Pad design present understanding Tel Aviv University HEP Experimental Group Ronen Ingbir Collaboration High precision design Tel-Aviv Sep.05 1.

Slides:



Advertisements
Similar presentations
Proposal for a new design of LumiCal R. Ingbir, P. Ruzicka, V. Vrba October 07 Malá Skála.
Advertisements

GUINEA-PIG: A tool for beam-beam effect study C. Rimbault, LAL Orsay Daresbury, April 2006.
LCWS 2005 SLAC, March 19 Low Angle Bhabha Events and Electron Veto. Comparison Between Different Crossing Angle Designs Vladimir DrugakovNC PHEP, Minsk/DESY.
Angular resolution of LAT Agnieszka Kowal University of Science and Technology, Cracow TESLA Workshop on Forward Calorimetry Cracow, 10 October 2003.
Pair Spectrometer Design Optimization Pair Spectrometer Design Optimization A. Somov, Jefferson Lab GlueX Collaboration Meeting September
P hysics background for luminosity calorimeter at ILC I. Božović-Jelisavčić 1, V. Borka 1, W. Lohmann 2, H. Nowak 2 1 INN VINČA, Belgrade 2 DESY, Hamburg.
L. Suszycki, Tel Aviv, Sept, 2005 LumiCal background studies Contents: Guinea Pig results Vermasseren results Remarks on energy reconstruction Conclusions.
Experimental Aspects of Precision Luminosity Measurement contributions from Forward Calorimetry Collaboration L.Suszycki AGH University of Science and.
August 2005Snowmass Workshop IP Instrumentation Wolfgang Lohmann, DESY Measurement of: Luminosity (precise and fast) Energy Polarisation.
August 2005Snowmass Workshop Instrumentation of the Very Forward Region of a Linear Collider Detector Wolfgang Lohmann, DESY.
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.
Beijing, Feb 3 rd, 2007 LEPOL 1 Low Energy Positron Polarimetry for the ILC Sabine Riemann (DESY) On behalf of the LEPOL Collaboration.
Effect of the Shape of the Beampipe on the Luminosity Measurement September 2008 Iftach Sadeh Tel Aviv University DESY.
1 LumiCal Optimization and Design Takashi Maruyama SLAC SiD Workshop, Boulder, September 18, 2008.
Irakli Chakaberia Final Examination April 28, 2014.
Ronen Ingbir Collaboration High precision design Tel Aviv University HEP Experimental Group Krakow2006.
Ronen Ingbir Collaboration High precision design Tel Aviv University HEP Experimental Group Cambridge ILC software tools meeting.
Precise Measurements of SM Higgs at the ILC Simulation and Analysis V.Saveliev, Obninsk State University, Russia /DESY, Hamburg ECFA Study Workshop, Valencia.
Jan MDI WS SLAC Electron Detection in the Very Forward Region V. Drugakov, W. Lohmann Motivation Talk given by Philip Detection of Electrons and.
Luminosity Monitoring and Beam Diagnostics FCAL Collaboration Workshop TAU, September 18-19, 2005 Christian Grah.
Analysis of Beamstrahlung Pairs ECFA Workshop Vienna, November 14-17, 2005 Christian Grah.
Instrumentation of the very forward region of the TESLA detector – summary of the Workshop on Forward Calorimetry and Luminosity Measurement, Zeuthen,
Simulation of physics background for luminosity calorimeter M.Pandurović I. Božović-Jelisavčić “Vinča“ Institute of Nuclear Sciences, Belgrade, SCG.
2. December 2005Valencia Workshop Very Forward Region Instrumentation Wolfgang Lohmann, DESY Basic functions: - Hermeticity to small polar angles - Fast.
Ivan Smiljanić Vinča Institute of Nuclear Sciences, Belgrade, Serbia Energy resolution and scale requirements for luminosity measurement.
September, 19 FCAL Worlshop in Tel Aviv W. Lohmann, DESY Physics Requirements Input From Theory Lessons from LEP LumiCal Simulations BeamCal.
Karsten Büßer Instrumentation of the Forward Region of the TESLA Detector International Europhysics Conference on High Energy Physics Aachen, July 19th.
ILC-ECFA Workshop Valencia November 2006 Four-fermion processes as a background in the ILC luminosity calorimeter for the FCAL Collaboration I. Božović-Jelisavčić,
Fast Beam Diagnostics at the ILC Using the Beam Calorimeter Christian Grah, Desy FCAL Workshop February Cracow.
Latifa Elouadrhiri Jefferson Lab Hall B 12 GeV Upgrade Drift Chamber Review Jefferson Lab March 6- 8, 2007 CLAS12 Drift Chambers Simulation and Event Reconstruction.
Positional and Angular Resolution of the CALICE Pre-Prototype ECAL Hakan Yilmaz.
Electron Detection in the SiD BeamCal Jack Gill, Gleb Oleinik, Uriel Nauenberg, University of Colorado ALCPG Meeting ‘09 2 October 2009.
