H.M. Rajesh , O.G. Safonov , G.A. Belyanin , M. Santosh , Z. Zhang , T. Tsunogae , M. Fukuyama , C. Vorster , P. Gao , M. Keeditse
{"title":"太古宙高等级地体中基性麻粒岩的多变质、暗沉和交代事件的性质和时间:来自非洲南部林波波杂岩中央带的情景","authors":"H.M. Rajesh , O.G. Safonov , G.A. Belyanin , M. Santosh , Z. Zhang , T. Tsunogae , M. Fukuyama , C. Vorster , P. Gao , M. Keeditse","doi":"10.1016/j.precamres.2025.107831","DOIUrl":null,"url":null,"abstract":"<div><div>Mafic granulite in Archean high-grade terranes are highly sensitive to reworking and overprint processes. Understanding the nature and timing of different events requires a careful approach with a combination of methods. This study presents field, petrographic, mineralogical, PERPLE_X phase equilibria modelling, U-Th-Hf-trace-REE-zircon and <sup>40</sup>Ar/<sup>39</sup>Ar-amphibole systematics on mafic granulites from the Verbaard area in Central Zone of the Limpopo Complex, southern Africa. The mafic granulites are interlayered and infolded conformably with the oldest <em>meta</em>-supracrustal rocks including quartzites, <em>meta</em>-ironstone and migmatitic metapelites and are intruded by c.2.63–2.62 Ga granitoids. The granoblastic mafic granulites exhibit mineral assemblages representing various metamorphic transformations including minor partial melting during two metamorphic stages related to the Neoarchean (M1) and Paleoproterozoic (M2). The earliest M1 assemblage (Grt) + Opx + Cpx + Pl + Qz + Ilm formed at 830–850 °C, >6.5 kbar, and was transformed to Opx + Cpx + Amp + Pl + Qz + Ilm during the Neoarchean decompression to c.6.5 kbar and subsequent cooling. The M2 assemblage (Grt) + Opx + Cpx + Amp + Pl + Qz + Ilm + Mag formed at < 800 °C, c.5.5 kbar during the Paleoproterozoic overprint. CL-image, Lu-Hf isotope and trace-REE characteristics of zircons distinguish the effect of two metamorphic events at 2618 ± 11 Ma (M1) and 2057 ± 25 Ma (M2), both involving anatectic components. In contrast to the Neoarchean zircon cores, the Paleoproterozoic rims/newly grown grains show lower HREE abundance, suggesting their growth/overgrowth in equilibrium with garnet. The radiogenic Hf isotope compositions of both groups of zircons are explained by local subsolidus mineral reactions rather than an input of the juvenile material. The rocks show effects of late metasomatic alteration that is variably reflected in zircons in higher LREE concentrations and a flatter LREE profile. The c.1.95 Ga age is preserved in the Paleoproterozoic zircons with transgressive recrystallization structure, and supported by <sup>40</sup>Ar/<sup>39</sup>Ar amphibole geochronology. The results highlight the textural and corresponding elemental signatures to look out for delineation of multiple overprint events involving metamorphism, anatexis and metasomatism in Archean mafic granulites.</div></div>","PeriodicalId":49674,"journal":{"name":"Precambrian Research","volume":"426 ","pages":"Article 107831"},"PeriodicalIF":3.2000,"publicationDate":"2025-05-27","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Nature and timing of polymetamorphic, anatectic and metasomatic events in mafic granulite in Archean high-grade terranes: Scenario from Central Zone of the Limpopo Complex, southern Africa\",\"authors\":\"H.M. Rajesh , O.G. Safonov , G.A. Belyanin , M. Santosh , Z. Zhang , T. Tsunogae , M. Fukuyama , C. Vorster , P. Gao , M. Keeditse\",\"doi\":\"10.1016/j.precamres.2025.107831\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<div><div>Mafic granulite in Archean high-grade terranes are highly sensitive to reworking and overprint processes. Understanding the nature and timing of different events requires a careful approach with a combination of methods. This study presents field, petrographic, mineralogical, PERPLE_X phase equilibria modelling, U-Th-Hf-trace-REE-zircon and <sup>40</sup>Ar/<sup>39</sup>Ar-amphibole systematics on mafic granulites from the Verbaard area in Central Zone of the Limpopo Complex, southern Africa. The mafic granulites are interlayered and infolded conformably with the oldest <em>meta</em>-supracrustal rocks including quartzites, <em>meta</em>-ironstone and migmatitic metapelites and are intruded by c.2.63–2.62 Ga granitoids. The granoblastic mafic granulites exhibit mineral assemblages representing various metamorphic transformations including minor partial melting during two metamorphic stages related to the Neoarchean (M1) and Paleoproterozoic (M2). The earliest M1 assemblage (Grt) + Opx + Cpx + Pl + Qz + Ilm formed at 830–850 °C, >6.5 kbar, and was transformed to Opx + Cpx + Amp + Pl + Qz + Ilm during the Neoarchean decompression to c.6.5 kbar and subsequent cooling. The M2 assemblage (Grt) + Opx + Cpx + Amp + Pl + Qz + Ilm + Mag formed at < 