Alexandra, Shoshana, Arnaud, Fil, Dean (remote)
Today we completed the balancing of the CRS with a period of 61s (or 16.4mHz, which is our target frequency), aligned and tuned the HOQIs (with >75% fringe visibility) and connecterized the picomotor to the mighty mouse connector. Tomorrow, after verifying the balancing and alignments have not changed, we will mount the HOQIs to the CRS, which will complete this first assembly.
In detail :
Note1: We did break a set of flexures during balancing today (SN 18 and 11)
Note2: We could not get good fringe visibility on a 3rd HOQI (max 60%) we tested. We will have to get back to this one.
Note3: The Right HOQI has a PD wire that seem to have been pinched during assembly (see last photo). This doesn't seem to be an issue, we will just have to be careful when routing that it doesn't touch the baseplate.
Belated, as usual.
We continued HAM2/3/1 alignment. Things are making more sense now after realizing that RM1 and RM2 slider polarity was wrong but we're still finding things.
1st attempt: We rotated IM1 to relieve RM2 YAW (IM1 y -987->-687 i.e. +300 from Tuesday value), aligned PRM so the beam retroreflects (but didn't touch up other IMs in the interest of time). After some confusion it worked and we were able to center REFL ASC sensors without railing RM2. Happy. (See ASCREFL_centered_RMs_dont_rail.png. If you do the math using flash peaks, REFL_A PIT=0.034, YAW=0.013, REFL_B PIT=-0.0097, YAW= -0.017, so it was very good.)
2nd attempt: Encouraged, we proceeded to center the beam on the IFI output baffle using IM2, steer the beam to the nominal beam position in front of PRM using IM3, steer the beam to the nominal position in front of PR2 using IM4 (which moves the beam position on PRM by a small amount but we didn't bother to iterate), and finally aligned the PRM so the retroreflection is restored. We were able to center REFL ASC sensors without railing RM2. Happy again. (eod.png, REFL_A P= 0.034, Y=-0.009, REFL_B P=-0.023, Y=-0.022.)
We looked at the beam position on IFO REFL baffle and it was off in YAW, so we changed the baffle position slightly in +Y direction.
We didn't change IM1-IM2 line, which means that the alignment into HAM1 should not have changed assuming that the PRM was retroreflecting, but the YAW offset necessary for RM2 to center the ASC sensors in the 1st and 2nd attempt were very much different.
| all numbers are in urad |
1st attempt (PRM P, Y = -1165, 320) |
2nd attempt (PRM P, Y= -1165, -300) |
2nd [P,Y] - 1st [P,Y] |
| RM1 [P, Y] | [-243, -45.3] | [-257, -114] | [-14, -68.7] |
| RM2 [P, Y] | [930, -989] | [950, -1489] | [20, -500] |
In the 2nd attempt, RM2 Y offset changed by negative 500urad and the DAC output of two of the RM2 coils reached ~107 million, which is about 80% of the DAC range. That's closer than I'd be comfortable with before closing down the chamber.
It turns out that this is consistent with our retroreflection accuracy which I claimed to be "like +-50urad" in PRM rotation (not the beam rotation) in alog 90451.
Equivalent of positive PRM rotation of 50urad in YAW is replicated by the combination of physical negative 55urad for RM1 and physical negative 380urad for RM2 (note that the sliders for RMs as of now has the opposite sign as the physical rotation).
If retroreflection is off in terms of PRM YAW rotation by +-50urad, when the REFL ASC sensors are centered, RM2 YAW would be off by +-380urad from what would be required to center the beam that is truly retroreflecting. See attached script. 500urad difference between two attempts is consistent with that.
On top of that, it's possible that +-50urad error estimate is too optimistic. We set the PRM angle by centering an iris (placed between IFI input and IFI HWP) to the forward going beam and centering the back propagating beam on the back of the iris. The basis for the accuracy is that we could start seeing how the circumference of the back of the iris is unevenly illuminated by the back-propagating beam when we gave the PRM 50urad offset, but the beam is always moving in YAW and sometimes rather slowly, so we have to eyeball the average beam position.
