Overview of the GlueX Tagger and Photon Beamline..

Slides:



Advertisements
Similar presentations
Optics and magnetic field calculation for the Hall D Tagger Guangliang Yang Glasgow University.
Advertisements

Overview of the GlueX Tagger and Photon Beamline..
G measurement at Ken Livingston, University of Glasgow, Scotland Slides from: Ken Livingston: Various talks at -
Polarized Photon Beam Instrumentation for GlueX Part 1: active collimation Part 2: polarimetry Richard Jones, University of Connecticut GlueX collaboration.
Collimation and tagging instrumentation for the GlueX photon beamline Richard Jones Igor Senderovich, Anne-Marie Carroll University of Connecticut APS/DNP.
Pair Spectrometer Design Optimization Pair Spectrometer Design Optimization A. Somov, Jefferson Lab GlueX Collaboration Meeting September
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.
Upcoming Review of the Hall D Photon Beam and Tagger Richard Jones, University of Connecticut, for the GlueX collaboration GlueX Collaboration Meeting.
Status of the Tagger Hall Background Simulation Simulation A. Somov, Jefferson Lab Hall-D Collaboration Meeting, University of Regina September
Optics and magnetic field calculation for the Hall D Tagger Guangliang Yang Glasgow University.
Electron Beam Simulation for GlueX Richard Jones, University of Connecticut GlueX collaboration meeting April 27-29, 2006 presented by.
Tagger Electronics Part 1: tagger focal plane microscope Part 2: tagger fixed array Part 3: trigger and digitization Richard Jones, University of Connecticut.
E166 Collaboration J.C. Sheppard SLAC, October, 2003 E166 Background Test Simulations: Overview-what do we need J. C. Sheppard.
Tagger hodoscope and photon beam monitoring D.Sober, F.Klein (CUA) Tagger Review, Jan.23-24, 2006.
Elton S. Smith University of Virginia October 25, Overview Bremsstrahlung Tagging Spectrometer and Photon Beam Review Elton S. Smith Jefferson Lab.
Photon Tagging in the Hall D Beamline James McIntyre University of Connecticut 13 May GlueX Graduate Student Workshop Newport News, VA.
Accelerator hall of the S- DALINAC – electron energies from 2 to 130 MeV available – cw and pulsed beam operation possible – source for polarized electron.
Silicon Photomultiplier Readout Electronics for the GlueX Tagger Microscope Hall D Electronics Meeting, Newport News, Oct , 2007 Richard Jones, Igor.
Tagger and Vacuum Chamber Design. Outline. Design considerations. Stresses and deformations. Mechanical assembly.
The Tagger Microscope Richard Jones, University of Connecticut Hall D Tagger - Photon Beamline ReviewJan , 2005, Newport News presented by GlueX.
Photon Source and Tagger Richard Jones, University of Connecticut GlueX Detector ReviewOctober 20-22, 2004, Newport News presented by GlueX Tagged Beam.
Polarized Photons for GlueX Richard Jones, University of Connecticut GlueX Photon Beamline-Tagger ReviewNov , 2005, Newport News presented by GlueX.
Tagging spectrometer and photon beamline Review January 23-24, Response to Questions Bremsstrahlung Tagging Spectrometer and Photon Beam Review.
Tagger and Vacuum Chamber Design. Outline. Design considerations. Stresses and deformations. Mechanical assembly.
We are Here! Gluex Collaboration Meeting May Engineering Status - Presented by Tim Whitlatch1.
5/10/20101GlueX Col meeting, A. Gasparian1 The PrimEx HyCal Calorimeter A. Gasparian NC A&T State University, Greensboro, NC Outline  HyCal calorimeter.
M. Woods (SLAC) Beam Diagnostics for test facilities of i)  ii) polarized e+ source January 9 –11, 2002.
The Hall D Photon Beam Overview Richard Jones, University of Connecticut Hall D Tagged Photon Beam ReviewNov , 2008, Newport News presented by GlueX.
PAIR SPECTROMETER DEVELOPMENT IN HALL D PAWEL AMBROZEWICZ NC A&T OUTLINE : PS Goals PS Goals PrimEx Experience PrimEx Experience Design Details Design.
The GlueX Experiment in Hall-D
Jefferson Lab Presentation to Teacher Education Program November 8, 2006 Subatomic Particles: What do we study at Jefferson Lab? Dr. Allison Lung 12 GeV.
Experiment HUGS 2011 – Jefferson Laboratory Hussein Al Ghoul Department Of Physics Florida State University ᵠ.