800 °C, c.5.5 kbar during the Paleoproterozoic overprint. CL-image, Lu-Hf isotope and trace-REE characteristics of zircons distinguish the effect of two metamorphic events at 2618 ± 11 Ma (M1) and 2057 ± 25 Ma (M2), both involving anatectic components. In contrast to the Neoarchean zircon cores, the Paleoproterozoic rims/newly grown grains show lower HREE abundance, suggesting their growth/overgrowth in equilibrium with garnet. The radiogenic Hf isotope compositions of both groups of zircons are explained by local subsolidus mineral reactions rather than an input of the juvenile material. The rocks show effects of late metasomatic alteration that is variably reflected in zircons in higher LREE concentrations and a flatter LREE profile. The c.1.95 Ga age is preserved in the Paleoproterozoic zircons with transgressive recrystallization structure, and supported by <sup>40</sup>Ar/<sup>39</sup>Ar amphibole geochronology. 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Nature and timing of polymetamorphic, anatectic and metasomatic events in mafic granulite in Archean high-grade terranes: Scenario from Central Zone of the Limpopo Complex, southern Africa
Mafic granulite in Archean high-grade terranes are highly sensitive to reworking and overprint processes. Understanding the nature and timing of different events requires a careful approach with a combination of methods. This study presents field, petrographic, mineralogical, PERPLE_X phase equilibria modelling, U-Th-Hf-trace-REE-zircon and 40Ar/39Ar-amphibole systematics on mafic granulites from the Verbaard area in Central Zone of the Limpopo Complex, southern Africa. The mafic granulites are interlayered and infolded conformably with the oldest meta-supracrustal rocks including quartzites, meta-ironstone and migmatitic metapelites and are intruded by c.2.63–2.62 Ga granitoids. The granoblastic mafic granulites exhibit mineral assemblages representing various metamorphic transformations including minor partial melting during two metamorphic stages related to the Neoarchean (M1) and Paleoproterozoic (M2). The earliest M1 assemblage (Grt) + Opx + Cpx + Pl + Qz + Ilm formed at 830–850 °C, >6.5 kbar, and was transformed to Opx + Cpx + Amp + Pl + Qz + Ilm during the Neoarchean decompression to c.6.5 kbar and subsequent cooling. The M2 assemblage (Grt) + Opx + Cpx + Amp + Pl + Qz + Ilm + Mag formed at < 800 °C, c.5.5 kbar during the Paleoproterozoic overprint. CL-image, Lu-Hf isotope and trace-REE characteristics of zircons distinguish the effect of two metamorphic events at 2618 ± 11 Ma (M1) and 2057 ± 25 Ma (M2), both involving anatectic components. In contrast to the Neoarchean zircon cores, the Paleoproterozoic rims/newly grown grains show lower HREE abundance, suggesting their growth/overgrowth in equilibrium with garnet. The radiogenic Hf isotope compositions of both groups of zircons are explained by local subsolidus mineral reactions rather than an input of the juvenile material. The rocks show effects of late metasomatic alteration that is variably reflected in zircons in higher LREE concentrations and a flatter LREE profile. The c.1.95 Ga age is preserved in the Paleoproterozoic zircons with transgressive recrystallization structure, and supported by 40Ar/39Ar amphibole geochronology. The results highlight the textural and corresponding elemental signatures to look out for delineation of multiple overprint events involving metamorphism, anatexis and metasomatism in Archean mafic granulites.
期刊介绍:
Precambrian Research publishes studies on all aspects of the early stages of the composition, structure and evolution of the Earth and its planetary neighbours. With a focus on process-oriented and comparative studies, it covers, but is not restricted to, subjects such as:
(1) Chemical, biological, biochemical and cosmochemical evolution; the origin of life; the evolution of the oceans and atmosphere; the early fossil record; palaeobiology;
(2) Geochronology and isotope and elemental geochemistry;
(3) Precambrian mineral deposits;
(4) Geophysical aspects of the early Earth and Precambrian terrains;
(5) Nature, formation and evolution of the Precambrian lithosphere and mantle including magmatic, depositional, metamorphic and tectonic processes.
In addition, the editors particularly welcome integrated process-oriented studies that involve a combination of the above fields and comparative studies that demonstrate the effect of Precambrian evolution on Phanerozoic earth system processes.
Regional and localised studies of Precambrian phenomena are considered appropriate only when the detail and quality allow illustration of a wider process, or when significant gaps in basic knowledge of a particular area can be filled.