2022 Vol. 41, No. 9
Article Contents

WANG Yue, ZHANG Kuihua, ZHANG Guanlong, XIONG Wei, YU Hongzhou, XUE Yan, XIAO Xiongfei, WANG Yuxin. Characteristics of Carboniferous—Permian strata and sedimentary facies in the northern margin of Bogda Mountains:a case study of the Jingjingzigou section in Urumqi,Xinjiang[J]. Geological Bulletin of China, 2022, 41(9): 1550-1562. doi: 10.12097/j.issn.1671-2552.2022.09.005
Citation: WANG Yue, ZHANG Kuihua, ZHANG Guanlong, XIONG Wei, YU Hongzhou, XUE Yan, XIAO Xiongfei, WANG Yuxin. Characteristics of Carboniferous—Permian strata and sedimentary facies in the northern margin of Bogda Mountains:a case study of the Jingjingzigou section in Urumqi,Xinjiang[J]. Geological Bulletin of China, 2022, 41(9): 1550-1562. doi: 10.12097/j.issn.1671-2552.2022.09.005

Characteristics of Carboniferous—Permian strata and sedimentary facies in the northern margin of Bogda Mountains:a case study of the Jingjingzigou section in Urumqi,Xinjiang

  • The nature and sedimentary evolution of Carboniferous—Permian prototype basins in Bogda area, southern margin of Junggar Basin have long been controversial.Based on the field measurement of Carboniferous and Permian continuously exposed in Jingjingzigou section in the northern margin of Boghdad Mountains, the lithology and sedimentary facies of the strata are systematically analyzed.Combined with the previous research results of tectonic evolution, igneous petrology and geochemistry, the Late Paleozoic sedimentary evolution and the transformation of prototype basin properties in this area are discussed, which has a very important guiding significance for the in-depth analysis of the Late Paleozoic sea-land conversion in Junggar Basin.Marine carbonate platform and deep-water turbidite fan developed in Late Carboniferous, with a small amount of pillow basalt.In the Early Permian, nearshore subaqueous fan and deep-water turbidite fan were developed under the background of residual sea deposition.The Middle Permian experienced the evolution process from marine facies to lacustrine facies.In the early stage, braided river deltas were developed in the shallow water environment of Urapa Formation and Jingjingzigou Formation, and in the Late stage, shale and carbonate rocks in the semi-deep lake-deep lake facies of Lucaogou Formation were characterized.In the late Permian, the study area developed brown-red and gray-green glutenite of thick fan delta facies.Comprehensive analysis shows that the Bogda area in Late Carboniferous is a rift basin with typical bimodal volcanic rocks and deep water turbidity currents.The Early-Middle Permian is a post-collision intracontinental rift, which developed an extensional slump deformation structure and bimodal volcanic rock assemblage.Late Permian into intracontinental depression basin, Bogda area generally developed alluvial fan or fan delta facies, sedimentary environment occurred obvious mutation.

  • 加载中
  • [1] 韩宝福, 郭召杰, 任国琦. "钉合岩体"与新疆北部主要缝合带的形成时限[J]. 岩石学报, 2010, 26(8): 2233-2246.

    Google Scholar

    [2] 李涤. 准噶尔盆地及邻区石炭纪构造格架与沉积充填演化[D]. 中国地质大学(北京)博士学位论文, 2016.

    Google Scholar

    [3] Memtimin M, Pe-Piper G, David J W, et al. Carboniferous arc-related volcanism in SW Bogda Mountain, Northwest China, and its implications for regional tectonics[J]. Lithos, 2020, 360/361: 105413. doi: 10.1016/j.lithos.2020.105413

    CrossRef Google Scholar

    [4] Wang J L, Wu C D, Zhu W, et al. Source and sink evolution of a Permian-Triassic rift-drift basin in southern Central Asian Orogenic Belt: perspectives on sedimentary geochemistry and heavy mineral analysis[J]. Journal of Asian Earth Sciences, 2019, 181: 1-14.

    Google Scholar

    [5] 庞志超, 焦悦, 袁波, 等. 准噶尔盆地南缘二叠—三叠纪原型盆地性质与沉积环境演化[J]. 地质学报, 2020, 94(6): 1813-1838. doi: 10.3969/j.issn.0001-5717.2020.06.012

    CrossRef Google Scholar

    [6] 顾连兴, 胡受奚, 于春水, 等. 论博格达俯冲撕裂谷的形成于演化[J]. 岩石学报, 2001, 17(4): 585-597.

