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Modelling of Parasitic Inductances of a High Precision Inductive Adder for CLIC

The CLIC study is exploring the scheme for an electron-positron collider with high luminosity and a nominal centre-of-mass energy of 3 TeV. The CLIC pre-damping rings and damping rings will produce, through synchrotron radiation, ultra-low emittance beam with high bunch charge. To avoid beam emittan...

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Detalles Bibliográficos
Autores principales: Holma, J, Barnes, M J, Ovaska, S J
Lenguaje:eng
Publicado: 2013
Materias:
Acceso en línea:http://cds.cern.ch/record/1576065
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author Holma, J
Barnes, M J
Ovaska, S J
author_facet Holma, J
Barnes, M J
Ovaska, S J
author_sort Holma, J
collection CERN
description The CLIC study is exploring the scheme for an electron-positron collider with high luminosity and a nominal centre-of-mass energy of 3 TeV. The CLIC pre-damping rings and damping rings will produce, through synchrotron radiation, ultra-low emittance beam with high bunch charge. To avoid beam emittance increase, the damping ring kicker systems must provide extremely flat, high-voltage, pulses. The specifications for the extraction kickers of the DRs are particularly demanding: the flat-top of the pulses must be ±12.5 kV with a combined ripple and droop of not more than ±0.02 % (±2.5 V). An inductive adder is a very promising approach to meeting the specifications. However, the output impedance of the inductive adder needs to be well matched to the system impedance. The primary leakage inductance, which cannot be computed accurately analytically, has a significant effect upon the output impedance of the inductive adder. This paper presents predictions, obtained by modelling the 3D geometry of the adder structure and printed circuit boards using the FastHenry code, for primary leakage inductance.
id cern-1576065
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2013
record_format invenio
spelling cern-15760652019-09-30T06:29:59Zhttp://cds.cern.ch/record/1576065engHolma, JBarnes, M JOvaska, S JModelling of Parasitic Inductances of a High Precision Inductive Adder for CLICAccelerators and Storage RingsThe CLIC study is exploring the scheme for an electron-positron collider with high luminosity and a nominal centre-of-mass energy of 3 TeV. The CLIC pre-damping rings and damping rings will produce, through synchrotron radiation, ultra-low emittance beam with high bunch charge. To avoid beam emittance increase, the damping ring kicker systems must provide extremely flat, high-voltage, pulses. The specifications for the extraction kickers of the DRs are particularly demanding: the flat-top of the pulses must be ±12.5 kV with a combined ripple and droop of not more than ±0.02 % (±2.5 V). An inductive adder is a very promising approach to meeting the specifications. However, the output impedance of the inductive adder needs to be well matched to the system impedance. The primary leakage inductance, which cannot be computed accurately analytically, has a significant effect upon the output impedance of the inductive adder. This paper presents predictions, obtained by modelling the 3D geometry of the adder structure and printed circuit boards using the FastHenry code, for primary leakage inductance.CERN-ACC-2013-0104oai:cds.cern.ch:15760652013-07-31
spellingShingle Accelerators and Storage Rings
Holma, J
Barnes, M J
Ovaska, S J
Modelling of Parasitic Inductances of a High Precision Inductive Adder for CLIC
title Modelling of Parasitic Inductances of a High Precision Inductive Adder for CLIC
title_full Modelling of Parasitic Inductances of a High Precision Inductive Adder for CLIC
title_fullStr Modelling of Parasitic Inductances of a High Precision Inductive Adder for CLIC
title_full_unstemmed Modelling of Parasitic Inductances of a High Precision Inductive Adder for CLIC
title_short Modelling of Parasitic Inductances of a High Precision Inductive Adder for CLIC
title_sort modelling of parasitic inductances of a high precision inductive adder for clic
topic Accelerators and Storage Rings
url http://cds.cern.ch/record/1576065
work_keys_str_mv AT holmaj modellingofparasiticinductancesofahighprecisioninductiveadderforclic
AT barnesmj modellingofparasiticinductancesofahighprecisioninductiveadderforclic
AT ovaskasj modellingofparasiticinductancesofahighprecisioninductiveadderforclic