ITF found locked in CARM_NULL_1F in COMMISSIONING mode and morning acivity still ongoing.
planned activity:
Etalon controler change (Mantovani Bersanetti). It went on without major problems till 19:30 UTC.
ITF left locked in LOCKED_ARMS_IR.
ITF found locked in CARM_NULL_1F in COMMISSIONING mode and morning acivity still ongoing.
planned activity:
Etalon controler change (Mantovani Bersanetti). It went on without major problems till 19:30 UTC.
ITF left locked in LOCKED_ARMS_IR.
Today we have relocked after the ALS issue has been solved.
The only parameter that has been adjusted was the gain of DARM (step 3/3 from 0.018 to 0.014)
After this the NI measurement has been performed (see TCS entry). After this work we had to reduce the gain of DIFFp ty @ Carm null from 14 to 10.
Then we have raised the WI mirror of 2mm, see Figure 1. Analysis to be done and shift to be continued on Monday.
After this the modifications on the Etalon loop have been performed. Namely the DC correction at mid dynamics and the removal of the initial slow controller.
The behavior will be monitored this weekend.
During previous attempts to perform measurements with HWS-DET, a spurious beam was affecting the HWS reference after the unlock, making the measurement difficult to interpret, as a faint spot appeared on the HWS image (see Fig. 1).
After several attempts to identify the culprit, we tried keeping the NE aligned during the gentle unlock. This confirmed that the spurious beam was coming from the NE: in the CARM NULL 1F configuration, the beam reflected by the NE also reaches HWS-DET. By keeping the NE aligned during the gentle unlock, the problem disappeared.
The first measurement performed with this new configuration corresponds to the folder 20260925T1556. The HWS acquisition started at 13:56 UTC, after the ITF had been in CARM NULL for about 5 minutes. The ITF was then brought to gentle unlock while keeping the NE aligned.
To determine the position of the TM center in exactly the same alignment configuration, a second HWS-DET acquisition was performed after the gentle unlock, without changing the alignment of the mirrors. After approximately 30 minutes, a new reference image was acquired and the measurement was started (20260925T1635). At 14:40 UTC (WF 10), the NI CH was switched ON to identify the mirror center. The CH signature appeared approximately at the same position as in the NI single-bounce configuration (see Fig. 2).
Looking at the data acquired during the gentle unlock (20260925T1556), no clear feature is visible in the HWS maps if piston and tilt are not removed. After removing piston and tilt, however, a PA-like feature becomes visible in the lower part of the map (see Fig. 3).
In Fig. 3, the image on the left shows the PA-like feature about 5 minutes after the unlock (inside the black circle). The image on the right shows the HWS map acquired about 20 minutes later. At this time, a broader OPL variation due to the average absorption of the YAG beam is visible, overlapping with the localized PA feature.
Comparing its position with the mirror center identified in Fig. 2, the PA-like feature appears to be relatively close to the center of the mirror. However, its signature in the HWS map is rather faint, as it becomes visible only after removing piston and tilt.
The problem encountered yesterday and this morning with the ALS lock appears to have come from my misinterpretation of one of the ALS locking thresholds, combined with a slow drift in the green power reflected at the end buildings.
We adjusted the values in the ALS_WEB ini file accordingly, and the lock became stable again.
ITF found in locked arms IR.
The morning was spent to fix a problem on the ALS which prevented to lock the CITF.
Once fixed the ITF was locked in CARM_NULL_1F at 13:03 UTC.
SUSP
SR ID found open at the beginning of the shift; properly closed.
After performing an analysis of the WI thermocamera images (see #69785), a similar analysis for the NI was done.
Geometric Mapping:
Figs. 2 and 3 display the MATLAB output, showing a differential temperature of approximately 0.52 degrees for the point absorber (calculating by subtracting the image of the mirror in CARM_NULL and the image with the ITF in DOWN status). No other strong PA has been spotted.
The position of the PA from the HWS-INJ measurement was evaluated.
Figure 1 shows the position of the OPL maximum as a function of the wavefront number. Figure 2 shows an example of the HWS map, where both the PA position and the mirror center, previously identified using the RH/CH, are indicated.
The PA position relative to the mirror center is:
X_PA = [14 +/- 1] mm
Y_PA = [4 +/- 1] mm
This result is not consistent with LMA and the thermal camera image. In particular, according to the HWS measurement, the PA is displaced from the mirror center mainly along the horizontal direction, and not in the vertical one
One possible explanation is a change in the SLED beam position on the mirror between the two configurations used for the measurements: the PA position was evaluated at CARM NULL, while the mirror center was identified in WI single bounce . In Fig. 3, the pink curve (04/09/2026) represents the position of the main mirrors in the WI single-bounce configuration when we performed the measurement to identify the mirror center, while the blue curves correspond to 18/09/2026 and show the mirror behavior during the gentle unlock performed for the PA measurement. It is difficult to assess whether these variations are sufficient to explain the disagreement with the thermal camera measurements.
