Geochronology and geochemistry of Middle-Late Ordovician granites and gabbros in the Erguna region, NE China: Implications for the tectonic evolution of the Erguna Massif

Shuo Zhao, Wenliang Xu, Wei Wang, Jie Tang, Yihan Zhang

Journal of Earth Science ›› 2014, Vol. 25 ›› Issue (5) : 841-853.

Journal of Earth Science ›› 2014, Vol. 25 ›› Issue (5) : 841-853. DOI: 10.1007/s12583-014-0476-9
Article

Geochronology and geochemistry of Middle-Late Ordovician granites and gabbros in the Erguna region, NE China: Implications for the tectonic evolution of the Erguna Massif

Author information +
History +

Abstract

Zircon U-Pb ages, Hf isotope data and whole-rock major and trace element data for the Middle to Late Ordovician gabbros and granites in the Erguna Massif, NE China were presented in this paper. The petrogenesis of these rocks and the Early Paleozoic tectonic evolution of the massif were discussed. Zircons from the granites and gabbros are of magmatic origin based on their cathodoluminescence (CL) images. The 206Pb/238U ages obtained from 20 spots on zircons from the granites range from 446±9 to 464±10 Ma, yielding a weighted mean age of 455±10 Ma; and 16 spots on zircons from the gabbros range from 465±10 to 466±7 Ma, yielding a weighted mean age of 465±2 Ma. Chemically, the Late Ordovician granites in the Erguna Massif are weakly peraluminous and similar to A-type granites. The granites and gabbros are all enriched in light rare earth elements and large ion lithophile elements (e.g., Rb, K), and depleted in heavy rare earth elements and high field strength elements (e.g., Nb, Ta, and Ti); they all exhibit marked negative Eu anomalies. Their zircon ɛ Hf(t) values range mainly from +1.86 to +6.21 (for the granites) and +1.39 to +3.89 (for the gabbros), except for one spot with a value of −0.27 (for a gabbro). The T DM1 ages for the gabbros and T DM2 ages for the granites vary from 928 to 1 091 Ma and from 1 287 to 1 675 Ma, respectively. It is concluded that the primary magma of the granites could have been derived by partial melting of Mesoproterozoic newly accreted crustal material, whereas the primary magma of the gabbros originated by partial melting of a depleted mantle wedge that had been metasomatized by fluids derived from a subducted slab. These Middle-Late Ordovician granites and gabbros constitute a typical bimodal igneous rock association, implying an extensional environment that was probably related to the post-collisional development of the Erguna and Xing’an massifs in the early Early Paleozoic.

Keywords

Erguna Massif / Ordovician magmatism / geochronology / geochemistry / petrogenesis / tectonic implication

Cite this article

Download citation ▾
Shuo Zhao, Wenliang Xu, Wei Wang, Jie Tang, Yihan Zhang. Geochronology and geochemistry of Middle-Late Ordovician granites and gabbros in the Erguna region, NE China: Implications for the tectonic evolution of the Erguna Massif. Journal of Earth Science, 2014, 25(5): 841‒853 https://doi.org/10.1007/s12583-014-0476-9

