LHC Scrubbing Runs J.M. Jimenez On behalf of the Electron Cloud Study Team, a Collaboration between AT and AB Departments.

Slides:



Advertisements
Similar presentations
RHIC electron cloud and vacuum pressure rise characteristics P.He, H.C.Hseuh, W.Fischer, U.Iriso, D.Gassner, J.Gullotta, R.Lee, L.Smart, D.Trbojevic, L.F.Wang.
Advertisements

Summary of the two-stream instability session G. Rumolo, R. Cimino Based on input from the presentations of G. Iadarola, H. Bartosik, R. Nagaoka, N. Wang,
1 Summary of Session E: Electron Cloud an Ion Desorption A. Kraemer and S.Y. Zhang Three Workshops in one year: Beam Induced Pressure Rise in Rings, BNL,
R. Cimino COULOMB’05, Senigallia, Sept 15, Surface related properties as an essential ingredient to e-cloud simulations. The problem of input parameters:
Preliminary results and ideas for the SPS upgrade MDs on LHC beams in 2011 G. Rumolo on behalf of all the MD team (Elena, Thomas, Karel, Christina, Holger,
Vacuum, Surfaces & Coatings Group Technology Department 04/12/2014 R. Salemme – COLDEX results during SPS Scrubbing Run I Electron Cloud Meeting #18,
LHC VACUUM SYSTEM: 2012 REVIEW AND 2014 OUTLOOK G. Lanza, V. Baglin, G. Bregliozzi, J.M. Jimenez EVIAN 2012.
Vacuum and Cryogenics observations for different bunch spacing J.M. Jimenez On behalf of CRG and VSC Groups with the contributions of G. Arduini, V. Baglin,
E-CLOUD VACUUM OBSERVATIONS AND FORECAST IN THE LHC Vacuum Surfaces Coatings Group 03/07/2011 G. Bregliozzi On behalf of VSC Group with the contributions.
1 Electron Cloud in LHC V. Baglin CERN AT-VAC, Geneva 1. Mecanism and Recipies 2. LHC Vacuum Chambers 3. Diagnostics 4. Conclusions Vincent Baglin Electron.
1 Near-term machine performance — The next 5 years, before e-cooling — Wolfram Fischer Run Coordinator for RHIC Run-4 Open Meeting on RHIC Planning Berkner.
Electron Clouds at SLAC Johnny Ng ILC Damping Rings Collaboration Meeting March 4, 2009.
Storage Ring : Status, Issues and Plans C Johnstone, FNAL and G H Rees, RAL.
Giovanni Rumolo, G. Iadarola and O. Dominguez in LHC Beam Operation workshop - Evian 2011, 13 December 2011 For all LHC data shown (or referred to) in.
CERN F. Ruggiero Univ. “La Sapienza”, Rome, 20–24 March 2006 Measurements, ideas, curiosities fundamental limitations to the ultimate performance of high-luminosity.
AB-ABP/LHC Injector Synchrotrons Section CERN, Giovanni Rumolo 1 Final results of the E-Cloud Instability MDs at the SPS (26 and 55 GeV/c) G.
SPS scrubbing experience: electron cloud observables L. Mether on behalf of the LIU-SPS e-cloud team LIU SPS scrubbing review, September 8, 2015.
LHC Scrubbing Runs Overview H. Bartosik, G. Iadarola, K. Li, L. Mether, A. Romano, G. Rumolo, M. Schenk, G. Arduini ABP information meeting 03/09/2015.
Vacuum, Surfaces & Coatings Group Technology Department Cryogenic Beam Vacuum Specificities Applicable to FCC hh V. Baglin CERN TE-VSC, Geneva 2 FCC Week.
Electron-Cloud Activities for LHC Frank Zimmermann ICE Meeting,
1 LHC vacuum Rossano Giachino Acknowledgments Jimenez,V.Baglin,J.C.Billy,I.Laugier Rossano Giachino November 2007.
G. Rumolo, G. Iadarola, H. Bartosik, G. Arduini for CMAC#6, 16 August 2012 Many thanks to: V. Baglin, G. Bregliozzi, S. Claudet, O. Dominguez, J. Esteban-
Beam-based vacuum observations and their consequences Sergei Nagaitsev August 18, 2003.
Beam screens in IT phase 1
Partikeldagarna, Göteborg 21 September 2007 LHC: Status and Plans Lyn Evans.
C. Fischer – LHC Instrumentation Review – 19-20/11/2001 Gas Monitors for Transverse Distribution Studies in the LHC LHC Instrumentation Review Workshop.
Peter Spiller, COLMAT-Kick off meeting, Cryo-Collimator, CERN, COLMAT Kick-off meeting CERN Peter Spiller Cryo-Collimator (Catcher) for.
Peter Spiller, GSI, ICFA workshop, Optimization of SIS100 Lattice and Dedicated Collimation System P. Spiller, GSI ICFA 2004 Bensheim
Improved electron cloud build-up simulations with PyECLOUD G. Iadarola (1),(2), G. Rumolo (1) (1) CERN, Geneva, Switzerland, (2) Università di Napoli “Federico.