Optimization of the Design of the Forward Calorimeters ECFA LC Workshop Montpellier, 15 November 2003 *FC Collaboration: Colorado, Cracow, DESY(Zeuthen),
TESLA R&D: Forward Region Achim Stahl DESY Zeuthen Cracow Tel Aviv Minsk Prague Colorado Protvino UC London Dubna.
A Clustering Algorithm for LumiCal Halina Abramowicz, Ronen Ingbir, Sergey Kananov, Aharon Levy, Iftach Sadeh Tel Aviv University DESY Collaboration High.
A Luminosity Detector for the Future Linear Collider Ronen Ingbir Prague Workshop HEP Tel Aviv University.
Impact parameter resolutions for ILC detector Tomoaki Fujikawa (Tohoku university) ACFA Workshop in Taipei Nov
HEP Tel Aviv University LumiCal (pads design) Simulation Ronen Ingbir FCAL Simulation meeting, Zeuthen Tel Aviv University HEP experimental Group Collaboration.
1 Calorimeters of the Very Forward Region Iftach Sadeh Tel Aviv University DESY Collaboration High precision design March 5 th 2008.
Calice Meeting Argonne Muon identification with the hadron calorimeter Nicola D’Ascenzo.
HEP Tel Aviv UniversityLumical - A Future Linear Collider detector Lumical R&D progress report Ronen Ingbir.
The Luminosity Calorimeter Iftach Sadeh Tel Aviv University Desy ( On behalf of the FCAL collaboration ) June 11 th 2008.
1 LumiCal Optimization Simulations Iftach Sadeh Tel Aviv University Collaboration High precision design May 6 th 2008.
Beam-Beam interaction SIMulation: GUINEA-PIG C. Rimbault, LAL Orsay CARE 05, Geneva, November 2005.
Systematic limitations to luminosity determination in the LumiCal acceptance from beam-beam effects C. Rimbault, LAL Orsay LCWS06, Bangalore, 9-13 March.
October DESY PRC Instrumentation of the Very Forward Region of a Linear Collider Detector Univ. of Colorado, Boulder, AGH Univ., INP & Jagiell.
Fast and Precise Luminosity Measurement at the ILC Ch.Grah LCWS 2006 Bangalore.
Tungsten-Silicon Luminosity Detector with Flat Geometry Ronen Ingbir Tel Aviv University High Energy Physics Experimental Group.
September 2007SLAC IR WS Very Forward Instrumentation of the ILC Detector Wolfgang Lohmann, DESY Talks by M. Morse, W. Wierba, myself.
LumiCal background and systematics at CLIC energy I. Smiljanić, Vinča Institute of Nuclear Sciences.
Boogert and Miller; Luminosity Measurement questions; calorimeter-related. 1 Luminosity Measurement questions; calorimeter-related Stewart Takashi Boogert.
HEP Tel Aviv University Lumical R&D progress report Ronen Ingbir ECFA - Durham2004 Lumical - A Future Linear Collider detector.
FCAL Workshop Munich -17 October 2006FCAL Workshop Munchen -17 October 2006 Four-fermion processes as a background in the luminosity calorimeter M.Pandurović.
FCAL Krakow meeting, 6. May LumiCal concept including the tracker R. Ingbir, P.Růžička, V. Vrba.
Study of the Differential Luminosity Spectrum Measurement using Bhabha Events in 350GeV WANG Sicheng 王 思丞 Supervisor: André Sailer.
I nstrumentation of the F orward R egion Collaboration High precision design ECFA - Durham2004 University of Colorado AGH University, Cracow I nstitute.
Min Huang g2p/GEp Collaboration Meeting April 18, 2011.
Experimental considerations about  physics at DA  NE2 F. Anulli, D. Babusci, G. Pancheri Laboratori Nazionali di Frascati  Physics window at DA  NE2.
LumiCal High density compact calorimeter at the ILC Wojciech Wierba Institute of Nuclear Physics PAS Cracow, Poland.
Initial proposal for the design of the luminosity calorimeter at a 3TeV CLIC Iftach Sadeh Tel Aviv University March 6th 2009
Doses and bunch by bunch fluctuations in BeamCal at the ILC Eliza Teodorescu FCAL Collaboration Meeting June 29-30, 2009, DESY-Zeuthen, Germany.
FCAL R&D towards a prototype of very compact calorimeter
Luminosity Measurement using BHABHA events
Huagen Xu IKP: T. Randriamalala, J. Ritman and T. Stockmanns
Summary of the FCAL Workshop Cracow, February 12-13
The very forward region Tel-Aviv meeting summary
GEANT Simulations and Track Reconstruction
Forward-Backward Asymmetry Study in
LAT performance studies
COMPTON SCATTERING IN FORWARD DIRECTION
Presentation transcript:

pad design present understanding Tel Aviv University HEP Experimental Group Ronen Ingbir Collaboration High precision design Tel-Aviv Sep.05 1

