Difference between revisions of "PRad Experiment Shift Information"

From Pcrewiki
Jump to navigationJump to search
Line 189: Line 189:
 
#* Check profile using 2C21 and tagger harp scans, and compare the positions and widths with previous scans ([logbook link to be added]). Positions on both harps should be with +/- 1mm, widths on 2C21 should be <~0.1+/-0.05 mm, and on the tagger harp (2C24) <~0.35 +/- 0.1mm.  
 
#* Check profile using 2C21 and tagger harp scans, and compare the positions and widths with previous scans ([logbook link to be added]). Positions on both harps should be with +/- 1mm, widths on 2C21 should be <~0.1+/-0.05 mm, and on the tagger harp (2C24) <~0.35 +/- 0.1mm.  
 
#* Halo counters UPS-L/R and TAG-L/T/T2 should be ~few Hz/nA [logbook link to be added]
 
#* Halo counters UPS-L/R and TAG-L/T/T2 should be ~few Hz/nA [logbook link to be added]
#* Check HyCal HV is OFF
+
#* Check HyCal HV is On
 
# <b> Send beam to the Faraday cup</b>
 
# <b> Send beam to the Faraday cup</b>
 
#* Tune beam profile on (2H02A harp ? ). The required beam profile at (2H02A harp)? is: X-width <~ ?? mm, Y-width <~ ?? mm.
 
#* Tune beam profile on (2H02A harp ? ). The required beam profile at (2H02A harp)? is: X-width <~ ?? mm, Y-width <~ ?? mm.

Revision as of 18:19, 14 May 2016

Shift Documentation

Experiment Safety Documentation (Required reading for all shift takers!)

Shift Schedule

Checklist

Hot Checkout

Shift Checklist

Beam Time Accounting

Run Spreadsheet 2016

Procedures

Manuals

JLab Logbooks

{{#switchtablink:Short Term Schedule}}

Short Term Schedule

PRad installation starts April 25, 2016

Installation Schedule

PRad 2016 run, May 13th to June 21st.
to be added.
Beam energy ? to be added.
Important: Document all your work in the logbook!

RC: Ashot Gasparyan (Bluejeans info for Run Meetings at 4:30 )

  • (757) 575-7540 (cell)
  • 9-575-7540 from Counting Room

PDL: Eugene Pasyuk

  • (757) 876-1789 (cell)

Run Plan for May 13 - June 20, 2016:

