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  • 1
    Publication Date: 2023-03-02
    Keywords: Event label; File format; File name; File size; MEDOC-2010; MEDOC-2010-Seismic-4; MEDOC-2010-Seismic-6; MEDOC-2010-Seismic-8; Sarmiento de Gamboa; Seismic reflection profile; SEISREFL; Uniform resource locator/link to file
    Type: Dataset
    Format: text/tab-separated-values, 25 data points
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  • 2
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    PANGAEA
    In:  Supplement to: Buffett, Grant George; Krahmann, Gerd; Klaeschen, Dirk; Schroeder, Katrin; Sallarès, Valenti; Papenberg, Cord; Ranero, César R; Zitellini, Nevio (2017): Seismic Oceanography in the Tyrrhenian Sea: Thermohaline Staircases, Eddies, and Internal Waves. Journal of Geophysical Research: Oceans, 122(11), 8503-8523, https://doi.org/10.1002/2017JC012726
    Publication Date: 2023-01-13
    Description: We use seismic oceanography to document and analyze oceanic thermohaline fine structure across the Tyrrhenian Sea. Multichannel seismic (MCS) reflection data were acquired during the MEDiterranean OCcidental survey in April–May 2010. We deployed along‐track expendable bathythermograph probes simultaneous with MCS acquisition. At nearby locations we gathered conductivity‐temperature‐depth data. An autonomous glider survey added in situ measurements of oceanic properties. The seismic reflectivity clearly delineates thermohaline fine structure in the upper 2,000 m of the water column, indicating the interfaces between Atlantic Water/Winter Intermediate Water, Levantine Intermediate Water, and Tyrrhenian Deep Water. We observe the Northern Tyrrhenian Anticyclone, a near‐surface mesoscale eddy, plus laterally and vertically extensive thermohaline staircases. Using MCS, we are able to fully image the anticyclone to a depth of 800 m and to confirm the horizontal continuity of the thermohaline staircases of more than 200 km. The staircases show the clearest step‐like gradients in the center of the basin while they become more diffuse toward the periphery and bottom, where impedance gradients become too small to be detected by MCS. We quantify the internal wave field and find it to be weak in the region of the eddy and in the center of the staircases, while it is stronger near the coastlines. Our results indicate this is because of the influence of the boundary currents, which disrupt the formation of staircases by preventing diffusive convection. In the interior of the basin, the staircases are clearer and the internal wave field weaker, suggesting that other mixing processes such as double diffusion prevail.
    Type: Dataset
    Format: application/zip, 4 datasets
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  • 3
    Publication Date: 2023-03-02
    Keywords: Date/Time of event; DEPTH, water; Event label; Expendable bathythermograph; Latitude of event; Longitude of event; MEDOC-2010; Salinity; Sarmiento de Gamboa; Sound velocity in water; T5_00008; T5_00010; T5_00012; T5_00014; T5_00017; T5_00019; T5_00021; T5_00023; T5_00025; T5_00027; T5_00029; T5_00031; T5_00033; T5_00035; T5_00037; T5_00040; T5_00042; T5_00044; T5_00046; T5_00048; T5_00050; T5_00052; T5_00054; T5_00056; T5_00058; T5_00060; T5_00062; T5_00064; T5_00067; T5_00069; T5_00071; T5_00074; T5_00076; T5_00078; T5_00080; T5_00082; T5_00084; T5_00086; T5_00088; T5_00090; T5_00092; T5_00094; T5_00096; T5_00098; T5_00100; T5_00102; T5_00104; T5_00107; T5_00109; T5_00111; T5_00113; T5_00115; T5_00117; T5_00119; T5_00121; T5_00123; T5_00125; T5_00127; T5_00129; T5_00131; T5_00133; T5_00135; T5_00137; T5_00139; T5_00141; T5_00143; T5_00145; T5_00147; T5_00149; T5_00151; T5_00153; T5_00155; T5_00157; T5_00159; T