References

Badarch G, Cunningham W D, Windley B F. A New Terrane Subdivision for Mongolia: Implications for the Phanerozoic Crustal Growth of Central Asia. Journal of Asian Earth Sciences, 2002, 21(1): 87-110.
CrossRef Google scholar
Blichert-Toft J, Chauvel C, Albarède F. Separation of Hf and Lu for High-Precision Isotope Analysis of Rock Samples by Magnetic Sector-Multiple Collector ICP-MS. Contributions to Mineralogy and Petrology, 1997, 127(3): 248-260.
CrossRef Google scholar
Boynton W V. Henderson P. Geochemistry of the Rare Earth Elements: Meteorite Studies. Rare Earth Element Geochemistry, 1984 Amsterdam: Elsevier, 63-114.
CrossRef Google scholar
Eby G N. Chemical Subdivision of the A-Type Granitoids: Petrogenetic and Tectonic Implications. Geology, 1992, 20(7): 641-644.
CrossRef Google scholar
Eiler J M, Grawford A J, Elliott T R, . Oxygen Isotope Geochemistry of Oceanic Arc Lavas. Petrology, 2000, 41(2): 229-256.
CrossRef Google scholar
Frey F A, Prinz M. Ultramafic Inclusions from San Carlos, Arizona: Petrologic and Geochemical Data Bearing on Their Petrogenesis. Earth and Planetary Science Letters, 1978, 38(1): 129-176.
CrossRef Google scholar
Ge W C, Sui Z M, Wu F Y, . Zircon U-Pb Ages, Hf Isotopic Characteristics and Their Implications of the Early Paleozoic Granites in the Northwestern Da Hinggan Mts, Northeastern China. Acta Petrologica Sinica, 2007, 23: 423-440.
Ge W C, Wu F Y, Zhou C Y, . Emplacement Age of the Tahe Granite and Its Constraints on the Tectonic Nature of the Erguna Block in the Northern Part of the Da Hinggan Range. Chinese Science Bulletin, 2005, 50: 2097-2105.
CrossRef Google scholar
Gill J B. Orogenic Andesites and Plate Tectonics, 1981 New York: Springer Verlag, 385
CrossRef Google scholar
Grove T L, Donnelly-Nolan M. The Evolution of Young Sillic Lavas at Medicine Lake Volcano, California: Implications for the Origin of Compositional Gaps in Calc-alkaline Series Lavas. Contributions to Mineralogy and Petrology, 1986, 92(3): 281-302.
CrossRef Google scholar
Grove T L, Elkins Tanton L T, Parman S W, . Fractional Crystallization and Mantle Melting Controls on Calc-Alkaline Differentiation Trends. Contributions to Mineralogy and Petrology, 2003, 145(5): 515-533.
CrossRef Google scholar
HBGMR Heilongjiang Bureau of GeologyMineral Resources Regional Geology of Heilongjiang Province, 1993 Beijing: Geological Publishing House, 347-418.
Hu Z C, Gao S, Liu Y S, . Signal Enhancement in Laser Ablation ICP-MS by Addition of Nitrogen in the Central Channel Gas. Journal of Analytical Atomic Spectrometry, 2008, 23(8): 1093-1101.
CrossRef Google scholar
Hu Z C, Liu Y S, Gao S, . A Local Aerosol Extraction Strategy for the Determination of the Aerosol Composition in Laser Ablation Inductively Coupled Plasma Mass Spectrometry. Journal of Analytical Atomic Spectrometry, 2008, 23(9): 1192-1203.
CrossRef Google scholar
MBGMR inner Mongolian Bureau of GeologyMineral Resources Report of 1: 200 000 Regional Geological Research, 1985 Beijing: Geological Publishing House
IMBGMR inner Mongolian Bureau of GeologyMineral Resources Regional Geology of Inner Mongolian Automo, 1991 Beijing: Geological Publishing House, 7-725.
Irvine T H, Baragar W R A. A Guide to the Chemical Classification of the Common Volcanic Rocks. Canadian Journal of Earth Sciences, 1971, 8(5): 523-548.
CrossRef Google scholar
Jahn B M, Capdevila R, Liu D, . Sources of Phanerozoic Granitoids in the Transect Bayanhongor-Ulaan Baatar, Mongolia: Geochemical and Nd Isotopic Evidence and Implications for Phanerozoic Crustal Growth. Journal of Asian Earth Sciences, 2004, 23(5): 629-653.
CrossRef Google scholar
Jahn B M, Wu F Y, Chen B. Massive Granitoid Generation in Central Asia: Nd Isotopic Evidence and Implication for Continental Growth in the Phanerozoic. Episodes, 2000, 23(2): 82-92.
Kepezhinskas P, McDermott F, Defant M J, . Trace Element and Sr-Nd-Pb Isotopic Constraints on a Three-Component Model of Kamchatka Arc Petrogenesis. Geochimica et Cosmochimica Acta, 1997, 61(3): 577-600.
CrossRef Google scholar
Li J Y. Some New Ideas on Tectonics of NE China and Its Neighboring Areas. Geological Review, 1998, 44: 339-347.
Li J Y. Permian Geodynamic Setting of Northeast China and Adjacent Regions: Closure of the Paleo-Asian Ocean and Subduction of the Paleo-Pacific Plate. Journal of Asian Earth Sciences, 2006, 26(3): 207-224.
