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Ahlrichs, Niklas; Hübscher, Christian; Andersen, Theis Raaschou; Preine, Jonas; Bogner, Laura; Schäfer, Wiebke (2023): Time-migrated multichannel seismic data and separated diffraction energy, sediment echosounder data and calculated grids from the Langeland Fault System, Baltic Sea [dataset]. PANGAEA, https://doi.org/10.1594/PANGAEA.954017

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Published: 2023-01-12DOI registered: 2023-01-17

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Abstract:
The understanding of the dynamics and scales of glacially induced faulting greatly benefits from an analyis using multiple geophysical datasets. By using a combination of high-resolution 2D seismic reflection data in combination with diffraction imaging, sediment echosounder data and shallow wells, we investigate a fault and graben system offshore Langeland Island in the Baltic Sea, which we term the Langeland Fault System. This approach allows to unravel the spatial character of the Langeland Fault System along an elevated basement block of the Ringkoebing-Fyn High. Our analysis shows the continuation of deep-rooted faults up to the seafloor. Imaging the shallowmost strata reveals Quaternary fault reactivation during glacial or postglacial times. This combination of imaging techniques is rarley realized in the onshore hinterland, thus, representing a unique analysis of Quaternary fault reactivation by combining onshore and offshore data and methods. Seismic data was acquired in September 2020 during a student field exercise cruise onboard R/V Alkor. The survey was organized by the University of Hamburg (Cruise AL545). Seismic data acquisition was carried out using a Mini-GI gun (true GI-mode with a 15 in³ generator and 30 in³ injector volume) and a 48-channel streamer with 4 m group spacing. The data have a dominant frequency of 250 Hz. Signal penetration is up to 1 s two-way travel time (TWT). The seismic processing routine included frequency filtering, amplitude recovery, noise reduction, surface-related multiple attenuation (SRME), Kirchhoff time migration. Innomars SES 2000 parametric sub-bottom profiler, which is hull-mounted on R/V Alkor, was used for the acquistion of the sediment echosounder data (Primary frequencies of about 100 kHz, secondary parametric frequency: 8 kHz). The diffraction imaging is based on separating the dominant reflected wavefield through a coherent summation scheme guided by a dip-based wavefront filter. In a next step, the reflection-only data is subtracted from the input data. The diffraction-only data is then focused using FD migration. By calculating the squared envelope of the focused diffractions, the diffraction energy stacks are obtained. The mapping procedure includes gridding using all available profiles in order to create time-structure maps by minimum curvature spline interpolation. Isochron maps (vertical thickness in two-way time) for the Triassic to Quaternary units were calculated by subtracting the top and bottom horizons of the specific units.
Keyword(s):
Baltic Sea; Diffraction imaging; Glacially induced faults; Langeland; reflection seismics; sediment echosounder; Seismic; thickness maps; time-structure maps
Supplement to:
Ahlrichs, Niklas; Hübscher, Christian; Andersen, Theis Raaschou; Preine, Jonas; Bogner, Laura; Schäfer, Wiebke (2023): The Langeland Fault System unravelled: Quaternary fault reactivation along an elevated basement block between the North German and Norwegian–Danish basins. Boreas, bor.12614, https://doi.org/10.1111/bor.12614
Funding:
German Research Foundation (DFG), grant/award no. 465329435: Inversionstektonik am Nordrand des Norddeutschen Beckens: Kreidezeitliche bis rezente Reaktivierung von triassischen Abschiebungen (iTec-NGB)
Coverage:
Median Latitude: 55.046667 * Median Longitude: 10.992500 * South-bound Latitude: 54.961700 * West-bound Longitude: 10.900000 * North-bound Latitude: 55.130000 * East-bound Longitude: 11.091700
Date/Time Start: 2020-09-25T23:30:00 * Date/Time End: 2020-09-27T16:22:00
Event(s):
AL545_5-2_26 (P26)  * Latitude Start: 54.963300 * Longitude Start: 11.018300 * Latitude End: 55.128300 * Longitude End: 11.091700 * Date/Time Start: 2020-09-25T23:30:00 * Date/Time End: 2020-09-26T01:49:00 * Campaign: AL545 (GPF 19-1_80) * Basis: Alkor (1990) * Method/Device: Seismic reflection profile (SEISREFL)
AL545_5-2_40 (P40)  * Latitude Start: 55.130000 * Longitude Start: 10.986700 * Latitude End: 54.961700 * Longitude End: 10.900000 * Date/Time Start: 2020-09-27T11:34:00 * Date/Time End: 2020-09-27T14:00:00 * Campaign: AL545 (GPF 19-1_80) * Basis: Alkor (1990) * Method/Device: Seismic reflection profile (SEISREFL)
AL545_5-2_41 (P41)  * Latitude Start: 54.966700 * Longitude Start: 10.938300 * Latitude End: 55.130000 * Longitude End: 11.020000 * Date/Time Start: 2020-09-27T14:24:00 * Date/Time End: 2020-09-27T16:22:00 * Campaign: AL545 (GPF 19-1_80) * Basis: Alkor (1990) * Method/Device: Seismic reflection profile (SEISREFL)
Parameter(s):
#NameShort NameUnitPrincipal InvestigatorMethod/DeviceComment
Event labelEventAhlrichs, Niklas
File contentContentAhlrichs, Niklas
Binary ObjectBinaryAhlrichs, Niklas
Binary Object (File Size)Binary (Size)BytesAhlrichs, Niklas
Status:
Curation Level: Basic curation (CurationLevelB)
Size:
24 data points