Units are PAC days

  1. Photon Beam Tuning (~1 day)
    • HyCal with GEM on Transporter and off the beam line;
    • Target cell off the beam line;
    • Tagger radiator off, collimator off;
    • Tagger magnet on (for Ee = 2.2 GeV).
    1. establish a good electron beam (Ee = 2.2 GeV, Ie = 5 nA) on the tagger dump;
    2. take electron harp scans 2C21A and 2C24A, check the position, widths and peak to tails ratio;
    3. study beam halo by setting the harp wire in the tail region and ramping beam current up to 100 nA;
    4. lower beam current to 0.1 nA
    5. insert radiator 10-5 r. l.;
    6. check tagger counter scalars;
    7. setup MOR logic for calibration (gain equalizing) trigger T5 only;
  2. HyCal Gain Equalizing, GEM efficiency measurements (~2.5 days)
    1. establish HyCal temperature to T=16o and keep it stable;
    2. collimator in, 6.4 mm;
    3. target cell off the beam;
    4. HyCal is in “Bottom Right” position;
    5. 1”x1“l scintillator counters are installed in the beam line just after the Vacuum box and surveyed;
    6. establish good timing for the beam scintillator counters (record TDCs and ADCs for them)
    7. establish good timing for the HyCal readout;
    8. establish good timing for the GEM readout;
    9. adjust trigger delays, if necessary;
    10. set the gain value: E=2 GeV to ADC=4000 channel;
    11. start the gain equalizing process: scan to each module’s center, show the anode and dynode ADC distributions on the computer screen, by changing the HV set anode ADC=4000 channel (with ~ 5% precision), record the dynode signal value, save the HV, ADC and anode/dynode ratio, store the data from GEM, HyCal and trigger scintillator detectors;
    12. repeat part (k) for all HyCal modules (~15 hours).
  3. HyCal Gain Calibration, GEM efficiency measurements (~3.0 days):
    1. run HyCal with HV unchanged for ~ 3 hours after the “Gain Equalizing” in the part #2;
    2. the beam and the beam line are the same as in the part #2 “Gain Equalizing”;
    3. tagger trigger: all T1-T19 tagger counters and several T-counters from the middle part, DAQ readout without the “sparsification” option;
    4. start from the “Top Left” position and with a continuous motion (~0.3 min/module) “illuminate” all modules, store the data (HyCal + GEM) with the HyCal’s X,Y positions from EPICS;
    5. stop the HyCal motion by the end of each row, make new DAQ run with pedestals and LMS, store the files;
    6. repeat item (e) for all rows of HyCal, and store the data;
    7. run on-line calibration programs for the gain constants, store the data.
  4. Setup configuration, change from calibration to run:
    • HyCal is off from the Transporter to the run cart, assembling the beam line, check the vacuum levels in the beam line, engineering survey (~4 days).
    • Request for the Beam Energy Change to Ee = 1.1 GeV (0.5 day, during the same time).
  5. Electron Beam Tuning and Target Commissioning (~4 days)
    1. target cell off the beam line, no gas flow in the cell and chamber;
    2. collimator out;
    3. set threshold energy for the HyCal trigger E ~ 0.5xEe ;
    4. request electron beam (E = 1.1 GeV, I = 1 nA);
    5. take harp scans 2C21A, 2C24A and 2H01, check position and widths, establish a good electron beam and fix the beam line parameters;
    6. record HyCal trigger rate with no cell and no gas flow, take one short DAQ run (GEM+HyCal);
    7. electron beam off; insert the target cell in the beam line, still empty, ask for the beam back;
    8. target cell is empty (no gas flow into the cell and chamber);
    9. record HyCal trigger rate, take one short DAQ run;
    10. gas flow in the cell (Pcell = 6 torr, Pcham = 5 mtorr);
    11. record HyCal trigger rate, take one short DAQ run;
    12. move the cell on X-axis by +/- 3 mm with 0.2 mm steps and record the HyCal rate;
    13. move the cell on Y-axis by +/-3 mm with 0.2 mm steps and record the HyCal rate;
    14. change the cell angles and record the HyCal rate, get optimal cell direction;
    15. center the cell in the beam line based on those measurements;
    16. no gas flow into the cell and chamber, record the HyCal rate;
    17. gas flow into the cell (Pcell = 6 torr, Pcham = 5 mtorr);
    18. record HyCal trigger rate, take one short DAQ run;
    19. gas flow into the chamber only (Pcell = Pcham = 5 mtorr);
    20. record HyCal trigger rate, take one short file with ADCs (in-beam residual gas effect);
    21. If there is no sizable effect between cell in/out, skip following steps.
    22. beam off, 12.7 mm collimator in, target cell in, ask for beam;
    23. no gas flow in cell, record HyCal rate;
    24. gas flow in the cell (Pcell = 6 torr, Pcham = 5 mtorr), record HyCal rate;
    25. beam off, insert 6.4 (?) mm collimator in, take beam and repeat items (w) and (x);
    26. make a decision about the size of the collimator.
  6. Data taking with Ee = 1.1 GeV (5 days)
    1. beam intensity: Ie = 10 nA;
    2. collimator in (with the diameter defined in 5 (z);
    3. HyCal trigger is set, DAQ is ready, all slow control readout is ready;
    4. target cell in with maximum density (2.x1017 H/cm3);
    5. take data for 2 days, record all information on disk and on tape;
    6. no gas in the cell, take data for 0.5 day (empty target run);
    7. gas in the cell, run for 2 days (same as in (e));
    8. no gas in the cell, take data for 0.5 day (empty target run);
  7. REQUEST FOR Beam Energy CHANGE to Ee = 2.2 GeV (0.5 day)
  8. Data taking with Ee = 2.2 GeV (6 days)
    1. intensity: : Ie = 10 nA;
    2. collimator in (with the diameter defined in 5 (z);
    3. HyCal trigger is set, DAQ is ready, all slow control readout is ready;
    4. target cell in with maximum density (2.x1017 H/cm3);
    5. take data for 2 days, record all information on disk and on tape;
    6. no gas in the cell, take data for 0.5 day (empty target run);
    7. gas in the cell, run for 2.0 day (same as in (e);
    8. no gas in the cell, take data for 0.5 day (empty target run).


General Instructions:

Locking up the hall (3:00 pm)

  • At (4:00)pm check the status of the activities in the hall and notify RC if there are potential delays for the lockup at (4:00pm)
  • Work with the hall work coordinator (Doug Tilles or his designee) to make sure hall is ready for sweep : vacuum is good, magnet power supplies are turned ON and on remote, LCW is on.
  • Make sure experts, beamline, HyCal, GEM, and slow controls, checked their systems befor the lockup.
  • When ready notify MCC to start seep and lockup of the hall.
  • Make sure all necessary monitoring GUIs are up and running.
  • Make sure beam viewer screens are up.

Acceptable Beam Conditions:

  1. To establish good beam conditions:
    • First send beam to the tagger dump (ask MCC to turn ON the tagger magnet).
    • Check that beam type is "Photon" on the BTA GUI (can be opened from "Beam" GUI).
    • Check the beam position on the tagger viewer, it should be approximately in the centre of the screen
    • Check profile using 2C21 and tagger harp scans, and compare the positions and widths with previous scans ([logbook link to be added]). Positions on both harps should be with +/- 1mm, widths on 2C21 should be <~0.1+/-0.05 mm, and on the tagger harp (2C24) <~0.35 +/- 0.1mm.
    • Halo counters UPS-L/R and TAG-L/T/T2 should be ~few Hz/nA [logbook link to be added]
    • Check HyCal HV is On
  1. Send beam to the Faraday cup
    • Tune beam profile on (2H02A harp ? ). The required beam profile at (2H02A harp)? is: X-width <~ ?? mm, Y-width <~ ?? mm.
    • Check the beam spot on chromax viewer
    • Positions on BPMs must be close to what they were before [logbook link to be added]
    • Insert the target without turning off the beam. ??
  2. Before accepting beam, make sure all the previous conditions are met. Always read previous log entries, compare settings of BPMs and correctors with previous settings.

