Operational Status of CESR-c James A. Crittenden Laboratory for Elementary-Particle Physics Cornell University 27 June 2006.

Slides:



Advertisements
Similar presentations
CESR as Light Source David L. Rubin for the CESR Operations Group Cornell University Laboratory for Elementary-Particle Physics.
Advertisements

Monochromatization for Higgs production A.Faus-Golfe IFIC - LAL March1FCC Week 2015.
BBI Compensation for CESR-c James A. Crittenden Machine Studies Meeting June 2, 2006.
Beam dynamics in IDsBeam-based Diagnostics, USPAS, June 23-27, 2003, J. Safranek Beam dynamics in insertion devices m Closed orbit perturbation m Linear.
SuperB and the ILC Damping Rings Andy Wolski University of Liverpool/Cockcroft Institute 27 April, 2006.
CESR-c Status CESR Layout - Pretzel, Wigglers, solenoid compensation Performance to date Design parameters Our understanding of shortfall Plans for remediation.
PEP-II B Factory Machine Status and Upgrades John T. Seeman for the PEP-II Staff SLAC DOE Site Review April 9, 2003.
Operational Status of CESR-c James A. Crittenden Accelerator Physics Seminar Wilson Lab 28 July 2006.
Wilson Lab Tour Guide Orientation 11 December 2006 CLASSE 1 Focusing and Bending Wilson Lab Tour Guide Orientation M. Forster Mike Forster 11 December.
July 22, 2005CESRc miniMAC1 Introduction to CESRc Optics M. Billing.
Beam-beam studies for Super KEKB K. Ohmi & M Tawada (KEK) Super B factories workshop in Hawaii Apr
View from the NSF: Later Years J. Whitmore (EPP-PNA) M. Pripstein (LHC) M. Goldberg, J. Reidy (EPP) LEPP – CLEO CESR Symposium at Cornell, May 31, 2008.
CESR Beam-Beam Effects at CESR Mark A. Palmer Cornell University July 14, 2001.
January 15, 2005D. Rubin - Cornell1 CESR-c Status -Operations/Luminosity December/January vs September/October -Machine studies and instrumentation -Simulation.
July 22, 2005Modeling1 Modeling CESR-c D. Rubin. July 22, 2005Modeling2 Simulation Comparison of simulation results with measurements Simulated Dependence.
45 th ICFA Beam Dynamic Workshop June 8–12, 2009, Cornell University, Ithaca New York Jim Crittenden Cornell Laboratory for Accelerator-Based Sciences.
The HiLumi LHC Design Study is included in the High Luminosity LHC project and is partly funded by the European Commission within the Framework Programme.
Ultra-Low Emittance Storage Ring David L. Rubin December 22, 2011.
March 7, 2007 LET Issues (Cai/Kubo/Zisman) Global Design Effort 1 Low-Emittance Tuning Issues and Plans Yunhai Cai, Kiyoshi Kubo and Michael S. Zisman.
January 13, 2004D. Rubin - Cornell1 CESR-c BESIII/CLEO-c Workshop, IHEP January 13, 2004 D.Rubin for the CESR operations group.
Witness Bunch Experimental Studies at CESR-TA Robert Holtzapple Alfred University/Cal Poly San Luis Obispo.
Emittance Growth from Elliptical Beams and Offset Collision at LHC and LRBB at RHIC Ji Qiang US LARP Workshop, Berkeley, April 26-28, 2006.
Thomas Roser Snowmass 2001 June 30 - July 21, 2001 Polarized Proton Acceleration and Collisions Spin dynamics and Siberian Snakes Polarized proton acceleration.
Beam dynamics on damping rings and beam-beam interaction Dec 포항 가속기 연구소 김 은 산.
October 4-5, Electron Lens Beam Physics Overview Yun Luo for RHIC e-lens team October 4-5, 2010 Electron Lens.
Simulation of direct space charge in Booster by using MAD program Y.Alexahin, A.Drozhdin, N.Kazarinov.
CASA Collider Design Review Retreat HERA The Only Lepton-Hadron Collider Ever Been Built Worldwide Yuhong Zhang February 24, 2010.
1 FFAG Role as Muon Accelerators Shinji Machida ASTeC/STFC/RAL 15 November, /machida/doc/othertalks/machida_ pdf/machida/doc/othertalks/machida_ pdf.
November 14, 2004First ILC Workshop1 CESR-c Wiggler Dynamics D.Rubin -Objectives -Specifications -Modeling and simulation -Machine measurements/ analysis.
R. Assmann - LHCCWG Two Beam Operation R.W. Aßmann LHCCWG Acknowledgements to W. Herr, V. Previtali, A. Butterworth, P. Baudrenghien, J. Uythoven,
1 Proposal for a CESR Damping Ring Test Facility M. Palmer & D.Rubin November 8, 2005.
