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1.
青藏高原东北缘古气候可能受控于全球变冷、青藏高原隆升及局地地形变化的影响。为解析气候演化过程及驱动因素,本文以青藏高原东北缘循化盆地西沟剖面作为研究对象,在已有古地磁年龄约束基础上,分析了中中新世—早上新世沉积物中黏土矿物的组成和微观形貌特征。结果表明,西沟剖面沉积物中黏土矿物主要由伊利石、蒙脱石、绿泥石和高岭石组成,其中伊利石含量最高,平均为59. 3%;蒙脱石次之,平均为18. 2%,绿泥石平均含量为12. 3%,高岭石平均含量为10. 2%。根据剖面中黏土矿物含量和比值的变化特征,结合循化盆地西沟剖面的沉积速率、孢粉记录、有机质碳同位素和沉积岩地球化学比值,并与深海氧同位素值(δ18O)变化曲线对比,将循化盆地14. 6~5. 0 Ma气候环境演化划分为3个阶段:14. 6~12. 7 Ma,气候干冷期,与北半球冰盖扩展引发的全球性降温事件有关;12. 7~8. 0 Ma,气候相对温暖湿润期,可能与循化盆地周围山体隆升有关,即积石山在~12. 7 Ma隆升至临界高度,成为西风带输送水汽的地形屏障,使得循化盆地内的降水增强;8. 0~5. 0 Ma,气候再次转向干冷期,该阶段气候的干旱化对应于青藏高原在8 Ma左右的快速隆升,高原进一步的隆升阻碍东亚季风西风带的暖湿气流向内陆的输送,从而引起区域干旱化。  相似文献   

2.
循化-化隆盆地新生代沉积及盆地基底和周缘山系磷灰石裂变径迹年代学分析揭示了青藏高原东北缘晚白垩世以来经历过3期隆升剥露事件: (1)盆地基底及拉脊山和西秦岭北缘构造带磷灰石裂变径迹年龄分析普遍记录了晚白垩世-始新世中期相对快速的区域性的隆升剥露事件, 西秦岭北缘快速抬升的起始时间为84Ma, 受控于向北的逆冲抬升; 向北到循化-化隆盆地中部的拉目峡抬升的起始时间为69Ma; 更北的拉脊山一带快速抬升期主要为40~50Ma, 从而反映晚白垩世-始新世中期的快速抬升由南向北逐渐扩展.这一期构造隆升事件导致循化-化隆盆地和临夏盆地缺失了北部西宁-民和盆地古近纪所具有的西宁群沉积.隆升剥露结束于31Ma左右, 此时化隆-循化盆地向东与同时期的临夏盆地相连为一个统一的大型西秦岭山前盆地, 两者具有相同的构造、沉积演化史, 因此循化-化隆盆地他拉组底部地层年龄最老不会超过临夏盆地最老地层的古地磁年龄, 即29Ma.(2)渐新世晚期约26Ma拉脊山开始双向逆冲隆升, 并可能延续到中新世早期约21Ma, 隆升作用使循化-化隆盆地成为挟持于拉脊山逆冲带和西秦岭构造带之间的山前挤压型前陆盆地, 循化-化隆盆地开始大规模沉积巨厚的他拉组冲积扇相粗碎屑岩.(3)通过循化-化隆盆地咸水河组和临夏组的沉积相分析、古流方向和砾石成分分析, 揭示出拉脊山构造带在中新世8Ma左右发生的最大规模的双向逆冲隆升事件, 这次事件直接导致循化-化隆盆地由前陆挤压盆地转变为山间盆地, 形成现今青藏高原东北缘的盆山地貌基本格局.   相似文献   

3.
通过对青藏高原东北部循化盆地、临夏盆地和贵德盆地沉积相和沉积充填速率演化的对比分析,提出研究区新生代4个构造隆升阶段。①渐新世晚期—中新世早期(25~20Ma),3个盆地沉积相和沉积速率的变化表明青藏高原新生代向北东的增生作用在渐新世已抵达西秦岭北缘地区,同时,22Ma拉脊山强烈隆升,区域上整体地势差异不显著。②中新世中期(17~13Ma),随着高原东北缘盆山耦合的相互作用,湖盆进一步扩张,14Ma左右积石山的隆起及西秦岭、拉脊山的持续隆升,使得研究区转变为盆地周缘型。③中新世晚期(11~6Ma),8Ma左右沉积相的转变、沉积速率的增大及不整合面的存在,都说明高原在该段时间内存在强烈的构造隆升活动,裂变径迹热年代学证据反映的构造隆升与沉积响应也是一致的。④上新世(5Ma以来),沉积速率继续增大,区域上地势差异增强,湖盆逐步萎缩消亡。  相似文献   

