 M-MWATT EURISOL DS Approved EU design study for a next generation ISOL facility and a beta- beam facility Mats Lindroos on behalf of The EURISOL DS.

Slides:



Advertisements
Similar presentations
Mats Lindroos Will we ever do a beta-beam design study beyond the present CERN-Frejus baseline? Mats Lindroos.
Advertisements

Mats Lindroos on behalf of The beta-beam study group
Pascal Sortais – LPSC/SSI - SFP Porquerolles Institut of Nuclear Physics (INS) Institut des Sciences Nucléaires (ISN) Cosmology and Subatomic Physic.
RAL 27 April 2006The beta-beam task, EURISOL1 Status of the beta-beam study Mats Lindroos on behalf of the EURISOL beta-beam task.
ISS meeting, (1) R. Garoby (for the SPL study group) SPL-based Proton Driver for Facilities SPL-based Proton Driver for Facilities at CERN:
NNN05, 8/4/05 1 A BASELINE BETA-BEAM Mats Lindroos AB Department, CERN on behalf of the Beta-beam Study Group
 M-MWATT The Beta-beam Mats Lindroos on behalf of The beta-beam study group.
Osaka, 25/07/04NuFACT’04 - Beta Beam R&DM. Benedikt 1 BETA-BEAM R&D in EUROPE Michael Benedikt AB Department, CERN on behalf of the Beta-Beam Study Group.
 RNB 6The beta-beam study group The Beta-beam Mats Lindroos on behalf of the The beta-beam study group.
AB seminarBENE beta-beam network The Beta-beam Mats Lindroos on behalf of the The BENE beta-beam network.
Thomas Nilsson and Mats Lindroos on behalf of the
25/10/2007M. Dracos1 EURO The European Design Study for a high intensity neutrino oscillation facility (Rob Edgecock, Mats Lindroos, Marcos Dracos)
30 June 2008M. Dracos, NuFact081 Challenges and Progress on the SuperBeam Horn Design Marcos DRACOS IN2P3/CNRS Strasbourg NuFact 08 Valencia-Spain, June.
Summary of Nufact-03 Alain Blondel NuFact 03 5th International Workshop on Neutrino Factories & Superbeams Columbia University, New York 5-11 June 2003.
Summary of Nufact-03 Alain Blondel NuFact 03 5th International Workshop on Neutrino Factories & Superbeams Columbia University, New York 5-11 June 2003.
Nufact 2008The Beta Beam WP1 Beta beam R&D status Elena Wildner, CERN on behalf of the Beta Beam Study Group EURISOL/Euronu.
Storage Ring : Status, Issues and Plans C Johnstone, FNAL and G H Rees, RAL.
Moriond meeting Accelerator based Neutrino beams Mats Lindroos.
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)
H. Ravn CERN High-power Targetry for Future Accelerators 7/9/ H. L. Ravn/CERN, EP High power targets for EURISOL and Beta -beams.
August 27, 2006R. Garoby Introduction 5 GeV version of the SPL Scenarios for accumulation and compression Conclusion SPL-BASED 5 GeV PROTON DRIVER.
Moriond 2003M. Benedikt, S. Hancock Injection and Accumulation in a High Energy Ion Storage Ring Michael Benedikt, Steven Hancock AB Division, CERN.
NuFact'06, Aug. 2006A. Fabich, CERNRadioactive Ion Beams, 1 Radioactive Ion Beams A. Fabich, CERN on behalf of the Beta-beam Study Group
1 Further Demands on beam Intense, Intense, Intense, ….Intense, Intense, Intense, …. –Very far detector, extremely small cross section, search small osci.
3 GeV,1.2 MW, Booster for Proton Driver G H Rees, RAL.
Brookhaven Science Associates U.S. Department of Energy AGS Upgrade and Super Neutrino Beam DOE Annual HEP Program Review April 27-28, 2005 Derek I. Lowenstein.
Parameters of 2 nd SPL feasibility study A.M.Lombardi (reporting for the working group)
CERN NuPAC meeting Dec 2005 The future of ISOLDE: accelerated radioactive beams Peter Butler 1.HIE-ISOLDE 2.EURISOL.
Beta-beam study group Letter of Intent beta-beam design study Mats Lindroos On behalf of the Beta-beam working group.
 Benasque The Beta-beam Mats Lindroos on behalf of The beta-beam study group.
Proton Driver: Status and Plans C.R. Prior ASTeC Intense Beams Group, Rutherford Appleton Laboratory.
