Tracking the Tectonic Evolution of the Junggar-Balkhash Ocean: A Case Study from the Post-Collisional Takergan Pluton in the West Junggar, Xinjiang

Yangbaihe Hong, Bo Liu

Journal of Earth Science ›› 2021, Vol. 32 ›› Issue (5) : 1250-1261.

Journal of Earth Science ›› 2021, Vol. 32 ›› Issue (5) : 1250-1261. DOI: 10.1007/s12583-020-1373-z
Special Issue on Geo-Disasters

Tracking the Tectonic Evolution of the Junggar-Balkhash Ocean: A Case Study from the Post-Collisional Takergan Pluton in the West Junggar, Xinjiang

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Abstract

The Late Carboniferous and Early Permian igneous rocks are widely developed in the West Junggar, Xinjiang, which are considered to be related to the evolution of the Junggar-Balkhash Ocean. However, their tectonic settings have been controversial for a long time. With the aim of providing new evidence for the Late Paleozoic tectonic evolution of the West Junggar, we present petrology, zircon U-Pb chronology, whole-rock major and trace elemental and Sr-Nd isotopic data, to discuss the petrogenesis and tectonic setting of Takergan pluton from the Barleik Mountains in the West Junggar. The Takergan pluton is mainly composed of quartz diorite porphyry and quartz monzonite. The quartz diorite porphyry has low SiO2 (57.76 wt.%–57.81 wt.%), high total alkali contents (Na2O+K2O=6.29 wt.%–6.56 wt.%), and high Mg# values (45–46), with a zircon U-Pb age of 304±5 Ma. The quartz monzonite shows relatively high SiO2 (58.71 wt.%–64.71 wt.%), total alkali contents (7.73 wt.%–9.70 wt.%), and Mg# values (34–47), with the A/CNK values of 0.91–0.98, which belongs to shoshonitic and metaluminous I-type granite series. The quartz monzonite yields zircon U-Pb ages of 302±2 and 296±3 Ma, and is characterized by low initial Sr ratios of 0.703 97–0.704 09, high ε Nd(t) values of +6.8− +7.0, and young Nd model ages of 551–587 Ma. Both the quartz diorite porphyry and quartz monzonite are enriched in light rare earth elements and Rb, Th, U, K, and depleted in Nb, Ta, Ti, with different degrees of negative Eu anomalies. These features indicate that the Takergan pluton was most likely formed in a post-collisional setting by partial melting of a depleted mantle source that had been metasomatized by subduction-related fluids, with significant fractional crystallization and slightly contaminated by crustal materials. Combined with the widespread distribution of the coeval stitching plutons, the occurrences of terrestrial Late Carboniferous to Permian volcano-sedimentary formations, and the absence of subduction-related rocks later than Early Carboniferous, it is believed that the Junggar-Balkhash Ocean was closed at about 320 Ma, and the central West Junggar has transformed to a post-collisional environment during the Late Carboniferous and Early Permian.

Keywords

Junggar-Balkhash Ocean / post-collisional magmatism / central Asian orogenic belt / West Junggar

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Yangbaihe Hong, Bo Liu. Tracking the Tectonic Evolution of the Junggar-Balkhash Ocean: A Case Study from the Post-Collisional Takergan Pluton in the West Junggar, Xinjiang. Journal of Earth Science, 2021, 32(5): 1250‒1261 https://doi.org/10.1007/s12583-020-1373-z

