DIS 2011, 12 April 2011 1 DIS 2012, 28 March 2012 Conceptual Design of A Medium Energy Polarized Electron-Ion Collider at JLab Yuhong Zhang for Jefferson.

Slides:



Advertisements
Similar presentations
Overview of MEIC Ion Complex and Ion Collider Ring
Advertisements

High-brightness Dudnikov – type H - ion source at INR RAS Development of the high-intensity H- ion sources with peak current ~ 100 mA and small emittance.
Simulation Study For MEIC Electron Cooling He Zhang, Yuhong Zhang Thomas Jefferson National Accelerator Facility Abstract Electron cooling of the ion beams.
MEIC IR Design Yuhong Zhang EIC Generic R&D Advisory Committee Meeting December 13, 2012.
Polarized Electron Beams In The MEIC Collider Ring At JLab Fanglei Lin Center for Advanced Studies of Accelerators (CASA), Jefferson Lab 2013 International.
Status of the MEIC Machine Design Andrew Hutton Associate Director, Accelerators For the JLab EIC Study Group.
Thomas Jefferson National Accelerator Facility Operated by the Southeastern Universities Research Association for the U.S. Department of Energy Issues.
Kevin Jordan Beam Diagnostics Collaboration Meeting 3/18/15 MEIC Design Overview.
Full-Acceptance Detector Integration at MEIC Vasiliy Morozov for MEIC Study Group Electron Ion Collider Users Meeting, Stony Brook University June 27,
Page 1 Review 09/2010 Overview of MEIC Electron Collider Ring Yuhong Zhang.
IR Optics and Nonlinear Beam Dynamics Fanglei Lin for MEIC study group at JLab 2 nd Mini-workshop on MEIC IR Design, November 2, 2012.
Toward a Test Facility for an ERL Circulator Ring Based e-Cooler MEIC Electron Cooler Test Facility Planning Retreat January 31, 2012.
MEIC Electron Cooling Simulation He Zhang 03/18/2014, EIC 14 Newport News, VA.
Page 1 Workshop 01/2011 The Accumulator/Pre-Booster Bela Erdelyi Department of Physics, Northern Illinois University, and Physics Division, Argonne National.
Ion Polarization Control in MEIC Rings Using Small Magnetic Fields Integrals. PSTP 13 V.S. Morozov et al., Ion Polarization Control in MEIC Rings Using.
POETIC 2012 Indiana University R. D. McKeown 12 GeV CEBAF.
Ion Collider Ring Design V.S. Morozov for MEIC study group MEIC Collaboration Meeting, JLab October 5-7, 2015.
Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility EIC Collaboration Meeting, Hampton University, May 19-23,
MEIC Staged Cooling Scheme and Simulation Studies He Zhang MEIC Collaboration Meeting, 10/06/2015.
CASA Collider Design Review Retreat HERA The Only Lepton-Hadron Collider Ever Been Built Worldwide Yuhong Zhang February 24, 2010.
Thomas Jefferson National Accelerator Facility Newport News, Virginia, USA ELIC: A HIGH LUMINOSITY AND EFFICIENT SPIN MANIPULATION ELECTRON-LIGHT ION COLLIDER.
Thomas Jefferson National Accelerator Facility Page 1 Concepts for ELIC- a High Luminosity CEBAF based Electron-Light Ion Collider Ya. Derbenev, B. Yunn,
MEIC: A Medium Energy Electron Ion Collider at Jefferson Lab Hadron Workshop, Huangshan July 2, 2013 R. D. McKeown Jefferson Lab College of William and.
ERHIC design status V.Ptitsyn for the eRHIC design team.
Conceptual Design of A Medium Energy Electron-Ion Collider Based on CEBAF; A Staged Approach for ELIC A. Bogacz, Ya. Derbenev, R. Ent, G. Krafft, T. Horn,
Page 1 Review 09/2010 MEIC R&D Yuhong Zhang. Page 2 Review 09/2010 Outline MEIC R&D Issues View 1: EIC AC Recommendations View 2: MEIC Design Status View.
Design Optimization of MEIC Ion Linac & Pre-Booster B. Mustapha, Z. Conway, B. Erdelyi and P. Ostroumov ANL & NIU MEIC Collaboration Meeting JLab, October.