CERN, LIU-SPS ZS Review, 20/02/ Brief review on electron cloud simulations for the SPS electrostatic septum (ZS) G. Rumolo and G. Iadarola in LIU-SPS.
September 17-21, 2007Workshop on ILC Interaction Region Engineering Design, SLAC IR Vacuum Systems first thoughts Oleg Malyshev ASTeC, STFC Daresbury Laboratory.
Vacuum Devices for accelerator studies Bernard HENRIST CERN TE dept. – Technology Department VSC group – Vacuum Surfaces and Coatings OLAV III Oak Ridge.
Heat load analysis for Inner Triplet and Stand Alone Modules H. Bartosik, J. Hulsmann, G. Iadarola and G. Rumolo LBOC meeting 28 October 2014 Based on.
Prepared by M. Jimenez AT Dept / Vacuum Group, ECloud’04 Future Needs and Future Directions Maximizing the LHC Performances J.M. Jimenez …when Nature persists.
J.M. Jowett, S. Maury, PANIC05 HI Satellite meeting, 23/11/ LHC as a Heavy-Ion Collider An update John M. Jowett, Stephan Maury I-LHC Project CERN.
LIU-SPS e-cloud contribution to TDR Electron cloud meeting, 17/02/20141 o First draft by end of February Between 5 to 10 max pages per chapter, refer.
Ion effects in low emittance rings Giovanni Rumolo Thanks to R. Nagaoka, A. Oeftiger In CLIC Workshop 3-8 February, 2014, CERN.
THIN FILMS FOR CLIC ELEMENTS Outline Motivation The role of MME-CCS DB and MB transfer lines Main beam Main beam quadrupoles Other issues conclusions CLIC.
Prepared by M. Jimenez AT Dept / Vacuum Group, ECloud’04 ELECTRON CLOUDS AND VACUUM EFFECTS IN THE SPS Experimental Program for 2004 J.M. Jimenez Thanks.
E-cloud Remedies and PS2 vacuum design J.M. Jimenez AT Department – Vacuum Group CARE-HHH-APD BEAM’07 Thursday 04 October Session 2: PS2 E-cloud.
1 Electron clouds and vacuum pressure rise in RHIC Wolfram Fischer Thanks to M. Blaskiewicz, H. Huang, H.C. Hseuh, U. Iriso, S. Peggs, G. Rumolo, D. Trbojevic,
Comparison of stainless steel and enamel clearing electrodes E. Mahner, F. Caspers, T. Kroyer Acknowledgements to G. Arduini, H. Damerau, S. Hancock, B.
Main Activities and News from LHC e-Cloud Simulations Frank Zimmermann ICE Meeting 8 June 2011.
Procedures for detecting vacuum leaks in the LHC LTC open action from /36. LTC Frank Zimmermann, LHCCWG 23 October 2007.
Estimates of residual gas pressure in the LHC Adriana Rossi AT-VAC Workshop on Experimental Conditions and Beam Induced Detector Backgrounds April.
200 MHz option for HL-LHC: e-cloud considerations (heat load aspects) G. Iadarola and G. Rumolo HLLHC WP2 meeting 03/05/2016 Many thanks to: K. Li, J.
Benchmarking simulations and observations at the LHC Octavio Domínguez Acknowledgments: G. Arduini, G. Bregliozzi, E. Métral, G. Rumolo, D. Schulte and.
Vacuum Cleaning / Scrubbing measurements in the LHC J.M. Jimenez on behalf of G. Arduini, V. Baglin, G. Bregliozzi, P. Chiggiato, G. Lanza, OP.
Two beam instabilities in low emittance rings Lotta Mether, G.Rumolo, G.Iadarola, H.Bartosik Low Emittance Rings Workshop INFN-LNF, Frascati September.
EC plans in connection with eRHIC Wolfram Fischer ILCDR08 – Cornell University, Ithaca, New York 10 July 2008.
Beam screen cooling: scaling from LHC to FHC Philippe Lebrun FHC meeting on beam pipe design, CERN 20 December 2013.
S. Roesler (on behalf of DGS-RP)
Some Vacuum Related Diagnostics of High Energy Particles Accelerators
LHC Machine Status report
Machine Coordinators: G. Arduini, J. Wenninger
The LHC - Status Is COLD Is almost fully commissioned
Study of the Heat Load in the LHC
MD2036: UFO dynamics studies and UFO fast detection
Electron cloud & vacuum pressure observations: 2011 proton run
Accelerator System - Vacuum
Requirements from the Vacuum Systems HE-LHC
MD25 ns - 14/12/2012 G. Arduini, H. Bartosik, G. Iadarola, G. Rumolo
Study of the Heat Load in the LHC
Week 46 Week 46: Machine coordinators: Roger Bailey – Gianluigi Arduini Main aims of the week: Stable beams with ions Scheduled stop for ion source refill.
Frank Zimmermann, Electron Cloud, LHC MAC 10. June 2005
Scrubbing progress - 10/12/2012
J. Uythoven, W. Venturini Delsolaro, CERN, Geneva
Electron Clouds at SLAC
CINVESTAV – Campus Mérida Electron Cloud Effects in the LHC
Scrubbing progress - 08/12/2012
Presentation transcript:

