JLab Polarized Source Happex Collaboration Meeting May 18, 2007 P. Adderley, J. Brittian, J. Clark, J. Grames, J. Hansknecht, M. Poelker, M. Stutzman,

Slides:



Advertisements
Similar presentations
Source Outlook High polarization strained-layer photocathodes were activated in both electron guns during the summer shutdown, with usual QE (0.2% at 850.
Advertisements

Lumi Analysis for HAPPEx III / PREX Presented by: Luis Mercado UMass - Amherst 5/18/2007.
CEBAF Photoinjector: What’s new, what’s the same since HAPPEx 2004? What needs to be done? M. Poelker, HAPPEx collaboration meeting, Feb. 18, 2005.
Parity Quality Beam (PQB) April 07, Notes: 1.For each BPM, the wires are: +X+, +X-, +Y+, +Y- 2.There are only two injector BPMs we are not reading:
G 0 PC Installation and Beam Studies June & July 2006 Stephanie Bailey Riad Suleiman.
Noise Analysis for PREx - Pb Radius Experiment Presented by: Luis Mercado UMass - Amherst 6/20/2008.
Commissioning of a Nebraska-type Retarding Potential Mott Polarimeter J. McCarter, M. L. Stutzman, T. J. Gay, K. Trantham, P. Adderley, J. Brittian, J.
1. Describe helicity magnet (HM) system 2. Con’s of PZT’s & Pro’s of HM–type system for BT measurements 3. Other Possibilities, Comments from BT & Planning.
ExperimentEnergy (GeV) Pol (%) I (µA) TargetA pv (ppb) Maximum Charge Asym (ppb) Maximum Position Diff (nm) Maximum Angle Diff (nrad) Maximum Size Diff.
ExperimentEnergy (GeV) Pol (%) I (µA) TargetA pv (ppb) Maximum Charge Asym (ppb) Maximum Position Diff (nm) Maximum Angle Diff (nrad) Maximum Size Diff.
PN12 Workshop JLab, Nov 2004 R. Michaels Jefferson Lab Parity Violating Neutron Densities Z of Weak Interaction : Clean Probe Couples Mainly to Neutrons.
Electronic Cross-talk & Ground Loop Elimination in Injector Riad Suleiman Center for Injectors and Sources.
PQB Photocathode Analyzing Power Study May 19, 2009.
PAVI ’06 Milos May 20, 2006 Kent Paschke – University of Massachusetts Controlling Helicity-Correlated Asymmetries in a Polarized Electron Beam Kent Paschke.
Polarized Source Development Run Results Riad Suleiman Injector Group November 18, 2008.
Real-time Parity Feedback John Hansknecht & Riad Suleiman April 28, 2009.
Parity Quality Beam (PQB) Study Injector Group November 10, 2008.
Hall A Parity Workshop (May 10, 2002), 1 Operated by the Southeastern Universities Research Association for the U.S. Depart. Of Energy Thomas Jefferson.
Collimator June 1-19, 2015HUGS The collimator is placed about 85 cm from the target and intercepts scattered electrons from 0.78° to 3.8° Water cooled.
/SC-PAC Operated by the Southeastern Universities Research Association for the U.S. Depart. Of Energy Joe Grames CEBAF Operations
Nuruzzaman ( Hampton University Group Meeting 1 st November 2011 Beamline Optics Using Beam Modulation for the Q-weak Experiment.
Short Tutorial on Causes of Position Differences… …and what we can do about them (most slides stolen from Cates PAVI ’04 talk)
G 0 Coordinator Update & “To-Do List” Joe Grames William & Mary, June 5-6, 2006  Hall C Beam Line Tasks  Accelerator Preparation Tasks  Beam Halo 
Polarized Injector Status QWeak Collaboration Meeting February 1, 2010 P. Adderley, J. Clark, J. Grames, J. Hansknecht, M. Poelker, M. Stutzman, R. Suleiman,
Operated by Jefferson Science Associates, LLC for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility Polarized Electron Beam.
ExperimentEnergy (GeV) Pol (%) I (µA) TargetA pv (ppb) Maximum Charge Asym (ppb) Maximum Position Diff (nm) Maximum Angle Diff (nrad) Maximum Size Diff.
