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北祁连冷龙岭地区上奥陶统扣门子组的时代归属——来自牙形石的证据
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作者 陈奋宁 孟勇 +4 位作者 白旭东 李向民 余吉远 魏小燕 计波 《沉积与特提斯地质》 CAS CSCD 北大核心 2024年第1期9-19,共11页
本文首次报道了北祁连冷龙岭地区上奥陶统扣门子组牙形石,共识别鉴定出牙形石5属,9种,其中3个未定种,根据牙形石的分布规律,建立了1个牙形石组合:Aphelognathus grandis-Panderodus gracilis组合。笔者通过对研究区牙形石组合与国内外... 本文首次报道了北祁连冷龙岭地区上奥陶统扣门子组牙形石,共识别鉴定出牙形石5属,9种,其中3个未定种,根据牙形石的分布规律,建立了1个牙形石组合:Aphelognathus grandis-Panderodus gracilis组合。笔者通过对研究区牙形石组合与国内外其他地区相同层位的牙形石带对比,并结合扣门子组其它古生物化石资料,将北祁连冷龙岭地区扣门子组的时代重新厘定为晚奥陶世桑比期—赫南特期中期,相当于中国地层年表的艾家山期晚期—钱塘江期中期。 展开更多
关键词 北祁连 晚奥陶世 扣门子组 牙形石组合
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藏南札达盆地上中新统—上新统托林组介形类群落
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作者 陈奋宁 陈锐明 +4 位作者 李娜 宋博文 张克信 徐亚东 查显锋 《地质学报》 EI CAS CSCD 北大核心 2023年第10期3180-3197,共18页
笔者在西藏南部札达盆地新生代沉积地层中获得了丰富的介形类化石,根据介形类动物群在地层剖面上的分布规律,建立了两个介形类组合带:(1)Ilyocypris bradyi-Cyclocypris orum-Leucocythere dorsotuberosa组合带;(2)Leucocytherella-Cand... 笔者在西藏南部札达盆地新生代沉积地层中获得了丰富的介形类化石,根据介形类动物群在地层剖面上的分布规律,建立了两个介形类组合带:(1)Ilyocypris bradyi-Cyclocypris orum-Leucocythere dorsotuberosa组合带;(2)Leucocytherella-Candoniella zadaensis-Leucocythere mirabilis组合带。通过对研究区介形类组合带与国内外其他地区相同层位的介形类组合对比研究,将札达盆地托林组的时代厘定为中新世晚期—上新世最晚期。根据介形类动物群在剖面上的分布规律,自下而上建立了7个介形类群落:Candona-Candoniella群落;Ilyocypris-Cyclocypris群落;Leucocythere-Candona群落;Ilyocypris-Leucocythere群落;Leucocythere-Leucocytherella-Candona群落;Leucocythere mirabilis-Candona群落和Ilyocypris-Leucocytherella群落。通过对介形类群落详细的特征分析并结合磁性地层年代学数据,将札达盆地9.5~1.7 Ma的古气候划分为6个期次:(1)9.5~8.4 Ma为凉湿期;(2)8.4~6.3 Ma为温湿期;(3)6.3~5.5 Ma为凉湿期;(4)5.5~4.4 Ma为温湿期;(5)4.4~2.8 Ma为冷湿期;(6)2.8~1.7 Ma为温暖偏干期。将研究区9.5 Ma以来的气候演化特征与全球气候演变对比认为:札达盆地9.5~6.3 Ma间的气候以暖湿为主,可能与来自印度的东南季风加强有关;6.3~3.6 Ma间札达盆地古气候分析显示为相对暖湿期,存在气候波动,可能与来自印度洋的东南季风再次加强有关;3.6 Ma以后由于受全球气候变冷、冬季风加强及青藏高原强烈隆升的影响,札达盆地气候向寒冷干旱的环境转变,在2.8~1.7 Ma气候却变得温暖潮湿。 展开更多
关键词 晚中新世—上新世 介形类群落 古气候演化 札达盆地 青藏高原
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中国新疆-中亚大地构造单元划分及演化简述 被引量:2
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作者 张向飞 陈莉 +9 位作者 曹华文 彭智敏 陈奋宁 洪俊 任飞 王启宇 姜丽莉 高慧 潘桂棠 李文昌 《西北地质》 CAS CSCD 北大核心 2023年第4期1-39,共39页
中国新疆-中亚地处特提斯构造域和古亚洲构造域交汇部位,跨全球最重要三大构造(成矿)域中的2个,对认识全球构造演化和资源环境效应具有重要意义,前人对该区域开展了大量研究,提出了不同的大地构造单元和成矿区(带)划分方案,然而不同学... 中国新疆-中亚地处特提斯构造域和古亚洲构造域交汇部位,跨全球最重要三大构造(成矿)域中的2个,对认识全球构造演化和资源环境效应具有重要意义,前人对该区域开展了大量研究,提出了不同的大地构造单元和成矿区(带)划分方案,然而不同学派之间存在诸多争议。笔者结合“多岛弧盆系”构造理论,遵循将今论古的比较构造地质学研究原则,以大地构造相的时空结构分析为主线,以对接带、造山系和陆块区3类一级大地构造单元,依据优势大地构造相将研究区划分为12个一级构造单元、32个二级构造单元和74个三级构造单元,并针对二级构造单元的构造环境和岩石建造组合进行描述、总结,以建立研究区总体构造格架和演化历史。在此基础上,依据两大构造域时空演化特征,追溯古亚洲洋和特提斯构造域的构造演化历史。通过对研究区构造单元划分和构造演化的重新厘定,以期为区域基础地质研究和资源能源勘查提供基础依据。 展开更多
关键词 新疆 中亚 构造单元 大地构造相 演化
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中国西北地区南华纪—古生代构造重建及关键问题讨论 被引量:11
