Provenance of the conglomerate and siliciclastic rocks from the Gadag Greenstone Belt, Western Dharwar Craton, India: Implications for understanding Neoarchean basin margin sedimentation
Petrographic, whole‐rock geochemical and geochronological analysis of polymictic conglomerate, associated siltstone and greywacke in the Neoarchean Gadag Greenstone Belt in the Western Dharwar Craton, India, provides new insights into sedimentary provenance and tectonic setting. The polymictic congl...
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description | Petrographic, whole‐rock geochemical and geochronological analysis of polymictic conglomerate, associated siltstone and greywacke in the Neoarchean Gadag Greenstone Belt in the Western Dharwar Craton, India, provides new insights into sedimentary provenance and tectonic setting. The polymictic conglomerate contains granitic, gneissic, felsic and mafic volcanic, quartzite and banded ferruginous chert clasts within a quartzo‐feldspathic matrix. Framework grains in the siltstone and greywacke are quartz, feldspar with rock fragments, embedded in a chlorite‐dominant matrix. The chemical index of alteration values (~70) and A‐CN‐K plot for the rocks suggest a low‐to‐moderate degree of weathering. Rare earth element (REE) patterns show moderate fractionation (LaN/YbN ~ 12.31) with a weak negative europium anomaly (0.82). Enrichment in transition elements (Ni, Cr, Co, Sc) and depletion in high‐field‐strength elements, as well as relatively low La/Co (0.62), moderate to high Th/Yb (3.06), La/Th (5.16), La/Yb (17.5), and La/Sc (~2.37) ratios, suggest a mixed felsic‐mafic provenance. U–Pb dating of detrital zircon from the conglomerate and greywacke revealed major age peaks at ca. (3.2, 2.9, 2.8, 2.6, 2.5 Ga) and a maximum age of deposition of 2,508 ± 26 Ma, 2,493 ± 20 Ma, respectively. The above data suggest low to moderately weathered proximal sources for both conglomerate and greywacke, indicating that these two rock types were not deposited simultaneously, but rather separately. The association of these conglomerates and greywacke with continental arc‐related volcanics indicates the closing of an arc at the time of sedimentation. Complex provenance consisting of recycled and magmatic arc during basin closure confirm the notion of modern style plate tectonics operating during Neoarchaean.
Petrography, geochemistry, and geochronological data were used to investigate the provenance of the Neoarchean siliciclastic rock sequence from the Majjur and Attikatti Domains of the Gadag Greenstone Belt, Western Dharwar Craton, India. A mixed approach suggests moderately weathered proximal sources deposited in the backarc setting. Geochronological data revealed a new maximum age of sedimentation, whereas a combined method of modal proportion of the various clasts with rare earth element mixing calculations is used to show a complex mixed felsic‐mafic provenance. |
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Petrography, geochemistry, and geochronological data were used to investigate the provenance of the Neoarchean siliciclastic rock sequence from the Majjur and Attikatti Domains of the Gadag Greenstone Belt, Western Dharwar Craton, India. A mixed approach suggests moderately weathered proximal sources deposited in the backarc setting. Geochronological data revealed a new maximum age of sedimentation, whereas a combined method of modal proportion of the various clasts with rare earth element mixing calculations is used to show a complex mixed felsic‐mafic provenance.</description><identifier>ISSN: 0072-1050</identifier><identifier>EISSN: 1099-1034</identifier><identifier>DOI: 10.1002/gj.4699</identifier><language>eng</language><publisher>Hoboken, USA: John Wiley & Sons, Inc</publisher><subject>basin margin sedimentation ; Belts ; Chert ; Chlorite ; Conglomerates ; Cratons ; detrital zircon dating ; Europium ; Feldspars ; Fractionation ; Gadag Greenstone Belt ; geochemistry ; Geochronology ; Greywacke ; Isotopes ; Plate tectonics ; polymictic conglomerate ; Quartzite ; Radiometric dating ; Rare earth elements ; Rock ; Rocks ; Scandium ; sediment provenance ; Sedimentation ; Sedimentation & deposition ; Siltstone ; Tectonics ; Thorium ; Transition elements ; Weathering ; Western Dharwar Craton ; Ytterbium ; Zircon</subject><ispartof>Geological journal (Chichester, England), 2023-05, Vol.58 (5), p.1911-1944</ispartof><rights>2023 John Wiley & Sons Ltd.