Data

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Event

Content

Binary

Binary (Size) [Bytes]
AL545_5-2_26 Profile 26 (P26) Diffraction energy section (result from diffraction separation routine) - Fig. 9 in supplementary articleAhlrichs_etal_LFS_P26_DIFF_Energy.sgy15.3 MBytes
AL545_5-2_26Profile 26 (P26) Reflection seismic section (fully processed time-migrated section) - Fig. 9 in supplementary articleAhlrichs_etal_LFS_P26_ReflSeismic.sgy17.7 MBytes
AL545_5-2_40 Profile 40 (P40) Diffraction energy section (result from diffraction separation routine) - Fig. 7 in supplementary articleAhlrichs_etal_LFS_P40_DIFF_Energy.sgy15.7 MBytes
AL545_5-2_40Profile 40 (P40) Reflection seismic section (fully processed time-migrated section) - Fig. 7 in supplementary articleAhlrichs_etal_LFS_P40_ReflSeismic.sgy17.9 MBytes
AL545_5-2_40Profile 40 (P40) Sediment echosounder data (Parasound) - Part 1, partly shown in Fig. 11 of supplementary articleAhlrichs_etal_LFS_P40_SES1.sgy145.5 MBytes
AL545_5-2_40Profile 40 (P40) Sediment echosounder data (Parasound) - Part 2, partly shown in Fig. 11 of supplementary articleAhlrichs_etal_LFS_P40_SES2.sgy427.8 MBytes
AL545_5-2_41 Profile 41 (P41) Diffraction energy section (result from diffraction separation routine) - Fig. 8 in supplementary articleAhlrichs_etal_LFS_P41_DIFF_Energy.sgy15.3 MBytes
AL545_5-2_41Profile 41 (P41) Reflection seismic section (fully processed time-migrated section) - Fig. 8 in supplementary articleAhlrichs_etal_LFS_P41_ReflSeismic.sgy17.4 MBytes
AL545_5-2_41Profile 41 (P41) Sediment echosounder data (Parasound) - Part 1, partly shown in Fig. 11 of supplementary articleAhlrichs_etal_LFS_P41_SES1.sgy427.3 MBytes
AL545_5-2_41Profile 41 (P41) Sediment echosounder data (Parasound) - Part 2, partly shown in Fig. 11 of supplementary articleAhlrichs_etal_LFS_P41_SES2.sgy314.2 MBytes
Isochrone maps (vertical thickness in two-way traveltime) for Triassic to Quaternary units - partly shown in Fig. 10 of supplementary articleAhlrichs_etal_LFS_Grids_Isochron.rar2.5 MBytes
Time-structure maps (depth position in two-way traveltime) for Triassic to Quaternary units - partly shown in Fig. 6 of supplementary articleAhlrichs_etal_LFS_Grids_time-structure.rar3.1 MBytes