Linear Super-B Factory Progress John T. Seeman FPCP Workshop Vancouver BC April 9, 2006.

Slides:



Advertisements
Similar presentations
Beam-Beam Effects for FCC-ee at Different Energies: at Different Energies: Crab Waist vs. Head-on Dmitry Shatilov BINP, Novosibirsk FCC-ee/TLEP physics.
Advertisements

Study of the Luminosity of LHeC, a Lepton Proton Collider in the LHC Tunnel CERN June F. Willeke, DESY.
SuperB and SuperKEKB * Y. Ohnishi KEK July 3, 2008 * SuperKEKB is the KEKB upgrade in the framework of the KEK roadmap 1.
1 Possibilities of ILC parameters optimization with crossing angle SLAC, June 27, 2006 P. Raimondi, M.Pivi, A.Seryi.
SuperB Damping Rings M. Biagini, LNF-INFN P. Raimondi, SLAC/INFN A. Wolski, Cockroft Institute, UK SuperB III Workshop, SLAC, June 2006.
Super-B Factory Workshop April 20-23, 2005 Super-B IR design M. Sullivan 1 Status on an IR Design for a Super-B Factory M. Sullivan for the Super-B Factory.
Super B-Factory Workshop, Hawaii, April 20-22, 2005 Lattice studies for low momentum compaction in LER M.E. Biagini LNF-INFN, Frascati.
SLAC Accelerator Department Super-B-Factory John T. Seeman Assistant Director of the Technical Division Head of the Accelerator Department Caltech Meeting.
First approach to the SuperB Rings M. Biagini, LNF-INFN April 26th, 2006 UK SuperB Meeting, Daresbury.
July 24, 2008Super-B Mini-MAC MeetingPage 1 Super-B Overview John Seeman Accelerator Systems Division SLAC.
1 Super-B Factory Scenarios John Seeman Assistant Director PPA Directorate SLAC SLUO Meeting September 11, 2006.
Exotic approach to a Super B-FACTORY P. Raimondi.
Super-B Factory Workshop January 19-22, 2004 IR Upgrade M. Sullivan 1 PEP-II Interaction Region Upgrade M. Sullivan for the Super-B Factory Workshop Hawaii.
Super-B Factory Workshop January 19-22, 2004 Accelerator Backgrounds M. Sullivan 1 Accelerator Generated Backgrounds for e  e  B-Factories M. Sullivan.
Beam-beam studies for Super KEKB K. Ohmi & M Tawada (KEK) Super B factories workshop in Hawaii Apr
Issues for Optimization of a Super-B Factory John T. Seeman SBF Workshop SLAC June 14, 2006.
Super-B Factory Workshop January 19-22, 2004 Super-B IR design M. Sullivan 1 Interaction Region Design for a Super-B Factory M. Sullivan for the Super-B.
SLAC Accelerator Department The PEP-II Accelerator John T. Seeman Assistant Director of the Technical Division Head of the Accelerator Department SLUO.
Beam-beam simulations M.E. Biagini, K. Ohmi, E. Paoloni, P. Raimondi, D. Shatilov, M. Zobov INFN Frascati, KEK, INFN Pisa, SLAC, BINP April 26th, 2006.
Status on SuperB effort SLAC, June 14, 2006 P. Raimondi.
Is there synergy between ILC and SuperB? Steve Playfer University of Edinburgh.
Beam-Beam Optimization for Fcc-ee at High Energies (120, 175 GeV) at High Energies (120, 175 GeV) Dmitry Shatilov BINP, Novosibirsk 11 December 2014, CERN.
Working Group 3 Summary M. Sullivan / Y. Funakoshi.
Future Very High Luminosity Options for PEP-II John T. Seeman For the PEP-II Team e+e- Factories Workshop October 13-16, 2003.
Emittance Growth from Elliptical Beams and Offset Collision at LHC and LRBB at RHIC Ji Qiang US LARP Workshop, Berkeley, April 26-28, 2006.
Status on SuperB effort Frascati, March 16, 2006 P. Raimondi.
SuperB Design Progress Paris, Jan 27, 2007 P. Raimondi for the SuperB Team.
New Ideas for a Super B Factory Steve Playfer University of Edinburgh ILC Forum, Cosener’s House, May 2006.
CASA Collider Design Review Retreat HERA The Only Lepton-Hadron Collider Ever Been Built Worldwide Yuhong Zhang February 24, 2010.
Status on SuperB effort Daresbury, April 26, 2006 P. Raimondi.
New Ideas for Super B Factories for Flavour Physics Steve Playfer University of Edinburgh, Future Directions, BEACH 2006 Lancaster, July 2006.
SuperB Lattice Studies M. Biagini LNF-INFN ILCDR07 Workshop, LNF-Frascati Mar. 5-7, 2007.
Plan for Review of FCC- ee Optics and Beam Dynamics Frank Zimmermann FCC-ee Design Meeting 31 August 2015.
1 BINP Tau-Charm Project 3 February 2010, KEK, Tsukuba E.Levichev For the BINP C-Tau team.
NLC - The Next Linear Collider Project Tor Raubenheimer Beam Delivery System Design Differences American Linear Collider Physics Meeting SLAC January 8.
2 nd workshop on SuperB 17.03,2006 LNF Marcello A Giorgi1 Marcello A. Giorgi Università di Pisa and INFN Pisa Closeout Remarks 2nd Workshop on SuperB FRASCATI.
A.Variola B. What is the ‘crab waist’ scheme? And why does it make a high luminosity factory possible? Machine parameters ILC & SuperB.
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.
Optics with Large Momentum Acceptance for Higgs Factory Yunhai Cai SLAC National Accelerator Laboratory Future Circular Collider Kick-off Meeting, February.
BINP tau charm plans and other projects in Turkey/China A. Bogomyagkov BINP SB RAS, Novosibirsk.
November 12-13, 2007 Super-B Factory: Accelerator Costing, PEP-II Hardware and Schedule J. Seeman SLAC International Review Committee meeting November.
Design and Parameters for a linearly colliding Super B-FACTORY
Update on B and Phi Factories
Crab Waist Collision Studies for e+e- Factories
SuperB Injection, RF stations, Vibration and Operations
Linac possibilities for a Super-B
The SuperB Accelerator Lattice M. E
2nd Workshop on a Super B-Factory INFN-LNF, Frascati, Italy
The PEP-II Interaction e+e- Factories Workshop
CASA Collider Design Review Retreat Other Electron-Ion Colliders: eRHIC, ENC & LHeC Yuhong Zhang February 24, 2010.
Beam beam simulations with disruption (work in progress...)
SuperB Accelerator Overview and Status
XII SuperB Project Workshop LAPP, Annecy, France, March 16-19, 2010
Interaction Region Design Options e+e- Factories Workshop
SuperB CDR Machine P. Raimondi for the SuperB Team Paris, May 9, 2007.
Beam-beam simulations with crossing anlge + crab-waist
Accelerator R&D Results from the B-factory
AC Power for a Super-B Factory
Summary of Washington DOE Review
Beam-Beam Effects in High-Energy Colliders:
Super-B Accelerator Overview
SuperB IRC Meeting Frascati, Nov. 13th 2007
Super-B Factory in a “4400m” Tunnel
Cost Algorithm for a Super-B Factory
M. E. Biagini, LNF-INFN SuperB IRC Meeting Frascati, Nov , 2007
JLEIC Main Parameters with Strong Electron Cooling
MEIC New Baseline: Part 7
MEIC New Baseline: Performance and Accelerator R&D
Beam-beam simulations
Presentation transcript:

Linear Super-B Factory Progress John T. Seeman FPCP Workshop Vancouver BC April 9, 2006

Topics  Brief history  Accelerator physics factors  Four leading collider layouts  Conclusions

Participants  Frascati: P. Raimondi, M. Biagini, S. Guiducci  LBNL: A. Wolski  Novosibirsk: I. Koop  SLAC: Y. Cai, S. Ecklund, P. McIntosh, A. Novokhatski, M. Sullivan, J. Seeman, D. Teytelman, U. Wienands  Plus: many contributions from others

History  : Both KEKB and PEP-II B-Factories have reached over 1 x /cm 2 /s!  : Both KEK and SLAC pursued Super-B upgrades with significantly higher currents and lower  y*.  2004: Super-KEKB design is presented to the KEK Laboratory.  March 2005: Emerged from the Super-B Workshop in Hawaii a concept of a single pass Linear Super-B Factory  November 2005: Frascati workshop outlined a Super-B design with single pass collisions, bunch compression, and energy recovery linacs.  March 2006: Frascati workshop outlines a Super-B Collider design that collides every turn but with bunch compression or large crossing angles.

Super-B Basic concepts  Higher currents and large number of bunches make more luminosity but needs higher RF power.  Faster damping allows stronger collisions but needs higher RF power.  Shorter bunches allow smaller vertical spot sizes.  Lower emittance makes for smaller spot sizes but leads to single ring enlargment issues.  Need small energy spread (~10 -3 ) in the collisions to match Y4S resonance shape.

