(Randy, Travis, Gerardo)
Today we installed two doors on HAM7, -Y door and +X door (flat door). Nothing to report with respect to the installation since no issues were encountered during process. Both doors were torqued. Currently the annulus system is being pumped down with an aux-cart and a small can turbo, at end of the day the pressure at the aux-cart was reading 8.8X10-05 Torr. A very "wet" system and it shows on the pumpdown.
A side note for future +X door installation, use a bigger shackle on the -Y pick point, since the door needs a little rotation.
The JAC WFS DC signals were calibrated. The motivation for this measurement is to check that the optical layout model is right. With JAC unlocked the beam in reflection is close to a pure TEM00, and the DC quadrant signals calibrate easily by normalising with the beam size. That makes the unlocked DC a clean sanity check on the layout and on the calculation built from it.
The TEM10/TEM01 that each actuator generates is known in magnitude and phase from the actuator calibration and the layout model. At the WFS, these have rotated away from TEM00 by the accumulated Gouy phase between the actuator and the sensor. A DC quadrant photodiode reads the real part of the first-order mode amplitude at its own plane (more precisely, the real part of the odd modes), so the accumulated Gouy phase over that path fixes what the WFS DC signal should be. Nothing else is needed: the magnitude follows from the beam radius at the actuator, the phase from the accumulated Gouy phase.
| actuator | sensor-basis direction [deg] | magnitude [(Δx/w) / cnt] | ||||
|---|---|---|---|---|---|---|
| predicted | measured | meas − pred | predicted | measured | meas / pred | |
| PZT PIT | -111.00 | -115.82 | -4.82 | 1.487e-4 | 1.520e-4 | 1.022 |
| PZT YAW | -108.96 | -107.68 | +1.29 | 9.790e-5 | 8.968e-5 | 0.916 |
| JM1 PIT | -47.99 | -52.90 | -4.91 | 7.967e-5 | 7.598e-5 | 0.954 |
| JM1 YAW | -56.87 | -32.19 | +24.68 | 6.895e-5 | 7.471e-5 | 1.084 |
The direction is the angle of the (WFS A, WFS B) response vector, and the magnitude is its length in units of normalised beam displacement per drive count. Three of the four lines agree with the prediction to within 5 deg in direction, and the magnitudes agree to within 8% (max/min 1.183 across the four, std(log) 0.064).
The two excitation methods agree with each other: comparing the sensor-basis direction obtained from the calibration lines against the one obtained from the broadband injection gives +6.79, +5.56, -0.24 and +0.19 deg for PZT PIT, PZT YAW, JM1 PIT and JM1 YAW.
JM1 YAW is the exception, off by +24.68 deg. Why this one line alone fails to be predicted is not yet understood. Several explanations were tried and none survived: moving JM1 along the beam would need 29 cm; moving WFS B by 2.5 cm removes the JM1 YAW discrepancy but drives JM1 PIT from -4.9 to -30 deg; the astigmatism degeneracy in the layout fit spans 2.1 deg against the 14.3 deg required; the ghost beam is ruled out because the result is unchanged across the ghost dump (we did same measurement before the ghost beam dump campaing); and the yaw to length coupling of the suspension would need to be of order 10 um for against the 0.003 um the JM1 OSEMs seee.