5_00161; T5_00163; T5_00165; T5_00167; T5_00169; T5_00172; T5_00174; T5_00176; T5_00178; T5_00180; T5_00182; T5_00184; T5_00186; T5_00188; T5_00190; T5_00192; T5_00194; T5_00196; T5_00198; T5_00200; T5_00202; T5_00204; T5_00206; T5_00208; T5_00210; T5_00212; T5_00214; T5_00216; T5_00218; T5_00220; T5_00222; T5_00224; T5_00226; T5_00228; T5_00230; T5_00232; T5_00234; T5_00237; T5_00239; T5_00241; T5_00243; T5_00245; T5_00247; T5_00249; T5_00251; T5_00253; T5_00255; T5_00257; T5_00259; T5_00261; T5_00263; T5_00265; T5_00267; T5_00269; T5_00271; T5_00273; T5_00275; T5_00277; T5_00279; T5_00281; T5_00283; T5_00285; T5_00287; T5_00289; T5_00291; T5_00293; T5_00295; T5_00297; T5_00299; T5_00301; T5_00303; T5_00305; T5_00307; T5_00309; T5_00311; T5_00313; T5_00315; T5_00317; T5_00319; T5_00321; T5_00323; T5_00325; T5_00327; T5_00330; T5_00332; T5_00334; T5_00336; T5_00338; T5_00340; T5_00342; T5_00344; T5_00346; T5_00347; T5_00349; T5_00351; T5_00353; T5_00355; T5_00357; T5_00358; T5_00362; T5_00364; T5_00366; T5_00368; T5_00370; T5_00372; T5_00374; T5_00376; T5_00378; T5_00380; T5_00382; T5_00384; Temperature, water; XBT
    Type: Dataset
    Format: text/tab-separated-values, 1783957 data points
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  • 4
    Publication Date: 2024-04-20
    Description: In September of 2018, the Spanish research vessel Sarmiento de Gamboa shot the seismic profile FRAME-p03 across the continent-to-ocean transition zone in the Iberia Abyssal Plain of the Western Iberia passive continental margion to the west of Portugal. Seismic shots were recorded on 30 ocean-bottom-seismometers (OBS) and ocean-bottom-hydrophones (OBH). Spanish instruments were OBS from the Spanish Pool operated by the Marine Technology Unit (UTM) of Consejo Superior de Investigaciones Científicas (CSIC) and German istruments were OBH from the GEOMAR Helmholtz Centre for Ocean Research Kiel. Seismic data in SEGY format of the all seismic stations of both partners are archived at the PANGAEA Datacenter. Please note that the data have a time offset of 1 sec and a reduction velocity of 8 km/s. The seismic FRAME (Formation of Geological Domains in the Western Iberian Margin and Tectonic Reactivation of their Limit) cruise was funded by the Spanish Ministry of Science.
    Keywords: Atlantic; Binary Object; Binary Object (File Size); Elevation of event; Event label; File content; FRAME-OBS; FRAME-OBS_OBH100; FRAME-OBS_OBH101; FRAME-OBS_OBH102; FRAME-OBS_OBH103; FRAME-OBS_OBH76; FRAME-OBS_OBH77; FRAME-OBS_OBH78; FRAME-OBS_OBH79; FRAME-OBS_OBH80; FRAME-OBS_OBH81; FRAME-OBS_OBH88; FRAME-OBS_OBH89; FRAME-OBS_OBH90; FRAME-OBS_OBH91; FRAME-OBS_OBH92; FRAME-OBS_OBH93; FRAME-OBS_OBS104; FRAME-OBS_OBS105; FRAME-OBS_OBS82; FRAME-OBS_OBS83; FRAME-OBS_OBS84; FRAME-OBS_OBS85; FRAME-OBS_OBS86; FRAME-OBS_OBS87; FRAME-OBS_OBS94; FRAME-OBS_OBS95; FRAME-OBS_OBS96; FRAME-OBS_OBS97; FRAME-OBS_OBS98; FRAME-OBS_OBS99; FRAME-OBS_P03; Latitude of event; Longitude of event; OBH; OBS; Ocean bottom hydrophone; ocean-bottom-hydrophones; ocean bottom seismometer; Ocean bottom seismometer; oceanic crust; passive continental margin; Portuguese Margin; S03; Sarmiento de Gamboa; seismic data; Seismic refraction profile; SEISREFR; South Atlantic Ocean
    Type: Dataset
    Format: text/tab-separated-values, 72 data points
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  • 5
    Publication Date: 2024-04-20
    Description: We provide seismic refraction and wide-angle data from two profile shot across the marine fore-arc of Nicaragua, Central Maerica. Profiles NIC20 and NIC50 were obtained aboard the US R/V Maurice Ewing cruise EW00–05 in 2000. All profile run across the condinantal margin and provide in total 26 digital record sections.
