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1.
塔里木盆地沉积剥蚀过程与油气关系   总被引:3,自引:0,他引:3  
塔里木盆地典型井的周期分析表明,塔里木盆地在其地质历史时期100Ma左右的周期是很明显的,自寒武纪以来共经历了4个完整的周期,每一完整周期都由正相位和负相位两个半周期所组成。而第三纪为第5个周期的正相位阶段。该周期控制了盆地内的沉积与剥蚀的过程及成藏旋回。对沉积与剥蚀过程的控制作用表现在周期波正相位和负相位分别对应于沉积期和剥蚀期,这在地质年代序列中表现为沉积与间断的互为消长的演化进程。对食油气系统的控制作用表现在:第1个周期波构成以早古生代地层为主体的含油气系统,第2个周期波至第4个周期波构成以晚古生代至中生代地层为主体的含油气系统,第5个周期的正相位阶段构成以第三纪地层为主体的含油气系统。  相似文献   

2.
100Ma—塔里木盆地演化的重要周期   总被引:1,自引:0,他引:1  
李京昌  金之钧 《地学前缘》1997,4(4):312-317
运用沉积盆地波动分析方法对塔里木盆地典型井的周期分析表明,塔里木盆地在其地质历史时期100Ma周期是很明显的,自寒武幻以来共细历了4个完整的周期,每一完整周期都由正相位和负相位两个半周期所组成,而第三幻为第Ⅴ个周期的正相位阶段。该周期控制了盆地内的沉积与剥的过程及成藏旋回,并至少控制了古生代的反转构造。  相似文献   

3.
黑龙江多宝山古生代海盆闭合的岩石学证据   总被引:2,自引:0,他引:2  
综合研究黑龙江多宝山地区古生代沉积地层、生物化石,通过分析侵入岩岩石地球化学及其锆石U--Pb 同位素测年资料,表明该地区早奥陶世至晚泥盆世早期为海相沉积地层,晚泥盆世晚期为海陆交互相沉积地层,早石炭世为陆相河湖沉积地层。多宝山海盆东南侧出露一套年龄为( 300 ± 3 ~ 357 ± 4) Ma 的花岗岩,其中正长、二长花岗质糜棱岩为后造山花岗岩,碱长花岗岩为造山后A 型花岗岩。表明多宝山海盆于晚泥盆世开始闭合,至早石炭世为陆相河湖沉积,晚石炭世-早二叠世为抬升剥蚀阶段。表现为多宝山地区于早石炭世开始造山,晚石炭世晚期或延至早二叠世发生造山后伸展作用。  相似文献   

4.
兴蒙造山系新元古代-古生代沉积盆地演化   总被引:5,自引:0,他引:5       下载免费PDF全文
在系统分析兴蒙造山系新元古代-古生代24个沉积盆地类型、沉积建造、生物地层与年代地层等特征的基础上,划分了6个沉积大地构造演化阶段并对其进行讨论:(1)新元古代-寒武纪早期陆缘增生阶段:额尔古纳地块向南增生并与兴安地块拼贴,形成环宇-新林蛇绿岩拼合带;(2)寒武纪纽芬兰世-第二世陆缘稳定沉积阶段:各地块边缘发育相对稳定的碎屑岩-碳酸盐岩沉积,佳木斯地块受晚泛非造山作用影响;(3)早-中奥陶世多岛弧盆系形成阶段:多宝山地区弧盆系发育,其他地块边缘均有不同强度陆间洋壳俯冲作用;(4)晚奥陶世-志留纪普里道利世多岛弧盆系发展阶段:各地块隆升遭受剥蚀;(5)早泥盆世-早石炭世多岛弧盆系消减阶段:早石炭世晚期额尔古纳-兴安地块与松嫩地块拼贴,佳木斯西缘由被动陆缘转为活动陆缘;(6)晚石炭世-二叠纪乐平世拼合后洋-陆转化阶段:从早石炭世晚期开始至二叠纪末,佳木斯地块分别与松嫩地块、兴凯地块拼贴,至此东北各地块拼贴完成.   相似文献   

