Profile monitors, Injection Matching monitor, BSRT & BSRA LHC OP days - 19 th of January 2010 – Evian Stephane Bart Pedersen, Andrea Boccardi, Enrico Bravin,

Slides:



Advertisements
Similar presentations
FNAL Emittance Devices Flying Wires (FW) Sync Lite Ion Profile Monitors (IPM) aah,6/20/2000.
Advertisements

BSRT Optics Design BI Days 24 th November 2011 Aurélie Rabiller BE-BI-PM.
(BI) Needs and Experience with Cameras in Radioactive Environment Stephane Burger BE BI-PM BI review on Radiation development and testing 22 nd of November.
AWAKE Electron Spectrometer Design Simon Jolly 4 th September 2012.
Matching and Synchrotron Light Diagnostics F.Roncarolo, E.Bravin, S.Burger, A.Goldblatt, G.Trad.
Laser news AWAKE performance meeting Overview There was a meeting on with the supplier of the laser system (AMPLITUDE) No new information.
Measurement of the absolute efficiency,
NA62 Gigatracker Working Group Meeting 2 February 2010 Massimiliano Fiorini CERN.
The Transverse detector is made of an array of 256 scintillating fibers coupled to Avalanche PhotoDiodes (APD). The small size of the fibers (5X5mm) results.
SPS Syncrotron Telescope Software specifications Aurélie Goldblatt BE-BI-PM
LHC Lumi Days – 01/03/2012 Jean-Jacques Gras on behalf of the CERN Beam Instrumentation Group 1.
Fiber Loss Monitor and Carbon IP Scanner Setup and operational tips August
SPS Synchrotron Light Monitor -BSR- Status G. TRAD E. Bravin, A. Goldblatt, F. Roncarolo.
Status of Beam loss Monitoring on CTF3 Results of Tests on LINAC and PETS as R&D for TBL Anne Dabrowski Northwestern University Thibaut Lefevre CERN CTF3.
C. Fischer – LHC Instrumentation Review – 19-20/11/2001 Gas Monitors for Transverse Distribution Studies in the LHC LHC Instrumentation Review Workshop.
Monday h00: End of fill #1640: 3.7 pb h14: RB S12 and S23 tripped before loading rampdown table, active filter. MPE piquet. Fip_Com_Lost.
Elias Métral, LHC Beam Commissioning Working Group meeting, 08/06/2010 /191 SINGLE-BUNCH INSTABILITY STUDIES IN THE LHC AT 3.5 TeV/c Elias Métral, N. Mounet.
“Performance of BTVs during the CNGS commissioning” E. Bravin AB/BI NBI th International workshop on Neutrino Beams and Instrumentation 4-9 September.
Abort Gap Monitoring Randy Thurman-Keup 6 / 8 / 2004 LARP Meeting.
The Stripping Foil Test Stand in the Linac4 Transfer Line
LARP Commissioning Plans for the LHC Synchrotron-Light Monitors Alan Fisher SLAC National Accelerator Laboratory LARP CM13 Port Jefferson, NY
BSRT CALIBRATION MD SUMMARY LSWG #6-15/09/2015 BSRT TEAM.
G. Ferioli, R. Jung - LHC-BI Review Workshop November 19&20 LHC Screen Profile Monitors G. Ferioli, R. Jung Introduction BTV LHC layout Monitor set-up.
Laser beam diagnostics : BEAMDIAG program. Stéphan Del Burgo CERN PS/LP 30 January 1998 DBS 01/
Matching monitors for SPS and LHC E. Bravin 31 March 2011.