References

Bai J K, Chen J L, Tang Z, . Redefinition of the Middle Devonian Kulumudi Formation in the South of Tiechanggou Town, West Junggar, Xinjiang and Its Geological Implications. Northwestern Geology, 2015, 48(3): 72-80. (in Chinese with English Abstract)
Belousova E, Griffin W, O’Reilly S Y, . Igneous Zircon: Trace Element Composition as an Indicator of Source Rock Type. Contributions to Mineralogy and Petrology, 2002, 143(5): 602-622.
CrossRef Google scholar
Chen B, Arakawa Y. Elemental and Nd-Sr Isotopic Geochemistry of Granitoids from the West Junggar Foldbelt (NW China), with Implications for Phanerozoic Continental Growth. Geochimica et Cosmochimica Acta, 2005, 69(5): 1307-1320.
CrossRef Google scholar
Chen S, Guo Z J, Pe-Piper G, . Late Paleozoic Peperites in West Junggar, China, and How They Constrain Regional Tectonic and Palaeoenvironmental Setting. Gondwana Research, 2013, 23(2): 666-681.
CrossRef Google scholar
Chen J F, Han B F, Ji J Q, . Zircon U-Pb Ages and Tectonic Implications of Paleozoic Plutons in Northern West Junggar, North Xinjiang, China. Lithos, 2010, 115(1/2/3/4): 137-152.
CrossRef Google scholar
Chen J F, Han B F, Zhang L, . Middle Paleozoic Initial Amalgamation and Crustal Growth in the West Junggar (NW China): Constraints from Geochronology, Geochemistry and Sr-Nd-Hf-Os Isotopes of Calc-Alkaline and Alkaline Intrusions in the Xiemisitai-Saier Mountains. Journal of Asian Earth Sciences, 2015, 113: 90-109.
CrossRef Google scholar
Chen B, Jahn B M. Genesis of Post-Collisional Granitoids and Basement Nature of the Junggar Terrane, NW China: Nd-Sr Isotope and Trace Element Evidence. Journal of Asian Earth Sciences, 2004, 23(5): 691-703.
CrossRef Google scholar
Chen Y, Sun M X, Zhang X L. SHRIMP U-Pb Dating of Zircons from Quartz Diorite at the Southeast Side of the Ba’erluke Fault, Western Junggar, Xinjiang, China. Geological Bulletin of China, 2006, 25(8): 992-994. (in Chinese with English Abstract)
Coleman R G. Continental Growth of Northwest China. Tectonics, 1989, 8(3): 621-635.
CrossRef Google scholar
Dong S F, Wang J L, Hu Y, . Geochemistry, Geochronology and Metallogenic Significance of No. 2 Granitic Intrusion in Suyunhe Porphyry Molybdenum Deposit, Western Junggar. Mineral Exploration, 2016, 7(6): 891-903. (in Chinese with English Abstract)
Du H Y, Chen J F. Determination on the Hoboksar Ancient Oceanic Basin in the West Junggar: The Evidence from Zircon U-Pb Age and Geochemistry of the Hoboksar Ophiolite. Acta Geologica Sinica, 2017, 91(12): 2638-2650. (in Chinese with English Abstract)
Duan F H, Li Y J, Zhi Q, . Geochemical Characteristics, Petrogenesis of the Sanukitic Dikes in the Miaoergou Area of West Junggar, Xinjiang, NW China and Their Geological Significance. Geotectonica et Metallogenia, 2018, 42(4): 759-776. (in Chinese with English Abstract)
Frost B R, Barnes C G, Collins W J, . A Geochemical Classification for Granitic Rocks. Journal of Petrology, 2001, 42(11): 2033-2048.
CrossRef Google scholar
Gao R, Xiao L, Pirajno F, . Carboniferous-Permian Extensive Magmatism in the West Junggar, Xinjiang, Northwestern China: Its Geochemistry, Geochronology, and Petrogenesis. Lithos, 2014, 204: 125-143.
CrossRef Google scholar
Geng H Y, Sun M, Yuan C, . Geochemical, Sr-Nd and Zircon U-Pb-Hf Isotopic Studies of Late Carboniferous Magmatism in the West Junggar, Xinjiang: Implications for Ridge Subduction?. Chemical Geology, 2009, 266(3/4): 364-389.
CrossRef Google scholar