4.
青藏高原东北缘寺口子盆地新生代沉积演化及其构造意义   总被引:2,自引:0,他引:2  
宁夏固原寺口子盆地发育巨厚的新生代地层,这些地层记录了青藏高原东北部的沉积演化特征和构造演变历史。根据剖面沉积物粒度特征、沉积结构和构造、沉积层序,识别出20种岩相、5种沉积相类型。结合前人对寺口子剖面的古地磁测年,分析研究盆地的沉积演化特征以及对构造的响应表明:20.1 Ma盆地以缓慢的坳陷沉降开始演化,直至1.2 Ma遭受破坏。在此期间青藏高原东北部经历了6.4 Ma、4.6 Ma和1.2 Ma这3次明显的构造挤压隆升运动,其中约6.4 Ma的构造运动是青藏高原向东北部扩展首次影响到海原—六盘山断裂以东地区。从盆地的形成和沉积演化过程来看,马东山山前断裂的逆冲推覆,导致了寺口子盆地的强烈变形和构造降升,并且最终成为青藏高原的最新组成部分。  相似文献   

5.
可可西里盆地新生代沉积演化历史重建   总被引:11,自引:1,他引:11  
青藏高原北部可可西里盆地是高原腹地最大的第三纪沉积盆地,分布着厚度达5737.5m的新生代沉积.本文根据遍布整个盆地的野外实测剖面和地质观察点资料,采用典型剖面精确古地磁测年为基础的时间框架,开展沉积层序、岩性特征、沉积环境和古水流变化综合对比研究,将可可西里盆地新生代(约56Ma至约16Ma)划分为7个演化阶段,其中在30Ma至约23Ma期间盆地经历抬升变形,没有沉积作用发生.结果显示,前6个阶段(约56Ma至30Ma),盆地沉积中心逐渐向北、向东迁移,盆地南缘和西缘的构造逆冲作用逐步加强,而且在晚渐新世发生强烈南北向地壳缩短,反映青藏高原腹地早期隆升过程是依靠南北向地壳缩短和北东向逆冲扩展作用来实现的.在早中新世(约23Ma至约16Ma),盆地沉积物遭受低度变形,表明此期间高原以差异隆升为主.  相似文献   

6.
青藏高原早更新世末期的快速隆升对全球气候变化、中国西部盆山地貌形成与荒漠化的发展有着重大影响。高原东北缘敦煌盆地早更新世河湖相沉积物粒度分析和红色泥岩36Cl 断代法定年结果表明:早更新世晚期(1.164 ~1.087 Ma B.P.),青藏高原北部党金山快速隆升,砾石层和粗砂层发育,沉积速率加快;1.087~ 0.809 Ma B. P.,山脉隆升速度变缓,沉积速率降低;0.809 Ma B. P.以来,受山脉隆升的影响,敦煌盆地气候逐渐变得干旱,沙漠形成。区域分析表明,沉积速率所反映的中国中西部山脉隆升最新的年代存在差别,不同时期高原的隆升产生不同的气候效应。因此,构造隆升和气候变化的细节尚待进一步研究。  相似文献   

7.
青藏高原东北缘共和盆地第四纪磁性地层学研究   总被引:4,自引:2,他引:2  
共和盆地第四纪剖面磁性地层学研究表明,该剖面包含了四个正极性段,三个负极性段,剖面底部地层年龄约为2.11Ma B.P.。结合剖面的沉积特征和已有的孢粉组合特征分析,可以确定该剖面记录了共和盆地2.11Ma B.P.以来的气候变化,且气候发生转型的主要时期依次为1.92 Ma B.P、1.75Ma B.P.、1.40Ma B.P.、1.02 Ma B.P.和0.87Ma B.P.。其主要原因可能是青藏高原强烈隆升远程效应的结果。共和盆地气候变化时间序列的建立为研究青藏高原隆升及环境效应提供有力证据。   相似文献   

