Downstream e-  identification 1. Questions raised by the Committee 2. Particle tracking in stray magnetic field 3. Cerenkov and calorimeter sizes 4. Preliminary.

Slides:



Advertisements
Similar presentations
GEANT Simulation of RCS Vahe Mamyan Hall A Analysis Workshop December 10, 2003.
Advertisements

CBM Calorimeter System CBM collaboration meeting, October 2008 I.Korolko(ITEP, Moscow)
Stefan Roesler SC-RP/CERN on behalf of the CERN-SLAC RP Collaboration
Preliminary studies for T2 primary target for the NA61 fragmentation beam run 11 th October 2010 – NA61 Collaboration Meeting M. Calviani on behalf of.
January 14, 2004 TJR - - UPDATED 1/25/04 1 MICE Beamline Analysis Using g4beamline Including Jan 25 Updates for Kevin’s JAN04 Beamline Design Tom Roberts.
HARP Anselmo Cervera Villanueva University of Geneva (Switzerland) K2K Neutrino CH Meeting Neuchâtel, June 21-22, 2004.
December 10, 2008 TJRParticle Refrigerator1 The Particle Refrigerator Tom Roberts Muons, Inc. A promising approach to using frictional cooling for reducing.
Use of G EANT 4 in CMS AIHENP’99 Crete, April 1999 Véronique Lefébure CERN EP/CMC.
Quartz Plate Calorimeter Prototype Ugur Akgun The University of Iowa APS April 2006 Meeting Dallas, Texas.
TJR Feb 10, 2005MICE Beamline Analysis -- TRD SEPT041 MICE Beamline Analysis – TRD SEPT04 Tom Roberts Muons, Inc. February 10, 2005.
Muon Identification Antoine Cazes Laboratoire de l’ Accelerateur Lineaire OPERA Collaboration Meeting in Frascatti Physics coordination meeting. October.
MARS15 Simulations of the MERIT Mercury Target Experiment Fermilab March 18, Neutrino Factory and Muon Collider Collaboration meeting Sergei.
Hall D Photon Beam Simulation and Rates Part 1: photon beam line Part 2: tagger Richard Jones, University of Connecticut Hall D Beam Line and Tagger Review.
Status of the Tagger Hall Background Simulation Simulation A. Somov, Jefferson Lab Hall-D Collaboration Meeting, University of Regina September
M.apollonioMICE Analysis meeting 23/1/20071 M. Apollonio – University of Oxford Radius of diffuser and sizes for PID.
International Muon Ionization Cooling Experiment Edward McKigney Imperial College RAL March 25, 2002 Physics Motivation and Cooling Introduction.
Could CKOV1 become RICH? 1. Characteristics of Cherenkov light at low momenta (180 < p < 280 MeV/c) 2. Layout and characterization of the neutron beam.
30 March Global Mice Particle Identification Steve Kahn 30 March 2004 Mice Collaboration Meeting.
Mar 31, 2005Steve Kahn -- Ckov and Tof Detector Simulation 1 Ckov1, Ckov2, Tof2 MICE Pid Tele-Meeting Steve Kahn 31 March 2005.
Alain Blondel MICE: Constraints on the solenoids 2.Field Homogeneity: or ? this will be dictated by the detector requirements. TPG will be.
1 Downstream scraping and detector sizes Rikard Sandström University of Geneva MICE collaboration meeting CERN.
1 PID Detectors & Emittance Resolution Chris Rogers Rutherford Appleton Laboratory MICE CM17.
1 PID status MICE Analysis phone conference Rikard Sandström.
TJR 10/30/031 MICE Beam rates Tom Roberts Illinois Institute of Technology 10/30/03.
1 G4MICE studies of PID transverse acceptance MICE video conference Rikard Sandström.
Downstream transversal sizes Rikard Sandström University of Geneva MICE detector meeting.
1 G4MICE downstream distributions G4MICE plans Rikard Sandström Universite de Geneve MICE collaboration meeting 27/6-05.
K.Walaron Fermilab, Batavia, Chicago 12/6/ Simulation and performance of beamline K.Walaron T.J. Roberts.
Status report about the e-  identifier Study of shielding against the stray magnetic field at the downstream end of the spectrometer F. Huveneers, Gh.
Chris Rogers, MICE CM16 Wednesday Plenary Progress in Cooling Channel Simulation.
Software parallel session summary MICE collaboration meeting INFN, Frascati 27/6-05.
Could CKOV1 become RICH? 1. Simulations 2. Sensitive area of the detection plane 3. Example of a workable solution 4. Geometrical efficiency of the photon.
Jun 27, 2005S. Kahn -- Ckov1 Simulation 1 Ckov1 Simulation and Performance Steve Kahn June 27, 2005 MICE Collaboration PID Meeting.
Stephen KahnParticle ID Software Mice Collaboration Meeting Page 1 Particle ID Software Steve Kahn Brookhaven National Lab 27 March 2003.