Parity Quality Beam (PQB) Study Injector Group September 2008.
Thomas Jefferson National Accelerator Facility G0 Collaboration Meeting, June 18-19, 2003 Updates G0 Tiger Laser High Polarization Photocathodes Mott polarimeter.
Helicity Magnets Commissioning February 7, 2007 Hari Areti, Chao, Brad Cumbia, Jeff Dale, Richard Dickson, Joe Grames, Roger Flood, Scott Higgins, Matt.
G 0 PC Installation and Beam Studies Stephanie Bailey Riad Suleiman.
Re-designing the Helicity Board Riad Suleiman Injector Group March 19, 2009.
Source Systematics PITA - type effects The importance of controlling the analyzer-axis –Two Pockels cells –Half-wave plate Position asymmetries –Lensing.
Beam Optics for Parity Experiments Mark Pitt Virginia Tech (DHB) Electron beam optics in the injector, accelerator, and transport lines to the experimental.
Injector Status & Commissioning QWeak Collaboration Meeting May 24, 2010 P. Adderley, J. Clark, S. Covert, J. Grames, J. Hansknecht, M. Poelker, M. Stutzman,
Parity Experiments and JLab Injector Riad Suleiman February 5, 2016.
CEBAF Source and Injector Status PREx-II Collaboration Mtg Feb. 26, 2016 Matt Poelker and Joe Grames Center for Injectors and Sources.
G 0 Project Coordinator Report Joe Grames “Big Picture” Schedule Preparations Polarized Source Injector Accelerator Hall C Accelerator Plans for 687 MeV.
Operated by Jefferson Science Associates, LLC for the U.S. Department of Energy Thomas Jefferson National Accelerator Facility Polarized Electron Beams.
Continuous Electron Beam Accelerator Facility Polarized e-Source - Talking Points for PV experiments: P. Adderley, M. BastaniNejad, J. Clark, S. Covert,
Hall A Collab. Mtg, 6/ 2010R. Michaels, JLAB Lead ( 208 Pb) Radius Experiment : PREX E = 1 GeV, Elastic Scattering Parity-Violating Asymmetry PREX : precise.
R. Michaels, JLab PREX Mtg, July 2008 Recent Cavity Monitor Tests Credit: John Musson, Anna Boehle, Vince Sulkosky Good position & current for 10 nA to.
Pb-Parity and Septum Update Presented by: Luis Mercado UMass - Amherst 12/05/2008 Thanks to Robert Michaels, Kent Pachke, Krishna Kumar, Dustin McNulty.
Parity Quality Beam (PQB) B-Team Meeting September 10, 2008.
Polarized Injector & Upgrade Schedule QWeak Collaboration Meeting November 06, 2009 P. Adderley, J. Clark, J. Grames, J. Hansknecht, M. Poelker, M. Stutzman,
Polarized Injector Update
Parity Violation Experiments & Beam Requirements
Joe Grames Center for Injectors and Sources
with help from Riad Sulieman, Arne Freyberger, and Joe Grames
A Mini-Primer for Parity Quality Beam (as seen from the Accelerator)
G0 Backward Angle Accelerator Preparations
G0 Accelerator Planning Meeting (11/1/05)
Parity Violation Experiments at JLEIC
Parity Quality Beam (PQB)
Noise Analysis for PREx - Pb Radius Experiment
Thoughts on why G0 needed position feedback and HAPPEX didn't
Thoughts on why G0 needed position feedback and HAPPEX didn't
QWeak Collaboration Meeting
G0 PC Installation and Beam Studies
G0 PC Installation and Beam Studies
Qweak Coordination Meeting
Polarized Source Development Run Results
Adiabatic Damping and Parity Quality of Low Energy
Feedback Systems Joe Grames Hall A Parity Meeting Jefferson Lab
Injector Studies Using Superlattice Photocathode
Helicity Magnets for PQB Feedback Helicity Magnets for PZT Booster
Polarized Source: Recent Activities
PQB Meeting March 05, 2009.
G0 PC Installation and Beam Studies
Spot-Size Reduction 4/5/2017.
Injector Commissioning & Optimization
Presentation transcript:

JLab Polarized Source Happex Collaboration Meeting May 18, 2007 P. Adderley, J. Brittian, J. Clark, J. Grames, J. Hansknecht, M. Poelker, M. Stutzman, R. Suleiman, K. Surles-Law

G0 Experience: Laser-Table Setup, Halls Cross-talk, … Helicity Magnets Commissioning Q-weak 250 Hz Helicity Flip Test and the New HV Switch FFB Diagnostic and Measuring Parity-Quality of Beam Paper: “Conducting Parity Violation Experiments at CEBAF” Mott Polarimetry, Load-Lock Gun, and more … Outline

G0 Experience: Laser-Table Setup and Halls Crosstalk

Pockels Cell (PC) HVs, roll, pitch, and yaw should be optimized using the spinning HWP and a scope. No need to do laser work with the QPD in the tunnel. PC x & y should be optimized to minimize the steering with the electron beam; since Jan 07, automated PC X & Y stages were installed. Use PITA and RHWP to zero the charge asymmetry and position differences (with the electron beam). Summary of G0 Experience

IN / PITA=0 Choose: x=0, y=90 mils On the Laser Table

OUT / PITA=0 Choose: x=70, y=90 mils On the Laser Table

OUT / PITA=0 Choose: x=67, y=91 mils With the electron beam

Laser Table Setup and Pockels Cell Alignment (G0 Experience): Laser Table: 1.Check laser spot is round (1mm diameter) and has no tails or satellites and centered on the Pockels Cell. 2.With the spinning HWP in front of LP, minimize the residual linear polarization. Find the optimal +HV, -HV, roll, pitch, and yaw of the PC. Check for both IHWP= IN & OUT. Electron Beam: 1.Establish electron beam in the injector. Find the BPMs pedestals by doing a current scan with the iocse’s set in “Gains off” mode. 2.Turn OFF the PC and take a long run to check for electronic noise. Turn it back ON. 3.You will use IPM1I02 to finish the setup but it’s good to check IPM1I04 and IPM1I06. 4.Do an x & y translational scans for both IN and OUT. Find PC x & y that minimize the PC steering. 5.For IN, do a RHWP at PITA=0 and another one at PITA=-180 V. Find the RHWP angle that further minimizes the position differences and charge asymmetry, you will have to change the PC high voltage to new values. Repeat this for OUT. 6.Now for both IN and OUT you have determined: PC x, PC y, +HV, -HV, RHWP angle. The IA voltage should be 5 V for both IN and OUT. Over time, IN and OUT will drift to their own IA values.

361 MeV, 35 uA January LD 2

Halls A & C Cross-talk Hall A IA Scan (80 uA) Hall C Charge asymmetry and position differences during the Hall A IA Scan (20 uA) 1.Hall A IA Scan:

2.Hall C Charge Asymmetry Width: Hall 20 uA Hall 90 uA Hall 20 uA Hall A OFF

Helicity Magnets Commissioning

MHE0L01V MHE0L03V, MHE0L03H MHE0L02H 110 VAC Isolation Transformer Grounded cage containing electrically isolated helicity magnet controls (VME) Tube protecting Litz magnet wire Injector Helicity Magnet Installation (0L01-0L03) January 5-6, 2004

Calibration Each magnet can kick both helicity states Very small coupling to charge asymmetry (100 times smaller than PZT) The position feedback is not coupled to the charge feedback Can do position feedback on both position and angle in x & y

Position Feedback Test I Introduce large position differences: Magnet 1 at even DAC = 500

Turn ON position feedback: Zero position differences at 0L05 and 0L06

Position Feedback Test II Introduce large position differences: Move the Pockels Cell from its optimal position on the laser table

Turn ON position feedback: Zero position differences at 0L05 and 0L06

Position Feedback Test III: 1-day G0 Production:

Electrical Pick-up One big concern: Will other elements on the beam-line see the helicity signal? Check this with Pockels Cell OFF and Helicity Magnets OFF.

Turn ON magnet 1: Power it to 1000 times its operational value. Look for position differences upstream the magnet

Summary: Helicity Magnets can be used to do position feedback Some improvements are still needed … 1.Increase the DAC resolution by at least a factor of Better selection of BPMs to do feedback on.

Commissioning of the 250 Hz Helicity Flip and the New HV Switch

Changes needed to run at 250 Hz New Pockels Cell HV Switch to replace the old switch The Helicity Board is programmed for either 30 Hz or 250 Hz with Time-Settle of 60 us, 100 us, 200 us, or 500 us Check that tools we need still can work at 250 Hz and 60 us T-Settle: –Parity DAQs –Mott and Moller Polarimeters –Helicity Magnets –… Worked Fine

30 Hz Flip PC OFF, new Switch Issue I: New Switch Electrical Pickup 30 Hz Flip PC OFF, old Switch

Can 60 Hz noise be used to study the beam envelope? Issue II: 60 Hz Position Noise

After moving an ion-pump power supply away from the beam-line More 60 Hz noise search to be continued …