Flat-beam IR optics José L. Abelleira, PhD candidate EPFL, CERN BE-ABP Supervised by F. Zimmermann, CERN Beams dep. Thanks to: O.Domínguez. S Russenchuck,
Motivation and Overview David Rubin Cornell Laboratory for Accelerator-Based Sciences and Education.
1 Experience at CERN with luminosity monitoring and calibration, ISR, SPS proton antiproton collider, LEP, and comments for LHC… Werner Herr and Rüdiger.
Beam-beam compensation at RHIC LARP Proposal Tanaji Sen, Wolfram Fischer Thanks to Jean-Pierre Koutchouk, Frank Zimmermann.
Orbits, Optics and Beam Dynamics in PEP-II Yunhai Cai Beam Physics Department SLAC March 6, 2007 ILC damping ring meeting at Frascati, Italy.
February 5, 2005D. Rubin - Cornell1 CESR-c Status -Operations/Luminosity -Machine studies -Simulation and modeling -4.1GeV.
CESR Test Accelerator Optics Correction and Tuning Tools David Sagan Cornell University.
Electron cloud study for ILC damping ring at KEKB and CESR K. Ohmi (KEK) ILC damping ring workshop KEK, Dec , 2007.
Global Design Effort ILC Damping Rings: R&D Plan and Organisation in the Technical Design Phase Andy Wolski University of Liverpool and the Cockcroft Institute,
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.
CESR as Light Source David Rubin for the CESR Operations Group Cornell University Laboratory for Elementary-Particle Physics.
DA  NE: status report M. Preger on behalf of the DA  NE team 22/11/2010.
Compensation of Detector Solenoid G.H. Wei, V.S. Morozov, Fanglei Lin JLEIC Collaboration Meeting Spring, 2016.
Workshop on Accelerator R&D for Ultimate Storage Rings – Oct Nov.1 – Huairou, Beijing, China A compact low emittance lattice with superbends for.
Introduction of Accelerators for Circular Colliders 高亮度 TAU-CHARM 工厂 & 先进光源, 2014/09.
Problems of charge compensation in a ring e+e- higgs factory Valery Telnov Budker INP, Novosibirsk 5 rd TLEP3 workshop, FNAL, July 25, 2013.
Crossing Schemes Considerations and Beam-Beam Work plan T. Pieloni, J. Barranco, X. Buffat, W. Herr.
HF2014 Workshop, Beijing, China 9-12 October 2014 Challenges and Status of the FCC-ee lattice design Bastian Haerer Challenges.
BINP tau charm plans and other projects in Turkey/China A. Bogomyagkov BINP SB RAS, Novosibirsk.
CESR-c Plans for CESR (or Life Without CLEO) Mark A. Palmer David L. Rubin Second ILC Accelerator Workshop August 18, 2005.
Effect of high synchrotron tune on Beam- Beam interaction: simulation and experiment A.Temnykh for CESR operating group Cornell University, Ithaca, NY.
ILC DR Lower Horizontal Emittance, preliminary study
Jim Crittenden CHESS Simulation Working Group 30 March 2015
NSLS-II Lattice Design Strategies Weiming Guo 07/10/08
Large Booster and Collider Ring
Pretzel scheme of CEPC H. Geng, G. Xu, Y. Zhang, Q. Qin, J. Gao, W. Chou, Y. Guo, N. Wang, Y. Peng, X. Cui, T. Yue, Z. Duan, Y. Wang, D. Wang, S. Bai,
Recent Electron Cloud Studies at CESR and Future Plans
Laboratoire de L’Accélérateur Linéaire
Status of the VEPP-2000 Collider Project at Novosibirsk
Overview of MDI design II
CASA Collider Design Review Retreat Other Electron-Ion Colliders: eRHIC, ENC & LHeC Yuhong Zhang February 24, 2010.
LHC (SSC) Byung Yunn CASA.
M. Tigner, R. Helms, M. Palmer, D. Rubin, D. Sagan Cornell University
The Proposed Conversion of CESR to an ILC Damping Ring Test Facility
Update on CEPC pretzel scheme design
Proposal for a CESR Damping Ring Test Facility
Yuri Nosochkov Yunhai Cai, Fanglei Lin, Vasiliy Morozov
100th FCC-ee Optics Design Meeting
Presentation transcript:

Operational Status of CESR-c James A. Crittenden Laboratory for Elementary-Particle Physics Cornell University 27 June 2006

EPAC June 2006 Operational Status of CESR-c / J.A.Crittenden 2/15 CESR Storage Ring and Injectors CESR-c Operation since s.c. wigglers since mid GeV beam energy Presently GeV 768 m circumference 24 bunches/beam 60 mA/beam The electron and positron beams are separated by means of electrostatic separators. The optical distortions introduced by this “pretzel” orbit are corrected using the lattice design flexibility afforded by 180 quadrupole and sextupole magnets.