TITLE: 08/14 Eve Shift: 2330-0500 UTC (1630-2200 PST), all times posted in UTC
STATE of H1: Planned Engineering
INCOMING OPERATOR: None
SHIFT SUMMARY:
IFO is in IDLE with the IMC Locked
Good progress today with locking DRMI, which is now consistently locking for a few minutes - alog 91530
LOG:
| Start Time | System | Name | Location | Lazer_Haz | Task | Time End |
|---|---|---|---|---|---|---|
| 15:26 | fac | kim | FCES | - | technical cleaning | 17:03 |
| 15:37 | sqz | sheila.camilla.ryanS | CR | y | HAM7 closeout/backscatter meas | 17:18 |
| 16:05 | laser | camilla | East Bay | Yes | Transition to Local Laser Hazard in East Bay | 16:12 |
| 17:03 | fac | chris | lvea | - | famis checks | 19:02 |
| 17:05 | vac | gerardo | lvea | - | opening HAM1 ion pump | 17:11 |
| 17:17 | laser | camilla | LVEA | - | Taking East Bay to SAFE | 17:45 |
| 17:20 | beck | daniel | cr | - | beckhoff reboot | 17:24 |
| 17:21 | sus | ryanC | lvea | - | grabbing PSAMs parts in East Bay | 17:28 |
| 17:26 | deteng | betsy | lvea | - | lvea walkthroough | 17:30 |
| 17:33 | sei | jim | EastBay | - | Unlock/Balance/Closeout TFs | 19:11 |
| 17:44 | sqz | sheila.ryanS | EastBay | - | ham7 clean-up | 17:45 |
| 17:58 | ias | jason | lvea | - | looking for any alignment stuff in lvea | 18:03 |
| 18:05 | deteng | mitch | lvea | - | inventory checks | 18:58 |
| 18:40 | crs | shoshonna | lvea | - | crs laser on at rack | 20:33 |
| 18:43 | ee | fil | mezzanine | - | bypass ham7 high voltage | 19:00 |
| 18:55 | pem | carlos | lvea | - | measuring cables | 19:11 |
| 19:07 | ee | betsy.fil | lvea | - | ground loops @HAM7 | 19:51 |
| 19:21 | crs | shoshonna.huyen | lvea | - | turning crs laser off | 19:40 |
| 19:21 | sqz | camilla | East Bay | - | moving table out of way @Ham7 | 19:37 |
| 19:33 | ham7 | jim | HAM7 | - | pulling something out of bottom of HAM7 | 19:42 |
| 19:34 | fac | travis | ham7 | - | HAM7 sealing up | 23:41 |
| 19:49 | sus | ryanC | lvea | - | grabbing pelican case | 19:53 |
| 22:04 | deteng | ibrahim | EastBay | - | grabbing tool pans around ham7 | 22:21 |
| 23:08 | pem | dave.miranda | CER | - | fixing cables | 23:12 |
| 23:30 | crs | shoshonna.jim.huyen | cer.ham3Rack | - | CRS measurements | 23:48 |
| 00:30 | VAC | Gerardo | LVEA | N | Taking HAM7 Chamber Pics | 00:40 |
[Sheila, Ryan, Masayuki]
We got DRMI to lock for several minutes. By the end of the session it was re-locking every one to two minutes, though each stretch of lock lasted less than five minutes.
After locking PRMI and aligning the BS and the PRM, we requested ACQUIRE_DRMI_1F and tried several combinations of the PRCL/SRCL/MICH gains. Eventually we found the combination which can grab the DRMI lock, and that was the original gains except for PRCL. The PRCL gain had been doubled yesterday (input matrix 1.75 -> 3); we reduced it to 2.5, and with that we could lock several times.
In the short stretches of lock we measured the OLG of each loop. PRCL and MICH both have a strange phase rotation around 10 Hz. The MICH loop gain was also on the low side, so I increased it and tried to lock again.
While waiting for the next lock in that configuration, I moved the SRM more or less at random by ~20 urad in pitch and yaw, and found that the better alignment made POP90 more stable (see attached plot). In that stretch I re-measured the MICH OLG, and its UGF was close to what we had for PRMI. So this looks more like an alignment issue than a loop gain or loop shape issue.
I then found that the MICH loop gain was by now too high to engage the boost (FM1 of MICH1), so I halved it. With that gain the guardian could engage all the filters in the DRMI_LOCKED state.
I measured the SRCL gain again and it came out lower than in our first measurement, though I am not sure that measurement is valid. I tried a higher SRCL gain and it seemed unstable, but that may have been the alignment degrading rather than the gain itself.
I stopped here. The guardian is left in the configuration that felt like it gave the most frequent locks.
The attached TFs are the first MICH/PRCL/SRCL gain measurements, and the SRCL gain measured just before I finished (second left hand side).
TITLE: 08/13 Day Shift: 1430-2330 UTC (0730-1630 PST), all times posted in UTC
STATE of H1: Planned Engineering
INCOMING OPERATOR: Ibrahim
SHIFT SUMMARY:
HAM7 close out work with both doors being installed and even the Annulus Ion Pumps pumping on the doors
Detector locking had DRMI locks---longest was around 5min! So troubleshooting continues.
LOG:
Fil, Betsy
Today Fil and I did a quick repeat of T2200048 HAM7 ground loops check just before doors are going on.
Last checks were done:
Feb this year by Camilla/Sheila https://alog.ligo-wa.caltech.edu/aLOG/index.php?callRep=89048
Feb 2022 Fil/me https://alog.ligo-wa.caltech.edu/aLOG/index.php?callRep=61738
Keita had done them prior, hence the document.