    Google Scholar

    [7] 汪新伟, 汪新文, 马永生. 新疆博格达山的构造演化及其与油气的关系[J]. 现代地质, 2007, 21(1): 116-124. doi: 10.3969/j.issn.1000-8527.2007.01.015

    CrossRef Google Scholar

    [8] Memtimin M, Zhang Y Y, Furnes H, et al. Facies architecture of a subaqueous volcano-sedimentary succession on Bogda Mountains, NW China--Evidence of extension in Late Carboniferous[J]. Geological Journal, 2020, 55(4): 3097-3111. doi: 10.1002/gj.3582

    CrossRef Google Scholar

    [9] Wang J, Cao Y C, Wang X T, et al. Sedimentological constraints on the initial uplift of the West Bogda Mountains in Mid-Permian[J]. Scientific Reports, 2018, 8: 1-14.

    Google Scholar

    [10] Chen K, Lin W, Wang Q C. The Bogeda Shan uplifing: Evidence from multiple phases of deformation[J]. Journal of Asian Earth Sciences, 2015, 99: 1-12. doi: 10.1016/j.jseaes.2014.12.006

    CrossRef Google Scholar

    [11] Xie W, Xu Y G, Luo Z Y, et al. Petrogenesis and geodynamic implications of the Late Carboniferous felsic volcanics in the Bogda belt, Chinese Northern Tianshan[J]. Gondwana Research, 2016, 39: 165-179. doi: 10.1016/j.gr.2016.07.005

    CrossRef Google Scholar

    [12] 方世虎, 贾承造, 郭召杰, 等. 准噶尔盆地二叠纪盆地属性的再认识及其构造意义[J]. 地学前缘, 2006, 13(3): 108-121.

    Google Scholar

    [13] Obrist-Farner J, Yang W. Provenance and depositional conditions of fluvial conglomerates and sandstones and their controlling processes in a rift setting, mid-Permian lower and upper Quanzijie low order cycles, Bogda Mountains, NW China[J]. Journal of Asian Earth Sciences, 2017, 138: 317-340. doi: 10.1016/j.jseaes.2017.02.020

    CrossRef Google Scholar

    [14] 王家林, 吴朝东, 朱文, 等. 准噶尔盆地南缘二叠纪—三叠纪构造-沉积环境与原型盆地演化[J]. 古地理学报, 2016, 18(4): 643-660.

    Google Scholar

    [15] Wang J L, Wu C D, Li Z, et al. The tectonic evolution of the Bogda region from Late Carboniferous to Triassic time: evidence from detrital zircon U-Pb geochronology and sandstone petrography[J]. Geological Magazine, 2018, 155(5): 1063-1088. doi: 10.1017/S0016756816001217

    CrossRef Google Scholar

    [16] Han B F, Guo Z J, Zhang Z C, et al. Age, geochemistry, and tectonic implications of a late Paleozoic stitching pluton in the North Tian Shan suture zone, western China[J]. Geological Society of America Bulletin, 2010, 122(3/4): 627-640.

    Google Scholar

    [17] Wartes M A, Carroll A R, Greene T J. Permian sedimentary record of the Turpan-Hami basin and adjacent regions, northwest China: Constraints on postamalgamation tectonic evolution[J]. Geological Society of America Bulletin, 2002, 114(2): 131-152. doi: 10.1130/0016-7606(2002)114<0131:PSROTT>2.0.CO;2

    CrossRef Google Scholar

    [18] 白斌. 准噶尔盆地南缘构造沉积演化及其控制下的基本油气地质条件[D]. 西北大学博士学位论文, 2008.

    Google Scholar

    [19] 李亚龙, 于兴河, 单新, 等. 准噶尔盆地南缘四工河剖面中二叠统乌拉泊组辫状河三角洲沉积模式及沉积序列[J]. 天然气地球科学, 2017, 28(11): 1678-1688.

    Google Scholar

    [20] 张驰, 于兴河, 李顺利, 等. 准噶尔盆地南缘井井子沟组露头沉积特征及模式[J]. 新疆石油地质, 2017, 38(5): 544-552, 624.

    Google Scholar

    [21] 李红. 准噶尔盆地柴窝堡凹陷油气地质条件综合研究[D]. 西北大学博士学位论文, 2006.

    Google Scholar

    [22] 卢苗安. 天山东段盆山构造格局的多期演变[D]. 中国地震局地质研究所博士学位论文, 2007.

    Google Scholar

    [23] 刘招君, 柳蓉, 孙平昌, 等. 中国典型盆地油页岩特征及赋存规律[J]. 吉林大学学报(地球科学版), 2020, 50(2): 313-325.

    Google Scholar

    [24] 肖红吉. 准噶尔盆地南缘和东缘二叠系高分辨层序地层研究[D]. 中国地质大学(北京)硕士学位论文, 2015.