8.
通过对青藏高原东北部11个新近纪沉积盆地的沉积相演化、古流向和物源演变的详细对比研究,揭示了研究区新近纪4次沉积演变与构造隆升的响应.①中新世早期(23~19.5Ma):阿牙克库木湖、柴达木、德令哈和酒泉盆地的古流向和物源分析表明东昆仑和阿尔金已经抬升成剥蚀区.循化、贵德和临夏等盆地物源和古流向指示西秦岭和拉脊山也已成为隆起区.区域上整体地势差异不显著.②中新世早中期(17.5~15Ma):区域湖盆面积扩大,阿牙克库木湖、索尔库里、柴达木和酒泉盆地的资料反映东昆仑、阿尔金和祁连山已经全面隆升,贵德循化、临夏盆地的古流向反映为盆地周缘型,指示西秦岭和拉脊山明显抬升,区域差异隆升造成盆地凹陷扩张进入湖泛期.③中新世中晚期(10~7Ma):阿牙克库木湖、索尔库里、柴达木和酒泉盆地沉积物的粒径和沉积速率增大,与热年代学证据一致,揭示出阿尔金山和祁连山进一步快速隆升.贵德、循化和临夏盆地古流向和物源反映为显著的多源性,除西秦岭和拉脊山外,位于循化和临夏两盆地间的积石山也开始隆起.④上新世(5.3Ma以来):索尔库里、柴达木和酒泉盆地古流向没有明显变化,沉积速率和粒径继续增大,阿尔金和祁连山加速隆升为高海拔地貌.贵德盆地主物源区是拉脊山.区域上,地势差异加强,湖盆被肢解后逐步萎缩消亡.  相似文献   

9.
可可西里盆地瘭生代沉积演化历史重建   总被引:18,自引:2,他引:18       下载免费PDF全文
青藏高原北部可可西里盆地是高原腹地最大的第三纪沉积盆地,分布着厚度达5737.5m的新生代沉积。本文根据遍布整个盆地的野外实测剖面和地质观察点资料,采有典型剖面精确古地磁测年为基础的时间框架,开展沉积层序、岩笥特征、沉环境和古水流变化综合对比研究,将可可西里盆地新生代(约56Ma至约16Ma)划分为7个演化阶段,其中在30Ma至约23Ma期间盆地经历抬升变形,没有沉积作用发生。结果显示,前6个阶段(约56Ma至30Ma),盆地沉积中心逐渐向北、向东迁移,盆地南缘和西缘的构造逆冲作用逐步加强,而且在晚渐新世发生强烈南北向地壳缩短,反映青藏高原腹地早期隆升过程中依靠南北向地壳缩短和北东向逆冲扩展作用来实现的。在早中新世(约23Ma至约16Ma),盆地沉积物遭受低度变形,表明此期间高原以差异隆升为主。  相似文献   

10.
艾可可  季军良 《地球科学》2015,40(3):535-547
通过对准噶尔西北缘和什托洛盖盆地新近系白杨河剖面详细的沉积学和磁组构的研究, 探讨了准噶尔西北部山地约7 Ma以来的构造变化.白杨河剖面由下至上可划分为塔西河组、独山子组和西域组, 分别对应于浅湖相、扇三角洲相和砾质辫状河相.古流向和砾石成分分析表明, 剖面物源来自和什托洛盖盆地北侧山地.根据沉积学和磁化率与磁组构参数(Pj、T、L和F)的变化, 准噶尔西北部地区约7 Ma以来的构造-环境演变可划分为3个阶段: 阶段Ⅰ(6.80~3.50 Ma): 浅湖相, 磁化率和磁组构参数值为剖面最低, 且变化幅度很小, 代表了构造环境比较稳定, 地势高差较小或物源区较远; 阶段Ⅱ(3.50~2.58 Ma): 扇三角洲相, 沉积速率、磁化率和磁组构参数值显著增大, 表明准噶尔西北部山地强烈隆升; 阶段Ⅲ(<2.58 Ma): 砾质辫状河相, 磁化率和磁组构参数值进一步增大, 可能是构造隆升与气候变化共同作用的结果.3.50 Ma准噶尔西北部山地强烈的构造隆升与天山地区和青藏高原周缘约3.00~4.00 Ma的构造隆升具有准同时性, 是印度-欧亚板块陆内俯冲挤压远程效应表现.   相似文献   