CERN, 18 th Feb. 2004EURISOL - Beta Beam Design StudyM. Benedikt 1 Status of the Beta-Beam in the EURISOL Design Study Michael Benedikt, AB Division, CERN.
June 23, 2005R. Garoby Introduction SPL+PDAC example Elements of comparison Linacs / Synchrotrons LINAC-BASED PROTON DRIVER.
NUFACT05 1 A BASELINE BETA-BEAM Mats Lindroos AB Department, CERN on behalf of the EURISOL Beta-beam task
05/02/08 EUROnu, Elena Wildner, CERN, 05/02/ EURO Beta Beams Kick-off meeting  Elena Wildner, CERN.
R.G. 7/09/20101 Options for neutrinos. R.G. 7/09/20102 Conventional beam from the SPS (1/3) Neutrinos using the SPS Nominal CNGS 732 km baseline from.
Mats Lindroos Future R&D: beta-beam Mats Lindroos.
Highlights of Tuesday’s session Machine aspects Copyright © Dale Carnegie & Associates, Inc.
12/10/05NuPAC – CERN 2005M. Benedikt 1 Potential future proton beam performance at CERN for HIE ISOLDE, n_TOF phase 2 and EURISOL Michael Benedikt AB Department,
European Isotope Separation On-Line Radioactive Nuclear Beam Facility A preliminary design study of the next- generation European ISOL RNB facility GANIL,
J. Bouchez CEA/DAPNIA CHIPP Neuchâtel June 21, 2004 A NEW UNDERGROUND LABORATORY AT FREJUS Motivations and prospects.
The High Intensity Frontier Franco Cervelli INFN-Pisa 7 Nov, 2005.
Andreas Jansson, Neutrino Workshop, ANL, March 3-4, 2004 Possible beta beam scenario(s) in the US Andreas Jansson Fermilab.
NuFact'06 WG3, Aug. 2006A. Fabich, CERNBeta-beam Ion Losses, 1 The EURISOL Beta-beam Acceleration Scenario: Ion Losses A. Fabich, CERN NuFact’06, UCIrvine.
Alain Blondel -- After the ISS -- What did ISS achieve? 1. Established a « baseline » for the accelerator study 2. Rejuvenated simulation and study of.
Proton Source & Site Layout Keith Gollwitzer Accelerator Division Fermi National Accelerator Laboratory Muon Accelerator Program Review Fermilab, August.
IDS-NF Accelerator Baseline The Neutrino Factory [1, 2] based on the muon storage ring will be a precision tool to study the neutrino oscillations.It may.
CERN, 15/03/05EURISOL - Beta Beam Task1 EURISOL and the Beta-Beam Task Status and Planning Michael Benedikt Mats Lindroos AB-Department, CERN.
Status and Plans for EUROnu FP7 Design Study Status and Plans for EUROnu FP7 Design Study EUROnu = A High Intensity Neutrino Oscillation Facility in Europe.
J. Bouchez CEA/DAPNIA NuFact 03 June 5,2003 BETA BEAMS : design update and physics reach Physics motivation Recent progress on design Expected performances.
Jacques Bouchez Radioactive Beams for Nuclear and Neutrino Physics Les Arcs Mars 2003.
A. FaccoEURISOL DS Orsay, 3 Feb 2005 Task 7 Proton Accelerator “The objective of the Proton Accelerator Task is the design a 5 mA CW, 1 GeV proton linac.
Beam Preparation, Task 9 Department of Physics, University of Jyväskylä.
Orsay, 03/Feb/05EURISOL - Beta Beam TaskM. Benedikt 1 The Beta-Beam Task Status and Planning 02/2005 to 01/2006 Michael Benedikt AB-Department, CERN.
A. FaccoEURISOL DS Task 7GANIL, 30 Nov 2005 EURISOL DS 2° Meeting Task 7 - Primary Accelerator GANIL, November 30, 2005 Summary of the Task 7 status New.
A.Lachaize CNRS/IN2P3 IPN Orsay
The beta-beam Mats Lindroos CERN GSI, 17 January 2005 Mats Lindroos.
A BASELINE BETA-BEAM Mats Lindroos AB Department, CERN
b-beams: R&D Challenges in FP7
Status of the beta-beam study
Future R&D: beta-beam Mats Lindroos Mats Lindroos.
Accelerator R&D for Future Neutrino Projects
Status of the beta-beam study
Superbeams with SPL at CERN
Beta beam R&D status Elena Wildner, CERN on behalf of
Progress towards Pulsed Multi-MW CERN Proton Drivers
Status of the BETA-BEAM Task within the EURISOL Design Study
SLHC-PP kick-off meeting, CERN 9 April 2008
Joint session – Beta-beams
The SPL-based Proton Driver at CERN
Presentation transcript:

 M-MWATT EURISOL DS Approved EU design study for a next generation ISOL facility and a beta- beam facility Mats Lindroos on behalf of The EURISOL DS

 M-MWATT Outline The SPL The beta-beam base line design The approved EURISOL(/beta-beam) Design Study

 M-MWATT SPL beam characteristics (CDR 1) Ion speciesH-H- Kinetic energy2.2GeV Mean current during the pulse13mA Duty cycle14% Mean beam power4MW Pulse repetition rate50Hz Pulse duration2.8ms Bunch frequency (minimum distance between bunches)352.2MHz Duty cycle during the pulse (nb. of bunches/nb. of buckets)62 (5/8)% Number of protons per bunch Normalized rms transverse emittances0.4  mm mrad Longitudinal rms emittance0.3  deg MeV Bunch length (at accumulator input)0.5ns Energy spread (at accumulator input)0.5MeV Energy jitter during the beam pulse< ± 0.2MeV Energy jitter between pulses< ± 2MeV

 M-MWATT SPL beam time structure (CDR 1) Fine time structure (within pulse) Macro time structure

 M-MWATT SPL block diagram (CDR 1) Linac 4: up-to-date design Superconducting linac: CDR 1

 M-MWATT Layout (CDR 1)

 M-MWATT Accumulator and Compressor

 M-MWATT The Super Beam

 M-MWATT The beta-beam Idea by Piero Zucchelli –A novel concept for a neutrino factory: the beta-beam, Phys. Let. B, 532 (2002) The CERN base line scenario –Avoid anything that requires a “technology jump” which would cost time and money (and be risky) –Make use of a maximum of the existing infrastructure –If possible find an “existing” detector site

 M-MWATT Collaborators The beta-beam study group: –CEA, France: Jacques Bouchez, Saclay, Paris Olivier Napoly, Saclay, Paris Jacques Payet, Saclay, Paris –CERN, Switzerland: Michael Benedikt, Peter Butler, Roland Garoby, Steven Hancock, Ulli Koester, Mats Lindroos, Matteo Magistris, Thomas Nilsson, Fredrik Wenander –Geneva University, Switzerland: Alain Blondel Simone Gilardoni –GSI, Germany: Oliver Boine-Frankenheim B. Franzke R. Hollinger Markus Steck Peter Spiller Helmuth Weick –IFIC, Valencia: Jordi Burguet, Juan-Jose Gomez-Cadenas, Pilar Hernandez, Jose Bernabeu –IN2P3, France: Bernard Laune, Orsay, Paris Alex Mueller, Orsay, Paris Pascal Sortais, Grenoble Antonio Villari, GANIL, CAEN Cristina Volpe, Orsay, Paris –INFN, Italy: Alberto Facco, Legnaro Mauro Mezzetto, Padua Vittorio Palladino, Napoli Andrea Pisent, Legnaro Piero Zucchelli, Sezione di Ferrara –Louvain-la-neuve, Belgium: Thierry Delbar Guido Ryckewaert –UK: Marielle Chartier, Liverpool university Chris Prior, RAL and Oxford university –Uppsala university, The Svedberg laboratory, Sweden: Dag Reistad –Associate: Rick Baartman, TRIUMF, Vancouver, Canada Andreas Jansson, Fermi lab, USA, Mike Zisman, LBL, USA

 M-MWATT CERN:  -beam baseline scenario PS Decay Ring ISOL target & Ion source SPL Cyclotrons, linac or FFAG Decay ring Brho = 1500 Tm B = 5 T L ss = 2500 m SPS ECR Rapid cycling synchrotron Nuclear Physics IF of RB?

