Considerations on Interaction Region design for Muon Collider Muon Collider Design Workshop JLab, December 8-12, 2008 Guimei Wang, Muons,Inc., /ODU/JLab.

Slides:



Advertisements
Similar presentations
MCDW 2008, JLAB, Dec 8-12, Multi-pass Droplet Arc Design Guimei WANG (Muons Inc./ODU) Dejan Trbojevic (BNL) Alex Bogacz (JLAB)
Advertisements

1 ILC Bunch compressor Damping ring ILC Summer School August Eun-San Kim KNU.
Wilson Lab Tour Guide Orientation 11 December 2006 CLASSE 1 Focusing and Bending Wilson Lab Tour Guide Orientation M. Forster Mike Forster 11 December.
Super-B Factory Workshop January 19-22, 2004 Accelerator Backgrounds M. Sullivan 1 Accelerator Generated Backgrounds for e  e  B-Factories M. Sullivan.
Introduction to particle accelerators Walter Scandale CERN - AT department Roma, marzo 2006.
Advances in collider concepts Yaroslav Derbenev Center for Advanced Study of Accelerators Jefferson Laboratory EIC Workshop 2010 Stony Brook, Long Island,
Thomas Jefferson National Accelerator Facility Operated by the Southeastern Universities Research Association for the U.S. Department of Energy Issues.
Full-Acceptance Detector Integration at MEIC Vasiliy Morozov for MEIC Study Group Electron Ion Collider Users Meeting, Stony Brook University June 27,
Yichao Jing 11/11/2010. Outline Introduction Linear lattice design and basic parameters Combined function magnets study and feasibility Nonlinear dynamics.
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.
The 2010 NFMCC Collaboration Meeting University of Mississippi, January 13-16, Update on Parametric-resonance Ionization Cooling (PIC) V.S. Morozov.
Matching recipe and tracking for the final focus T. Asaka †, J. Resta López ‡ and F. Zimmermann † CERN, Geneve / SPring-8, Japan ‡ CERN, Geneve / University.
Thomas Jefferson National Accelerator Facility Page 1 Muons, Inc. Epicyclic Helical Channels for Parametric-resonance Ionization Cooling Andrei Afanasev,
Operated by JSA for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility EIC Collaboration Meeting, Hampton University, May 19-23,
Simulation of direct space charge in Booster by using MAD program Y.Alexahin, A.Drozhdin, N.Kazarinov.
Thomas Jefferson National Accelerator Facility Page 1 Muons, Inc. HCC theory Yaroslav Derbenev, JLab Rolland P. Johnson, Muons, Inc Andrei Afanasev, Hampton.
1 EPIC SIMULATIONS V.S. Morozov, Y.S. Derbenev Thomas Jefferson National Accelerator Facility A. Afanasev Hampton University R.P. Johnson Muons, Inc. Operated.
ELIC Low Beta Optics with Chromatic Corrections Hisham Kamal Sayed 1,2 Alex Bogacz 1 1 Jefferson Lab 2 Old Dominion University.
Chromaticity Correction & Dynamic Aperture in MEIC Ion Ring Fanglei Lin MEIC Detector and Interaction Region Designing Mini-Workshop, Oct. 31, 2011.
Muon cooling with Li lenses and high field solenoids V. Balbekov, MAP Winter Meeting 02/28-03/04, 2011 OUTLINE  Introduction: why the combination of Li.
A U.S. Department of Energy Office of Science Laboratory Operated by The University of Chicago Office of Science U.S. Department of Energy Containing a.
Design of the Turnaround Loops for the Drive Beam Decelerators R. Apsimon, J. Esberg CERN, Switzerland.
Luminosity of the Super-Tau-Charm Factory with Crab Waist D. Shatilov BINP, Novosibirsk TAU’08 Workshop, Satellite Meeting “On the Need for a Super-Tau-Charm.
Study and Optimization of Dynamic Aperture for the SuperKEKB LER E.Levichev and P.Piminov, BINP SB RAS, Novosibirsk, Russia.
MEIC Detector and IR Integration Vasiliy Morozov, Charles Hyde, Pawel Nadel-Turonski MEIC Detector and IR Design Mini-Workshop, October 31, 2011.
Polarized Proton at RHIC: Status and Future Plan Mei Bai Collider Accelerator Dept. BNL A Special Beam Physics Symposium in Honor of Yaroslav Derbenev's.
Operated by the Southeastern Universities Research Association for the U.S. Depart. Of Energy Thomas Jefferson National Accelerator Facility Alex Bogacz,
Lattice design for FCC-ee Bastian Haerer (CERN BE-ABP-LAT, Karlsruhe Institute of Technology (KIT)) 1 8 th Gentner Day, 28 October 2015.
Present MEIC IR Design Status Vasiliy Morozov, Yaroslav Derbenev MEIC Detector and IR Design Mini-Workshop, October 31, 2011.
Optics with Large Momentum Acceptance for Higgs Factory Yunhai Cai SLAC National Accelerator Laboratory Future Circular Collider Kick-off Meeting, February.
Operated by the Southeastern Universities Research Association for the U.S. Depart. Of Energy Thomas Jefferson National Accelerator Facility Alex Bogacz,
HF2014 Workshop, Beijing, China 9-12 October 2014 Challenges and Status of the FCC-ee lattice design Bastian Haerer Challenges.
Matched Electron Cooling Y. Derbenev Cool 2015 JLab,
Muons, Inc. Feb Yonehara-AAC AAC Meeting Design of the MANX experiment Katsuya Yonehara Fermilab APC February 4, 2009.
Layout and Arcs lattice design A. Chancé, B. Dalena, J. Payet, CEA R. Alemany, B. Holzer, D. Schulte CERN.
Muon Collider Physics Workshop FNAL November 10-12, 2009 Muon Collider Lattice Design FERMI NATIONAL ACCELERATOR LABORATORY US DEPARTMENT OF ENERGY f Y.
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,
Optimization of the Collider rings’ optics
Target insertion matching and standard cell optics optimization
Parametric Resonance Ionization Cooling of Muons
HCC theory Yaroslav Derbenev, JLab Rolland P. Johnson, Muons, Inc
Beam-beam effects in eRHIC and MeRHIC
Large Booster and Collider Ring
CEPC pretzel scheme study
Design of the MANX experiment
First Look at Nonlinear Dynamics in the Electron Collider Ring
Multiturn extraction for PS2
Electron collider ring Chromaticity Compensation and dynamic aperture
NuSTORM - μ Storage Ring with Injection
Beam-beam R&D for eRHIC Linac-Ring Option
CASA Collider Design Review Retreat Other Electron-Ion Colliders: eRHIC, ENC & LHeC Yuhong Zhang February 24, 2010.
Progress of SPPC lattice design
LHC (SSC) Byung Yunn CASA.
Chromatic Corrections
Collider Ring Optics & Related Issues
Electron Rings Eduard Pozdeyev.
MEBT1&2 design study for C-ADS
Accelerator and Interaction Region
Sawtooth effect in CEPC PDR/APDR
Update on MEIC Nonlinear Dynamics Work
Fanglei Lin, Yuhong Zhang JLEIC R&D Meeting, March 10, 2016
Status and plans for crab crossing studies at JLEIC
Fanglei Lin MEIC R&D Meeting, JLab, July 16, 2015
G.H. Wei, V.S. Morozov, Fanglei Lin Y. Nosochkov (SLAC), M-H. Wang
Integration of Detector Solenoid into the JLEIC ion collider ring
JLEIC Electron Ring Nonlinear Dynamics Work Plan
Upgrade on Compensation of Detector Solenoid effects
Crab Crossing Named #1 common technical risk (p. 6 of the report)
Fanglei Lin JLEIC R&D Meeting, August 4, 2016
MEIC Alternative Design Part III
Presentation transcript:

Considerations on Interaction Region design for Muon Collider Muon Collider Design Workshop JLab, December 8-12, 2008 Guimei Wang, Muons,Inc., /ODU/JLab Yaroslav Derbenev, Jefferson Lab

OUTLINE Major issues of IR design Final focus optimization Bent chromatic compensator Bent beam extension Optics control Conclusions Y. Derbenev, Muon Collider Design Workshop, Jlab, December 8-12, 2008

Interaction region Y. Derbenev, Muon Collider Design Workshop, Jlab, December 8-12, 2008 Courtesy of A. Bogacz

Major issues of the IR design Design the tightest star focusing Design preventive chromatic compensation Design compensation for higher order aberrations, if needed Eliminate or minimize no-bend sections, to spread neutrino radiation Develop optics control and star point feedback Y. Derbenev, Muon Collider Design Workshop, Jlab, December 8-12, 2008

Design the tightest star focusing Achievable low beta is determined by admissible aperture of quadrupoles and beam transverse emittance 6D ionization cooling (including PIC) delivers a minimum 6D emittance. REMEX reduces the 4D emittance for expense of the longitudinal one. One may admit some further increase of longitudinal emittance due to beam recombining if needed. However, bunch length should be shorter than the low beta, while energy spread should not be too large (1% or less) In result, luminosity is determined by aperture and achievable the 6D beam emittance (after cooling and recombining) Y. Derbenev, Muon Collider Design Workshop, Jlab, December 8-12, 2008

Optimum FFB design ; Y. Derbenev, Muon Collider Design Workshop, Jlab, December 8-12, 2008 /This emittance should be compared with a minimum one available with use of REMEX/