11.
The northeastern Tibetan Plateau is located at the convergence of the Asian winter and summer monsoons and westerlies; thus, this area has witnessed historic climate changes.The Xunhua basin is an intermontane basin on the northeastern margin of the Tibetan Plateau.The basin contains more than 2000 m of Cenozoic fluvial–lacustrine sediments, recording a long history of climate and environmental changes.We collected the mid-Miocene sediments from the Xunhua basin and used palynological methods to discuss the relationship between aridification in the interior of Asia, global cooling, and uplift of the Tibetan Plateau.Based on the palynological analysis of the Xigou section, Xunhua basin, the palynological diagram is subdivided into three pollen zones and past vegetation and climate are reconstructed.Zone I, Ephedripites–Nitraridites–Chenopodipollis–Quercoidites(14.0–12.5 Ma), represents mixed shrub–steppe vegetation with a dry and cold climate.In zone II, Pinaceae–Betulaepollenites–Ephedripites–Chenopodipollis–Graminidites(12.5–8.0 Ma), the vegetation and climate conditions improved, even though the vegetation was still dominated by shrub–steppe taxa.Zone III, Ephedripites–Nitrariadites–Chenopodipollis(8.0–5.0 Ma), represents desert steppe vegetation with drier and colder climate.The palynological records suggest that shrub–steppe dominated the whole Xigou section and the content gradually increased, implying a protracted aridification process, although there was an obvious climate improvement during 12.5–8.0 Ma.The aridification in the Xunhua basin and surrounding mountains during 14.0–12.5 Ma was probably related to global cooling induced by the rapid expansion of the East Antarctic ice-sheets and the relatively higher evaporation rate.During the 12.5–8.0 Ma period, although topographic changes(uplift of Jishi Shan) decreased precipitation and strengthened aridification in the Xunhua basin on leeward slopes, the improved vegetation and climate conditions were probably controlled by the decrease in evaporation rates as a result of continuous cooling.From 8.0 to 5.0 Ma, the rapid development of the desert steppe can be attributed to global cooling and uplift of the Tibetan Plateau.  相似文献   

12.
A sedimentary succession more than 5800 m thick, including the Lower Eocene to Lower Oligocene Fenghuoshan Group, the Lower Oligocene Yaxicuo Group, and the Lower Miocene Wudaoliang Group, is widely distributed in the Hoh Xil piggyback basin, the largest Cenozoic sedimentary basin in the hinterland of the Tibetan plateau. The strata of the Fenghuoshan and Yaxicuo groups have undergone strong deformation, whereas only minor tilting has occurred in the Wudaoliang Group. We analyze their sedimentary facies and depositional systems to help characterize continental collision and early uplift of the Tibetan plateau. The results indicate fluvial, lacustrine, and fan-delta facies for the Fenghuoshan Group, fluvial and lacustrine facies for the Yaxicuo Group, and lacustrine facies for the Wudaoliang Group. Development of the Hoh Xil basin underwent three stages: (1) the Fenghuoshan Group was deposited mainly in the Fenghuoshan-Hantaishan sub-basin between 56.0 and 31.8 Ma ago; (2) the Yaxicuo Group was deposited mainly in the Wudaoliang and Zhuolai Lake sub-basins between 31.8 and 30.0 Ma ago; and (3) the Wudaoliang Group was deposited throughout the entire Hoh Xil basin during the Early Miocene. The Fenghuoshan and Yaxicuo groups were deposited in piggyback basins during the Early Eocene to Early Oligocene, whereas the Wudaoliang Group was deposited in a relatively stable large lake. The Hoh Xil basin underwent two periods of strong north–south shortening, which could have been produced by the collision between India and Asia and the early uplift of the Tibetan plateau. The study suggests the Hoh Xil region could reach a high elevation during the Late Oligocene and the diachronous uplift history for the Tibetan plateau from east to west.  相似文献   

13.
青藏高原北部可可西里盆地第三纪风火山群沉积环境分析   总被引:19,自引:4,他引:19  
青藏高原北部的可可西里盆地是高原腹地最大的第三纪沉积盆地,分布着沉积厚度达 4 782.8m的早始新世-早渐新世风火山群灰紫色砂岩、泥岩和砾岩,其沉积环境演化经历了四个阶段,从早期 56.0~ 52.2Ma河流为主的环境,到中期 52.2~ 4 3.1Ma的湖泊环境和 4 3.1~ 3 8.3Ma的河流与扇三角洲环境,演变到晚期 3 8.3~ 3 2.0Ma河流为主的环境。古水流方向也由北东向变为南东向,到晚期又转变为北向为主,反映盆地沉积中心逐渐向东向北迁移。这种沉积环境演化和盆地沉积中心迁移可能受青藏高原早期隆升的影响.  相似文献   

