an interaction point allow simultaneous compensation of the 1st-order chromaticities and chromatic beam smear at the IP without inducing significant 2nd-order aberrations to the particle trajectory. We first develop an analytic description of this approach and explicitly formulate 2nd-order aberration compensation conditions at the interaction point. The concept is next applied to develop an interaction region design for the ion collider ring of an electron-ion collider. We numerically evaluate performance of the design in terms of momentum acceptance and dynamic aperture. The advantages of the new concept are illustrated by comparing it to the conventional distributed-sextupole chromaticity compensation scheme.
url http://doi.org/10.1103/PhysRevSTAB.16.011004
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