• 中国出版政府奖提名奖

    中国百强科技报刊

    湖北出版政府奖

    中国高校百佳科技期刊

    中国最美期刊

    Volume 41 Issue 11
    Nov.  2016
    Turn off MathJax
    Article Contents
    Zhao Shuo, Xu Wenliang, Tang Jie, Li Yu, Guo Peng, 2016. Neoproterozoic Magmatic Events and Tectonic Attribution of the Erguna Massif:Constraints from Geochronological, Geochemical and Hf Isotopic Data of Intrusive Rocks. Earth Science, 41(11): 1803-1829. doi: 10.3799/dqkx.2016.550
    Citation: Zhao Shuo, Xu Wenliang, Tang Jie, Li Yu, Guo Peng, 2016. Neoproterozoic Magmatic Events and Tectonic Attribution of the Erguna Massif:Constraints from Geochronological, Geochemical and Hf Isotopic Data of Intrusive Rocks. Earth Science, 41(11): 1803-1829. doi: 10.3799/dqkx.2016.550

    Neoproterozoic Magmatic Events and Tectonic Attribution of the Erguna Massif:Constraints from Geochronological, Geochemical and Hf Isotopic Data of Intrusive Rocks

    doi: 10.3799/dqkx.2016.550
    • Received Date: 2016-02-21
    • Publish Date: 2016-11-15
    • This paper presents LA-ICP-MS zircon U-Pb dating, major and trace elements, and Hf isotope data of the Neoproterozoic granitoids in the Erguna Massif with the aim of constraining the Neoproterozoic tectonic evolution and tectonic attribution of the Erguna Massif. Zircons from these granitoids are of magmatic origin in accordance with CL images and high Th/U ratios (0.17-1.46). The zircon dating results, together with previously published age data, demonstrate that the Neoproterozoic magmatisms in the Erguna Massif can be subdivided into seven stages: about 929 Ma, about 887 Ma, about 850 Ma, about 819 Ma, about 792 Ma, about 764 Ma and about 738 Ma. Geochemically, about 887 Ma granites are similar to those of post-collisional granites, whereas 850-737 Ma granitoids are similar generally to A-type granites, except for some samples (collected from Mohe, Amuer, Bishui and Shiwei plutons) which are similar to I-type granites. Zircon Hf isotopic compositions indicate that their primary magmas could have originated not only by partial melting of a depleted lower crust that accreated during the Meso-Neoproterozoic (TDM2=884-1 563 Ma), with a contribution of ancient crustal material in their petrogenesis, but also by partial melting of the residual ancient mafic crustal material. These geochemical data, combined with the published data and the global magmatic-tectonic-thermal events, indicate that Neoproterozoic magmatic events within the Erguna Massif recorded crustal evolution as a result of the assembly and breakup of the Rodinia supercontinent: magmatisms between 927 Ma and 880 Ma were the result of collision-orogeny during the stage of assembly of the Rodinia supercontinent, whereas the 850-737 Ma magmatisms recorded the breakup of the Rodinia supercontinent. The Erguna Massif has an affinity to the adjacent massifs (e.g. Central Mongolia and Tuva massifs) near the southern margin of the Siberian block, and is similar to the Tarim and South China blocks at least in terms of these Neoproterozoic magmatic events, but obviously different from the North China and Siberian blocks.

       