5.
黑龙江省西北部发育连续沉积的古生代(O1-C1)地层.结合该地区近年来的区域地质调查和科学研究成果,将该地区奥陶纪-石炭纪岩石地层划分为伊勒呼里山群、黑河群和燎原群3个群15个组,并将各组的岩石建造、化石组合、沉积环境等与古亚洲洋发生、发展、消亡演化历史结合在一起进行论述分析.通过古生代(O1-C1)地层方面的综合研究,为黑龙江省西北部古亚洲洋演化提供了岩石地层、生物地层和沉积环境方面的综合资料.根据上述地层记录,认为古亚洲洋发生于早奥陶世早期,兴盛于早奥陶世晚期-晚奥陶世,收敛期为早志留世-晚志留世-中泥盆世、消亡于晚泥盆世-早石炭世.  相似文献   

6.
塔里木盆地演化的周期性与造山带关系初探   总被引:1,自引:1,他引:1  
本文综合前人关于塔里木盆地地层划分的各种方案和最新研究成果,建立了塔里木盆地主要构造单元的地层年代格架,在此基础上恢复了塔中4井、满参1井、草1井残余地层的原始厚度,从而建立了这三口井时间序列剖面上的沉积速度直方图。通过对该时间剖面沉积速度直方图进行滑动平均处理,找到了100Ma的周期,这一周期控制了塔里木盆地的坳陷-隆起的构造旋回,即100Ma周期的半周期处于正相位时,盆地沉降坳陷接受沉积;而该周期的半周期处于负相位时,盆地隆起剥蚀。而且这一周期与塔里木盆地边缘造山带的开合演化史有着极好的对应关系。本文最后指出100Ma为控制塔里木盆地构造演化的最重要的周期,自寒武纪以来这一周期共有四个,并对其成因作了探讨。  相似文献   

7.
塔里木盆地上新元古界-下奥陶统是我国超深层油气勘探的重要领域,但其盆地动力学研究程度低、认识分歧大,制约了塔里木盆地超深层油气地质评价。本文综合近年地质学、地球化学与地球物理资料,探讨塔里木盆地晚新元古代-早古生代板块构造环境及其构造-沉积响应,将其划分为以下5个阶段:(1)新元古代-早古生代经历了前展-后撤-前展俯冲的板块构造演化;(2)南华纪发育后撤俯冲机制下的大陆裂谷沉积体系,不同于地幔柱机制;(3)震旦纪-寒武纪不是裂谷盆地的连续沉积,而是发育后撤-前展俯冲转换期的前寒武纪大不整合面;(4)寒武纪-奥陶纪,塔里木盆地缺乏被动大陆边缘背景,发育一套碳酸盐台地沉积,而且随着原特提斯洋闭合的前展俯冲作用增强,导致了中奥陶世晚期台地从东西分异转向南北分异的沉积演变;(5)晚奥陶世末在前展俯冲造山作用下形成复理石快速充填的类前陆盆地,但没有形成碰撞造山作用下的磨拉石前陆盆地。研究认为,塔里木板块晚新元古代-早古生代多期幕式后撤-前展俯冲机制形成了南华纪强伸展→震旦纪末挤压与寒武纪-早奥陶世弱伸展→中奥陶世晚期-志留纪强挤压的两大构造旋回,并造成了构造-沉积演化的差异性,不同于经典的威尔逊旋回模式及其成盆动力学机制。  相似文献   