To verify this hypothesis, both measurements (TM center identification and PA position) could be performed within the same acquisition run. The interferometer could first be locked at CARM NULL to measure the PA position, followed by a gentle unlock. After waiting about 1/2 hour, the CH could be switched on to identify the mirror center without changing the HWS acquisition reference.
The ITF lock recovery went on in the afternoon trying to have a stable CARM_NULL lock (#69804), actvity stopped at around 19:30UTC; we left the cavities locked on the infrared.
Sub-system reportsSUSP
at 15:11UTC the WI local controls opened by the guardian following the unlock, properly closed.
We obtained a reliable lock acquisition to reach CARM_NULL_1F with noticeable smoothness, but the locks achieved were nevertheless unstable and had an average life expectancy of a few minutes each.
We re-engaged COMMp, soft modes and diagonalization in the automation at CARM_NULL_1F.
The unlocks observed were different in nature and not easily explainable with loop instabilities. In particular, one of them was due to a glitch in the NI suspension that shot the F0 away by about a hundred microns (Fig.1).
We decided to decrease the CHRoCC voltage by another 10% before tomorrow's morning shift.
The problem encountered yesterday and this morning with the ALS lock appears to have come from my misinterpretation of one of the ALS locking thresholds, combined with a slow drift in the green power reflected at the end buildings.
We adjusted the values in the ALS_WEB ini file accordingly, and the lock became stable again.
The reduced gain of PR_Y damper seems to be not enough, because the 11.6 Hz instability raised again during the latest lock in CARM NULL. I restored the old gain, three time larger than the one which has not worked.
ITF found in COMMISSIONING Mode and LOCKED_ARMS_IR State.
All times are UTC.
06:22 ITF in LOCKED_ARMS_BEAT_DRMI_1F State.
07:44 - 08:06 CLEAN OP: HYMO checks at WEB Clean Rooms (Menzione).
08:40 - 09:13 VAC: Vacuum pump intervention at NEB (Macchia, Pasqualetti).
10:51 SUSP: WE MAR loops opened by the guardian. Properly closed (Operator).
14:00 SUSP: WE MAR loops opened by the guardian again. Properly closed (Operator).
The shift was dedicated to the planned activity on CARM NULL locking / DAS adjustment, the ITF ulocked sveral times due to ALS, issue investigation in progress.
ITF left in COMMISSIONING Mode and LOCKING_ARMS_BEAT_DRMI_1F State.
After the ~10% increase of the ChRoCC voltage of Wednesday morning, the rest of the day was devoted to the relock and the characterization (ISC-wise) of the interferometer. The idea was to reproduce a configuration which is more similar to the one we were using during the run, i.e. with a lower sideband gain and possibly an improved stability of the interferometer. The 10% increase of the actuator's voltage did non correspond exactly to 10% in the working point, something less around 7.5% instead. To be confirmed if this is due to a slight non-linearity of the actuation or if the basal temperature needs to be subracted as a static offset (after which the 10% is present also in terms of working point).
From the lock acquisition point of view, we had to tune again several parameters in many steps. We could complete the recovery up to CARM_NULL_3F, with a half-baked recovery of the _1F one. Even in steps considered recovered, the lock could not last much. The sheer variation of the numbers differs from DoF to DoF, but we could see some patterns:
A different issue affected the SRC: much more than normal, while locking the DRMI SRCL would not lock properly, with the longitudinal correction rapidly diverging out of range (always in the negative direction) but the interferometer staying "locked" until going too much forward or killing the lock ourselves. This was seemingly unrelated to the SR initial alignment, which in principle never changed if not while pre-aligning the DRMI, as we didn't reach any step where a ASC loop could be engaged. The consequence, though, was for the SRM to occasionally resulting quite misaligned. We suspect some kind of kick and/or lenght-to-angle coupling (see Figure), but this needs some verification first. In at least one occasion, we could see a clear difference also between the global alignment in the later stages of the acquisition and the initial alignment of long cavities+beam.
Given the global outcome, we decided at the end of the shift to move again the ChRoCC, from +10% with respect to Tuesday to -10% (V_DAC = 4.28 -> 3.49 V).