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作者 计文化 李荣社 +1 位作者 陈奋宁 杨博 《地质力学学报》 CSCD 2020年第5期634-655,共22页
中国西北是古亚洲构造域和特提斯构造域共同作用的地区,南华纪—古生代时期经历了复杂的洋-陆演化过程,诸陆(地)块于三叠纪基本拼贴就位,奠定了中生代以来陆内盆山演化的基础。但对于西北地区南华纪—古生代时期古亚洲洋盆最终关闭的时... 中国西北是古亚洲构造域和特提斯构造域共同作用的地区,南华纪—古生代时期经历了复杂的洋-陆演化过程,诸陆(地)块于三叠纪基本拼贴就位,奠定了中生代以来陆内盆山演化的基础。但对于西北地区南华纪—古生代时期古亚洲洋盆最终关闭的时限、位置,以及秦祁昆古生代造山带属于特提斯构造域还是古亚洲构造域等重大区域地质问题目前仍存在较大争议。文章在最新地质填图的基础上,通过对沉积建造、岩浆建造、变质变形等的综合分析,将西北地区南华纪—古生代的构造单元厘定为3个洋板块、4个弧盆系和2个陆(地)块群等9个二级、46个三级和112个四级构造单元,力图刻画消失的大洋盆地的残留组成和诸陆(地)块的边缘增生结构。结合古地磁、生物古地理研究成果,恢复了古生代不同时期西北洋-陆系统在全球的位置,讨论了洋盆消减、诸陆(地)块拼贴的过程。 展开更多
关键词 古亚洲构造 特提斯构造域 南华纪—古生代 构造重建
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敦煌地区晚震旦世-早寒武世沉积地层的发现及其大地构造意义 被引量:2
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作者 康磊 李天虎 +5 位作者 王杰 计文化 王涛 陈奋宁 刘学均 张超 《岩石学报》 SCIE EI CAS CSCD 北大核心 2021年第7期2103-2122,共20页
近年来,随着敦煌地区越来越多古生代岩浆作用和变质作用等地质信息相继被揭示,许多学者据此提出了"敦煌造山带"的认识,并受到地质学界的广泛关注。本次工作在敦煌地区东北缘发现了大规模露头连续的沉积地层,岩石组合主要为变... 近年来,随着敦煌地区越来越多古生代岩浆作用和变质作用等地质信息相继被揭示,许多学者据此提出了"敦煌造山带"的认识,并受到地质学界的广泛关注。本次工作在敦煌地区东北缘发现了大规模露头连续的沉积地层,岩石组合主要为变砂岩和变泥质砂岩,夹少量变砂质泥岩,偶夹变砂砾岩和变硅质岩。通过U-Pb同位素法对该套沉积岩碎屑锆石和侵入其中的花岗岩进行年龄测定,限定其沉积时代为517.3-574.4Ma,属于晚震旦世-早寒武世,由此证明敦煌地区新元古代-古生代沉积地层的存在。综合岩石组合、重矿物特征、岩石地球化学、碎屑锆石结构及年龄频谱等分析,推测该套沉积岩形成于大陆边缘滨海环境,其物源来自敦煌地块甚至塔里木板块前寒武变质基底,揭示了敦煌地区当时应存在着大规模前寒武基底,同时说明敦煌地块的北部古边界应位于疏勒河断裂附近,为确定敦煌地区构造属性、划分区域构造单元提供了关键信息。 展开更多
关键词 晚震旦世-早寒武世 沉积地层 大地构造意义 敦煌地区
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Sedimentary Evolution of the Qinghai-Tibet Plateau in Cenozoic and its Response to the Uplift of the Plateau 被引量:7
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作者 ZHANG Kexin WANG Guocan +11 位作者 XU Yadong LUO Mansheng JI Junliang XIAO Guoqiao WANG An SONG Bowen LIANG Yinpin JIANG Shangsong CAO Kai chen fenning chen Ruiming YANG Yongfeng 《Acta Geologica Sinica(English Edition)》 SCIE CAS CSCD 2013年第2期555-575,共21页
We have studied the evolution of the tectonic lithofacies paleogeography of Paleocene- Eocene, Oligocene, Miocene, and Pliocene of the Qinghai-Tibet Plateau by compiling data regarding the type, tectonic setting, and ... We have studied the evolution of the tectonic lithofacies paleogeography of Paleocene- Eocene, Oligocene, Miocene, and Pliocene of the Qinghai-Tibet Plateau by compiling data regarding the type, tectonic setting, and iithostratigraphic sequence of 98 remnant basins in the plateau area. Our results can be summarized as follows. (1) The Paleocene to Eocene is characterized by uplift and erosion in the Songpan-Garze and Gangdise belts, depression (lakes and pluvial plains) in eastern Tarim, Qaidam, Qiangtang, and Hoh Xil, and the Neo-Tethys Sea in the western