8.
天山造山带自新元古代以来,经历了漫长而复杂的俯冲增生造山作用和陆内构造活化过程,属于典型的复合型造山带。基于近年研究进展,本文对伊犁、境内外中天山和南天山构造带前寒武纪基底、古生代沉积序列、多期陆缘弧岩浆岩和构造缝合带的变形变质特征、形成环境和年代学等进行了总结分析,梳理了天山古生代增生造山作用中的三次重要构造转换事件及其地质记录。① 伊犁南北两缘、中天山、南天山和塔里木北缘,均发育中奥陶世—志留纪的大陆弧岩浆作用,伊犁北缘、南天山 塔里木北部早古生代沉积环境发生显著变化,表明天山 塔里木北缘在中—晚奥陶世发生了从被动陆缘向活动陆缘的转换。② 伊犁南、北两缘和中天山的早古生代岩层在晚志留世—早泥盆世普遍发生了强烈的韧性变形和角闪岩相变质作用,其上不整合覆盖有弱变形未变质的晚泥盆世—石炭纪火山 沉积地层;该区域不整合是哈萨克斯坦微大陆拼合事件在研究区的构造响应,也标志着准噶尔洋和南天山洋的俯冲方式在泥盆纪发生了由前进式(东太平洋型)向后撤式(西太平洋型)的构造转换,导致伊犁和中天山在晚泥盆世—石炭纪经历了伸展背景下的大陆弧岩浆作用,在南天山 塔里木北缘则形成了一系列弧后有限洋盆。③ 天山各构造单元及其边界缝合带中普遍发育晚石炭世逆冲推覆构造和二叠纪走滑韧性剪切带、晚石炭世—早二叠世滑塌堆积和二叠纪后造山岩浆岩,指示晚石炭世—早二叠世发生了由汇聚造山向陆内构造的转换。这些构造转换事件是认识古亚洲洋各分支洋盆从初始俯冲、俯冲方式转换到俯冲终结过程的基础,也是探讨增生造山动力学的关键。  相似文献   

9.
东北地区古生代在南部有一个地层间断面,北部有三个地层间断面:奥陶纪、晚志留世末-早泥盆世和早石炭世晚期-晚石炭世,相应于古亚洲洋构造域发展的不同阶段,结束于早三叠世末.最后的间断面以后,东北南部和北部古生代地层进入同步发展.  相似文献   

10.
右江盆地晚古生代深水相地层沉积构造演化   总被引:4,自引:0,他引:4       下载免费PDF全文
陈丛林  史晓颖 《中国地质》2006,33(2):436-443
在对测自桂西地区的田林八渡、那坡坡荷、百色平圩、阳圩等地晚古生代的深水相沉积地层的沉积特征、玄武岩地球化学分析以及重要的构造地质事件研究的基础上.对右江盆地晚古生代盆地沉积演化做了阐述,提出了右江盆地自早泥盆世晚期开始出现大陆边缘裂离,先后经历了裂谷盆地形成阶段(早泥盆世晚期-中三叠世早期)、洋壳盆地形成阶段(晚泥盆世-早石炭世)、洋壳盆地强烈扩张阶段(晚石炭世-中二叠世)、洋壳盆地收缩阶段(晚二叠世-中三叠世早期)-洋盆封闭快速充填阶段(中三叠世晚期)的完整沉积盆地演化序列。  相似文献   

11.
古亚洲洋不是西伯利亚陆台和华北地台间的一个简单洋盆,而是在不同时间、不同地区打开和封闭的多个大小不一的洋盆复杂活动(包括远距离运移)的综合体.其北部洋盆起始于新元古代末-寒武纪初(573~522Ma)冈瓦纳古陆裂解形成的寒武纪洋盆.寒武纪末-奥陶纪初(510~480Ma),冈瓦纳古陆裂解的碎块、寒武纪洋壳碎块和陆缘过渡壳碎块相互碰撞、联合形成原中亚-蒙古古陆.奥陶纪时,原中亚-蒙古古陆南边形成活动陆缘,志留纪形成稳定大陆.泥盆纪初原中亚-蒙古古陆裂解,裂解的碎块在新形成的泥盆纪洋内沿左旋断裂向北运动,于晚泥盆世末到达西伯利亚陆台南缘,重新联合形成现在的中亚-蒙古古陆.晚古生代时,在现在的中亚-蒙古古陆内发生晚石炭世(318~316Ma)和早二叠世(295~285Ma)裂谷岩浆活动,形成双峰式火山岩和碱性花岗岩类.蒙古-鄂霍次克带是西伯利亚古陆和中亚-蒙古古陆之间的泥盆纪洋盆,向东与古太平洋连通,洋盆发展到中晚侏罗世,与古太平洋同时结束,其洋壳移动到西伯利亚陆台边缘受阻而向陆台下俯冲,在陆台南缘形成广泛的陆缘岩浆岩带,从中泥盆世到晚侏罗世都非常活跃.古亚洲洋的南部洋盆始于晚寒武世.此时,华北古陆从冈瓦纳古陆裂解出来,在其北缘形成晚寒武世-早奥陶世的被动陆缘和中奥陶世-早志留世的沟弧盆系.志留纪腕足类生物群的分布表明,华北地台北缘洋盆与塔里木地台北缘、以及川西、云南、东澳大利亚有联系,而与上述的古亚洲洋北部洋盆没有关连,两洋盆之间有松嫩-图兰地块间隔.晚志留世-早泥盆世,华北地台北部发生弧-陆碰撞运动,泥盆纪时,在松嫩地块南缘形成陆缘火山岩带,晚二叠世-早三叠世华北地台与松嫩地块碰撞,至此古亚洲洋盆封闭.古亚洲洋的南、北洋盆最后的褶皱构造,以及与塔里木地台之间发生的直接关系,很可能是后期的构造运动所造成的.  相似文献   