 M-MWATT Target values for the decay ring 18 Neon 10+ (single target) –In decay ring: 4.5x10 12 ions –Energy: 55 GeV/u –Rel. gamma: 60 –Rigidity: 335 Tm The neutrino beam at the experiment should have the “time stamp” of the circulating beam in the decay ring. The beam has to be concentrated to as few and as short bunches as possible to maximize the number of ions/nanosecond. (background suppression), aim for a duty factor of Helium 2+ –In Decay ring: 1.0x10 14 ions –Energy: 139 GeV/u –Rel. gamma: 150 –Rigidity: 1500 Tm

 M-MWATT ISOL production 1 GeV p p n U F r + spallation 1 1 L i X + + fragmentation C s Y + + fission

 M-MWATT Layout very similar to planned EURISOL converter target aiming for fissions per s. 6 He production by 9 Be(n,  ) Converter technology: ( J. Nolen, NPA 701 (2002) 312c ) Courtesy of Will Talbert, Mahlon Wilson (Los Alamaos) and Dave Ross (TRIUMF)

 M-MWATT Mercury jet converter H.Ravn, U.Koester, J.Lettry, S.Gardoni, A.Fabich

 M-MWATT Spallation of close-by target nuclides: 18,19 Ne from MgO and 34,35 Ar in CaO –Production rate for 18 Ne is 1x10 12 s -1 (with 2.2 GeV 100  A proton beam, cross-sections of some mb and a 1 m long oxide target of 10% theoretical density) Production of  + emitters

 M-MWATT High power target

 M-MWATT GHz « ECR Duoplasmatron » for pre-bunching of gaseous RIB Very high density magnetized plasma n e ~ cm – 3.0 T pulsed coils or SC coils GHz / KW 10 –200 µs / = 6-3 mm optical axial coupling optical radial coupling (if gas only)  1-3 mm 100 KV extraction UHF window or « glass » chamber (?) Target Rapid pulsed valve 20 – 100 µs 20 – 200 mA to ions per bunch with high efficiency Very small plasma chamber  ~ 20 mm / L ~ 5 cm Arbitrary distance if gas Moriond meeting: Pascal Sortais et al. LPSC-Grenoble

 M-MWATT Overview: Accumulation Sequential filling of 16 buckets in the PS from the storage ring

 M-MWATT SPS Stacking in the Decay ring Ejection to matched dispersion trajectory Asymmetric bunch merging SPS

 M-MWATT Asymmetric bunch merging

 M-MWATT Asymmetric bunch merging (S. Hancock, M. Benedikt and J,- L.Vallet, A proof of principle of asymmteric bunch pair merging, AB- note MD)

 M-MWATT Decay losses Losses during acceleration are being studied: –Full FLUKA simulations in progress for all stages (M. Magistris and M. Silari, Parameters of radiological interest for a beta-beam decay ring, TIS RP-TN) –Preliminary results: Can be managed in low energy part PS will be heavily activated –New fast cycling PS? SPS OK! Full FLUKA simulations of decay ring losses: –Tritium and Sodium production surrounding rock well below national limits –Reasonable requirements of concreting of tunnel walls to enable decommissioning of the tunnel and fixation of Tritium and Sodium

 M-MWATT SC magnets Dipoles can be built with no coils in the path of the decaying particles to minimize peak power density in superconductor –The losses have been simulated and one possible dipole design has been proposed S. Russenschuck, CERN

 M-MWATT Tunnels and Magnets Civil engineering costs: Estimate of 400 MCHF for 1.3% incline (13.9 mrad) –Ringlenth: 6850 m, Radius=300 m, Straight sections=2500 m Magnet cost: First estimate at 100 MCHF FLUKA simulated losses in surrounding rock (no public health implications)

 M-MWATT Intensities Stage 6 He 18 Ne (single target) From ECR source: 2.0x10 13 ions per second0.8x10 11 ions per second Storage ring: 1.0x10 12 ions per bunch4.1x10 10 ions per bunch Fast cycling synch: 1.0x10 12 ion per bunch4.1x10 10 ion per bunch PS after acceleration: 1.0x10 13 ions per batch5.2x10 11 ions per batch SPS after acceleration: 0.9x10 13 ions per batch4.9x10 11 ions per batch Decay ring: 2.0x10 14 ions in four 10 ns long bunch 9.1x10 12 ions in four 10 ns long bunch Only  -decay losses accounted for, add efficiency losses (50%)