and southern Qinghai-Tibet Plateau. (2) The Oligocene is characterized by uplift in the Gangdise--Himalaya and Karakorum regions (marked by the absence of sedimentation), fluvial transport (originating eastward and flowing westward) in the Brahmaputra region (marked by the deposition of Dazhuka conglomerate), uplift and erosion in western Kunlun and Songpan-Garze, and depression (lakes) in the Tarim, Qaidam, Qiangtang, and Hoh Xil. The Oligocene is further characterized by depressional littoral and neritic basins in southwestern Tarim, with marine facies deposition ceasing at the end of the Oligocene. (3) For the Miocene, a widespread regional unconformity (ca. 23 Ma) in and adjacent to the plateau indicates comprehensive uplift of the plateau. This period is characterized by depressions (lakes) in the Tarim, Qaidam, Xining-Nanzhou, Qiangtang, and Hoh Xil. Lacustrine facies deposition expanded to peak in and adjacent to the plateau ca. 18-13 Ma, and north-south fault basins formed in southern Tibet ca. 13-10 Ma. All of these features indicate that the plateau uplifted to its peak and began to collapse. (4) Uplift and erosion occurred during the Pliocene in most parts of the plateau, except in the Hoh Xil-Qiangtang, Tarim, and Qaidam. The continuous uplift and intensive taphrogeny in the plateau divided the original large basin into small basins, deposition of lacustrine facies decreased considerably, and boulderstone accumulated, indicating a response to the overall uplift of the plateau. Here, we discuss the evolution of tectonic lithofacies paleogeography in Cenozoic and its response to the tectonic uplift of the Qinghai-Tibet Plateau in relation to the above characteristics. We have recognized five major uplift events, which occurred during 58-53 Ma, 45-30 Ma, 25-20 Ma, 13-7 Ma, and since 5 Ma. The results presented here indicate that the paleogeomorphic configurations of the Qinghai-Tibet Plateau turned over during the late Miocene, with high elevations in the east during the pre-Miocene switching to high contours in the west at the end of Miocene. 展开更多
关键词 lithofacies paleogeography depositional evolution uplift event CENOZOIC Qinghai-Tibet Plateau
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柴达木盆地北缘全吉群皱节山组碎屑锆石年代学特征及其地质意义 被引量:2
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作者 李猛 王超 +5 位作者 李荣社 彭岩 邵东 陈奋宁 陈守建 潘晓萍 《地球科学》 EI CAS CSCD 北大核心 2018年第12期4390-4398,共9页
柴达木盆地北缘的全吉群主要为一套未变质的砂砾岩、石英岩、砂页岩、白云岩和冰碛岩的地层,为全吉地块基底之上的最古老的直接沉积盖层.对全吉群上部皱节山组2件紫红色细砂岩样品进行碎屑锆石LA-ICP-MSU-Pb年龄测定,碎屑锆石207Pb/206P... 柴达木盆地北缘的全吉群主要为一套未变质的砂砾岩、石英岩、砂页岩、白云岩和冰碛岩的地层,为全吉地块基底之上的最古老的直接沉积盖层.对全吉群上部皱节山组2件紫红色细砂岩样品进行碎屑锆石LA-ICP-MSU-Pb年龄测定,碎屑锆石207Pb/206Pb年龄谱特征显示,皱节山组沉积物主要以1750~1990Ma(约占84.7%)的锆石年龄最为集中,其次为2400~2500Ma的年龄值,结合区域热事件,说明皱节山组沉积物可能主要来自于全吉地块古元古代末达肯大坂岩群,部分来自德令哈杂岩体.此外,~1.95Ga和~1.85Ga的碎屑锆石具有显著优势,它记录了全吉地块在古元古代的2期重要的热事件——古元古代末镁铁质岩墙群的侵入作用和古元古代晚期的区域变质-深熔作用. 展开更多