LHC Scrubbing Runs J.M. Jimenez On behalf of the Electron Cloud Study Team, a Collaboration between AT and AB Departments

Vacuum Group Prepared by J.M. Jimenez LHC Scrubbing Runs LHC Workshop, January 2005 Main Topics Introduction –Review of the Limitations –Expectations from the Scrubbing Runs Main Results in the SPS –Electron Cloud Build up –Vacuum Cleaning and Beam Conditioning –Role played by the Physisorbed Gasses Diagnostics foreseen in the LHC –RT and Cryogenic Vacuum and Electron Cloud Pilot Sectors Scrubbing runs scenarios

Vacuum Group Prepared by J.M. Jimenez LHC Scrubbing Runs LHC Workshop, January 2005 Introduction (1) Review of the Injection Energy 450 Top Energy 7 TeV < p/bunch Dynamic Pressure Rise Proton or Ions Beam Losses will only induced small pressure rises since dominated by the quench levels Dynamic Pressure Rise + Photons Stimulated Desorption (synchrotron radiation) > p/bunch in Dipole Field > p/bunch in Field Free Dynamic Pressure Rise Beam losses, Beam gas scattering, Electron Stimulated Desorption (e- cloud) Electron Cloud-induced Heat Loads, Beam Instabilities and Emittance growths Dynamic Pressure Rise As at 450 GeV + Photons stimulated Desorption Electron Cloud-induced Heat Loads, Beam Instabilities and Emittance growths (less cryogenic margin) Bunch length decrease?