12.
略论塔里木古生代盆地演化   总被引:11,自引:0,他引:11  
浪良杰 《现代地质》1997,11(1):14-20
依据所处板块构造位置和地球动力学环境,提出塔里木古生代盆地演化经历了震旦—泥盆纪和石炭—二叠纪两个完整的开合旋回。第一旋回自震旦纪开始张裂形成大陆裂谷,寒武—奥陶纪伸展为被动大陆边缘,志留—泥盆纪俯冲消减,泥盆纪晚期碰撞闭合,时间跨度达400Ma以上。第二旋回表现为石炭—二叠纪弧后拉张—弧后造山事件,延续仅约100Ma。  相似文献   

13.
新疆克孜尔河流经南天山造山带南缘,其河流沉积物中记录了流域内地质体的重要信息。为进一步约束南天山造山带的构造演化历史,探讨该造山带古生代地壳生长与演化,对克孜尔河沉积物中的碎屑锆石进行U‐Pb定年。结果表明锆石年龄主要集中分布在460~390 Ma和310~260 Ma,少量分布在前寒武纪,暗示南天山造山带在古生代期间发生了强烈的岩浆活动。物源分析表明克孜尔河沉积物中的碎屑锆石主要源于南天山造山带和塔里木克拉通北部,年龄为460~390 Ma的碎屑锆石很可能记录了南天山洋在晚奥陶—早泥盆世期间向南俯冲到塔里木克拉通之下的弧岩浆作用。南天山洋闭合以及塔里木克拉通与伊犁—中天山地块的最终碰撞可能发生在晚石炭世,随后发生同碰撞和后碰撞岩浆作用,以样品中大量310~260 Ma的碎屑锆石为代表。结合南天山造山带内已有的古生代岩浆岩锆石的Hf同位素数据分析表明,晚奥陶—早泥盆世南天山造山带的大陆地壳演化主要以古老地壳的再造和部分新生地幔物质的加入为主,晚石炭—早二叠世该造山带地壳演化则以前寒武纪古老基底岩石的改造为主,仅有限的新生组分加入到岩浆的形成过程中。  相似文献   

