Bunching system for SPES project

Slides:



Advertisements
Similar presentations
RFQ development for high power beams
Advertisements

Improved on line performance of the installed ALPI Nb sputtered QWRs A.M. Porcellato, S. Stark, F. Stivanello, L. Boscagli F. Chiurlotto, D. Giora, M.
Laboratori Nazionali di Legnaro (Italy) DTL design status A. Pisent.
R. Miyamoto, Beam Physics Design of MEBT, ESS AD Retreat 1 Beam Physics Design of MEBT Ryoichi Miyamoto (ESS) November 29th, 2012 ESS AD Retreat On behalf.
30 th September 2004 High Power RF Couplers James Rogers High Power RF Couplers ELSRF Daresbury Laboratory.
Progress of the sub-harmonic bunching system (i.e. upgrading progress of BEPCII present bunching system) Pei Shilun for the SHBS team Accelerator center,
C. Rossi – L4 Project Meeting 3 March 2011 Status and Plans of 3 MeV Test Stand.
MuCool Test Area RF Workshop 111/15/2010 Muons, Inc. Loaded Pillbox Cavity Milorad Popovic & Katheryn Decker French (with Mike, Chuck, Katsuya, Al and.
Cell-Coupled Drift Tube Linac M. Pasini, CERN AB-RF LINAC4 Machine Advisory Committee 1 st meeting CERN January 29-30, 2008.
HIAT 2009, 9 th June, Venice 1 DESIGN STUDY OF MEDICAL CYCLOTRON SCENT300 Mario Maggiore on behalf of R&D Accelerator team Laboratori Nazionali del Sud.
MEBT & RT CH Section Thomas Page Fermilab Accelerator Advisory Committee May 10 th – 12 th, 2006.
STRIPLINE KICKER STATUS. PRESENTATION OUTLINE 1.Design of a stripline kicker for beam injection in DAFNE storage rings. 2.HV tests and RF measurements.
RFQ Thermal Analysis Scott Lawrie. Vacuum Pump Flange Vacuum Flange Coolant Manifold Cooling Pockets Milled Into Vanes Potentially Bolted Together Tuner.
RF power & FPC status Eric Montesinos, CERN BE-RF on behalf of all people involved, great thanks to all of them !
Technical aspects of the ATLAS efficiency & intensity upgrade Peter N. Ostroumov ATLAS Users Workshop, August 8-9, 2009.
F.E.T.S. RFQ Mechanical Design by Peter Savage 7 th January 2010.
DTL: Basic Considerations M. Comunian & F. Grespan Thanks to J. Stovall, for the help!
Calculation of the beam dynamics of RIKEN AVF Cyclotron E.E. Perepelkin JINR, Dubna 4 March 2008.
704MHz Warm RF Cavity for LEReC Binping Xiao Collider-Accelerator Department, BNL July 8, 2015 LEReC Warm Cavity Review Meeting  July 8, 2015.
Status of the Front End Test Stand April Infrastructure R8 refurbished Laser lab under construction Vacuum system for first section delivered Stands.
New G4beamline pillbox improvements K.B.Beard 4/26/2011.
PSB C04 RF system Consolidation or upgrade? M. Paoluzzi – CERN BE-RF 11/23/20151.
Development of the Room Temperature CH-DTL in the frame of the HIPPI-CARE Project Gianluigi Clemente,
CLARA Gun Cavity Optimisation NVEC 05/06/2014 P. Goudket G. Burt, L. Cowie, J. McKenzie, B. Militsyn.
2.1 GHz Warm RF Cavity for LEReC Binping Xiao Collider-Accelerator Department, BNL June 15, 2015 LEReC Warm Cavity Review Meeting  June 15, 2015.
RF scheme of electron linear accelerator with energy MeV Levichev A.E. Budker Institute of Nuclear Physics SB RAS.
2 nd harmonic RF perpendicular biased cavity update C.Y. Tan, W. Pellico, G. Romanov, R. Madrak, and D. Wildman 02 Apr 2014.
1 Al Moretti, APC, Fermilab MAP- Winter Meeting February 28 - March 4, 2011 TJNAF Newport News, VA.
MICE RF Cavity Measurements Derun Li Center for Beam Physics Lawrence Berkeley National Laboratory July 8, 2010 Rutherford Appleton Laboratory, UK.
Laboratoire commun CEA/DSM - CNRS/IN2P3 M. Di Giacomo – CWRF10 1 CWRF th of Mai Barcelona SPIRAL 2 RF SYSTEMS Status report Marco DI GIACOMO.
TESLA DAMPING RING RF DEFLECTORS DESIGN F.Marcellini & D. Alesini.
Concept Preliminary Estimations A. Kolomiets Charge to mass ratio1/61/8 Input energy (MeV/u) Output energy (MeV/u)2.5(3.5) Beam.
4/26/2013 Irina PetrushinaDeflecting cavity MHz for PXIE Irina Petrushina 4/26/2013.
THE LINAC4 RFQ – Experience with Design, Fabrication and Tuning C. Rossi and the RFQ Project Team GSI Review – 20 November 2013.
ESS AD RETREAT 5 th December 2011, Lund “A walk down the Linac” SPOKES Sébastien Bousson IPN Orsay.
PS-ESS and LEBT State of the art Lorenzo Neri Istituto Nazionale di Fisica Nucleare Laboratori Nazionali del Sud.
RAON LEBT Design Yonghwan Kim Institute for Basic Science Yonghwan Kim Institute for Basic Science.
New MI Cavity Progress and Plans 2010 Joseph E. Dey Project X Collaboration Meeting September 8, 2010.
201 MHz Cavity Plans Derun Li Center for Beam Physics Lawrence Berkeley National Laboratory February 11, 2011 MAP Friday Video Conference Meeting.
ESS RFQ B. POTTIN and RFQ team CEA-IRFU. RFQ design Strategy 3 RF codes to validate calculations Consideration of machining and assembly possibilities.
STATUS OF THE NC BUNCHING RFQ (Sub-task: SC-RFQ) Antonio Palmieri INFN-LNL.
RFQ coupler S. Kazakov 07/28/2015. Requirements: Coupler requirements Expected problems: Heating (loop, ceramic window, etc.) Multipactor Solutions: Appropriate.
Engineering of the power prototype of the ESRF HOM damped cavity* V. Serrière, J. Jacob, A. Triantafyllou, A.K. Bandyopadhyay, L. Goirand, B. Ogier * This.
DTL: Basic Considerations M. Comunian & F. Grespan Thanks to J. Stovall, for the help!
704 MHz cavity design based on 704MHZ_v7.stp C. Pai
EURISOL CB MEETING – PSI – 15 JUNE 2006 Sébastien Bousson IPN Orsay – Accelerator Division TASK 8 STATUS REPORT INFN – Legnaro IPN Orsay.
One More RFQ Design Renewal ANL Design. Several MHz RFQ Designs ANL-1LBNL-1LBNL-2ANL-2aANL-2b Vane modulation typeSinusoidal Sinusoidal +
Bunch Shape Monitor for HINS Wai-Ming Tam Project X Collaboration Meeting September 11, 2009.
704 MHz cavity folded tuner Thermal Analysis C. Pai
Eliminating one constraint for the scheduling committee Jay Benesch
High efficiency work and MBK development for accelerators
Visit for more Learning Resources
T5.2: Harmonization - Material and Component Reference
M. Migliorati, C. Vaccarezza INFN - LNF
Physics design on Injector-1 RFQ
Acceleration of RIB using linacs
Status of the Front End Test Stand April 2007.
F.Marcellini, D.Alesini, A.Ghigo
SPES-RFQ review Introduction, general aspects
Electrical Engineering Department, SGSITS, Indore, INDIA
Yingshun Zhu Accelerator Center, Magnet Group
Optimisation of the FETS RFQ
Implications of HOMs on Beam Dynamics at ESS
Pulsed Ion Linac for EIC
November 14, 2008 The meeting on RIKEN AVF Cyclotron Upgrade Progress report on activity plan Sergey Vorozhtsov.
SC ISOL Linac of KoRIA Tae-Sun Park (SKKU).
November 7, 2008 The meeting on RIKEN AVF Cyclotron Upgrade Progress report on activity plan Sergey Vorozhtsov.
Summary & Concluding remarks
Physics Design on Injector I
System tests at CEA O. Piquet 19/03/2019
Presentation transcript:

Bunching system for SPES project A. Facco, A. Pisent, M. Comunian, L. Bellan, INFN-LNL, Legnaro, Italy V. Andreev, ITEP, Moscow, Russia Work Package B9 (RNB Accelerator), Work Unit B.4 (Bunchers)

Existing bunching systems for TANDEM, PIAVE and ALPI Tandem-ALPI Double Drift Buncher 5 MHz (5/2n MHz with low energy chopper) or 160 MHz with B2 only PIAVE-ALPI 3-harmonic buncher 40 MHz Double Drift and 3 harmonic bunchers can provide 70% efficiency with good emittance Choppers remove peak tails and background between main peaks Fig.1. View of the existing accelerator facility

PIAVE triple-harmonic buncher 2 QWRs, 3 harmonics 40, 80 and 120 MHz air-cooled in PIAVE upstreams SRFQs =0.009 Fig. 2. PIAVE triple harmonic buncher

Fig. 3 Map of the SPES facility Delivering the beams from PIAVE and SPES production facility to ALPI according to beam dynamics simulations will be provided by two beam lines, which contain totally 5 High Energy 80 MHz room temperature bunchers (HEB) and one 5 MHz Low Energy Buncher (LEB). Two of the HEB for optimal β = 0.052 have been already built and are in operation since 2002 (HEB1 and HEB2) and three new ones (HEB3, HEB4, HEB5) for optimal β = 0.04 have to be built in framework of SPES project . Maximum gap voltage for double gap HEB will be equal 70 kV (total voltage is 140 kV). 5 MHz Low Energy Buncher, which will be installed upstream RFQ has optimal β = 0.003515 and total voltage V= 1 kV. Split into two slides: text is too tiny Fig. 3 Map of the SPES facility