We don't know if the 2nd attempt was closer to the true retroreflection or, for that matter, if the true retroreflection is "on the other side of" the 2nd attempt relative to the 1st.
As such, it's prudent to relieve RM2 YAW offset further.
Relieve RM2 further by giving IM1 a positive 300urad YAW rotation. IM2, IM3, IM4 and PRM should be readjusted accordingly.
IM1 YAW offset hasn't changed much in the past 2 years except for this week, and we'll go back to that neighborhood. Even though this means that the beam on IFI input baffle will be off-centered (probably it's been like that for years), I'm absolutely sure that the forward-going beam won't be clipped, I'm also quite sure that the clipping-like thing of the IFO REFL beam on the IFI input baffle won't come back as far as PRM is retro-reflecting.
We might have to move the IFO refl baffle again.
We WILL move the IM4 baffle because whenever the beam is aligned to the nominal position in front of PRM the beam is too close to the +X edge of the baffle.
(Betsy, Randy, Jim, Tyler, Travis, Jordan, Gerardo, Mitchell, Corey, Ibrahim, Danny on watch)
Ibrahim and crew prepped the BBSS yesterday for flight.
This morning Jim and I finished cable routing and stowing and made some final pre-flight preps.
This afternoon, we successfully flew the BSC2 Cartridge from the West Bay Test Stand to the BSC2 chamber and installed in onto the support tubes via the dome.
Tyler, Travis, Jordan, Corey, Jim in suits at the Test Stand for lift off
Randy on the Crane controls
Mitchell, Gerardo, Betsy in support
Jim and Ibrahim in the chamber for the lowering, alignment and support tube bolt attachments
Danny on Safety watch
More pictures to follow, but attaching a good one of the LVEA perspective actross the West bay and of Danny monitoring the flight.
Well done all, big job complete. Now tune-up, align and close! Easy button.
TITLE: 06/04 Day Shift: 1430-2330 UTC (0730-1630 PST), all times posted in UTC
STATE of H1: Planned Engineering
INCOMING OPERATOR: None
SHIFT SUMMARY:
The LVEA is LASER HAZARD
BSC2 cartridge flown from test stand and into BSC2 DONE
SPI PSL pickoff shutter installed DONE
HAM2 B+K measurement DONE
LOG:
| Start Time | System | Name | Location | Lazer_Haz | Task | Time End |
|---|---|---|---|---|---|---|
| 14:28 | FAC | Kim | LVEA | n | Tech clean + restocking garb | 15:38 |
| 14:50 | Betsy | LVEA | YES | Gathering headsets | 15:04 | |
| 15:05 | SAF | Betsy | LVEA | YES | Transitioning LVEA to LASER SAFE | 15:20 |
| 15:37 | Betsy | LVEA | n | Looking for mic box | 15:49 | |
| 16:07 | EE | Fil, Richard | LVEA | n | Looking at 24V (Richard out 16:36) | 17:59 |
| 16:08 | SEI | Jim, Shoshana | LVEA | n | Test stand ISI cabling (Shoshana out 17:09) | 18:00 |
| 16:12 | FAC | Kim | LVEA | n | Tech clean + restock | 17:14 |
| 16:35 | SEI | Mitchell, Arnaud | MY | n | Shopping for cables | 17:06 |
| 16:45 | SUS | Betsy | LVEA | n | Test stand work | 18:04 |
| 16:49 | Richard | LVEA | n | Knocking ladder out from under Fil | 17:34 | |
| 17:21 | Tom, Radhika | LVEA | n | Tour | 18:15 | |
| 17:25 | Mitchell | LVEA | n | Putting stuff away in mega cleanroom | 17:32 | |
| 17:26 | FAC | Randy | LVEA | n | Prepping for craning | 18:56 |
| 17:31 | FAC | Kim | LVEA | n | Tech clean | 17:59 |
| 17:47 | SEI | Arnaud, Shoshana, Alex | H2 PSL | n | CRS work (Alex out 19:15) | 20:37 |