Overview Consolidation projects for PS LIU-PS Main observable review Conclusion Acknowledgements S. Gilardoni R. Steerenberg G. Metral H. Damerau BI colleagues.
Beam Halo Monitoring using Optical Diagnostics Hao Zhang University of Maryland/University of Liverpool/Cockcroft Institute.
ICCD of HERD Le WANG, XIOPM , XI’AN The 3 rd HERD Workshop.
LHCf Detectors Sampling Calorimeter W 44 r.l, 1.6λ I Scintilator x 16 Layers Position Detector Scifi x 4 (Arm#1) Scilicon Tracker x 4(Arm#2) Detector size.
SL/BI 16/05/1999DIPAC’99 -- JJ Gras -- CERN SL/BI -- Adaptive Optics for the LEP 2 SR Monitors G. Burtin, R.J. Colchester, G. Ferioli, J.J. Gras, R. Jung,
F f Quadrupole Pick-Ups at CERN & Fermilab A.Jansson FNAL.
Beam loss and radiation in the SPS for higher intensities and injection energy G. Arduini 20 th November 2007 Acknowledgments: E. Shaposhnikova and all.
Beam Profile Monitor for Spot-Scanning System Yoshimasa YUASA.
LARP LHC Synchrotron-Light Monitors: Status and Possible Upgrades Alan Fisher SLAC National Accelerator Laboratory LARP CM16 Montauk, NY 2011 May 17.
AB/BI J. Koopman New WS design - Brain storm session 18/06/2007 1/16 New WS design - Brain storm session.
10/3/2003Andreas Jansson - Tevatron IPM review1 Tevatron IPM Proposed design.
Requirements from BI and new instruments after LS1 LHC Optics Measurement and Correction Review; B.Dehning 1 Bernd Dehning CERN BE/BI
ODR Diagnostics for Hadron Colliders Tanaji Sen APC.
G. Trad on the behalf of the BSRT team Emittance meeting 04/11/2015.
Solid-State Cameras for LHC instrumentation
LHC Wire Scanner Calibration
Beam instrumentation MDs
The TV Beam Observation system - BTV
Beam Gas Imaging Kick-off meeting 30-Oct-2012
Pulse energy measurement for the CTF lasers.
Wednesday 3rd October - morning
E-beam scanner experience at FNAL
First data from TOTEM experiment at LHC
MD2243: Coronagraph commissioning at 6.5 TeV
E. Bravin, A. Goldblatt, S. Mazzoni, F. Roncarolo, M. Palm
Summary of experience with Tevatron synchrotron light diagnostics
Saturday 21st April 00:33 Interlock during ramp on BLM HV
Friday 07:00 Power glitch on the EDF network. Point 8 affected.
LHC Emittance Measurements and Preservation
Fill 1410 revisited Peak luminosity 1.4e32 Beam current 2.68/2.65 e13
Thursday morning – optics correction
The Pixel Hybrid Photon Detectors of the LHCb RICH
High resolution profile measurements
LHC Injection and Dump Protection
Proton Beam Diagnostics
Lost at 12:05 to power converter (RTQX2.R1) problem
Tuesday 28th September Fill 1375 ongoing 09:00 Move in Roman Pots
Wire almost entirely through beam before BLM triggers dump
450 GeV Initial Commissioning with Pilot Beam - Beam Instrumentation
Luminometer Integration at IR2
Diagnostics overview Beam profile monitors Cherenkov radiators Summary
Measurement of the beam (transverse) emittances
LHC BIF test setup - update
Monday 152 bunch operation summary
CLIC luminosity monitoring/re-tuning using beamstrahlung ?
Presentation transcript:

Profile monitors, Injection Matching monitor, BSRT & BSRA LHC OP days - 19 th of January 2010 – Evian Stephane Bart Pedersen, Andrea Boccardi, Enrico Bravin, Gerard Burtin, Stephane Burger, Bernd Dehning, Jonathan Emery, Alan Fisher, Ana Guerrero, Jan Koopman, Thibaut Lefevre, Aurelie Rabiller, Federico Roncarolo

BTV Performances of the system Dump lines / BTVDD Injection Matching Monitor Fast camera on BTVM Availability / Mode of operation / Experience from SPS Synchrotron Light : BSRT / BSRA Performances obtained last year What to expect for higher beam energies Automatic operation with pre-defined table BSRT Matching Monitor Outline

LHC BTV Camera infos CCD SANYO All BTVs except ↓ CIDTEC 8726-DX3 (3Mrads) BTVST.A4L2.B1, BTVSI.A5L2.B1, BTVST.A4R8.B2, BTVSI.A5R8.B2 CIDTEC 8712-DM (1Mrads) BTVD B1, BTVD B2, BTSE.A4L6.B1, BTVSE.A4R6.B2 SIRA (5Mrads) BTVDD B1, BTVDD B2 (camera permanently on !) Sensitivity RAD camera ~ 10x lower compared to CCDs Optimized measurement with BTV system NO LIGHTS or Background Substraction or Both If saturation (flag on the application) 1/ Reduce gain 2/ Use filters 3/ Change screen What can we expect to see Using the CCD cameraAl2O3->all beams (saturation!) OTR ->all beams Using the CIDTEC cameraAl2O3->all beams (saturation?) OTR ->beams above a few p LHC/BTV performance Courtesy of S.Burger

Distance Screen-Camera ~ 50cm Optical link to US45 Titanium OTR screen Fast framing HG100K camera Injection Matching monitor IR4

Worked on the SPS with 1E11 GeV on the BTVM, the system should work with 1E10 protons (Factor 2 more for the increase in Beam Energy (~ ln(  )), Factor 10 more from the angular divergence (1/  ) and Factor 2 less from the reflectivity of the screen) 30cm 6mm Injection Matching monitor

Camera not Radiation hard and relatively expensive (70kCHF): Available on demand and Require an 2hours access to the tunnel to be installed During tests on the SPS, the camera was perturbed (radiation) and required to be reset from time to time Frame RatesPixels 1000Fps1504 x fps1056 x fps640 x '000 fps416 x '000 fps256 x '000 fps192 x '000 fps96 x 72 Injection Matching monitor

BSRTM : Extraction Mirror Light production in Undulator or D3 Light source tracking system, Imaging system, Slow and Fast cameras, Abort Gap monitor, Calibration line New telescope table Synchrotron Light monitor: BSR

Calibration target Synchrotron Light monitor: BSR

Both systems have been tested and worked well on both beams Mechanical & Optical alignments are almost perfect Slow Cameras and Abort Gap monitors worked as expected Measured light intensities agree within 10-20% compared to expectations Performances BSRT/BSRA : run 2009 Beam 2 – 4 bunches (voltage 1000volts – OD1) Undulator 400A (nominal 450A - >20% more photons ) Beam 1 – 4 bunches (voltage 1500volts – OD0) Undulator off 5E9 protons bunch seen by the – Undulator – volts – Gain – Undulator off – Volts – Gain 2E5 Maximum 3350 Volts (Gain1E6) - Sensitivity x140 ~ 3E7 450GeV - Sensitivity x5 ~ 1E9 1.18TeV

UndulatorD3 EdgeD3centre 450GeV 7TeV [200,900]nm Radiation on the extraction mirror Courtesy of A. Fisher Estimates of Light intensities Need the undulator ‘on’ for low beam energies

Radiated energy per proton collected by the extraction mirror –[200 – 900] nm. Undulator D3 Edge D3centre Estimates of Light intensities Courtesy of A. Fisher

BSRT compared to BCT VERTICAL Sigma blow-up (green) but sigma*ampl (BLUE) tracks very well BCT (RED) GeV HORIZONTAL Sigma (green) rather cosntant, but sigma*ampl (BLUE) tracks very well BCT (RED) Courtesy of F. Roncarolo

16 Dec 09, 450 GeV 1 bunch, Beam 2 : Normalized emittance as measured by WS and BSRT  Using nominal betatron functions for sigma to emittance BSRT compared to Wire Scanner - Excellent agreement in terms of emittance variation during the fill - ~20 % systematic difference on normalized emittance Source of uncertainty:  Beta functions  WS calibration  WS and BSRT fitting to be checked  BSRT optics uncertainties (aberration, PSF, etc...)  BSRT proper settings (gains, filters, attenuators) Courtesy of F. Roncarolo

BSRA works with the highest possible signal to noise ratio, we would change the PMT HV with beam energies Automatic Operation with pre-defined tables Following changes in beam current and beam energy, the light intensity sent to the cameras (two filters wheel and gain-integration of the intensified camera), the focalisation (2 motors) and the position/aperture of the slits (2 motors) must be adjusted in order to provide optimum performances