Gu P Y, Li Y J, Wang X G, . Geochemical Evidences and Tectonic Significances of Dalabute SSZ-Type Ophiolitic Mélange, Western Junggar Basin. Geological Review, 2011, 57(1): 36-44. (in Chinese with English Abstract)
Han B F, Guo Z J, He G Q. Timing of Major Suture Zones in North Xinjiang, China: Constraints from Stitching Plutons. Acta Petrologica Sinica, 2010, 26(8): 2233-2246. (in Chinese with English Abstract)
Han B F, Guo Z J, Zhang Z C, . Age, Geochemistry, and Tectonic Implications of a Late Paleozoic Stitching Pluton in the North Tian Shan Suture Zone, Western China. Geological Society of America Bulletin, 2010, 122(3/4): 627-640.
CrossRef Google scholar
Han B F, He G Q, Wang S G, . Postcollisional Mantle-Derived Magmatism and Vertical Growth of the Continental Crust in North Xinjiang. Geological Review, 1998, 44(4): 396-406. (in Chinese with English Abstract)
Han B F, Ji J Q, Song B, . Late Paleozoic Vertical Growth of Continental Crust around the Junggar Basin, Xinjiang, China (Part I): Timing of Post-Collisional Plutonism. Acta Petrologica Sinica, 2006, 22(5): 1077-1086. (in Chinese with English Abstract)
He X X, Xiao L, Wang G C. Petrogenesis and Geological Implications of Late Paleozoic Intermediate-Basic Dyke Swarms in Western Junggar. Earth Science—Journal of China University of Geosciences, 2015, 40(5): 777-796. in Chinese with English Abstract)
CrossRef Google scholar
Hu Y, Wang J L, Wang J Q, . Origin of the Shiwu Pluton in Barluk Region, Xinjiang: Zircon U-Pb Chronological, Geochemical and Sr-Nd-Pb-Hf Isotopic Constraints. Acta Petrologica Sinica, 2018, 34(3): 601-617. (in Chinese with English Abstract)
Hu Y, Wang J L, Wang J Q, . Geochemistry and Geochronology of the Granodiorite in Jiamantieliek Pluton, Barluk Region, Xinjiang. Chinese Journal of Geology, 2018, 53(2): 594-614. (in Chinese with English Abstract)
Irvine T N, 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, Wu F Y, Chen B. Granitoids of the Central Asian Orogenic Belt and Continental Growth in the Phanerozoic. Earth and Environmental Science Transactions of the Royal Society of Edinburgh, 2000, 91(1/2): 181-193.
CrossRef Google scholar
le Bas M J, le Maitre RW, Streckeisen A, . A Chemical Classification of Volcanic Rocks Based on the Total Alkali-Silica Diagram. Journal of Petrology, 1986, 27(3): 745-750.
CrossRef Google scholar
Li C F, Li X H, Li Q L, . Rapid and Precise Determination of Sr and Nd Isotopic Ratios in Geological Samples from the Same Filament Loading by Thermal Ionization Mass Spectrometry Employing a Single-Step Separation Scheme. Analytica Chimica Acta, 2012, 727: 54-60.
CrossRef Google scholar
Li D, He D F, Qi X F, . How was the Carboniferous Balkhash-West Junggar Remnant Ocean Filled and Closed? Insights from the Well Tacan-1 Strata in the Tacheng Basin, NW China. Gondwana Research, 2015, 27(1): 342-362.
CrossRef Google scholar
Li Y J, Xu Q, Liu J, . Redefinition and Geological Significance of Jiamuhe Formation in Hala’alate Mountain of West Junggar, Xinjiang. Earth Science, 2016, 41(9): 1479-1488. (in Chinese with English Abstract)
Lin W, Sun P, Xue Z H, . Structural Analysis of Late Paleozoic Deformation of Central Dalabute Fault Zone, West Junggar, China. Acta Petrologica Sinica, 2017, 33(10): 2987-3001. (in Chinese with English Abstract)
Liu B, Han B F, Chen J F, . Closure Time of the Junggar-Balkhash Ocean: Constraints from Late Paleozoic Volcano-Sedimentary Sequences in the Barleik Mountains, West Junggar, NW China. Tectonics, 2017, 36(12): 2823-2845.