High statistics MC, Fast simulation Design optimization (GEANT) : 1.Granularity and reconstruction algorithm (Log. Weighting).Granularity and reconstruction algorithm (Log. Weighting). 2.Electronics channels (Maximum peak shower design).Electronics channels (Maximum peak shower design). Present understanding design (head on ILC, Crossing angle). Method of counting Bhabha events Summary Collaboration High precision design Tel-Aviv Sep.05 2 Outline

Fast Detector Simulation Motivation : High statistics is required to notice precision of : There is an analytic calculation (and approximation) : (Which is the precision goal of the ILC) Luminosity precision determination : N 1 : Reconstructed and generated in acceptance region. N 2 : Generated in acceptance region but reconstructed outside. N 3 : Generated outside acceptance region but reconstructed inside. Collaboration High precision design 3 Tel-Aviv Sep.05

High Statistics Simulation BHWIDE generated properties + smearing to simulate detector Changing the bias with a fixed resolution. Collaboration High precision design 4 Tel-Aviv Sep.05

High Statistics Simulation Changing the detector resolution with no bias Collaboration High precision design 5 Tel-Aviv Sep.05

Data and MC In real life we can include the detector performance (which is measured in test beam) into MC. The only question is: How well should we know the detector performance ? Collaboration High precision design 6 Tel-Aviv Sep.05

Logarithmic Weighting Collaboration High precision design 7 Tel-Aviv Sep.05

Granularity in theta, GEANT results ResolutionBias Collaboration High precision design 8 Tel-Aviv Sep.05

Our basic detector is designed with 30 rings * 24 sectors * 15 cylinders = 10,800 channels Do we use these channels in the most effective way ? Maximum Peak Shower Design 30 rings 15 cylinders 20 cylinders 10 cylinders 24 sectors * 15 rings * (10 cylinders + 20 cylinders) = 10,800 channels 4 rings15 rings11 rings 10 cylinders Collaboration High precision design 9 Tel-Aviv Sep.05

Maximum peak shower design Basic Design Angular resolution improvement without changing the number of channels Other properties remain the same Polar Reconstruction 0.11e-3 rad 0.13e-3 rad Collaboration High precision design 10 Tel-Aviv Sep.05

Present Understanding (pad option) 15 layers (z) 11 layers (z) 4 layers (z) 10 cylinders (θ) 60 cylinders (θ) Collaboration High precision design Based on optimizing theta measurement 14 Cylinders (mrad) 11 Tel-Aviv Sep.05

X- angle background Collaboration High precision design Christian Grah, DESY-Zuethen Beamstrahlung pair background 250 GeV 12 Tel-Aviv Sep.05

Method of counting events Collaboration High precision design 13 Tel-Aviv Sep.05 Applying tight acceptance cut on one detector arm. Count events which satisfy the back to back requirement using a band cut. Maximum peak shower design and logarithmic weighting : working with a constant (Beam energy and cells size dependents) + applying differential weighting between the parts. Applying a looser acceptance cut on the second detector arm. Repeat method for the other side of the detector and compare results.

Tight cut Out In Eout-Ein Eout+Ein P= 3 cylinders 2 cylinders 1 cylinders Collaboration High precision design 14 Tel-Aviv Sep.05

Forward-Backward Balance R L Simulation distribution Distribution after acceptance and energy balance selection Right side PH Left side PH Right PH - Left PH Collaboration High precision design 15 Tel-Aviv Sep.05

Performance of present configuration Collaboration High precision design Pad PerformanceParameter 25%Energy resolution 3.5 * (rad) resolution 0.63 (deg) resolution ~ 1.5 * (rad) 25,200 ~19,000 (X-angle) Electronics channels With this performance the goal can be reached. 16 Tel-Aviv Sep.05

Next (and immediate) steps Collaboration High precision design 17 Tel-Aviv Sep.05 Taking the present understanding design as a basis design for future simulation. Understanding the criteria for identifying and selecting Bhabha event (maybe better detector resolutions are necessary). Testing the crossing angle recommendation design in a crossing angle Bhabha scattering simulation which includes serpentine magnetic field.