Luminosity  The luminosity for a linear collider is: L=Hd Np P / 4  E  x  y L=Hd Np P / 4  E  x  y Hd : disruption enhancement Hd : disruption enhancement P : average beam power P : average beam power  For a storage ring is: L=2.17 x (1+r)  y EI /  y L=2.17 x (1+r)  y EI /  y I : beam current I : beam current  y : vertical tune shift  y : vertical tune shift  y : IP vertical beta function

Scaling laws to optimize the single pass IP parameters  Disruption:  Luminosity  Energy spread: Decrease  z + decrease N Increase spotsize Increase N Decrease spotsize Increase  z + decrease N Increase spotsize Contradicting requests!

More Detailed Luminosity Equation  y * = beam-beam parameter = D y /4 . N = number of particles  y * = vertical beta function s = bunch spacing E = beam energy F = Hourglass + parasitic collision factor (~<1.0)

Parameters of Super-B Designs Collider yy N y*y* sEFLumin Units10 mmmGeV(~Hd)10 35 PEP-IINormal KEKBNormal Super- PEP-II High I low  y Super- KEKB High I low  y Linear SuperB Single pass SuperB Bunch shorten SuperB X’ing angle

Final Focus  Use ILC final focus concept  Scale to B Factory energies  (4 x 7 GeV) (3.5 x 8 GeV).  Use small superconducting quadrupoles for the final doublet.  Chromatic corrections done in the IR with sextupoles.

 A. Seryi

 M. Sullivan

Beam-Beam Simulations  Track macro-particles through the collision to see blow up effects. (Guinea Pig code from ILC)  Compare single pass beam-beam effects with ring beam-beam effects.  Couple single pass collisions with damping in a ring.

Horizontal Collision Vertical collision Effective horizontal size during collision about 10 times smaller, vertical size 10 times larger Simulation by D.Schulte First attempt

Type 1 Single Pass Linear Super-B  Collide each bunch once very hard making a lot of luminosity.  Use very small beta functions at the IP like ILC.  Re-inject into the damping rings and damp for several damping times.  Collide again after the disrupted emittances have damped.  Simulations show vertical emittance blow up is about 300 times.  Need about 6 damping times between collisions.  Need very short damping times  high power.

Linear-B scheme IP LER Bunch compressor and FF HER Bunch compressor and FF LER HER Overall ring length about 6Km, Collision frequency about 120Hz*10000bunch_trains=1.200MHz Bunch train stays in the rings for 8.3msec, then is extracted, compressed and focused. After the collision the bunch is reinjected in its ring LER injection HER injection

Horizontal phase after the collision Vertical phase after the collision IP Parameters set considered at the workshop caused large increase of the emittance due to the collision:  x_out /  x_in =12  y_out /  y_in =300 M. Biagini studies

Luminosity &  E vs N. of bunches at fixed total current = 7.2 A (6.2 Km ring) Energy spread Working point Study by M. Biagini

Type 2 Energy Recover Linear Super-B  Use single pass collider idea but use energy recovery linacs (ERLs) to accelerate, collide, then deccelerate the beams to the reduce damping ring energy and energy loss to synchrotron radiation.  This technique saves energy lost in damping rings between ~E 2 and ~E 4.  Acceleration also adiabatically damps emittance and energy spread making bunch compression easier.

Linear Super B schemes with acceleration and energy recovery, to reduce power e- Gun 2GeV e+ DR IP 5GeV e+ SC Linac e- Dump 7GeV e+ 4 GeV e- 4GeV e- SC Linac 2 GeV e+ injection 2 GeV Linac1.5 GeV Linac Linac Damping Rings 2 GeV Linac e + Gun e - Gun  Use SC linacs to recover energy  Use lower energy damping rings to reduce synchrotron radiation  No electron damping ring  Make electrons fresh every cycle  Damping time means time to radiate all energy  Why not make a fresh beam if storage time is greater than 1 damping time

Type 3 Super-B with Bunch Compression  Collide every turn in the damping ring.  Install an ILC like final focus.  Choose parameters to cause small emittance blow up.  Use bunch compressor to shorten the bunches at the IP. Decompress after the IP.  Use monochromator scheme at IP to compensate the energy spread to match the small Y4S resonance.

Compressor Decompressor IP FF ILC ring with ILC FF ILC Compressor, 0.4GeV S-Band or 1GeV L-Band Crossing angle optional Simplified layout in the Small Disruption Regime Collisions every Turn P. Raimondi

One option: Motivation: SLAC Tunnel  Use an existing tunnel and injector (2200 m)  Use existing RF system (476 MHz)  Make two rings for each beam in the tunnel  First ring provides damping and low emittances in x, y, and z planes  Second ring is for bunch compression by a factor of about x6  Second ring has an ILC final focus for collisions  Collide every bunch on every turn (  really two turns= 4400 m)  Collide 4 x 7 GeV with bunches 1 m apart  Keep bunch charges and beam currents at about present or soon-to-be levels.  Keep beam-beam parameters at the present PEP-II / KEKB levels (or very nearly)  Do not need short damping times which saves AC power!