Design the tightest star focusing /recommendations-in-principle/ Extend the FFB aperture, as possible Design the shortest bunches in collider ring Reach minimum 6D emittance by cooling Imply REMEX to reach the optimum or minimum transverse emittance Imply beam recombination, if needed Develop IR optics and collisions control Y. Derbenev, Muon Collider Design Workshop, Jlab, December 8-12, 2008

Design FFB Y. Derbenev, Muon Collider Design Workshop, Jlab, December 8-12, 2008 Design principle: high school optic bench lesson A parallel beam enters a thick lens, becomes 100% focused However, there is a huge chromatic spread of the star point (frequently exceeds both, low beta and bunch length)

Chromatic compensation There is a long, difficult history… with many good names It continues to go on… To be exhausted some day? May be never Y. Derbenev, Muon Collider Design Workshop, Jlab, December 8-12, 2008

Chromatic Compensation theory Iterations: Y. Derbenev, Muon Collider Design Workshop, Jlab, December 8-12, 2008 General equations including sextupoles: Expansion: Unperturbed trajectory: + octupoles These equations are integrated along the growing mode of particle betatron motion

Chromatic compensation conditions These three conditions are satisfied “automatically” due to symmetry features of the compensating block “Standart” conditions: Conditions connected to the betatron and dispersion beam sizes: Next iteration (including octupoles) can be calculated if needed Y. Derbenev, Muon Collider Design Workshop, Jlab, December 8-12, 2008

Zigzag CCB linear optics Y. Derbenev, Muon Collider Design Workshop, Jlab, December 8-12, 2008 Courtesy of A. Bogacz Courtesy of P. Chevstov

Chicane CCB linear optics Y. Derbenev, Muon Collider Design Workshop, Jlab, December 8-12, 2008 Courtesy of A. Bogacz Blue: dispersion Red: x-beta (anti-symmetric trajectory) Green: y- beta

No-bend beam extension Y. Derbenev, Muon Collider Design Workshop, Jlab, December 8-12, 2008 Courtesy of A. Bogacz

Bend everything Bend : Beam extension section (BES) Chromatic compensation block (CCB) Final focusing block (FFB -Continuous dipole field (only technical gaps)- -Use combined magnets for focusing- Why bent IR? Space and cost economy Spread neutrino radiation (NR) from IR (note: beam divergence in detector area frequently exceeds the inverse gamma) Y. Derbenev, Muon Collider Design Workshop, Jlab, December 8-12, 2008

Bent beam extension theory Continuous bend, alternating quads (combined magnets) Periodic solution for orbit dispersion ever exists despite of beam “betatron” expansion However, one should not allow the dispersion beating too much in a single cell So, the extension rate is limited but not small Extension process is type of parametric resonance through a number of cells Match the periodic dispersion with arcs Y. Derbenev, Muon Collider Design Workshop, Jlab, December 8-12, 2008

Bent beam extension optics test Blue: combined magnets β x max (m) β y max (m)80897 D x max (m)0.12 Y. Derbenev, Muon Collider Design Workshop, Jlab, December 8-12, 2008 Blue magnets: combined; Red magnets: quadrupoles

Periodic dispersion in bent BES Y. Derbenev, Muon Collider Design Workshop, Jlab, December 8-12, 2008

A CCB schematic with an even symmetry dispersion Bent CCB test Y. Derbenev, Muon Collider Design Workshop, Jlab, December 8-12, 2008 Courtesy of P. Chevstov

Bent CCB test Betatron trajectories are plotted Y. Derbenev, Muon Collider Design Workshop, Jlab, December 8-12, 2008

Bent CCB test Y. Derbenev, Muon Collider Design Workshop, Jlab, December 8-12, 2008 Dispersion (blue) and beta-functions are plotted

Bent FFB test Total Length: 26m G[kG/cm]= B[kG]=20 G[kG/cm]= G[kG/cm]= Note: Neutrino beam spread in detector area (straight) frequently exceeds the inverse gamma!

Precision IR control Y. Derbenev, Muon Collider Design Workshop, Jlab, December 8-12, 2008 The star point transverse position should be controlled with accuracy about 1 micrometer. To be only achieved by lumi- feedback ? Precision required to control the focal parameter: Precision required to control chromatic compensation seems to be ease: Betatron phase control between arcs: Same as control the collisions? Seems so… <<

Conclusions We achieved knowing an exact algorithm how to design the achromatic star focus for best of the MC luminosity The interaction region can become part of arc, to benefit one with two improvements: - space economy (better luminosity) - large reduction of neutrino flux concentration along the IR Full scale simulation on the way… Almost continuous bend IR to be shown Thank you! Y. Derbenev, Muon Collider Design Workshop, Jlab, December 8-12, 2008