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Volcanic rocks and processes of the Mid-Atlantic Ridge rift valley near 36 ° 49′ N

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Abstract

Eighty samples of submarine basaltic lava were sampled from an 8 km segment of the floor and walls of the inner rift valley of the Mid-Atlantic Ridge during the French American Mid-Ocean Undersea Study (project Famous). The samples were collected from outcrops and talus slopes by the three submersibles: Alvin, Archimede, and Cyana at water depths of about 2600 meters.

The early formed mineral content of the pillow lavas' glassy margins enables classification of the rocks into 5 types: (1) olivine basalt, (2) picritic basalt, (3) plagioclase-olivine-pyroxene basalt, (4) aphyric basalt, and (5) plagioclase-rich basalt. Chemical and mineralogical study indicates that at least 4 types are directly interrelated and that types (1) and (2) are higher-temperature, primitive lavas, and types (3) and (4) are lower-temperature, differentiated lavas derived from the primitive ones by crystal-liquid differentiation. The plagioclase-rich basalts also have a chemical composition of their glass comparable to that of the most differentiated basalts (types 3 and 4) but they differ in their greater amount of early formed plagioclase (12–35%).

In general, the mineralogical variation across the rift valley shows an assymetrical distribution of the major basalt types. Despite the mineralogical diversity of the early formed crystals, the chemistry of the basalt glasses indicates a symmetrical and a gradual compositional change across the rift valley. Based primarily on their chemistry, the rock types 1 and 2 occupy an axial zone 1.1 km wide and make up the central volcanic hills. Differentiated lavas (types 3, 4) occupy the margins and walls of the inner rift valley and also occur near the center of the rift valley between the central hills.

FeO/MgO ratios of olivine and coexisting melt indicate that the average temperature of eruption was 40 ° C higher for the primitive melts (types 1 and 2). Aside from major elements trends, the higher temperature character of the primitive basalts is shown by their common content of chrome spinel.

The thickness of manganese oxide and palagonite on glassy lava provide an estimate of age. In a general fashion the relative age of the various volcanic events follow the compositional zoning observed in the explored area. Most of the youngest samples are olivine basalt of the axial hills. Most older samples occur in the margins of the rift valley (West and N.E. part of explored area) but are significantly younger than the spreading age of the crust on which they are erupted. Intermediate lava types occur mainly east of the rift valley axis and in other areas where plagioclase—olivine—pyroxene basalt and aphyric basalt are present.

The above relations indicate that the diverse lava types were erupted from a shallow, zoned magma chamber from fissures distributed over the width of the inner rift valley and elongate parallel to it. Differentiation was accomplished by cooling and crystallization of plagioclase, olivine, and clinopyroxene toward the margins of the chamber. The centrally located hills were built by the piling up of frequent eruption of mainly primitive lavas which also are the youngest flows. In contrast smaller and less frequent eruptions of more differentiated lavas were exposed on both sides of the rift valley axis.

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References

  • Arcyana: Transform fault and Rift Valley from bathyscaphe and diving saucer. Science 190 (4210), 108–116 (1975)

    Google Scholar 

  • Arcyana: rocks collected in the “FAMOUS” area by bathyscaphe and diving saucer from the Rift Valley of the Mid-Atlantic Ridge: Petrological diversity and structural setting. Deep Sea Res. (in press)

  • Aumento, F.: The Mid-Atlantic Ridge near 45 ° N: Basalts from the area of Confederation Peak. Can. J. Earth Sci. 5, 1–21 (1968)

    Google Scholar 

  • Ballard, R.D., Bryan, W.B., Heirtzler, J.R., Keller, G., Moore, J.G., Van Andel, Tj.: Manned submersible observations in the FAMOUS area: Mid-Atlantic Ridge. Science 190 (4210), 103–108 (1975)

    Google Scholar 

  • Ballard, R.D., Moore, J.G.: Photo atlas of the Mid-Atlantic Ridge Inner Rift Valley (in press)