CrossRef Google scholar
Liu B, Han B F, Ren R, . Petrogenesis and Tectonic Implications of the Early Carboniferous to the Late Permian Barleik Plutons in the West Junggar (NW China). Lithos, 2017, 272/273: 232-248.
CrossRef Google scholar
Liu B, Han B F, Gong E P, . The Tectono-Magmatic Evolution of the West Junggar Terrane (NW China) Unravelled by U-Pb Ages of Detrital Zircons in Modern River Sands. International Geology Review, 2019, 61(5): 607-621.
CrossRef Google scholar
Liu B, Han B F, Ren R, . Late Carboniferous to Early Permian Adakitic Rocks and Fractionated I-Type Granites in the Southern West Junggar Terrane, NW China: Implications for the Final Closure of the Junggar-Balkhash Ocean. Geological Journal, 2020, 55: 1728-1749.
CrossRef Google scholar
Ludwig K R. Isoplot 3.0: A Geochronological Toolkit for Microsoft Excel, 2003, Berkeley: Berkeley Geochronology Center Special Publication
Pearce J. Sources and Settings of Granitic Rocks. Episodes, 1996, 19(4): 120-125.
CrossRef Google scholar
Pearce J A, Norry M J. Petrogenetic Implications of Ti, Zr, Y, and Nb Variations in Volcanic Rocks. Contributions to Mineralogy and Petrology, 1979, 69(1): 33-47.
CrossRef Google scholar
Peccerillo A, Taylor S R. Geochemistry of Eocene Calc-Alkaline Volcanic Rocks from the Kastamonu Area, Northern Turkey. Contributions to Mineralogy and Petrology, 1976, 58(1): 63-81.
CrossRef Google scholar
Rapp R P, Watson E B. Dehydration Melting of Metabasalt at 8–32 Kbar: Implications for Continental Growth and Crust-Mantle Recycling. Journal of Petrology, 1995, 36(4): 891-931.
CrossRef Google scholar
Ren R, Han B F, Xu Z, . When did the Subduction First Initiate in the Southern Paleo-Asian Ocean: New Constraints from a Cambrian Intra-Oceanic Arc System in West Junggar, NW China. Earth and Planetary Science Letters, 2014, 388: 222-236.
CrossRef Google scholar
Roeder P L, Emslie R F. Olivine-Liquid Equilibrium. Contributions to Mineralogy and Petrology, 1970, 29(4): 275-289.
CrossRef Google scholar
Şengör A M C, Natal’in B A, Burtman V S. Evolution of the Altaid Tectonic Collage and Palaeozoic Crustal Growth in Eurasia. Nature, 1993, 364(6435): 299-307.
CrossRef Google scholar
Shen P, Shen Y C, Li X H, . Northwestern Junggar Basin, Xiemisitai Mountains, China: A Geochemical and Geochronological Approach. Lithos, 2012, 140/141: 103-118.
CrossRef Google scholar
Shen P, Xiao W J, Pan H D, . Petrogenesis and Tectonic Settings of the Late Carboniferous Jiamantieliek and Baogutu Ore-Bearing Porphyry Intrusions in the Southern West Junggar, NW China. Journal of Asian Earth Sciences, 2013, 75: 158-173.
CrossRef Google scholar
Su Y P, Tang H F, Hou G S, . Geochemistry of Aluminous A-Type Granites along Darabut Tectonic Belt in West Junggar, Xinjiang. Geochimica, 2006, 35(1): 55-67. (in Chinese with English Abstract)
Sun H, Xu Y, Han B F, . Changes in Sedimentary Environments and Provenances of the Carboniferous-Lower Permian in Ashelekuoerlesi Area, West Junggar. Geological Bulletin of China, 2020, 39(07): 963-982. (in Chinese with English Abstract)
Sun S S, McDonough W F. Chemical and Isotopic Systematics of Oceanic Basalts: Implications for Mantle Composition and Processes. Geological Society, London, Special Publications, 1989, 42(1): 313-345.
CrossRef Google scholar
Tang G J, Wang Q, Wyman D A, . Ridge Subduction and Crustal Growth in the Central Asian Orogenic Belt: Evidence from Late Carboniferous Adakites and High-Mg Diorites in the Western Junggar Region, Northern Xinjiang (West China). Chemical Geology, 2010, 277(3/4): 281-300.
