The SiD concept Yannis Karyotakis LAPP Annecy / IN2P3 March 21 st ‘05.

Slides:



Advertisements
Similar presentations
CLIC-ILC collaborations on detectors F. Richard LAL/Orsay PAC Valencia May
Advertisements

Victoria04 R. Frey1 Silicon/Tungsten ECal Status and Progress Ray Frey University of Oregon Victoria ALCPG Workshop July 29, 2004 Overview Current R&D.
Testbeam Requirements for LC Calorimetry S. R. Magill for the Calorimetry Working Group Physics/Detector Goals for LC Calorimetry E-flow implications for.
Snowmass 25 AugustMark Thomson 1 PFA Progress and Priorities Mark Thomson (for Steve Magill, Felix Sefkow, Mark Thomson and Graham Wilson)  Progress at.
SiD and the Roadmap for ILC Detectors SLAC Users Organization Annual Meeting June 7, 2007 John Jaros.
ILC Detector SLAC DOE Program Review June 15, 2005 John Jaros ILC Detector SLAC DOE Program Review June 15, 2005 John Jaros.
“GLD” Detector Concept Study 21. Mar. Y. Sugimoto KEK.
SLUO M. Breidenbach126 September 2005 SiD SLUO
SiD Cal R. Frey1 Some EGS Studies… Compare with Geant4  Questions of range/cutoff parameters EM Resolution understood? Moliere radius – readout gap relation.
Summary Remarks By Jonathan Dorfan. We Are Living In a Remarkable Time – We Stand at the Door to a A scientific Revolution  Discoveries of the past five.
Jerry Blazey May 31, 2007 LCWS07 1 SiD Overview & Opportunities Jerry Blazey Northern Illinois University LCWS07-Hamburg.
Snowmass, August 16, 2005 H.Weerts SiD Design Goals and Plans for Snowmass Snowmass H.Weerts Argonne Nat. Lab./ Michigan State Univ.
 k0k0 ++ -- -- p ILC Technical Design Report Physics and Detectors – Detailed Baseline Design Juan A. Fuster Verdú, IFIC-Valencia PAC Meeting, KEK.
The GLD Concept. MDI Issues Impact on Detector Design L*  Background (back-scattered e+-, , n) into VTX, TPC Crossing angle  Minimum veto angle for.
David Attié Club ‘ILC Physics Case’ CEA Saclay June 23, 2013 ILD & SiD concepts and R&D.
Charge to the SiD Workshop Andy White University of Texas at Arlington.
10 July 2001Snowmass 2001 M. Breidenbach1 This Detector Can’t Be Built without lots of work.
Summary of Calorimetry/Muon Sessions Burak Bilki University of Iowa Argonne National Laboratory.
Charge to the Workshop (and a report from WWS) Hitoshi Yamamoto July 11, 2005 ACFA8, Daegu, Korea.
SiD Engineering Status Report Kurt Krempetz (Layer 5) (Layer 1) VXD.
SiD R&D on PFA and Calorimetry -> IDAG guidance. -> Present PFA situation. -> Developing a timeline for PFA development. -> Calorimetry aspects.
SiD Concept – R&D Needs Andy White U. Texas at Arlington SiD Concept Meeting LCWS06 Bangalore, India March 11, 2006.
@ Future Plans for SiD & Opportunities for collaboration H.Weerts Argonne National Lab.
Preparing for the SiD LoI SiD Parallel Session TILC08 March 5, 2008 John Jaros.
Linear collider muon detector: Marcello Piccolo Amsterdam, April 2003.
SiD Engineering Design for the LOI Kurt Krempetz (Layer 5) (Layer 1) VXD.
Workshop Goals SiD RAL Workshop April 14, 2008 John Jaros.
ACFA-7; Taipei, Nov 2004 H.Weerts Kick-off The Si licon D etector Design Study SiD Organization & Status H.Weerts Fermilab/Michigan State Univ. SiD kick.
SiD R&D tasks for the LOI - Subsystem R&D tasks - Summary of SiD R&D - Prioritization of R&D tasks -> Document for DoE/NSF ~Feb 2009 (Mainly based on Marty’s.
Philip Burrows SiD meeting, Chicago 15/11/081 Progress on the LoI Philip Burrows John Adams Institute Oxford University Thanks to: Hiro Aihara, Mark Oreglia.
Optimizing the SiD Detector - mainly a calorimeter perspective Andy White SiD Advisory May 5, 2008.