Vacuum Group Prepared by J.M. Jimenez LHC Scrubbing Runs LHC Workshop, January 2005 Introduction (2) Expectations from the Scrubbing Runs Scrubbing runs shall improve: –The dynamic pressure by: Reducing the Photons (synchrotron radiation) and Electrons Stimulated Desorption yields The electron stimulated desorption by reducing the electrons (electron cloud) flux to the wall as a consequence of the reduction of the SEY  Vacuum Cleaning Effect –The electron cloud-induced heat loads, beam instabilities and emittance growths by: Reducing the SEY i.e. the total number of electrons in the cloud  Beam Conditioning Effect

Vacuum Group Prepared by J.M. Jimenez LHC Scrubbing Runs LHC Workshop, January 2005 Introduction (3) Beam Conditioning Mechanism Courtesy of B. Henrist and N. Hilleret Evolution of the SEY=f(E) with the conditioning Total number of electrons contributing to the build up Number of secondary electrons generated by a primary electron

Vacuum Group Prepared by J.M. Jimenez LHC Scrubbing Runs LHC Workshop, January 2005 Main Topics Introduction –Review of the Limitations –Expectations from the Scrubbing Runs Main Results in the SPS –Electron Cloud Build up –Vacuum Cleaning and Beam Conditioning –Role played by the Physisorbed Gasses Diagnostics foreseen in the LHC –RT and Cryogenic Vacuum and Electron Cloud Pilot Sectors Scrubbing runs scenarios

Vacuum Group Prepared by J.M. Jimenez LHC Scrubbing Runs LHC Workshop, January 2005 Main Results in the SPS (1) Electron Cloud Build-up …is a threshold phenomenon: – p/bunch in Dipole Field regions – p/bunch in Field Free regions …Intensity varies linearly with the bunch intensity –Non-homogeneous spatial distributions in dipole and quadrupole fields …Intensity varies linearly with the filling pattern –No extinction during the 225 ns batch spacing  evidence of surviving electrons In the RT parts, NEG coatings will decrease the electron cloud activity due to their intrinsic low SEY: 1.1 after activation and 1.3 if saturated by water

Vacuum Group Prepared by J.M. Jimenez LHC Scrubbing Runs LHC Workshop, January 2005 Main Results in the SPS (3) Vacuum Cleaning and Beam Conditioning Vacuum Cleaning observed in the SPS during the 25 ns / 75 ns Periods  Factor 10 during the 75 ns period, 100 during the 25 ns period for both FF and DF Beam Conditioning on the cold surfaces has been observed in the SPS, probably a different physical process than at RT –Beam 75 ns Dipole field at Cold  Factor 100 after 7 hours –Beam 25 ns Dipole field at Cold  Factor 10 after 1½ day Quadrupole field at RT  Factor 2.5 after 2 days –Gasses physisorbed on the cryogenic surfaces will play a predominant role (see next slide) Effect of a Cycling in Temperature As expected from Lab measurements, a water condensation will reset the beam conditioning. A temperature cycling did not helped to recover the initial value.  Electron cloud intensity back to the initial value before the conditioning

Vacuum Group Prepared by J.M. Jimenez LHC Scrubbing Runs LHC Workshop, January 2005 Main Results in the SPS (5) Role played by the Physisorbed Gasses Physisorbed water identified as a potential problem: –Conditioning has been observed in the SPS if the cold detector is protected against water back streaming from the unbaked parts –In the LHC, low water coverage is expected: Pumping down to torr of the cold parts prior to the cooling Controlled cool down sequence where the cold bore is cooled while the beam screen is kept as warm as possible A air leak in the arcs will have severe consequences on the operation Courtesy of V. Baglin (CERN)

Vacuum Group Prepared by J.M. Jimenez LHC Scrubbing Runs LHC Workshop, January 2005 Reduction of the SEY by the physisorbed CO Courtesy of B. Henrist and N. Hilleret (CERN) Main Results in the SPS (6) Role played by the Physisorbed Gasses Starting point – baked sampleStarting CO injection 4-7 monolayers of CO CO 2 and H 2 O could have a detrimental effect as the others like H 2 and CO will decrease the SEY