 M-MWATT R&D (improvements) Production of RIB (intensity) –Simulations (GEANT, FLUKA) –Target design, only 100 kW primary proton beam in present design Acceleration (cost) –FFAG versa linac/storage ring/RCS Tracking studies (intensity) –Loss management Superconducting dipoles (  of neutrinos) –Pulsed for new PS/SPS/Decay ring (GSI FAIR) –High field dipoles for higher gamma in the decay ring and/or accelerating decay ring –Radiation hardness (Super FRS) SPL ISOL Target + ECR Linac, cyclotron or FFAG Rapid cycling synchrotron PSSPS Decay ring

 M-MWATT EURISOL FAIR: Unique Features: ISOL method MWATT targets High energy fragmentation Beta-beam High energy fragmentation: EURISOL high intense easy beam (e.g. 132 Sn) + post-acceleration to GeV region in PS + IF or direct = A major step further towards more exotic nuclei

 M-MWATT Total budget is ( from EU) Start date: 1 January 2005 Objective: TDR for end of 2008 Objective: TDR enabling the Nuclear physics and Neutrino physics communities to take a decision about a future facility 2009: Fix site and apply for EU construction project

 M-MWATT Stake holders EURISOL Beta-beam Coordination Beta-beam parameter group Above 100 MeV/u Targets 60 GHz ECR Low energy beta-beam And many more… USERS Frejus Gran Sasso High Gamma Astro-Physics Nuclear Physics ( , intensity and duty factor) OTHER LABS TRIUMF FFAG Tracking Collimators US study Neutrino Factory DS Conceptual Design # with price ### M€

 M-MWATT Beta-beam task Objective: Study all components of a beta- beam facility above 100 MeV/u Deliverable: Conceptual Design Report (CDR) for a beta-beam facility Participating institutes: CERN, CEA, IN2P3, CLRC-RAL, GSI, MSL-Stockholm Parameter group to define the conceptual design and follow the evolution of the beta-beam facility: Higher intensities and higher gamma

 M-MWATT Work Units (WU) in beta-beam task Low energy ring and RCS: CERN leads the WU PS and SPS: CERN leads the WU Replacements for PS and SPS: GSI will be asked to lead WU Design of decay ring: CEA leads the WU Collimation and machine protection (simulation of decay losses): CERN leads the WU Low energy ring, study of critical components: MSL leads the WU Longitudinal simulations and stacking: CERN leads the WU Parameter group: Chaired by Steve Hancock, CERN Synergies to nufact: RAL will be asked to lead the WU Present CERN commitement (including EU): 17 FTE over 4 years

 M-MWATT EURISOL DS General: beta-beam Driver: LNL leading task, CERN participates through HIPPI (SPL) Target tasks: CERN leads the tasks for 100 kW and MW targets Beam preparation: Jyväskylä Univ. leads the task, IN2P3 leads the work unit for 60 GHz ECR source for stripping and bunching Heavy-ion accelerator: GANIL leads the task for acceleration up to 100 MeV/u Physics: Liverpool leads the task, IN2P3-Orsay leads the work unit on the Low energy beta-beam And more…

 M-MWATT Beta-beam CERN Job descriptions Title: Accelerator physicist –Name: Mats Lindroos –Availability: 0.5 FTE/year Title: Accelerator physicist –Name: Michael Benedikt –Availability: 0.5 FTE/year Title: Accelerator physicist –Name: Steven Hancock –Availability: 0.5 FTE/year Title: Accelerator physicist –Name: New staff, To be advertised autumn 2004 –Availability: 1 FTE/year Title: Physicist or engineer –Name: New fellow (3 years), To be advertised autumn 2004 –Availability: 1 FTE/year Title: Physicist or engineer –Name: New fellow (3 years), To be advertised autumn 2004 –Availability: 1 FTE/year

 M-MWATT boost 6 He Beta-beam A boost for radioactive nuclear beams A boost for neutrino physics The EURISOL/beta-beam DS! A lot of work but it is time for action (and not only talking)!