Optics and magnetic field calculation for the Hall D Tagger Guangliang Yang Glasgow University.
Elton S. Smith Tagger and Photon Beam Dry Runs Nov 14, Tagger and Photon Beamline Review and goals for today.
Status of the Beamline Simulation A.Somov Jefferson Lab Collaboration Meeting, May 11, 2010.
EuroTag Workshop, Glasgow, 1/9/08 A General Geant4 Tagger Simulation David J. Hamilton University of Glasgow ( EuroTag.
The GlueX Detector 5/29/091CIPANP The GlueX Detector -- David Lawrence (JLab) David Lawrence (JLab) Electron beam accelerator continuous-wave (1497MHz,
Measurement of Gas Bremsstrahlung at the Pohang Light Source Hyosang Lee Seoul National University, Q2C Pusan National University, HANUL HNP2011.
H8-RD22 Experiment to test Crystal Collimation for the LHC Organized by: Walter Scandale Conducted at CERN Geneva, 27 September 2006 Participants included:
Hadron physics Hadron physics Challenges and Achievements Mikhail Bashkanov University of Edinburgh UK Nuclear Physics Summer School I.
PrimEx collaboration meeting Energy calibration of the Hall B bremsstrahlung tagging system using magnetic pair spectrometer S. Stepanyan (JLAB)
M. Dugger, February Triplet polarimeter study Michael Dugger* Arizona State University *Work at ASU is supported by the U.S. National Science Foundation.
HPS T EST R UN C ONTINGENCY P LAN S. Stepanyan JLAB.
Glasgow University Seminar October 2006 A Novel Photon Polarimeter Joseph Santoro CUA Glasgow University Seminar October, 2006.
Integrated Radiation Measurement and Radiation Protection of BES Ⅲ Zhang Qingjiang, Wu protection group, accelerator center, IHEP,
1 Overview of Polarimetry Outline of Talk Polarized Physics Machine-Detector Interface Issues Upstream Polarimeter Downstream Polarimeter Ken Moffeit,
1 G9a -FROST. 2 Experiments FROST New generation of CLAS photoproduction experiments with FROzen Spin Polarized Target (FROST) E02-112: γp→KY (K + Λ,
Photon Flux Control Liping Gan UNCW. Outline PrimEx-  experiment requirement Tagged photon Procedure to obtain the number of tagged photons Relative.
Photon Source and Tagger Richard Jones, University of Connecticut GlueX Detector ReviewOctober 20-22, 2004, Newport News presented by GlueX Tagged Beam.
Magnetized hadronic calorimeter and muon veto for the K +   +  experiment L. DiLella, May 25, 2004 Purpose:  Provide pion – muon separation (muon veto)
Thomas Jefferson National Accelerator Facility SensL 6-Oct CHL-2 12 GeV CEBAF Upgrade magnets and power supplies Two 1.1GV linacs Enhanced capabilities.
B. Azadegan, S. A. Mahdipour Hakim Sabzevari University
An electron/positron energy monitor based on synchrotron radiation. I.Meshkov, T. Mamedov, E. Syresin, An electron/positron energy monitor based on synchrotron.
Results From the Radphi LGD Dan Krop 12/11/03. The Radphi Experiment Radphi Experiment Took Data in Jlab Hall B From May to July Hours Of Beam.
What canlearn from about Ken Livingston, University of Glasgow, Scotland.
Photon Source and Tagger Richard Jones, University of Connecticut GlueX Detector ReviewOctober 20-22, 2004, Newport News presented by GlueX Tagged Beam.
G0 Backward Angle Request: Q 2 = 0.23, 0.48 GeV 2 Main points G0 goal is to measure G E s, G M s and G A e over range of momentum transfers with best possible.
Thomas Jefferson National Accelerator Facility Operated by the Southeastern Universities Research Association for the U.S. Depart. Of Energy The Department.
Overview of recent photon beam runs at CLAS CLAS12 European Workshop, Feb , Genoa, Italy Ken Livingston, University of Glasgow Tagged photons.
Analysis of    production ► Data taking ► Reaction identification ► Results for double polarization observable F ► Summary Based on data taken in the.
Tagger and Vacuum Chamber Design Jim Kellie Glasgow University.
A compact pair polarimeter and spectrometer
Collimation and tagging instrumentation
CLAS, Hall-B Tagged linear and circularly polarised photons
Polarimetry Ken Livingston Sept 2012
Fassò, N. Nakao, H. Vincke Aug. 2, 2005
Hall “12 GeV” May 27, 2003 NAPP 2003: J.J. LeRose.
The Hall D Photon Beam Overview
IPBI-TN R. Arnold (with help from T. Fieguth)
CLIC luminosity monitoring/re-tuning using beamstrahlung ?
Presentation transcript:

Overview of the GlueX Tagger and Photon Beamline.

Outline. Lay-out of Hall D/GlueX complex. Sketch of proposed beamline components. Basic beamline monitoring requirements. Photon polarimetry.

12 GeV CEBAFCHL-2 Upgrade magnets and power supplies Enhance equipment in existing halls add Hall D (and beam line)

Accelerator East Arc Hall D Complex

Photon beam and experimental area Located on the East side off the North linac Tagger Building Experimental Hall D Solenoid-Based detector Collimator Coherent Bremsstrahlung photon beam Electron beam 75m GlueX Detector Hall Collimator Cave

GlueX Beamline Upstream of Spectrometer (i) Diamond +Goniometer Quadrupole Moveable Microscope 8.5 GeV <Eγ<9GeV Broadband Focal Plane 3GeV <Eγ<11.4GeV Electron Beam Current Monitor Electron Beam Dump Permanent Magnet Tagger Dipole Magnet Steel Absorber NMR Exit Electron Beam (13.4° Bend) Note. 1.Photon monitors-either a scintillating fibre array or a pair camera. 2.Distance from radiator to collimator ~80 m. Active photon Collimator Moveable Photon Monitor Photon Collimator cave Concrete Housing W Collimator Sweeping Magnet Steel Absorber Concrete Block Ni Collimator Sweeping Magnet Concrete Block Moveable Photon Monitor Lead wall Converter GLUEXDETECTOR HALLGLUEXDETECTOR HALL

Top View Photon flux Monitor Magnet GlueX Detector Hall Wall Detector array Moveable Microstrip Detector GlueX Beamline Upstream of Spectrometer (ii) GLUEXSPECTROMETERGLUEXSPECTROMETER COLLIMATOR CAVECOLLIMATOR CAVE

GlueX Beamline Downstream of Spectrometer Moveable Lead Glass Monitor Photon Beam Dump Active Photon Monitor GLUEXSPECTROMETERGLUEXSPECTROMETER

Basic Beamline Monitoring Requirements. 1.The electron beam intensity (current measuring cavity), tagger focal plane counting rate and the collimated photon flux (pair spectrometer) must be maintained at a ~1-2% ratio. If any one changes with respect to the others, re-tuning will be necessary. 2.Incident electron beam direction and position (2 cavity position monitors upstream of radiator). 3.Photon beam direction and position ( active collimator, 3 active photon monitors). 4.Absolute photon flux ( lead-glass detector/pair spectrometer). 5.Photon polarisation.

Photon Polarimetry. It is proposed to measure the photon degree of linear polarisation for ( Hz tagged rate on target measured by the microscope ) by: a) Indirectly. Comparing the shapes of the measured and calculated ratios - diamond /amorphous tagger focal plane spectra – over the complete energy range of the tagger. Both the ungated, and gated with photons passing through the collimator, measured focal plane spectra are required. The gating signal could come from the pair spectrometer. This is one reason why a broad band tagger is necessary.

b) Directly. Various techniques have been studied by Yerevan/Connecticut – 2 papers are in press. They make 2 recommendations. measure the azimuthal distribution of events from nuclear pair production with a Si strip detector triggered by the pair spectrometer, and measure hadronic asymmetries - distributions from production – using the GlueX spectrometer.

Details of the Photon Beamline and Tagging Spectrometer will be presented in the following presentations.