    Google Scholar

    [25] Filippova I B, Bush V A, Didenko A N. Middle Paleozoic subduction belts: The leading factor in the formation of the Central Asion Fold-And-Thrust Belt[J]. Russian Journal of Earth Sciences, 2001, 3(6): 405-426.

    Google Scholar

    [26] Choulet F, Faure M, Cluzel D, et al. From oblique accretion to transpression in the evolution of the Altaid Collage: New insights from West Junggar, northwestern China[J]. Gondwana Research, 2012, 21: 530-547.

    Google Scholar

    [27] Xiao W J, Windley B F, Allen M B, et al. Paleozoic multiple accretionary and collisional tectonics of the Chinese Tianshan Orogenic Collage[J]. Gondwana Research, 2013, 23: 1316-1341.

    Google Scholar

    [28] 陈健, 庄新国, 吴超, 等. 准噶尔盆地南缘芦草沟组页岩地球化学特征及沉积环境分析——以准页3井为例[J]. 中国煤炭地质, 2017, 29(8): 32-38.

    Google Scholar

    [29] 陈丹丹, 吉鸿杰, 陶辉飞, 等. 准东地区阜康凹陷南部中下侏罗统沉积特征及沉积演化模式[J]. 天然气地球科学, 2015, 26(11): 2093-2106.

    Google Scholar

    [30] 王越, 张奎华, 林会喜, 等. 博格达山周缘芦草沟组混合沉积控制因素及模式[J]. 新疆石油地质, 2017, 38(6): 686-692.

    Google Scholar

    [31] 杨志浩, 李胜利, 于兴河, 等. 准噶尔盆地南缘中二叠统芦草沟组富砂型湖泊深水扇沉积特征及其相模式[J]. 古地理学报, 2018, 20(6): 989-1000.

    Google Scholar

    [32] 雷川, 李红, 杨锐, 等. 新疆乌鲁木齐地区中二叠统芦草沟组湖相微生物成因白云石特征[J]. 古地理学报, 2012, 14(6): 767-775.

    Google Scholar

    [33] 王金荣, 李泰德, 田黎萍, 等. 新疆博格达造山带晚古生代构造-岩浆演化过程: 火山岩组合及地球化学证据[J]. 岩石学报, 2010, 26(4): 1103-1115.

    Google Scholar

    [34] 汪晓伟, 徐学义, 马中平, 等. 博格达造山带东段芨芨台子地区晚石炭世双峰式火山岩地球化学特征及其地质意义[J]. 中国地质, 2015, 368(3): 553-569.

    Google Scholar

    [35] 舒良树, 朱文斌, 王博, 等. 新疆博格达南缘后碰撞期陆内裂谷和水下滑塌构造[J]. 岩石学报, 2005, 21(1): 25-36.

    Google Scholar

    [36] 钟建华, 倪良田, 邵珠福, 等. 新疆乌鲁木齐东部早二叠世枕状玄武岩火山岩系的发现及大地构造意义[J]. 地质学报, 2018, 92(4): 638-664.

    Google Scholar

    [37] 饶松, 朱亚珂, 胡迪, 等. 准噶尔盆地热史恢复及其对早—中二叠世时期盆地构造属性的约束[J]. 地质学报, 2018, 92(6): 1176-1195.

    Google Scholar

    [38] 朱如凯, 许怀先, 邓胜徽, 等. 中国北方地区二叠纪岩相古地理[J]. 古地理学报, 2007, 9(2): 133-142.

    Google Scholar

    [39] 李玮, 胡健民, 黎敦朋, 等. 新疆博格达山北缘晚古生代—中生代古水流样式转折及其构造意义[J]. 沉积学报, 2007, (2): 283-292.

    Google Scholar

    [40] 王越, 张关龙, 王圣柱, 等. 博格达山东北缘上二叠统沉积特征与沉积演化模式[J]. 沉积学报, 2019, 37(3): 579-588.

    Google Scholar

    [41] 徐加林, 刘燕学, 柳永清, 等. 新疆吐鲁番-哈密盆地北部下二叠统伊尔稀土组的沉积特征与盆地演化[J]. 地质通报, 2013, 32(2/3): 424-442.

    Google Scholar

    [42] 杜冬霞, 刘燕学, 旷红伟, 等. 东天山南北两侧早二叠世沉积演化的差异性对比[J]. 地质通报, 2013, 32(7): 1085-1098.

    Google Scholar

    [43] 孙国智, 柳益群. 新疆博格达山隆升时间初步分析[J]. 沉积学报, 2009, 27(3): 487-493.

    Google Scholar

  • 加载中
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(6)

Article Metrics

Article views(2570) PDF downloads(120) Cited by(0)

Access History

Catalog

    /

    DownLoad:  Full-Size Img  PowerPoint