Cargando…

Statistical Analysis of Conductor Motion in LHC Superconducting Dipole Magnets

Premature training quenches are usually caused by the transient energy release within the magnet coil as it is energised. The dominant disturbances originate in cable motion and produce observable rapid variation in voltage signals called spikes. The experimental set up and the raw data treatment to...

Descripción completa

Detalles Bibliográficos
Autores principales: Calvi, M, Ponomarev, N, Pugnat, P, Siemko, A
Lenguaje:eng
Publicado: 2004
Materias:
Acceso en línea:http://cds.cern.ch/record/732070
_version_ 1780903877079465984
author Calvi, M
Ponomarev, N
Pugnat, P
Siemko, A
author_facet Calvi, M
Ponomarev, N
Pugnat, P
Siemko, A
author_sort Calvi, M
collection CERN
description Premature training quenches are usually caused by the transient energy release within the magnet coil as it is energised. The dominant disturbances originate in cable motion and produce observable rapid variation in voltage signals called spikes. The experimental set up and the raw data treatment to detect these phenomena are briefly recalled. The statistical properties of different features of spikes are presented like for instance the maximal amplitude, the energy, the duration and the time correlation between events. The parameterisation of the mechanical activity of magnets is addressed. The mechanical activity of full-scale prototype and first preseries LHC dipole magnets is analysed and correlations with magnet manufacturing procedures and quench performance are established. The predictability of the quench occurrence is discussed and examples presented.
id cern-732070
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2004
record_format invenio
spelling cern-7320702023-05-31T13:22:33Zhttp://cds.cern.ch/record/732070engCalvi, MPonomarev, NPugnat, PSiemko, AStatistical Analysis of Conductor Motion in LHC Superconducting Dipole MagnetsAccelerators and Storage RingsPremature training quenches are usually caused by the transient energy release within the magnet coil as it is energised. The dominant disturbances originate in cable motion and produce observable rapid variation in voltage signals called spikes. The experimental set up and the raw data treatment to detect these phenomena are briefly recalled. The statistical properties of different features of spikes are presented like for instance the maximal amplitude, the energy, the duration and the time correlation between events. The parameterisation of the mechanical activity of magnets is addressed. The mechanical activity of full-scale prototype and first preseries LHC dipole magnets is analysed and correlations with magnet manufacturing procedures and quench performance are established. The predictability of the quench occurrence is discussed and examples presented.LHC-Project-Report-699CERN-LHC-Project-Report-699oai:cds.cern.ch:7320702004-04-02
spellingShingle Accelerators and Storage Rings
Calvi, M
Ponomarev, N
Pugnat, P
Siemko, A
Statistical Analysis of Conductor Motion in LHC Superconducting Dipole Magnets
title Statistical Analysis of Conductor Motion in LHC Superconducting Dipole Magnets
title_full Statistical Analysis of Conductor Motion in LHC Superconducting Dipole Magnets
title_fullStr Statistical Analysis of Conductor Motion in LHC Superconducting Dipole Magnets
title_full_unstemmed Statistical Analysis of Conductor Motion in LHC Superconducting Dipole Magnets
title_short Statistical Analysis of Conductor Motion in LHC Superconducting Dipole Magnets
title_sort statistical analysis of conductor motion in lhc superconducting dipole magnets
topic Accelerators and Storage Rings
url http://cds.cern.ch/record/732070
work_keys_str_mv AT calvim statisticalanalysisofconductormotioninlhcsuperconductingdipolemagnets
AT ponomarevn statisticalanalysisofconductormotioninlhcsuperconductingdipolemagnets
AT pugnatp statisticalanalysisofconductormotioninlhcsuperconductingdipolemagnets
AT siemkoa statisticalanalysisofconductormotioninlhcsuperconductingdipolemagnets