We basically found the same results as Camilla/Sheila namely:
All the rest were "open".
In our PRMI locking today, Sheila had me compare some signals from today to a past PRMI time and pointed me to alog91238. We weren't sure however if these numbers made sense, so I found another PRMI time from November (specifically Nov 26th, GPS 1448216615, PRMI ASC converged) and re-did the comparison to today.
| POP_A_LF | POPAIR_B_LF | REFLAIR_A_LF | POPAIR_B_RF18_I | POP_X_DC_NSUM | POP_A_NSUM | POP_B_NSUM | |
| PRMI Nov 26th | 84 | 17 | 2.55 | 85 | 0.082 (seems low, may not have been well aligned) | 80 | 73 |
| PRMI today | 30 | 6 | 2.57 | 30 | 160 | 8 | 5 |
The electronics for the IFO analog cameras were uninstalled. No impact to the PSL and building cameras (access sytem). Analog cameras were left installed, available for local monitoring. The single fibers used to connect from each end station to the corner station are now available/spares. The MSR Video Rack 7 is mostly empty.
F. Clara, J. Figueroa
Ryan C, Rahul
This unit will be shipped to CIT for ROC measurements on Zygo interferometer. This will then be return to LHO and stored in the desiccant cabinet as a spare ZM5 unit.
We removed the broken PZT and replaced it with a new one sent by Camille.
The strain gauge resistance was measured to be around 700 ohms and 360ohm and the PZT capacitance was around 20 uF.
Details - s/n 02, mirror pre-load value = 65 in-lb.
Masayuki, Sheila
When we step the alignment sliders in pitch or yaw on PR2, we see 1 Hz ringing for 15-20 seconds.
Keeping an eye on PR2, took an osem spectra of the inmons and don't see anything abnormal in the suspension right now - but will keep investigating it if these oscillations returns.
I copied the OPO TEC controller code and modified it to use for the JAC heater.
The controller uses the H1:JAC-HEATER_DRV_VSET_OFFSET channel to add its control output to the heater. The controller gain needs to be negative.
Atteched a screeshot of the new screens.
SQZ finished in HAM7 this morning, I've now unlocked, rebalanced the table and taken ISI close-out tfs. I believe it is a known issue with this chamber, but the resonances aren't as clean to resolve as they generally are for other tables, but todays measurements look very similar to my previous measurements. For the attached plots, refs 0-5 are the l2l gs13 tfs from February this year, 6-11 are from today. I think we are okey to close.
Sheila, Camilla, Ryan
After yesterday 91497 and today's checked we are finished with HAM7, it's been handed over to Jim for SEI checks.
Sheila aligned the IFO in single bounce off ITMY to the OMC:
Check SQZ alignment with this SRM/OMs alignment:
Backscatter test, repeating 88609:
We have completed all HAM7 close out tasks as in E2600157. Only thing left is that we may repeat 88609 backscatter tests tomorrow before SEI closeout tasks. Rahul and Ryan C completed SUS closeout measurements 91500.
This is a loss of: 7.8%, 5.4%, 5.4%. We expect 4% but have been measuring up to 8% 91444 so are happy with this and will revisit in a future vent with different equipment. It is hard to look for 1% loss when our method gives us 1-2% variation.
Yesterday morning we spent time searching for losses, we later realized the ~2% loss we were chasing was caused by at temporary iris we had set at the beam at ZM3, next time we should use a larger 2" iris. Here is our results.
We checked the sliders of ZM2 and ZM3 by in turn putting a +/-10urad wobble on each and adjusting the sliders to be in the middle of the slider values where we started clipping: This gave us a repeatable 0.3% power improvement on the SQZT7 IR PD for <5urad slider changes.
In HAM7, as our main extra loss location is SFI1, we wanted to see if we could reduce this, before committing to moving A:M1 or A:M2,we tried moving ZM1 in yaw with the power meter on a crane after the SFI1 second pass (between SFI1 and B:M1). We found that the power was repeatably higher with ZM1 with -150urad in yaw, so sliders at (P 800, Y -240). Data attached.
Method of using Thorlabs power meter: We added the Thorlabs VRC2D1 IR pinhole aperture to the front of the power meter, moved power to maximize power though the pinhole and then removed pinhole and measure power.
