Self-consistent numerical approach to track particles in free electron laser interaction with electromagnetic field modes

In this paper we present a novel approach to free electron laser (FEL) simulations based on the decomposition of the electromagnetic field in a finite number of radiation modes. The evolution of each mode amplitude is simply determined by energy conservation. The code is developed as an expansion of...

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Main Authors: A. Fisher, P. Musumeci, S. B. Van der Geer
Format: Article
Language:English
Published: American Physical Society 2020-11-01
Series:Physical Review Accelerators and Beams
Online Access:http://doi.org/10.1103/PhysRevAccelBeams.23.110702
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spelling doaj-0ddc8f08fc7941e2ba5ad8e5c8b543f12020-11-25T04:04:01ZengAmerican Physical SocietyPhysical Review Accelerators and Beams2469-98882020-11-01231111070210.1103/PhysRevAccelBeams.23.110702Self-consistent numerical approach to track particles in free electron laser interaction with electromagnetic field modesA. FisherP. MusumeciS. B. Van der GeerIn this paper we present a novel approach to free electron laser (FEL) simulations based on the decomposition of the electromagnetic field in a finite number of radiation modes. The evolution of each mode amplitude is simply determined by energy conservation. The code is developed as an expansion of the general particle tracer framework and adds important capabilities to the suite of well-established numerical simulations already available to the FEL community. The approach is not based on the period average approximation and can handle long-wavelength waveguide FELs as it is possible to include the dispersion effects of the boundaries. Furthermore, it correctly simulates lower charge systems where both transverse and longitudinal space charge forces play a significant role in the dynamics. For free-space FEL interactions, a source dependent expansion approximation can be used to limit the number of transverse modes required to model the field profile and speed up the calculation of the system’s evolution. Three examples are studied in detail including a single pass FEL amplifier, the high efficiency TESSA266 scenario, and a THz waveguide FEL operating in the zero-slippage regime.http://doi.org/10.1103/PhysRevAccelBeams.23.110702
collection DOAJ
language English
format Article
sources DOAJ
author A. Fisher
P. Musumeci
S. B. Van der Geer
spellingShingle A. Fisher
P. Musumeci
S. B. Van der Geer
Self-consistent numerical approach to track particles in free electron laser interaction with electromagnetic field modes
Physical Review Accelerators and Beams
author_facet A. Fisher
P. Musumeci
S. B. Van der Geer
author_sort A. Fisher
title Self-consistent numerical approach to track particles in free electron laser interaction with electromagnetic field modes
title_short Self-consistent numerical approach to track particles in free electron laser interaction with electromagnetic field modes
title_full Self-consistent numerical approach to track particles in free electron laser interaction with electromagnetic field modes
title_fullStr Self-consistent numerical approach to track particles in free electron laser interaction with electromagnetic field modes
title_full_unstemmed Self-consistent numerical approach to track particles in free electron laser interaction with electromagnetic field modes
title_sort self-consistent numerical approach to track particles in free electron laser interaction with electromagnetic field modes
publisher American Physical Society
series Physical Review Accelerators and Beams
issn 2469-9888
publishDate 2020-11-01
description In this paper we present a novel approach to free electron laser (FEL) simulations based on the decomposition of the electromagnetic field in a finite number of radiation modes. The evolution of each mode amplitude is simply determined by energy conservation. The code is developed as an expansion of the general particle tracer framework and adds important capabilities to the suite of well-established numerical simulations already available to the FEL community. The approach is not based on the period average approximation and can handle long-wavelength waveguide FELs as it is possible to include the dispersion effects of the boundaries. Furthermore, it correctly simulates lower charge systems where both transverse and longitudinal space charge forces play a significant role in the dynamics. For free-space FEL interactions, a source dependent expansion approximation can be used to limit the number of transverse modes required to model the field profile and speed up the calculation of the system’s evolution. Three examples are studied in detail including a single pass FEL amplifier, the high efficiency TESSA266 scenario, and a THz waveguide FEL operating in the zero-slippage regime.
url http://doi.org/10.1103/PhysRevAccelBeams.23.110702
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