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- W2599473313 abstract "Heterogeneous, modally banded kyanite-bearing and bimineralic eclogites from the lithospheric mantle, collected at the Roberts Victor Diamond mine (South Africa), show a reaction texture in which kyanite is consumed. Geothermobarometric calculations using measured mineral compositions in Perple_X allowed the construction of a P-T path showing a steep, cool prograde metamorphic gradient of 2 °C/km to reach peak conditions of 5.8 GPa and 890 °C for the kyanite eclogite. The kyanite-out reaction formed bimineralic eclogite and is probably an integral part of the mineralogical evolution of most archetypal bimineralic eclogites at Roberts Victor and potentially elsewhere. The kyanite-out reaction occured at close to peak pressure (5.3 GPa) and was associated with a rise in temperature to 1380 °C. Mass balance calculations show that upon breakdown, the kyanite component is fully accommodated in garnet and omphacite via a reaction system with low water fugacity that required restricted fluid influx from metasomatic sources. The δ18O values of garnets are consistently higher than normal mantle values. Each sample has its characteristic trend of δ18O variance between garnets in the kyanite-bearing sections and those in the bimineralic parts covering a range between 5.1‰ and 6.8‰. No systematic change in O-isotope signature exists across the sample population. Differences in garnet trace element signatures between differing lithologies in the eclogites are significant. Grossular-rich garnets coexisting with kyanite have strong positive Eu-anomalies and low Gd/Yb ratios, while more pyrope-rich garnets in the bimineralic sections have lost their positive Eu-anomaly, have higher Gd/Yb ratios and generally higher heavy rare earth element contents. Garnets in the original kyanite-bearing portions thus reflect the provenance of the rocks as metamorphosed gabbros/troctolites. The kyanite-out reaction was most likely triggered by a heating event in the subcratonic lithosphere. As kyanite contains around 100 ppm of H2O it is suggested that the kyanite-out reaction, once initiated by heating and restricted metasomatic influx, was promoted by the release of water contained in the kyanite. The steep (high-P low-T) prograde P-T path defining rapid compression at low heating rates is atypical for subduction transport of eclogites into the lithospheric mantle. Such a trajectory is best explained in a model where strong lateral compression forces eclogites downward to higher pressures, supporting models of cratonic lithosphere formation by lateral collision and compression." @default.
- W2599473313 created "2017-04-07" @default.
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- W2599473313 date "2017-06-01" @default.
- W2599473313 modified "2023-10-16" @default.
- W2599473313 title "Fluid-induced transition from banded kyanite- to bimineralic eclogite and implications for the evolution of cratons" @default.
- W2599473313 cites W1629623139 @default.
- W2599473313 cites W1652223449 @default.
- W2599473313 cites W1830358639 @default.
- W2599473313 cites W1860910970 @default.
- W2599473313 cites W1887156117 @default.
- W2599473313 cites W1964196265 @default.
- W2599473313 cites W1965248556 @default.
- W2599473313 cites W1966368758 @default.
- W2599473313 cites W1967700183 @default.
- W2599473313 cites W1972588992 @default.
- W2599473313 cites W1974350253 @default.
- W2599473313 cites W1978000945 @default.
- W2599473313 cites W1979082610 @default.
- W2599473313 cites W1980419960 @default.
- W2599473313 cites W1995813894 @default.
- W2599473313 cites W1996063806 @default.
- W2599473313 cites W1998191793 @default.
- W2599473313 cites W2000752806 @default.
- W2599473313 cites W2001646105 @default.
- W2599473313 cites W2009581851 @default.
- W2599473313 cites W2009885998 @default.
- W2599473313 cites W2011848086 @default.
- W2599473313 cites W2017992831 @default.
- W2599473313 cites W2018489161 @default.
- W2599473313 cites W2020179468 @default.
- W2599473313 cites W2020411041 @default.
- W2599473313 cites W2021524178 @default.
- W2599473313 cites W2021628638 @default.
- W2599473313 cites W2022700538 @default.
- W2599473313 cites W2024086248 @default.
- W2599473313 cites W2031296873 @default.
- W2599473313 cites W2038325228 @default.
- W2599473313 cites W2040868581 @default.
- W2599473313 cites W2045284338 @default.
- W2599473313 cites W2046961523 @default.
- W2599473313 cites W2047040922 @default.
- W2599473313 cites W2048096474 @default.
- W2599473313 cites W2052108658 @default.
- W2599473313 cites W2055695983 @default.
- W2599473313 cites W2056836075 @default.
- W2599473313 cites W2059013108 @default.
- W2599473313 cites W2060289092 @default.
- W2599473313 cites W2062394291 @default.
- W2599473313 cites W2067587529 @default.
- W2599473313 cites W2074891409 @default.
- W2599473313 cites W2076369135 @default.
- W2599473313 cites W2080230245 @default.
- W2599473313 cites W2081024303 @default.
- W2599473313 cites W2082590397 @default.
- W2599473313 cites W2090410331 @default.
- W2599473313 cites W2092151651 @default.
- W2599473313 cites W2092752646 @default.
- W2599473313 cites W2094094020 @default.
- W2599473313 cites W2128717335 @default.
- W2599473313 cites W2128874469 @default.
- W2599473313 cites W2133891658 @default.
- W2599473313 cites W2136270511 @default.
- W2599473313 cites W2139807024 @default.
- W2599473313 cites W2140203194 @default.
- W2599473313 cites W2147155351 @default.
- W2599473313 cites W2159768285 @default.
- W2599473313 cites W2164467626 @default.
- W2599473313 cites W2169583831 @default.
- W2599473313 cites W2189499657 @default.
- W2599473313 cites W2197670370 @default.
- W2599473313 cites W226657750 @default.
- W2599473313 cites W2278224493 @default.
- W2599473313 cites W2302396715 @default.
- W2599473313 cites W2312527223 @default.
- W2599473313 cites W2314197605 @default.
- W2599473313 cites W2324178228 @default.
- W2599473313 cites W2326602674 @default.
- W2599473313 cites W2401871880 @default.
- W2599473313 cites W2490830421 @default.
- W2599473313 cites W2529605363 @default.
- W2599473313 cites W2560122729 @default.
- W2599473313 cites W2772186758 @default.
- W2599473313 cites W4236669475 @default.
- W2599473313 cites W4250199232 @default.
- W2599473313 cites W437047644 @default.
- W2599473313 cites W975472697 @default.
- W2599473313 doi "https://doi.org/10.1016/j.gca.2017.03.017" @default.
- W2599473313 hasPublicationYear "2017" @default.
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