CrossRef Google scholar
Tang G J, Wyman D A, Wang Q, . Asthenosphere-Lithosphere Interaction Triggered by a Slab Window during Ridge Subduction: Trace Element and Sr-Nd-Hf-Os Isotopic Evidence from Late Carboniferous Tholeiites in the Western Junggar Area (NW China). Earth and Planetary Science Letters, 2012, 329/330: 84-96.
CrossRef Google scholar
Tian Z X, Yan J, Li Y J, . LA-ICP-MS Zircon U-Pb Age, Geochemistry and Tectonic Setting of the Volcanic Rocks in the Heishantou Formation from the Area of Barleik, West Junggar. Acta Petrologica Sinica, 2013, 87(3): 343-352. (in Chinese with English Abstract)
Wang G C, Zhang P. A New Understanding on the Ophiolitic Mélanges and Its Tectonic Significance: Insights from the Structural Analysis of the Remnant Oceanic Basin-Type Ophiolitic Mélanges. Earth Science, 2019, 44(5): 1688-1704. (in Chinese with English Abstract)
Wei W, Pang X Y, Wang Y, . Sediment Facies, Provenance Evolution and Their Implications for the Lower Devonian to Lower Carboniferous in Shaerbuerti Mountain in North Xinjiang. Acta Petrologica Sinica, 2009, 25(3): 689-698. (in Chinese with English Abstract)
Wen Z G, Zhao W P, Liu T F, . Formation Age and Geotectonic Significance of Baerluke Ophiolite in West Junggar, Xinjiang. Geological Bulletin of China, 2016, 35(9): 1401-1410. (in Chinese with English Abstract)
Whalen J B, Currie K L, Chappell B W. A-Type Granites: Geochemical Characteristics, Discrimination and Petrogenesis. Contributions to Mineralogy and Petrology, 1987, 95(4): 407-419.
CrossRef Google scholar
Wilson M B. Igneous Petrogenesis, 1989, Dordrecht: Springer
CrossRef Google scholar
Windley B F, Alexeiev D, Xiao W J, . Tectonic Models for Accretion of the Central Asian Orogenic Belt. Journal of the Geological Society, 2007, 164(1): 31-47.
CrossRef Google scholar
Xiao W J, Huang B C, Han C M, . A Review of the Western Part of the Altaids: A Key to Understanding the Architecture of Accretionary Orogens. Gondwana Research, 2010, 18(2/3): 253-273.
CrossRef Google scholar
Xu S L, Chen X H, Li Y D, . The Latest Magma Intrusion Activities in the West Junggar: Constraints from the Early Permian-Early Triassic Jietebutiao Pluton. Acta Petrologica Sinica, 2020, 94(4): 1067-1090. (in Chinese with English Abstract)
Xu X, He G Q, Li H Q, . Basic Characteristics of the Karamay Ophiolitic Mélange, Xinjiang, and Its Zircon SHRIMP Dating. Geology in China, 2006, 33(3): 470-475. (in Chinese with English Abstract)
Xu X, Zhou K F, Wang Y. Study on Extinction of the Remnant Oceanic Basin and Tectonic Setting of West Junggar during Late Paleozoic. Acta Petrologica Sinica, 2010, 26(11): 3206-3214. (in Chinese with English Abstract)
Xu Z, Han B F, Ren R, . Ultramafic-Mafic Mélange, Island Arc and Post-Collisional Intrusions in the Mayile Mountain, West Junggar, China: Implications for Paleozoic Intra-Oceanic Subduction-Accretion Process. Lithos, 2012, 132/133: 141-161.
CrossRef Google scholar
Xu Z, Han B F, Ren R, . Palaeozoic Multiphase Magmatism at Barleik Mountain, Southern West Junggar, Northwest China: Implications for Tectonic Evolution of the West Junggar. International Geology Review, 2013, 55(5): 633-656.
CrossRef Google scholar
Yang G X, Li Y J, Santosh M, . A Neoproterozoic Seamount in the Paleoasian Ocean: Evidence from Zircon U-Pb Geochronology and Geochemistry of the Mayile Ophiolitic Mélange in West Junggar, NW China. Lithos, 2012, 140/141: 53-65.