FBB Diagnostic and Measuring Parity-Quality of Beam Richard Dickson

The Accelerator BPM Measurement Developed by Richard Dickson. It uses the FFB diagnostic system to read the BPMs wires. Currently running on iocse9 in Hall A and iocse14 in Hall C. These two IOCs receive only the delayed helicity signal. Each wire is sampled at 1800 Hz: for Hall A (Linac style SEE BPM) each sample is 64 us long and consists of 8 sub-samples each 8 us. For Hall C (Transport style BPM) a single sample is taken at the 1800 Hz rate. Two seconds of data are acquired for each helicity state (~3600 samples). For each five second readout, one second is reserved for computation and output by EPICS. For each sample: –The 4-wires (pedestal subtracted) are added for all the BPMs in each feedback system (eight), and x & y positions are calculated individually for each BPM Data Processing: –Data is summed for any given helicity window and the sum stored for later correlation with the delayed helicity signal. There is a dead time at both beginning and end of the helicity window. Beam trips are filtered away. –This results in roughly 60 samples being summed together in any helicity window. –The helicity correlated sum for a window are then further summed into a running total for that state until approx two seconds of data are acquired per state. –After completion of data acquisition, asymmetries and differences are computed. These are then available via EPICS as well as values that are further digitally filtered.

Measuring Position Differences Helicity Magnet 1 ON +/- 150 DACs

Charge asymmetry and position differences agree to better than 10%. Modify the BPM software to calculate also error bars or RMSs. Hardware and software changes to the Injector IOCs to be able to measure helicity correlated properties in the Injector (iocse11, iocse12, iocse19 – 23 BPMs) – July – Sept. 07 Results FFB DiagnosticHall A Dx_1C08 (um)-8+7 Dy_1C08 (um) Dx_1C12 (um)18-14 Dy_1C12 (um)-43+40

Paper: “Conducting Parity Violation Experiments at CEBAF”

Paper Idea: Conducting Parity Violation Experiments at CEBAF. Target Journal: Phys Rev A or Nuclear Instr and Methods A or Rev of Scientific Instr. First draft due by July 1st, Format: plain text or doc or latex – I will put things together in Latex. Figures: “eps” format. Collaboration (in no particular order, who did I forget?): JLab: Suleiman (POC), Hansknecht, Poelker, Grames, Chao, Kazimi, Bogacz, Dickson … HAPPEx: Paschke (POC), Cates, Kumar, Souder, Michaels, Kaufman, Snyder … G0: Pitt (POC), Armstrong, Nakahara, Bailey … Topics (in no particular order, what did I forget?) Introduction: (Armstrong☺) Recall first parity violation experiments at accelerators Discuss the family of recent parity violation experiments, what makes them different, what makes them possible? How do we do a parity violation experiment? Laser table: Lasers (diodes, ti-sap, fiber) (Poelker ☺) Pockels cell properties Pockels cell alignment techniques (Happex method) Laser table components: IA, pzt, insertable halfwave plate, Rotatable HWP Pockels cell HV switch (Hansknecht ☺) Comparison of commercial PCs (Cleveland, lasermetrics, 10mm, 20mm, RTP) PZT mirror position feedback (Pitt ☺) Flipping schemes (pairs, quartets), delayed reporting (Pitt ☺) Ground loop management (Hansknecht ☺) Photo-cathodes: types, Residual LP, Analyzing power, QE gradients… Accelerator: Beam position monitors (Dickson☺) Beam charge monitors Using the bpm system to measure asymmetries (Dickson☺) Beam envelop management at injector (beam through holes) (Kazimi ☺) Beam envelop matching throughout machine, adiabatic damping (Chao☺): Characterization and control of global transport optics Correction of XY coupling and transport singularity from 100 keV to 60 MeV Tools and methods for minimizing transport irregularities Phase Trombone to minimize position differences at target (Bogacz ☺) Halls Crosstalk and beam loading Feedback Coil Modulation, Dithering vs. Regression Position feedback using helicity magnets (Grames, Suleiman ☺) Summary: (Armstrong ☺) What has been achieved so far in terms of position differences and charge asymmetries? Future experiments (Qweak and Lead neutron radius) and their requirements, trends and need for continued R&D.

Mott Polarimetry, Load-Lock Gun, and more …

Upgrade the 5 MeV Mott DAQ: Reduce background and improve the statistical error bar Install new 100 keV / 500 keV Mott in Injector in August 07 Load-Lock Gun will be installed in July 07 (4 photo-cathodes) Now running using fiber-lasers PC HV Switches and Ground Loop Elimination: (Hansknecht) –Switch Designs –Eliminating Ringing in Pockels Cells used in Parity experiments –Ground loop elimination for Parity experiments

G0 Cavities