Proterozoic-Mesozoic history of the Central Asian orogenic belt in the Tajik and southwestern Kyrgyz Tian Shan: U-Pb, 40Ar/39Ar, and fission-track geochronology and geochemistry of granitoids

被引:47
|
作者
Kaessner, Alexandra [1 ]
Ratschbacher, Lothar [1 ]
Pfaender, Joerg A. [1 ]
Hacker, Bradley R. [2 ]
Zack, George [1 ]
Sonntag, Benita-Lisette [1 ]
Khan, Jahanzeb [1 ]
Stanek, Klaus P. [1 ]
Gadoev, Mustafo [3 ]
Oimahmadov, Ilhomjon [3 ]
机构
[1] Tech Univ Bergakademie Freiberg, D-09599 Freiberg, Germany
[2] Univ Calif Santa Barbara, Dept Geol Sci, Santa Barbara, CA 93106 USA
[3] Tajik Acad Sci, Inst Geol, Dushanbe 734063, Tajikistan
基金
美国国家科学基金会;
关键词
PALEOZOIC TECTONIC EVOLUTION; HF ISOTOPE COMPOSITION; NW-CHINA CONSTRAINTS; NORTHERN TARIM BLOCK; SOUTHERN TIEN-SHAN; A-TYPE GRANITES; GOLD DEPOSIT; ZIRCON GEOCHRONOLOGY; NORTHWEST CHINA; POSTCOLLISIONAL MAGMATISM;
D O I
10.1130/B31466.1
中图分类号
P [天文学、地球科学];
学科分类号
07 ;
摘要
Multimethod geochronology (U-Pb zircon; 40Ar/39Ar hornblende, biotite, feldspar; apatite fission track) on granitoids, gneisses, and Cenozoic intramontane basin clastics of the Gissar-Alai ranges, South Tian Shan collisional belt, west of the Talas-Fergana fault, elucidates a history of Neoproterozoic magmatism, late Paleozoic magmatism and metamorphism, and Mesozoic-Cenozoic thermal reactivation. Zircon-core and grain-interior U-Pb ages of ca. 2.7-2.4, 2.2-1.7, 1.1-0.85, and 0.85-0.74 Ga tie the early evolution of the Gissar-Alai ranges to that of the Tarim craton. At least part of the Gissar range crystalline basement-the Garm massifshows U-Pb zircon crystallization ages of ca. 661-552 Ma (median ca. 609 Ma), again suggesting a Tarim craton connection. Tarim collided with the Middle Tian Shan block at ca. 310-305 Ma, completing the protracted formation of the South Tian Shan collisional belt. The massive Gissar range granitoids intruded later (ca. 305-270 Ma), contemporaneous with peak Barrovian-type metamorphism in the Garm massif rocks. Major-and trace-element compositions suggest that the Gissar granitoid melts have continental arc affinity. Zircon Hf-epsilon and whole-rock Nd-epsilon values of -2.1 to -6.9 and -2.7 to -7.2, respectively. and Hf- isotope crustal model and Nd-isotope depleted mantle model ages of ca. 1.0-1.2 and ca. 1.1-2.2 Ga, respectively, suggest significant input of Precambrian crust in the Gissar granitoid and Garm orthogneiss melts, consistent with the U-Pb ages of inherited and detrital zircons. The distinct ca. 661-552 Ma Garm gneiss crystallization ages and the ca. 1.0-2.2 Ga model ages (and the lack of 2.4-3.4 Ga model ages) tie the Garm gneisses and the reworked crust of the Gissar range to the northern rim-the Kuqa and Kolar sections-of the Tarim craton, suggesting a united Karakum-Tarim craton. Although about contemporaneous with widespread postcollisional magmatism in the entire Tian Shan, the large volume and short duration of the Gissar range magmatism, including crustal thickening and prograde metamorphism during Tarim craton-Middle Tian Shan block collision, and formation and closure of an oceanic back-arc basin (the Gissar basin), indicate its origin in a distinct setting. Combined, this likely resulted in midcrustal melting and upper-crustal batholith emplacement. Mafic dikes and pipes intruded at ca. 256-238 Ma (median ca. 241 Ma); the source region of the parental melts was within the asthenospheric mantle. The simplest interpretation for these basanites is that they were part of the Tarim flood basalt province; this would extend this province westward from the Tarim craton into the southwestern Tian Shan and imply that the relatively short-lived flood basalt event (ca. 290-270 Ma) was followed by much less voluminous but longer-lasting hotspot magmatism. The 40Ar/39Ar and detrital apatite fission-track dates outline post-Gissar-Alai range granitoid emplacement cooling, Cimmerian collision events at the southern margin of Asia, Late Cretaceous crustal extension and local magmatism, and early Cenozoic shortening and burial in the far field of the India-Asia collision.