CrossRef Google scholar
Yang G X, Li Y J, Santosh M, . Geochronology and Geochemistry of Basalts from the Karamay Ophiolitic Melange in West Junggar (NW China): Implications for Devonian-Carboniferous Intra-Oceanic Accretionary Tectonics of the Southern Altaids. Geological Society of America Bulletin, 2013, 125(3/4): 401-419.
CrossRef Google scholar
Yang M, Wang J L, Wang J Q, . Late Carboniferous Intra-Oceanic Subduction and Mineralization in Western Junggar: Evidence from the Petrology, Geochemistry and Zircon U-Pb Geochronology of I# Ore-Bearing Granite Body in Suyunhe Molybdenite Orefield, Xinjiang. Acta Petrologica Sinica, 2015, 31(2): 523-533. (in Chinese with English Abstract)
Yang Y Q, Zhao L, Zheng R G, . Evolution of the Early Paleozoic Hongguleleng-Balkybey Ocean: Evidence from the Hebukesaier Ophiolitic Mélange in the Northern West Junggar, NW China. Lithos, 2019, 324/325: 519-536.
CrossRef Google scholar
Yin J Y, Yuan C, Sun M, . Late Carboniferous High-Mg Dioritic Dikes in Western Junggar, NW China: Geochemical Features, Petrogenesis and Tectonic Implications. Gondwana Research, 2010, 17(1): 145-152.
CrossRef Google scholar
Yin J Y, Yuan C, Sun M, . Age, Geochemical Features and Possible Petrogenesis Mechanism of Early Permian Magnesian Diorite in Hatu, Xinjiang. Acta Petrologica Sinica, 2012, 28(7): 2171-2182. (in Chinese with English Abstract)
Yu Z Q, Liu B, Hong Y B H. Zircon U-Pb Age and Geochemistry of the Granitic Porphyry from the Baibuxie River of the West Junggar, Xinjiang, and Its Tectonic Significance. Geological Journal of China Universities, 2021, 27(1): 80-93. (in Chinese with English Abstract)
Zhang Y Y, Guo Z J. New Constraints on Formation Ages of Ophiolites in Northern Junggar and Comparative Study on Their Connection. Acta Petrologica Sinica, 2010, 26(2): 421-430. (in Chinese with English Abstract)
Zhang P, Wang G C, Shen T Y, . Paleozoic Convergence Processes in the Southwestern Central Asian Orogenic Belt: Insights from U-Pb Dating of Detrital Zircons from West Junggar, Northwestern China. Geoscience Frontiers, 2021, 12(2): 531-548.
CrossRef Google scholar
Zhao Z F, Dai F Q, Chen Q. Continental Slab-Mantle Interaction: Geochemical Evidence from Post-Collisional Andesitic Rocks in the Dabie Orogen. Earth Science, 2019, 44(12): 4119-4127. (in Chinese with English Abstract)
Zheng B, Han B F, Liu B, . Ediacaran to Paleozoic Magmatism in West Junggar Orogenic Belt, NW China, and Implications for Evolution of Central Asian Orogenic Belt. Lithos, 2019, 338/339: 111-127.
CrossRef Google scholar
Zheng B, Han B F, Wang Z Z, . An Example of Phanerozoic Continental Crustal Growth: The West Junggar Orogenic Belt, Northwest China. Lithos, 2020, 376/377 105745
CrossRef Google scholar
Zhong S H, Shen P, Pan H D, . Geochemistry and Geochronology of Ore-Bearing Granites in Suyunhe Mo Deposit, West Junggar, Xinjiang. Minerals Deposits, 2015, 34(1): 39-62. (in Chinese with English Abstract)
Zhu Y F, Chen B, Qiu T. Geology and Geochemistry of the Baijiantan-Baikouquan Ophiolitic Mélanges: Implications for Geological Evolution of West Junggar, Xinjiang, NW China. Geological Magazine, 2015, 152(1): 41-69.
CrossRef Google scholar
Zhu Y F, Xu X. The Discovery of Early Ordovician Ophiolitic Mélanges in Taerbahatai Mts., Xinjiang, NW China. Acta Petrologica Sinica, 2006, 22(12): 2833-2842. (in Chinese with English Abstract)

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