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A new analogue sampling readout system for the COMPASS RICH-1 detector

A new electronic readout for CsI-coated multiwire proportional chambers (MWPC), used as photon detectors in the COMPASS ring imaging Cherenkov (RICH) detector, is described. A prototype system comprising more than 5000 channels has been built and tested in high-intensity beam conditions. It is based...

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Autores principales: Abbon, P, Kolosov, V, Dafni, T, Delagnes, E, Deschamps, H, Gerassimov, S, Ketzer, B, Konorov, I, Kravtchuk, N, Kunne, Fabienne, Magnon, A, Neyret, D, Panebianco, S, Paul, S, Rebourgeard, P
Lenguaje:eng
Publicado: 2008
Materias:
Acceso en línea:http://cds.cern.ch/record/1110974
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author Abbon, P
Kolosov, V
Dafni, T
Delagnes, E
Deschamps, H
Gerassimov, S
Ketzer, B
Konorov, I
Kravtchuk, N
Kunne, Fabienne
Magnon, A
Neyret, D
Panebianco, S
Paul, S
Rebourgeard, P
author_facet Abbon, P
Kolosov, V
Dafni, T
Delagnes, E
Deschamps, H
Gerassimov, S
Ketzer, B
Konorov, I
Kravtchuk, N
Kunne, Fabienne
Magnon, A
Neyret, D
Panebianco, S
Paul, S
Rebourgeard, P
author_sort Abbon, P
collection CERN
description A new electronic readout for CsI-coated multiwire proportional chambers (MWPC), used as photon detectors in the COMPASS ring imaging Cherenkov (RICH) detector, is described. A prototype system comprising more than 5000 channels has been built and tested in high-intensity beam conditions. It is based on the APV25-S1 analogue sampling chip, and replaces the GASSIPLEX chip readout used previously. The APV25 chip, although originally designed for Silicon microstrip detectors, is shown to perform well even with “slow” signals from an MWPC, maintaining a signal-to-noise ratio (SNR) of 9. For every trigger the system reads out three consecutive amplitudes in time, thus allowing to extract information on both the signal amplitude and its timing. This information is used to reduce pile-up events in a high-rate environment. Prototype tests of the new readout electronics on a central RICH photocathode in nominal COMPASS beam conditions showed that the effective time window is reduced from more than for the GASSIPLEX to less than for the APV25 chip. This leads to a significant improvement of the signal-to-background ratio (SBR) with respect to the original readout. A gain by a factor of 5–6 was experimentally verified in the very forward region of phase space, where pile-up due to the muon beam halo is most significant. Owing to its pipelined architecture, the new readout system also considerably reduces the dead time per event, thus allowing to make use of trigger rates exceeding .
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institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2008
record_format invenio
spelling cern-11109742019-09-30T06:29:59Zhttp://cds.cern.ch/record/1110974engAbbon, PKolosov, VDafni, TDelagnes, EDeschamps, HGerassimov, SKetzer, BKonorov, IKravtchuk, NKunne, FabienneMagnon, ANeyret, DPanebianco, SPaul, SRebourgeard, PA new analogue sampling readout system for the COMPASS RICH-1 detectorDetectors and Experimental TechniquesA new electronic readout for CsI-coated multiwire proportional chambers (MWPC), used as photon detectors in the COMPASS ring imaging Cherenkov (RICH) detector, is described. A prototype system comprising more than 5000 channels has been built and tested in high-intensity beam conditions. It is based on the APV25-S1 analogue sampling chip, and replaces the GASSIPLEX chip readout used previously. The APV25 chip, although originally designed for Silicon microstrip detectors, is shown to perform well even with “slow” signals from an MWPC, maintaining a signal-to-noise ratio (SNR) of 9. For every trigger the system reads out three consecutive amplitudes in time, thus allowing to extract information on both the signal amplitude and its timing. This information is used to reduce pile-up events in a high-rate environment. Prototype tests of the new readout electronics on a central RICH photocathode in nominal COMPASS beam conditions showed that the effective time window is reduced from more than for the GASSIPLEX to less than for the APV25 chip. This leads to a significant improvement of the signal-to-background ratio (SBR) with respect to the original readout. A gain by a factor of 5–6 was experimentally verified in the very forward region of phase space, where pile-up due to the muon beam halo is most significant. Owing to its pipelined architecture, the new readout system also considerably reduces the dead time per event, thus allowing to make use of trigger rates exceeding .oai:cds.cern.ch:11109742008
spellingShingle Detectors and Experimental Techniques
Abbon, P
Kolosov, V
Dafni, T
Delagnes, E
Deschamps, H
Gerassimov, S
Ketzer, B
Konorov, I
Kravtchuk, N
Kunne, Fabienne
Magnon, A
Neyret, D
Panebianco, S
Paul, S
Rebourgeard, P
A new analogue sampling readout system for the COMPASS RICH-1 detector
title A new analogue sampling readout system for the COMPASS RICH-1 detector
title_full A new analogue sampling readout system for the COMPASS RICH-1 detector
title_fullStr A new analogue sampling readout system for the COMPASS RICH-1 detector
title_full_unstemmed A new analogue sampling readout system for the COMPASS RICH-1 detector
title_short A new analogue sampling readout system for the COMPASS RICH-1 detector
title_sort new analogue sampling readout system for the compass rich-1 detector
topic Detectors and Experimental Techniques
url http://cds.cern.ch/record/1110974
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