Javascript must be enabled to continue!
ALICE Central Trigger System for LHC Run 3
View through CrossRef
A major upgrade of the ALICE experiment is in progress and will result in high-rate data taking during LHC Run 3 (2022-2024). The LHC interaction rate at Point 2 where the ALICE experiment is located will be increased to 50 kHz in Pb–Pb collisions and 1 MHz in pp collisions. The ALICE experiment will be able to read out data at these interaction rates leading to an increase of the collected luminosity by a factor of up to about 100 with respect to LHC Runs 1 and 2. To satisfy these requirements, a new readout system has been developed for most of the ALICE detectors, allowing the full readout of the data at the required interaction rates without the need for a hardware trigger selection. A novel trigger and timing distribution system will be implemented, based on Passive Optical Network (PON) and GigaBit Transceiver (GBT) technology. To assure backward compatibility a triggered mode based on RD12 Trigger- Timing-Control (TTC) technology, as used in the previous LHC runs, will be maintained and re-implemented under the new Central Trigger System (CTS). A new universal ALICE Trigger Board (ATB) based on the Xilinx Kintex Ultrascale FPGA has been designed to function as a Central Trigger Processor (CTP), Local Trigger Unit (LTU), and monitoring interfaces.
In this paper, this new hybrid multilevel system with continuous readout will be described, together with the triggering mechanism and algorithms. An overview of the CTS, the design of the ATB and the different communication protocols will be presented.
Title: ALICE Central Trigger System for LHC Run 3
Description:
A major upgrade of the ALICE experiment is in progress and will result in high-rate data taking during LHC Run 3 (2022-2024).
The LHC interaction rate at Point 2 where the ALICE experiment is located will be increased to 50 kHz in Pb–Pb collisions and 1 MHz in pp collisions.
The ALICE experiment will be able to read out data at these interaction rates leading to an increase of the collected luminosity by a factor of up to about 100 with respect to LHC Runs 1 and 2.
To satisfy these requirements, a new readout system has been developed for most of the ALICE detectors, allowing the full readout of the data at the required interaction rates without the need for a hardware trigger selection.
A novel trigger and timing distribution system will be implemented, based on Passive Optical Network (PON) and GigaBit Transceiver (GBT) technology.
To assure backward compatibility a triggered mode based on RD12 Trigger- Timing-Control (TTC) technology, as used in the previous LHC runs, will be maintained and re-implemented under the new Central Trigger System (CTS).
A new universal ALICE Trigger Board (ATB) based on the Xilinx Kintex Ultrascale FPGA has been designed to function as a Central Trigger Processor (CTP), Local Trigger Unit (LTU), and monitoring interfaces.
In this paper, this new hybrid multilevel system with continuous readout will be described, together with the triggering mechanism and algorithms.
An overview of the CTS, the design of the ATB and the different communication protocols will be presented.
Related Results
New approaches for resource management and job scheduling for HEP grid computing
New approaches for resource management and job scheduling for HEP grid computing
(English) The Large Hadron Collider (LHC) ALICE (A Large Ion Collider Experiment) experiment uses grid computing for its extensive data processing and analysis. The ALICE Grid is c...
Production of light nuclei and antinuclei in Pb-Pb collisions at the LHC
Production of light nuclei and antinuclei in Pb-Pb collisions at the LHC
Das Feld der Hochenergie-Schwerionenforschung hat sich der Untersuchung des Quark-Gluon-Plasmas (QGP) gewidmet. Ein QGP ist ein sehr heißer und dichter Materiezustand, der kurz nac...
THE ALICE EXPERIMENT AT CERN LHC: STATUS AND FIRST RESULTS
THE ALICE EXPERIMENT AT CERN LHC: STATUS AND FIRST RESULTS
The ALICE experiment is aimed at studying the properties of the hot and dense matter produced in heavy-ion collisions at LHC energies. In the first years of LHC operation the ALICE...
Investigation of the Quark-Gluon Plasma With the ALICE Experiment
Investigation of the Quark-Gluon Plasma With the ALICE Experiment
Abstract
The quark-gluon plasma, or QGP, is a state of matter in which quarks and gluons, the elementary building blocks of ordinary baryonic matter (as protons a...
ALICE fast interaction trigger detector control system for the LHC Run 3
ALICE fast interaction trigger detector control system for the LHC Run 3
The new hybrid Fast Interaction Trigger (FIT) system of the forward detectors has become an essential part of the ALICE experiment since the start of the LHC Run 3 in 2022. The FIT...
Algorithms for the Level-1 trigger with the HGCAL calorimeter for theCMS HL-LHC upgrade
Algorithms for the Level-1 trigger with the HGCAL calorimeter for theCMS HL-LHC upgrade
Algorithmes pour le déclenchement de niveau 1 pour le calorimètre HGCAL du détecteur CMS au HL-LHC
L'instrumentation moderne en physique des particules (HEP) fait f...
Étude de la production de beauté ouverte avec le détecteur ALICE au LHC
Étude de la production de beauté ouverte avec le détecteur ALICE au LHC
La thèse est effectuée dans le contexte de l’expérience ALICE dédiée à l’étude de la chromodynamique quantique et plus particulièrement du plasma de quarks et de gluons (QGP) grâce...
Functional analysis and design of the cryogenic system for the HL-LHC IT String test bench at CERN
Functional analysis and design of the cryogenic system for the HL-LHC IT String test bench at CERN
Abstract
The High Luminosity LHC (HL-LHC) is a project aiming to upgrade the LHC collider to maintain scientific progress and exploit its full capacity. In the HL-LH...

