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- W2047813963 abstract "Rocks of the Late Cretaceous Dagbasi Pluton (88–83 Ma), located in the eastern Pontides, include mafic microgranular enclaves (MMEs) ranging from a few centimetres to metres in size, and from ellipsoidal to ovoid in shape. The MMEs are composed of gabbroic diorite, diorite and tonalite, whereas the felsic host rocks comprise mainly tonalite, granodiorite and monzogranite based on both mineralogical and chemical compositions. MMEs are characterized by a fine-grained, equigranular and hypidiomorphic texture. The common texture of felsic host rocks is equigranular and also reveals some special types of microscopic textures, e.g., oscillatory-zoned plagioclase, poikilitic K-feldspar, small lath-shaped plagioclase in large plagioclase, blade-shaped biotite, acicular apatite, spike zones in plagioclase and spongy-cellular plagioclase textures and rounded plagioclase megacrysts in MMEs. Compositions of plagioclases (An33–An60), hornblendes (Mg#=0.77–1.0) and biotites (Mg#=0.61–0.63) of MMEs are slightly distinct or similar to those of host rocks (An12–57; hbl Mg#=0.63–1.0; Bi Mg#=0.50–0.69), which suggest partial to complete equilibration during mafic–felsic magma interactions. The felsic host rocks have SiO2 between 60 and 76 wt% and display low to slightly medium-K tholeiitic to calc-alkaline and peraluminous to slightly metaluminous characteristics. Chondrite-normalized rare-earth element (REE) patterns are fractionated (Lacn/Lucn=1.5–7.3) with pronounced negative Eu anomalies (Eu/Eu*=0.46–1.1). Initial εNd(i) values vary between −3.1 and 1.6, initial 87Sr/86Sr values between 0.7056 and 0.7067. Compared with the host rocks, the MMEs are characterized by relatively high Mg-number of 22–52, low contents of SiO2 (53–63 wt%), low ASI (0.7–1.1) and low to medium-K tholeiitic to calc-alkaline, metaluminous to peraluminous composition. Chondrite-normalized REE patterns are relatively flat [(La/Yb)cn=1.4–3.9; (Tb/Yb)cn=0.9–1.5] and show small negative Eu anomalies (Eu/Eu*=0.63–1.01). Isotope signatures of these rocks (87Sr/86Sr(i)=0.7054–0.7055; εNd(i)=–1.0 to 1.9) are largely similar to the host rocks. Gabbroic diorite enclaves have relatively low contents of SiO2, ASI; high Mg#, CaO, Al2O3, TiO2, P2O5, Sr and Nb concentrations compared to dioritic and tonalitic enclaves. The geochemical and isotopic similarities between the MMEs and their host rocks indicate that the enclaves are of mixed origin and are most probably formed by the interaction between the lower crust- and mantle-derived magmas. All the geochemical data suggest that a basic magma derived from an enriched subcontinental lithospheric mantle, interacted with a crustal melt that originated from dehydration melting of the mafic lower crust at deep crustal levels. The existence of compositional and textural disequilibrium and the nature of chemical and isotopic variation in these rock types indicate that magma mixing/mingling between an evolved mafic and a granitic magma was involved in their genesis. Microgranular enclaves are thus interpreted to be globules of a more mafic magma probably from an enriched lithospheric mantle source. Al-in-amphibole estimates the pluton emplacement at ca. 0.3–3.8 kbar, and therefore, magma mixing and mingling must have occurred at 3.8 kbar or below this level." @default.
- W2047813963 created "2016-06-24" @default.
- W2047813963 creator A5006778202 @default.
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- W2047813963 date "2009-07-01" @default.
- W2047813963 modified "2023-09-27" @default.
- W2047813963 title "Mineralogy, whole-rock and Sr–Nd isotope geochemistry of mafic microgranular enclaves in Cretaceous Dagbasi granitoids, Eastern Pontides, NE Turkey: Evidence of magma mixing, mingling and chemical equilibration" @default.
