ID |
Date |
Author |
Type |
Category |
Subject |
603
|
Tue Jul 1 13:41:36 2025 |
Xuesi Ma | Update | | |
[Ma, Liu]
Slides |
602
|
Tue Jul 1 12:39:42 2025 |
Tyler | Update | TCS | A# FROSTI Profile Optimization Update |
[Tyler, Liu]
Slides |
601
|
Tue Jul 1 11:04:00 2025 |
Christina | Update | TCS | FROSTI Reconstruction II |
[Ma, Tyler, Christina]
Finished external reconstruction of the FROSTI by installing all the pins to the 2 DB 25 connectors. To ensure everything was operating correctly, we did electrical testing by testing continuity and by checking each of the heater elements' RTD and power resistance values and comparing them to what was tabulated in January. Additionally, we organized the wires and added the stands. |
Attachment 1: IMG_4042.png
|
|
600
|
Fri Jun 27 15:38:22 2025 |
Christina | Update | TCS | FROSTI Reconstruction |
[Tyler, Ma, Christina, Luke]
We threaded the wiring of the heater elements through the reflective surfaces and were able to attach each piece with the Macor spacers and connect both sides. We used the guide rails and screws to ensure proper alignment. The only necessary step left is to add the additional external screws for the reconstruction. |
Attachment 1: IMG_4009.png
|
|
599
|
Wed Jun 25 15:44:47 2025 |
Luke | Update | Cleanroom | Cleanroom cleaning |
[Luke, Luis, Tyler, Ma, Christina, Maple]
We started by cleaning outside of the cleanroom wiping down the cable channel and working our way down. We replaced the air filter in the HEPA filter with what seemed to be the last one in storage. We then vacuumed outside, before wiping down the inside of the cleanroom. We then vacuumed, mopped, and wiped down the floor inside the cleanroom.
We are ready for venting the vacuum chamber which is planned to take place 6/26/25 at 10am.
Particle Count Measurements:
- Pre-cleaning (12:00 pm):
- Zone 3:
- 0.3 µm: 2517
- 0.5 µm: 662
- 1.0 µm: 176
- Zone 4:
- 0.3 µm: 177
- 0.5 µm: 44
- 1.0 µm: 0
- Post-cleaning (1:45 pm):
- Zone 3:
- 0.3 µm: 619
- 0.5 µm: 88
- 1.0 µm: 0
- Zone 4:
- 0.3 µm: 177
- 0.5 µm: 88
- 1.0 µm: 0
|
Attachment 1: parttical_count_6-25-25.png
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598
|
Tue Jun 24 13:47:58 2025 |
Liu | Update | Interferometer Simulations | Alternative FROSTI A# optimization approach |
Alternative FROSTI A# optimization approach |
Attachment 1: Update.pdf
|
|
597
|
Tue Jun 24 12:45:16 2025 |
Tyler | Update | General | Updated ADC spectra |
[Tyler]
Updated ADC noise spectra measurements using diaggui.
NOTE: Will update plots with proper axes |
Attachment 1: csd_spec.png
|
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Attachment 2: chi_sq.png
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|
596
|
Tue Jun 24 11:50:15 2025 |
Xuesi Ma | Update | | |
Heater Element Resistance Test Results
Heater Element Resistance Test Report
Test Overview
Conducted several on-and-off tests on heater elements at 24V, followed by switching heater elements 5 and 8 by changing their connection pins to the ADC.
Resistance Measurements (Ω)
Heater Element |
Before Switch |
After Switch |
Ladder Test |
Difference (After-Before) |
Element 1 |
153.09577918 |
153.11447008 |
153.83373894 |
+0.0186909 |
Element 2 |
149.70967557 |
149.8175605 |
150.08915205 |
+0.10788493 |
Element 3 |
157.88314236 |
157.87136021 |
157.39696467 |
-0.01178215 |
Element 4 |
146.80153622 |
146.78826747 |
147.77923177 |
-0.01326875 |
Element 5 |
151.80888657 |
152.2204132 |
150.44919044 |
+0.41152663 |
Element 6 |
148.24375881 |
148.32846152 |
146.89161192 |
+0.08470271 |
Element 7 |
144.72286546 |
144.76879963 |
145.03627875 |
+0.04593417 |
Element 8 |
151.4564267 |
149.14240417 |
149.88675562 |
-2.31402253 |
Supporting Graphs
Attached below are the resistance-time graphs for all heater elements:
- Complete test duration graph
- Pre-switch period graph
- Post-switch period graph
- Resistance voltage graph after removing data from after power outage
Analysis & Conclusion
The switch did not physically change the resistance of the heater elements, suggesting the measurements reflect their true resistances.
