Geochemistry, petrogenesis, and geodynamic implications of NE-SW to ENE-WSW trending Palaeoproterozoic mafic dyke swarms from southern region of the western Dharwar Craton

被引:18
作者
Rai, Apratim K. [1 ,2 ]
Srivastava, Rajesh K. [1 ]
Samal, Amiya K. [1 ]
Sai, Valiveti Venkata Sesha [3 ]
机构
[1] Banaras Hindu Univ, Ctr Adv Study Geol, Inst Sci, Varanasi 221005, Uttar Pradesh, India
[2] Geol Survey India, Lucknow, Uttar Pradesh, India
[3] Geol Survey India, Nagpur, Maharashtra, India
关键词
geochemistry; geodynamic implications; mafic dyke swarms; Palaeoproterozoic; petrogenesis; southern India; western Dharwar Craton; LARGE IGNEOUS PROVINCES; PB ZIRCON GEOCHRONOLOGY; ACID VOLCANIC-ROCKS; INDIA CONSTRAINTS; CUDDAPAH BASIN; SCHIST BELT; CONTINENTAL GROWTH; PENINSULAR GNEISS; GRANULITE TERRAIN; AGE CONSTRAINTS;
D O I
10.1002/gj.3493
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
A number of NE-SW to ENE-WSW trending Palaeoproterozoic mafic dykes, intruded within the Archean basement rocks and more conspicuous in the southern parts of the western Dharwar Craton (WDC), was studied for their whole-rock geochemistry to understand their petrogenetic and geodynamic aspects. Observed mineralogical and textural characteristics classify them either as meta-dolerites or dolerites/olivine-dolerites. They show basaltic to basaltic-andesitic compositions and bear sub-alkaline tholeiitic nature. Three geochemically distinct groups of mafic dykes have been identified. Group 1 samples show flat REE patterns (La-N/Lu-N = ~1), whereas the other two groups have La-N/Lu-N = ~2-3 (Group 2; enriched LREE and flat HREE patterns) and La-N/Lu-N = ~4 (Group 3; inclined REE patterns). Chemistry is not straightforward to support any significant role of crustal contamination and probably reflect their source characteristics. However, their derivation from melts originated from a previously modified metasomatized lithospheric mantle due to some ancient subduction event cannot be ignored. Most likely different mantle melts were responsible for derivation of these distinct sets of mafic dykes. The Group 2 dykes are derived from a melt generated within spinel stability field by ~10% batch melting of a lithospheric mantle source, whereas the Group 3 dykes have their derivation from a melt originated within the spinel-garnet transition zone and were fed from slightly higher (~12-15%) batch melting of a similar source. The Group 1 samples were also crystallized from a melt generated at the transition zone of spinel-garnet stability field by higher degrees (~20%) of melting of a primitive mantle source. Geochemistry of the studied samples is typical of Palaeoproterozoic mafic dykes emplaced within the intracratonic setting, reported elsewhere globally as well as neighbouring cratons. Geochemistry of the studied mafic dyke samples is also compared with the mafic dykes of the eastern Dharwar Craton (EDC). Except the Group 3 samples, which have good correlation with the 1.88-1.89 Ga Hampi swarm, no other group shows similarity with the EDC mafic dykes. There is an ample possibility to have some different mafic magmatic events in the WDC, which could be different from the EDC. However, it can only be confirmed after precise age determinations.
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页码:2847 / 2869
页数:23
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