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Seismic Crustal Structure and Morphotectonic Features Associated with the Chain Fracture Zone and their Role in the Evolution of the Equatorial Atlantic Region.
Marjanovic, Milena, Singh, Satish C., Grevemeyer, Ingo , Growe, Kevin, Wang, Zhikai, Vaddineni, Venkata, Laurencin, Muriel, Carton, Helene, Gomez de la Pena, Laura and Filbrandt, Christian (2020) Seismic Crustal Structure and Morphotectonic Features Associated with the Chain Fracture Zone and their Role in the Evolution of the Equatorial Atlantic Region. Journal of Geophysical Research: Solid Earth, 125 (10). e2020JB020275. DOI 10.1029/2020JB020275.
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Abstract
Oceanic transform faults and fracture zones represent major bathymetric features that keep the records of past and present strike‐slip motion along conservative plate boundaries. Although they play an important role in ridge segmentation and evolution of the lithosphere, their structural characteristics, and their variation in space and time, are poorly understood. To address some of the unknowns, we conducted interdisciplinary geophysical studies in the equatorial Atlantic Ocean, the region where some of the most prominent transform discontinuities have been developing. Here we present the results of the data analysis in the vicinity of the Chain Fracture Zone (FZ), on the South American Plate. The crustal structure across the Chain FZ, at the contact between ~10 and 24 Ma oceanic lithosphere, is sampled along seismic reflection and refraction profiles. We observe that the crustal thickness within and across the Chain FZ ranges from ~4.6‐5.9 km, which compares with the observations reported for slow‐slipping transform discontinuities globally. We attribute this presence of close to normal oceanic crustal thickness within fracture zones to the mechanism of lateral dike propagation, previously considered to be valid only in fast‐slipping environments. Furthermore, the combination of our results with other datasets enabled us to extend the observations to morpho‐tectonic characteristics on a regional scale. Our broader view suggests that the formation of the transverse ridge is closely associated with a global plate reorientation that was also responsible for the propagation and for shaping lower‐order Mid‐Atlantic Ridge segmentation around the equator.
Document Type: | Article |
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Keywords: | seismic structure, oceanic crust, transform faults, fracture zones, Equatorial Atlantic |
Research affiliation: | OceanRep > GEOMAR > FB4 Dynamics of the Ocean Floor > FB4-GDY Marine Geodynamics |
Refereed: | Yes |
Open Access Journal?: | No |
Publisher: | AGU (American Geophysical Union), Wiley |
Projects: | TransAtlanticILAB |
Date Deposited: | 14 Sep 2020 12:50 |
Last Modified: | 08 Feb 2023 09:40 |
URI: | https://oceanrep.geomar.de/id/eprint/50480 |
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