  • Ballard, R.D., Van Andel, Tj.: Morphology and tectonics of the Inner Rift Valley at 36 ° 50′ N on the Mid-Atlantic Ridge. Geol. Soc. Am. Bull. (in press)

  • Bellaiche, G., Cheminée, J.L., Francheteau, J., Hekinian, R., Le Pichon, X., Needham, H.D., Ballard, R.D.: Rift Valley's inner floor: First submersible study. Nature 250, 558–560 (1974)

    Google Scholar 

  • Bryan, W.B., Moore, J.G.: Compositional variations of young basalts in the Mid-Atlantic Ridge Rift Valley near 36 ° 49′ N. Geol. Soc. Am. Bull. (in press)

  • Bryan, W.B., Thompson, G., Frey, F.A., Dickey, J.S.: Inferred settings and ifferentiation in basalts from the Deep Sea Drilling Project. J. Geophys. Res., (in press)

  • Bryan, W.B., Thompson, G.: Basalts from DSDP leg 37 and the FAMOUS area: Compositional and petrogenetic comparisons. Can. J. Earth. Sci., (in press)

  • Frey, F.A., Bryan, W.B., Thompson, G.: Atlantic Ocean floor; geochemistry and petrology of basalts from leg 2 and 3 of the Deep-Sea Drilling Project: J. Geophys. Res. 79, 5507–5527 (1974)

    Google Scholar 

  • Hekinian, R., Koffert, M.: Rate of palagonitization and manganese coating on basaltic rocks from the rift valley in the Atlantic Ocean near 36 ° 50′ N. Marine Geology 19, 91–109 (1975)

    Google Scholar 

  • Jakobson, J.P.: On the consolidation and plalagonitization of the tephra of Surtsey volcanic island, Iceland. Surtsey Progress Rept. 6, 1–8 (1972)

    Google Scholar 

  • Moore, J.G.: Rate palagonitization of submarine basalt adjacent to Havaii. U.S. Geol. Surv. Profess. Papers 550-D, D163-D171 (1966)

    Google Scholar 

  • Needham, H.D., Francheteau, J.: Some characteristics of the rift valley in the Atlantic Ocean near 36 ° 48′ North. Earth Planet. Sci. Netters 22 (1), 29–43 (1974)

    Google Scholar 

  • Phillips, J.D., Fleming, H.S.: Multi-narrow beam array sonar studies on the Mid-Atlantic Ridge Median Valley: 36 °–37 ° N. Geol. Soc. Am. Bull. (in press).

  • Roeder, P.L., Eimslie, R.F.: Olivine-liquid equilibrium. Contrib. Mineral. Petrol. 29, 275–289 (1970)

    Google Scholar 

  • Storzer, D., Selo, M.: âges par la méthode des traces de fission de basaltes prélevés dans la vallée axiale de la dorsale médio-atlantique aux environs de 37 ° N. Compt. Rend. Acad. Sci. 279-D, 1649–1651 (1974)

    Google Scholar 

  • Storzer, D., Selo, M.: Uranium contents and fission track ages of some basalts from the FAMOUS area. Soc. Géol. France, spec, issue (in press)

  • Yoder, H.S., Sahama, Th.G.: Olivine X-ray determinative curve. Am. Mineralogist 42, 475–491 (1957)

    Google Scholar 

  • White, M., Bryan, W.B.: Strontium isotope, K, Rb, Cs, Sr, Ba and rare earth geochemistry of basalts from the FAMOUS area. Geol. Soc. Am. Bull. (in press)

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Contribution n ° 480 du Départment Scientifique, Centre Océanologique de Bretagne

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Hekinian, R., Moore, J.G. & Bryan, W.B. Volcanic rocks and processes of the Mid-Atlantic Ridge rift valley near 36 ° 49′ N. Contr. Mineral. and Petrol. 58, 83–110 (1976). https://doi.org/10.1007/BF00384746

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