EPAC June 2006 Operational Status of CESR-c / J.A.Crittenden 3/15 CESR as a Charm Factory Physics Motivation Unprecedented statistical precision for decays of charm-quark bound states Increase world data sample by two orders of magnitude CLEO-c and CESR-c: A New Frontier in Weak and Strong Interactions CLNS 01/1742 October 2001 CESR provides unique opportunities 1) Decades of design and operating experience with the CESR storage ring and injectors 2) CLEO state-of-the-art detector technology 3) Threshold production kinematics Success contingent on meeting major accelerator physics challenges Design and operation of first wiggler-dominated storage ring

EPAC June 2006 Operational Status of CESR-c / J.A.Crittenden 4/15 From 5.3 GeV  4s)) to 1.9 GeV  s)) Severe consequences for lowering beam energy  Emittance  Energy spread  Damping time and injection rate  Beam-beam kicks and tune shifts  Single-bunch instability thresholds  Intra-bunch scattering a Twelve 2.1-Tesla 130-cm-long superconducting wiggler magnets to restore damping Emittance: 30  220 nm-rad Damping time: 570  55 ms Energy spread: 2 x  8 x Need flexible design capability Vertical tune shift 0.1 per wiggler !

EPAC June 2006 Operational Status of CESR-c / J.A.Crittenden 5/15 8-pole Superconducting Wiggler Magnets Vertical beam displacement: ± 10 mm Tune Shift (kHz) 8 poles (4 x 20 cm, 2 x 15 cm, 2 x 10 cm) Central poles: 660 turns, 95 kA End poles: 352 turns, 51 kA (trim adjust) In-house design & construction Installation complete August, 2004 Field Modeling for the CESR-c Wiggler Magnets, J.A. Crittenden et al., PAC2005 Beam-based characterization of wiggler nonlinearities accurately modeled for three-wiggler cluster in-situ. Analytic wiggler field model uses Taylor mapping for fast tracking simulation.

EPAC June 2006 Operational Status of CESR-c / J.A.Crittenden 6/15 Commissioning Milestones 8/2002First wiggler installed 9/2002 Machine studies verify wiggler properties 10-12/2002Engineering run 90 mA, 1x /2003 New vertex chamber in CLEO 8/2003 Five more wiggler magnets 11/2003-4/2004 First Physics run 110 mA, 3x10 31, (3x world sample of  (3s)) 4-6/2004 Complete installation of 12 wigglers 8-9/2004 Install fast luminosity monitor 9/2004-3/2005 Production run at 3770 MeV, 160 mA, 6x10 31,  3s) X 4) 8-9/2005D s scan 12/2005-1/2006 D s Production (4170 MeV) 1-2/2006 Install new solenoid compensation magnets 3-4/2006D s Production (3X), 120 mA, 7x10 31, injection into collision

EPAC June 2006 Operational Status of CESR-c / J.A.Crittenden 7/15 Luminosity History CESR-c: Performance of a Wiggler-Dominated Storage Ring A. Temnykh, PAC2005 Developments since PAC 2005  New IR Optics  Electron Injection into collision  BBI included in lattice design  Constraint on e+e- symmetry  New diagnostic tools Diagnostics of Interaction Point Properties and Bunch-by-Bunch Tune Measurements in CESR, G.W.Codner et al, Beam Instrumentation Workshop 2006

EPAC June 2006 Operational Status of CESR-c / J.A.Crittenden 8/15 CESR-c Operating Parameters Design report 20014/20054/2006 ℒ (10 30 cm -2 s -1 ) I beam (mA) Nr Bunches  H (nm-rad)  V   V (cm)  E /E (10 -4 )  H,V (ms)555055

EPAC June 2006 Operational Status of CESR-c / J.A.Crittenden 9/15 Improved Solenoid Compensation New IR Compensation Scheme 2006 Skew-quadrupole compensation of CLEO detector solenoid was implemented in 2001 and used for 5.3 GeV operation. Full CESR luminosity modeling in early 2005 indicated that the energy-dependence of compensation is more important at CESR-c energy due to larger energy spread Two-solenoid solution was DA  NE-inspired, but optics design was complicated by existing permanent and s.c. quadrupoles Two 36-inch-long 2-Tesla “anti-solenoids” installed in January, 2006