Thomas Roser EIC AC meeting November 3-4, 2009 EIC Accelerator R&D Strategy and Programs Thomas Roser/Andrew Hutton BNL / Jefferson Lab R&D program is.
EIC Users Meeting, SBU, 6/27/14 Polarized Electron Beams in the MEIC at JLab Fanglei Lin for MEIC Study Group EIC Users Meeting, Stony Brook University,
1 Electron-Ion Collider at JLab: Conceptual Design, and Accelerator R&D Yuhong Zhang for JLab Electron-Ion Collider Accelerator Design Team DIS
Preliminary MEIC Ion Beam Formation Scheme Jiquan Guo for the MEIC design study team Oct. 5,
Design Status of Medium-energy Electron-Ion Collider at JLab Vasiliy Morozov for Jefferson Lab EIC Study Group JLab User’s Group Annual Meeting, 5 June.
Synchronization Issues in MEIC Andrew Hutton, Slava Derbenev and Yuhong Zhang MEIC Ion Complex Design Mini-Workshop Jan. 27 & 28, 2011.
MEIC Detector and IR Integration Vasiliy Morozov, Charles Hyde, Pawel Nadel-Turonski MEIC Detector and IR Design Mini-Workshop, October 31, 2011.
Progress on Design Studies of a High-Luminosity Ring-Ring Electron-Ion Collider at CEBAF and Its Low to Medium Energy Staging Approach* S. A. Bogacz, P.
Interaction Region Design and Detector Integration V.S. Morozov for EIC Study Group at JLAB 2 nd Mini-Workshop on MEIC Interaction Region Design JLab,
Detector / Interaction Region Integration Vasiliy Morozov, Charles Hyde, Pawel Nadel-Turonski Joint CASA/Accelerator and Nuclear Physics MEIC/ELIC Meeting.
Present MEIC IR Design Status Vasiliy Morozov, Yaroslav Derbenev MEIC Detector and IR Design Mini-Workshop, October 31, 2011.
ELIC Accelerator Design Balša Terzić CASA For the JLab EIC Study Group Workshop on Perturbative and Non-perturbative Aspects of QCD at Collider Energies.
MEIC Status Andrew Hutton For the MEIC Collaboration.
DIS 2011, 12 April Design Status of Polarized Medium Energy Electron-Ion Collider at Jefferson Lab Vasiliy Morozov for Jefferson Lab EIC Study Group.
DIS 2011, 12 April DIS 2012, 28 March 2012 Electron Ion Collider Machine Design Edward Nissen for Jefferson Lab EIC Study Group XX International.
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,
Large Booster and Collider Ring
Electron Polarization In MEIC
Space Charge Effect Simulation Using DA Based FMM and Electron Cooling Simulation for JLab’s MEIC Project.
CASA Collider Design Review Retreat Other Electron-Ion Colliders: eRHIC, ENC & LHeC Yuhong Zhang February 24, 2010.
Other issues and concepts under study Conclusions References
LHC (SSC) Byung Yunn CASA.
Collider Ring Optics & Related Issues
JLEIC Collaboration Meeting Spring 2017
Accelerator and Interaction Region
JLEIC Collaboration meeting Spring 2016 Ion Polarization with Figure-8
Introduction to the Accelerator and Design
Polarized Positrons in JLEIC
MEIC New Baseline: Luminosity Performance and Upgrade Path
Main Design Parameters RHIC Magnets for MEIC Ion Collider Ring
Yu.N. Filatov, A.M. Kondratenko, M.A. Kondratenko
Fanglei Lin, Yuhong Zhang JLEIC R&D Meeting, March 10, 2016
Status and plans for crab crossing studies at JLEIC
JLEIC Main Parameters with Strong Electron Cooling
MEIC New Baseline: Part 7
Progress Update on the Electron Polarization Study in the JLEIC
MEIC New Baseline: Performance and Accelerator R&D
More on MEIC Beam Synchronization
HE-JLEIC: Do We Have a Baseline?
Crab Crossing Named #1 common technical risk (p. 6 of the report)
Some Thoughts on the JLEIC Ion Injector
SC Magnets with Small Apertures for JLEIC*
Optimization of JLEIC Integrated Luminosity Without On-Energy Cooling*
Presentation transcript:

DIS 2011, 12 April DIS 2012, 28 March 2012 Conceptual Design of A Medium Energy Polarized Electron-Ion Collider at JLab Yuhong Zhang for Jefferson Lab EIC Study Group Physics with Secondary Hadron Beams in the 21st Century April 7, 2012, Ashburn, VA

DIS 2011, 12 April Physics with Secondary Hadron Beams in the 21st Century, April 7, 2012 Electron-Ion Collider (EIC) at JLab Over the decade, JLab has been developing a conceptual design of an EIC as its future science program beyond 12 GeV CEBAF upgrade The future science program, as NSAC LRP articulates, drives the EIC design, focusing on: High luminosity (above cm -2 s -1 ) per detector over multiple detectors High polarization (>80%) for electrons and (>70%) for light ions Presently, we focus on a Medium-energy Electron-Ion Collider (MEIC) as an immediate goal, as the best compromise between science, technology and project cost We maintained a well defined path for future upgrade to higher energies and high luminosity The JLab EIC machine design is based on CEBAF as full-energy electron injector A new ion complex and collider rings optimized for polarization

DIS 2011, 12 April Physics with Secondary Hadron Beams in the 21st Century, April 7, 2012 MEIC Design Energy Full coverage in s from a few hundred to a few thousand Bridging the gap of 12 GeV CEBAF and HERA/LHeC Electron 3 to 11 GeV, proton 20 to 100 GeV, ion 12 to 40 GeV/u Design point: 60 GeV proton on 5 GeV electron Ion species Polarized light ion: p, d, 3 He and possibly Li Un-polarized ions up to A=200 or so (Au, Pb) Detectors Up to three interaction points, two for medium energy (20 to 100 GeV) One full-acceptance detector (primary), 7 m between IP & 1 st final focusing quad, our initial priority with a more challenging design One high luminosity detector (secondary), 4.5 m between IP and 1 st final focusing quad

DIS 2011, 12 April Physics with Secondary Hadron Beams in the 21st Century, April 7, 2012 MEIC Design (cont.) Luminosity About cm -2 s -1 (e-nucleon) optimized at s=2000 GeV 2 Greater than cm -2 s -1 for s= GeV 2 Polarization Longitudinal at the IP for both beams Transverse at IP for ions only All polarizations >70% desirable Spin-flip of both beams (at least 0.1 Hz) being developed Upgradeable to higher energies and luminosity 20 GeV electron, 250 GeV proton and 100 GeV/u ion, facility fits the JLab site Positron beam highly desirable Positron-ion collisions with similar luminosity

DIS 2011, 12 April Physics with Secondary Hadron Beams in the 21st Century, April 7, 2012 MEIC Layout Prebooster Ion source Three Figure-8 rings stacked vertically Ion transfer beam line Medium energy IP with horizontal crab crossing Electron ring Injector 12 GeV CEBAF SRF linac Warm large booster (up to 20 GeV/c) Cold 97 GeV/c proton collider ring medium energy IP low energy IP Three compact rings: 3 to 11 GeV electron Up to 20 GeV/c proton (warm) Up to 100 GeV/c proton (cold)

DIS 2011, 12 April Physics with Secondary Hadron Beams in the 21st Century, April 7, 2012 MEIC and Upgrade on JLab Site Map