Chris Rogers, Analysis Parallel, MICE CM17 Progress in Cooling Channel Simulation.
E-  identification 1. Reminder from previous presentations, questions, remarks 2. Čerenkov option 3. Study of several optical configurations 4. Conclusions.
1 EMCal design MICE collaboration meeting Fermilab Rikard Sandström.
Diffuser Studies Chris Rogers, IC/RAL MICE VC 09 March 2005.
Emittance measurement: ID muons with time-of-flight Measure x,y and t at TOF0, TOF1 Use momentum-dependent transfer matrices iteratively to determine trace.
Karsten Büßer Beam Induced Backgrounds at TESLA for Different Mask Geometries with and w/o a 2*10 mrad Crossing Angle HH-Zeuthen-LC-Meeting Zeuthen September.
Emittance measurement: ID muons with time-of-flight Measure x,y and t at TOF0, TOF1 Use momentum-dependent transfer matrices to map  path Assume straight.
M.apollonioCM17 -CERN- (22/2-25/2/2007)1 M. Apollonio – University of Oxford sizes for PID & shields.
Feb 10, 2005 S. Kahn -- Pid Detectors in G4MicePage 1 Pid Detector Implementation in G4Mice Steve Kahn Brookhaven National Lab 10 Feb 2005.
LCWS2004 Paris 1 Beam background study for GLC Tsukasa Aso, Toyama College of Maritime Technology and GLC Vertex Group H.Aihara, K.Tanabe, Tokyo Univ.
MICE at STFC-RAL The International Muon Ionization Cooling Experiment -- Design, engineer and build a section of cooling channel capable of giving the.
Detector Monte-Carlo ● Goal: Develop software tools to: – Model detector performance – Study background issues – Calculate event rates – Determine feasibility.
Measurement of Vus. Recent NA48 results on semileptonic and rare Kaon decays Leandar Litov, CERN On behalf of the NA48 Collaboration.
Nov Beam Catcher in KOPIO (H. Mikata Kaon mini worksyop1 Beam Catcher in the KOPIO experiment Hideki Morii (Kyoto Univ.) for the KOPIO.
1M. Ellis - NFMCC - 31st January 2007 MICE Analysis.
PID simulations Rikard Sandström University of Geneva MICE collaboration meeting RAL.
Jonathan BouchetBerkeley School on Collective Dynamics 1 Performance of the Silicon Strip Detector of the STAR Experiment Jonathan Bouchet Subatech STAR.
Forward Tagger Simulations Implementation in GEMC Moller Shield Tracking Studies R. De Vita INFN –Genova Forward Tagger Meeting, CLAS12 Workshop, June.
Simulating the RFOFO Ring with Geant Amit Klier University of California, Riverside Muon Collaboration Meeting Riverside, January 2004.
Downstream Cherenkov Gh. Grégoire University of Louvain MICE collaboration meeting RAL, October 28, 2004 Design study for the Technical Reference Document.
Electron Spectrometer: Status July 14 Simon Jolly, Lawrence Deacon 1 st July 2014.
2005/07/12 (Tue)8th ACFA Full simulator study of muon detector and calorimeter 8th ACFA Workshop at Daegu, Korea 2005/07/12 (Tue) Hiroaki.
Monte Carlo simulation of the particle identification (PID) system of the Muon Ionization Cooling Experiment (MICE) Mice is mainly an accelerator physics.
CKOV1 design status 1. Generation of muon and pion beam files 2. PID performances with water radiator 3. Does it help with fluorocarbon FC72 ? 4. Conclusion.
Photon & e+e- Hits in Muon Higgs Factory T. Markiewicz T. Maruyama SLAC MAP Collaboration Meeting. Fermilab 29 May 2014.
This presentation will describe the state of each element in the beam line with regards to the current update being undertaken. Firstly, it will describe.
MICE Step IV Lattice Design Based on Genetic Algorithm Optimizations Ao Liu on behalf of the MICE collaboration Fermilab Ao Liu on behalf of the MICE collaboration.
SIMULATION OF BACKGROUND REDUCTION TECHNIQUES FOR Ge DBD DETECTORS Héctor Gómez Maluenda. University of Zaragoza. GERDA/Majorana MC Meeting.
Dark Current in ILC Main Linac N.Solyak, A.Sukhanov, I.Tropin ALCW2015, Apr.23, 2015, KEK LCWS'15, Tsukuba, 04/2015Nikolay Solyak1.
Magnetic Shielding Studies of the LHCb RICH Photon Detectors Mitesh Patel, Marcello Losasso, Thierry Gys (CERN )
MICE Step IV Lattice Design Based on Genetic Algorithm Optimizations
Update of the SR studies for the FCCee Interaction Region
M. Migliorati, C. Vaccarezza INFN - LNF
Update on GEp GEM Background Rates
The Detector System of the MICE Experiment
Background Simulations at Fermilab
Presentation transcript:

Downstream e-  identification 1. Questions raised by the Committee 2. Particle tracking in stray magnetic field 3. Cerenkov and calorimeter sizes 4. Preliminary conclusions Gh. Grégoire CERN March 2003 Progress towards answers to the International Peer Review Panel 5. Questions MICE Collaboration Meeting

Questions raised 1. Homogeneity of response of the particle ID devices downstream ? 2. Risk of bias through loss of muons by unwanted rejection? - position - incident angle - energy dependence of over-vetoing electrons Cerenkov and calorimeter !

First elements For the Cerenkov Possible origins of inhomogeneity of response - too few generated photons at some places - non uniform light acceptance/collection across the system Precautions - radiator area is large enough - highly reflective walls and surfaces - number of reflections kept to a minimum Remark These precautions were already taken into account in the conceptual design presented in the proposal … but a second iteration is needed ! What are the sizes and relative positions of the Cerenkov and the calorimeter ?

Input data a) Sampleelectrons muons (from P. Janot) from the simulation of a cooling channel Starting points Relative populations of electrons vs muons are not normalized ! Previous presentations b) Latest(?) magnetic field configuration from R. Palmer (version 5) c) proposal

V.5 Magnetic field configuration r z O

Downstream ID detectors … according to proposal ! Transverse size of Cerenkov must match the distribution of muons which reach the calorimeter

Particle tracking - Generation of field map downstream the solenoid - GEANT 4 tracking of Janot’s muon and electron files - Results Electron and muon distributions (positions, momentum components) for 0 < z < 1000 mm 0 < r < 500 mm (-500 < x, y < 500 mm) from geometry and current densities (TOF2 not yet taken into account)

Trajectories r z r z 1000 mm ElectronsMuons

Transverse distributions

Acceptance for muons 700 mm 400 mm Calorimeter Cerenkov at z = 100 mm at z  800 mm

Preliminary conclusions (1) - Smaller Cerenkov and calorimeter compared to proposal - Updated mechanical and optical designs to come (soon?) - No large improvement expected on homogeneity of response  = 77%Thresh = 5 .e. Fluctuations are largely dominated by statistics Cost … but magnetic shielding not taken into account ! Optical response

Preliminary conclusions (2) Correlation with the calorimeter ? With n=1.02, [ % HE muons generating > 5 .e. ] = 0.2 E thr = 530 MeV Unambiguously identified in calo ! … except if  decays inside Cerenkov Proba ~1.5 x (over 0.5 m at 530 MeV) Fraction [ good  ] veto  3 x 10 -7

Questions for further work 1. Confirmation of Geant 4 tracking Who? When? 2. Magnetic shielding Rough estimate ~15 cm iron ! Influence on field and on tracking near end of solenoid ?