</rights><rights>2023 John Wiley & Sons, Ltd.</rights><lds50>peer_reviewed</lds50><woscitedreferencessubscribed>false</woscitedreferencessubscribed><cites>FETCH-LOGICAL-c2519-f10db296ca05efcb28a8a709636ac89809610f79325cbd9b2971f3010f539ec73</cites><orcidid>0000-0002-6910-1067</orcidid></display><links><openurl>$$Topenurl_article</openurl><openurlfulltext>$$Topenurlfull_article</openurlfulltext><thumbnail>$$Tsyndetics_thumb_exl</thumbnail><linktopdf>$$Uhttps://onlinelibrary.wiley.com/doi/pdf/10.1002%2Fgj.4699$$EPDF$$P50$$Gwiley$$H</linktopdf><linktohtml>$$Uhttps://onlinelibrary.wiley.com/doi/full/10.1002%2Fgj.4699$$EHTML$$P50$$Gwiley$$H</linktohtml><link.rule.ids>314,780,784,1417,27924,27925,45574,45575</link.rule.ids></links><search><creatorcontrib>Pratihari, Asim Ranjan</creatorcontrib><creatorcontrib>Hegde, Venkatraman S.</creatorcontrib><creatorcontrib>McKenzie, N. Ryan</creatorcontrib><creatorcontrib>Frimmel, Hartwig E.</creatorcontrib><creatorcontrib>Shukla, Anil D.</creatorcontrib><creatorcontrib>Hulaji, Shivani</creatorcontrib><title>Provenance of the conglomerate and siliciclastic rocks from the Gadag Greenstone Belt, Western Dharwar Craton, India: Implications for understanding Neoarchean basin margin sedimentation</title><title>Geological journal (Chichester, England)</title><description>Petrographic, whole‐rock geochemical and geochronological analysis of polymictic conglomerate, associated siltstone and greywacke in the Neoarchean Gadag Greenstone Belt in the Western Dharwar Craton, India, provides new insights into sedimentary provenance and tectonic setting. The polymictic conglomerate contains granitic, gneissic, felsic and mafic volcanic, quartzite and banded ferruginous chert clasts within a quartzo‐feldspathic matrix. Framework grains in the siltstone and greywacke are quartz, feldspar with rock fragments, embedded in a chlorite‐dominant matrix. The chemical index of alteration values (~70) and A‐CN‐K plot for the rocks suggest a low‐to‐moderate degree of weathering. Rare earth element (REE) patterns show moderate fractionation (LaN/YbN ~ 12.31) with a weak negative europium anomaly (0.82). Enrichment in transition elements (Ni, Cr, Co, Sc) and depletion in high‐field‐strength elements, as well as relatively low La/Co (0.62), moderate to high Th/Yb (3.06), La/Th (5.16), La/Yb (17.5), and La/Sc (~2.37) ratios, suggest a mixed felsic‐mafic provenance. U–Pb dating of detrital zircon from the conglomerate and greywacke revealed major age peaks at ca. (3.2, 2.9, 2.8, 2.6, 2.5 Ga) and a maximum age of deposition of 2,508 ± 26 Ma, 2,493 ± 20 Ma, respectively. The above data suggest low to moderately weathered proximal sources for both conglomerate and greywacke, indicating that these two rock types were not deposited simultaneously, but rather separately. The association of these conglomerates and greywacke with continental arc‐related volcanics indicates the closing of an arc at the time of sedimentation. Complex provenance consisting of recycled and magmatic arc during basin closure confirm the notion of modern style plate tectonics operating during Neoarchaean.
Petrography, geochemistry, and geochronological data were used to investigate the provenance of the Neoarchean siliciclastic rock sequence from the Majjur and Attikatti Domains of the Gadag Greenstone Belt, Western Dharwar Craton, India. A mixed approach suggests moderately weathered proximal sources deposited in the backarc setting. Geochronological data revealed a new maximum age of sedimentation, whereas a combined method of modal proportion of the various clasts with rare earth element mixing calculations is used to show a complex mixed felsic‐mafic provenance.