- W2047813963 cites W1587070778 @default.
- W2047813963 cites W1879089888 @default.
- W2047813963 cites W1964617878 @default.
- W2047813963 cites W1964877578 @default.
- W2047813963 cites W1968489383 @default.
- W2047813963 cites W1968565111 @default.
- W2047813963 cites W1969139879 @default.
- W2047813963 cites W1973810636 @default.
- W2047813963 cites W1980128098 @default.
- W2047813963 cites W1984025404 @default.
- W2047813963 cites W1991101657 @default.
- W2047813963 cites W1991587479 @default.
- W2047813963 cites W1993170289 @default.
- W2047813963 cites W1995137849 @default.
- W2047813963 cites W1998861973 @default.
- W2047813963 cites W1999345020 @default.
- W2047813963 cites W2000140582 @default.
- W2047813963 cites W2000249710 @default.
- W2047813963 cites W2000266108 @default.
- W2047813963 cites W2001173718 @default.
- W2047813963 cites W2001240594 @default.
- W2047813963 cites W2001817263 @default.
- W2047813963 cites W2002333091 @default.
- W2047813963 cites W2016874859 @default.
- W2047813963 cites W2017319524 @default.
- W2047813963 cites W2019034794 @default.
- W2047813963 cites W2019877001 @default.
- W2047813963 cites W2019920565 @default.
- W2047813963 cites W2022017333 @default.
- W2047813963 cites W2023285738 @default.
- W2047813963 cites W2023985047 @default.
- W2047813963 cites W2028198159 @default.
- W2047813963 cites W2031423471 @default.
- W2047813963 cites W2037262165 @default.
- W2047813963 cites W2044617169 @default.
- W2047813963 cites W2045594539 @default.
- W2047813963 cites W2048151240 @default.
- W2047813963 cites W2049098882 @default.
- W2047813963 cites W2049612708 @default.
- W2047813963 cites W2049974560 @default.
- W2047813963 cites W2052055789 @default.
- W2047813963 cites W2054397031 @default.
- W2047813963 cites W2056222688 @default.
- W2047813963 cites W2065291589 @default.
- W2047813963 cites W2068486422 @default.
- W2047813963 cites W2073648180 @default.
- W2047813963 cites W2075505159 @default.
- W2047813963 cites W2075607939 @default.
- W2047813963 cites W2077385643 @default.
- W2047813963 cites W2080241915 @default.
- W2047813963 cites W2080287471 @default.
- W2047813963 cites W2080843545 @default.
- W2047813963 cites W2081673195 @default.
- W2047813963 cites W2081673871 @default.
- W2047813963 cites W2082844473 @default.
- W2047813963 cites W2083563475 @default.
- W2047813963 cites W2088339329 @default.
- W2047813963 cites W2089129393 @default.
- W2047813963 cites W2091176368 @default.
- W2047813963 cites W2094835709 @default.
- W2047813963 cites W2102963575 @default.
- W2047813963 cites W2108971421 @default.
- W2047813963 cites W2112606960 @default.
- W2047813963 cites W2118804657 @default.
- W2047813963 cites W2130426574 @default.
- W2047813963 cites W2135549165 @default.
- W2047813963 cites W2155838580 @default.
- W2047813963 cites W2157907141 @default.
- W2047813963 cites W2164468447 @default.
- W2047813963 cites W2165368569 @default.
- W2047813963 cites W2318064085 @default.
- W2047813963 cites W2320141289 @default.
- W2047813963 cites W2325514473 @default.
- W2047813963 cites W2329218778 @default.
- W2047813963 cites W2329434645 @default.
- W2047813963 cites W2331122035 @default.
- W2047813963 cites W4240643818 @default.
- W2047813963 doi "https://doi.org/10.1016/j.chemer.2008.08.002" @default.
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