We then put the power meter after the first pass of SFI1, between SFI1 and A:L2. We moved A:M1, starting with the thumb knob at 2pm, our clockwise edge of where we started clipping was clockwise 200deg to 9o'clock. The Anti clockwise edge was 360deg from starting location to 2 o'clock. So we are not 100% centered but not very near the edge. We could not see any repeatable power changes by moving a quarter turn of the knob. Data attached. We put A:M1 back to starting location.
This makes sense as on the first pass through SFI1 we could not improve the loss with alignment but on the second pass we could as the beam was double passes the iris that was causing clipping.
PRMI locked!!
The MICH loop was reworked, the PRCL gain was raised, and the REFLAIR demodulation phases were tuned. The guardian has been updated to the new nominal.
After aligning BS and PRM using PRX and MICH, I first tried to lock with ISC_DRMI as it was, changing nothing. It never caught after about 20 minutes of waiting in total, split between yesterday and today.
So I went back to the MICH loop. With PRM misaligned and MICH locked, I measured the open loop gain. The UGF was at 5 Hz and the phase margin sat around 20 deg across 5–10 Hz. So, I decided to modify the MICH loop and push UGF up to 10 Hz with reasonable phase margine.
The largest phase eater was the ELP35 in FM2 of BS_M3_LOCK. I loaded an ELP200 into FM3, which was free, and used it in place of the ELP35 in FM2. That loosened the phase roll-off enough to give about 40 deg of margin at 10 Hz.
Back to PRMI. MICH1 and MICH2 also carried several low-pass filters, so I switched all of them off, and it locked within a few minutes. Once locked, all of the low-passes could be switched back on without losing lock.
Repeating this, it locked within a few minutes every time.
With the lock holding I measured the MICH and PRCL loop gains. MICH showed gain bump above 10 Hz, and the PRCL UGF turned out to be only 20 Hz. Doubling the PRCL loop gain brought its UGF up to 55 Hz, and the MICH gain bump went away. This was the most stable state I found, and the time to reacquire came down to 1–2 minutes, so I took it as the nominal and edited the guardian at this point.
Filter changes
| Filter bank | Module | Change |
|---|---|---|
| MICH1 | FM5 (LP80) | off for acquisition, on after lock |
| MICH2 | FM2 (LP50) | off for acquisition, on after lock |
| BS M3 LOCK | FM2 (ELP35) → FM3 (ELP200) | permanent; ELP200 newly loaded into the empty FM3 |
| REFLAIR_A_RF9 input matrix | — | set to 3.5, doubling the PRCL loop gain |
Guardian edits
| What | File | Line |
|---|---|---|
| MICH1 FM5 | lscparams.py | 530 |
| MICH2 FM2 | ISC_DRMI.py | 219 |
| BS M3 LOCK, ELP35 → ELP200 | ISC_DRMI.py | 298, 523, 585 |
| REFLAIR_A_RF9 input matrix | lscparams.py | 718 |
| Engage the low-passes after lock | ISC_DRMI.py | 628–630 |
Last, I tuned the REFLAIR demodulation phases. A 50 Hz excitation of amplitude 3 was injected into PRCL1 ERR, and the phases were adjusted to minimise the peak in RF9_Q and RF45_Q. The I peak heights did not change much.
| demod phase [deg] | Q peak height | |
|---|---|---|
| RF45 | -176 → -171 | 0.1 → barely visible |
| RF9 | -29 → -34 | 0.1 → barely visible |
A final open loop gain measurement gave:
| Loop | UGF | Phase margin |
|---|---|---|
| MICH | 10 Hz | 50 deg |
| PRCL | 50 Hz | 50 deg |
Both open loop TFs are attached.
I do not understand why the PRCLK gain was low by a factor of 2, but Elenna noted a similar gain loss in March: 89567, this didn't go into the guardian at the time but is probably the same gain loss that Masayuki put into the PRMI input matrix yesterday.
We have calibrated the two JAC steering actuators the PZT (IO_MB_M4) and the JM1, in μrad per drive count at DC. The scale comes from the second harmonic of the cavity transmission under a dithered drive, which is insensitive to DC misalignment and so needs no external angle reference.
By expanding the injected field in the cavity's own eigenmode basis, we can describe the misaligned as,
Ein(t) = E0 + δ(t) E1
with E0 the cavity's TEM00 mode and E1 the TEM10 (pitch) or TEM01 (yaw) mode, orthonormal. As long as the misalignment is small enough comparing to the beam size, the single complex coefficient δ carries the whole misalignment on that axis: its real part is a transverse displacement in units of the waist size, its imaginary part an angle in units of the divergence angle. Only the TEM00 is resonant, so the transmitted power follows the fraction of the input that sits in E0, i.e. 1 − |δ|2 for |δ|2 « 1.