14.
Seismic and drilling well data were used to examine the occurrence of multiple stratigraphic unconformities in the Tarim Basin, NW China. The Early Cambrian, the Late Ordovician and the late Middle Devonian unconformities constitute three important tectonic sequence boundaries within the Palaeozoic succession. In the Tazhong, Tabei, Tadong uplifts and the southwestern Tarim palaeo‐uplift, unconformities obviously belong to superimposed unconformities. A superimposed unconformity is formed by superimposition of unconformities of multiple periods. Areas where superimposed unconformities develop are shown as composite belts of multiple tectonic unconformities, and as higher uplift areas of palaeo‐uplifts in palaeogeomorphologic units. The contact relationship of unconformities in the lower uplift areas is indicative of truncation‐overlap. A slope belt is located below the uplift areas, and the main and secondary unconformities are characterized by local onlap reflection on seismic profiles. The regional dynamics controlled the palaeotectonic setting of the Palaeozoic rocks in the Tarim Basin and the origin and evolution of the basin constrained deposition. From the Sinian to the Cambrian, the Tarim landmass and its surrounding areas belonged to an extensional tectonic setting. Since the Late Ordovician, the neighbouring north Kunlun Ocean and Altyn Ocean was transformed from a spreading ocean basin to a closed compressional setting. The maximum compression was attained in the Late Ordovician. The formation of a tectonic palaeogeomorphologic evolution succession from a cratonic margin aulacogen depression to a peripheral foreland basin in the Early Caledonian cycle controlled the deposition of platform, platform margin, and deep‐water basin. Tectonic uplift during the Late Ordovician resulted in a shallower basin which was followed by substantial erosion. Subsequently, a cratonic depression and peripheral or back‐arc foreland basin began their development in the Silurian to Early–Middle Devonian interval. In this period, the Tabei Uplift, the Northern Depression and the southern Tarim palaeo‐uplift showed obvious control on depositional systems, including onshore slope, shelf and deep‐water basin. The southern Tarim Plate was in a continuous continental compressional setting after collision, whereas the southern Tianshan Ocean began to close in the Early Ordovician and was completely closed by the Middle Devonian. At the same time, further compression from peripheral tectonic units in the eastern and southern parts of the Tarim Basin led to the expansion of palaeo‐uplift in the Late Devonian–Early Carboniferous interval, and the connection of the Tabei Uplift and Tadong Uplift, thus controlling onshore, fluvial delta, clastic coast, lagoon‐bay and shallow marine deposition. Copyright © 2015 John Wiley & Sons, Ltd.  相似文献   

15.
笔者认为东准噶尔地区曾是古新疆克拉通的一部分,只是到了泥盆纪才演化成大洋。值得特别提出的是,大洋消失之后,经历了残留海盆阶段才开始碰撞造山。碰撞期后的岩浆作用和板内裂陷作用在该区特别发育,而且形成相关的内生金属矿产。以大型内陆盆地沉降和山脉隆升为特征的陆内造山作用标志着大陆克拉通化的最终完成。成矿期与构造演化密切相关,自老而新划分了6个成矿期。  相似文献   

16.
笔者认为东准噶尔地区曾是古新疆克拉通的一部分,只是到了泥盆纪才演化成大洋。值得特别提出的是,大洋消失之后,经历了残留海盆阶段才开始碰撞造山。碰撞期后的岩浆作用和板内裂陷作用在该区特别发育,而且形成相关的内生金属矿产。以大型内陆盆地沉降和山脉隆升为特征的陆内造山作用标志着大陆克拉通化的最终完成。成矿期与构造演化密切相关,自老而新划分了6个成矿期。  相似文献   