DIS 2011, 12 April Physics with Secondary Hadron Beams in the 21st Century, April 7, 2012 Luminosity Concept: High Bunch Repetition Rate Luminosity of KEKB and PEP II follow from Very small β* (~6 mm) Very short bunch length (σ z ~ β*) Very small bunch charge (5.3 nC) High bunch repetition rate (509 MHz)  KEK-B already over 2x10 34 /cm 2 /s KEK BMEIC Repetition rateMHz Particles per bunch / / 2.5 Beam currentA1.2 / / 3 Bunch lengthcm0.61 / 0.75 Horizontal & vertical β*cm56/ / 2 Luminosity per IP, cm -2 s ~ 14 JLab is poised to replicate same success in electron-ion collider: A high repetition rate electron beam from CEBAF A new ion complex (so can match e-beam) Electron cooling to allow short ion bunches

DIS 2011, 12 April Physics with Secondary Hadron Beams in the 21st Century, April 7, 2012 Parameters for Full Acceptance Interaction Point ProtonElectron Beam energyGeV605 Collision frequencyMHz750 Particles per bunch Beam CurrentA0.53 Polarization%> 70~ 80 Energy spread10 -4 ~ 37.1 RMS bunch lengthmm107.5 Horizontal emittance, normalizedµm rad Vertical emittance, normalizedµm rad Horizontal β*cm10 Vertical β*cm22 Vertical beam-beam tune shift Laslett tune shift0.06Very small Distance from IP to 1 st FF quadm73.5 Luminosity per IP, cm -2 s

DIS 2011, 12 April Physics with Secondary Hadron Beams in the 21st Century, April 7, 2012 Parameters for High Luminosity Interaction Point ProtonElectron Beam energyGeV605 Collision frequencyMHz750 Particles per bunch Beam CurrentA0.53 Polarization%> 70~ 80 Energy spread10 -4 ~ 37.1 RMS bunch lengthmm107.5 Horizontal emittance, normalizedµm rad Vertical emittance, normalizedµm rad Horizontal β*cm44 Vertical β*cm0.8 Vertical beam-beam tune shift Laslett tune shift0.06Very small Distance from IP to 1 st FF quadm Luminosity per IP, cm -2 s

DIS 2011, 12 April Physics with Secondary Hadron Beams in the 21st Century, April 7, 2012 The Current Design Status The electron complex CEBAF as a full energy injector Already exist! Possible top-off mode Electron collider ring Linear optics design: done! The ion Complex Ion sources Identified ABPIS for polarized H - /D -, light ions Identified ECR/EBIS for heavy ions Linac Technical design: done! Design of component (RFQ, cavity, etc): done! Pre-booster Linear optics design: done! Injection, accumulation, acceleration: done! Conventional DC electron cooling exist! Large booster Ring optics design: done! Ion collider ring Llinear optics design: done! Interaction region Electron IR Optics design & chromatic correction: done! Tracking & dynamic aperture: in progress Ion IR Optics design & chromatic correction: done! Tracking & dynamic aperture: in progress! Crab cavity: Has a design! SR and detector background: checked! Beam polarization Electron polarization design: done! Proton/deuteron polarization design: done! Spin matching & tracking: in progress! Electron cooling in collider ring Staged electron cooling concept: done! ERL-circulator e-cooler concept: done! Fast kicker development: has a concept Beam synchronization: done!

DIS 2011, 12 April Physics with Secondary Hadron Beams in the 21st Century, April 7, 2012 MEIC Design Details Our present design is mature, having addressed -- in various degrees of detail -- the following important aspects of MEIC: Forming the high-intensity ion beam: SRF linac, pre and large booster Electron and ion ring optics Detector design IR design and optics Chromaticity compensation Crab crossing Synchrotron rad. background Ion polarization Electron polarization Electron cooling Beam synchronization Beam-beam simulations Forming the high-intensity ion beam: SRF linac, pre and large booster

DIS 2011, 12 April Physics with Secondary Hadron Beams in the 21st Century, April 7, 2012 A New Ion Complex Length (m)Max. energy (GeV/c)e-CoolingProcess SRF linac 0.2 (0.08) Pre-booster ~3003 (1.2)DCaccumulating booster ~ (8 to 15) collider ring ~ (40)Staged/ERL MEIC ion complex design goal Be able to generate/accumulate and accelerate ion beams for collisions Covering all required varieties of ion species Matching the time, spatial and phase space structure of the electron beam (bunch length, transverse emittance and repetition ion sources SRF Linac pre-booster (accumulator ring) barge booster medium energy collider ring to high energy collider ring cooling * Numbers in parentheses represent energies per nucleon for heavy ions