| 18:00 | EE | Fil | LVEA | n | Cabling | 20:01 |
| 18:00 | SEI | JIm | LVEA | n | Test stand SEI cabling | 18:04 |
| 19:24 | SPI | TJ, Jeff | LVEA | n | HAM2 B+K measurements (TJ out 21:53) | 21:59 |
| 19:39 | FAC | Randy | LVEA | n | Cartridge craning | 21:39 |
| 19:42 | Rahul | LVEA | n | Looking for socket wrench head | 19:56 | |
| 19:54 | Corey | LVEA | n | Filming cartridge install | 22:15 | |
| 19:56 | SUS/ISI | Betsy, Jim, Jordan, Ibrahim, Mitchell, Travis, Danny | LVEA | n | Cartridge flight (Mitchell out 21:56)(Danny,Travis out 22:03)(Jordan out 22:05) | 22:07 |
| 20:07 | FAC | Gerardo, Travis, Tyler | LVEA | n | Cartridge install | 21:37 |
| 20:28 | CRS | Alex | H2 PSL | n | CRS work | 20:37 |
| 20:33 | PSL | Jason, RyanS | LVEA | n | Installing SPI shutter in PSL enclosure | 22:04 |
| 22:15 | EE | Fil | LVEA | YES | CS HEPI pump controller work | 23:08 |
| 22:20 | CRS | Shoshana | H2 PSL | y(local) | CRS work | 00:20 |
| 22:36 | CRS | Arnaud, Alex | H2 PSL | y(local) | CRS work | 00:06 |
| 22:36 | SAF | Camilla | LVEA | YES | Transitioning LVEA to LASER HAZARD | 22:48 |
When I hammered the below table "beard" baffle on May 26 (alog90335), something wasn't correct with the way I saved the data or my configuration or something else. Either way, Jeff and went in today and hit that as well as the SPI ISIJ assembly with and without the cylindrical shroud (D2500030). Preliminary results are looking much better, so I'll clean those up and post them soon with a whole writeup.
In 89751 we found we could not trust the FC1 top mass osems for an accurate FC1 alignment, we then set an FC REFL iris on SQZT7 to help us capture correct FC1 alignment 89771, as we thought we couldn't trust any stage of the FC1 suspension. But this iris also depends on ZM1,2,3 which is confusing.
Since the FC1 issues this week, we checked that the sliders are working as expected 90466.
We have decided to not use the FC REFL iris to set FC1 as it puts FC1 in a very different position to O4. We will align FC1 using the slider positions from O4. This is as in the December vent, between the O4 under-vacuum and the vents, doors off time, the FC1 WIT channels were within ~10-20urad, see top two rows of table below. Additionally in February when we had our FC1 trouble, we though that we would have been fine if we had never touched the FC1 sliders.
From August to November, the FC1 M3 Pitch WIT drifted between 175 and 195urad so where we are currently at 170urad is not far outside of this range.
| FC1 | Temp (Zone 4 G) |
Pitch | Yaw | ||
| Slider | M3 WIT | Slider | M3 WIT | ||
| Under-VAC, O4, Nov 8th 2025 | 67.6degF | 225 | 195 | -153 | -202 |
| Vented, Dec 9th 08:30 UTC | 71.2degF | 231 | 181* | -153 | -201 |
| Vented, 04 June 2026 16:45UTC When tring to use 89694 (good FC flashes alignment) for ZMs and FC REFL iris for FC1 |
71.1degF | 217 | 169 | 52 | 38 |
| Vented, 04 June 2026 20:41UTC Back to O4 sliders. |
71.3degF | 225 | 170 | -153 | -202 |
* drifted down to 162 over next week
We have put ZM1,2 3 back to their O4 sliders as a starting place, you can see below that the top mass osems say this is not the same location as when under vacuum but we don't think this is trustworthy. We will change these alignments as needed to get the FC beam to retroreflect off FC1.