The activity CARM NULL locking / DAS adjustment went on through the afternoon until 19:30 UTC (Bersanetti, Boldrini, Bossilkov). I had troubles multiple times aligning SR ty because B1p camera showed a strongly unstable and oscillating signal in the direction of ty-, and the last saved SR ty position worked for the following CITF locks but might have to be corrected tomorrow.
When the commissioning activity ended, the interferometer reached CARM_NULL_3F and unlocked at engaging DIFFp in LOCKING_CARM_NULL_1F at 19:48 UTC . The second and the third time, at 19:58 and 20:12 UTC, it unlocked in LOCKING_CARM_NULL_1F after engaging SSFS ("... and update UGF" USRMSG)
At 20:16 UTC I set Chrocc_PR DAC_V to 3.49 with a ramp of 600s
ITF left in LOCKED_ARMS_IR
Guard Tour
19:51
ITF found in LOCKED_ARMS_IR in COMMISSIONING mode.
planned activity:
CARM NULL locking / DAS adjustment (Spinicelli)
Relocked up to CARM_NULL3F after the usual cross-alignment in ACQUIRE_DRMI.
Activity in progress...
The vertical mode of PR mirror (11.6 Hz) gets randomly excited during the lock acquisition; the lock can even become unstable on that (orthogonal) resonance because of variable and not predictable coupling of PRCL sensing to PR vertical motion.
A possible way to control the instability is to send a fraction of the longitudinal correction to the marionette vertical actuation. That sort of damping works for the arm test masses and is used to reduce a similar instability occurring on WI during the lock acquisition. Unfortunately the same strategy doesn't work with PR, because the coupling seems to have different sign at different steps of the lock acquisition.
For that reason we decided to implement a true local damper of PR mirror vertical mode, using as error signal the vertical LVDT which measures the relative motion of filter7 and its crossbar. F7 crossbar is part of the 3 bodies system (mirror-marionette-crossbar) for which the 11.6 Hz mode is one normal mode of resonance. The LVDT signal is sensitive enough to see the peak when the instability becomes large and a loop can be effective in reducing the Q of the mode, but we have to pay attention on the possible noise injected on the payload by a local control.
A measurement of F7 LVDT response to MAR_Y_CORR has been measured and fitted (fig 1). The fit requires a high quality factor, at least 1000. A narrow band loop around 11.6 Hz has been developed (fig 2, fig 3). Repeating the TF measurement with the loop closed, the Q appeared to be lowered down to 300 (fig 4).
The damper has been tested during a lock acquisition, when the 11.6 oscillation had reached a very high level, well visible everywhere (fig 5 - the probe Sa_PR_MAR_Y_CORR is the output of the damper, which was actually not sent to the actuator when the resonance was growing). The damping have been quite effective and fast, but during its action some low frequency motion of the payload was induced. This is visible on F7 LVDT and also on the quadrant signal used in loop for the beam control (ASC_PR_Y), saying that the action induced a small excess of PR vertical motion and beam angular fluctuation. The excess noise disappeared when the steady state was reached, so I would assume that the noise of the damper is negligible, but the lock did not last enough to check better. Anyway, given the effectiveness of the damper, I decided to reduce its gain by a factor of 3 and leave it permanently in operation. A long lock in CARM NULL is needed to see if this gain is enough to guarantee the stability at 11.6 Hz.
A possible improvement can come from a swap between the local sensor and the quadrant in CARM NULL: the SNR of the quadrant is quite better, but that signal is available only in CARM NULL, while the 11.6 Hz can affect the lock also in the previuos steps.
The reduced gain of PR_Y damper seems to be not enough, because the 11.6 Hz instability raised again during the latest lock in CARM NULL. I restored the old gain, three time larger than the one which has not worked.
This morning at 7.25 UTC we set the PR CHROCC (V_DAC) from 3.88 V to 4.28 V with a ramp of 300 s.
The ITF lock recovery went on all the afternoon without succeeding to achieve a stable lock at CARM_NULL_1F (#69796); activity stopped at around 19:20UTC. I left the cavities locked on the infrared.
Sub-system reportsSUSP
at 18:30UTC the WI local controls opened by the guardian following the unlock, properly closed; I wasn't able to use the suspension GUI.
at 19:09UTC the WE local controls opened by the guardian following the unlock, properly closed; again I wasn't able to use the suspension GUI.
- we reverted all the locking parameters to friday 18th at 12 UTC
the carm null 1f was not reachable (no loop oscillations), so we started to remove part to try to survive
- removed COMMp, CARM slow, alpha and Soft
the lock was killed by instabilities on the dark fringe, so Michal raised the shutter treshold to 0.027
we then tryed to lock with SR misaligned (-2urad ty) and we increased the jumps rate, see Figure 1.