Dithering a steering actuator makes δ oscillate about whatever value it already had:
δ(t) = δofs + δa cos(2πft)
where δofs is the static misalignment already present, and δa is the dither we deliberately applied, which is exactly the quantity we want in order to calibrate the actuator. TRANS signal (1 − |δ|2) can devided into three components with its frequecies:
frequency |
value | contains the unknown δofs? |
|---|---|---|
| DC | |δofs|2 + |δa|2/2 |
yes |
f |
2 Re(δofs*δa) |
yes — magnitude and relative phase |
2f |
|δa|2/2 |
no |
The static offset drops out of the second harmonic algebraically. 2f therefore delivers |δa| with no reference to the alignment state we happened to be sitting at, and with no external angle standard. The DC and f terms, the two one would reach for first, are both contaminated by it.
This is the whole point of the method, and it is directly visible in the plot. adding a static offset grows the 1f line by +528 % while the 2f line moves by +8 %, its own measurement noise.
I proceeded 4+1 measurement in total with the JAC locked. For each measurement, one actuator axis was dithered at 11 Hz, with the excitation injected on the channels below and the drive read back on the corresponding _OUT. I excited JM1/PZT PIT/YAW per one measurement, and the other one is the PZT_PIT excitation with static offset (30 cnts) to demonstrate that the 2f peak is not affected by the offset. Transmission was read on H1:JAC-TRANS_A_LF_OUT.
| record | excitation channel | drive read back on | amplitude at 11 Hz [cnt] | drive offset [cnt] | TRANS DC [cnt] |
|---|---|---|---|---|---|
PZT_PIT |
H1:JAC-PZT_PIT_EXC |
H1:JAC-PZT_PIT_OUT |
20.0 | 0 | 6451.2 |
PZT_PIT_ofs |
H1:JAC-PZT_PIT_EXC |
H1:JAC-PZT_PIT_OUT |
20.0 | 30 | 6442.5 |
PZT_YAW |
H1:JAC-PZT_YAW_EXC |
H1:JAC-PZT_YAW_OUT |
20.0 | 0 | 6442.6 |
JM1_PIT |
H1:SUS-JM1_M1_TEST_P_EXC |
H1:SUS-JM1_M1_TEST_P_OUT |
40.0 | 0 | 6445.5 |
JM1_YAW |
H1:SUS-JM1_M1_TEST_Y_EXC |
H1:SUS-JM1_M1_TEST_Y_OUT |
40.0 | 0 | 6440.2 |
|δa| is calculated from peak heights of the transmission at 22 Hz, converted to a mirror tilt using the local beam radius at each actuator from the current JAC reflected-path layout model (alog91472 comment), and calibrated into DC responce using each actuator's frequency response as measured (described below).
| actuator | axis | excitation channel | |δa|2 |
efficiency [μrad/cnt] | |
|---|---|---|---|---|---|
| at 11 Hz (as measured) | at DC | ||||
| PZT | PIT | JAC-PZT_PIT_EXC |
1.09e-5 | 0.0093 | 0.083 |
| PZT | YAW | JAC-PZT_YAW_EXC |
6.47e-6 | 0.0093 | 0.079 |
| JM1 | PIT | SUS-JM1_M1_TEST_P_EXC |
1.01e-5 | 0.0216 | 0.89 |
| JM1 | YAW | SUS-JM1_M1_TEST_Y_EXC |
1.67e-5 | 0.0254 | 0.92 |
The 11 Hz column is what the dither actually produced; the DC column is that value divided by the actuator's own response at 11 Hz, and is the number to use for a DC gain.
The frequency response itself comes from a separate set of four broadband actuator-to-wavefront-sensor records (300 s each, one actuator per record, see atatched plots), from which the JM1 suspension resonance and the PZT drive pole are fitted. Only the shape of those transfer functions is used; their absolute scale plays no role in the calibration.