14.
柴达木盆地厚达万米的新生代沉积物记录了青藏高原东北部隆升和古气候变化信息.本文基于盆地北缘大红沟剖面高分辨率的磁极性年代标尺,对该剖面古—新近纪河湖相沉积物进行了颜色测量,首次获得了柴达木盆地长时间尺度(52~7 Ma)的色度参数变化序列.在此基础上,综合沉积相与区域构造和古气候记录,探讨了影响河湖相沉积物颜色参数的因素及柴达木盆地古—新近纪的气候演变.结果表明,大红沟剖面沉积物颜色的变化与全球温度变化趋势基本一致,说明温度是影响颜色参数,特别是红度(a*)的主要因素;沉积相变化,尤其是水面上、下的氧化—还原环境变化对颜色参数也有重要影响.根据色度参数在时间标尺上的变化,将柴达木盆地的气候变化划分为8个阶段:(a)52.0~44.2 Ma湿热,(b)44.2~33.7 Ma在干湿波动中逐渐变干,(c)33.7~27.1 Ma进一步变干,(d)27.1~19.7 Ma逐渐变湿,(e)19.7~17.0 Ma较干旱,(f)17.0~13.3 Ma气候湿润,(g)13.3~9.5 Ma快速变干,(h)9.5~7.0 Ma进一步变干旱.影响柴达木盆地古—新近纪气候变化的主要因素包括全球温度、副特提斯海、青藏高原构造隆升和东亚夏季风.   相似文献   

15.
The late Cenozoic sediments in the rift basins in the northern Himalaya Mountains document important information about the uplift and deformation of the most active tectonic region in the Tibetan Plateau. However, these sediments have not been precisely dated, hindering our ability to address the basin development and termination associated with a series of uplifts in the southern Tibetan Plateau. Here, we report a detailed magnetostratigraphic study on the fluvio - lacustrine sedimentary sequence of the Dati Formation bearing abundant Hipparion forstenae fossils in the Dati Basin in the northern frontal region of the Himalaya Mountains. The 195 m – thick section yielded six normal and seven reversed polarity zones that correlate well with Chrons C3An.1r to C4r.2r of the geomagnetic polarity time scale, constraining the section age to ~8.6 – ~6.2 Ma. Together with the magnetostratigraphic results from other rift basins in the region, these results indicate that the horizons bearing the Hipparion fossils were deposited during the age interval of 7.1–6.5 Ma in the northern Himalaya Mountains. The regional tectonic activity and comprehensive magnetostratigraphic and sedimentologic comparisons suggest that the evolution of the rift basins in the northern Himalaya Mountains has involved three major stages since the late Cenozoic, i.e., (1) ~10.0–8.0 Ma, onset of the basins with fan delta facies; (2) ~8.0–3.0 Ma, expansion of the basins with mainly lacustrine facies; (3) ~3.0–1.7 Ma, shrinking and termination of the basins with alluvial fans. The basin evolutionary history indicates an accelerated tectonic uplift of the Himalaya Mountains at ~10.0 Ma, and two deformational events at ~3.0 Ma and at ~1.7 Ma.  相似文献   

16.
研究白垩纪祁连山构造隆升过程对认识青藏高原形成及其环境效应具有重要意义,兰州—民和盆地连续出露的河口群沉积物较好地记录了早白垩世祁连山隆升过程。河口群从下向上由冲积扇、扇三角洲、辫状河、滨湖、滨浅湖、半深湖、三角洲7个沉积相体系组成;综合分析沉积相时空演化、砾石成分及古水流方向统计和岩石磁化率测量,揭示出早白垩世祁连山经历了3期隆升过程:早期(约143~123Ma)快速强烈隆升阶段,此时祁连山东段开始逐渐断陷下沉,盆地沉积了冲积扇至滨浅湖相沉积体系的砾岩、砂岩和泥岩,岩石磁化率值总体偏低,隆升速度较快;中期(约123~113Ma)稳定隆升阶段,湖盆面积达到最大,沉积物以半深湖相泥岩为主,磁化率值总体偏高,隆升速度较慢;晚期快速隆升阶段,约从113Ma开始,祁连山隆升速度加快,湖盆萎缩,沉积了以三角洲相为主的泥岩和砂岩,磁化率值总体偏低,直至109Ma以后,盆地回返,祁连山地区整体抬升遭受剥蚀。  相似文献   

