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  • 1
    ISSN: 0012-821X
    Source: Elsevier Journal Backfiles on ScienceDirect 1907 - 2002
    Topics: Geosciences , Physics
    Type of Medium: Electronic Resource
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  • 2
    Electronic Resource
    Electronic Resource
    Amsterdam : Elsevier
    Earth and Planetary Science Letters 73 (1985), S. 211-225 
    ISSN: 0012-821X
    Source: Elsevier Journal Backfiles on ScienceDirect 1907 - 2002
    Topics: Geosciences , Physics
    Type of Medium: Electronic Resource
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  • 3
    Electronic Resource
    Electronic Resource
    Amsterdam : Elsevier
    Earth and Planetary Science Letters 109 (1992), S. 73-85 
    ISSN: 0012-821X
    Source: Elsevier Journal Backfiles on ScienceDirect 1907 - 2002
    Topics: Geosciences , Physics
    Type of Medium: Electronic Resource
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  • 4
    Electronic Resource
    Electronic Resource
    Amsterdam : Elsevier
    Earth and Planetary Science Letters 36 (1977), S. 92-110 
    ISSN: 0012-821X
    Source: Elsevier Journal Backfiles on ScienceDirect 1907 - 2002
    Topics: Geosciences , Physics
    Type of Medium: Electronic Resource
    Location Call Number Limitation Availability
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  • 5
    ISSN: 0012-821X
    Source: Elsevier Journal Backfiles on ScienceDirect 1907 - 2002
    Topics: Geosciences , Physics
    Type of Medium: Electronic Resource
    Location Call Number Limitation Availability
    BibTip Others were also interested in ...
  • 6
    ISSN: 0012-821X
    Source: Elsevier Journal Backfiles on ScienceDirect 1907 - 2002
    Topics: Geosciences , Physics
    Type of Medium: Electronic Resource
    Location Call Number Limitation Availability
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  • 7
    Electronic Resource
    Electronic Resource
    [s.l.] : Nature Publishing Group
    Nature 267 (1977), S. 600-603 
    ISSN: 1476-4687
    Source: Nature Archives 1869 - 2009
    Topics: Biology , Chemistry and Pharmacology , Medicine , Natural Sciences in General , Physics
    Notes: [Auszug] Our initial estimates of properties useful for detecting deep-ocean hydrothermal fluids were based on the geochemistry of the Red Sea brines6'7, the only oceanic geothermal system previously sampled. In this system the basalt-interaction imprint is unfortunately superimposed on a saturated brine ...
    Type of Medium: Electronic Resource
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  • 8
    Electronic Resource
    Electronic Resource
    Springer
    Marine geophysical researches 16 (1994), S. 105-143 
    ISSN: 1573-0581
    Keywords: Transforms ; fracture zones
    Source: Springer Online Journal Archives 1860-2000
    Topics: Geosciences , Physics
    Notes: Abstract Seabeam and SeaMARC II swath-mapping surveys, with ancillary magnetic and gravity profiling, describe the fast-slipping (84–86 mm year−1) 380 km-long Heezen transform (56° S) and the 145 km-long Raitt transform (54° S), together with the youngest parts of their rise-flank fracture zones. Archived seismicity, satellite altimetry, and older geophysical traverses extend these descriptions, constrain the structural interpretations, and allow preliminary interpretations of the adjacent Tharp, Hollister, and Udintsev transforms. At Heezen transform, Pacific-Antarctic plate motion is partitioned between the principal strike-slip fault zone in a deep transform valley and a marginal zone of rifting 30–40 km north of the transform axis, where a zone of secondary Riedel shearing evolved into a belt of crustal extension following a Pliocene change in relative plate motion. Crustal extension and lithospheric rupture along this belt has opened rift valleys, allowed the eruption of high volcanic ridges, and suppressed uplift of a transverse ridge along the north side of the transform valley. The south side has a high transverse ridge that is probably a flexural response to the mass deficiency of the valley; it subsides and vanishes along the eastern part of the valley, which has been infilled with recent volcanism. At the eastern risecrest intersection is another uplift of old lithosphere, an intersection high raised by transfer of heat from a curved and transform-parallel overshot ridge that prolongs the axial ridge of the East Pacific Rise (EPR). Tharp transform appears to be a mirror-image of Heezen transform, but with less evidence of volcanism at the marginal rifting site. Raitt transform responded differently to the Pliocene change in plate motion: a single strike-slip zone was replaced with anen echelon pair of newly oriented faults, connected by a 10 km-long mid-Raitt spreading axis which has accreted rough, obliquely lineated crust. Transverse ridges have been raised along both sides of the transform, probably in response to the mass deficiency of the strip of mid-Raitt crust and to heating at the mid-Raitt axis. The intersections of Raitt transform with the EPR crest lack long overshot ridges, but periodically have tall, narrow intersection highs probably raised mainly by intrusion across the transform into old lithosphere. Udintsev transform adjusted to the change in slip direction by segmenting like Raitt transform, but the mid-Udintsev spreading axis grew within a widened transtensional transform valley bordered on both sides by high transverse ridges. Volcanism at the intersections with the rifted crest of the Pacific-Antarctic Ridge does not infill and close off the transform valley, so the Udintsev transverse ridges extend past the intersections to become part of the rise-flank fracture zones. At faster separating parts of the Pacific-Antarctic boundary, and on most of the rest of the EPR, fracture zone structure is mainly inherited from the variable arrangement of volcanic ridges and tectonic uplifts at the risecrest intersections, rather than from structures formed at the transform valley.
