Changes for page SmartSolo Node Seismometers
Last modified by robert on 2026/08/12 13:08
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- 16HR1C_Z_huddle.png
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... ... @@ -6,12 +6,10 @@ 6 6 7 7 ANSIR supply two types of three-channel nodes, and one type of one-channel node: 8 8 9 -* **SmartSolo IGU -16HR 3C (5 Hz, 'very' short period)**9 +* **SmartSolo IGU 16HR 3C (5 Hz, 'very' short period)** 10 10 * **SmartSolo BD3C-5 (5 second, short period)** 11 -* **SmartSolo IGU -16 1C (5 Hz, 'very' short period, single channel. Not 'HR')**11 +* **SmartSolo IGU 16 1C (5 Hz, 'very' short period, single channel)** 12 12 13 -Visit the [[SmartSolo page>>https://smartsolo.com/igu.html]] for more detail. 14 - 15 15 The three-channel nodes have a theoretical battery capacity of ~~30 days, whereas the single-channel type has a capacity of ~~50 days. The programming, operation and downloading procedures for all types of SmartSolo nodes are also similar. 16 16 17 17 (% class="box infomessage" %) ... ... @@ -73,18 +73,6 @@ 73 73 74 74 If you come to collect your node and it is missing~-~- LOOK FOR IT! It may not have gotten far. We have found dozens of nodes by spending 15 minutes looking for them. 75 75 76 -= External Power = 77 - 78 -Both the 5Hz IGU-16HR and 5s BD3C-5 can be optionally powered via external battery via either a replacement bottom half (the 5Hz nodes) or a battery cable accessory (BD3C-5) using standard lead acid batteries from 9-36v. We have done preliminary testing at 250 Hz with a 12v battery: 79 - 80 -- BD3C-5: ~~2 days of recording per 1 Ah 81 - 82 -- IGU16-HR 3C: ~~3.5 days of recording per 1 Ah 83 - 84 -- IGU16-HR 1C: ~~7 days of recording per 1 Ah 85 - 86 -Of course, these can also be fit with a solar panel & charge controller which would then theoretically keep them going indefinitely (limited only by the disk storage, which at 250 Hz could be on the order of 12 months). 87 - 88 88 = **Installation** = 89 89 90 90 (% class="box infomessage" %) ... ... @@ -106,42 +106,35 @@ 106 106 107 107 [[HERE>>http://auspass.edu.au/field/NODES_blank_fieldlog.pdf]] is an example logsheet that works well for nodes, feel free to print and use! 108 108 109 -== 2. Burial == 110 - 111 -ALL nodes should be buried flush with the ground, no exceptions. If the node is sticking up the data data quality will be significantly reduced (especially the horizontal channels, see [[below>>https://auspass.edu.au/xwiki/bin/view/Instrumentation/SmartSolo%20Nodes/#HIGU-16Horizontalnoise26howtoavoid]]). It also catches wind, makes them more visible, etc. But mostly it makes the data bad. //Don't be lazy. Do it right. // 112 - 113 -[[An example of what not to do.>>image:1786503344572-296.jpg||data-xwiki-image-style-alignment="center" height="341" width="404"]] 114 - 115 -[[North channel PSD of the sensor in the picture above (not good)>>image:1786503812585-338.02.28 PM.png||data-xwiki-image-style-alignment="center" height="244" width="451"]] 116 - 117 -== 3. Node Placement == 95 +== 2. Node Placement == 118 118 ))) 119 119 120 120 **Site Analysis**: 121 121 122 -* **Take compass measurements away from the sensor as it will affect your measurement. Use a stick or shovel to help align.**123 -* Take photographs from various angles to document the site setup thoroughly. Have a colleague stand next to it pointing at it.124 -* Include a detailed site description in your notes .100 +* **Take compass measurements away from the sensor as it will affect your measurement.** 101 +* Take photographs from various angles to document the site setup thoroughly. 102 +* Include a detailed site description in your notes 125 125 126 -== 4. GPS Considerations ==104 +== 3. GPS Considerations == 127 127 128 128 (% class="wikigeneratedid" %) 129 -The GPS antenna is at the top and center of the unit, and will (usually) only receive signal with a clear sky view directly above. The signal is able to penetrate plastic and terracotta planters and a thin (2 cm?)layer of soil, but may struggle if the soil layer is too thick. **These nodes will not start recording without attaining a GPS lock** and repeated attempts will excessively drain the battery.107 +The GPS antenna is at the top and center of the unit, and will (usually) only receive signal with a clear sky view directly above. The signal is able to penetrate plastic and terracotta planters and a thin layer of soil, but may struggle if the soil layer is too thick. **These nodes will not start recording without attaining a GPS lock** and repeated attempts will excessively drain the battery. 