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

Prof Dr Armin Reichold

Professor of Physics

Research theme

  • Accelerator physics
  • Fundamental particles and interactions

Sub department

  • Particle Physics

Research groups

  • Future Colliders
  • SNO+
Armin.Reichold@physics.ox.ac.uk
Telephone: 01865 (2)73358
Denys Wilkinson Building, room 473,617
  • About
  • Publications

Measurement of the $^8$B Solar Neutrino Flux in SNO+ with Very Low Backgrounds

(2018)

Authors:

The SNO Collaboration, :, M Anderson, S Andringa, S Asahi, M Askins, DJ Auty, N Barros, D Bartlett, F Barão, R Bayes, EW Beier, A Bialek, SD Biller, E Blucher, R Bonventre, M Boulay, E Caden, EJ Callaghan, J Caravaca, D Chauhan, M Chen, O Chkvorets, B Cleveland, C Connors, IT Coulter, MM Depatie, F Di Lodovico, F Duncan, J Dunger, E Falk, V Fischer, E Fletcher, R Ford, N Gagnon, K Gilje, C Grant, J Grove, AL Hallin, D Hallman, S Hans, J Hartnell, WJ Heintzelman, RL Helmer, JL Hernández-Hernández, B Hreljac, J Hu, AS Inácio, CJ Jillings, T Kaptanoglu, P Khaghani, JR Klein, R Knapik, LL Kormos, B Krar, C Kraus, CB Krauss, T Kroupova, I Lam, BJ Land, R Lane, A LaTorre, I Lawson, L Lebanowski, EJ Leming, A Li, J Lidgard, B Liggins, Y Liu, V Lozza, M Luo, S Maguire, A Maio, S Manecki, J Maneira, RD Martin, E Marzec, A Mastbaum, N McCauley, AB McDonald, P Mekarski, M Meyer, M Mlejnek, I Morton-Blake, S Nae, M Nirkko, HM O'Keeffe, GD Orebi Gann, MJ Parnell, J Paton, SJM Peeters, T Pershing, L Pickard, D Pracsovics, G Prior, A Reichold, R Richardson, M Rigan, J Rose, R Rosero, J Rumleskie, I Semenec, K Singh, P Skensved, MI Stringer, R Svoboda, B Tam, L Tian, J Tseng, E Turner, R Van Berg, JGC Veinot, CJ Virtue, E Vázquez-Jáuregui, J Wang, JJ Weigand, JR Wilson, P Woosaree, A Wright, JP Yanez, M Yeh, K Zuber, A Zummo

Absolute distance measurement using frequency scanning interferometry

Chapter in Modern Interferometry for Length Metrology, IOP Publishing (2018) 8-1-8-54

Scattering length monitoring at the SNO plus detector

Journal of Physics : Conference Series Institute of Physics (IoP) 888 (2017)

Authors:

S Langrock, J Lidgard, E Turner, L Segui, A Reichold, JR Wilson, SNO Collaboration

Absolute multilateration between spheres

Measurement Science and Technology IOP Publishing 28:4 (2017) 1-11

Authors:

JE Muelaner, W Wadsworth, M Azini, G Mullineux, B Hughes, Armin Reichold

Abstract:

Environmental effects typically limit the accuracy of large scale coordinate measurements in applications such as aircraft production and particle accelerator alignment. This paper presents an initial design for a novel measurement technique with analysis and simulation showing that that it could overcome the environmental limitations to provide a step change in large scale coordinate measurement accuracy. Referred to as absolute multilateration between spheres (AMS), it involves using absolute distance interferometry to directly measure the distances between pairs of plain steel spheres. A large portion of each sphere remains accessible as a reference datum, while the laser path can be shielded from environmental disturbances. As a single scale bar this can provide accurate scale information to be used for instrument verification or network measurement scaling. Since spheres can be simultaneously measured from multiple directions, it also allows highly accurate multilateration-based coordinate measurements to act as a large scale datum structure for localized measurements, or to be integrated within assembly tooling, coordinate measurement machines or robotic machinery. Analysis and simulation show that AMS can be self-aligned to achieve a theoretical combined standard uncertainty for the independent uncertainties of an individual 1 m scale bar of approximately 0.49 µm. It is also shown that combined with a 1 µm m−1 standard uncertainty in the central reference system this could result in coordinate standard uncertainty magnitudes of 42 µm over a slender 1 m by 20 m network. This would be a sufficient step change in accuracy to enable next generation aerospace structures with natural laminar flow and part-topart interchangeability.

Measurement of event-shape observables in Z→ℓ+ℓ− events in pp collisions at s√=7 TeV with the ATLAS detector at the LHC

European Physical Journal C Springer Berlin Heidelberg 76:7 (2016) 375

Authors:

K Motohashi, R Mount, E Mountricha, SV Mouraviev, EJW Moyse, S Muanza, RD Mudd, F Mueller, J Mueller, RSP Mueller, T Mueller, D Muenstermann, P Mullen, GA Mullier, FJ Munoz Sanchez, JA Murillo Quijada, WJ Murray, H Musheghyan, M Muskinja, AG Myagkov, M Myska, BP Nachman, O Nackenhorst, J Nadal, Koichi Nagai

Abstract:

Event-shape observables measured using charged particles in inclusive Z-boson events are presented, using the electron and muon decay modes of the Z bosons. The measurements are based on an integrated luminosity of 1.1 fb−1 of proton–proton collisions recorded by the ATLAS detector at the LHC at a centre-of-mass energy √s = 7 TeV. Chargedparticle distributions, excluding the lepton–antilepton pair from the Z-boson decay, are measured in different ranges of transverse momentum of the Z boson. Distributions include multiplicity, scalar sum of transverse momenta, beam thrust, transverse thrust, spherocity, and F-parameter, which are in particular sensitive to properties of the underlying event at small values of the Z-boson transverse momentum. The measured observables are compared with predictions from Pythia8, Sherpa, and Herwig7. Typically, all three Monte Carlo generators provide predictions that are in better agreement with the data at high Z-boson transverse momenta than at low Z-boson transverse momenta, and for the observables that are less sensitive to the number of charged particles in the event.

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