    Type of Medium: Electronic Resource
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  • 9
    Publication Date: 2012-02-23
    Description: G33A-0852 The convergent continental margin off Central Chile displays one of the steepest forearc reliefs on earth: the distance from coast to the deformation front, i.e. from 0 to more than 5,000 m water depths just spans less than 100 km. The steep slope is characterized by voluminous submarine landslides, large slumps and deeply incised canyons. On February 27, 2010 this area was shaken heavily by one of the largest earthquakes ever recorded. How did this mega-event affect the seafloor morphology? Did it re-shape the submarine landscape? Did it create new slumps and slides on the continental slope? Were pre-existing fault and slide scarps modified? The pre-event geomorphology is well displayed in a detailed bathymetric map based on a compilation of data from more than 10 cruises with German RV Sonne and Meteor, Chilean RV Vidal Gormaz and British RRS James Cook to the area since 1995. In the framework of the "Rapid Response" project SIOSEARCH (Scripps Institution of Oceanography's Survey of the Earthquake and Rupture Offshore Chile) the same area was surveyed immediately after the earthquake by US RV Melville. Very detailed bathymetric maps were compiled from data of the new Kongsberg EM122 multibeam system onboard RV Melville. Both datasets allow for an unprecedented "before" and "after" comparison of the morphology of the part of the continental slope that was hit by the earthquake. Both datasets were carefully processed applying the same algorithms to achieve comparable high-resolution maps. The high data density allowed to create digital terrain models on a grid with cell sizes as small as 50 m down to a water depth of 5000 m. Additional information from the backscatter and acoustic imagery recordings was also taken into account. So far, a thorough inspection and comparison of pre- and post-event morphology revealed surprisingly small changes, however processing and interpretation of the data is still going on.
    Type: Conference or Workshop Item , NonPeerReviewed
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  • 10
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    National Science Foundation
    In:  Initial Reports of The Deep Sea Drilling Project, 67 . pp. 707-718.
    Publication Date: 2020-07-28
    Description: Deep-tow data across the Middle America Trench and the lower part of the landward Trench slope off Guatemala provide high-resolution information on the geological setting of four Leg 67 drill sites. Our 6-kHz profiler data resolve stratified sediments seaward of the Trench floor, which we interpret as deposits of Trench turbidites that flowed part way up the seaward slope of the Trench. Reflectors in the Trench fill are laterally continuous and relatively undisturbed. The Trench is segmented into diamond-shaped basins by ridges that intersect it at oblique angles. The acoustic stratigraphy in the Trench fill in these sub-basins is different on either side of an oblique ridge. A mound of variable height and width occurs at the base of the lower Trench slope; the mound could be either deformed Trench strata or an accumulation of debris that slumped from the Trench slope. The lower part of the landward Trench slope is steep and is linear along strike. There is no evidence on our 6-kHz or side-scan sonar data of large gravity slides in this area. Slope sediments are ponded on a bench along the landward Trench slope. They are acoustically stratified, but are not as continuous laterally as are the Trench strata. The structure parallel to the strike of the Trench slope is variable, with many small-scale folds and faults.
    Type: Article , PeerReviewed
    Format: text
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