March 16-181A. Chancé, J. Payet DAPNIA/SACM / Beta-beam ECFA/BENE Workshop The Decay Ring -First Design- A. Chancé, J.Payet CEA/DSM/DAPNIA/SACM.

Slides:



Advertisements
Similar presentations
1 ILC Bunch compressor Damping ring ILC Summer School August Eun-San Kim KNU.
Advertisements

SuperB Damping Rings M. Biagini, LNF-INFN P. Raimondi, SLAC/INFN A. Wolski, Cockroft Institute, UK SuperB III Workshop, SLAC, June 2006.
First approach to the SuperB Rings M. Biagini, LNF-INFN April 26th, 2006 UK SuperB Meeting, Daresbury.
July 22, 2005Modeling1 Modeling CESR-c D. Rubin. July 22, 2005Modeling2 Simulation Comparison of simulation results with measurements Simulated Dependence.
Loss problems associated with the acceleration of radioactive beams and what we can do about it A.Jansson f fermilab Loss issues (and ideas for solutions)
Simulation of direct space charge in Booster by using MAD program Y.Alexahin, N.Kazarinov.
Update of 3.2 km ILC DR design (DMC3) Dou Wang, Jie Gao, Gang Xu, Yiwei Wang (IHEP) IWLC2010 Monday 18 October - Friday 22 October 2010 Geneva, Switzerland.
Simulation of direct space charge in Booster by using MAD program Y.Alexahin, A.Drozhdin, N.Kazarinov.
NUFACT05 1 A BASELINE BETA-BEAM Mats Lindroos AB Department, CERN on behalf of the EURISOL Beta-beam task
Adiabatic eRHIC Extraction June 3, 2015Stephen Brooks, eRHIC meeting1 With emittance growth analysis.
Operated by the Jefferson Science Associates for the U.S. Depart. Of Energy Thomas Jefferson National Accelerator Facility Alex Bogacz, Dogbone RLA – Design.
Eric Prebys, FNAL.  In our previous discussion, we implicitly assumed that the distribution of particles in phase space followed the ellipse defined.
Electron Model for a 3-10 GeV, NFFAG Proton Driver G H Rees, RAL.
BEAM TRANSFER CHANNELS, BEAM TRANSFER CHANNELS, INJECTION AND EXTRACTION SYSTEMS OF NICA ACCELERATOR COMPLEX Tuzikov A., JINR, Dubna, Russia.
Design of the Turnaround Loops for the Drive Beam Decelerators R. Apsimon, J. Esberg CERN, Switzerland.
SuperB Lattice Studies M. Biagini LNF-INFN ILCDR07 Workshop, LNF-Frascati Mar. 5-7, 2007.
ILC Damping Ring Alternative Lattice Design ( Modified FODO ) ** Yi-Peng Sun *,1,2, Jie Gao 1, Zhi-Yu Guo 2 Wei-Shi Wan 3 1 Institute of High Energy Physics,
LER Workshop, October 11, 2006LER & Transfer Line Lattice Design - J.A. Johnstone1 LHC Accelerator Research Program bnl-fnal-lbnl-slac Introduction The.
By Verena Kain CERN BE-OP. In the next three lectures we will have a look at the different components of a synchrotron. Today: Controlling particle trajectories.
The Introduction to CSNS Accelerators Oct. 5, 2010 Sheng Wang AP group, Accelerator Centre,IHEP, CAS.
PSB H- injection concept J.Borburgh, C.Bracco, C.Carli, B.Goddard, M.Hourican, B.Mikulec, W.Weterings,
FFAG’ J. Pasternak, IC London/RAL Proton acceleration using FFAGs J. Pasternak, Imperial College, London / RAL.
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,
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.
Accumulator & Compressor Rings with Flexible Momentum Compaction arccells MAP 2014 Spring Meeting, Fermilab, May 27-31, 2014 Y. Alexahin (FNAL APC)
Hybrid Fast-Ramping Synchrotron to 750 GeV/c J. Scott Berg Brookhaven National Laboratory MAP Collaboration Meeting March 5, 2012.
HF2014 Workshop, Beijing, China 9-12 October 2014 Challenges and Status of the FCC-ee lattice design Bastian Haerer Challenges.
Layout and Arcs lattice design A. Chancé, B. Dalena, J. Payet, CEA R. Alemany, B. Holzer, D. Schulte CERN.
C. Biscari, D. Alesini, A. Ghigo, F. Marcellini, LNF-INFN, Frascati, Italy B. Jeanneret, CERN, Geneva, Switzerland CLIC DRIVE BEAM FREQUENCY MULTIPLICATION.
CLIC Frequency Multiplication System aka Combiner Rings Piotr Skowronski Caterina Biscari Javier Barranco 21 Oct IWLC 2010.
News from the interaction region study Bernhard Holzer, Anton Bogomyagkov, Bastian Harer, Rogelio Tomas Garcia, Roman Martin, Luis Eduardo Medina Presented.
First evaluation of Dynamic Aperture at injection for FCC-hh
Optimization of the Collider rings’ optics
Oleksiy Dolinskyy 1st December, 2014
Target insertion matching and standard cell optics optimization
BEAM TRANSFER CHANNELS, INJECTION AND EXTRACTION SYSTEMS
J-PARC main ring lattice An overview
MDI and head-on collision option for electron-positron Higgs factories
A.Lachaize CNRS/IN2P3 IPN Orsay
FCC-ee - Lepton Collider
Design study of CEPC Alternating Magnetic Field Booster
Options and Recommendations for TL and Dumps
ILC DR Lower Horizontal Emittance? -2
Cui Xiaohao, Zhang Chuang,Bian Tianjian January 12,2016
Large Booster and Collider Ring
6th BINP-GSI-FAIR workshop
Isochronous, FFAG Rings with Insertions for Rapid Muon or Electron Acceleration G H Rees, RAL.
First Look at Nonlinear Dynamics in the Electron Collider Ring
Beam Injection and Extraction Scheme
LHC (SSC) Byung Yunn CASA.
PS2 Injection/Extraction Layout
ILC 3.2 km DR design based on FODO lattice (DMC3)
Collider Ring Optics & Related Issues
Towards an NMC lattice for PS2
CEPC-SPPC Beihang Symposium
ILC 3.2 km DR design based on FODO lattice (DMC3)
Negative Momentum Compaction lattice options for PS2
Comparison of NMC rings for PS2
Pulsed Sextupole Injection for Beijing Advanced Photon Source
Towards an NMC Ring: Dispersion suppressor & long straight section
Sawtooth effect in CEPC PDR/APDR
Optics considerations for PS2
Negative Momentum Compaction lattice options for PS2
Towards an NMC Ring: Dispersion suppressor & long straight section
Transfer Line for EIC.
Ion Collider Ring Using Superferric Magnets
Alternative Ion Injector Design
G.H. Wei, V.S. Morozov, Fanglei Lin Y. Nosochkov (SLAC), M-H. Wang
Fanglei Lin JLEIC R&D Meeting, August 4, 2016
Presentation transcript:

March A. Chancé, J. Payet DAPNIA/SACM / Beta-beam ECFA/BENE Workshop The Decay Ring -First Design- A. Chancé, J.Payet CEA/DSM/DAPNIA/SACM

March A. Chancé, J. Payet DAPNIA/SACM / Beta-beam ECFA/BENE Workshop Summary General parameters Optical functions The injection system Optical properties Decay products losses

March A. Chancé, J. Payet DAPNIA/SACM / Beta-beam ECFA/BENE Workshop General parameters Total length 6931 m, arc length 1080 m. The injection is located in the arc. Low contribution of the optic to the ν -beam angular divergence. Free straight sections, at each arc entry, enable decay products extraction. 688 m 2385 m Parameters of the radioactive ion beams injection Decay ring

March A. Chancé, J. Payet DAPNIA/SACM / Beta-beam ECFA/BENE Workshop At the injection point, dispersion is as high as possible (8.18 m) while the horizontal beta function is as low as possible (13.1 m). Free straight sections behind the first bend, used as a dispersion suppressor, are designed to enable extraction of the decay products coming from the long straight sections. Optical functions in the long straight sections keep the ν beam angle growth below 5%. The arc is a 2  insertion. Optical functions in the arcs are smaller to reduce magnet apertures. Optical functions Half ring optical functions Arc optical functions