The fitted frequency responses are:
f0 = 2.00 Hz, Q = 7.7 (PIT) and 1.80 Hz, Q = 5.4 (YAW)fp = 1.24 Hz (PIT) and 1.30 Hz (YAW)AOI compensation
Both actuators sit at a design AOI of 45°, and the rows above include the geometric correction that follows. A tilt whose rotation axis lies in the mirror surface and in the plane of incidence steers the beam by only 2θ cos(AOI), against the full 2θ for the axis perpendicular to that plane. At the PZT the suppressed axis is YAW in the cavity-referred channel naming (the HAM1 periscope exchanges the transverse planes downstream of it); JM1 sits after that periscope, so for it the suppressed axis is PIT. The assignments follow from each mirror's orientation, and the correction uses the design 45° rather than a value fitted to the measured ratio.
APZT = 500 μrad/V (T1500342) driven through an 18-bit DAC (±10 V differential, i.e. 20 V over 217 counts) and a differential-to-single-ended board (D1100457 v2, unity gain, read off its schematic), giving 0.076 μrad/cnt. No further driver gain applies on top, since the T1500342 figure is referenced at the controller's control input. Our result sits at 1.09× (PIT) and 1.04× (YAW) of this designed value.Short note: a mirror rotated by θ, sitting where the beam radius is w(z), produces |δ| = k w(z) θ, and its phase relative to TEM00 is 90° plus the Gouy phase accumulated from the reference waist. This can be applied for the mirror which is transmitting the lens. This is because δ is the field amplitude of the first-order mode it is continuous across lenses, so a mirror separated from the reference space by lenses is handled by simply adding up the free-propagation Gouy phase to the reference waist. The table below therefore carries the beam radius and the accumulated Gouy phase at each actuator.
| actuator | axis | excitation channel | |δa|2 | efficiency [μrad/cnt] | beam radius w [mm] |
Gouy phase from the JAC waist [deg] |
|
|---|---|---|---|---|---|---|---|
| at 11 Hz (as measured) | at DC | ||||||
| PZT | PIT | JAC-PZT_PIT_EXC | 1.09e-5 | 0.0093 | 0.083 | 3.020 | -86.4 |
| PZT | YAW | JAC-PZT_YAW_EXC | 6.47e-6 | 0.0093 | 0.079 | 3.270 | -73.5 |
| JM1 | PIT | SUS-JM1_M1_TEST_P_EXC | 1.01e-5 | 0.0216 | 0.89 | 0.620 | -32.7 |
| JM1 | YAW | SUS-JM1_M1_TEST_Y_EXC | 1.67e-5 | 0.0254 | 0.92 | 0.681 | -30.8 |
The beam radius (1/e2 intensity) and the Gouy phase are model values at the actuator, taken from the JAC REFL optical model.
R. Kumar, S. Dwyer, C. Compton, R. Short
Following the work done yesterday adjusting the preload on the ZM4 PSAMs (alog91471), Rahul and I set about adjusting it further today to get our calculated projected beam size on SRM close to where we want it. Using the same procedure as yesterday, I turned off the ZM4/5 PSAM drive chassis, Rahul went into HAM7, locked down ZM4, torqued the preload about 1/8" of a turn (it's hard to quantify a torque spec in this manner), then finally unlocked the suspension. I moved the ZM4 pitch alignment slider about -1400 counts to realign the beam on SQZT7 to our alignment irises as a result of this torque adjustment. I then proceeded to take a couple of beam profiles on the table with the M^2 device to see where we landed. This plot [initial] shows the difference between before and after this adjustment in terms of the projected beam at SRM with a few different PSAM settings on ZM4 and ZM5. The four points I took here informed us that we could stand to torque ZM4 a bit further to hopefully line up with the center of the plot.
Rahul went back into HAM7 and torqued another 1/8" and I took another couple of profiles after (I did not need to move ZM4's alignment sliders after this adjustment). I took a total of nine profile points here, all of which can be seen compared to other measurements today on this plot [full]. Since there are points in the bullseye, we decided to stop here and that this is where the ZM4 preloading will stay. This plot [final] shows just the beam profiles taken at our final preloading position.
Tomorrow we will move on to final closeout checks in HAM7.
I ran a health check TF on ZM4 and it looks good.
2026-08-11_2200_H1SUSZM4_M1_WhiteNoise_L_0p02to50Hz.xml
2026-08-11_2200_H1SUSZM4_M1_WhiteNoise_P_0p02to50Hz.xml
2026-08-11_2200_H1SUSZM4_M1_WhiteNoise_Y_0p02to50Hz.xml
The current pre-load value on the ZM4 is 60in-lb + 1/8th + 1/8th turn using a 0.5in size wrench.