    Keywords: 1992 Nicaragua tsunami earthquake; Binary Object; Binary Object (File Size); Event label; EW0005; EW0005_NIC20; EW0005_NIC50; EW0005_OBH01; EW0005_OBH02; EW0005_OBH03; EW0005_OBH04; EW0005_OBH05; EW0005_OBH06; EW0005_OBH07; EW0005_OBH08; EW0005_OBH09; EW0005_OBH10; EW0005_OBH11; EW0005_OBH12; EW0005_OBH13; EW0005_OBH15; EW0005_OBH16; EW0005_OBH17; EW0005_OBH19; EW0005_OBH20; EW0005_OBH21; EW0005_OBH22; EW0005_OBH23; EW0005_OBH24; EW0005_OBH25; EW0005_OBH26; EW0005_OBH27; EW0005_OBH28; File content; Latitude of event; Longitude of event; Marine Fore-arc; Maurice Ewing; North Pacific Ocean; OBH; Ocean bottom hydrophone; SEIS; Seismic; seismic refraction; Seismic structure; Seismic tomography
    Type: Dataset
    Format: text/tab-separated-values, 30 data points
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  • 6
    Publication Date: 2024-04-20
    Description: We provide seismic refraction and wide-angle data from a profile shot across the marine fore-arc of Nicaragua, Central Maerica. Profile P1 was acquired with the German RV SONNE in 1996. The profile runs across the condinantal margin and provide in total 10 digital record sections.
    Keywords: 1992 Nicaragua tsunami earthquake; Binary Object; Binary Object (File Size); Event label; File content; Latitude of event; Longitude of event; Marine Fore-arc; North Pacific Ocean; OBH; Ocean bottom hydrophone; P1; PACOMAR III; SEIS; Seismic; seismic refraction; Seismic structure; Seismic tomography; SO107; SO107_OBH01; SO107_OBH02; SO107_OBH03; SO107_OBH04; SO107_OBH05; SO107_OBH06; SO107_OBH07; SO107_OBH08; SO107_OBH09; SO107_OBH10; SO107_SEIS_L; Sonne
    Type: Dataset
    Format: text/tab-separated-values, 12 data points
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  • 7
    Publication Date: 2016-01-01
    Description: Marine multichannel seismic (MCS) data, used to obtain structural reflection images of the earth’s subsurface, can also be used in physical oceanography exploration. This method provides vertical and lateral resolutions of O(10–100) m, covering the existing observational gap in oceanic exploration. All MCS data used so far in physical oceanography studies have been acquired using conventional seismic instrumentation originally designed for geological exploration. This work presents the proof of concept of an alternative MCS system that is better adapted to physical oceanography and has two goals: 1) to have an environmentally low-impact acoustic source to minimize any potential disturbance to marine life and 2) to be light and portable, thus being installed on midsize oceanographic vessels. The synthetic experiments simulate the main variables of the source, shooting, and streamer involved in the MCS technique. The proposed system utilizes a 5-s-long exponential chirp source of 208 dB relative to 1 μPa at 1 m with a frequency content of 20–100 Hz and a relatively short 500-m-long streamer with 100 channels. This study exemplifies through numerical simulations that the 5-s-long chirp source can reduce the peak of the pressure signal by 26 dB with respect to equivalent air gun–based sources by spreading the energy in time, greatly reducing the impact to marine life. Additionally, the proposed system could be transported and installed in midsize oceanographic vessels, opening new horizons in acoustic oceanography research.
    Print ISSN: 0739-0572
    Electronic ISSN: 1520-0426
    Topics: Geography , Geosciences , Physics
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  • 8
    Publication Date: 2019-11-27
    Print ISSN: 0028-0836
    Electronic ISSN: 1476-4687
    Topics: Biology , Chemistry and Pharmacology , Medicine , Natural Sciences in General , Physics
    Published by Springer Nature
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  • 9
    Publication Date: 2018-09-01
    Print ISSN: 0196-2892
    Electronic ISSN: 1558-0644
    Topics: Architecture, Civil Engineering, Surveying , Geography
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  • 10
    Publication Date: 2018-03-01
    Print ISSN: 0196-2892
    Electronic ISSN: 1558-0644
    Topics: Architecture, Civil Engineering, Surveying , Geography
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