The lock behavior is not predictable and no loop oscillations are present. It could be that we are too close to the cavity instability.
In agreement with the commissioning crew, I reverted all the steps performed over the weekend to return to the last configuration we had on Friday (STEP 8, entry 69755) when the lock acquisition seemed to be reliable. The main goal was to try HWS-DET acqusitions in order to veirfy the situation of PAs on the NI mirror.
Activity completed at 10.30 UTC.
Here the TCS settings:
|
|
| CH [W] | INNER DAS [W] | OUTER DAS [W] |
| W | on the ITF | 0.044 | 0 | 1.08 |
| on the pickoff | 0.272 | 0 | 0.180 | |
| N | on the ITF | 0.040 | 0.18 | 0.72 |
| on the pickoff | 0.247 | 0.029 | 0.118 |
At the end of the transient, during the afternoon shift, we resumed the lock acquisition attempts, but the same issues observed yesterday persisted.
- we reverted all the locking parameters to friday 18th at 12 UTC
the carm null 1f was not reachable (no loop oscillations), so we started to remove part to try to survive
- removed COMMp, CARM slow, alpha and Soft
the lock was killed by instabilities on the dark fringe, so Michal raised the shutter treshold to 0.027
we then tryed to lock with SR misaligned (-2urad ty) and we increased the jumps rate, see Figure 1.
The lock behavior is not predictable and no loop oscillations are present. It could be that we are too close to the cavity instability.
ITF found in locked arms.
At 6:00 UTC started the planned maintenance, below the list of the activities communicated in control room:
All the maintenance activities completed around 11:00 UTC; then started the planned commissioning activity of ISC.
R. Cavalieri, F. Nocera, P. Spinicelli
This is to detail the RF Modulation configuration we are likely to use for IR1.
Starting today, the 22 MHz sideband is generated with a single-output DDS, as per AdV baseline design.
In an attempt to have a fallback plan for the remaining interferometer RF sidebands generation heading towards IR1, we have tried to verify the phase noise of the LNFS referred to an Synth4 in https://logbook.virgo-gw.eu/virgo/?r=69715, i.e. the one which did not turn on, after hacking our way around the power-on issue (we've tracked down the problem to a failure of one of the two AC-DC converter, the one for the +5Vdc, that we bypassed using a bench power supply in its place).
We verified its phase noise performance are not in spec but they are comparable or better than the one currently in use for 6, 8, and 56 MHz. In addition channel three seems to be working as well, contrary to what has been observed in the last few days in the Lab.
The serial communication works ok.
We have left it on but, at this time, not connected to the modulation chain.
The situation therefore is shaky (the "spare" relies on an external power supply, channel 3 reliability is uncertain) but not as bad as it looked yesterday.
This morning we swapped the LNFS that generates the 22.3 MHz used for IMC longitudinal and angular controls with a DDS.
This LNFS is the one with the communication problem. It will be sent for repair.
When resetting the output frequency and amplitude of the DDS to nominal values the IMC relocked and so did the RFC.
We checked some INJ signals : IMC and RFC error signals, 22 dfreq, IMC OLTF... and everything seems to be ok (figures attached)
To attempt to help with COMMp, yesterday at 14h53 UTC I have increased the SNEB drift control loop gain by a factor 2. The loop error signal is power normalized, so this is not intended to compensate a loss of loop gain due to low power, but to actually increase the loop gain.
Another direction to explore is what is happening with PRCL.
Figure 1 shows an example of an unlock of yesterday evening, B2 6MHz I is in loop for PRCL, but the out of loop signals B2 18MHz I and B2 8MHz I start to diverge at the same time as the power in the arm drops. B2 18MHz is independent of the carrier, so the drop in carrier power is not sufficient to explain the change in B2 18MHz I. There is also a sharp drop in B4 12MHz mag that starts at the same time, which is also independent from the carrier.
Figure 2 shows an example of a longer lock from last Friday, which shows that the offset on B2 6MHz I is comparable to what it used to be, and that the change in sign of the offset is just due to the adjustment of the demodulation phase of B2 6MHz before the signal is used. B2 18MHz and B2 8MHz have large fluctuation that start at that time, which makes the running away of these signals on Figure 1 less convincing. However, there is no simulataneous decrease in B4 12MHz mag in that case.
During the afternoon two activities went on: #69785 TCS tuning and #69787 CARM_NULL locking
Activities ended at 20:00 UTC
ITF left in LOCKED_ARMS_IR