CrossRef Google scholar
Li J Y, Niu B G, Song B, . Crustal Formation and Evolution of Northern Changbai Mountains, Northeast China, 1999 Beijing: Geological Publishing House, 1-137.
Li X H, Li W X, Li Z X, . 850-790 Ma Bimodal Volcanic and Intrusive Rocks in Northern Zhejiang, South China: A Major Episode of Continental Rift Magmatism during the Breakup of Rodinia. Lithos, 2008, 102(1): 341-357.
CrossRef Google scholar
Liu S, Hu R Z, Zhao J H, . Geochemical Characteristics and Petrogenetic Investigation of the Late Mesozoic Lamprophyres of Jiaobei, Shandong Province. Acta Petrologica Sinica, 2005, 21(3): 947-958.
Liu Y S, Gao S, Hu Z C, . Continental and Oceanic Crust Recycling-Induced Melt-Peridotite Interactions in the Trans-North China Orogen: U-Pb Dating, Hf Isotopes and Trace Elements in Zircons of Mantle Xenoliths. Journal of Petrology, 2010, 51(1–2): 537-571.
CrossRef Google scholar
Liu Y S, Hu Z C, Zong K Q, . Reappraisement and Refinement of Zircon U-Pb Isotope and Trace Element Analyses by LA-ICP-MS. Chinese Science Bulletin, 2010, 55(15): 1535-1546.
CrossRef Google scholar
Liu Y S, Hu Z C, Gao S, . In Situ Analysis of Major and Trace Elements of Anhydrous Minerals by LA-ICP-MS without Applying an Internal Standard. Chemical Geology, 2008, 257(1–2): 34-43.
CrossRef Google scholar
Ludwig K R. ISOPLOT 3: A Geochronological Toolkit for Microsoft Excel. Berkeley Geochronology Centre Special Publication, 2003, 4 74.
McCulloch M T, Rosman K J R, De Laeter J R. The Isotopic and Elemental Abundance of Ytterbium in Meteorites and Terrestrial Samples. Geochimica et Cosmochimica Acta, 1977, 41(12): 1703-1707.
CrossRef Google scholar
Meng E, Xu W L, Pei F P, . Permian Bimodal Volcanism in the Zhangguangcai Range of Eastern Heilongjiang Province, NE China: Zircon U-Pb-Hf Isotopes and Geochemical Evidence. Journal of Asian Earth Sciences, 2011, 41(2): 119-132.
CrossRef Google scholar
Pupin J P. Zircon and Granite Petrology. Contributions to Mineralogy and Petrology, 1980, 73(3): 207-220.
CrossRef Google scholar
Ren J S, Wang Z X, Chen B W. The Tectonics of China from a Global View: A Guide to the Tectonic Map of China and Adjacent Region, 1999 Beijing: Geological Publishing House, 1-32.
Rudnick R L, Gao S, Ling W L, . Petrology and Geochemistry of Spinel Peridotite Xenoliths from Hannuoba and Qixia, North China Craton. Lithos, 2004, 77(1): 609-637.
CrossRef Google scholar
Sengör A M C, Natal’in B A, Burtman V S. Evolution of the Altaid Tectonic Collage and Paleozoic Crustal Growth in Eurasia. Nature, 1993, 364: 299-307.
CrossRef Google scholar
She H Q, Li J W, Xiang A P, . U-Pb Ages of the Zircons from Primary Rocks in Middle-Northern Daxinganling and Its Implications to Geotectonic Evolution. Acta Petrologica Sinica, 2012, 28(2): 571-594.
Sorokin A A, Kudryashov N M, Li J Y, . Early Paleozoic Granitoids in the Eastern Margin of the Argun’ Terrane, Amur Area: First Geochemical and Geochronologic Data. Petrology, 2004, 12(4): 367-376.
Sui Z M, Ge W C, Wu F Y, . U-Pb Chronology in Zircon from Harabaqi Granitic Pluton in Northeastern Daxinganling Area and Its Origin. Global Geology, 2006, 25(3): 229-236.
Sun D Y, Gou J, Wang T H. Geochronological and Geochemical Constraints on the Erguna Massif Basement, NE China-Subduction History of the Mongol-Okhotsk Oceanic Crust. International Geology Review, 2013, 55(14): 1801-1816.
CrossRef Google scholar
Sun S S, McDonough W F. Chemical and Isotopic Systematics of Ocneanic Basalts: Implications for Mantle Composition and Processes. Magmatism in Ocean Basins. Geological Society of Special Publication, London, 1989, 42: 313-345.
CrossRef Google scholar
Tang J, Xu W L, Wang F, . Geochronology and Geochemistry of Neoproterozoic Magmatism in the Erguna Massif, NE China: Petrogenesis and Implications for the Breakup of the Rodinia Supercontinent. Precambrian Research, 2013, 224: 597-611.
CrossRef Google scholar
Thompson R N, Morrison M A. Asthenospheric and Lower-Lithospheric Mantle Contributions to Continental Extension Magmatism: an Example from the British Tertiary Province. Chemical Geology, 1988, 68(1): 1-15.
CrossRef Google scholar