    • loading
    • Andersen, T., 2002.Correction of Common Lead in U-Pb Analyses that Do Not Report 204Pb.Chemical Geology, 192(1-2):59-79.doi: 10.1016/s0009-2541(02)00195-x
      Biao, S.H., Zheng, W.Z., Zhou, X.F., 2012.Zircon U-Pb Age of the North Da Hinggan Mts.NE China and Its Constraint to Attribute of the Ergun Block.Acta Geologica Sinica, 86(8):1262-1272 (in Chinese with English abstract). http://en.cnki.com.cn/Article_en/CJFDTOTAL-DZXE201208010.htm
      Blichert-Toft, J., Chauvel, C., Albarède, F., 1997.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, 127(3):248-260.doi: 10.1007/s004100050278
      Boynton, W.V., 1984.Geochemistry of the Rare Earth Elements:Meteorite Studies.In:Henderson, P., ed., Rare Earth Element Geochemistry.Elsevier, Amsterdam, 63-114.doi: 10.1016/b978-0-444-42148-7.50008-3
      Bretshtein, Y.S., Klimova, A.V., 2007.Paleomagnetic Study of Late Proterozoic and Early Cambrian Rocks in Terranes of the Amur Plate.Izvestiya, Physics of the Solid Earth, 43(10):890-903.doi: 10.1134/s1069351307100114
      Charvet, J., 2013.The Neoproterozoic-Early Paleozoic Tectonic Evolution of the South China Block:An Overview.Journal of Asian Earth Sciences, 74(18):198-209.doi: 10.1016/j.jseaes.2013.02.015
      Chen, C.Y., Gao, Y.F., Wu, H.B., et al., 2016.Zircon U-Pb Chronology of Volcanic Rocks in the Hailaer Basin, NE China and Its Geological Implications.Earth Science, 41(8):1259-1274 (in Chinese with English abstract).doi: 10.3799/dqkx.2016.104
      Chen, Y., Xu, B., Zhan, S., et al., 2004.First Mid-Neoproterozoic Paleomagnetic Results from the Tarim Basin (NW China) and Their Geodynamic Implications.Precambrian Research, 133(3-4):271-281.doi: 10.1016/j.precamres.2004.05.002
      Chen, Z.H., Lu, S.N., Li, H.K., et al., 2006.Constraining the Role of the Qinling Orogen in the Assembly and Break-Up of Rodinia:Tectonic Implications for Neoproterozoic Granite Occurrences.Journal of Asian Earth Sciences, 28(1):99-115. doi: 10.1016/j.jseaes.2005.03.011
      de Boisgrollier, T., Petit, C., Fournier, M., et al., 2009.Palaeozoic Orogeneses around the Siberian Craton:Structure and Evolution of the Patom Belt and Foredeep.Tectonics, 28(1):227-231. doi: 10.1029/2007tc002210
      Ernst, R.E., Buchan, K.L., 1999.Mantle Plume Events during the Assembly and Breakup of Rodinia:The Record from Short-Duration Large Igneous Province.Abstracts with Programs-Geological Society of America, 31(7):316.
      Feng, Z.Q., 2015.The Palezoic Tectono-Magmatic Evolution of the Northern Great Xing an Range (Dissertation).Jilin University, Changchun (in Chinese with English abstract). http://www.sciencedirect.com/science/article/pii/S1367912015000218
      Ge, W.C., Wu, F.Y., Zhou, C.Y., et al., 2005.Emplacement Age of the Tahe Granite and Its Constraints on the Tectonic Nature of the Ergun Block in the Northern Part of the Da Hinggan Range.Chinese Science Bulletin, 50(18):2097-2105.doi: 10.1360/982005-207
      Ge, W.C., Chen, J.S., Yang, H., et al., 2015.Tectonic Implications of New Zircon U-Pb Ages for the Xinghuadukou Complex, Erguna Massif, Northern Great Xing an Range, NE China.Journal of Asian Earth Sciences, 106:169-185.doi: 10.1016/j.jseaes.2015.03.011
      Ge, W.C., Sui, Z.M., Wu, F.Y., et al., 2007.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, 23(2):423-440 (in Chinese with English abstract). http://en.cnki.com.cn/Article_en/CJFDTOTAL-YSXB200702022.htm
      Gladkochub, D., Pisarevsky, S., Donskaya, T., et al., 2006.The Siberian Craton and Its Evolution in Terms of the Rodinia Hypothesis.Episodes, 29(3):169-174. http://www.cqvip.com/qk/86983X/200603/23176487.html
      Gladkochub, D.P., Donskaya, T.V., Mazukabzov, A.M., et al., 2007.Signature of Precambrian Extension Events in the Southern Siberian Craton.Russian Geology and Geophysics, 48(1):17-31.doi: 10.1016/j.rgg.2006.12.001
      Gou, J., Sun, D.Y., Ren, Y.S., et al., 2013.Petrogenesis and Geodynamic Setting of Neoproterozoic and Late Paleozoic Magmatism in the Manzhouli-Erguna Area of Inner Mongolia, China:Geochronological, Geochemical and Hf Isotopic Evidence.Journal of Asian Earth Sciences, 67-68:114-137.doi: 10.1016/j.jseaes.2013.02.016
      Griffin, W.L., Pearson, N.J., Belousova, E., et al., 2000.The Hf Isotope Composition of Cratonic Mantle:LAM-MC-ICPMS Analysis of Zircon Megacrysts in Kimberlites.Geochimica et Cosmochimica Acta, 64(1):133-147.doi: 10.1016/S0016-7037(99)00343-9
      Guo, J.J., Zhang, G.W., Lu, S.N., et al., 1999.Neoproterozoic Continental Block Collage of China and Rodinia Supercontinent.Geological Journal of China Universities, 5(2):148-156 (in Chinese with English abstract). http://en.cnki.com.cn/Article_en/CJFDTotal-GXDX902.002.htm
      Guo, L.J., Chen, Z.Y., Meng, E.G., et al., 2005.The Nanhuaan System in the Northern Da Hinggan Mountains.Geological Bulletin of China, 24(9):826-830 (in Chinese with English abstract). http://en.cnki.com.cn/Article_en/CJFDTOTAL-ZQYD200509007.htm
      Guo, Z.J., Yin, A., Robinson, A., et al., 2005.Geochronology and Geochemistry of Deep-Drill-Core Samples from the Basement of the Central Tarim Basin.Journal of Asian Earth Sciences, 25(1):45-56.doi: 10.1016/j.jseaes.2004.01.016