|
Attachment 1: resistance_vs_time_all_channels_channel_switch.jpg
|
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Attachment 2: resistance_vs_time_all_channels_channel_switch_one_cycle_before.jpg
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Attachment 3: resistance_vs_time_all_channels_channel_switch_one_cycle_after.jpg
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Attachment 4: resistance_vs_voltage.jpg
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595
|
Tue Jun 17 12:46:47 2025 |
Tyler | Update | Electronics | CyMAC ADC Noise |
Below are results from power spectra measurements of the CyMAC ADC, computed form 30 hours of time series data, compared to the performance of the Red Pitaya. The frequency resolution for the initial Cymac CSD is 2 Hz, and 216,000 spectra measurements are averaged together. As of now, it still looks like we haven't reached the correlated noise floor of the CyMAC. We have a few days worth of data to take from, so I'll look into using a longer period of time. |
Attachment 1: cymac_v_rp_csds.pdf
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Attachment 2: chi_sq_cymac_v_rp.pdf
|
|
594
|
Tue Jun 17 12:22:43 2025 |
Xuesi Ma | Update | | |
CYMAC Remote Control Cable Documentation
CYMAC Remote Control Cable Assembly
Cable Functions
The custom cable assembly serves two primary functions:
1. Jumper Connections (DB25 Side - Connector J3)
The following pins are jumpered on the DB25 connector:
From Pin |
To Pin |
Pin 3 |
Pin 16 |
Pin 10 |
Pin 11 |
Pin 12 |
Pin 24 |
Pin 13 |
Pin 25 |
Pin 22 |
Pin 23 |
2. Signal Wiring (DB9 to DB25)
The following connections are made between the DB9 and DB25 connectors:
DB9 Pin |
DB25 Pin |
Function |
Pin 1 |
Pin 9 |
Positive side |
Pin 6 |
Pin 12 |
Negative side |
Pin 5 |
Pin 6 |
Ground |
Note: All connections are verified with a multimeter.
|
Attachment 1: 20250616_132743.jpg
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Attachment 2: 20250616_132945.jpg
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Attachment 3: 20250616_133235.jpg
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Attachment 4: 20250616_180103.jpg
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Attachment 5: 20250616_180129.jpg
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Attachment 6: 20250616_180132.jpg
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Attachment 7: 20250616_180317.jpg
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Attachment 8: 20250616_181011.jpg
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Attachment 9: 20250616_181033.jpg
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Attachment 10: 20250616_181052.jpg
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Attachment 11: 20250616_132759.jpg
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593
|
Wed Jun 11 16:33:45 2025 |
Pooyan | Update | Computers | Luke's ray tracing hosting |
- Hosted Lukes model on Chimay. It's available at https://richardsonlab.ucr.edu/real-time-frosti
- The sourcecode is at Github. It is clones at
/var/www/html/real-time-frosti , and this is the block added to nginx config file at /etc/nginx/sites-available/default :
location /real-time-frosti {
root /var/www/html;
index index.html index.htm index.php;
}
- Also added this line to the crontab, so the code will be checked for updated from the sourcecode every five minutes.
*/5 * * * * cd /var/www/html/real-time-frosti/ && git pull
- TODO: Move the sourcecode from Github to git.ligo.org, and make the repository public.
|
592
|
Wed Jun 11 16:19:37 2025 |
Pooyan | Update | CDS | CDS update |
- Fast channels recorded to .gwf frame files
- The fast channels are recorded with an extra _DQ in their names. So, in ndscope and diaggui these two channels should be addressed as
- C1:MSC-V0_OUT_DQ
- C1:MSC-V1_OUT_DQ
-
Update 6/13: enabled recording of all the ADC voltage channels so that Tyler can use all the data for the noise floor calculation. attached is an example of diagggui with almost 30 hrs of data.
|
Attachment 1: Screenshot_20250611_154834.png
|
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Attachment 2: f3k.pdf
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591
|
Tue Jun 10 12:13:00 2025 |
Xuesi Ma | Update | | |
By measuring the resistance of the ladder, I obtained a graph of resistance as a function of voltage.
All the heater elements behave consistently, showing only a small standard deviation.
However, heater element 5 shows a significantly larger standard deviation.
Upon examining the initial ladder graph, I noticed that the resistance of heater element 5 increases
following a power outage that resets the system.
At this point, I am unsure why this behavior occurs.
|
Attachment 1: resistance_vs_voltage.pdf
|
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Attachment 2: resistance_vs_voltage_element_5.pdf
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Attachment 3: resistance_vs_time_all_channels_all_time_RV.pdf
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590
|
Tue Jun 10 12:11:14 2025 |
Pooyan | Update | CDS | CDS update |
- The MEDM models issue was fixed. The issue was that building the c1msc model alone was not enough and we had to re-build the c1iop as well, although no changes has been made to the c1iop. Added a note in the wiki on this for future reference.
- For writing the fast channels to the frame files, our CDS system should have a GDS broadcaster. I followed this wiki page to set one, but it breaks the current daqd system. Asked about it earlier today on the CDS Mattermost channel and waiting for a response.
- Maybe I should continue the distributed scheme we have been trying for the nds2-server and let another machine on the network do this.
- Question: daqd has a feature to zero-out the bad data (NaNs), and it is currently on for our system. I don't think that it's a good idea to have this. Should I turn it off?
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589
|
Tue Jun 3 13:16:53 2025 |
Xuesi Ma | Infrastructure | | |
Date and Time: Around 3:50 PM on June 2, 2025
Location and Temperature:
- Back of the room 1119, around the working station: 86 °F
- Front of the room 1119, around the doorway: 84.1 °F
- Back of the room 1129, around the working station: 78.6 °F
- Front of the room 1129, around the doorway: 78.3 °F
- In the hallway in front of room 1119: 75.2 °F
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