Correction of nonlinear clock drift: the BRAVOSEIS Ocean-Bottom Seismometer Network in the Bransfield Strait, Antarctica
Коррекция нелинейного дрейфа часов: сеть донных сейсмометров BRAVOSEIS в проливе Брансфилд, Антарктида
2026-02-11
SCID: 54.1/nzuwgdzx
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BRAVOSEIS Bransfield Strait deploymentdaily Green's functionsnoise cross-correlationsnonlinear clock drift correctionocean-bottom seismometer (OBS) clock drift
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Abstract (AI)
SUMMARY Ocean-bottom seismometers (OBSs) are reliable instruments to record ground motions and acoustic signals on the sea floor. Precise timing of the data is essential for most seismological analyses. The internal clocks of the OBSs are not global navigation satellite system (GNSS)-controlled, so the clock drift mainly caused by ageing of the quartz crystal and temperature effects must be corrected. As part of the BRAVOSEIS experiment, eight OBSs were deployed in the Antarctic Bransfield Strait for 13 months. All OBSs suffered from a large (−15.3 to 5.4 s) and nonlinear (−1.2 to −0.6 s residual to linear drift) clock drift. We used noise cross-correlations to determine the clock drift. The parameters for data pre- and post-processing such as filtering and normalization had to be selected carefully. Overlapping correlation windows were stacked to derive daily Green’s functions. The time-shift between consecutive days was calculated and distributed linearly over the data to obtain a continuous data set without gaps or overlaps. Airgun shots were used to constrain the cumulative clock drift of one station without initial synchronization. Two onshore stations served as GNSS-controlled reference for four OBSs in the northern part of the Central Bransfield Basin. A different noise regime prevailed in the southern part of the basin; therefore, two already corrected OBSs from the northern part were used as reference stations for the southern OBSs. In this way, the clock drift of all OBSs could be corrected accurately.
Key Findings
1
Airgun shots constrained cumulative clock drift for one unsynchronized station, enabling absolute correction without initial synchronization.
2
Clock drift was nonlinear, with residuals to linear drift ranging from −1.2 to −0.6 seconds.
3
Eight OBSs were deployed in the Bransfield Strait for 13 months and exhibited large clock drifts between −15.3 and 5.4 seconds.
4
GNSS-controlled onshore stations served as references for four northern OBSs; two corrected northern OBSs were used as references for southern OBSs due to different noise regimes, allowing accurate correction for all OBSs.
5
Noise cross-correlations were used to determine and correct clock drift, requiring careful selection of preprocessing parameters (filtering, normalization).
6
Overlapping correlation windows were stacked to derive daily Green’s functions, and daily time-shifts were distributed linearly to produce continuous, gap-free data.
Research Object
BRAVOSEIS ocean-bottom seismometer (OBS) network deployed in the Bransfield Strait, Antarctica
Research Subject
Correction of large nonlinear internal clock drift of the deployed OBS instruments using noise cross-correlations, daily Green’s functions stacking, time-shift distribution, and reference constraints from airgun shots and GNSS-controlled onshore stations
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2026-02-11
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