</description><subject>basin margin sedimentation</subject><subject>Belts</subject><subject>Chert</subject><subject>Chlorite</subject><subject>Conglomerates</subject><subject>Cratons</subject><subject>detrital zircon dating</subject><subject>Europium</subject><subject>Feldspars</subject><subject>Fractionation</subject><subject>Gadag Greenstone Belt</subject><subject>geochemistry</subject><subject>Geochronology</subject><subject>Greywacke</subject><subject>Isotopes</subject><subject>Plate tectonics</subject><subject>polymictic conglomerate</subject><subject>Quartzite</subject><subject>Radiometric dating</subject><subject>Rare earth elements</subject><subject>Rock</subject><subject>Rocks</subject><subject>Scandium</subject><subject>sediment provenance</subject><subject>Sedimentation</subject><subject>Sedimentation & deposition</subject><subject>Siltstone</subject><subject>Tectonics</subject><subject>Thorium</subject><subject>Transition elements</subject><subject>Weathering</subject><subject>Western Dharwar Craton</subject><subject>Ytterbium</subject><subject>Zircon</subject><issn>0072-1050</issn><issn>1099-1034</issn><fulltext>true</fulltext><rsrctype>article</rsrctype><creationdate>2023</creationdate><recordtype>article</recordtype><recordid>eNp1kc9OGzEQxq0KpAZa8QojcegBQse72T_ujaZtGoRoD604ribe2Y3Drh1sp4hX69PVJL1y-kaj33zfjEaIM4lXEjH72G-uZqVSb8REolJTifnsSEwQqyzVBb4VJyFsEKXEmZyIvz-9-8OWrGZwHcQ1g3a2H9zIniID2RaCGYw2eqAQjQbv9EOAzrtxTy-opR4WntmG6CzDZx7iJdxziOwtfFmTfyIP8-Tm7CUsbWvoEyzHbfKkaJxNXs7DzrbsQ0xxxvZwx468XjNZWFEwFkbyfZLArRnZxv3gO3Hc0RD4_X89Fb-_ff01_z69_bFYzq9vpzorpJp2EttVpkpNWHCnV1lNNVWoyrwkXas6VRK7SuVZoVetSmgluxxTr8gV6yo_FecH3613j7t0V7NxO29TZJPVWGNR11WZqA8HSnsXgueu2XqT1n5uJDYvj2n6TfPymEReHMgnM_Dza1izuNnT_wAH7JFD</recordid><startdate>202305</startdate><enddate>202305</enddate><creator>Pratihari, Asim Ranjan</creator><creator>Hegde, Venkatraman S.</creator><creator>McKenzie, N. Ryan</creator><creator>Frimmel, Hartwig E.</creator><creator>Shukla, Anil D.</creator><creator>Hulaji, Shivani</creator><general>John Wiley & Sons, Inc</general><general>Wiley Subscription Services, Inc</general><scope>AAYXX</scope><scope>CITATION</scope><scope>7ST</scope><scope>7UA</scope><scope>C1K</scope><scope>F1W</scope><scope>H96</scope><scope>L.G</scope><scope>SOI</scope><orcidid>https://orcid.org/0000-0002-6910-1067</orcidid></search><sort><creationdate>202305</creationdate><title>Provenance of the conglomerate and siliciclastic rocks from the Gadag Greenstone Belt, Western Dharwar Craton, India: Implications for understanding Neoarchean basin margin sedimentation</title><author>Pratihari, Asim Ranjan ; Hegde, Venkatraman S. ; McKenzie, N. Ryan ; Frimmel, Hartwig E. ; Shukla, Anil D. ; Hulaji, Shivani</author></sort><facets><frbrtype>5</frbrtype><frbrgroupid>cdi_FETCH-LOGICAL-c2519-f10db296ca05efcb28a8a709636ac89809610f79325cbd9b2971f3010f539ec73</frbrgroupid><rsrctype>articles</rsrctype><prefilter>articles</prefilter><language>eng</language><creationdate>2023</creationdate><topic>basin margin sedimentation</topic><topic>Belts</topic><topic>Chert</topic><topic>Chlorite</topic><topic>Conglomerates</topic><topic>Cratons</topic><topic>detrital zircon dating</topic><topic>Europium</topic><topic>Feldspars</topic><topic>Fractionation</topic><topic>Gadag Greenstone Belt</topic><topic>geochemistry</topic><topic>Geochronology</topic><topic>Greywacke</topic><topic>Isotopes</topic><topic>Plate tectonics</topic><topic>polymictic conglomerate</topic><topic>Quartzite</topic><topic>Radiometric dating</topic><topic>Rare earth elements</topic><topic>Rock</topic><topic>Rocks</topic><topic>Scandium</topic><topic>sediment provenance</topic><topic>Sedimentation</topic><topic>Sedimentation & deposition</topic><topic>Siltstone</topic><topic>Tectonics</topic><topic>Thorium</topic><topic>Transition elements</topic><topic>Weathering</topic><topic>Western Dharwar Craton</topic><topic>Ytterbium</topic><topic>Zircon</topic><toplevel>peer_reviewed</toplevel><toplevel>online_resources</toplevel><creatorcontrib>Pratihari, Asim Ranjan</creatorcontrib><creatorcontrib>Hegde, Venkatraman S.</creatorcontrib><creatorcontrib>McKenzie, N. Ryan</creatorcontrib><creatorcontrib>Frimmel, Hartwig E.</creatorcontrib><creatorcontrib>Shukla, Anil D.</creatorcontrib><creatorcontrib>Hulaji, Shivani</creatorcontrib><collection>CrossRef</collection><collection>Environment Abstracts</collection><collection>Water Resources Abstracts</collection><collection>Environmental Sciences and Pollution Management</collection><collection>ASFA: Aquatic Sciences and Fisheries Abstracts</collection><collection>Aquatic Science & Fisheries Abstracts (ASFA) 2: Ocean Technology, Policy & Non-Living Resources</collection><collection>Aquatic Science & Fisheries Abstracts (ASFA) Professional</collection><collection>Environment Abstracts</collection><jtitle>Geological journal (Chichester, England)</jtitle></facets><delivery><delcategory>Remote Search Resource</delcategory><fulltext>fulltext</fulltext></delivery><addata><au>Pratihari, Asim Ranjan</au><au>Hegde, Venkatraman S.