17.
青藏高原北部柴达木盆地发育了巨厚的第四纪河湖相沉积。盆内沉积地层强烈的构造变形以及湖盆环境突变进一步证实了青藏高原经历了多期挤压隆升运动。沉积环境、介形虫和植物孢粉化石及磁性地层研究表明,自距今 2.5Ma以来,青藏高原共经历了距今2.52~2.28Ma,1.94~1.66Ma,1.38~1.1Ma,0.71~0.5Ma和 0.24~0.09Ma 5次强烈的隆升阶段,分别对应于青藏运动B幕和C幕、昆黄运动A幕和B幕以及共和运动。高原内、外 9个盆地的构造—沉积记录对比研究也进一步揭示了青藏高原隆起的整体性和阶段性。  相似文献   

18.
可可西里盆地早渐新世雅西措群沉积环境分析及古气候意义   总被引:18,自引:3,他引:15  
刘志飞  王成善 《沉积学报》2000,18(3):355-361
可可西里盆地是青藏高原腹地最大的第三纪沉积盆地,第三纪沉积地层包括早始新世 -早渐新世风火山群、早渐新世雅西措群、早中新世五道梁群。其中,雅西措群为紫红色、砖红色泥岩、含膏泥岩与紫红色粉砂岩、细砂岩韵律互层,夹白色石膏薄层和石膏结核层,沉积厚度为 6 70.0m,沉积环境主要由河流和湖泊环境组成,并以湖泊环境为主,古水流方向反映盆地沉积中心逐渐向东向北迁移。雅西措群中石膏层的突然大量出现发生在底部地层距今约32.0Ma,体现了渐新世最早期的全球变冷变干事件在青藏高原北部的记录。  相似文献   

19.
青藏高原2.8Ma来的环境演化及其对构造事件响应   总被引:2,自引:2,他引:0  
本文根据青藏高原中部错鄂湖深钻研究的最新成果,结合东部若尔盖盆地湖泊沉积物记录,探讨了青藏高原2.8Ma以来的环境演化过程和高原构造隆升运动对环境演化的影响。初步研究显示:大约2.8MaBP错鄂湖构造成盆;2.6MaBP左右孢粉组合、粒度特征、岩性变化等均记录了一次强烈的构造隆升运动;2.6Ma~0.8Ma时段,高原可能处于一种整体隆升过程中的相对夷平阶段;若尔盖古湖揭示了0.9MaBP来的3次构造隆升运动,反映了高原环境演变的三个阶段;和黄土底界相当的错鄂湖沉积记录显示并未干旱的特征;黄土旺盛堆积时期(L15、L9、L6)高原湖泊记录的气候特征为偏湿气候。   相似文献   

20.
ABSTRACT

The rapid uplift of the Tibetan plateau, the intense movement of the Ailao Shan-Red River Shear Zone (ARSZ), and the related climate change during the Cenozoic Indo-Asian collision have been widely studied; however, their timings varied considerably due to different data and methods used. As these events have been documented in the Red River sediment that came from the eastern Tibetan plateau and the Red River region and eventually deposited in the offshore Yinggehai and Qiongdongnan basins, here these events can be explored by calculating and analysing the Red River sediment budget, especially in the Qiongdongnan basin based on dense seismic profiles and wells. Results show that the Red River sediment mainly accumulated in the Yinggehai basin and the west part of the Qiongdongnan basin, and there are three sedimentary accumulation peaks in the Red River sediment budget during ~29.5–21, ~15.5–10.5, and ~5.5–0 Ma. By further comparing with previous studies on the timings of these events, it is inferred that the first sedimentary peak, prior to the onset of the monsoon intensification (~22 Ma), was probably driven by an intense left-lateral movement of the ARSZ in ~29.5–21 Ma. The second peak (~15.5–10.5 Ma), however, reflects a rapid uplift of the Tibetan plateau after the cessation of the left-lateral strike slip of the ARSZ. The third peak (~5.5–0 Ma) is most likely linked with a right-lateral movement of the ARSZ and the related climate change. Overall, the Red River sediment budget from the offshore Yinggehai and Qiongdongnan basins provides an important constraint on the timings of these tectonic events as well as the related climate change during the Cenozoic Indo-Asian collision.  相似文献   

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