| To match 89694 (good FC flashes alignment). 04 June 2026, 16:45UTC |
O4 time. Nov 8th 2025, 20:30UTC |
Sliders back to O4 values 04 June 2026, 21:15UTC, plot |
||||
| Sliders | WIT* | Sliders | WIT* | Sliders | WIT* | |
| FC1 P | 217 | 169 | 225 | 195 | 225 | 171 |
| FC1 Y | 52 | 38 | -153 | -202 | -153 | -202 |
| ZM1 P | 530 | 420 | 0 | -390 | 0 | -253 |
| ZM1 Y | 0 | 417 | 0 | 432 | 0 | 429 |
| ZM2 P | -429 | -399 | -196 | -273 | -196 | -183 |
| ZM2 Y | -132 | 184 | -235 | -43 | -235 | 101 |
| ZM3 P | -474 | -422 | -190 | -68 | -190 | -57 |
| ZM3 Y | -367 | -282 | -300 | -463 | -300 | -261 |
*WIT is M3 WIT for FC1 but for ZMs there is no bottom mas WIT so we're using M1_DAMP_{P,Y}_INMON
R. Short, J. Oberling, J. Kissel
This afternoon we installed the shutter in the SPI pickoff path on the PSL table. We installed it in between the 2 SPI lenses. The cable was tied down with some dog clamps and cable ties, and we checked to make sure it was well clear of all known beams (it doesn't really look like it in the picture, but the shutter cable is ~3 inches away from the ALS beam and cannot drift into its path). Once we ran the cable outside the enclosure, Jeff plugged it into the driver and we ran several on/off tests, with the shutter successfully actuating as expected, every time. I'll update the as-built PSL table layout to include the shutter.
[Tom, Oli]
Summary: There is a polarity flip between the BOSEM and QOSEM coils due to the wiring of the QOSEM flexi-circuit. To maintain consistency with existing BOSEM controls a sign flip should be implemented in CDS coil drives.
When commissioning the damping loops for the BBSS on the teststand, we noticed that there was a sign flip required in the QOSEM coil drive for the loops to be stable, when copying over the existing BOSEM damping. See LHO alog 90441. After some investigation, this sign flip is due to a polarity flip in the wiring from the coil drivers to the QOSEM coils. The QOSEM coils are wound in the same direction as the BOSEM coils, however on the QOSEM flexi-circuit I accidentally flip the coil connections with respect to that of the BOSEM. All QOSEM version to do date suffer from the coil sign flip.
In the attached screenshot, we see the BOSEM flexi-circuit has this weird flip between the coil pads (on the very left) and the uDB9 connection. I did not copy this flip over to the QOSEM flexi, which has caused this coil polarity flip.
J. Oberling, P. Thomas, R. Short
TLDR - Following the power outage(s) over the weekend, we've successfully restored the PSL.
Monday morning, Jason started by turning back on the benchtop power supply behind the PSL racks in the LVEA which powers CB2 and then restarted the Beckhoff computer in the diode room (we've seen in the past that the Beckhoff computer needs everything to be powered on before it boots so that it can "see" everything). However, even though the EPICS IOC auto-started when the computer came up, the PLC did not, so we were unable to bring the system up at first. I was able to find and launch the correct PLC (which, for our future reference is in the "Projekt_LIGO_240124" folder), but we noticed after the GUI came up that we were missing the amplifier PD WD, one of the newest additions to the software. Thinking we had an old version of the software somehow, we called in Patrick, who reminded me that instead of just starting TwinCAT in run mode, I should have also logged in and started the PLC to pull in all the updates to the code. This brought the Beckhoff computer back to full functionality, and we were able to bring the laser up without issue after clearing the site laser interlock (which wouldn't clear until the Beckhoff computer was functional). As usual, our calibration settings and operating hours for the NPRO, amps, and chiller were lost with the computer reboot, so we found the last saved screenshot of the settings table we took after the last outage (alog88368) and used it repopulate the table. The operating hours were all fixed also since we could trend back what they were before the outage. A new screenshot of the settings table is attached.
Relocking the PMC went without issue, and it's now been coming up to temperature since Monday with the transmitted and reflected powers slowly settling out. I can tell by the camera spots and the lower transmitted power that some alignment is needed into the PMC, which we can do eventually. The PMC relocked at a temperature a couple degrees cooler than before, which we've seen before, so this slightly different operating point isn't too surprising.
