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Numerical simulation of the RF plasma discharge in the Linac4 H$^−$ ion source

This paper presents a Particle-In-Cell Monte Carlo Collision simulation of the Radio-Frequency (RF) plasma heating in the Linac4 H$^−$ ion source at CERN. The model self-consistently takes into account the electromagnetic field generated by the RF coil, the external static magnetic fields and the re...

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Detalles Bibliográficos
Autores principales: Mattei, S, Nishida, K, Onai, M, Lettry, J, Tran, M Q, Hatayama, A
Lenguaje:eng
Publicado: 2017
Materias:
Acceso en línea:https://dx.doi.org/10.1063/1.4995738
http://cds.cern.ch/record/2319810
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author Mattei, S
Nishida, K
Onai, M
Lettry, J
Tran, M Q
Hatayama, A
author_facet Mattei, S
Nishida, K
Onai, M
Lettry, J
Tran, M Q
Hatayama, A
author_sort Mattei, S
collection CERN
description This paper presents a Particle-In-Cell Monte Carlo Collision simulation of the Radio-Frequency (RF) plasma heating in the Linac4 H$^−$ ion source at CERN. The model self-consistently takes into account the electromagnetic field generated by the RF coil, the external static magnetic fields and the resulting plasma response, including a kinetic description of the charged species (e$^−$, H$^+$, H$^+_2$, H$^+_3$, H$^−$), as well as the atomic and molecular (vibrationally resolved) populations. The simulation is performed for the nominal operational condition of 40 kW RF power and 3 Pa H2 pressure. Results show that the plasma spatial distribution is non-uniform in the plasma chamber, with a density peak of $n_e = 5 \cdot 10^{19} m^{−3}$ in the RF coil region. In the filter field region the electron density drops by two orders of magnitude, with a substantial reduction of the electron energy as well. This results in a ratio $e/H^− \approx 1$ in the extraction region. The vibrational population is characterized by a two temperature distribution, with the high vibrational states showing a factor 2 higher termperature. A very good agreement is found between the simulation results and optical emission spectroscopy measurement performed on a dedicated test stand at CERN.
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institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2017
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spelling oai-inspirehep.net-16742792019-09-30T06:29:59Zdoi:10.1063/1.4995738http://cds.cern.ch/record/2319810engMattei, SNishida, KOnai, MLettry, JTran, M QHatayama, ANumerical simulation of the RF plasma discharge in the Linac4 H$^−$ ion sourceAccelerators and Storage RingsThis paper presents a Particle-In-Cell Monte Carlo Collision simulation of the Radio-Frequency (RF) plasma heating in the Linac4 H$^−$ ion source at CERN. The model self-consistently takes into account the electromagnetic field generated by the RF coil, the external static magnetic fields and the resulting plasma response, including a kinetic description of the charged species (e$^−$, H$^+$, H$^+_2$, H$^+_3$, H$^−$), as well as the atomic and molecular (vibrationally resolved) populations. The simulation is performed for the nominal operational condition of 40 kW RF power and 3 Pa H2 pressure. Results show that the plasma spatial distribution is non-uniform in the plasma chamber, with a density peak of $n_e = 5 \cdot 10^{19} m^{−3}$ in the RF coil region. In the filter field region the electron density drops by two orders of magnitude, with a substantial reduction of the electron energy as well. This results in a ratio $e/H^− \approx 1$ in the extraction region. The vibrational population is characterized by a two temperature distribution, with the high vibrational states showing a factor 2 higher termperature. A very good agreement is found between the simulation results and optical emission spectroscopy measurement performed on a dedicated test stand at CERN.oai:inspirehep.net:16742792017
spellingShingle Accelerators and Storage Rings
Mattei, S
Nishida, K
Onai, M
Lettry, J
Tran, M Q
Hatayama, A
Numerical simulation of the RF plasma discharge in the Linac4 H$^−$ ion source
title Numerical simulation of the RF plasma discharge in the Linac4 H$^−$ ion source
title_full Numerical simulation of the RF plasma discharge in the Linac4 H$^−$ ion source
title_fullStr Numerical simulation of the RF plasma discharge in the Linac4 H$^−$ ion source
title_full_unstemmed Numerical simulation of the RF plasma discharge in the Linac4 H$^−$ ion source
title_short Numerical simulation of the RF plasma discharge in the Linac4 H$^−$ ion source
title_sort numerical simulation of the rf plasma discharge in the linac4 h$^−$ ion source
topic Accelerators and Storage Rings
url https://dx.doi.org/10.1063/1.4995738
http://cds.cern.ch/record/2319810
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