E.C. Aschenauer for the group.  Optimize the IR design to be able to integrate  the luminosity monitor  the lepton polarimeter  the low Q 2 -tagger.

Slides:



Advertisements
Similar presentations
NDVCS measurement with BoNuS RTPC M. Osipenko December 2, 2009, CLAS12 Central Detector Collaboration meeting.
Advertisements

E.C. Aschenauer1. Requirements from Physics on IR E.C. Aschenauer 2 Summarized at: Hadron Beam:
E.C. Aschenauer arXiv: & E.C. Aschenauer EIC User Meeting Requirements from Physics:  High Luminosity ~ cm -2 s -1.
1 Electron Beam Polarimetry for EIC/eRHIC W. Lorenzon (Michigan) Introduction Polarimetry at HERA Lessons learned from HERA Polarimetry at EIC.
M. Sullivan Mini-workshop on the MEIC design Nov 2, 2012.
Ultra Peripheral Collisions at RHIC Coherent Coupling Coherent Coupling to both nuclei: photon~Z 2, Pomeron~A 4/3 Small transverse momentum p t ~ 2h 
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.
NLC - The Next Linear Collider Project  IR background issues and plans for Snowmass Jeff Gronberg/LLNL Linear Collider Workshop October 25, 2000.
Joanne Beebe-Wang 1/10/10 1 MeRHIC IR & Detector MeRHIC Interaction Region & Detector Integration Joanne Beebe-Wang Brookhaven National Laboratory EIC.
PAIR SPECTROMETER DEVELOPMENT IN HALL D PAWEL AMBROZEWICZ NC A&T OUTLINE : PS Goals PS Goals PrimEx Experience PrimEx Experience Design Details Design.
1 EIC Users Meeting, Stony Brook June 27, 2014 Request for these slides: Comment on “EIC working group activities at Jefferson Lab, and how people could.
The Design of a Detector for the Electron Relativistic Heavy Ion Collider Anders Ingo Kirleis 1, William Foreman 1, Elke-Caroline Aschenauer 2, and Matthew.
1 News from eRHIC Matt Lamont, Thomas Ullrich, William Foreman, Anders Kirleis, Michael Savastio, Elke Aschenauer and the CAD-eRHIC Team E.C. AschenauerEIC-Convener.
Full-Acceptance Detector Integration at MEIC Vasiliy Morozov for MEIC Study Group Electron Ion Collider Users Meeting, Stony Brook University June 27,
HPS Test Run Setup Takashi Maruyama SLAC Heavy Photon Search Collaboration Meeting Thomas Jefferson National Accelerator Facility, May 26-27,
Status of the Beamline Simulation A.Somov Jefferson Lab Collaboration Meeting, May 11, 2010.
E.C. Aschenauer arXiv: arXiv:
SHMS Optics and Background Studies Tanja Horn Hall C Summer Meeting 5 August 2008.
Crossed Channel Compton Scattering Michael Düren and George Serbanut, II. Phys. Institut, - some remarks on cross sections and background processes  
E.C. AschenauerEIC Detector R&D Committee Meeting, October
Large Magnetic Calorimeters Anselmo Cervera Villanueva University of Geneva (Switzerland) in a Nufact Nufact04 (Osaka, 1/8/2004)
SHMS Optics Studies Tanja Horn JLab JLab Hall C meeting 18 January 2008.
E.C. Aschenauer for the group arXiv: &
BeamCal Simulations with Mokka Madalina Stanescu-Bellu West University Timisoara, Romania Desy, Zeuthen 30 Jun 2009 – FCAL Meeting.
1  Calorimetry  W-Scintillator & W-Si  compact and high resolution  Crystal calorimeters PbW & BGO BNL, Indiana University, Penn State Univ., UCLA,
Synchrotron radiation at eRHIC Yichao Jing, Oleg Chubar, Vladimir N. Litvinenko.
PHENIX Local Polarimeter PSTP 2007 at BNL September 11, 2007 Yuji Goto (RIKEN/RBRC)
Page 1 Overview and Issues of the MEIC Interaction Region M. Sullivan MEIC Accelerator Design Review September 15-16, 2010.
Anders Kirleis Stony Brook University The Design Of A Detector For The Electron Ion Collider.
ILC-ECFA Workshop Valencia November 2006 Four-fermion processes as a background in the ILC luminosity calorimeter for the FCAL Collaboration I. Božović-Jelisavčić,