Every Shift:

  1. Follow run plan as outlined by RC
  2. If any concern about beam stability, ask MCC if orbit locks are on (they should be).
  3. Keep shift summary up to date in HBLOG. Record all that happens.
    • Check on white board all scalers, strip charts and monitoring plots that need to be logged regularly
    • Document any beam condition change and send scaler GUIs to HBLOG
    • Fill and submit the [logbook link to be added, shift checklist in the logbook]
  4. Perform 2H02A harp scan once per shift or when beam conditions have changed, based on beam monitors (BPMs, halo rates, beam-viewer)
  5. With any issue contact On-Call Experts or RC

Every Run:

  1. Be sure LMS phase number is 1 (can be seen on camera :hallbcam09.jlab.org, you can manually change the LMS phase)
  2. LMS phase number will automatically change to 2 after taking 20,000 events.
  3. Record LMS phase number once during taking the physics events (event number > 30,000 on CODA).
  4. Record any LMS phase change during the production run, and manually change the LMS phase to an even number (2, 4, 6).
  5. After "Prestart" but before "Go", (to be added )
  6. After "Go": (to be added)
  7. Update the run spreadsheet on [logbook link to be added].
  8. See the whiteboard for everything else that should be done on a per-run basis.

CODA Instructions:

  1. On clonpc14, open a terminal, check if EXPID and SESSION is set correctly.
    1. >echo $EXPID (should return prad)
    2. >echo $SESSION (should return clasprad)
    3. reset the two variables if they are not correct
    4. >setenv EXPID prad
    5. >setenv SESSION clasprad
  1. open run control "runcontrol -rocs"

HyCal Instructions:

  • HV must be OFF during FIRST delivery of beam to the Faraday Cup after tuning to the Tagger Dump.
    • Only after stable beam established to Faraday Cup can HV can be turned ON.
  • HV should be OFF when running beam studies with Struck scalers with 1 mm wire or tuning collimator position.
  • HyCal HV control
    • ssh pradrun@prad , type: primexHV , password is PUs&r.

Online monitoring Instructions:

  1. HyCal online monitor
    • on clonpc15 , type : cd PRad/PRadEventViewer/ [Enter].
    • then type: source setup_env_prad.csh [Enter], then: type: ./PRadEventViewer [Enter].
    • now you should see the GUI of online monitor, at menu choose online mode -> start online mode
  2. GEM Online Monitor
    • GEM Online Monitor is installed on clonpc13, locate this pc, you should see the label at the bottom side of one Screen Monitor.
    • go to : ~/PRad/GemView/
    • then: source set_env.csh
    • then: ./GemView
    • There will be two GUI windows, first one for all individual APVs, on this window, there are 72 separate histograms; the second one for the decoded hit information.
  3. Gem APV online monitor

{{#switchtablink:Long Term Schedule|Click here to go to the next tab...}}


Long Term Schedule

Run Coordinator
May 13 - May 19 Ashot Gasparian
May 20 - May 26 Mahbub Khandaker
May 27 - Jun 02 Eugene Pasyuk
Jun 03 - Jun 09 Mahbub Khandaker
Jun 10 - Jun 16 Dipangkar Dutta
Jun 17 - Jun 21 Ashot Gasparian
Physics Division Liaison
May 13 - Jun 21 Eugene Pasyuk
Beamline
May 12 - Jun 21 Ashot
SlowControls
May 12 - Jun 21 Ashot
HyCal
May 12 - Jun 21 Li Ye
GEM
May 12 - Jun 21 Xinzhan Bai
May 12 - Jun 21 Weizhi Xiong
DAQ
May 13 - Jun 21 Chao Peng



Spring 2015 Final @ 1 GeV:

.


{{#switchtablink:Monitoring |Click here to go to the next tab...}}


Monitoring

Webcams:


Accelerator:

Slow Controls:


Online & Offline:

  • [GEM APV monitor screen shot]
  • [GEM online monitor screen shot]
  • [HyCal online monitor screen shoot]


{{#switchtablink:Phone Numbers|Click here to go to the next tab...}}

Phone Numbers

System/Person Pager/Phone Number
Run Coordinator (757) 575-7540 (cell)
Physics Div. Liaison (757) 876-1789 (cell)
MCC-OPS 7048
Crew Chief 7045
Gate House Guard 5822
DAQ/Online (Chao Peng) (919) 667-6867 (cell)
HyCal (Li Ye) (757) 291-9896 (cell)
GEM (Xinzhan Bai) (434) 422-2809 (cell)
Slow Controls (757) 748-6922 (cell)
Beamline (757) 303-3996 (cell)
Engineering (757) 748-5048
Hall-B Floor 5165
Hall-B Space Frame 5170, 5171
Hall-B Forward Carriage 5371
Hall-B Counting Room 5126, 5244, 5246, 5247
Hall-B Gas Shed 7115

<headertabs/>