Layout of One Ring: Other Ring is the Reverse!  IP And Detector Final Focus Reverse Final Focus Damping ring = 2200 m Bunch expander Bunch compressor Linac injector

Super-B-Factory in a 4400 m Tunnel 0.4 mm 

SBF as shown in Traditional Ring Collider Parameters  Emittances = 12.x1.5 nm

Approximate AC Power  PEP-II (2200 m) (1 ring LER and HER)  RF AC Power LER at 3.1 GeV = 1 MeV/turn x 4 A x 2 = 8 MW  RF AC Power HER at 9.0 GeV = 3.6 MeV/turn x 2 A x 2 = 14.5 MW  Total RF AC power = 22.5 MW.  Super-B factory (4400 m) (2 rings LER and HER)  RF AC Power LER at 4 GeV ~ 1.8 MeV/turn x 4 A x 2 x 2= 29 MW  RF AC Power HER at 7.0 GeV ~ 2.2 MeV/turn x 2.5 A x 2 x 2= 22 MW  Total RF AC power = 51 MW.

(Type 4) Super-B with Large Crossing Angles  Collide with a large crossing angle (2x25 mrad)  Thus, only a small longitudinal part of each bunch collides with a small longitudinal part of the opposing bunch. (luminosity loss)  However, the vertical beta function can be made very small while keep the overall bunch length long. (luminosity gain) (better for beam instabilities)  Use ILC final focus.  Do not need strong damping.

IP FF ILC ring & ILC FF Simplified layout in the Small Disruption Regime Collisions every turn Uncompressed bunches Crossing angle = 2*25 mrad Crabbed Y-Waist P. Raimondi

Vertical waist has to be a function of x: Vertical waist has to be a function of x: Z=0 for particles at –  x (-  x /2 at low current) Z=0 for particles at –  x (-  x /2 at low current) Z=  x /  for particles at +  x (  x /2 at low current) Z=  x /  for particles at +  x (  x /2 at low current) 2Sz 2Sx  z x 2Sx/  2Sz*  e- e+

Collisions with uncompressed beams Crossing angle = 2*25mrad Relative Emittance growth per collision about 1.5*10 -3  yout /  yin = Horizontal PlaneVertical Plane

New: Crab waists may not be so important  I. Koop BINP

Parameters of Super-B Designs Collider yy N y*y* sEFLumin Units10 mmmGeV(~Hd)10 35 PEP-IINormal KEKBNormal Super- PEP-II High I low  y Super- KEKB High I low  y Linear SuperB Single pass SuperB Bunch shorten SuperB X’ing angle

Round single pass Flat single pass Flat Ring with compressor Flat Ring no compressor Sigx*  m (2 betatron) 18 (2 betatron) 2.67 Etax mm Sigy nm Betx mm Bety mm Sigz_IP mm Sige_IP1.0e-32.0e-23.5e-31.0e-3 Sige_Lum0.7e-31.0e-31.0e-30.7e-3 Emix nm Emiy nm Emiz  m Cross_angle mrad OptionalOptional>2*122*25 Sigz_DR mm Sige_DR1.0e-30.5e-30.5e-31.0e-3 Np 10e Nbunches DR_length km Damping_time msec Nturns_betwe_coll Collision freq MHz L singleturn 1e L multiturn 1e P. Raimondi

Conclusions Conclusions -There has been rapid progress in the optimization of the Super-B Collider parameters and layout -Energy acceleration by ILC SC-cavities helps somewhat but is not really needed. -Energy acceleration by ILC SC-cavities helps somewhat but is not really needed. -Workable parameter set contains: - ILC damping ring, - ILC damping ring, - ILC bunch compressor, - ILC bunch compressor, - ILC Final Focus - ILC Final Focus - The optimal collision rate seems to be every turn.

- Solution with a ILC DR + ILC FF seems very promising: - Solution with a ILC DR + ILC FF seems very promising: - Crossing angle of about 25mrad allows low vertical beta function with no bunch compression - Crossing angle of about 25mrad allows low vertical beta function with no bunch compression - Thus: No compressor and no energy acceleration - Thus: No compressor and no energy acceleration -Uses all the work done for ILC - Ring and FF layouts similar to ILC - 6 km circumference rings - Strong synergy with ILC - Beam stay clear about 20 sigma assuming 1cm radius beam pipe - Beam currents about 2 Amps - Power around 70 MW, further optimization may be possible. - Reuse PEP RF system, power supplies, vacuum pumps, etc. - Standard injection system. Conclusions (2) for large crossing angle collider