1 EIC EW Meeting, W&M, VA, May 2010 E.C. Aschenauer.
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.
Lattice /Detector Integration for Target Fragmentation, Diffraction, and other Low-t Processes Charles Hyde-Wright Old Dominion University
E.C. AschenauerFebruary Inclusive Structure functions in eA or why momentum resolutions are important E.C. Aschenauer February How to extract.
Interaction Region Backgrounds M. Sullivan for the MEIC Collaboration Meeting Oct. 5-7, 2015.
Calorimetry for Deeply Virtual Compton Scattering in Hall A Alexandre Camsonne Hall A Jefferson Laboratory Workshop on General Purpose High Resolution.
Overview of IR Design V.S. Morozov 1, P. Brindza 1, A. Camsonne 1, Ya.S. Derbenev 1, R. Ent 1, D. Gaskell 1, F. Lin 1, P. Nadel-Turonski 1, M. Ungaro 1,
E.C. AschenauerEIC INT Program, Seattle Week 51.
Current eRHIC IR Design  Important features  10 mrad crossing angle Needs to be integrated into the current STAR and upgrades Important for luminosity.
E.C. Aschenauer1. Requirements from Physics on IR E.C. Aschenauer 2 Summarized at: Hadron Beam:
Calibration of energies at the photon collider Valery Telnov Budker INP, Novosibirsk TILC09, Tsukuba April 18, 2009.
MEIC Detector and IR Integration Vasiliy Morozov, Charles Hyde, Pawel Nadel-Turonski MEIC Detector and IR Design Mini-Workshop, October 31, 2011.
IR-Design 0.44 m Q5 D5 Q4 90 m 10 mrad m 3.67 mrad 60 m m 18.8 m 16.8 m 6.33 mrad 4 m Dipole © D.Trbojevic 30 GeV e GeV p.
EPHENIX for eRHIC 1 Mostly from Sasha’s Presentation from DIS.
July 27, 2002CMS Heavy Ions Bolek Wyslouch1 Heavy Ion Physics with the CMS Experiment at the Large Hadron Collider Bolek Wyslouch MIT for the CMS Collaboration.
Unpolarized Physics Program HERA-3 Workshop, MPI, 17-Dec-2002 A. Caldwell Physics Topics: eP, eD, eA Detector Requirements Accelerator Requirements Sources:
LumiCal background and systematics at CLIC energy I. Smiljanić, Vinča Institute of Nuclear Sciences.
Inclusive cross section and single transverse-spin asymmetry of very forward neutron production at PHENIX Spin2012 in Dubna September 17 th, 2012 Yuji.
BeAST Detector (Brookhaven eA Solenoidal Tracker) Alexander Kiselev for the BNL EIC taskforce Berkeley EIC User Group Meeting Jan’2016.
Some thoughts to stimulate Discussion E.C. Stony Brook, January
E.C. AschenauerEIC INT Program, Seattle Week 81.
Open and Hidden Beauty Production in 920 GeV p-N interactions Presented by Mauro Villa for the Hera-B collaboration 2002/3 data taking:
E.C. Aschenauer arXiv: EIC User Meeting, Berkley, E.C. Aschenauer Does this saturation produce matter of universal properties in the.
Integration of forward physics detectors into the LSS of the LHC D. Macina (TS/LEA) Technical Support 2004 Workshop.
E.C. AschenauerEIC INT Program, Seattle New Design: for eRHIC with CEC: 20 x 325 with b* of 5cm: 1.4x10 34 cm -2 s -1 as the the luminosity does.
Full-Acceptance & 2 nd Detector Region Designs V.S. Morozov on behalf of the JLEIC detector study group JLEIC Collaboration Meeting, JLab March 29-31,
JLEIC MDI Update Michael Sullivan Apr 4, 2017.
JLEIC Forward Ion Detection Region
Explore the new QCD frontier: strong color fields in nuclei
Large Booster and Collider Ring
Radiative Corrections for Heavy Nuclei
How to detect protons from exclusive processes
JLEIC Detector Simulation Forward Ion Detection
Forward (ion-SIDE) Tagging: Motivations, ConCepT, Performance
PheniX, STAr AND AN EIC E.C. Aschenauer
Ion-Side Small Angle Detection Forward, Far-Forward, & Ultra-Forward
Update on JLEIC Interaction Region Design
EIC SOFTWARE TOOLS AND NEEDS
Geometry Tagging for Heavy Ions at JLEIC
Presentation transcript:

E.C. Aschenauer for the group

 Optimize the IR design to be able to integrate  the luminosity monitor  the lepton polarimeter  the low Q 2 -tagger  Develop a Monte Carlo code for Bremsstrahlung (wide and collinear emission) taking into account the polarization dependence of the bremsstrahlungs cross section  study impact on relative luminosity and how accurate polarization needs to be known  Integrate a first layout in the EICRoot simulation package  develop a dedicated e-polarimeter simulation package  Determine the detector performance requirements based on physics and machine backgrounds  Follow up with targeted detector R&D, which fulfills the determined requirements  Postdoc hired: starting mid of August 2014 E.C. Aschenauer EIC R&D Meeting January

by Stephen Brooks E.C. Aschenauer 3 EIC R&D Meeting January 2015  space constraints need to be taken into account in detector, e- polarimeter, lumi-monitor and tagger design design IR-8 hall IP FFAG lattice  The bypass is 2.40m outside the current RHIC IP.  The detector centre line is 2.10m inside the current RHIC IP. RHIC IP.  Relative spacing is 4.5m.

E.C. Aschenauer EIC R&D Meeting January e-Beam Hadrons synrad Matching  16 mrad bends “D0” Cryostat Cryostat CryostatCryostat Cryostat Cryostat Plan View of IR Layout 10 mrad crossing DetectorRegion(e-beamaligned) Philosophy: detect forward particles in the warm section between the IR magnets and Crab Cavities ZDC RomanPots Design: compromises physics and machine requirements low Q 2 tagger (not to scale)

E.C. Aschenauer EIC R&D Meeting January 2015  Directly import CAD files  Import magnetic field maps  Implement Roman Pots, ZDC, low-Q 2 tagger, Lumi Monitor, Electron Polarimeter Goals: 5 ROOT event display hadron-going side beam line elements

E.C. Aschenauer EIC R&D Meeting January  main detector;    <-5 : scattered lepton needs to be detected in dedicated low-Q 2 tagger  kinematic coverage in Q 2 -x-  critical for physics scattered lepton more and more at -  lepton beam energy theta (rad)

E.C. Aschenauer EIC R&D Meeting January Extended IR region and by pass modeled in Geant low Q 2 -tagger RP e-polarimeterand luminosity detector are next to be integrated in IR-design and modeled in Geant

 Compact detector system comprising of:  2 tracking layers -> reconstruct θ o each layer consists of a 6x4 array of 5cm 2 cells and 400um thick  Ecal -> reconstruct E Ecal trackinglayers 20 cm 30cm -15m -12m -4m 0m -15m -12m -4m 0m electrons side view E.C. Aschenauer EIC R&D Meeting January

electrons side view top view E.C. Aschenauer EIC R&D Meeting January  The acceptance of low scattering angle electrons is limited by:  Size of beampipe  magnet apertures in quads and dipoles o we can do something about this fairly easily o currently communicating with Brett Parker of CAD o see IR schematic on next slides

 electron beam line passes through the yoke common to the hadron triplet  4.5 – 5.2cm radial aperture for electron beams  meant to increase experimental acceptance  current v2.1 design has electron aperture parallel to hadron beam (and aperture)  electron beam crosses at an angle of 10mrad  this limits the acceptance and we can do better  will show rotating the orientation of the aperture can increase acceptance E.C. Aschenauer EIC R&D Meeting January

nominal design 20 mrad rotation (+10cm shift in x) 30 mrad (+10cm in x) electrons E.C. Aschenauer EIC R&D Meeting January

-0.5 <  < 0 rad -0.5 <  < 0 rad 0 <  < 0.5 rad 0 <  < 0.5 rad -5 < θ < -4 mrad -5 < θ < -4 mrad -4 < θ < -3 mrad -4 < θ < -3 mrad -3 < θ < -2 mrad -3 < θ < -2 mrad -2 < θ < -1 mrad -2 < θ < -1 mrad -1 < θ < 0 mrad -1 < θ < 0 mrad 0 < θ < 1 mrad 0 < θ < 1 mrad Note: θ is relative to electron beam y [cm] x [cm] y [cm] E.C. Aschenauer EIC R&D Meeting January

E.C. Aschenauer EIC R&D Meeting January

-6 < θ < -5 mrad -6 < θ < -5 mrad -5 < θ < -4 mrad -5 < θ < -4 mrad -4 < θ < -3 mrad -4 < θ < -3 mrad -3 < θ < -2 mrad -3 < θ < -2 mrad -2 < θ < -1 mrad -2 < θ < -1 mrad -1 < θ < 0 mrad -1 < θ < 0 mrad 0 < θ < 1 mrad 0 < θ < 1 mrad nominal design rotate final bore rotate all bores x [cm] y [cm] x [cm] y [cm] x [cm] y [cm] E.C. Aschenauer EIC R&D Meeting January