      Han, G.Q., Liu, Y.J., Neubauer, F., et al., 2011.Origin of Terranes in the Eastern Central Asian Orogenic Belt, NE China:U-Pb Ages of Detrital Zircons from Ordovician-Devonian Sandstones, North Da Xing an Mts..Tectonophysics, 511(3-4):109-124.doi: 10.1016/j.tecto.2011.09.002
      Heilongjiang Bureau of Geology and Mineral Resources, 1993.Regional Geology of Heilongjiang Province.Geological Publishing House, Beijing (in Chinese).
      Hong, D.W., Wang, S.G., Xie, X.L., et al., 2003.Correlation between Continental Crustal Growth and the Supercontinental Cycle:Evidence from the Granites with Positive εNd in the Central Asian Orogenic Belt.Acta Geologica Sinica, 77(2):203-209 (in Chinese with English abstract). http://kns.cnki.net/KCMS/detail/detail.aspx?filename=dzxe200302015&dbname=CJFD&dbcode=CJFQ
      Hu, Z.C., Liu, Y.S., Gao, S., et al., 2008.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, 23(9):1192-1203.doi: 10.1039/B803934H
      Hu, Z.C., Liu, Y.S., Gao, S., et al., 2012.Improved In-Situ Hf Isotope Ratio Analysis of Zircon Using Newly Designed X Skimmer Cone and Jet Sample Cone in Combination with the Addition of Nitrogen by Laser Ablation Multiple Collector ICP-MS.Journal of Analytical Atomic Spectrometry, 27(9):1391-1399.doi: 10.1039/c2ja30078h
      Huang, J.Q., Ren, J.S., Jiang, C.F., et al., 1977.An Outline of the Tectonic Characteristics of China.Acta Geologica Sinica, (2):117-135 (in Chinese with English abstract). http://en.cnki.com.cn/Article_en/CJFDTOTAL-DZXE197702002.htm
      Inner Mongolian Bureau of Geology and Mineral Resources, 1991.Regional Geology of Inner Mongolian Automo.Geological Publishing House, Beijing (in Chinese).
      Irvine, T.N., Baragar, W.R.A., 1971.A Guide to the Chemical Classification of the Common Volcanic Rocks.Canadian Journal of Earth Sciences, 8(5):523-548.doi: 10.1139/e71-055
      Ivanov, A.V., Demonterova, E.I., Gladkochub, D.P., et al., 2014.The Tuva-Mongolia Massif and the Siberian Craton-Are They the Same? A Comment on 'Age and Provenance of the Ergunahe Group and the Wubinaobao Formation, Northeastern Inner Mongolia, NE China:Implications for Tectonic Setting of the Erguna Massif' by Zhang et al..International Geology Review, 56(8):954-958.doi: 10.1080/00206814.2014.905999
      Izokh, A.E., Gibsher, A.S., Zhuravlev, D.Z., et al., 1998.Sm-Nd Dating of the Ultramafic-Mafic Massifs of the Eastern Branch of the Baikal-Muya Ophiolite Belt.Doklady Earth Sciences, 360:525-529. http://cat.inist.fr/?aModele=afficheN&cpsidt=10493111
      Koschek, G., 1993.Origin and Significance of the SEM Cathodoluminescence from Zircon.Journal of Microscopy, 171(3):223-232.doi: 10.1111/j.1365-2818.1993.tb03379.x
      Kravchinsky, V.A., Sklyarov, E.V., Gladkochub, D.P., et al., 2010.Paleomagnetism of the Precambrian Eastern Sayan Rocks:Implications for the Ediacaran-Early Cambrian Paleogeography of the Tuva-Mongolian Composite Terrane.Tectonophysics, 486(1-4):65-80.doi: 10.1016/j.tecto.2010.02.010
      Kuzmichev, A.B., Bibikova, E.V., Zhuravlev, D.Z., 2001.Neoproterozoic (~800 Ma) Orogeny in the Tuva-Mongolia Massif (Siberia):Island Arc-Continent Collision at the Northeast Rodinia Margin.Precambrian Research, 110(1-4):109-126.doi: 10.1016/s0301-9268(01)00183-8
      Li, X.H., Li, Z.X., Zhou, H.W., et al., 2002.U-Pb Zircon Geochronology, Geochemistry and Nd Isotopic Study of Neoproterozoic Bimodal Volcanic Rocks in the Kangdian Rift of South China:Implications for the Initial Rifting of Rodinia.Precambrian Research, 113(1-2):135-154.doi: 10.1016/s0301-9268(01)00207-8
      Li, Z.X., Bogdanova, S.V., Collins, A.S., et al., 2008.Assembly, Configuration, and Break-Up History of Rodinia:A Synthesis.Precambrian Research, 160(1-2):179-210.doi: 10.1016/j.precamres.2007.04.021
      Li, Z.X., Li, X.H., Kinny, P.D., et al., 1999.The Breakup of Rodinia:Did It Start with a Mantle Plume beneath South China? Earth and Planetary Science Letters, 173(3):171-181.doi: 10.1016/s0012-821x(99)00240-x
      Li, Z.X., Li, X.H., Kinny, P.D., et al., 2003.Geochronology of Neoproterozoic Syn-Rift Magmatism in the Yangtze Craton, South China and Correlations with Other Continents:Evidence for a Mantle Superplume that Broke up Rodinia.Precambrian Research, 122(1-4):85-109.doi: 10.1016/s0301-9268(02)00208-5
      Li, Z.X., Zhang, L.H., Powell, C.M., 1995.South China in Rodinia:Part of the Missing Link between Australia-East Antarctica and Laurentia? Geology, 23(5):407-410.doi:10.1130/0091-7613(1995)023<0407:scirpo>2.3.co;2
      Lin, G.C., Li, X.H., Li, W.X., 2007.SHRIMP U-Pb Zircon Age, Geochemistry and Nd-Hf Isotope of Neoproterozoic Mafic Dyke Swarms in Western Sichuan:Petrogenesis and Tectonic Significance.Science in China(Series D), 50(1):1-16.doi: 10.1007/s11430-007-2018-0
      Liu, Y.Q., Gao, L.Z., Liu, Y.X., et al., 2006.Zircon U-Pb Dating for the Earliest Neoproterozoic Mafic Magmatism in the Southern Margin of the North China Block.Chinese Science Bulletin, 51(19):2375-2382.doi: 10.1007/s11434-006-2114-0
      Liu, Y.S., Gao, S., Hu, Z.C., et al., 2010.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 from Mantle Xenoliths.Journal of Petrology, 51(1-2):537-571. doi: 10.1093/petrology/egp082
