Geochemistry of ODP Leg 125 peridotites


Autoria(s): Parkinson, Ian J; Pearce, Julian A
Cobertura

MEDIAN LATITUDE: 24.348113 * MEDIAN LONGITUDE: 144.600955 * SOUTH-BOUND LATITUDE: 19.499000 * WEST-BOUND LONGITUDE: 141.738000 * NORTH-BOUND LATITUDE: 30.964300 * EAST-BOUND LONGITUDE: 146.696000 * DATE/TIME START: 1986-03-26T10:30:00 * DATE/TIME END: 1989-03-31T10:00:00

Data(s)

07/12/1998

Resumo

Ocean Drilling Program Leg 125 recovered serpentined harzburgites and dunites from a total of jive sites on the crests and flanks of two serpen finite seamounts, Conical Seamount in the Mariana forearc and Torishima Forearc Seamount in the Izu-Bonin forearc. These are some of the first extant forearc peridotites reported in the literature and they provide a window into oceanic, supra-subduction zone (SSZ) mantle processes. Harzbutrgites from both seamounts are very refractory with low modal clinopyroxene (<4%), chrome-rich spinels (cx-number = 0.40-0.80), very low incompatible element contents, and (with the exception of amphibole-bearing samples) U-shaped rare earth element (REE) profiles with positive Eu anomalies. Both sets of peridotites have olivine-spinel equilibration temperatures that are low compared with abyssal peridotites, possibly because of water-assisted diffusional equilibration in the SSZ environment However, other features indicate that the harzburgites from the two seamounts have very different origins. Harzburgites from Conical Seamount are characterized by calculated oxygen fugacities between FMQ (fayalite- magnetite- quartz) - 1.1 (log units) and FMQ + 0.4 which overlap those of mid-ocean ridge basalt (MORB) peridotites. Dunites from Conical Seamotmt contain small amounts of clinopyroxene, orthopyroxene and amphibole and are light REE (LREE) enriched. Moreover; they are considerably more oxidized than the harzburgites to which they are spatially related, with calculated oxygen fugacities of FMQ -0.2 toFMQ + 1.2. Using textural and geochemical evidence, we interpret these harzburgites as residual MORB mantle (from 15 to 20 % fractional melting) which has subsequently been modified by interaction with boninitic melt ivithin the mantle wedge, and these dunites as zones of focusing of this melt in which pyroxene has preferentially been dissolved from the harzbutgite protolith. In contrast, harzburgites from Torishima Forearc Seamount give calculated oxygen fugacities between FMQ + 0.8 and FMQ + l.6, similar to those calculated for other subduction-zone related peridotites and similar to those calculated for the dunites (FMQ + 1.2 to FMQ + 1.8) from the same seamount. In this case, we interpret both the harzburgites and dunites as linked to mantle melting (20-25 % fractional melting) in a supra-subduction zone environment The results thus indicate that the forearc is underlain by at least two types of mantle lithosphere, one being trapped or accreted oceanic lithosphere, the other being lithosphere formed by subduction-related melting. They also demonstrate that both types of mantle lithosphere may have undergone extensive interaction with subduction-derived magmas.

Formato

application/zip, 9 datasets

Identificador

https://doi.pangaea.de/10.1594/PANGAEA.772276

doi:10.1594/PANGAEA.772276

Idioma(s)

en

Publicador

PANGAEA

Direitos

CC-BY: Creative Commons Attribution 3.0 Unported

Access constraints: unrestricted

Fonte

Supplement to: Parkinson, Ian J; Pearce, Julian A (1998): Peridotites from the Izu-Bonin-Mariana forearc (ODP Leg 125): Evidence for mantle melting and melt-mantle interaction in a supra-subduction zone setting. Journal of Petrology, 39(9), 1577-1618, doi:10.1093/petroj/39.9.1577

Palavras-Chave #+ve error, 2 SD; 125-778A; 125-779A; 125-780C; 125-783A; 125-784A; Al; Al2O3; Aluminium; Aluminium oxide; Ba; Barium; Caesium; Calcium oxide; Calculated; CaO; Ce; Cerium; Chromium; Chromium(III) oxide; Chromium number; Chromium number, standard deviation; Clinopyroxene; Clinopyroxene, standard deviation; Co; Cobalt; Copper; Cpx; Cpx std dev; Cr; Cr/(Cr + Al); Cr/(Cr+Al) std dev; Cr2O3; Cs; Cu; Dlog FMQ; DRILL; Drilling/drill rig; Dy; Dysprosium; Elements, total; En; Enstatite; Er; Erbium; Eu; Europium; Event; Fe2O3; Fe3+; FeO; Ferrosilite; Fo; Forsterite; Fs; Fugacity of oxygen, logarithm; Fugacity of oxygen, logarithm, error; Ga; Gadolinium; Gallium; Gd; Hafnium; Hf; Ho; Holmium; ICP-MS, Inductively coupled plasma - mass spectrometry; in Olivine; in OPX; in Spinel; Iron 3+; Iron oxide, Fe2O3; Iron oxide, FeO; Joides Resolution; K2O; La; Label; Lanthanum; Lead; Leg125; Li; Lithium; log fO2; log fO2 e; LOI; Loss on ignition; Lu; Lutetium; Magnesium number; Magnesium oxide; Manganese oxide; Mg/(Mg + Fe); MgO; Min assembl; Mineral; Mineral assemblage; Mineral name; MnO; Na2O; Nb; Nd; Neodymium; Ni; Nickel; Nickel oxide; NiO; Niobium; North Pacific Ocean; Ocean Drilling Program; ODP; ODP sample designation; Ol; Olivine; Olivine, standard deviation; Ol std dev; Opx; Opx std dev; Opx XM1FeXM2Fe; Orthopyroxene; Orthopyroxene, standard deviation; P2O5; Pb; Phosphorus oxide; Potassium oxide; Pr; Praseodymium; Rb; Rock; Rock type; Rubidium; Samarium; Samp com; Sample code/label; Sample comment; Sc; Scandium; Serpent deg; Serpentinization, degree; Silicon dioxide; SiO2; Sm; Sodium oxide; spinel; Spinel; spinel, 2 sigma; Spinel, standard deviation; Spinel XFe3O4; Spl; Spl std dev; Sr; Strontium; Sum; Tb; T cal; Temperature, calculated; Temperature, standard deviation; Terbium; Th; Thorium; Ti; TiO2; Titanium; Titanium oxide; total; total Fe as Fe2O3; total Fe as feO; total Fe as FeO; T std dev; U; Uranium; V; V2O3; Vanadium; Vanadium(III) oxide; -ve error, 2 SD; Wo; Wollastonite; X-ray fluorescence (XRF); Y; Yb; Ytterbium; Yttrium; Zinc; Zirconium; Zn; Zr
Tipo

Dataset