1979•Journal of Geophysical Research AtmospheresRequires access

Geology of a submarine hydrothermal field, Mid‐Atlantic Ridge, 26°n latitude

Darcy G. Temple, Robert Bruce Scott, Peter A. Rona

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Abstract

A comparison of structural and lithologic features observed from two stereophotographic traverses of the Trans‐Atlantic Geotraverse (TAG) hydrothermal field, 26°N, Mid‐Atlantic Ridge, with features of the French‐American Mid‐Ocean Undersea Study (Famous) hydrothermal site and the Mounds hydrothermal field of the Galapagos spreading center shows that all three areas have hydrothermal deposits with restricted and patchy lateral extent and are associated with closely spaced normal faults commonly of small displacement. No one lithology characterizes either the rocks or the sediments that underlie the hydrothermal deposits. Regions without hydrothermal manganese oxide deposits such as the rift valley at 37°N in the Famous area exhibit larger and fewer faults and lack the abundant permeable semiconsolidated breccia seen at 26°N. Thus structural factors which facilitate hydrothermal circulation by enhancing permeability appear critical to hydrothermal deposition. Structural features of the rift valley wall at 26°N include inward facing normal faulting, outward facing normal faulting, and outward tilting by rotation of fault blocks. These observations support a viscous drag mechanism of uplift of the rift valley walls.

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A comparison of structural and lithologic features observed from two stereophotographic traverses of the Trans‐Atlantic Geotraverse (TAG) hydrothermal field, 26°N, Mid‐Atlantic Ridge, with features of the French‐American Mid‐Ocean Undersea Study (Famous) hydrothermal site and the Mounds hydrothermal field of the Galapagos spreading center shows that all three areas have hydrothermal deposits with restricted and patchy lateral extent and are associated with closely spaced normal faults commonly of small displacement. No one lithology characterizes either the rocks or the sediments that underlie the hydrothermal deposits. Regions without hydrothermal manganese oxide deposits such as the rift valley at 37°N in the Famous area exhibit larger and fewer faults and lack the abundant permeable semiconsolidated breccia seen at 26°N. Thus structural factors which facilitate hydrothermal circulation by enhancing permeability appear critical to hydrothermal deposition. Structural features of the rift valley wall at 26°N include inward facing normal faulting, outward facing normal faulting, and outward tilting by rotation of fault blocks. These observations support a viscous drag mechanism of uplift of the rift valley walls.

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Available abstract

A comparison of structural and lithologic features observed from two stereophotographic traverses of the Trans‐Atlantic Geotraverse (TAG) hydrothermal field, 26°N, Mid‐Atlantic Ridge, with features of the French‐American Mid‐Ocean Undersea Study (Famous) hydrothermal site and the Mounds hydrothermal field of the Galapagos spreading center shows that all three areas have hydrothermal deposits with restricted and patchy lateral extent and are associated with closely spaced normal faults commonly of small displacement. No one lithology characterizes either the rocks or the sediments that underlie the hydrothermal deposits. Regions without hydrothermal manganese oxide deposits such as the rift valley at 37°N in the Famous area exhibit larger and fewer faults and lack the abundant permeable semiconsolidated breccia seen at 26°N. Thus structural factors which facilitate hydrothermal circulation by enhancing permeability appear critical to hydrothermal deposition. Structural features of the rift valley wall at 26°N include inward facing normal faulting, outward facing normal faulting, and outward tilting by rotation of fault blocks. These observations support a viscous drag mechanism of uplift of the rift valley walls.

Key concepts: Hydrothermal circulation, Geology, Mid-Atlantic Ridge, Ridge, Rift, Breccia, Lithology, Geochemistry

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