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Published byRodger Watts Modified over 8 years ago
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SiD Concept – R&D Needs Andy White U. Texas at Arlington SiD Concept Meeting LCWS06 Bangalore, India March 11, 2006
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Overview - For each area of SiD: - What has been developed? - What R&D is underway? - What is needed? - What is the timeline? Many opportunities for people to join SiD R&D!!
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SiD
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Vertex/Tracking Detector
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Vertex Detector Silicon on Insulator Sensor technology development Materials R&D
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Vertex Detector – mechanics Cable openings Sensors CF cylinder CF end ring Fastener opening Bill Cooper - Fermilab
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Vertex Detector The main goal is a reasonably detailed overall detector system design in order to understand the relevance of the performance parameters to guide R&D. Sensor Technology Mechanical Design Readout Electronics and Services Beam Pipe Cooling Su Dong
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Tracking Detector
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SLAC-Oregon-UC Davis-BNL Si-W ECal R&D David Strom Effective 4 x 4 mm 2
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11 Preliminary results on SiD studies - Meshing - Locations of the beam (placed at the corners of the Si hexagons) The threaded fasteners are not in the model (worst case study). Node (connection between shell and beam) 2 mm Shell Beam 6 ddl connected (no gap) Top view on the ¼ module Si hexagon Annecy
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Electromagnetic Calorimetry - Wafer testing (U.Oregon) - ECal module assembly (SLAC/Oregon) - Mechanical design (Annecy) - ECal overall design for SiD - KPix readout development (SLAC)
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Hadron Calorimetry Three approaches: 1)Digital HCal using Gas Electron Multiplier technology 2) Digital HCal using Resistive Plate Chambers 3) Analog/sem-digital using Scintillator/SiPM’s Plus…development of readout electronics. Plus…a need for more detailed simulations and algorithm development for Particle Flow approach.
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Hadron Calorimeter – digital GEM 500 channel/5- layer test 30x30cm 2 foils Details of new 30cm x 30cm foils from 3M (1) Gas Electron Multiplier (GEM) – based DHCAL
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Hadron Calorimeter – digital GEM Average multiplicity = 1.27 Cross talk studies MIP Efficiency Energy Deposit MIP Efficiency study Assembly techniques for large scale GEM layers Goal: Test beam at Fermilab 2007
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“Thick-GEM’s” - TGEM’s made by standard drilling of PCB, including removal of O(100µm) around hole to allow higher voltage use. - Now evaluating samples from A.Breskin – Weizman Inst.
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Hadron Calorimeter – digital GEM Opportunities: - Large scale chamber assembly and cosmic testing - Preparations for test beam(s) - Gas system design - HCal design for SiD with GEM-DHCAL - Simulation for test beam and PFA
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Hadron Calorimeter – digital RPC (2) Resistive Plate Chamber-based DHCAL Signal Pad Mylar sheet Aluminum foil 1.1mm Glass sheet Resistive paint 1.2mm gas gap -HV GND Charged particles
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Hadron Calorimeter – digital RPC AIR4 Note the scale difference! “RPC’s totally understood - ready to build RPCs for the 1m3 test beam section” Goal: Test beam at Fermilab 2007
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Hadron Calorimeter – Readout Common to RPC and GEM (400,000 channels/module) Gary Drake (ANL) 40 unpackaged chips in hand Tests started: digital part tested: OK, analog tests next. 1) R/O for test beam only 2) Towards a final R/O design: KPix M.Breidenbach (SLAC) First prototype under test
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Hadron Calorimeter – digital RPC Opportunities: - Large scale chamber assembly (ANL) - Preparations for test beam(s) - Gas system design (MTBF) - HCal design for SiD with RPC-DHCAL (ANL) - Simulation for test beam and PFA - Low angle regions/transition to very forward detectors
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Hadron Calorimeter - Scintillator SiPM Full 1m 3 prototype stack – with SiPM readout. Goal is for CERN/Fermilab test beams exposure in Fall 2006/Spring 2007
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Fermilab Beam Tests Support structure being provided by DESY for test beam at Fermilab - GEM/RPC and Scintillator all have needs for people to help with many aspects of the beam tests: - HV system/Gas system/DAQ…
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Muon system/Tail Catcher - Open questions: - Depth? - How much to instrument? - Use same technology as Hadron Calorimeter? - What role does muon identification in the HCal play? - Do we need a tail catcher? - Choice of technologies: Scintillator or RPC?
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Muon Technologies Scintillator-based muon system development Extruded scintillator strips with wavelength shifting fibers. Readout: Multi-anode PMTs GOAL: 2.5m x 1.25m planes for Fermilab test beam U.S. Collaboration
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Muon Technologies European – CaPiRe Collaboration TB @ Frascati
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Putting it all together… - Overall design - Full detector performance - Detector/interaction region issues
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Integrated Detector Design Tracking system EM Cal HAD Cal Muon system/ tail catcher VXD tag b,c jets
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Detector Open with Full Access to Inner Detector Outer tracker Inner detector
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Other areas with R&D needs - Superconducting Coil – CMS style conductor - Forward Plenty of interesting and challenging R&D on the SiD Detector Concept – come and join us!
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