Design of HEBS (high energy bunchers)

Design status of the High Energy Buncher for β=0.04 (HEB04) The drawings of the existing buncher resonators (see Fig. 4) have been modified for β_opt = 0.04, changing only distance between centers of the gaps (Fig. 5) and can presently be used for fabrication. Unfortunately there is a problem associated with the manufacturer. 13 years ago outer conductors of the QWR were manufactured outside the LNL by ICOSS company. Double wall technology was used to provide water cooling the outer conductor of the resonator. Now ICOSS company does not exist and all attempts to find a new manufacturer, having such technology are till unsuccessful. However, the reduced power requirements for the HEB-04 allow us to reduce the water cooling capabilities and simplify the cavity design, with possible reduction of cost and construction time. Fig. 4 . Photo of existing 80 MHz PIAVE buncher Fig .5. Code model view of the modified buncher

Cone The new version of the bunchers (Fig. 6), since their rf power losses are about 1/3 of the PIAVE bunchers ones, will use: air cooling on the outer conductor, which will be made with 6 mm thick, commercially available copper tube with SS flanges brazed on it; the LNL furnace is perfectly fit for it; Simplified design (from the mechanical construction point of view) of the inner conductor, which will be made of 3 cylindrical sections of commercially available Cu tubes brazed together and supported by an internal SS tube with water transport functions; A removable/machinable prolongation, or “nose” of the inner conductor as the only one knob for central frequency adjustment at the very end of the cavity construction. This will allow “built-to-print” order to the vendor with no need of intermediate frequency tests, with cost and construction time saving. The design with removable outer conductor and rf contact worked very well in the PIAVE bunchers, and will be preserved. Cone 3 tubes Fig. 6. Code model view of new version of the HEB

Table 1. Parameters of the new SPES resonators (two versions) Cavity inner conductor Inner cavity diameter mm Gap length Outer drift tube rounding radius Max. surface E - field MV/m Total Power losses kW Outer conductor power losses W Quality factor Q Cone 300 20 6 6.5 1.7 390 11297 3 cylindrical tubes 295 1.73 10.934 Fig. 7. Distribution of electrical field longitudinal component EZ on the beam axis

Two tuners and the «nose» will provide tuning resonant frequency of the buncher. They allow very large tuning range. One of the tuners will be movable and be used for fine tuning. Another one will be kept for field symmetry. Ranges of coarse tuning, which will be provided by the «nose» and tuners are shown on Fig.8 and Fig. 9 correspondingly. Fig. 8. Tuning range provided by the «nose» Fig. 9. Tuning range provided by two tuners

Design of low-f buncher

BD from CB to end of RFQ RFQ RFQ If 5 MHz buncher is on: Total amount of space occupied by the beam due to quad errors RFQ Transmission - 45 % (with chopping sutellite bunchers downstream RFQ). RFQ output longitudinal emittance - 0.0371 π mm mrad Without buncher, output longitudinal emittance after the RFQ is 0.067 π mm mrad

@ RFQ entrance without buncher (only chopper) Transmission: 3 % Chopped interval @ RFQ entrance Transmission: 45 % with buncher

Design of 5 MHz Low Energy Buncher (LEB) for the SPES Project For low frequency resonant systems it is more convenient to use lumped circuit elements, such as inductance and capacitance. In our case the capacitance is defined by geometrical dimensions of the drift tubes. Since βλ has been fixed and determined by RFQ, the double gap resonant system can be used (see Fig.10). Inner and outer drift tube diameter are 80 mm and 192 mm correspondingly. Distance between centers of the gaps = 105 mm. Inductance is helical (spiral) coil consisting of 18 turns of 8 mm copper pipe. Coil length L= 300 mm, coil diameter D= 100 mm.Total gap voltage is equal 1000 V, i.e. 500 V for gap. Optimal β = 0.003515, βλ/2 = 105 mm Only drift tubes will be installed inside vacuum chamber. The coil will be placed on air. A tuner installed on the bottom of the the vacuum chamber allows frequency tuning in range of 10-100 kHz. Transit time factor of the LEB is equal 0.78. Main RF parameters of the resonant system and longitudinal electric field (EZ) distribution along beam axis will be shown on next slide (Table 2 and Fig.11). 650 mm 250 mm Fig.10. General view of the two gap LEB

Double gap 5 MHz Low Energy Buncher (LEB) Table 2. Parameters of the two gap 5 MHz resonant system Central tube length mm Gap length mm Tube outer rounding radius β_opt f_res MHz Max. surface E - field MV/m Power losses W Q 100 5 6 0.003515 0.132 0.35 1462 Fig. 11. Longitudinal electric field EZ distribution on the beam axis

Conclusion High Energy Buncher: The following schedule for execution is being proposed: High Energy Buncher: In a few weeks launching the mech design to be completed in the next 3 months, then 1 year for construction and then tests. Low Energy Buncher: In the 3-6 months completing RF design of the LEB, plus 1 year mech design and construction, then tests.