130 130 131 -== 5. Visibility and Location Marking ==109 +== 4. Visibility and Location Marking == 132 132 133 133 **Flag Placement**: Position a flag, preferably in a bright color (avoid green or yellow), near the instrument to aid in its future location. 134 134 135 135 **GPS Marking**: 136 136 137 -* Use a GPS device to mark the instrument's exact location. Most modern cell phones can get to about a 3m error with their internal GPS also; you can probably also get away with investing a few dollars in a good app that shows error and lets you log markers.138 -* AlsowritetheGPS downonpaper (ieyour[[LOGSHEET>>http://auspass.edu.au/field/NODES_blank_fieldlog.pdf]]).115 +* Use a GPS device to mark the instrument's exact location. 116 +* Record this location in both your paper notes and the GPS device. 139 139 140 -== (% style="color:inherit; font-family:inherit; font-size:max(18px, min(20px, 14.4444px + 0.462963vw))" %) 6. Charge Time, Pre-Deployment & Post-Deployment(%%) ==118 +== (% style="color:inherit; font-family:inherit; font-size:max(18px, min(20px, 14.4444px + 0.462963vw))" %)5. Charge Time, Pre-Deployment & Post-Deployment(%%) == 141 141 142 142 * **Charging Duration**: Both types of nodes take approximately 6-8 hours to fully charge from a flat state. 143 143 * **Pre-Deployment Charging**: 144 144 ** Although the nodes hold their charge well, it's beneficial to give them a "top up" charge before deployment. 123 + 145 145 * **Operational Duration**: 146 146 ** When recording at 250 Hz, with GPS on and Bluetooth disabled, the instruments are expected to last about 30 days per charge cycle. If they are set to run only overnight, this can be extended to 60 days. 147 147 ... ... @@ -156,7 +156,7 @@ 156 156 ** Charge levels for transport will be advised by the freighter. The required SoC will depend on volume and transport method (air, land, sea). 157 157 158 158 ((( 159 -== 7. Data Sharing and Metadata Creation ==138 +== 6. Data Sharing and Metadata Creation == 160 160 ))) 161 161 162 162 **GPS Data**: ... ... @@ -171,7 +171,7 @@ 171 171 172 172 * Create and organize metadata according to the [[ANU metadata standard txt file>>attach:example_metadata.txt]]. This is going to be particularly important if you are reusing nodes at different sites... not documenting the serial numbers (of the **top half** of the node) and the times they were deployed can lead to station mix-ups. 173 173 174 -== 8. Additional Best Practices ==153 +== 7. Additional Best Practices == 175 175 176 176 * **Training and Familiarisation**: Make sure all team members are adequately trained in using the GPS devices, compass use, and other equipment to ensure consistent and accurate data collection. 177 177 ... ... @@ -331,7 +331,7 @@ 331 331 332 332 * Once a new project is created, the Data Transfer View panel will display connected nodes with details like series number and data size. 333 333 * If “Prospect not matched” appears, it simply means the new project doesn’t match the original programming project. This is not a concern. 334 -* Select all nodes and right-click to “force download”. This starts the download process. [[image:Smartsolo harvesting #4 copy.png]]313 +* Select all nodes and right-click to “force download”. This starts the download process. 335 335 * Completed downloads will appear as new folders in the Downloaded Data panel. 336 336 ))) 337 337 1. ((( ... ... @@ -338,17 +338,14 @@ 338 338 **Exporting Data in Readable Format**: 339 339 340 340 * Go to the “Tool” menu and select “export seismic data”. 341 -* Tailor other parameters to project preference and ensure "Sample Interval" matches the setting used during node reset (note: the standard used by ANU is 4ms, or 250hz) 320 +* Tailor other parameters to personal preference and ensure "Sample Interval" matches the setting used during node reset. 