 Add a layer of digitization accounting for segmentation of sensor pixels  Implement a realistic Ecal response for energy reconstruction  Fold both these effects into the θ resolution as well as Q 2 resolution  Implement a full beam pipe to observe the effect  One thing to check: simulation is done with only the electron beam installed, will results be different if both beams are installed simultaneously?  Improve scattering angle reconstruction code further E.C. Aschenauer EIC R&D Meeting January

16 Large Rapidiy Gap method o M X system and e’ measured o Proton dissociation background o High acceptance in  for detector two methods: to select events Need for HCal in the forward region E.C. Aschenauer EIC R&D Meeting January 2015 Cuts: Q 2 >1 GeV, GeV, 0.01<y<0.85 DVCS – photon kinematics: proton/neutron tag method o Measurement of t o Free of p-diss background o Higher M X range o to have high acceptance for Roman Pots / ZDC challenging Roman Pots / ZDC challenging  IR design  IR design Need for Roman Pots (RP) and Zero Degree Calorimeter (ZDC) detector acceptance:  >4.5 increasing Hadron Beam Energy: influences max. photon energy at fixed  photons are boosted to negative rapidities (lepton direction)

 revisit acceptance studies with the newest IR design in EicROOT  very simple detector design for this purpose  single large tracking sensor  placed at z = 18m  place 10 σ distance from beam (1.2cm at 18m)  only placed on one side of the beam o will not fit on other side b/c of electron beam o but could cover directly above and below beam  particle simulation  simulate single particles (not full DVCS events)  throw flat in p, θ, φ, but weight  realistic θ  include 20% energy loss of proton (which is distributed flat) E.C. Aschenauer EIC R&D Meeting January

E.C. Aschenauer EIC R&D Meeting January 2015  possibly gain with a station very far down (>40m)  still need to look into this  seems to be lost in magnet yoke (see next slide)  can work with CAD to improve 18

 generate 100 protons in the range in the range 240 < p < 250 GeV/c 240 < p < 250 GeV/c and 4.5 < θ < 5 mrad and 4.5 < θ < 5 mrad  many tracks hit magnet yoke in the first yoke in the first quad magnet quad magnet  a handful still make it through  need to rotate magnets as in the lepton as in the lepton direction direction z E.C. Aschenauer EIC R&D Meeting January

 Optimize the IR design to be able to integrate  the luminosity monitor  the lepton polarimeter  the low Q 2 -tagger  added Roman Pot system in hadron beam direction to the study list  Develop a Monte Carlo code for Bremsstrahlung (wide and collinear emission) taking into account the polarization dependence of the bremsstrahlungs cross section  study impact on relative luminosity and how accurate polarization needs to be known  Integrate a first layout in the EICRoot simulation package  develop a dedicated e-polarimeter simulation package o next step  Determine the detector performance requirements based on physics and machine backgrounds  Follow up with targeted detector R&D, which fulfills the determined requirements E.C. Aschenauer EIC R&D Meeting January

E.C. Aschenauer EIC R&D Meeting January BACKUP

E.C. Aschenauer EIC R&D Meeting January 2015  Optimize the IR design to be able to integrate  the luminosity monitor  the lepton polarimeter  the low Q 2 -tagger  Develop a Monte Carlo code for Bremsstrahlung (wide and collinear emission) taking into account the polarization dependence of the bremsstrahlungs cross section  study impact on relative luminosity and how accurate polarization needs to be known  Determine the detector performance requirements based on physics and machine backgrounds  Integrate a first layout in the EICRoot simulation package  develop a dedicated e-polarimeter simulation package  Follow up with targeted detector R&D, which fulfills the determined requirements Request: Money for one PostDoc for 2 years  PostDoc starts 11 th of August 22

E.C. Aschenauer 23 Summarized at: Hadron Beam: 1.the detection of neutrons of nuclear break up in the outgoing hadron beam direction  location/acceptance of ZDC 2.the detection of the scattered protons from exclusive and diffractive reaction in the outgoing proton beam direction the detection of the spectator protons from 3 He and Deuterium the detection of the spectator protons from 3 He and Deuterium  location/acceptance of RP;  potential impact of crab-cavities on forward scattered protons 3.local hadron polarimeter  CNI polarimeter Lepton Beam: 4.the beam element free region around the IR 5.minimize impact of detector magnetic field on lepton beam  synchrotron radiation  synchrotron radiation 5.space for low Q 2 scattered lepton detection 6.space for the luminosity monitor in the outgoing lepton beam direction 7.space for lepton polarimetry Important EIC is a high luminosity machine > cm -2 s -1 such controlling systematics becomes crucial  luminosity measurement  lepton and hadron polarization measurement  control of polarization direction EIC R&D Meeting January 2015

