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Crustal stabilization:Evidence from the geochemistry and U–Pb detrital zircon geochronology of quartzites from Simlipal Complex,Singhbhum Craton,India

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摘要 Cratonic stabilization was a critical crustal process during the Hadean to Archean for the formation of cratons.The understanding of how and where this process took place is significant to evaluate the architecture of continents.The Singhbhum Craton of eastern India has well preserved Precambrian volcanosedimentary sequences.The Simlipal volcano-sedimentary complex of Singhbhum Craton consists of circular bands of mafic volcanic rocks interlayered with quartzites/shales/phyllites.In the present study,we report petrographic and geochemical characteristics of quartzites from Simlipal Complex coupled with U–Pb ages of detrital zircons and zircon geochemistry to understand the provenance and depositional conditions and its connection with the crustal stabilization in the Singhbhum Craton.The quartzites are texturally mature with sub-angular to sub-rounded quartz grains followed by feldspars embedded in a silty matrix.Based on modal compositions and major element ratios,these quartzites are categorized as quartz arenite and sub-lithic arenites.Trace element abundances normalized to Archean Upper Continental Crust(AUCC)display positive anomalies at U,Zr,Hf and negative anomalies at Nb.REE patterns are characterized by negative Eu anomalies(Eu/Eu^(*)=0.47–0.97)and flat HREE suggesting felsic provenance.These quartzites show depletion of LILE,enrichment of HFSE and transition metals relative to AUCC.High weathering indices such as CIA,PIA,and ICV are suggestive of moderate to intense chemical weathering.Low trace element ratios such as Th/Cr,Th/Sc,La/Sc,La/Co and Th/Co indicate a predominantly felsic source for these rocks.The overall geochemical signatures indicate passive margin deposition for these quartzites.Detrital zircons from the Simlipal quartzites yield U–Pb ages 3156±31 Ma suggesting Mesoarchean crustal heritage.The trace element geochemistry of detrital zircons suggests that the zircons are magmatic in origin and possibly derived from the 3.1 Ga anorogenic granite/granitoid provenance of Singhbhum Craton.These observations collectively indicate the Mayurbhanj Granite and Singhbhum Granite(SBG-III)provenance for these quartzites,thereby tracking the stabilization of the eastern Indian Shield/Singhbhum Craton back to Mesoarchean.
出处 《Geoscience Frontiers》 SCIE CAS CSCD 2022年第1期46-61,共16页 地学前缘(英文版)
基金 the funds provided from Council of Scientific and Industrial Research(CSIR)to National Geophysical Research Institute,Hyderabad through the projects MLP-0002-28-FBR-2(Geo Met)and Emeritus scientist。
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  • 1胡志莲,汪雄武,秦志鹏,高一鸣,张俊成.西藏甲玛铜多金属矿床斑岩锆石成因研究[J].矿物学报,2011,31(S1):346-348. 被引量:1
  • 2LIU XiaoMing,GAO Shan,DIWU ChunRong,YUAN HongLin,HU ZhaoChu.Simultaneous in-situ determination of U-Pb age and trace elements in zircon by LA-ICP-MS in 20 μm spot size[J].Chinese Science Bulletin,2007,52(9):1257-1264. 被引量:114
  • 3Pidgeon R T. Zircons: What we need to know [J]. Journal of the Royal Society of Western Australia, 1996, 79:119-122.
  • 4Poller U, Huth J, Hoppe P, et al. REE, U, TH, and HF distribution in zircon from Western Carpathian Variscan granitoids: a combined cathodolumine scence and Ion microprobe study[J]. American Journal of Science, 2001,301 : 858-876.
  • 5Harrsion T M, Copeland P and Kidd W S F. Activation of the Nyainqentanghla shear zone: implication for uplift of the southern Tibetan Plateau [J]. Tectonics, 1995,14 (3) : 658- 676.
  • 6Coleman M and Hodges K. Evidence for Tibetan plateau uplift before 14 Myr ago from a new minimum age for east-west extension [J]. Nature, 1995, 374: 49-52.
  • 7Yin A, Harrison T M. Geological evolution of the Himalayan- Tibetan orogen[J]. Annual Review of Earth and Planetary Sciences, 2000, 28:211-280.
  • 8Zeck H P, Williams I S. Inherited and magmatic zircon from Neogene Hoyazo cordierite dacite, SE Spain anatectic source rock provenance and magmatic evolution[J]. Journal of Petrology, 2002, 43(6) :1089-1104.
  • 9Gagnevin D, Daly J S, Kronz A. Zircon texture and chemical composition as a guide to magmatic processes and mixing in a granitic environment and coeval volcanic system[J]. Contribution to Mineralogy and Petrology, 2010,159 (4) : 579-596.
  • 10Claiborne L L, Miller C F, Wooden J L. Trace element composition of igneous zircon: a thermal and compositional record of the accumulation and evolution of a large silicic batholith, Spirit Mountain, Nevada[J]. Contribution to Mineralogy and Petrology, 2010,160(4):511-531.

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