Operation with Feedback In addition to the automatic operation using pre-calibrated table in MCS/LSA, There will be a need to add a feedback on both BSRA & BSRT to avoid saturation and provide useful/relevant data sets under any beam conditions Abort Gap cleaning: The system is designed in such a way that the detector would saturate for particle population in the gap just above the limit For protons population higher than the limit, we would have to feedback on the PMT high voltage to avoid saturation and continue to provide useful data during the cleaning Change of the beams size on the BSRT camera: a feedback on the H&V beam amplitude and size to avoid saturation or weak pictures

Fast Image intensifier Bialkali Photocathode (B) with a P47 phosphor Matching monitor with BSRT Fast Camera installed permanently in the BSR telescope for turn by turn profile measurements (to be commissioned) Need to be intensified (optical fiber coupling under realization at the moment) in order to be sensitive to 1E10-1E11 injection energy In addition, the intensifier is gated and can provide bunch by bunch images

Conclusions BTVs and Wire scanners works quite reliably – still few bugs to be fixed Matching monitor as an ‘on-demand’ device for MD’s Ready to try on the BTVM Implemented permanently on the BSRT hopefully later during the year Synchrotron Light Monitors Systems worked basically as designed - Need the Undulator ‘on’ Deeper analysis of performances on going Cross calibration with respect to Fast BCTs and Wire scanners Spatial Resolution will decrease for higher beam energies – Cross check with Wire Scanners and optimization will take some time. Detection threshold and operational table must be carefully extracted for several beam energy (to confirm predictions) Plans for this year: Automatic Operation, Feedback, turn by turn and bunch by bunch measurements, test on a Longitudinal Density Monitor (50ps time resolution)

Thanks for your attention

Overview of the BSRT BSRTM : Extraction Mirror Light production in Undulator or D3 Source Tracking System Control of H & V tilt angles of 1 st mirror Two Translation stages (60cm & 15cm long) and 8 mirrors to control the position of the object plane over a distance bigger than 2.5 m

Overview of the BSRT Source Tracking System

Imaging system BSRTM : Extraction Mirror Light production in Undulator or D3 Slit and Linear attenuatorColor filter (Filter Wheel) 1 st focussing Mirror (4.3m) 2 nd focussing Mirror (0.5m)

Slow and Fast Cameras BSRTM : Extraction Mirror Light production in Undulator or D3 Video intensified Camera and OD Filter wheel Fast camera (turn by turn)40/60% beam splitter

Slow and Fast Cameras

Abort Gap Monitoring System (BSRA) BSRTM : Extraction Mirror Light production in Undulator or D3 New telescope table OD filter wheelGated MCP-PMTPulsed LED15% transmission Wedge plate

Abort Gap Monitoring System (BSRA)

Calibration line BSRTM : Extraction Mirror Light production in Undulator or D3 Remotely controlled Laser & Light source Retractable Laser mirror ~ 27m long (9 dielectric mirrors) optical line

Controls All motors (24) powered via MIDI interface controlled by a Linux PC (one PC for both system). Potentiometers read-out on ADC channels – BSRTM position read-out on resolver Alignement lasers and Fast cameras power supplies are remotely controlled (Relay and TTL output) Slow cameras and the light power supplies for the calibration target are controlled via the CERN standard BTV card. Gain of the intensifier and the CCD shutter are controlled by DAC and TTL outputs Fast cameras are directly connected to the network and read by a linux server Triggers for the fast cameras are provided by the BOBR card (turn by turn) BSRA signals is acquired by the mezzanine card Triggers for the BSRA and the Pulsed LED are also provided by the mezzanine card BSRTA is interlocked to the BIS

BSRT Calibration via reference target image Slow camera image in pixels Digitalization Calibration Target Spots image projections (here X) Single spot images Calibration Factor pixel / mm Courtesy of F. Roncarolo Performances BSRT/BSRA : run 2009

Fast BCT with BSRT amplitudes& sigmas during stable beams operations

Performances BSRT/BSRA : run 2009 BSRA & Fast BCT during the Ramp up to 1.18TeV