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sanukitoid

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Journal Article
Journal: GSA Bulletin
Published: 08 January 2024
GSA Bulletin (2024) 136 (7-8): 3121–3136.
... susceptible to the lubrication effect of sediments than the modern counterpart. Such predictions have not yet been verified by field-based investigations. In this work, we identified two types of rock units (i.e., sanukitoids and associated adakitic suites, exposed in the Eastern Hebei Complex of the North...
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Journal Article
Journal: Economic Geology
Published: 01 December 2017
Economic Geology (2017) 112 (8): 1913–1936.
..., belonging to the sanukitoids clan ( Hattori, 1987 ; McCuaig et al., 2001 ; Robert, 2001 ; Galley, 2003 ; Duuring et al., 2007 ; Jébrak, 2011 ; Helt et al., 2014 ; De Souza et al., 2015 ; Jébrak and Fayol, 2015 ). However, they were not always identified as such because of their close spatial...
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... A specific type of granitoid, referred to as sanukitoid (Shirey & Hanson 1984), was emplaced mainly across the Archaean–Proterozoic transition. The major and trace element composition of sanukitoids is intermediate between typical Archaean TTG and modern arc granitoids. However, among...
Journal Article
Journal: Geology
Published: 01 December 2012
Geology (2012) 40 (12): 1079–1082.
...Mike Fowler; Hugh Rollinson Abstract Sanukitoids represent a volumetrically minor but important series of Neoarchean granitoids enriched in large-ion lithophile elements (e.g., Ba, Sr, and light rare earth elements), and with relatively high compatible elements (e.g., Mg, Ni, and Cr). Petrogenetic...
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Image
Field relationships and textural aspects of the Água Limpa sanukitoid suite. (a) Outcrop of granodiorite from the type area. (b) Highly flattened xenolith of metabasalt from the Sapucaia greenstone belt surrounded by the Água Azul granodiorite. (c) Contact between the orthogneiss basement and the studied sanukitoids. (d, e) Granodiorite and tonalite facies, both characterized by porphyritic textures composed of plagioclase phenocrystals immersed in a medium-grained quartz–feldspathic matrix (Água Limpa pluton). (f–h) Granodiorite, tonalite and monzogranite facies of the Água Azul pluton showing a porphyritic texture with deformed and foliation-oriented plagioclase phenocrysts. (i) The presence of muscovite locally observed in the granodioritic facies of the Água Limpa pluton associated with the occurrence of deformed alkali feldspar phenocrysts. Amp, amphibole; Bt, biotite; Ep, epidote; Ms, muscovite; TTG, tonalite–trondhjemite–granodiorite.
Published: 16 December 2024
Fig. 4. Field relationships and textural aspects of the Água Limpa sanukitoid suite. ( a ) Outcrop of granodiorite from the type area. ( b ) Highly flattened xenolith of metabasalt from the Sapucaia greenstone belt surrounded by the Água Azul granodiorite. ( c ) Contact between the orthogneiss
Image
Microstructural features of the Água Limpa sanukitoid suite. (a) Porphyritic texture characterized by plagioclase phenocrysts immersed in a medium-grained quartz–feldspathic matrix. This texture is common in all the facies described in the studied rocks. (b) Idiomorphic epidote exhibiting direct contact with plagioclase and partial embayment by biotite. (c) Primary muscovite observed in the granodioritic facies. (d) Deformed amphibole phenocrysts with an ocellar (fish-type) texture. (e) Deformation of plagioclase and quartz phenocrysts. (f) Mantle–core texture illustrating recrystallized quartz bordering a phenocryst. (g) General view of the studied sanukitoid, which features well-developed foliation. Amp, amphibole; BLG, bulging recrystallization; Bt, biotite; Ep, epidote; GBMR, grain boundary migration recrystallization; Mag, magnetite; Ms, muscovite; Pl, plagioclase; Qtz, quartz; SGR, sub-grain rotation recrystallization.
Published: 16 December 2024
Fig. 6. Microstructural features of the Água Limpa sanukitoid suite. ( a ) Porphyritic texture characterized by plagioclase phenocrysts immersed in a medium-grained quartz–feldspathic matrix. This texture is common in all the facies described in the studied rocks. ( b ) Idiomorphic epidote
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Binary diagrams for major and trace elements in the Água Limpa sanukitoid suite. (a) K2O/Na2O v. SiO2 (wt%). (b) FeO/MgO v. SiO2 (wt%). (c) Sr + Ba (ppm) v. Rb (ppm). (d) Cr + Ni (ppm) v. Mg#, where Mg# = MgOmol/(FeOtotal + MgO)mol. Amp, amphibole; Bt, biotite; Ep, epidote; Ms, muscovite. Source: data for the Amazonian Craton (Rio Maria suite) from Oliveira et al. (2011) and for the Amazonian Craton (Ourilândia suite) from Santos and Oliveira (2016) and Silva et al. (2022). Data for the Dharwar Craton from Moyen et al. (2003) and Joshi et al. (2016); data for the Kaapvaal Craton from Laurent et al. (2014); data for Superior Province from Stern et al. (1989) and Stevenson et al. (1999); data for the Karelian Craton from Halla (2005), Lobach-Zhuchenko et al. (2008) and Heilimo et al. (2010, 2013); data for the Pilbara Craton from Smithies and Champion (2000) and Smithies et al. (2004).