引用
收藏
页码:281 / 303
页数:23
相关论文
共 40 条
  • [31] Phanerozoic Multistage Tectonic Rejuvenation of the Continental Crust of the Cathaysia Block: Insights from Structural Investigations and Combined Zircon U-Pb and Mica 40Ar/39Ar Geochronology of the Granitoids in Southern Jiangxi Province
    Wang, Bo
    Shu, Liangshu
    Faure, Michel
    Jahn, Bor-ming
    Lo, Ching-hua
    Charvet, Jacques
    Liu, Hongsheng
    JOURNAL OF GEOLOGY, 2014, 122 (03): : 309 - 328
  • [32] Magmatic-hydrothermal evolution of the Cretaceous Duolong gold-rich porphyry copper deposit in the Bangongco metallogenic belt, Tibet: Evidence from U-Pb and 40Ar/39Ar geochronology
    Li, Jinxiang
    Qin, Kezhang
    Li, Guangming
    Xiao, Bo
    Zhao, Junxing
    Chen, Lei
    JOURNAL OF ASIAN EARTH SCIENCES, 2011, 41 (06) : 525 - 536
  • [33] U-Pb, Re-Os, and 40Ar/39Ar geochronology of the Nambija Au-skarn and Pangui porphyry Cu deposits, Ecuador: implications for the Jurassic metallogenic belt of the Northern Andes
    Chiaradia, Massimo
    Vallance, Jean
    Fontbote, Lluis
    Stein, Holly
    Schaltegger, Urs
    Coder, Joshua
    Richards, Jeremy
    Villeneuve, Mike
    Gendall, Ian
    MINERALIUM DEPOSITA, 2009, 44 (04) : 371 - 387
  • [34] Structure, detrital zircon U-Pb ages and 40Ar/39Ar geochronology of the Early Palaeozoic Girilambone Group, central New South Wales: subduction, contraction and extension associated with the Benambran Orogeny
    Fergusson, CL
    Fanning, CM
    Phillips, D
    Ackerman, BR
    AUSTRALIAN JOURNAL OF EARTH SCIENCES, 2005, 52 (01) : 137 - 159
  • [35] La-ICP-MS U-Pb and 40Ar/39Ar geochronology of the sheared metamorphic rocks in the Wuyishan: Constraints on the timing of Early Paleozoic and Early Mesozoic tectono-thermal events in SE China
    Xu, X. B.
    Zhang, Y. Q.
    Shu, L. S.
    Jia, D.
    TECTONOPHYSICS, 2011, 501 (1-4) : 71 - 86
  • [36] Ages and nature of the protolith of the Tulovchikha metamorphic complex in the Bureya Massif, Central Asian Orogenic Belt, Russia: Evidence from U-Th-Pb, Lu-Hf, Sm-Nd, and 40Ar/39Ar data
    Sorokin, Andrey A.
    Ovchinnikov, Roman O.
    Xu, Wenliang
    Kovach, Victor P.
    Yang, Hao
    Kotov, Alexander B.
    Ponomarchuk, Victor A.
    Travin, Alexei V.
    Plotkina, Yulia V.
    LITHOS, 2019, 332 : 340 - 354
  • [37] Early Mesozoic orogenic gold mineralization in the North Qinling Terrane: Insights from rutile U-Pb, mica and K-feldspar 40Ar/39Ar, and H-O-S-Pb isotopes of the Yangxie gold deposit
    Zhao, Shao-Rui
    Yu, Xiao-Hong
    Li, Jian-Wei
    Jiang, Shao-Yong
    Wu, Ya-Fei
    Zhao, Xin-Fu
    Li, Zhan-Ke
    ORE GEOLOGY REVIEWS, 2023, 159
  • [38] Two-stage bimodal volcanism in a Late Cretaceous arc/back-arc setting, NE Turkey: Constraints from volcano-stratigraphy, zircon U-Pb and 40Ar/39Ar geochronology and whole-rock elemental and Sr-Nd-Pb isotope geochemistry
    Oguz-Saka, Simge
    Aydin, Faruk
    Karsli, Orhan
    Dokuz, Abdurrahman
    Aiglsperger, Thomas
    Miggins, Daniel P.
    Sen, Cuneyt
    Kandemir, Raif
    Sari, Bilal
    Koppers, Anthony A. P.
    LITHOS, 2023, 440
  • [39] Refinement of the time-space evolution of the giant Mio-Pliocene Rio Blanco-Los Bronces porphyry Cu-Mo cluster, Central Chile: new U-Pb (SHRIMP II) and Re-Os geochronology and 40Ar/39Ar thermochronology data
    Deckart, Katja
    Clark, Alan H.
    Cuadra, Patricio
    Fanning, Mark
    MINERALIUM DEPOSITA, 2013, 48 (01) : 57 - 79
  • [40] Reply to comment by M. A. Kendrick and D. Phillips (2009) on "The Paleozoic metamorphic history of the Central Orogenic Belt of China from 40Ar/39Ar geochronology of eclogite garnet fluid inclusions" by Hua-Ning Qiu and J. R. Wijbrans (2008) [Earth Planet. Sci. Lett. 268 (2008) 501-514] Discussion
    Qiu, Hua-Ning
    Wijbrans, J. R.
    EARTH AND PLANETARY SCIENCE LETTERS, 2009, 279 (3-4) : 395 - 397