E.C. Aschenauer EIC R&D Meeting January “ZDC” MDI Treaty 4.5 m Q0 Q1 B1 Q2 Neutrons p = p o p = 80%p o p = 50%p o protons from Au decay IR design integrated in Detector MC framework: Direct import of CAD files Direct import of CAD files Geometry Geometry Material tags Material tags Direct import of.madx field info files Direct import of.madx field info files Detectors: Roman pots, ZDC, Lumi monitor, Detectors: Roman pots, ZDC, Lumi monitor, e-Polarimeter e-Polarimeter

detector acceptance:  >4.5 E.C. Aschenauer EIC R&D Meeting January x250 Generated + Quad aperture RP (at 20m) accepted  t (~p t 2 ) reach influences b T uncertainty t min ~ GeV 2  300 GeV 2  f/f > 50% t min ~ GeV 2  300 GeV 2  f/f > 50%  beam cooling critical to achieve high low t (p t ) acceptance with Roman Pots low t (p t ) acceptance with Roman Pots  add cerenkov counters to identify heavy products with same A/Z  LHCf products with same A/Z  LHCf simulated simulated + Quad-acceptance Quad-acceptance + 10  BC clearance RP performance:  RP performance assumptions very conservative following STAR RP   P/P 1% & angular resolution < 100  rad

E.C. Aschenauer 26   Momentum smearing mainly due to Fermi motion + Lorentz boost   Angle 99.9%) after IR magnets at 20m  after IR magnets  RP acceptance +10  beam clearance +10  beam clearance  90% tagging efficiency EIC R&D Meeting January 2015

E.C. Aschenauer 27 Results from GEMINI++ for 50 GeV Au +/-5mrad acceptance seems sufficient EIC R&D Meeting January 2015 Important: For coherent VM-production rejection power For coherent VM-production rejection power of incoherent needed up to 10 4 of incoherent needed up to 10 4  ZDC detection efficiency is critical  ZDC detection efficiency is critical Can we reconstruct the eA collision geometry: details: talk by L. Zheng

E.C. Aschenauer EIC R&D Meeting January E crit < 35 keV for 21.2 GeV electrons 2.3mrad 3.1mrad 4.6 mrad photonbeamline

E.C. Aschenauer 29 EIC R&D Meeting January 2015 Bremsstrahlung ep  e  p: Bethe-Heitler (collinear emission):  very high rate of ‘zero angle’ photons and electrons, but  sensitive to the details of beam optics at IP requires precise knowledge of geometrical acceptance requires precise knowledge of geometrical acceptance  suffers from synchrotron radiation  sperature limitation  pile-up QED Compton (wide angle bremsstrahlung):  lower rate, but  stable and well known acceptance of central detector  Methods are complementary, different systematics NC DIS:  in (x,Q 2 ) range where F 2 is known to O(1%)  for relative normalization and mid-term yield control BeAST HERA Concept:  normally only  is measured  Hera: reached 1-2% systematic uncertainty

EIC R&D Meeting January 2015  Concept: Use Bremsstrahlung ep  ep  as reference cross section  different methods: Bethe Heitler, QED Compton, Pair Production  eRHIC BUTs:  with cm -2 s -1 one gets on average of 23 bremsstrahlungs photons/bunch for proton beam  A-beam Z 2 -dependence  this will challenge single photon measurement under 0 o  coupling between polarization measurement uncertainty and uncertainty achievable for lumi-measurement  no experience no polarized ep collider jet  have started to calculate a with the help of Vladimir Makarenk  hopefully a is small E.C. Aschenauer 30 Goals for Luminosity Measurement:  Integrated luminosity with precision δL< 1%  Measurement of relative luminosity: physics-asymmetry/10  Fast beam monitoring for optimization of ep-collisions and control of mid-term variations of instantaneous luminosity Impact on method of luminosity measurement Impact on method of luminosity measurement requires ‘alternative’ methods for different goals requires ‘alternative’ methods for different goals

 zero degree calorimeter  high rate  measured energy proportional to # photons  subject to synchrotron radiation  alternative pair spectrometer 31 VacuumChamber L3L3L3L3  e + /e -  e-e-e-e- e+e+e+e+ Dipole Magnet very thin Converter L2L2L2L2 L1L1L1L1 SegmentedECal   The calorimeters are outside of the primary synchrotron radiation fan   The exit window conversion fraction reduces the overall rate   The spectrometer geometry imposes a low energy cutoff in the photon spectrum, which depends on the magnitude of the dipole field and the transverse location of the calorimeters E.C. Aschenauer EIC R&D Meeting January 2015