      Liu, Y.S., Hu, Z.C., Gao, S., et al., 2008.In Situ Analysis of Major and Trace Elements of Anhydrous Minerals by LA-ICP-MS without Applying an Internal Standard.Chemical Geology, 257(1-2):34-43.doi: 10.1016/j.chemgeo.2008.08.004
      Long, X.P., Yuan, C., Sun, M., et al., 2011.Reworking of the Tarim Craton by Underplating of Mantle Plume-Derived Magmas:Evidence from Neoproterozoic Granitoids in the Kuluketage Area, NW China.Precambrian Research, 187(1-2):1-14.doi: 10.1016/j.precamres.2011.02.001
      Lu, S.N., 1998.A Review of Advance in the Research on the Neoproterozoic Rodinia Supereontinent.Geological Review, 44(5):489-495 (in Chinese with English abstract). https://www.researchgate.net/publication/313772235_A_review_of_advance_in_the_research_on_the_Neoproterozoic_Rodinia_supercontinent
      Lu, S.N., Li, H.K., Zhang, C.L., et al., 2008.Geological and Geochronological Evidence for the Precambrian Evolution of the Tarim Craton and Surrounding Continental Fragments.Precambrian Research, 160(1-2):94-107.doi: 10.1016/j.precamres.2007.04.025
      Ludwig, K.R., 2003.ISOPLOT 3:A Geochronological Toolkit for Microsoft Excel.Berkeley Geochronology Centre Special Publication, (4):74. https://www.researchgate.net/publication/284758218_ISOPLOT_30_A_Geochronological_Toolkit_for_Microsoft_Excel_Berkeley_Geochronology_Center_Special_Publication
      Luo, Y., Wang, Z.B., Zhou, D.A., 1997.The Geologic Characteristics and Prospecting Prospect of Eerguna Super-Large Volcanic Hydrothermal Type Uranium Metallogenic Belt.Journal of East China Geological Institute, 20(1):1-10 (in Chinese with English abstract). doi: 10.1080/02533839.1997.9741800
      Lü, Z.C., Duan, G.Z., Hao, L.B., 2002.Geochemistry and Tectonic Setting of Metamorphic Detrital Rock of Jiageda Group.Journal of Jilin University (Earth Science Edition), 32(2):111-115 (in Chinese with English abstract). http://kns.cnki.net/KCMS/detail/detail.aspx?filename=ccdz200202001&dbname=CJFD&dbcode=CJFQ
      Meert, J.G., Powell, C.M., 2001.Assembly and Break-Up of Rodinia:Introduction to the Special Volume.Precambrian Research, 110(1-4):1-8.doi: 10.1016/s0301-9268(01)00177-2
      Miao, L.C., Liu, D.Y., Zhang, F.Q., et al., 2007.Zircon SHRIMP U-Pb Ages of the "Xinghuadukou Group" in Hanjiayuanzi and Xinlin Areas and the "Zhalantun Group" in Inner Mongolia, Da Hinggan Mountains.Chinese Science Bulletin, 52(5):591-601(in Chinese with English abstract). http://cpfd.cnki.com.cn/Article/CPFDTOTAL-DZDQ200801001033.htm
      Pan, S., Zheng, J., Griffin, W.L., et al., 2014.Precambrian Tectonic Attribution and Evolution of the Songliao Terrane Revealed by Zircon Xenocrysts from Cenozoic Alkali Basalts, Xilinhot Region, NE China.Precambrian Research, 251(3):33-48.doi: 10.1016/j.precamres.2014.05.022
      Peng, P., Bleeker, W., Ernst, R.E., et al., 2011.U-Pb Baddeleyite Ages, Distribution and Geochemistry of 925 Ma Mafic Dykes and 900 Ma Sills in the North China Craton:Evidence for a Neoproterozoic Mantle Plume.Lithos, 127(1-2):210-221.doi: 10.1016/j.lithos.2011.08.018
      Pisarevsky, S.A., Natapov, L.M., 2003.Siberia and Rodinia.Tectonophysics, 375(1-4):221-245.doi: 10.1016/j.tecto.2003.06.001
      Pisarevsky, S.A., Natapov, L.M., Donskaya, T.V., et al., 2008.Proterozoic Siberia:A Promontory of Rodinia.Precambrian Research, 160(1-2):66-76.doi: 10.1016/j.precamres.2007.04.016
      Powell, C.M., Preiss, W.V., Gatehouse, C.G., et al., 1994.South Australian Record of a Rodinian Epicontinental Basin and Its Mid-Neoproterozoic Breakup (~700 Ma) to Form the Palaeo-Pacific Ocean.Tectonophysics, 237(3-4):113-140.doi: 10.1016/0040-1951(94)90250-x
      Preiss, ,W..V, 2000.The Adelaide Geosyncline of South Australia and Its Significance in Neoproterozoic Continental Reconstruction.Precambrian Research, 100(1-3):21-63.doi: 10.1016/s0301-9268(99)00068-6
      Pupin, J.P., 1980.Zircon and Granite Petrology.Contributions to Mineralogy and Petrology, 73(3):207-220.doi: 10.1007/bf00381441
      Qin, X.F., Guo, Y.S., Liu, X.G., et al., 2004.Geochemical Characteristics and Tectonic Significance of the Xingkaiian Granites from the North Da Hinggan Mountains.Acta Geologica Gansu, (2):31-39 (in Chinese with English abstract). http://en.cnki.com.cn/article_en/cjfdtotal-gsdz200402005.htm
      Qin, X.F., Guo, Y.S., Liu, X.G., et al., 2005.Geochemical Characteristics of Jinningian Intermediate-Acid Gneisses in North Daxing anling Mountains and Their Significance.Journal of Lanzhou University (Natural Science Edition), 41(4):6-10 (in Chinese with English abstract). http://en.cnki.com.cn/Article_en/CJFDTOTAL-LDZK200504002.htm
      Ren, J.S., Chen, T.Y., Liu, Z.G., 1984.Some Problems on the Division of Tectonic Units in Eastern China.Geological Review, 30(4):382-385 (in Chinese with English abstract). https://www.researchgate.net/publication/284701873_Some_problems_on_the_division_of_tectonic_units_in_eastern_China
      Ritsk, E.Y., Amelin, Y.V., Rizvanova, N.G., et al., 2001.Age of Rocks in the Baikal-Muya Foldbelt.Stratigraphy and Geological Correlation, 9(4):315-326. https://www.researchgate.net/publication/287786844_Age_of_rocks_in_the_Baikal-Muya_foldbelt