Vacuum Group Prepared by J.M. Jimenez LHC Scrubbing Runs LHC Workshop, January 2005 Main Topics Introduction –Review of the Limitations –Expectations from the Scrubbing Runs Main Results in the SPS –Electron Cloud Build up –Vacuum Cleaning and Beam Conditioning –Role played by the Physisorbed Gasses Diagnostics foreseen in the LHC –RT and Cryogenic Vacuum and Electron Cloud Pilot Sectors Scrubbing runs scenarios

Vacuum Group Prepared by J.M. Jimenez LHC Scrubbing Runs LHC Workshop, January 2005 Diagnostics foreseen in the LHC (1) Electron Cloud and Vacuum Pilot Sectors The SPS electron Cloud test bench will be kept operational for the dedicated electron cloud studies while running the LHC The LHC diagnostics will be designed to provide indications on: –The beam conditioning levels of the non-NEG coated RT components and the cryogenic sections –The vacuum cleaning efficiency i.e. the dynamic pressure decrease on both the RT and cryogenics sections –The saturation level of the NEG coated sections  triggering of reactivations  These diagnostics will be dedicated to the operation follow-up and not to the electron cloud studies  If used during MDs, the subsequent additional conditioning of the detectors will result on an unknown “shift” between the detectors status as compared to the LHC machine.

Vacuum Group Prepared by J.M. Jimenez LHC Scrubbing Runs LHC Workshop, January 2005 Diagnostics foreseen in the LHC (2) Electron Cloud and Vacuum Pilot Sectors …aimed to provide indications on the: Vacuum Cleaning –Pressure rises and partial pressure evolution –Quantity of gas released by the photon and electron bombardment and physisorbed within a given period of run  recalculate the evolution of the desorption yields (η)  requires a specific sectorisation Beam Conditioning –In situ SEY measurement  only achievable in field free condition –Decrease of the electron cloud flux to the wall  Strip Detectors or Electron Collectors –Decrease of the electron cloud density  Swapping detector (R. Macek) –Decrease of the e- cloud-induced heat load  Calorimetric measurements: dedicated calorimeters or upgraded thermometry and flow rate measurements on the magnets Q 5 and D 2 Q 4 in IR4 or IR5  ECR proposal being prepared  IR5 is accessible with beam  important for delicate measurements NEG saturation level –Bayard-Alpert Pressure gauges –Hydrogen transmission facility –Partial pressure evolution with time i.e. Hydrogen become “visible” or CO or CO 2 crossing the CH 4 level

Vacuum Group Prepared by J.M. Jimenez LHC Scrubbing Runs LHC Workshop, January 2005 Main Topics Introduction –Review of the Limitations –Expectations from the Scrubbing Runs Main Results in the SPS –Electron Cloud Build up –Vacuum Cleaning and Beam Conditioning –Role played by the Physisorbed Gasses Diagnostics foreseen in the LHC –RT and Cryogenic Vacuum and Electron Cloud Pilot Sectors Scrubbing runs scenarios

Vacuum Group Prepared by J.M. Jimenez LHC Scrubbing Runs LHC Workshop, January 2005 Scrubbing Runs Scenarios (1) Maximizing the Efficiency… … the beam emittance, beam losses and beam instabilities has to remain under control  Not an issue in the SPS since a new beam is injected every 21 s Bunch Spacing, Filling Pattern and Beam energy –Bunch Spacing No limitation expected with the 75 ns bunch spacing up to nominal No limitation expected with the 25 ns bunch spacing if < p/bunch > p/bunch  will depend on the induced heat load provided that beam instabilities and emittance growths are kept under control ~ p/bunch is the expected limit prior to the beam conditioning –Filling pattern A modification of the filling pattern by increasing the gaps (RHIC case) between the batches shall be preferred to the reduction of the bunch intensity: –Displacement of the lateral strips in a dipole field with the bunch intensity –Decreases the average energy of the electrons from the cloud  reduction of the conditioning efficiency