关键词 全吉群 皱节山组 碎屑锆石 U-PB年龄 全吉地块 地球化学
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Paleogene-Neogene stratigraphic realm and sedimentary sequence of the Qinghai-Tibet Plateau and their response to uplift of the plateau 被引量:49
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作者 ZHANG KeXin WANG GuoCan +9 位作者 JI JunLiang LUO ManSheng KOU XiaoHu WANG YueMing XU YaDong chen fenning chen RuiMing SONG BoWen ZHANG JianYu LIANG YinPing 《Science China Earth Sciences》 SCIE EI CAS 2010年第9期1271-1294,共24页
Based on the data of 1:250000 geological mapping completed by CGS and the previous literature of the Cenozoic strata, 98 remnant basins and 5 stratigraphic realms with 13 stratigraphic subrealms have been recognized o... Based on the data of 1:250000 geological mapping completed by CGS and the previous literature of the Cenozoic strata, 98 remnant basins and 5 stratigraphic realms with 13 stratigraphic subrealms have been recognized on the Qinghai-Tibet Plateau and its adjacent area. Through the research of the types of remnant basins, tectonic setting, stratigraphic sequence and sedimentary characteristics, contact relationship between the strata, the formation time and evolution history of sediments, we divided the uplift process and sedimentary response of the Qinghai-Tibet Plateau into 3 stages and 8 sub-stages, namely, subduction-collision uplift stage (65-34 Ma) with three sub-stages, intercontinental convergence and compressive uplift stage (34-13 Ma) with three sub-stages, and intercontinental isostatic adjustment uplift stage (since 13 Ma) with two sub-stages. 展开更多
关键词 Paleogene-Neogene remnant basin STRATIGRAPHIC REALM sedimentary evolution Qinghai-Tibet PLATEAU
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Cenozoic sedimentary records and geochronological constraints of differential uplift of the Qinghai-Tibet Plateau 被引量:31
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作者 ZHANG KeXin WANG GuoCan +8 位作者 CAO Kai LIU Chao XIANG ShuYuan HONG HanLie KOU XiaoHu XU YaDong chen fenning MENG YanNing chen RuiMing 《Science China Earth Sciences》 SCIE EI CAS 2008年第11期1658-1672,共15页
