Effects of rf breakdown on the beam in the Compact Linear Collider prototype accelerator structure

Understanding the effects of rf breakdown in high-gradient accelerator structures on the accelerated beam is an extremely relevant aspect in the development of the Compact Linear Collider (CLIC) and is one of the main issues addressed at the Two-beam Test Stand at the CLIC Test Facility 3 at CERN. D...

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Main Authors: A. Palaia, M. Jacewicz, R. Ruber, V. Ziemann, W. Farabolini
Format: Article
Language:English
Published: American Physical Society 2013-08-01
Series:Physical Review Special Topics. Accelerators and Beams
Online Access:http://doi.org/10.1103/PhysRevSTAB.16.081004
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spelling doaj-2f560b6039f846f680401deee4626ec82020-11-25T02:46:55ZengAmerican Physical SocietyPhysical Review Special Topics. Accelerators and Beams1098-44022013-08-0116808100410.1103/PhysRevSTAB.16.081004Effects of rf breakdown on the beam in the Compact Linear Collider prototype accelerator structureA. PalaiaM. JacewiczR. RuberV. ZiemannW. FaraboliniUnderstanding the effects of rf breakdown in high-gradient accelerator structures on the accelerated beam is an extremely relevant aspect in the development of the Compact Linear Collider (CLIC) and is one of the main issues addressed at the Two-beam Test Stand at the CLIC Test Facility 3 at CERN. During a rf breakdown high currents are generated causing parasitic magnetic fields that interact with the accelerated beam affecting its orbit. The beam energy is also affected because the power is partly reflected and partly absorbed thus reducing the available energy to accelerate the beam. We discuss here measurements of such effects observed on an electron beam accelerated in a CLIC prototype structure. Measurements of the trajectory of bunch trains on a nanosecond time scale showed fast changes in correspondence of breakdown that we compare with measurements of the relative beam spots on a scintillating screen. We identify different breakdown scenarios for which we offer an explanation based also on measurements of the power at the input and output ports of the accelerator structure. Finally we present the distribution of the magnitude of the observed changes in the beam position and we discuss its correlation with rf power and breakdown location in the accelerator structure.http://doi.org/10.1103/PhysRevSTAB.16.081004
collection DOAJ
language English
format Article
sources DOAJ
author A. Palaia
M. Jacewicz
R. Ruber
V. Ziemann
W. Farabolini
spellingShingle A. Palaia
M. Jacewicz
R. Ruber
V. Ziemann
W. Farabolini
Effects of rf breakdown on the beam in the Compact Linear Collider prototype accelerator structure
Physical Review Special Topics. Accelerators and Beams
author_facet A. Palaia
M. Jacewicz
R. Ruber
V. Ziemann
W. Farabolini
author_sort A. Palaia
title Effects of rf breakdown on the beam in the Compact Linear Collider prototype accelerator structure
title_short Effects of rf breakdown on the beam in the Compact Linear Collider prototype accelerator structure
title_full Effects of rf breakdown on the beam in the Compact Linear Collider prototype accelerator structure
title_fullStr Effects of rf breakdown on the beam in the Compact Linear Collider prototype accelerator structure
title_full_unstemmed Effects of rf breakdown on the beam in the Compact Linear Collider prototype accelerator structure
title_sort effects of rf breakdown on the beam in the compact linear collider prototype accelerator structure
publisher American Physical Society
series Physical Review Special Topics. Accelerators and Beams
issn 1098-4402
publishDate 2013-08-01
description Understanding the effects of rf breakdown in high-gradient accelerator structures on the accelerated beam is an extremely relevant aspect in the development of the Compact Linear Collider (CLIC) and is one of the main issues addressed at the Two-beam Test Stand at the CLIC Test Facility 3 at CERN. During a rf breakdown high currents are generated causing parasitic magnetic fields that interact with the accelerated beam affecting its orbit. The beam energy is also affected because the power is partly reflected and partly absorbed thus reducing the available energy to accelerate the beam. We discuss here measurements of such effects observed on an electron beam accelerated in a CLIC prototype structure. Measurements of the trajectory of bunch trains on a nanosecond time scale showed fast changes in correspondence of breakdown that we compare with measurements of the relative beam spots on a scintillating screen. We identify different breakdown scenarios for which we offer an explanation based also on measurements of the power at the input and output ports of the accelerator structure. Finally we present the distribution of the magnitude of the observed changes in the beam position and we discuss its correlation with rf power and breakdown location in the accelerator structure.
url http://doi.org/10.1103/PhysRevSTAB.16.081004
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