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Ultrascale+ for the new ATLAS calorimeter trigger board dedicated to jet identification

To cope with the expected increase in luminosity at the Large Hadron Collider in 2021, the ATLAS collaboration is planning a major detector upgrade to be installed during Long Shutdown 2. As a part of this, the Level-1 trigger, based on calorimeter data, will be upgraded to exploit the fine granular...

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Autores principales: Vieira De Souza, Julio, Bauss, Bruno, Buescher, Volker, Degele, Reinold, Herr, Holger, Kahra, Christian, Rave, Stefan, Rocco, Elena, Schaeffer, Jan, Schaefer, Uli, Ta, Duc Bao, Tapprogge, Stefan, Weirich, Marcel, Brogna, Andrea Salvatore
Lenguaje:eng
Publicado: 2018
Materias:
Acceso en línea:https://dx.doi.org/10.1109/NSSMIC.2018.8824599
http://cds.cern.ch/record/2651230
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author Vieira De Souza, Julio
Bauss, Bruno
Buescher, Volker
Degele, Reinold
Herr, Holger
Kahra, Christian
Rave, Stefan
Rocco, Elena
Schaeffer, Jan
Schaefer, Uli
Ta, Duc Bao
Tapprogge, Stefan
Weirich, Marcel
Brogna, Andrea Salvatore
author_facet Vieira De Souza, Julio
Bauss, Bruno
Buescher, Volker
Degele, Reinold
Herr, Holger
Kahra, Christian
Rave, Stefan
Rocco, Elena
Schaeffer, Jan
Schaefer, Uli
Ta, Duc Bao
Tapprogge, Stefan
Weirich, Marcel
Brogna, Andrea Salvatore
author_sort Vieira De Souza, Julio
collection CERN
description To cope with the expected increase in luminosity at the Large Hadron Collider in 2021, the ATLAS collaboration is planning a major detector upgrade to be installed during Long Shutdown 2. As a part of this, the Level-1 trigger, based on calorimeter data, will be upgraded to exploit the fine granularity readout using a new system of Feature EXtractors (FEXs), which each reconstruct different physics objects for the trigger selection. The Jet FEX (jFEX) is one of three FEXs and has been conceived to identify small/large area jets, large area tau leptons, missing transverse energy and the total sum of the transverse energy. The use of the latest generation Xilinx Field Programmable Gate Array (FPGA), the Ultrascale+, was dictated by the physics requirements which include substantial processing power and large input bandwidth, up to $\sim$ 3Tb/s, within a tight latency budget $<$ 390 ns. The modular design of the jFEX board allowed for an optimal routing of a large number of high speed signals within the limited space of an ATCA board. To guarantee the signal integrity, the board design has been accompanied by simulation of the power, current and thermal distribution. The printed circuit board has a 24-layer stack-up and uses the MEGTRON6 material, commonly used for signal transmission above 10 Gb/s. The jFEX system, consisting of 6 boards, will be produced by end of 2018 to allow the installation and commissioning of the full system in time for the LHC restart at the beginning of 2021.
id cern-2651230
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2018
record_format invenio
spelling cern-26512302020-01-27T19:39:46Zdoi:10.1109/NSSMIC.2018.8824599http://cds.cern.ch/record/2651230engVieira De Souza, JulioBauss, BrunoBuescher, VolkerDegele, ReinoldHerr, HolgerKahra, ChristianRave, StefanRocco, ElenaSchaeffer, JanSchaefer, UliTa, Duc BaoTapprogge, StefanWeirich, MarcelBrogna, Andrea SalvatoreUltrascale+ for the new ATLAS calorimeter trigger board dedicated to jet identificationParticle Physics - ExperimentTo cope with the expected increase in luminosity at the Large Hadron Collider in 2021, the ATLAS collaboration is planning a major detector upgrade to be installed during Long Shutdown 2. As a part of this, the Level-1 trigger, based on calorimeter data, will be upgraded to exploit the fine granularity readout using a new system of Feature EXtractors (FEXs), which each reconstruct different physics objects for the trigger selection. The Jet FEX (jFEX) is one of three FEXs and has been conceived to identify small/large area jets, large area tau leptons, missing transverse energy and the total sum of the transverse energy. The use of the latest generation Xilinx Field Programmable Gate Array (FPGA), the Ultrascale+, was dictated by the physics requirements which include substantial processing power and large input bandwidth, up to $\sim$ 3Tb/s, within a tight latency budget $<$ 390 ns. The modular design of the jFEX board allowed for an optimal routing of a large number of high speed signals within the limited space of an ATCA board. To guarantee the signal integrity, the board design has been accompanied by simulation of the power, current and thermal distribution. The printed circuit board has a 24-layer stack-up and uses the MEGTRON6 material, commonly used for signal transmission above 10 Gb/s. The jFEX system, consisting of 6 boards, will be produced by end of 2018 to allow the installation and commissioning of the full system in time for the LHC restart at the beginning of 2021.ATL-DAQ-PROC-2018-047oai:cds.cern.ch:26512302018-12-14
spellingShingle Particle Physics - Experiment
Vieira De Souza, Julio
Bauss, Bruno
Buescher, Volker
Degele, Reinold
Herr, Holger
Kahra, Christian
Rave, Stefan
Rocco, Elena
Schaeffer, Jan
Schaefer, Uli
Ta, Duc Bao
Tapprogge, Stefan
Weirich, Marcel
Brogna, Andrea Salvatore
Ultrascale+ for the new ATLAS calorimeter trigger board dedicated to jet identification
title Ultrascale+ for the new ATLAS calorimeter trigger board dedicated to jet identification
title_full Ultrascale+ for the new ATLAS calorimeter trigger board dedicated to jet identification
title_fullStr Ultrascale+ for the new ATLAS calorimeter trigger board dedicated to jet identification
title_full_unstemmed Ultrascale+ for the new ATLAS calorimeter trigger board dedicated to jet identification
title_short Ultrascale+ for the new ATLAS calorimeter trigger board dedicated to jet identification
title_sort ultrascale+ for the new atlas calorimeter trigger board dedicated to jet identification
topic Particle Physics - Experiment
url https://dx.doi.org/10.1109/NSSMIC.2018.8824599
http://cds.cern.ch/record/2651230
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