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Insertion of STC into TRT at the Department of Physics, Oxford
Credit: CERN

Dr Hector Garcia-Morales

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Sub department

  • Particle Physics
hector.garcia-morales@physics.ox.ac.uk
  • About
  • Publications

Phase advance constraint in K modulation for precise β-function determination

Physical Review Accelerators and Beams American Physical Society (APS) 25:4 (2022) 041002

Authors:

H Garcia-Morales, M Hofer, EH Maclean, L van Riesen-Haupt, R Tomás
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BDSIM: An accelerator tracking code with particle–matter interactions

Computer Physics Communications Elsevier 252 (2020) 107200

Authors:

LJ Nevay, ST Boogert, J Snuverink, A Abramov, LC Deacon, H Garcia-Morales, H Lefebvre, SM Gibson, R Kwee-Hinzmann, W Shields, SD Walker
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Beam Delivery Simulation: BDSIM automatic Geant4 models of accelerators

IPAC 2016 - Proceedings of the 7th International Particle Accelerator Conference (2016) 3098-3100

Authors:

LJ Nevay, ST Boogert, H Garcia-Morales, SM Gibson, R Kwee-Hinzmann, W Shields, J Snuverink, LC Deacon

Abstract:

Beam Delivery Simulation (BDSIM) is a program that uses a suite of high energy physics software including Geant4, CLHEP & ROOT, that seamlessly tracks particles through accelerators and detectors utilising the full range of particles and physics processes from Geant4. BDSIM has been used to simulate linear colliders such as the International Linear Collider (ILC) and more recently, circular colliders such as the Large Hadron Collider (LHC).

First attempts at using active halo control at the LHC

IPAC 2016 - Proceedings of the 7th International Particle Accelerator Conference (2016) 2486-2489

Authors:

JF Wagner, R Bruce, H Garcia-Morales, W Hofle, G Kotzian, R Kwee-Hinzmann, A Langner, A Mereghetti, E Quaranta, S Redaelli, A Rossi, B Salvachua, R Tomás, G Valentino, D Valuch, G Stancari

Abstract:

The beam halo population is a non-negligible factor for the performance of the LHC collimation system and themachine protection. In particular this could become crucial for aiming at stored beam energies of 700MJ in the High Luminosity (HL-LHC) project, in order to avoid beam dumps caused by orbit jitter and to ensure safety during a crab cavity failure. Therefore several techniques to safely deplete the halo, i.e. active halo control, are under development. In a first attempt a novel way for safe halo depletion was tested with particle narrow-band excitation employing the LHC Transverse Damper (ADT). At an energy of 450GeV a bunch selective beam tail scraping without affecting the core distribution was attempted. This paper presents the first measurement results, as well as a simple simulation to model the underlying dynamics.

LHC collimation and energy deposition studies using Beam Delivery Simulation (BDSIM)

IPAC 2016 - Proceedings of the 7th International Particle Accelerator Conference (2016) 3101-3103

Authors:

LJ Nevay, ST Boogert, H Garcia-Morales, SM Gibson, R Kwee-Hinzmann, R Bruce, S Redaelli

Abstract:

Beam Delivery Simulation (BDSIM) is a program that uses a suite of high energy physics software including Geant4, CLHEP and ROOT, that seamlessly tracks particles through accelerators and detectors utilising the full range of particles and physics processes from Geant4. A comparison of the collimator cleaning efficiency and energy deposition throughout the full length of the Large Hadron Collider (LHC) with the established SixTrack simulations of the CERN collimation group is presented. The propagation of the full hadronic showers from collimators provides unparalleled detail in energy deposition maps and these are compared with the data from beam loss monitors that measure radiation outside the magnet body.

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