Published: 16 December 2024
Fig. 7. Binary diagrams for major and trace elements in the Água Limpa sanukitoid suite. ( a ) K 2 O/Na 2 O v. SiO 2 (wt%). ( b ) FeO/MgO v. SiO 2 (wt%). ( c ) Sr + Ba (ppm) v. Rb (ppm). ( d ) Cr + Ni (ppm) v. Mg#, where Mg# = MgO mol /(FeO total  + MgO) mol . Amp, amphibole; Bt, biotite; Ep
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Trace element compositions of the Água Limpa sanukitoid suite presented as (a, b) chondrite-normalized rare earth element concentrations and (c, d) primitive-mantle-normalized trace element concentrations. The light grey pattern represents the average composition of Ourilândia sanukitoids and the black line refers to the average of the Rio Maria sanukitoids from Carajás Province (Amazonian Craton). Note the typical negative spikes in Th, Ta–Nb and Ti. Amp, amphibole; Bt, biotite; Ep, epidote; Ms, muscovite. Source: normalization values from McDonough and Sun (1995). Average composition of Ourilândia sanukitoids from Santos and Oliveira (2016) and Silva et al. (2022, 2023); average composition of the Rio Maria sanukitoids from Carajás Province from Oliveira et al. (2011). The average compositions of low-Ti and high-Ti sanukitoids from Martin et al. (2009) are reported for comparison.
Published: 16 December 2024
Fig. 9. Trace element compositions of the Água Limpa sanukitoid suite presented as ( a , b ) chondrite-normalized rare earth element concentrations and ( c , d ) primitive-mantle-normalized trace element concentrations. The light grey pattern represents the average composition of Ourilândia
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Source nature and metasomatic relations for the Água Limpa sanukitoid suite. (a) Source discrimination diagram for Archean granitoids with fields defined by experimental studies. (b) Cr v. Ni (ppm) binary diagram. (c) Discrimination diagram of garnet-controlled (pole 1/Er) and non-garnet-controlled (pole Er) sources. The third pole (Ba + Sr)/1000 represents an enriched mantle source. (d) Discrimination diagram of TiO2 v. Al2O3 (wt%) based on magmatic hornblende. (e) Nb/Y v. La/Yb (ppm) diagram of mantle metasomatism agents. (f) K2O/Y v. Nb/Y (ppm) diagram. The nature of the studied sanukitoids is similar to that of metasomatism by a tonalite–trondhjemite–granodiorite melt (Moyen 2020). Amp, amphibole; Bt, biotite; Ep, epidote; HREE, heavy rare earth element; Ms, muscovite; TTG, tonalite–trondhjemite–granodiorite. Source: diagram in part (a) based on Laurent et al. (2014). Diagram in part (c) based on Heilimo et al. (2010). Part (d) based on Nascimento et al. (2023). Diagram in part (e) based on (Martin et al. 2009).
Published: 16 December 2024
Fig. 11. Source nature and metasomatic relations for the Água Limpa sanukitoid suite. ( a ) Source discrimination diagram for Archean granitoids with fields defined by experimental studies. ( b ) Cr v. Ni (ppm) binary diagram. ( c ) Discrimination diagram of garnet-controlled (pole 1/Er) and non
Image
Three-dimensional representation of the Água Limpa and Água Azul sanukitoids at different crustal levels; the transfer of residual melt is indicated by blue arrows. The photomicrographs (under crossed polars) show the different types of microstructures associated with shear zones in the study area: (a) porphyritic texture with a low degree of deformation of feldspar phenocrysts; (b) moderate degree of deformation represented by boundary grain migration in quartz and biotite orientations; (c) high recrystallization of minerals forming a fine-grained quartz–feldspathic matrix; (d, e) details of the recovery process and undulose extinction in quartz, where the mineral can be strongly deformed; and (f) ribbon texture in amphibolite. TTG, tonalite–trondhjemite–granodiorite.
Published: 16 December 2024
Fig. 15. Three-dimensional representation of the Água Limpa and Água Azul sanukitoids at different crustal levels; the transfer of residual melt is indicated by blue arrows. The photomicrographs (under crossed polars) show the different types of microstructures associated with shear zones
Journal Article
Published: 01 September 1989
Canadian Journal of Earth Sciences (1989) 26 (9): 1688–1712.
...Richard A. Stern; Gilbert N. Hanson; Steven B. Shirey Abstract In southwestern Superior Province, diorite, monzodiorite, and trachyandesite ("sanukitoids") occurring within syn- to post-tectonic intrusive complexes and within greenstone belts have the following chemical characteristics: 55–60 wt...
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Schematic model for genesis of sanukitoid magmas after Stern et al. (1989). The relatively high δ18O of sanukitoid magmas is inherited from high δ18O fluids from the upper portions of subducted ocean crust (from King et al. 1998b).