Geological mapping data (1:250000) in the Qinghai-Tibet Plateau and its adjacent regions reveal the sediment sequences, distribution and tectonic evolution of the 92 Tertiary remnant basins. Southern Tibet and the Yec... Geological mapping data (1:250000) in the Qinghai-Tibet Plateau and its adjacent regions reveal the sediment sequences, distribution and tectonic evolution of the 92 Tertiary remnant basins. Southern Tibet and the Yecheng area in Xinjiang, located at southern and northwestern margins of the Qinghai-Tibet Plateau, respectively, were parts of the Neo-Tethys remnant sea in the Paleogene. In southern Tibet, both the subabyssal and abyssal sequences occur at the Gyangze, Saga, Guoyala, and Sangmai areas. The deep-water facies successions outcrop in the west, whereas the shallow-water facies sequences in the east, indicating the east to the west retreat of the Neo-Tethys Ocean. The retreat of the Neo-Tethys Ocean in the east was contributed to the earlier tectonic uplift of the eastern Qinghai-Tibet Plateau. The uplift process of the Plateau from the Late Cretaceous to Pliocene is described as follows: During the Late Cretaceous, tectonic uplift of the Qinghai-Tibet Plateau occurred in the northeastern part and the configuration of the Qinghai-Tibet Plateau was characterized by rise in the northeast and depression in the west. In the Paleocene-Eocene interval, the Tengchong-Baingoin and Kuyake-Golmud areas experienced local tectonic uplifting, the West Kunlun uplift zone broadened easterly, the Qilian uplift zone broadened southerly, and the Songpan-Garzê uplift zone shrank easterly. The Oligocene configuration of the Qinghai-Tibet Plateau was characterized by mountain chains rising along its margins and sedimentary basins in the central part because of tectonic uplifts of the Gangdisê and the Himalaya blocks. Meanwhile, the Kunlun-Altyn-Qilian uplift zones have also broadened southerly and northerly. In contrast, the great uplift zones of the Gangdisê, the Himalaya, the Karakorum, and the Kunlun blocks characterize the paleogeographic contours of the Qinghai-Tibet Plateau during the Miocene-Pliocene. Additionally, the thermochronological data on tectonic uplift events in southern Tibet, West Kunlun Mountains, Altyn Tagh, eastern Tibet, and western Sichuan all suggest that the most intense deformation occurred at 13-8 Ma and since 5 Ma, respectively, corresponding to two great uplift periods in Neogene. As a result, turnover of paleogeographic configuration of the Qinghai-Tibet Plateau occurred during the Neogene, experiencing a change from high contours in the east in the pre-Oligocene to high contours in the west at the end-Pliocene. The uplift of the Qinghai-Tibet Plateau during the Cenozoic was episodic, and the uplifts of various blocks within the Plateau were spatially and chronologically different. 展开更多
关键词 CENOZOIC tectonic UPLIFT THERMOCHRONOLOGY SEDIMENTARY records the Qinghai-Tibet Plateau
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