Vacuum Group Prepared by J.M. Jimenez LHC Scrubbing Runs LHC Workshop, January 2005 Scrubbing Runs Scenarios (2) Maximizing the Efficiency… –Scrubbing runs at injection energy Will increase the cooling budget available for the electron cloud-induced heat load, Will only work if not limited by other effects like beam instabilities or emittance growths, Will require a short scrubbing run top energy in case of a small orbit displacement during the ramp in energy De-conditioning effect –Has been observed both in the Lab and in accelerators (EPA and SPS) when the surface is no longer bombarded  Subsequent conditioning is 10 times faster –Is expected as a consequences of a partial warming up of the cold parts during the shutdown  physisorbed gasses will go back to the gas phase and be recondensed during the following cooling down  Part of the molecules in the gas phase will be pumped by the mobile pumping stations

Vacuum Group Prepared by J.M. Jimenez LHC Scrubbing Runs LHC Workshop, January 2005 Ramp to 55 GeV Ramp to 450 GeV Scrubbing Runs Scenarios (3) Energy Ramp induced an Orbit Displacement Bunch length shortened during the ramp

Vacuum Group Prepared by J.M. Jimenez LHC Scrubbing Runs LHC Workshop, January 2005 Scrubbing Runs Scenarios (4) Maximizing the Efficiency… The continuous bombardment of the surfaces by the electrons will release a non negligible amount of gasses which will: –be pumped by the NEG coatings in the RT parts and contribute to their saturation  re-activation required  several weeks or –be transferred to the cold bore in the cryogenic systems due to the high desorption yields of the electrons (e- cloud). Thick coverages will lead to a high equilibrium pressure in the arcs and therefore thermal cycling shall be foreseen to remove these gasses physisorbed mainly on the cold bore or on the less bombarded beam screens surfaces.  This operation requires a long stop and therefore shall take place during the shutdown  free of cost since the cooling is stopped

Vacuum Group Prepared by J.M. Jimenez LHC Scrubbing Runs LHC Workshop, January 2005 Scrubbing Runs Scenarios (5) Maximizing the Efficiency… Vacuum cleaning and Beam conditioning expected Scrubbing runs required Prior to the shutdown allow the temperature cycling and NEG reactivation After the upgrade of the diluters: Short scrubbing run at start-up Long Scrubbing run right before the shutdown …non-contractual dates and scheduling…

Vacuum Group Prepared by J.M. Jimenez LHC Scrubbing Runs LHC Workshop, January 2005 No limitation is expected with the 75 ns beams The electron cloud build up always saturates and should not lead to over runs like the ion instability avalanche If not dominated by the beam instabilities and emittance growths, the available cooling capacity should allow running with intensities up to p/bunch in presence of an electron cloud Scrubbing runs will be required if running with intensities > p/bunch with a 25 ns bunch spacing: –After shutdowns or after venting of an arc sector –In case of long stops > 1 month (de-conditioning) –In case of several quenches or severe leaks (see V. Baglin’s talk) Beam Conditioning and Vacuum Cleaning can only take place in presence of an intense electron cloud A temperature cycling of the beam screen will help in removing the physisorbed molecules by sending them back to the gas phase  could not help to remove condense water Conclusions

Vacuum Group Prepared by J.M. Jimenez LHC Scrubbing Runs LHC Workshop, January 2005 …SPS is stopped, no result shall be expected. …will continue the: Laboratory measurement on the effect of the physisorbed gasses on the SEY and ESD and mainly when using gas mixtures. RHIC collaboration: Installation of a set of detectors (strip detector, pick-ups and retarding field detectors) to study the effect of the filling pattern and the role played by the surviving electrons. On going studies in 2005…

Vacuum Group Prepared by J.M. Jimenez LHC Scrubbing Runs LHC Workshop, January 2005 Acknowledgements Many thanks to G. Arduini, V. Baglin, P. Collier, O. Gröbner, G. Ferioli, J. Hansen, B. Henrist, N. Hilleret, L. Jensen, D. Schulte, P. Strubin, A. Rossi, F. Ruggiero, J. Wenninger and F. Zimmermann for their help To the operation crew of both PS and SPS To the AT/VAC-SL Section collaborators for the installation of the detectors To the TS Department collaborators for the design and manufacturing of the detectors