</au><au>McKenzie, N. Ryan</au><au>Frimmel, Hartwig E.</au><au>Shukla, Anil D.</au><au>Hulaji, Shivani</au><format>journal</format><genre>article</genre><ristype>JOUR</ristype><atitle>Provenance of the conglomerate and siliciclastic rocks from the Gadag Greenstone Belt, Western Dharwar Craton, India: Implications for understanding Neoarchean basin margin sedimentation</atitle><jtitle>Geological journal (Chichester, England)</jtitle><date>2023-05</date><risdate>2023</risdate><volume>58</volume><issue>5</issue><spage>1911</spage><epage>1944</epage><pages>1911-1944</pages><issn>0072-1050</issn><eissn>1099-1034</eissn><abstract>Petrographic, whole‐rock geochemical and geochronological analysis of polymictic conglomerate, associated siltstone and greywacke in the Neoarchean Gadag Greenstone Belt in the Western Dharwar Craton, India, provides new insights into sedimentary provenance and tectonic setting. The polymictic conglomerate contains granitic, gneissic, felsic and mafic volcanic, quartzite and banded ferruginous chert clasts within a quartzo‐feldspathic matrix. Framework grains in the siltstone and greywacke are quartz, feldspar with rock fragments, embedded in a chlorite‐dominant matrix. The chemical index of alteration values (~70) and A‐CN‐K plot for the rocks suggest a low‐to‐moderate degree of weathering. Rare earth element (REE) patterns show moderate fractionation (LaN/YbN ~ 12.31) with a weak negative europium anomaly (0.82). Enrichment in transition elements (Ni, Cr, Co, Sc) and depletion in high‐field‐strength elements, as well as relatively low La/Co (0.62), moderate to high Th/Yb (3.06), La/Th (5.16), La/Yb (17.5), and La/Sc (~2.37) ratios, suggest a mixed felsic‐mafic provenance. U–Pb dating of detrital zircon from the conglomerate and greywacke revealed major age peaks at ca. (3.2, 2.9, 2.8, 2.6, 2.5 Ga) and a maximum age of deposition of 2,508 ± 26 Ma, 2,493 ± 20 Ma, respectively. The above data suggest low to moderately weathered proximal sources for both conglomerate and greywacke, indicating that these two rock types were not deposited simultaneously, but rather separately. The association of these conglomerates and greywacke with continental arc‐related volcanics indicates the closing of an arc at the time of sedimentation. Complex provenance consisting of recycled and magmatic arc during basin closure confirm the notion of modern style plate tectonics operating during Neoarchaean.
Petrography, geochemistry, and geochronological data were used to investigate the provenance of the Neoarchean siliciclastic rock sequence from the Majjur and Attikatti Domains of the Gadag Greenstone Belt, Western Dharwar Craton, India. A mixed approach suggests moderately weathered proximal sources deposited in the backarc setting. Geochronological data revealed a new maximum age of sedimentation, whereas a combined method of modal proportion of the various clasts with rare earth element mixing calculations is used to show a complex mixed felsic‐mafic provenance.</abstract><cop>Hoboken, USA</cop><pub>John Wiley & Sons, Inc</pub><doi>10.1002/gj.4699</doi><tpages>34</tpages><orcidid>https://orcid.org/0000-0002-6910-1067</orcidid></addata></record> |
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subjects | basin margin sedimentation Belts Chert Chlorite Conglomerates Cratons detrital zircon dating Europium Feldspars Fractionation Gadag Greenstone Belt geochemistry Geochronology Greywacke Isotopes Plate tectonics polymictic conglomerate Quartzite Radiometric dating Rare earth elements Rock Rocks Scandium sediment provenance Sedimentation Sedimentation & deposition Siltstone Tectonics Thorium Transition elements Weathering Western Dharwar Craton Ytterbium Zircon |
title | Provenance of the conglomerate and siliciclastic rocks from the Gadag Greenstone Belt, Western Dharwar Craton, India: Implications for understanding Neoarchean basin margin sedimentation |
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