      Rojas-Agramonte, Y., Kr ner, A., Demoux, A., et al., 2011.Detrital and Xenocrystic Zircon Ages from Neoproterozoic to Palaeozoic Arc Terranes of Mongolia:Significance for the Origin of Crustal Fragments in the Central Asian Orogenic Belt.Gondwana Research, 19(3):751-763.doi: 10.1016/j.gr.2010.10.004
      Rudnick, R.L., Fountain, D.M., 1995.Nature and Composition of the Continental Crust:A Lower Crustal Perspective.Reviews of Geophysics, 33(3):267-310.doi: 10.1029/95rg01302
      Rudnick, R.L., Gao, S., 2003.Composition of the Continental Crust.Treatise on Geochemistry, 3:1-64.doi: 10.1016/b0-08-043751-6/03016-4
      Shao, J., Li, Y.F., Zhou, Y.H., et al., 2015.Neo-Archaean Magmatic Event in Erguna Massif of Northeast China:Evidence from the Zircon LA-ICP-MS Dating of the Gneissic Monzogranite from the Drill.Journal of Jilin University (Earth Science Edition), 45(2):364-373 (in Chinese with English abstract). https://www.researchgate.net/publication/282710150_Neo-archaean_magmatic_event_in_erguna_massif_of_northeast_china_evidence_from_the_zircon_LA-ICP-MS_dating_of_the_gneissic_monzogranite_from_the_drill
      She, H.Q., Li, J.W., Xiang, A.P., et al., 2012.U-Pb Ages of the Zircons from Primary Rocks in Middle-Northern Daxinganling and Its Implications to Geotectonic Evolution.Acta Petrologica Sinica, 28(2):571-594 (in Chinese with English abstract). http://www.oalib.com/paper/1475427
      Sklyarov, E.V., Gladkochub, D.P., Mazukabzov, A.M., et al., 2003.Neoproterozoic Mafic Dike Swarms of the Sharyzhalgai Metamorphic Massif, Southern Siberian Craton.Precambrian Research, 122(1-4):359-376.doi: 10.1016/s0301-9268(02)00219-x
      Sui, Z.M., Ge, W.C., Wu, F.Y., et al., 2006.U-Pb Chronology in Zircon from Harabaqi Granitic Pluton in Northeastern Daxinganling Area and Its Origin.Global Geology, 25(3):229-236 (in Chinese with English abstract). http://en.cnki.com.cn/Article_en/CJFDTOTAL-SJDZ200603002.htm
      Sui, Z.M., Ge, W.C., Wu, F.Y., et al., 2007.Ziron U-Pb Ages, Geochemistry and Its Petrogenesis of Jurassic Granites in Northeastern Part of the Da Hinggan Mts..Acta Petrologica Sinica, 23(2):461-480 (in Chinese with English abstract). https://www.researchgate.net/publication/279674342_Zircon_U-Pb_ages_geochemistry_and_its_petrogenesis_of_Jurassic_granites_in_northeastern_part_of_the_Da_Hinggan_Mts
      Sui, Z.M., Ge, W.C., Wu, F.Y., et al., 2009.Hf Isotopic Characteristics and Geological Significance of the Chahayan Pluton in Northern Daxing anling Mountains.Journal of Jilin University(Earth Science Edition), 39(5):849-856, 867(in Chinese with English abstract). http://en.cnki.com.cn/Article_en/CJFDTOTAL-CCDZ200905013.htm
      Sun, L.X., Ren, B.F., Zhao, F.Q., et al., 2012.Zircon U-Pb Ages and Hf Isotope Characteristics of Taipingchuan Large Porphyritic Granite Pluton of Erguna Massif in the Great Xing'an Range.Earth Science Frontiers, 19(5):114-122 (in Chinese with English abstract). http://en.cnki.com.cn/Article_en/CJFDTOTAL-DXQY201205013.htm
      Sun, L.X., Ren, B.F., Zhao, F.Q., et al., 2013.Late Paleoproterozoic Magmatic Records in the Eerguna Massif:Evidences from the Zircon U-Pb Dating of Granitic Gneisses.Geological Bulletin of China, 32(2):341-352 (in Chinese with English abstract). https://www.researchgate.net/publication/279767980_Late_Paleoproterozoic_magmatic_records_in_the_Eerguna_massif_evidences_from_the_zircon_U-Pb_dating_of_granitic_gneisses
      Sun, S.S., McDonough, W.F., 1989.Chemical and Isotopic Systematics of Oceanic Basalts:Implications for Mantle Composition and Processes.In:Saunders, A.D., Norry, M.J., eds., Magmatism in Ocean Basins.Geological Society of Special Publication, London, 42(1):313-345.doi: 10.1144/gsl.sp.1989.042.01.19
      Tang, J., Xu, W.L., Wang, F., et al., 2013.Geochronology and Geochemistry of Neoproterozoic Magmatism in the Erguna Massif, NE China:Petrogenesis and Implications for the Breakup of the Rodinia Supercontinent.Precambrian Research, 224:597-611.doi: 10.1016/j.precamres.2012.10.019
      Tang, J., Xu, W.L., Wang, F., et al., 2014.Geochronology and Geochemistry of Early-Middle Triassic Magmatism in the Erguna Massif, NE China:Constraints on the Tectonic Evolution of the Mongol-Okhotsk Ocean.Lithos, 184-187(1):1-16.doi: 10.1016/j.lithos.2013.10.024
      Tang, J., Xu, W.L., Wang, F., et al., 2015a.Geochronology, Geochemistry, and Deformation History of Late Jurassic-Early Cretaceous Intrusive Rocks in the Erguna Massif, NE China:Constraints on the Late Mesozoic Tectonic Evolution of the Mongol-Okhotsk Orogenic Belt.Tectonophysics, 658:91-110.doi: 10.1016/j.tecto.2015.07.012
      Tang, J., Xu, W.L., Wang, F., et al., 2015b.Early Mesozoic Southward Subduction History of the Mongol-Okhotsk Oceanic Plate:Evidence from Geochronology and Geochemistry of Early Mesozoic Intrusive Rocks in the Erguna Massif, NE China.Gondwana Research, 31:218-240.doi: 10.1016/j.gr.2014.12.010
      Vernikovsky, V.A., 2003.Neoproterozoic Accretionary Orogens of the Western Margin of Siberian Craton.Geophysical Research abstracts, 5:3192. http://www.sciencedirect.com/science/article/pii/S0040195103003378
      Vernikovsky, V.A., Vernikovskaya, A.E., Pease, V.L., et al., 2004.Neoproterozoic Orogeny along the Margins of Siberia.Geological Society, London, Memoirs, 30(1):233-248.doi: 10.1144/gsl.mem.2004.030.01.18
