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TPC track distortions IV: post tenebras lux

We present a comprehensive discussion and summary of static and dynamic track distortions in the HARP TPC in terms of physical origin, mathematical modelling and correction algorithms. `Static' distortions are constant with time, while `dynamic' distortions are distortions that occur only...

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Detalles Bibliográficos
Autores principales: Ammosov, V, Bolshakova, A, Boyko, I, Chelkov, G, Dedovitch, D, Dydak, F, Elagin, A, Gostkin, M, Guskov, A, Koreshev, V, Krumshtein, Z, Nefedov, Y, Nikolaev, K, Wotschack, J, Zhemchugov, A
Lenguaje:eng
Publicado: 2007
Materias:
Acceso en línea:http://cds.cern.ch/record/1143067
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author Ammosov, V
Bolshakova, A
Boyko, I
Chelkov, G
Dedovitch, D
Dydak, F
Elagin, A
Gostkin, M
Guskov, A
Koreshev, V
Krumshtein, Z
Nefedov, Y
Nikolaev, K
Wotschack, J
Zhemchugov, A
author_facet Ammosov, V
Bolshakova, A
Boyko, I
Chelkov, G
Dedovitch, D
Dydak, F
Elagin, A
Gostkin, M
Guskov, A
Koreshev, V
Krumshtein, Z
Nefedov, Y
Nikolaev, K
Wotschack, J
Zhemchugov, A
author_sort Ammosov, V
collection CERN
description We present a comprehensive discussion and summary of static and dynamic track distortions in the HARP TPC in terms of physical origin, mathematical modelling and correction algorithms. `Static' distortions are constant with time, while `dynamic' distortions are distortions that occur only during the 400 ms long accelerator spill. The measurement of dynamic distortions, their mathematical modelling and the correction algorithms build on our understanding of static distortions. In the course of corroborating the validity of our static distortion corrections, their reliability and precision was further improved. Dynamic TPC distortions originate dominantly from the `stalactite' effect: a column of positive-ion charge starts growing at the begin of the accelerator spill, and continues growing with nearly constant velocity out from the sense-wire plane into the active TPC volume. However, the `stalactite' effect is not able to describe the distortions that are present already at the start of the spill and which have a sign opposite to the one of `stalactite' distortions. The 'margaritka' effect accounts for this: the radially outward oriented electric field generated by a deposit of positive ions on the insulating inner ring of the TPC readout chamber.
id cern-1143067
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2007
record_format invenio
spelling cern-11430672019-09-30T06:29:59Zhttp://cds.cern.ch/record/1143067engAmmosov, VBolshakova, ABoyko, IChelkov, GDedovitch, DDydak, FElagin, AGostkin, MGuskov, AKoreshev, VKrumshtein, ZNefedov, YNikolaev, KWotschack, JZhemchugov, ATPC track distortions IV: post tenebras luxDetectors and Experimental TechniquesWe present a comprehensive discussion and summary of static and dynamic track distortions in the HARP TPC in terms of physical origin, mathematical modelling and correction algorithms. `Static' distortions are constant with time, while `dynamic' distortions are distortions that occur only during the 400 ms long accelerator spill. The measurement of dynamic distortions, their mathematical modelling and the correction algorithms build on our understanding of static distortions. In the course of corroborating the validity of our static distortion corrections, their reliability and precision was further improved. Dynamic TPC distortions originate dominantly from the `stalactite' effect: a column of positive-ion charge starts growing at the begin of the accelerator spill, and continues growing with nearly constant velocity out from the sense-wire plane into the active TPC volume. However, the `stalactite' effect is not able to describe the distortions that are present already at the start of the spill and which have a sign opposite to the one of `stalactite' distortions. The 'margaritka' effect accounts for this: the radially outward oriented electric field generated by a deposit of positive ions on the insulating inner ring of the TPC readout chamber.CERN-HARP-CDP-2007-003HARP Memo 07-102oai:cds.cern.ch:11430672007-08-10
spellingShingle Detectors and Experimental Techniques
Ammosov, V
Bolshakova, A
Boyko, I
Chelkov, G
Dedovitch, D
Dydak, F
Elagin, A
Gostkin, M
Guskov, A
Koreshev, V
Krumshtein, Z
Nefedov, Y
Nikolaev, K
Wotschack, J
Zhemchugov, A
TPC track distortions IV: post tenebras lux
title TPC track distortions IV: post tenebras lux
title_full TPC track distortions IV: post tenebras lux
title_fullStr TPC track distortions IV: post tenebras lux
title_full_unstemmed TPC track distortions IV: post tenebras lux
title_short TPC track distortions IV: post tenebras lux
title_sort tpc track distortions iv: post tenebras lux
topic Detectors and Experimental Techniques
url http://cds.cern.ch/record/1143067
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