DIS 2011, 12 April Physics with Secondary Hadron Beams in the 21st Century, April 7, 2012 Central detector EM Calorimeter Hadron Calorimeter Muon Detector EM Calorimeter Solenoid yoke + Muon Detector TOF HTCC RICH Cerenkov Tracking 2 m 3 m 2 m 4-5 m Solenoid yoke + Hadronic Calorimeter MEIC “Full-Acceptance” Detector Distance IP – electron FFQs = 3.5 m Distance IP – ion FFQs = 7.0 m (Driven by push to 0.5  detection before ion FFQs) Pawel Nadel-Turonski & Rolf Ent solenoid electron FFQs 50 mrad 0 mrad ion dipole w/ detectors (approximately to scale) ions electrons IP ion FFQs 2+3 m 2 m Make use of the (50 mr) crossing angle for ions! detectors Central detector, more detection space in ion direction as particles have higher momenta Detect particles with angles below 0.5 o beyond ion FFQs and in arcs. Detect particles with angles down to 0.5 o before ion FFQs. Need up to 2 Tm dipole in addition to central solenoid. 7 m

DIS 2011, 12 April Physics with Secondary Hadron Beams in the 21st Century, April 7, 2012 Detector Integration Large 50 mrad crossing angle: improved detection, fast beam separation Forward small-angle hadrons pass through large-aperture final focusing quads before detection Final Focusing Block/spectrometer dipole combo optimized for acceptance and detector resolution GEANT4 / G4beamline model Forward Acceptance (B < 6 T) Charles Hyde, Vasiliy Morozov and Pawel Nadel-Turonski

DIS 2011, 12 April Physics with Secondary Hadron Beams in the 21st Century, April 7, 2012 Interaction Region: Ions β x * = 10 cm β y * = 2 cm β y max ~ 2700 m Final Focusing Block (FFB) Chromaticity Compensation Block (CCB) Beam Extension Section Whole Interaction Region: 158 m Distance from the IP to the first FF quad = 7 m Maximum quad pole tip field at 100 GeV/c = 6T Allows ±0.5  forward detection Evaluating detailed detector integrationand positions of collimators Symmetric CCB design for efficient chromatic correction 7 m

DIS 2011, 12 April Physics with Secondary Hadron Beams in the 21st Century, April 7, 2012 Crab Crossing Restore effective head-on bunch collisions with 50 mrad crossing angle  Preserve luminosity Dispersive crabbing (regular accelerating / bunching cavities in dispersive region) vs. Deflection crabbing (novel TEM-type SRF cavity at ODU/JLab, very promising!) IncomingAt IPOutgoing

DIS 2011, 12 April Physics with Secondary Hadron Beams in the 21st Century, April 7, 2012 Electron Cooler Electron bunches circulates 100+ times, leads to a factor of 100+ reduction of current from a photo-injector/ERL ion bunch electron bunch circulator ring Cooling section solenoid Fast kicker SRF Linac dump injector energy recovery Eliminating a long return path could cut cooling time by half, or reduce the cooling electron current by half, or reduce the number of revolutions by half 20 m Solenoid (15 m) SRF injector dump Cooling at Figure-8 crossing Conventional electron cooling Staged electron cooling scheme ERL based to relax power and cathode requirements

DIS 2011, 12 April Physics with Secondary Hadron Beams in the 21st Century, April 7, 2012 The First Design of MEIC ERL Circulator Cooler cooling solenoids rechirper dechirper recirculation/decompression CCR ERL beam exchange system recovery/recompression injector dump

DIS 2011, 12 April Physics with Secondary Hadron Beams in the 21st Century, April 7, 2012 Cooling Test Facility 1)Determine lifetime of a bunch in the circulator ring. 2)Examine feasability of magnetized electron gun. 3)Test fast kickers, currently under development. 4)Beam dynamics of an ERL with recirculation. Jefferson Lab Free Electron Laser FacilityTest of Recovered Energy Circulation System