17.
Packages of Late Paleozoic tectonic nappes and associated major NE-trending strike-slip faults are widely developed in the Altai–Sayan folded area. Fragments of early deformational phases are preserved within the Late Paleozoic allochthons and autochthons. Caledonian fold-nappe and strike-slip structures, as well as accompanying metamorphism and granitization in the region, are typical of the EW-trending suture-shear zone separating the composite Kazakhstan–Baikal continent and Siberia. In the Gorny Altai region, the Late Paleozoic nappes envelop the autochthon, which contains a fragment of the Vendian–Cambrian Kuznetsk–Altai island arc with accretionary wedges of the Biya–Katun’ and Kurai zones. The fold-nappe deformations within the latter zones occurred during the Late Cambrian (Salairian) and can thus be considered Salairian orogenic phases. The Salairian fold-nappe structure is stratigraphically overlain by a thick (up to 15 km) well-stratified rock unit of the Anyui–Chuya zone, which is composed of Middle Cambrian–Early Ordovician fore-arc basin rocks unconformably overlain by Ordovician–Early Devonian carbonate-terrigenous passive-margin sequences. These rocks are crosscut by intrusions and overlain by a volcanosedimentary unit of the Devonian active margin. The top of the section is marked by Famennian–Visean molasse deposits onlapping onto Devonian rocks. The molasse deposits accumulated above a major unconformity reflects a major Late Paleozoic phase of folding, which is most pronounced in deformations at the edges of the autochthon, nearby the Kaim, Charysh–Terekta, and Teletskoe–Kurai fault nappe zones. Upper Carboniferous coal-bearing molasse deposits are preserved as tectonic wedges within the Charysh–Terekta and Teletskoe–Kurai fault nappe zones.Detrital zircon ages from Middle Cambrian–Early Ordovician rocks of the Anyui–Chuya fore-arc zone indicate that they were primarily derived from Upper Neoproterozoic–Cambrian igneous rocks of the Kuznetsk–Altai island arc or, to a lesser extent, from an Ordovician–Early Devonian passive margin. A minor age population is represented by Paleoproterozoic grains, which was probably sourced from the Siberian craton. Zircons from the Late Carboniferous molasse deposits have much wider age spectra, ranging from Middle Devonian–Early Carboniferous to Late Ordovician–Early Silurian, Cambrian–Early Ordovician, Mesoproterozoic, Early–Middle Proterozoic, and early Paleoproterozoic. These ages are consistent with the ages of igneous and metamorphic rocks of the composite Kazakhstan–Baikal continent, which includes the Tuva-Mongolian island arc with accreted Gondwanan blocks, and a Caledonian suture-shear zone in the north. Our results suggest that the Altai–Sayan region is represented by a complex aggregate of units of different geodynamic affinity. On the one hand, these are continental margin rocks of western Siberia, containing only remnants of oceanic crust embedded in accretionary structures. On the other hand, they are represented by the Kazakhstan–Baikal continent composed of fragments of Gondwanan continental blocks. In the Early–Middle Paleozoic, they were separated by the Ob’–Zaisan oceanic basin, whose fragments are preserved in the Caledonian suture-shear zone. The movements during the Late Paleozoic occurred along older, reactivated structures and produced the large intracontinental Central Asian orogen, which is interpreted to be a far-field effect of the colliding East European, Siberian, and Kazakhstan–Baikal continents.  相似文献   

18.
柴达木盆地构造古地理分析   总被引:17,自引:2,他引:15  
魏斌 《地学前缘》2000,7(4):421-429
研究的目的是分析柴达木盆地显生宙构造古地理特征和盆地叠合过程。在寒武纪—泥盆纪 ,柴达木板块处于低纬度区 ,从寒武纪时的南纬 4 1°往北漂移到泥盆纪时的北纬 10 6° ,与塔里木、华北、扬子等块体有较大的纬度差 ,表明柴达木板块在该时期是一个并不隶属于其它任何板块的独立的块体 :与华北板块之间以北祁连洋相隔 ,与塔里木板块之间以阿尔金洋相隔 ,与中昆仑地块之间以东昆仑洋相隔 ,柴达木板块内部也被赛什腾—锡铁山洋所分隔。这些洋盆经历了寒武纪—早、中奥陶世张裂阶段和晚奥陶世—早、中泥盆世聚敛阶段 ,最终于中泥盆世末期闭合。该时期在柴达木盆地内部 ,叠合在震旦纪大陆裂谷盆地之上的是寒武—奥陶纪台地—陆棚相碳酸盐岩和碎屑岩建造 ,生物发育 ;志留纪—早、中泥盆世柴达木盆地以隆起为特征。石炭纪—三叠纪柴达木板块继续北移 ,石炭纪时位于北纬 11 9° ,二叠纪时位于北纬 12 7° ,三叠纪时位于北纬 2 2 2° ,该时期柴达木板块已与华北板块、塔里木板块拼合 ,但与羌塘板块之间以南昆仑洋相隔 ,柴达木处于南昆仑洋的弧后部位 ,叠加在早期盆地之上的是石炭纪—早二叠世滨岸—台地—陆棚相碳酸盐岩、碎屑岩夹煤线。晚二叠世—三叠纪柴达木盆地再度隆升。侏罗纪以来 ,柴达木板块缓慢北  相似文献   

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