Wang F, Xu W L, Meng E, . Early Paleozoic Amalgamation of the Songnen-Zhangguangcai Range and Jiamusi Massifs in the Eastern Segment of the Central Asian Orogenic Belt: Geochronological and Geochemical Evidence from Granitoids and Rhyolites. Journal of Asian Earth Sciences, 2012, 49: 234-248.
CrossRef Google scholar
Wang Q, Liu X Y, Li J Y. Plate Tectonics between Cathaysia and Angaraland in China, 1991 Beijing: Peking University Press, 1-151.
Wang W, Xu W L, Wang F, . Zircon U-Pb Chronology and Assemblages of Mesozoic Granitoids in the Manzhouli-Erguna Area, NE China: Constraints on the Regional Tectonic Evolution. Geological Journal of China Universities, 2012, 18(1): 88-105.
Whalen J B, Currie K L, Chappell B W. A-Type Granite: Geochemical Characteristics, Discrimination and Petrogenesis. Contributions to Mineralalogy and Petrology, 1987, 95(4): 407-419.
CrossRef Google scholar
Wiedenbeck M, Alle P, Corfu F, . Three Natural Zircon Standards for U-Th-Pb, Lu-Hf, Trace Element and REE Analyses. Geostandards and Geoanalytical Research, 1995, 19(1): 1-23.
CrossRef Google scholar
Woodhead J, Hergt J, Shelley M, . Zircon Hf-Isotope Analysis with an Excimer Laser, Depth Profiling, Ablation of Complex Geometries, and Concomitant Age Estimation. Chemical Geology, 2004, 209(1–2): 121-135.
CrossRef Google scholar
Wu F Y, Sun D Y, Ge W C, . Geochronology of the Phanerozoic Granitoids in Northeastern China. Journal of Asian Earth Sciences, 2011, 41(1): 1-30.
CrossRef Google scholar
Wu F Y, Zhao G C, Sun D Y, . The Hulan Group: its Role in the Evolution of the Central Asian Orogenic Belt of NE China. Journal of Asian Earth Sciences, 2007, 30(3): 542-556.
CrossRef Google scholar
Wu G, Chen Y C, Chen Y J, . Zircon U-Pb Ages of the Metamorphic Supracrustal Rocks of the Xinghuadukou Group and Granitic Complexes in the Argun Massif of the Northern Great Hinggan Range, NE China, and Their Tectonic Implications. Journal of Asian Earth Sciences, 2012, 49: 214-233.
CrossRef Google scholar
Wu G, Sun F Y, Zhao C S, . Discovery of the Early Paleozoic Post-Collisional Granites in Northern Margin of the Erguna Massif and Its Geological Significance. Chinese Science Bulletin, 2005, 50(23): 2733-2743.
CrossRef Google scholar
Xiao W J, Windley B F, Hao J, . Accretion leading to Collision and the Permian Solonker Suture, Inner Mongolia, China: Termination of the Central Asian Orogenic Belt. Tectonics, 2003, 22 6 1069
CrossRef Google scholar
Xiao W J, Windley B F, Huang B C, . End-Permian to Early-Triassic Termination of the Accretionary Processes of the Southern Altaids: Implications for the Geodynamic Evolution, Phanerozoic Continental Growth, and Metallogeny of Central Asia. International Journal of Earth Sciences, 2009, 98: 1189-1217.
CrossRef Google scholar
Xiao W J, Zhang L C, Qin K H, . Paleozoic Accretionary and Collisional Tectonics of the Eastern Tienshan (China): Implications for the Continental Growth of Central Asia. American Journal of Science, 2004, 304: 370-395.
CrossRef Google scholar
Xie M Q. Amalgamating Plate Tectonic and Its Droved Mecha-Nism-Tectonic Evolution of Northeast China and Adjacent Area, 2000 Beijing: Science Press, 21-45.
Xu W L, Ji W Q, Pei F P, . Triassic Volcanism in Eastern Heilongjiang and Jilin Provinces, NE China: Chronology, Geochemistry, and Tectonic Implications. Journal of Asian Earth Sciences, 2009, 34(3): 392-402.
CrossRef Google scholar
Xu W L, Pei F P, Wang F, . Spatial-Temporal Relationships of Mesozoic Volcanic Rocks in NE China: Constraints on Tectonic Overprinting and Transformations between Multiple Tectonic Regimes. Journal of Asian Earth Sciences, 2013, 74: 167-193.
CrossRef Google scholar
Yang J H, Wu F Y, Shao J, . Constraints on the Timing of Uplift of the Yanshan Fold and Thrust Belt, North China. Earth and Planetary Science Letters, 2006, 246(3–4): 336-352.
CrossRef Google scholar
Ye H W, Zhang X. The 40Ar-39Ar Age of the Vein Crossite in Blueschist in Mudanjiang Area, NE China and its Geological Implication. Journal of Changchun University of Earth Sciences, 1994, 24: 369-372.
Ye M, Zhang S H, Wu F Y. Tectonic Units and Evolution along the Manzhouli-Suifenhe Geo-Profile. Journal of Changchun University of Science and Technology, 1994, 24: 241-245.

Accesses

Citations

Detail

Sections
Recommended

/