
High‐resolution bathymetry reveals contrasting landslide activity shaping the walls of the Mid‐Atlantic Ridge axial valley
Author(s) -
Cannat Mathilde,
Mangeney Anne,
Ondréas Hélène,
Fouquet Yves,
Normand Alain
Publication year - 2013
Publication title -
geochemistry, geophysics, geosystems
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 1.928
H-Index - 136
ISSN - 1525-2027
DOI - 10.1002/ggge.20056
Subject(s) - geology , mass wasting , bathymetry , seafloor spreading , basalt , geomorphology , ridge , outcrop , debris flow , detachment fault , debris , landslide , geochemistry , paleontology , tectonics , oceanography , extensional definition
Axial valleys are found along most slow‐spreading mid‐ocean ridges and are one of the most prominent topographic features on Earth. In this paper, we present the first deep‐tow swath bathymetry for the axial valley walls of the Mid‐Atlantic Ridge. These data allow us to analyze axial valley wall morphology with a very high resolution (0.5 to 1 m compared to ≥ 50 m for shipboard multibeam bathymetry), revealing the role played by landslides. Slow‐spreading ridge axial valleys also commonly expose mantle‐derived serpentinized peridotites in the footwalls of large offset normal faults (detachments). In our map of the Ashadze area (lat. 13°N), ultramafic outcrops have an average slope of 18° and behave as sliding deformable rock masses, with little fragmentation. By contrast, the basaltic seafloor in the Krasnov area (lat. 16°38′N) has an average slope of 32° and the erosion of the steep basaltic rock faces leads to extensive fragmentation, forming debris with morphologies consistent with noncohesive granular flow. Comparison with laboratory experiments suggests that the repose angle for this basaltic debris is > 25°. We discuss the interplay between the normal faults that bound the axial valley and the observed mass wasting processes. We propose that, along axial valley walls where serpentinized peridotites are exposed by detachment faults, mass wasting results in average slopes ≤ 20°, even in places where the emergence angle of the detachment is larger.