321 +* Click “prepare” followed by “run” to start reformatting. Monitor this process in the small panel at the bottom left. 342 342 * (% class="box warningmessage" %) 343 343 ((( 344 -**Ensure export data is set to "COUNTS" (int32), not "mV" (float). This is critical!** 324 +* **Ensure to export data as "COUNTS" (int32), not "mV" (float). This is critical!** 325 + 326 +* **Set "Remove Gain" to the same decibel gain as during programming. By default ANU sets this to 24db for short period nodes (a scaling factor of 15.848932), and 6db (a factor of 2.0) for broadband nodes.** 345 345 ))) 346 -* Set "Remove Gain" to the same decibel gain as during programming. By default ANU sets this to 24db for short period nodes (a scaling factor of 15.848932), and 6db (a factor of 2.0) for broadband nodes. 347 -* Set "Remove DC" to "Yes" to centre the data around the zero value 348 -* Set the correct Start Time (UTC) and End Time (UTC) of the project to prevent the unnecessary export of older data 349 -* [[image:Smartsolo harvesting #9 copy.png]] 350 -* Click “prepare” followed by “run” to start reformatting. Monitor this process in the small panel at the bottom left. 351 -* The data will be exported to the SOLODATA folder. For a windows system, the following file explorer page is where you must navigate to to locate your project folder[[image:Smartsolo harvesting #8 copy.png]] 352 352 ))) 353 353 354 354 == Smart Solo IGU-16HR Polarity Notice == ... ... @@ -415,8 +415,11 @@ 415 415 **Finalizing the Download**: 416 416 417 417 * After downloading, mark the //"D"// box on your temporary labels to indicate completion. 394 + 395 + 418 418 ))) 419 419 398 +[[image:1706153266647-145.png||data-xwiki-image-style-alignment="center" height="340" width="603"]] 420 420 421 421 422 422 ... ... @@ -437,62 +437,9 @@ 437 437 438 438 ---- 439 439 440 -= Instrument Response = 441 - 442 -We are aware that there are various different published responses for these instruments and trust very few of them. One has to be careful with how polarity is handled between groups as well, and if one is working in integer counts (the ANSIR default) or mV (unclear why anyone would use this as it makes file sizes enormous). The response information published below is in **counts** and seems to fit well in huddle tests. Note that the response is the same for all channels and all units (e.g. there are no bespoke calibrations!), all appear to be sample rate insensitive, and the IGU data has been inverted (multiplied by -1) as described here: [[5Hz Node Polarity Issues>>https://auspass.edu.au/xwiki/bin/view/Data/AusPass%20Data/#HSmartSoloNodePolarityIssues]] 443 - 444 -== IGU 16HR-3C == 445 - 446 - '16HR3C': {'poles':[(-22.211059+22.217768j), (-22.211059-22.217768j)], 447 - 'zeros':[0j, 0j], 448 - 'gain':1, 449 - 'sensitivity': 257019225.55108312} 450 - 451 -[[X axis is samples (.01 s), Y axis is velocity (m/s), 0.5-5 Hz filter>>image:16HR_Z_huddle.png||alt="IGU16_Z_huddle.png"]] 452 - 453 -[[X axis is samples (.01 s), Y axis is velocity (m/s), 0.5-5 Hz bandpass filter>>image:16HR_N_huddle.png||alt="IGU16_N_huddle.png"]] 454 - 455 -== IGU 16-1C == 456 - 457 -The 1C nodes seem to have the same response as the 3-channel IGU-16HR-3C (above), however the response posted at IRIS-NRL seems to imply that there is no poles and zeros information (e.g. a flat/linear response). This is 100% not so. 458 - 459 -[[IGU-16 1C, X axis is samples (.01 s), Y axis is velocity (m/s), 0.5-5 Hz bandpass filter. Seems to be same response as IGU-16HR-3C.