CLIC CDR in relation to SiD Lucie Linssen SiD discussion at IWLC CERN October 18 th LL, SiD meeting at IWLC, 18/10/2010.
CLICdp achievements in 2014 and goals for 2015 Lucie Linssen, CERN on behalf of the CLICdp collaboration CLIC workshop, January 30 th
Coil and HCAL Parameters for CLIC Solenoid and Hadron-calorimetry for a high energy LC Detector 15. December LAPP Christian Grefe CERN.
Lcsim software: status and future plans ECFA-LC DESY May 28, 2013 Norman Graf (for the sim/reco group)
Silicon Detector Tracking ALCPG Workshop Cornell July 15, 2003 John Jaros.
The Silicon Detector Concept Taipei ACFA Meeting November 9, 2004 John Jaros.
“Huge” Detector Concept 3 Sep 2004 ECFA LC Durham Satoru Yamashita ICEPP, University of Tokyo On behalf of many colleagues Towards our common.
SiD Snowmass 05 Jaros1 Optimizing SiD getting from here….……………….to there SiD Concept/Snowmass August 16, 2005 John Jaros.
February, INP PAN FCAL Workshop in Cracow W. Lohmann, DESY The BCD (Baseline Configuration Document) The next calendar dates Where we are with FCAL.
SiD collab. Mtg., 30 jan 2008 H.Weerts Stimulate the discussion & Closing Remarks to SiD collaboration meeting 30 January 2008 H.Weerts Argonne National.
SiD workshop, January 16-18, 2013 H.Weerts Building the SiD collaboration H.Weerts Argonne National Laboratory Proposal & suggestions.
SiD R&D Priorities Andy White University of Texas at Arlington SiD Workshop at SLAC March 2009.
SiD Detector Baseline (A brief review) Andy White University of Texas at Arlington.
How to Get Involved in SiD Richard Partridge Brown / SLAC LCWS 07.
R Frey LCWS071 A Silicon-Tungsten ECal with Integrated Electronics for the ILC -- status Currently optimized for the SiD concept Baseline configuration:
SiD Workshop Highlights May 8, 2007 John Jaros. Jim Brau WWS Detector Roadmap SiD Workshop, Fermilab April 9, 2007 Keeping up with Machine: Motivation.
Philip Burrows SiD Workshop, SLAC 2/03/091 Status of the SiD LoI Philip Burrows John Adams Institute Oxford University Hiro Aihara, Mark Oreglia.
4th Concept Detector G P Yeh TILC08, Sendai, Japan Mar. 3-6, 2008.
Mar. 31, 2003CAL Testbeam Discussion J. Yu 1 Calorimeter Test Beam Goals 1.Test of hardware technologies Feasibilities, properties and performances of.
Kinematics Opportunities and issues 1F. Fleuretfixed-target projects at CERN.
SiD Detector Concept R&D Perspective Andy White SiD R&D Coordinator University of Texas at Arlington.
VLCW06, July 23, 2006 H.Weerts Vancouver, CA 1 Where YOU can contribute in SiD. H.Weerts Argonne National Lab for SiD concept design study.
Status of the DCR Detector Chapter International Linear Collider (ILC) Workshop ILC-ECFA and GDE Joint Meeting in Valencia 7 November 2006 Detector Concept.
Durham TB R. Frey1 ECal R&D in N. America -- Test Beam Readiness/Plans Silicon-tungsten SLAC, Oregon, Brookhaven (SOB) Scintillator tiles – tungsten U.
ECFA 04, Durham, Sept. 04 H.Weerts SiD design study Silicon Detector Design Study H.Weerts Fermilab / Michigan State University.
16 August 2005 SiD Snowmass 05 M. Breidenbach 1 SiD Expectations from the Design Study –Motivation –What We Need! –Technical efforts –Status.
SiD R&D Plan and Opportunities for New Collaborators
ILD Technical Coordination
SiD Calorimeter R&D Collaboration
Preparations for the SiD Workshop at Fermilab, April 9-11
CLIC detector at SiD meeting 28/3/2010
The SiD Detector Outline Overview
Calorimetry for a CLIC experiment
January Collaboration Meeting
The DBD: Outline and Scope
SiD Tracking What’s Next?
A Silicon-Tungsten ECal for the SiD Concept
ILC Detector Technology
The Silicon Detector Design Study European Kickoff Meeting
Presentation transcript:

The SiD concept Yannis Karyotakis LAPP Annecy / IN2P3 March 21 st ‘05

2 Main ideas  An high performance detector optimized to study e + e - collisions of 0.5 to 1 TeV  The Particle Flow resolution drives the detector design through the ECal  Integrated, optimized, hermetic detector  Cost has to be reasonably constrained

3 The detector concept  Excellent integrated tracking and vertexing system  Compact calorimetry  High magnetic field

4 Tracking and Vertexing Fully Integrated system Excellent pattern recognition and momentum resolution Robust operation

5 Calorimetry  ECal Si/W Keep it compact Keep it compact Keep effective Molière radius small Keep effective Molière radius small  HCal  4 : 34  2 cm Fe or W  4 : 34  2 cm Fe or W RPCs, GEMs, scintillator RPCs, GEMs, scintillator Glass RPCs, in simulationGlass RPCs, in simulation Many channels (1-2K) on one ASIC Thin wafers

6 Solenoid and Flux return Feasibility study underway to at least convince ourselves that 5T can be built. B=5 Tesla Stored energy ~ 1.2 GJ CMS solenoid sets current scale. First ANSYS 2D, 3D Modeling Ongoing Muon R&D on layout ( flux return) and detector technologies

7 SiD Organization Design Study Coordinators J. Jaros and H. Weerts Asian and European Contact Persons H. Aihara and Y. Karyotakis Design Study Coordinators J. Jaros and H. Weerts Asian and European Contact Persons H. Aihara and Y. Karyotakis SiD Executive Committee Design Study Coordinators SiD R&D Coordinator A. White Godfathers M. Breidenbach and J. Brau SiD Executive Committee Design Study Coordinators SiD R&D Coordinator A. White Godfathers M. Breidenbach and J. Brau SiD Advisory Group SiD Executive Committee Working Group Leaders SiD Working Groups Benchmarking (T. Barklow), Calorimetry (R. Frey, J. Repond), Forward Calorimetry, Costs (M. Breidenbach), Magnet/Flux Return, Muons, Simulation (N. Graf), Tracking (M. Demarteau, R. Partridge), Vertexing (D. Su), MDI Liaison. SiD Advisory Group SiD Executive Committee Working Group Leaders SiD Working Groups Benchmarking (T. Barklow), Calorimetry (R. Frey, J. Repond), Forward Calorimetry, Costs (M. Breidenbach), Magnet/Flux Return, Muons, Simulation (N. Graf), Tracking (M. Demarteau, R. Partridge), Vertexing (D. Su), MDI Liaison.

8 Road to Snowmass  LCWS05 Settle on critical questions and goals  April Working Groups define simulation studies and other work needed to answer critical questions by Snowmass, engage help, start work.  May-August Working Group meetings push studies and review progress. Monthly Advisory Group meetings push overall detector design, review sub-system progress.  Mid-June Advisory Group meeting at Fermilab. Mid-term review.  Mid-June Advisory Group meeting at Fermilab. Mid-term review.  before Be ready with sub-system designs, based on realistic Snowmass mechanical concepts, justified with simulated performance. Design tools ready. Benchmarking analyses ready.  before Be ready with sub-system designs, based on realistic Snowmass mechanical concepts, justified with simulated performance. Design tools ready. Benchmarking analyses ready.  at Review subsystem designs and Snowmass starting point performance. Optimize overall detector. Review technologies and mechanical design and choose baselines.

9 Concluding remarks  Join (not exclusive) and work on SiD design  Unique chance for the Design Study to make real headway, integrate all the subsystems into one design, optimize the overall design, debate the relevant technologies, understand the physics/detector interplay.  Study physics performance for several key physics measurements for a variety of detector configurations (e.g. change R, change B, change z,…). Watch the errors vs costs. or