Published: 02 January 2003
Figure 10. Schematic model for genesis of sanukitoid magmas after Stern et al. (1989) . The relatively high δ 18 O of sanukitoid magmas is inherited from high δ 18 O fluids from the upper portions of subducted ocean crust (from King et al. 1998b ).
Journal Article
Published: 01 August 1990
Canadian Journal of Earth Sciences (1990) 27 (8): 1135.
Journal Article
Published: 01 August 1990
Canadian Journal of Earth Sciences (1990) 27 (8): 1136–1137.
Image
Comparative diagrams for the monzodiorites and typical sanukitoids. (a) K2O–Na2O–CaO ternary diagram (after Moyen et al. 2003); (b) Sum of “mafic” oxides (FeOt+MgO+MnO+TiO2) vs. SiO2 diagram (after Laurent et al. 2014), showing geochemical affinities between the monzodiorites and sanukitoids; (c) Sr/Y vs. Y diagram. Sanukitoid data of Setouchi volcanic belt are from Tatsumi et al. (2003); (d) TiO2 vs. MgO diagram with different fields for high- and low-Ti sanukitoids (after Martin et al. 2010). [Colour online.]
Published: 15 September 2021
Fig. 11. Comparative diagrams for the monzodiorites and typical sanukitoids. ( a ) K 2 O–Na 2 O–CaO ternary diagram (after Moyen et al. 2003 ); ( b ) Sum of “mafic” oxides (FeO t +MgO+MnO+TiO 2 ) vs. SiO 2 diagram (after Laurent et al. 2014 ), showing geochemical affinities between
Image
Sanukitoids: (G–H) Porphyritic granodiorite with idiomorphic medium-grained Afs phenocrysts. This unique sanukitoid variety has a high content of opaque (Opq) crystals. (I–J) Heterogranular granodiorite characterized by the absence of amphibole (Hbl) and high Ep and Bt contents. (K–L) Equigranular granodiorite is considered to be the major sanukitoid variety and commonly has idiomorphic Hbl crystals. Trondhjemite: (M–N) Pl partially replaced by sericite along cleavage planes and immersed into a finer matrix with recrystallized Qtz and chloritized Bt. Hbl represents an accessory phase.
Published: 19 August 2022
Fig. 3. Sanukitoids : (G–H) Porphyritic granodiorite with idiomorphic medium-grained Afs phenocrysts. This unique sanukitoid variety has a high content of opaque (Opq) crystals. (I–J) Heterogranular granodiorite characterized by the absence of amphibole (Hbl) and high Ep and Bt contents. (K–L
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Geophysical images and schematic maps showing the occurrence of sanukitoids in Carajás Province. (a) First derived fusion image; (b) eTh fusion image; (c) ternary K–Th–U fusion image; (d) simplified geological map of Carajás Province. Note that the occurrence of sanukitoid delineates dome-and-keel structures and acts as a boundary of the tectonic domains. TTG, tonalite–trondhjemite–granodiorite. Source: aerogeophysics images from the Geological Service of Brazil (https://geosgb.cprm.gov.br/).
Published: 16 December 2024
Fig. 13. Geophysical images and schematic maps showing the occurrence of sanukitoids in Carajás Province. ( a ) First derived fusion image; ( b ) eTh fusion image; ( c ) ternary K–Th–U fusion image; ( d ) simplified geological map of Carajás Province. Note that the occurrence of sanukitoid
Journal Article
Published: 19 August 2022
The Canadian Mineralogist (2022) 60 (4): 597–624.
...Fig. 3. Sanukitoids : (G–H) Porphyritic granodiorite with idiomorphic medium-grained Afs phenocrysts. This unique sanukitoid variety has a high content of opaque (Opq) crystals. (I–J) Heterogranular granodiorite characterized by the absence of amphibole (Hbl) and high Ep and Bt contents. (K–L...
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(A) CaO versus MgO diagram and (B) An-Or-En triangular diagram showing experimental glasses and igneous rocks from La Maladeta and Lys-Caillaouas plutons in comparison with data from sanukitoids (kernel distribution) and Andean-type calc-alkaline (gray dots) series. The black line follows the main cotectic array (Castro, 2021) and the black dashed line represents the sanukitoid cotectic line at shallow pressure (Gómez-Frutos and Castro, 2022). Experimental glasses are represented by black stars. Mineral abbreviations after Whitney and Evans (2010).
Published: 03 February 2025
Figure 12. (A) CaO versus MgO diagram and (B) An-Or-En triangular diagram showing experimental glasses and igneous rocks from La Maladeta and Lys-Caillaouas plutons in comparison with data from sanukitoids (kernel distribution) and Andean-type calc-alkaline (gray dots) series. The black line
Journal Article
Published: 16 December 2024
Journal of the Geological Society (2025) 182 (2): jgs2024-098.
...Fig. 4. Field relationships and textural aspects of the Água Limpa sanukitoid suite. ( a ) Outcrop of granodiorite from the type area. ( b ) Highly flattened xenolith of metabasalt from the Sapucaia greenstone belt surrounded by the Água Azul granodiorite. ( c ) Contact between the orthogneiss...
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