>>image:16HR1C_Z_huddle.png||alt="IGU16_1C_Z_huddle.png"]] 460 - 461 -== BD3C-5 == 462 - 463 - 'BD3C': {'poles':[(-1720.4+0j), (-1.2+0.9j), (-1.2-0.9j)], 464 - 'zeros':[(14164+0j), (-7162+0j), 0j, 0j], 465 - 'gain':1.69726e-05, 466 - 'sensitivity': 702651512.6046528} 467 - 468 -Above 0.5 Hz, the BD3C-5 response fits well: 469 - 470 -[[X axis is samples (.01 s), Y axis is velocity (m/s), 0.5-5 Hz filter>>image:BD3C_Z_huddle.0.5.png]] 471 - 472 -[[X axis is samples (.01 s), Y axis is velocity (m/s), 0.5-5 Hz bandpass filter>>image:BD3C_N_huddle.0.5.png]] 473 - 474 -(% class="wikigeneratedid" %) 475 -Below the corner frequency (0.2 Hz) the phase response still fares well, but amplitude response may need to be dialed in a bit (it seems a bit high). We are working to try to calibrate this a bit better. In the next two figures the filter is **0.1** to 5 Hz: 476 - 477 - 478 -[[BD3C **0.1 **to 5 Hz bandpass filter>>image:BD3C_Z_huddle.0.1.png]] 479 - 480 -[[BD3C **0.1** to 5 Hz bandpass filter>>image:BD3C_N_huddle.0.1.png]] 481 - 482 -== IGU-16 Horizontal noise & how to avoid == 483 - 484 -The** 5 Hz nodes** are susceptible to horizontal noise due to the placement of geophones in the units, **but this can be mitigated by completely burying the units flush with the ground.** In the below example, the node was set on the floor of our basement set on its plastic carrying case support. As such the amount of horizontal noise noticeably increases above ~~ 10Hz. 485 - 486 -[[IGU-16HR-3C Power spectrum huddle test vs a CMG-6TD (S1) and TC120/Centaur combo. The N and E channels have excess noise above 10Hz due to "sticking up" out of the ground.>>image:IGU16_spectrum.png]] 487 - 488 -(% class="wikigeneratedid" %) 489 -The BD3C-5 nodes do not have this issue: 490 - 491 -[[BD3C-5 test, as above. There is no additional noise on the horizontal channels.>>image:BD3C_psd.png]] 492 - 493 493 = **Cleaning** = 494 494 495 -When assembled, the nodes are water resistant but not submersible. They can handle a good spray and wipe-down. A st iffplasticbrush is helpful to reach areas between the metal spikes on the bottom.421 +When assembled, the nodes are water resistant but not submersible. They can handle a good spray and wipe-down. A strong, non-wire brush is helpful to reach areas between the metal spikes on the bottom. 496 496 497 497 = **Weights (for shipping)** = 498 498 ... ... @@ -592,8 +592,8 @@ 592 592 |**Dimensions (LxHxW)**|558 x 357 x 300mm 593 593 |**Input rating**|100-210V - 50/60Hz 594 594 |**Power**|1000W 595 -|**Weight**|14.5 kg596 -|**Weight with cables**|21 kg521 +|**Weight**|14.5kg 522 +|**Weight with cables**|21kg 597 597 ))) 598 598 599 599 (% class="box" id="HSmartSoloBD3C-16PortableBatteryCharger" %) ... ... @@ -605,8 +605,8 @@ 605 605 |**Dimensions (LxHxW)**|625 x 500 x 366mm 606 606 |**Input rating**|100-210V - 50/60Hz 607 607 |**Power**|100W 608 -|**Weight**|21.5 - 24 kg609 -|** Capacity**|16nodes534 +|**Weight**|21.5 - 24kg 535 +|**Slots no.**|16 610 610 |**Download Speed**|20MB/sec/slot 611 611 ))) 612 612 ... ... @@ -616,11 +616,11 @@ 616 616 617 617 [[image:20250729_124644.jpg]] 618 618 619 -|**Dimensions (LxHxW)**|625 x 500 x 366 mm620 -|**Input rating**|100-210V - 50/60 Hz621 -|**Power**|640 W622 -|**Weight**|26.3 kg623 -|** Capacity**|16nodes545 +|**Dimensions (LxHxW)**|625 x 500 x 366mm 546 +|**Input rating**|100-210V - 50/60Hz 547 +|**Power**|640W 548 +|**Weight**|26.3kg 549 +|**Slots no.**|16 624 624 ))) 625 625 626 626 (% class="box" %) ... ... @@ -630,9 +630,9 @@ 630 630 [[image:20250729_124957.jpg]] 631 631 632 632 633 -|**Dimensions (LxHxW)**|590 x 225 x 405 mm634 -|**Weight**|8.2 kg635 -|** Capacity**|6nodes559 +|**Dimensions (LxHxW)**|590 x 225 x 405mm 560 +|**Weight**|8.2kg 561 +|**Slots no.**|6 636 636 ))) 637 637 638 638 (% class="box" %) ... ... @@ -642,13 +642,9 @@ 642 642 [[image:20250729_124502.jpg]] 643 643 644 644 |**Dimensions (LxHxW)**|230 x 340 x 310mm 645 -|**Weight**|((( 646 -3.6kg (empty) 647 - 648 -18.0kg (full) 571 +|**Weight**|3.6kg 572 +|**Slots no.**|6 649 649 ))) 650 -|**Capacity**|6 nodes 651 -))) 652 652 653 653 (% class="box" %) 654 654 ((( ... ... @@ -658,7 +658,7 @@ 658 658 659 659 |**Dimensions (LxHxW)**|225 x 200 x 550mm 660 660 |**Weight**| 661 -|** Capacity**|8nodes583 +|**Slots no.**|6 662 662 ))) 663 663 ))) 664 664 )))
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... ... @@ -1,1 +1,0 @@ 1 -I can verify that the default orientation for the SmartSolo 3C nodes is positive values for case motion to the South, West, and downwards. We have co-located nodes with permanent stations and noticed this correlation when comparing waveforms. - Date
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... ... @@ -1,1 +1,0 @@ 1 -2026-07-09 10:45:51.967