DIS 2011, 12 April Physics with Secondary Hadron Beams in the 21st Century, April 7, 2012 Summary Close and frequent collaboration with our nuclear physics colleagues regarding the machine, interaction region and detector requirements have taken place. This has led to agreed-upon baseline parameters: Energy range: 3 to 11 GeV electrons, 20 to 100 GeV protons Luminosity around cm -2 s -1 (e-nucleon) per interaction point Longitudinally polarized (~80%) electrons, longitudinally or transversely polarized (>70%) protons and deuterons Ring layouts for MEIC have been developed, which include two interaction regions, one full acceptance, one high luminosity. Chromatic compensation for the baseline parameters has been achieved in the design. Significant progress has been made with determining and optimizing the dynamic aperture. Designs for staged Electron cooling have been developed and will be tested using the Jefferson Lab FEL.

DIS 2011, 12 April Physics with Secondary Hadron Beams in the 21st Century, April 7, 2012 JLab EIC Study Group A. Accardi, S. Ahmed, A. Bogacz, P. Chevtsov, Ya. Derbenev, D. Douglas, R. Ent, V. Guzey, T. Horn, A. Hutton, C. Hyde, G. Krafft, R. Li, F. Lin, F. Marhauser, R. McKeown,V. Morozov, P. Nadel-Turonski, E. Nissen, F. Pilat, A. Prokudin, R. Rimmer, T. Satogata, M. Spata, C. Tennat, B. Terzić, H. Wang, C. Weiss, B. Yunn, Y. Zhang --- Thomas Jefferson National Accelerator Facility J. Delayen, S. DeSilva, H. Sayed, -- Old Dominion University M. Sullivan, -- Stanford Linear Accelerator Laboratory S. Manikonda, P. Ostroumov, -- Argonne National Laboratory S. Abeyratne, B. Erdelyi, -- Northern Illinois University V. Dudnikov, R. Johnson, -- Muons, Inc A. Kondratenko, -- STL “Zaryad”, Novosibirsk, Russian Federation Y. Kim -- Idaho State University

DIS 2011, 12 April Physics with Secondary Hadron Beams in the 21st Century, April 7, 2012 MEIC Layout Vertical stacking for identical ring circumferences Horizontal crab crossing at IPs Ion beams execute vertical excursion to the plane of the electron orbit for enabling a horizontal crossing Ring circumference: 1340 m Maximum ring separation: 4 m Figure-8 crossing angle: 60 deg. Interaction point locations: Downstream ends of the electron straight sections to reduce synchrotron radiation background Upstream ends of the ion straight sections to reduce residual gas scattering background Electron Collider Ion Collider Large Ion Booster Interaction Regions Prebooster Ion source Three Figure-8 rings stacked vertically Ion transfer beam line Medium energy IP with horizontal crab crossing Electron ring Injector 12 GeV CEBAF SRF linac Warm large booster (up to 20 GeV/c ) Cold 97 GeV/c proton collider ring Electron path Ion path

DIS 2011, 12 April Physics with Secondary Hadron Beams in the 21st Century, April 7, 2012 MEIC Electron Ring Footprint Ring design is a balance between Synchrotron radiation  prefers a large ring (arc) length Ion space charge  prefers a small ring circumference Multiple IPs require long straight sections Straights also hold required service components (cooling, injection and ejection, etc.) 3 rd IR (125 m) Universal Spin Rotator (8.8°/4.4°, 50 m) 1/4 Electron Arc (106.8°, 140 m) Figure-8 Crossing Angle: 2x30° Experimental Hall (radius 15 m) RF (25 m) Universal Spin Rotator (8.8°/4.4°, 50 m) Universal Spin Rotator (8.8°/4.4°, 50 m) Universal Spin Rotator (8.8°/4.4°, 50 m) IR (125 m) Injection from CEBAF Compton Polarimeter (28 m) 1/4 Electron Arc (106.8°, 140 m)