      Wan, T.F., 2004.On the Complex and Mixed Collision Zones in China Continent.Earth Science Frontiers, 11(3):207-220 (in Chinese with English abstract). http://en.cnki.com.cn/Article_en/CJFDTOTAL-DXQY200403026.htm
      Wang, F., Xu, W.L., Gao, F.H., et al., 2014.Precambrian Terrane within the Songnen-Zhangguangcai Range Massif, NE China:Evidence from U-Pb Ages of Detrital Zircons from the Dongfengshan and Tadong Groups.Gondwana Research, 26(1):402-413.doi: 10.1016/j.gr.2013.06.017
      Wang, J., Li, Z.X., 2003.History of Neoproterozoic Rift Basins in South China:Implications for Rodinia Break-Up.Precambrian Research, 122(1-4):141-158.doi: 10.1016/s0301-9268(02)00209-7
      Wang, J.H., 1998.New Advances in Reconstruction of the Proterozoic Rodinia Supercontinent.Earth Science Frontiers, 5(4):235-242 (in Chinese with English abstract). https://www.researchgate.net/publication/313772235_A_review_of_advance_in_the_research_on_the_Neoproterozoic_Rodinia_supercontinent
      Wang, Q.H., Yang, D.B., Xu, W.L., 2011.Neoproterozoic Basic Magmatism in the Southeast Margin of North China Craton:Evidence from Whole-Rock Geochemistry, U-Pb and Hf Isotopic Study of Zircons from Diabase Swarms in the Xuzhou-Huaibei Area.Science in China(Series D), 41(6):796-815 (in Chinese). http://kns.cnki.net/KCMS/detail/detail.aspx?filename=jdxk201106007&dbname=CJFD&dbcode=CJFQ
      Wang, Z., An, C.J., Shao, J., et al., 2005.Geochemical Characteristics of Neoproterozoic Large-Porphyritic Alkali-Feldspar Granite in Mordaga Area.Geology and Resources, 14(3):187-191 (in Chinese with English abstract). http://en.cnki.com.cn/Article_en/CJFDTOTAL-GJSD200503005.htm
      Wang, Z.L., Jin, J., Li, Z.L., et al., 2010.Zircon U-Pb Ages and Hf Isotopic Characteristics of Mineralized Porphyries in the Mordaoga Area, Northern-Central Da Hinggan Mountains, and Their Metallogenic Significance.Acta Petrologica et Mineralogica, 29(6):796-810 (in Chinese with English abstract). http://en.cnki.com.cn/Article_en/CJFDTOTAL-YSKW201006015.htm
      Whalen, J.B., Currie, K.L., Chappell, B.W., 1987.A-Type Granite:Geochemical Characteristics, Discrimination and Petrogenesis.Contributions to Mineralalogy and Petrology, 95(4):407-419.doi: 10.1007/bf00402202
      Wilde, S.A., Zhang, X.Z., Wu, F.Y., 2000.Extension of a Newly Identified 500 Ma Metamorphic Terrane in North East China:Further U-Pb SHRIMP Dating of the Mashan Complex, Heilongjiang Province, China.Tectonophysics, 328(1-2):115-130.doi: 10.1016/S0040-1951(00)00180-3
      Wu, F.Y., Jahn, B.M., Wilde, S., et al., 2000.Phanerozoic Crustal Growth:U-Pb and Sr-Nd Isotopic Evidence from the Granites in Northeastern China.Tectonophysics, 328(1-2):89-113.doi: 10.1016/s0040-1951(00)00179-7
      Wu F.Y., Sun, D.Y., Lin, Q., 1999.Petrogenesis of the Phanerozoic Granites and Crustal Growth in Northeast China.Acta Petrologica Sinica, 15(2):181-189 (in Chinese with English abstract). http://www.oalib.com/paper/1471776
      Wu, F.Y., Sun, D.Y., Ge, W.C., et al., 2011.Geochronology of the Phanerozoic Granitoids in Northeastern China.Journal of Asian Earth Sciences, 41(1):1-30.doi: 10.1016/j.jseaes.2010.11.014
      Wu, F.Y., Yang, Y.H., Xie, L.W., et al., 2006.Hf Isotopic Compositions of the Standard Zircons and Baddeleyites Used in U-Pb Geochronology.Chemical Geology, 234(1-2):105-126.doi: 10.1016/j.chemgeo.2006.05.003
      Wu, F.Y., Zhao, G.C., Sun, D.Y., et al., 2007.The Hulan Group:Its Role in the Evolution of the Central Asian Orogenic Belt of NE China.Journal of Asian Earth Sciences, 30(3-4):542-556.doi: 10.1016/j.jseaes.2007.01.003
      Wu, G., Chen, Y.C., Chen, Y.J., et al., 2012.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, 49:214-233.doi: 10.1016/j.jseaes.2011.11.023
      Wu, G., Sun, F.Y., Zhao, C.S., et al., 2005.Discovery of the Early Paleozoic Post-Collisional Granites in Northern Margin of the Erguna Massif and Its Geological Significance.Chinese Science Bulletin, 50(20):2733-2743 (in Chinese).
      Xia, L.Q., Xia, Z.C., Xu, X.Y., et al., 2012.Mid-Late Neoproterozoic Rift-Related Volcanic Rocks in China:Geological Records of Rifting and Break-Up of Rodinia.Geoscience Frontiers, 3(4):375-399.doi: 10.1016/j.gsf.2011.10.004
      Xu, B., 2001.Recent Study of the Rodinia Supercontinent Evolution and Its Main Goal.Geological Science & Technology Information, 20(1):15-19 (in Chinese with English abstract). http://en.cnki.com.cn/Article_en/CJFDTOTAL-DZKQ200101002.htm
      Xu, B., Zhao, P., Bao, Q.Z., et al., 2014.Preliminary Study on the Pre-Mesozoic Tectonic Unit Division of the Xing-Meng Orogenic Belt (XMOB).Acta Petrologica Sinica, 30(7):1841-1857 (in Chinese with English abstract). http://en.cnki.com.cn/Article_en/CJFDTotal-YSXB201407001.htm
      Yang, D.B., Xu, W.L., Xu, Y.G., et al., 2012.U-Pb Ages and Hf Isotope Data from Detrital Zircons in the Neoproterozoic Sandstones of Northern Jiangsu and Southern Liaoning Provinces, China:Implications for the Late Precambrian Evolution of the Southeastern North China Craton.Precambrian Research, 216-219:162-176.doi: 10.1016/j.precamres.2012.07.002
      Yang, W.L., Luo, M.S., Wang, C.G., et al., 2014.Neoproterozoic-Paleozoic Sedimentary Basins Evolution of Xing-Meng Orogenic Belt.Earth Science, 39(8):1155-1168 (in Chinese with English abstract).doi: 10.3799/dqkx.2014.101