Trending the enclosure temperatures shows that the environmental controls seem to have come back no different than before the outage.
Before starting the cage baffle install we took a reference of the optical levers (with ISI locked) such that later when we unlock the quad we can tell if there was a significant shift. NB there were small shifts at LLO when we installed these baffles and we are still baffled as to why. Since they attach to the cage, which is connected to the ISI and the ISI gets rebalanced, it's unclear why they'd shift more than some 20-30 urad.
I took one reference pre-vent, circa Nov 28, when we were still locking full ifo. The second reference is recent, at air, with the ISI locked.
| ITMX | pre-vent | vent, pre-work |
| date | Nov 28 '25 | Jun 3 '26 |
| sliders P,Y | -113, 110 | -35, 94 |
| oplev P | 8 | 0 |
| oplev Y | 6 | 0 |
| oplev sum | 3400 | 3200 |
| ITMY | pre-vent | vent, pre-work |
| date | Nov 28 '25 | Jun 2 '26 |
| sliders P,Y | -14, -18 | -90, -16 |
| oplev P | -30 | 0 |
| oplev Y | -15 | 0 |
| oplev sum | 9000 | 9000 |
Ibrahim, Oli, Thomas, Betsy, Jim, Mitchell
Here's the analyzed data for the QOSEM transfer functions, as well as a comparison of transfer functions between the BOSEMs and the QOSEMs for the BBSS on the test stand. They're pretty similar.
I didn't modify the analysis script yet since we are currently only using the X of the QOSEMs, so I just exported the M1_OSEMINF_{F1,F2,F3,LF,RT,SD}_X_OUT_DQ channels in theplace of the M1_OSEMINF_{F1,F2,F3,LF,RT,SD}_OUT_DQ channels.
Data
/ligo/svncommon/SusSVN/sus/trunk/BBSS/H1/BS/SAGM1/Data/2026-06-01_1700_tfs/2026-06-01_1700_H1SUSBS_M1_WhiteNoise_R_0p02to50Hz.xml
r13024
Results
/ligo/svncommon/SusSVN/sus/trunk/BBSS/H1/BS/SAGM1/Results/2026-06-01_1700_tfs/2026-06-01_1700_H1SUSBS_M1_ALL_TFs.pdf
r13024
/ligo/svncommon/SusSVN/sus/trunk/BBSS/Common/Results/allbbss_BBSS_teststand_BOSEMsvsQOSEMs/allbbsss_BBSS_teststand_BOSEMsvsQOSEMs_ALL_TFs.pdf
/ligo/svncommon/SusSVN/sus/trunk/BBSS/Common/Results/allbbss_BBSS_teststand_BOSEMsvsQOSEMs/allbbsss_BBSS_teststand_BOSEMsvsQOSEMs_ALL_ZOOMED_TFs.pdf
r13025
Patrick T., Filiberto C., Richard M., Dave B., Jonathan H., Jim W. WP 13262. The summary of the work is detailed in the permit. There were some additional code changes needed to fix a scaling issue and some others made to clean things up. The only thing that should be left is to restart the DAQ to remove three channels. IOC code: https://git.ligo.org/cds/software/ads/ads-utils 9b98c481d6f9ab129fa4bc54475e05383d304aa2 https://git.ligo.org/cds/software/ads/epics7-ads c72c97eb4d1558d9de5c03234e90c8c651aab99b (in container), 9e5a10a014beeb0cb7b021649c459a0fa0488be7 (used to generated EPICS db) PLC code: https://git.ligo.org/cds/ifo/beckhoff/io 65f59557c1fefc90f4befc9338bd29a1fb27d8e0 https://git.ligo.org/cds/ifo/beckhoff/lho-hepi 3fd31d58fafc08e4d5a84dce1d0d57dfd8b6b74e
Shoshana, Alexandra, Jim, Arnaud, Fil
Yesterday's activity log:
| Nominal | New Fork (D2300094-v4) | New Fork + D230099 type2 (4g vs 2g type 1) | |
| Z | +186um | +189.8um | +229.2um |
| X | -2.4um | -3.75um | -3.75um |
The monitor channels in the CRS pre-amp D2500390 are connected up incorrectly. The following table details the current connections: HoQI/TEST POINT CONNECTION - MON CHANNEL CONNECTION HA PDS - HD PDS HA PDC - HA PDC HA PDMC - HD PDMC HB PDS - HC PDS HB PDC - HB PDC HB PDMC - HC PDMC HC PDS - HB PDS HC PDC - HC PDC HC PDMC - HB PDMC HD PDS - HA PDS HD PDC - HD PDC HD PDMC - HA PDMC
A. Effler, R. Schofield, R. Short
All of the new SLiC baffles have been installed on both ITMX and ITMY (both the test mass and compensation plate sides), but the CP side of ITMX still will need some alignment positioning touched up. Earthquake stop brackets on the test mass faces for both quads were also swapped out to accommodate for the new baffles.
