On-line dispersion estimation and correction scheme for the Compact Linear Collider

The Compact Linear Collider (CLIC) has stringent component alignment tolerances in order to preserve the ultralow emittance of the utilized particle beams. Beam-based alignment techniques have been designed to relax these tolerances to realizable values. In this paper, a scheme is presented that is...

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Main Authors: J. Pfingstner, E. Adli, D. Schulte
Format: Article
Language:English
Published: American Physical Society 2017-01-01
Series:Physical Review Accelerators and Beams
Online Access:http://doi.org/10.1103/PhysRevAccelBeams.20.011006
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spelling doaj-e619415bcdbf41f691f9147ddc3163e62020-11-24T22:30:24ZengAmerican Physical SocietyPhysical Review Accelerators and Beams2469-98882017-01-0120101100610.1103/PhysRevAccelBeams.20.011006On-line dispersion estimation and correction scheme for the Compact Linear ColliderJ. PfingstnerE. AdliD. SchulteThe Compact Linear Collider (CLIC) has stringent component alignment tolerances in order to preserve the ultralow emittance of the utilized particle beams. Beam-based alignment techniques have been designed to relax these tolerances to realizable values. In this paper, a scheme is presented that is capable of mitigating besides the effects of static misalignments also dynamic misalignments caused by ground motion. It is based on the well-known dispersion-free steering (DFS) algorithm, with the peculiarity that it can perform its correction during the usual operation (on-line). This is enabled by performing the necessary dispersion measurements by introducing only negligibly small beam energy changes (per mille level). It has been found that this on-line correction becomes sensitive to the imperfections of transverse wakefields and structure tilts. These sensitivities have been studied via analytical models and in simulations and appropriate countermeasures to improve the robustness of the method have been proposed. The correction performance and robustness properties of the improved algorithm have been studied in detail with respect to all relevant static and dynamic imperfections in a realistic scenario. The presented scheme is not only a potentially important operational tool for CLIC, but the findings with respect to robustness properties for different imperfections are of general interest for the application of the dispersion-free steering algorithm.http://doi.org/10.1103/PhysRevAccelBeams.20.011006
collection DOAJ
language English
format Article
sources DOAJ
author J. Pfingstner
E. Adli
D. Schulte
spellingShingle J. Pfingstner
E. Adli
D. Schulte
On-line dispersion estimation and correction scheme for the Compact Linear Collider
Physical Review Accelerators and Beams
author_facet J. Pfingstner
E. Adli
D. Schulte
author_sort J. Pfingstner
title On-line dispersion estimation and correction scheme for the Compact Linear Collider
title_short On-line dispersion estimation and correction scheme for the Compact Linear Collider
title_full On-line dispersion estimation and correction scheme for the Compact Linear Collider
title_fullStr On-line dispersion estimation and correction scheme for the Compact Linear Collider
title_full_unstemmed On-line dispersion estimation and correction scheme for the Compact Linear Collider
title_sort on-line dispersion estimation and correction scheme for the compact linear collider
publisher American Physical Society
series Physical Review Accelerators and Beams
issn 2469-9888
publishDate 2017-01-01
description The Compact Linear Collider (CLIC) has stringent component alignment tolerances in order to preserve the ultralow emittance of the utilized particle beams. Beam-based alignment techniques have been designed to relax these tolerances to realizable values. In this paper, a scheme is presented that is capable of mitigating besides the effects of static misalignments also dynamic misalignments caused by ground motion. It is based on the well-known dispersion-free steering (DFS) algorithm, with the peculiarity that it can perform its correction during the usual operation (on-line). This is enabled by performing the necessary dispersion measurements by introducing only negligibly small beam energy changes (per mille level). It has been found that this on-line correction becomes sensitive to the imperfections of transverse wakefields and structure tilts. These sensitivities have been studied via analytical models and in simulations and appropriate countermeasures to improve the robustness of the method have been proposed. The correction performance and robustness properties of the improved algorithm have been studied in detail with respect to all relevant static and dynamic imperfections in a realistic scenario. The presented scheme is not only a potentially important operational tool for CLIC, but the findings with respect to robustness properties for different imperfections are of general interest for the application of the dispersion-free steering algorithm.
url http://doi.org/10.1103/PhysRevAccelBeams.20.011006
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