      Ye, M.F., Li, X.H., Li, W.X., et al., 2007.SHRIMP Zircon U-Pb Geochronological and Whole-Rock Geochemical Evidence for an Early Neoproterozoic Sibaoan Magmatic Arc along the Southeastern Margin of the Yangtze Block.Gondwana Research, 12(1-2):144-156.doi: 10.1016/j.gr.2006.09.001
      Zhang, C.L., Li, Z.X., Li, X.H., et al., 2006.Neoproterozoic Bimodal Intrusive Complex in the Southwestern Tarim Block, Northwest China:Age, Geochemistry, and Implications for the Rifting of Rodinia.International Geology Review, 48(2):112-128.doi: 10.2747/0020-6814.48.2.112
      Zhang, L., Liu, Y.J., Li, W.M., 2013.Discussion on the Basement Properties and East Boundary of the Erguna Massif.Chinese Journal of Geology, 48(1):227-244 (in Chinese with English abstract). http://en.cnki.com.cn/Article_en/CJFDTotal-DZKX201301015.htm
      Zhang, J.H., 2009.Geochronology and Geochemistry of the Mesozoic Volcanic Rocks in the Great Xing an Range, Northeastern China (Dissertation).China University of Geosciences, Wuhan (in Chinese with English abstract).
      Zhang, M., Wang, Z., Meng, E.G., et al., 2006.Geochemical Characteristics and Tectonic Significance of the Neoproterozoic Granites in Northern Daxinganling, Inner Mongolia.Geology and Resources, 15(2):98-106 (in Chinese with English abstract). http://en.cnki.com.cn/Article_en/CJFDTOTAL-GJSD200602003.htm
      Zhang, Q., Wang, Y., Li, C.D., et al., 2006.Granite Classification on the Basis of Sr and Yb Contents and Its Implications.Acta Petrologica Sinica, 22(9):2249-2269 (in Chinese with English abstract). http://en.cnki.com.cn/Article_en/CJFDTOTAL-YSXB200609000.htm
      Zhang, W.Z., 1996.The Global Proterozoic Supercontinents and the Position of the Main Blocks in China.Foreign Precambrian Geology, (3):1-13 (in Chinese with English abstract).
      Zhang, Y.H., Xu, W.L., Tang, J., et al., 2014.Age and Provenance of the Ergunahe Group and the Wubinaobao Formation, Northeastern Inner Mongolia, NE China:Implications for Tectonic Setting of the Erguna Massif.International Geology Review, 56(6):653-671.doi: 10.1080/00206814.2013.877856
      Zhao, S., Xu, W.L., Wang, W., et al., 2014.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, 25(5):841-853.doi: 10.1007/s12583-014-0476-9
      Zhao, S., Xu, W.L., Wang, F., et al., 2016.Neoproterozoic Magmatisms in the Erguna Massif, NE China:Evidence from Zircon U-Pb Geochronology.Geotectonica et Metallogenia, 40(3):559-573 (in Chinese with English abstract). https://www.researchgate.net/publication/306208688_Neoproterozoic_magmatisms_in_the_Erguna_Massif_NE_China_Evidence_from_zircon_U-Pb_geochronology
      Zhao, S., Xu, W.L., Tang, J., et al., 2016.Timing of Formation and Tectonic Nature of the Purportedly Neoproterozoic Jiageda Formation of the Erguna Massif, NE China:Constraints from Field Geology and U-Pb Geochronology of Detrital and Magmatic Zircons.Precambrian Research, 281:585-601.doi: 10.1016/j.precamres.2016.06.014
      Zhou, J.B., Wilde, S.A., Zhang, X.Z., et al., 2011a.Early Paleozoic Metamorphic Rocks of the Erguna Block in the Great Xing an Range, NE China:Evidence for the Timing of Magmatic and Metamorphic Events and Their Tectonic Implications.Tectonophysics, 499(1-4):105-117.doi: 10.1016/j.tecto.2010.12.009
      Zhou, J.B., Wilde, S.A., Zhang, X.Z., et al., 2011b.A >1 300 km Late Pan-African Metamorphic Belt in NE China:New Evidence from the Xing an Block and Its Tectonic Implications.Tectonophysics, 509(3-4):280-292.doi: 10.1016/j.tecto.2011.06.018
      Zhou, J.B., Wilde, S.A., Zhao, G.C., et al., 2010a.Was the Easternmost Segment of the Central Asian Orogenic Belt Derived from Gondwana or Siberia:An Intriguing Dilemma? Journal of Geodynamics, 50:300-317.doi: 10.1016/j.jog.2010.02.004
      Zhou, J.B., Wilde, S.A., Zhao, G.C., et al., 2010b.Pan-African Metamorphic and Magmatic Rocks of the Khanka Massif, NE China:Further Evidence Regarding Their Affinity.Geological Magazine, 147(5):737-749.doi: 10.1017/S0016756810000063
      Zhou, J.B., Wilde, S.A., 2013.The Crustal Accretion History and Tectonic Evolution of the NE China Segment of the Central Asian Orogenic Belt.Gondwana Research, 23(4):1365-1377.doi: 10.1016/j.gr.2012.05.012
      Zhou, J.B., Wilde, S.A., Zhang, X.Z., et al., 2012 Detrital Zircons from Phanerozoic Rocks of the Songliao Block, NE China:Evidence and Tectonic Implications.Journal of Asian Earth Sciences, 47:21-34.doi: 10.1016/j.jseaes.2011.05.004
      Zhou, J.B., Zeng, W.S., Cao, J.L., et al., 2012.The Tectonic Framework and Evolution of the NE China:from ~500 Ma to ~180 Ma.Journal of Jilin University(Earth Science Edition), 42(5):1298-1316, 1329 (in Chinese with English abstract). https://www.researchgate.net/publication/279581611_The_tectonic_framework_and_evolution_of_the_NE_China_From_500_Ma_to_180_Ma
      表尚虎, 郑卫政, 周兴福, 2012.大兴安岭北部锆石U-Pb年龄对额尔古纳地块构造归属的制约.地质学报, 86(8):1262-1272. http://www.cnki.com.cn/Article/CJFDTOTAL-DZXE201208010.htm
      陈崇阳, 高有峰, 吴海波, 等, 2016.海拉尔盆地火山岩的锆石U-Pb年龄及其地质意义.地球科学, 41(8):1259-1274. http://earth-science.net/WebPage/Article.aspx?id=3336