One person always remained near the open door in BSC1 while others were around the corner working in BSC3, and oxygen monitors were worn out of an abundance of caution.
Sheila, Begum, Ryosuke, Camilla
Sheila checked that FC1 is now working as expected but was not in May 90462.
Started the morning by setting FC1 to the FC REFL iris ZM1,2,3 sliders set to 90183 (when Sheila had the beam on SQZT7), we then set irises after ZM1 and ZM3. Doing this clipped the return beam on B:L1 aperture, this is expected as we could not get the return beam through the OPO when FC was aligned in Feb. Later we realized that this doesn't make scene, so set ZM1,2,3 sliders set to when we had good FC flashes in 89694 and then FC1 was moved to get the beam centered on the FC REFL iris, again this clipped the return beam on B:L1 aperture but the beam was considerably higher at the ZM3 iris than when we originally set it. Around or a little higher than 6.25". Tomorrow we will fully think this though and compare to O4 times.
We locked the OPO SUS iteratively looking at the beams off the OPO. It was finally lock with the FC REFL beam getting to the second iris but not centered and when we changed the alignment to the IR SQZT7 alignment, the beam made it through both irises when closed.
Sheila, Begum, Ryosuke then took beam profiles of the beam after ZM1 and ZM2 with the borrowed Phasics camera.
From 60068: If the beam coming out of VOPO is level with ISI surface, it's nominally 5.532" high, the beam travels up from ZM2 toward ZM3 to raise the beam height by 0.756".
So the beam would be 6.288" at ZM3 and FC1. This matches with our beam height measured yesterday at the ZM3 iris.
As the OPO has been locked in the same alignment is it's free hanging alignment, when the sliders are at ZM4 (P: -453.4, Y: -1275.0) and ZM5 (P: -258.0, Y: -761.0) as attached screenshot, when the beam is centered on the ZM4 iris the alignment can be recovered to the SQZT7 and the IR path irises.
Before locking down the ITM suspensions as part of the new baffle installations, we measured the positions of each test mass and compensation plate (CP) from the outer bevel to the inner cage:
EDIT: clarifying that "left" and "right" here refer to when looking at the face of either the test mass or CP, so left and right flip when going between TM and CP on the same suspension.
ITMY
Compensation Plate -
Test Mass -
ITMX
Compensation Plate -
Test Mass -
See attached photots for Anamaria's sketches of nominal positions and how they relate to the baffles.
For reference I got these numbers from the following e-drawing files:
HR cage baffles: DCC D2500081 FULL ASSEMBLY D2500081 A+, SLIC, QUAD SUS CAGE BAFFLE ASSY2.easm
CP cage baffles: DCC D2600035 D2600035 A+ SLIC CP SUS CAGE BAFFLE ASSY-15deg review2.EASM
For the keen eye you'll notice that the CP optic and the tests mass are not at the same height when in reality they should be. Because the CP optic isn't quite well aligned to the cage in this drawing in an IAS sense, it's ok because the baffle IS well aligned to the optic so the relative numbers we would use to align are, well, relative and hold true.