March A. Chancé, J. Payet DAPNIA/SACM / Beta-beam ECFA/BENE Workshop Injection Layout deviated beam kicker injected beam SEPTUM  E/E D Dispersive area Horizontal envelopes at injection Deviated beam Injected beam after one turn envelopes (cm) Septum blade s (m) Injection is located in a dispersive area The stored beam is pushed near the septum blade with 4 “kickers”. At each injection, a part of the beam is lost in the septum Fresh beam is injected off momentum on its chromatic orbit. “Kickers” are switched off before injected beam comes back During the first turn, the injected beam stays on its chromatic orbit and passes near the septum blade Injection energy depends on the distance between the deviated stored beam and the fresh beam axis

March A. Chancé, J. Payet DAPNIA/SACM / Beta-beam ECFA/BENE Workshop Beam losses and beam size (in rms number) Power lost by the stored beam on the septum blade T : repetition rate (8 s)  : half-life of the ion at rest N I : injected ions number at each injection a : transmission coefficient of the stored beam through the septum blade a is related to the number of rms, n m 1D Gaussian beam distribution assumed Then, with 4.1 rms for the stored beam and 3.3 rms for the injected beam, the deposited power on the septum blade is below 20 W. The relative injection energy is then about 0.5%. The “kicker” deviations are 1.1 mrad (0.5 T) and 0.41 mrad (0.38 T)

March A. Chancé, J. Payet DAPNIA/SACM / Beta-beam ECFA/BENE Workshop Beam envelopes Injected beam envelopes Stored beam envelopes In the long straight sections, the apertures (±5 cm in both planes) are defined by the stored beam sizes. In the arc, the horizontal aperture is defined by the injected beam and the vertical one by the stored beam sizes. By arc, there are 590 m of 5 T field bend with 4 cm radius aperture. The injection septum is 22.5 m long and its field is 1 T.

March A. Chancé, J. Payet DAPNIA/SACM / Beta-beam ECFA/BENE Workshop 2 nd order study Chromaticity corrected by 2 families of sextupoles. Arcs are 2Pi insertions.  The tunes are given by the straight sections phase advances.  It is quite easy to optimize the tunes. The working point is chosen according to : 1.the dynamic aperture 2.the momentum acceptance Physically, the momentum acceptance is limited by the septum position. Dynamic aperture at the injection point Best point

March A. Chancé, J. Payet DAPNIA/SACM / Beta-beam ECFA/BENE Workshop Decay products extraction Two free straight sections after the first arc dipole enable the extraction of decay products coming from long straight sections. Lithium extraction can be made without a septum. Fluorine extraction needs an additional septum. In the Lithium extraction case, the first bend aperture has to be increased to 5 cm. The permanent septum for Fluorine extraction is 22.5 m long and its field is 0.6 T. Fluorine extraction Lithium extraction

March A. Chancé, J. Payet DAPNIA/SACM / Beta-beam ECFA/BENE Workshop Decay products losses in the arcs Lithium deposit Fluorine deposit We have begun studying the repartition of the disintegrations in the arcs. Most of decay products deposits come into the dipoles.  Problem of radioprotection in the arc  Problem of dipole cooling  This design is not valuable due to this deposit level

March A. Chancé, J. Payet DAPNIA/SACM / Beta-beam ECFA/BENE Workshop Decay products losses in the arcs (2) Most of Lithium is deposited at the middle of dipoles  we have divided the dipoles in two 6T bends and separated them with a drift. The chamber sizes between the two dipoles are small to maximize the deposition here.  Problem of radioprotection  Fewer problems in the dipoles The injection section must still be studied. We have to compare with the TRIUMF results. Helium decay Neon decay

March A. Chancé, J. Payet DAPNIA/SACM / Beta-beam ECFA/BENE Workshop Conclusions Some positive remarks can be made : The injection system and the bending magnet seem realistic. The contribution of the optic to the ν -beam angular divergence is low. The decay ring length, 6930 m, is what was expected. Free straight sections, at each arc entry enable the extraction of a part of decay products. More studies are yet needed : The acceptable beam losses on the septum blade have to be defined according to the radio-protection. This can modify the beam sizes and then the injection energy, the apertures and the fields of the magnetic elements. A new design could focus most of losses outside the bends. Recently, we are working on this.