      葛文春, 隋振民, 吴福元, 等, 2007.大兴安岭东北部早古生代花岗岩锆石U-Pb年龄、Hf同位素特征及地质意义.岩石学报, 23(2):423-440. http://www.cnki.com.cn/Article/CJFDTOTAL-YSXB200702022.htm
      冯志强, 2015. 大兴安岭北段古生代构造-岩浆演化(博士学位论文). 长春: 吉林大学.
      郭进京, 张国伟, 陆松年, 等, 1999.中国新元古代大陆拼合与Rodinia超大陆.高校地质学报, 5(2):148-156. http://www.cnki.com.cn/Article/CJFDTOTAL-GXDX902.002.htm
      郭灵俊, 陈志勇, 孟二根, 等, 2005.大兴安岭北部的南华系.地质通报, 24(9):826-830. http://www.cnki.com.cn/Article/CJFDTOTAL-ZQYD200509007.htm
      黑龙江省地质矿产局, 1993.黑龙江省区域地质志.北京:地质出版社.
      洪大卫, 王式洸, 谢锡林, 等, 2003.从中亚正εNd值花岗岩看超大陆演化和大陆地壳生长的关系.地质学报, 77(2):203-209. http://kns.cnki.net/KCMS/detail/detail.aspx?filename=dzxe200302015&dbname=CJFD&dbcode=CJFQ
      黄汲清, 任纪舜, 姜春发, 等, 1977.中国大地构造基本轮廓.地质学报, (2):117-135. http://www.cnki.com.cn/Article/CJFDTOTAL-DZXE197702002.htm
      陆松年, 1998.新元古时期Rodinia超大陆研究进展述评.地质论评, 44(5):489-495. http://www.cnki.com.cn/Article/CJFDTOTAL-DZLP199805006.htm
      罗毅, 王正邦, 周德安, 1997.额尔古纳超大型火山热液型铀成矿带地质特征及找矿前景.华东地质学院学报, 20(1):1-10. http://www.cnki.com.cn/Article/CJFDTOTAL-HDDZ701.000.htm
      吕志成, 段国正, 郝立波, 等, 2002.佳疙瘩组变碎屑岩地球化学特征及古构造环境.吉林大学学报(地球科学版), 32(2):111-115. http://www.cnki.com.cn/Article/CJFDTOTAL-CCDZ200202001.htm
      苗来成, 刘敦一, 张福勤, 等, 2007.大兴安岭韩家园子和新林地区兴华渡口群和扎兰屯群锆石SHRIMP U-Pb年龄.科学通报, 52(5):591-601. http://www.cnki.com.cn/Article/CJFDTOTAL-KXTB200705018.htm
      内蒙古自治区地质矿产局, 1991.内蒙古自治区区域地质志.北京:地质出版社.
      秦秀峰, 郭原生, 刘旭光, 等, 2004.大兴安岭北部兴凯期花岗岩地球化学特征及构造意义.甘肃地质, 13(2):31-39. http://www.cnki.com.cn/Article/CJFDTOTAL-GSDZ200402005.htm
      秦秀峰, 郭原生, 刘旭光, 等, 2005.大兴安岭北部晋宁期片麻杂岩的地球化学特征及地质意义.兰州大学学报(自然科学版), 41(4):6-10. http://www.cnki.com.cn/Article/CJFDTOTAL-LDZK200504002.htm
      任纪舜, 陈廷愚, 刘志刚, 1984.中国东部构造单元划分的几个问题.地质评论, 30(4):382-385. http://www.cnki.com.cn/Article/CJFDTOTAL-DZLP198404013.htm
      邵军, 李永飞, 周永恒, 等, 2015.中国东北额尔古纳地块新太古代岩浆事件——钻孔片麻状二长花岗岩锆石LA-ICP-MS测年证据.吉林大学学报(地球科学版), 45(2):364-373. http://www.cnki.com.cn/Article/CJFDTOTAL-CCDZ201502003.htm
      佘宏全, 李进文, 向安平, 等, 2012.大兴安岭中北段原岩锆石U-Pb测年及其与区域构造演化的关系.岩石学报, 28(2):571-594. http://www.cnki.com.cn/Article/CJFDTOTAL-YSXB201202019.htm
      隋振民, 葛文春, 吴福元, 等, 2006.大兴安岭东北部哈拉巴奇花岗岩体锆石U-Pb年龄及其成因.世界地质, 25(3):229-236. http://www.cnki.com.cn/Article/CJFDTOTAL-SJDZ200603002.htm
      隋振民, 葛文春, 吴福元, 等, 2007.大兴安岭东北部侏罗纪花岗质岩石的锆石U-Pb年龄、地球化学特征及成因.岩石学报, 23(2):461-480. http://www.cnki.com.cn/Article/CJFDTOTAL-YSXB200702024.htm
      隋振民, 葛文春, 吴福元, 等, 2009.大兴安岭北部察哈彦岩体的Hf同位素特征及其地质意义.吉林大学学报(地球科学版), 39(5):849-856, 867. http://www.cnki.com.cn/Article/CJFDTOTAL-CCDZ200905013.htm
      孙立新, 任邦方, 赵凤清, 等, 2012.额尔古纳地块太平川巨斑状花岗岩的锆石U-Pb年龄和Hf同位素特征.地学前缘, 19(5):114-122. http://www.cnki.com.cn/Article/CJFDTOTAL-DXQY201205013.htm
      孙立新, 任邦方, 赵凤清, 等, 2013.内蒙古额尔古纳地块古元古代末期的岩浆记录——来自花岗片麻岩的锆石U-Pb年龄证据.地质通报, 32(2):341-352. http://www.cnki.com.cn/Article/CJFDTOTAL-ZQYD2013Z1012.htm
      万天丰, 2004.论中国大陆复杂和混杂的碰撞带构造.地学前缘, 11(3):207-220. http://www.cnki.com.cn/Article/CJFDTOTAL-DXQY200403026.htm
      王江海, 1998.元古宙罗迪尼亚(Rodinia)泛大陆的重建研究.地学前缘, 5(4):235-242. http://www.cnki.com.cn/Article/CJFDTOTAL-DXQY804.006.htm
      王清海, 杨德彬, 许文良, 2011.华北陆块东南缘新元古代基性岩浆活动:徐淮地区辉绿岩床群岩石地球化学、年代学和Hf同位素证据.中国科学(D辑), 41(6):796-815. http://www.cnki.com.cn/Article/CJFDTOTAL-JDXK201106007.htm
      王召林, 金浚, 李占龙, 等, 2010.大兴安岭中北段莫尔道嘎地区含矿斑岩的锆石U-Pb年龄、Hf同位素特征及成矿意义.岩石矿物学杂志, 29(6):796-810. http://www.cnki.com.cn/Article/CJFDTOTAL-YSKW201006015.htm
      王忠, 安春杰, 邵军, 等, 2005.大兴安岭莫尔道嘎地区巨斑状碱长花岗岩地球化学特征.地质与资源, 14(3):187-191. http://www.cnki.com.cn/Article/CJFDTOTAL-GJSD200503005.htm
      吴福元, 孙德有, 林强, 1999.东北地区显生宙花岗岩的成因与地壳增生.岩石学报, 15(2):181-189. http://www.cnki.com.cn/Article/CJFDTOTAL-YSXB902.003.htm
      武广, 孙丰月, 赵财胜, 等, 2005.额尔古纳地块北缘早古生代后碰撞花岗岩的发现及其地质意义.科学通报, 50(20):2278-2288. doi: 10.3321/j.issn:0023-074X.2005.20.017
      徐备, 2001.Rodinia超大陆构造演化研究的新进展和主要目标.地质科技情报, 20(1):15-19. http://www.cnki.com.cn/Article/CJFDTOTAL-DZKQ200101002.htm
      徐备, 赵盼, 鲍庆中, 等, 2014.兴蒙造山带前中生代构造单元划分初探.岩石学报, 30(7):1841-1857. http://www.cnki.com.cn/Article/CJFDTOTAL-YSXB201407001.htm
      杨文麟, 骆满生, 王成刚, 等, 2014.兴蒙造山系新元古代-古生代沉积盆地演化.地球科学, 39(8):1155-1168. http://earth-science.net/WebPage/Article.aspx?id=2920
      张吉衡, 2009. 大兴安岭中生代火山岩年代学及地球化学研究(博士学位论文). 武汉: 中国地质大学.
      张丽, 刘永江, 李伟民, 等, 2013.关于额尔古纳地块基底性质和东界的讨论.地质科学, 48(1):227-244. http://www.cnki.com.cn/Article/CJFDTOTAL-DZKX201301015.htm
      张明, 王忠, 孟二根, 等, 2006.内蒙古大兴安岭北部新元古代花岗岩岩石地球化学特征及其构造意义.地质与资源, 15(2):98-106. http://www.cnki.com.cn/Article/CJFDTOTAL-XBZY201201108.htm
      张旗, 王焰, 李承东, 等, 2006.花岗岩的Sr-Yb分类及其地质意义.岩石学报, 22(9):2249-2269. http://www.cnki.com.cn/Article/CJFDTOTAL-YSXB200609000.htm
      张文治, 1996.全球元古宙超大陆及中国主要陆块位置.国外前寒武纪地质, (3):1-13. http://www.cnki.com.cn/Article/CJFDTOTAL-QHWJ199603000.htm
      赵硕, 许文良, 王枫, 等, 2016.额尔古纳地块新元古代岩浆作用:锆石U-Pb年代学证据.大地构造与成矿学, 40(3):559-573. http://www.cnki.com.cn/Article/CJFDTOTAL-DGYK201603012.htm
      周建波, 曾维顺, 曹嘉麟, 等, 2012.中国东北地区的构造格局与演化:从500到180 Ma.吉林大学学报(地球科学版), 42(5):1298-1316, 1329. http://www.cnki.com.cn/Article/CJFDTOTAL-CCDZ201205005.htm
    • 加载中

    Catalog

      通讯作者: 陈斌, bchen63@163.com
      • 1. 

        沈阳化工大学材料科学与工程学院 沈阳 110142

      1. 本站搜索
      2. 百度学术搜索
      3. 万方数据库搜索
      4. CNKI搜索

      Figures(10)  / Tables(4)

      Article views (5156) PDF downloads(47) Cited by()
      Proportional views

      /

      DownLoad:  Full-Size Img  PowerPoint
      Return
      Return