EPAC June 2006 Operational Status of CESR-c / J.A.Crittenden 10/15 Improved Tune Plane Footprint Horizontal Tune (kHz) Vertical Tune (kHz) Nominal Solenoid Compensation Solenoid strength reduced 20% Residual coupling compensated using IR skew quads New solenoid compensation reduces strength of synchro-betatron resonance improved ease of machine tuning

EPAC June 2006 Operational Status of CESR-c / J.A.Crittenden 11/15 Topping Off: Reliability & Duty Cycle March 26, 2005April 8, 2006 Ability to inject and collide in similar optics avoids fill-to-fill thermal cycling Tune excursions from BBI much reduced (less hysterisis!) Turn-around times reduced from 4 to less than 2 minutes.

EPAC June 2006 Operational Status of CESR-c / J.A.Crittenden 12/15 Modelling the CESR-c BBI Beam-beam kicks These recent improvements in IP optics, tune plane footprint and duty cycle re-emphasize the importance of finding a way to compensate optical distortions arising from the beam-beam interaction.

EPAC June 2006 Operational Status of CESR-c / J.A.Crittenden 13/15 Present Operational Limit Studies of the Beam-Beam Interaction at CESR, M.G.Billing and J.A.Crittenden, MUOPLS043, EPAC 06 Present current limit Present stored-current limit: 2.5 mA in 8x3 operation in collision, but higher if the beams are separated at the IP. Limit on a single electron bunch into 8x3 positrons is 8 mA. As a result, much effort has been put into modeling the beam-beam interaction both at the IP and at the parasitic crossings. Some improvement has been obtained already by including consideration of the long-range BBI in the lattice design. Nonetheless, the distortion of the beta function is substantial, even when the tunes are held constant during filling. Until now, operational compensation of the BBI effects has consisted of global tune corrections. We have recently developed an optics correction algorithm based on locally closed beta bumps using eight quadrupole magnets around each set of crossings. Initial results from machine studies in April, including compensation of the BBI at the main IP, are encouraging. Calculating and Compensating the Optical Distortions Arising from the Beam-Beam Interaction

EPAC June 2006 Operational Status of CESR-c / J.A.Crittenden 14/15 Near-term Improvement Plans Machine Studies Projects July-September 2006  Lattice design development, e.g. pretzel optimization  Tune IP BBI compensation (empirical coefficients)  Tune local parasitic crossing compensation  Improve e- injection efficiency  Sextupole tuning to avoid resonances  Study alternative working points  Develop run-time tuning aids  Improve hardware reliability through diagnostic tools  Injector tuning  Tune, tune, tune...

EPAC June 2006 Operational Status of CESR-c / J.A.Crittenden 15/15 Completion of CLEO-c Physics Program The primary operational tool for compensating the beam-beam interaction at CESR has been global tune adjustment employing all quads to compensate the beam-beam interactions. At points of horizontal (vertical) separation, these have a defocusing effect in the horizontal (vertical) plane and a focusing effect in the vertical (horizontal) plane, while focusing in both planes at the main interaction point. The tune shift at the interaction point is typically five time greater than that from all the parasitic crossings, so the primary operational adjustment is to reduce tune globally as the colliding current increases. Such a global adjustment necessarily results in local distortions of the phase function. We are presently developing a compensation method based on local phase distortion correction using the 8 quadrupoles surrounding each of the sets of three parasitic crossings. Six quantities are compensated: horizontal and vertical phase advance, and the sine and cosine components of the beta function. We have demonstrated during machine studies experiments that the correction coefficients for the near-IP crossings are effective in compensating the distortions arising from the IP itself. Modelling results of both the beta function distortion and the dynamic aperture indicate that the operational current limit may be raised by 50%. During the past year, modeling of CESR-c operation has resulted in  new IR optics; new solenoids have been built and installed  improved understanding of the effects of the beam-beam interaction  lattice design optimization including BBI effects  development of BBI compensation algorithms Bunch-by-bunch and turn-by-turn diagnostic tools have been commissioned. Stability and reliability have been enhanced by the ability to inject electrons into collision. CLEO/CESR continues to be major contributor to the active field of charm spectroscopy. Discovery of new bound states of charmed quarks, precision measurements of form factors, and many first-time observations coincide with increasing precision of lattice QCD phenomenology. CLEO presently dominates the world sample of  (3770) and D s threshold data and is on track to increase former by factor two and latter by factor four. The foreseen program also includes tripling world sample of  (3686) decays by the time of its completion in April, 2008.