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喜马拉雅造山带造山模式探讨被引量:7
2013年
喜马拉雅是典型的碰撞型造山带,造山带结构构造复杂,可大致划分为以逆冲推覆构造为主的南喜马拉雅造山带和以各种伸展性构造为主的北喜马拉雅造山带;造山带内各类构造均发生过多期变形,且发生过多次缩短与伸展的构造反转;大喜马拉雅结晶杂岩系(GHC)内变形、岩浆及变质作用证明造山过程中存在渠道流作用。据此,本文提出一种由印度一欧亚大陆汇聚速率控制的多阶段造山模式:两大陆汇聚速度快时,青藏高原内形成南北向裂谷系(NSTR),喜马拉雅内经历造山过程,并在造山带中、下地壳形成作为底部拆离层的塑性层;汇聚速率慢时,青藏高原内形成共轭走滑断裂,喜马拉雅造山带内的塑性层发生松弛和重力扩散,形成渠道流,导致藏南拆离系(STDS)的启动、GHC的挤出和北喜马拉雅片麻岩穹窿(NHGD)的形成。上述的增厚与松弛均是在挤压体制下形成的,构造的反转是因挤压速率变化而产生的结构调节作用。
张进江王佳敏王晓先张波
关键词:喜马拉雅造山带
聂拉木地区喜马拉雅造山带上新世以来快速剥蚀事件及其构造-气候耦合意义被引量:5
2014年
喜马拉雅造山带是全球构造与气候相互作用最为强烈的地区,是探讨构造与气候耦合及其对地貌塑造作用的天然实验室.研究区域在聂拉木地区长约45 km、横穿大喜马拉雅结晶岩系(GHC)的剖面上,并进行系统的磷灰石裂变径迹(AFT)年代学测试.AFT年龄分为两组:一组位于聂拉木县城以北,年龄15~6 Ma,拟合的高程-年龄直线具有极缓斜率(0.05),计算得出0.27 mm/a的缓慢剥蚀速率;另一组位于聂拉木以南,年龄约3~1 Ma,高程-年龄斜率为0.78,剥蚀速率为1.32 mm/a.两组年龄均与海拔高度正相关,且两组拟合线的转折点正好位于聂拉木县城附近河流切割裂变点上.结合热构造模型,认为两组AFT年龄代表GHC所经历的两期不同剥蚀历史:中新世中晚期(15~6 Ma)冷却年龄记录的是地形平缓的GHC北部早期缓慢剥蚀,上新世以来(约3~1 Ma)冷却年龄对应于地形陡峻的GHC南部晚期快速剥蚀;两段间剥蚀速率为突变关系,后期的剥蚀速率比前期快近5倍,拟合的年龄-高程斜率相差13倍.上新世以来冷却剥蚀速率陡增事件遍及喜马拉雅造山带,4~3 Ma以来全球气候剧变、亚洲季风明显增强,实测剖面上后期快速剥蚀区段与区域年降水量高度耦合,而此时大规模断层活动在造山带表现的并不明显,所以,以降水为代表的气候作用可能是造成喜马拉雅造山带上新世以来快速剥蚀的主要原因之一.
郑勇张进江王佳敏王晓先王盟
关键词:喜马拉雅造山带磷灰石裂变径迹剥蚀速率上新世
Middle-Miocene transformation of tectonic regime in the Himalayan orogen被引量:8
2013年
Understanding the multiple tectonic transformations during the Himalayan orogeny is significant in evaluating the evolution of Himalayan orogen.In the Gyirong area in south Tibet,deformed leucogranitic veins in the biotite-plagioclase gneisses of Greater Himalayan crystalline complex(GHC) constitute south-vergent asymmetric folds.The reconstruction of the veins shows that they experienced two generations of deformation under different tectonic regimes:an earlier top-to-north extension and a later top-to-south thrusting,implying a tectonic transformation from N-S extension to N-S shortening.Zircons LA-ICP-MS U-Pb dating of the leucogranite shows that it was emplaced during 21.03-18.7 Ma.The data suggest that the tectonic transformation occurred after 18.7 Ma.The chronological data of South Tibet detachment system(STDS) and North-South trending rift(NSTR) from Gyirong and other areas indicate that the Himalayan orogeny was in a period of tectonic transformation from N-S extension to N-S shortening during 19-13 Ma.The transformation of tectonic regime was probably controlled by the India-Asia convergence rate.An increase in the convergence rate resulted in N-S shortening of the orogen,thrusting and folding,with coeval formation of the NSTR in Tibet.A decrease in the convergence rate led to N-S extension and reactivation of the STDS.
WANG XiaoXianZHANG JinJiangLIU JiangYAN ShuYuWANG JiaMin
关键词:喜马拉雅造山带中中新世LA-ICP-MS造山运动逆冲推覆
藏南康马拆离断层的构造特征及其活动时代被引量:10
2015年
藏南康马穹窿是北喜马拉雅片麻岩穹窿的经典代表,穹窿内发育上、下两条拆离断层并将穹窿分为三个构造层,其中上拆离断层分隔了上构造层未变质/轻微变质的特提斯喜马拉雅沉积岩系和中构造层的石榴石二云母片岩,而下拆离断层,即康马拆离断层,分隔了中构造层的石榴石二云母片岩和下构造层的片麻状二云母花岗岩。受康马拆离断层的影响,其上下两盘靠近拆离断层面处的岩石遭受强烈的韧性变形改造,形成了糜棱岩化石榴石二云母片岩和花岗质糜棱岩,宏观构造解析以及构造岩的显微构造分析表明,康马拆离断层经历了上盘向北的伸展拆离。本次研究采用40Ar/39Ar定年方法,选择拆离断层带内糜棱岩化石榴石二云母片岩中同变形新生白云母进行年代学测定,结果显示白云母40Ar/39Ar坪年龄为13.23±0.15 Ma,结合宏微观岩石矿物学分析,认为其代表了向北伸展拆离的变形时间,即康马拆离断层的活动时代,该时代与康马穹窿南部的藏南拆离系的活动时代一致,从年代学上暗示二者可能为同一条拆离断层,是在不同区域的出露,但该结论仍然需要更多地质、地球物理等方面的证据来证实。
王晓先张进江闫淑玉刘江
关键词:藏南
碎屑金红石地球化学特征对库车坳陷中生代沉积物源的启示被引量:2
2013年
本文主要对库车坳陷的库车河流域和巴音布鲁克盆地中生代砂岩样品进行了碎屑金红石微量元素电子探针分析。结果显示,巴音布鲁克地区侏罗纪砂岩中的碎屑金红石来自变质泥质岩和来自基性变质岩的比例大致相当,而库车坳陷中生代砂岩中碎屑金红石则主要来自变质泥质岩。两地金红石的变质级别以角闪岩相/榴辉岩相为主,并有一定比例麻粒岩相变质的金红石。库车坳陷中生代砂岩中麻粒岩相金红石的含量,从三叠纪至白垩纪呈现出低—高—低的特点,说明侏罗纪时期物源方向有所变化,可能有东南部物源的参与。白垩纪时期,库车河地区砂岩中麻粒岩相变质金红石含量减少,可能与南天山再度抬升隆起成为优势物源区有关。
王盟张进江戚国伟
关键词:金红石地球化学沉积物源
Rapid denudation of the Himalayan orogen in the Nyalam area,southern Tibet, since the Pliocene and implications for tectonics–climate coupling被引量:5
2014年
The Himalayan orogen characterized by very high variability in tectonic and climatic processes,and is thus regarded as a natural laboratory for investigating the coupling of tectonics and climate,as well as the influence of this coupling on geomorphological processes.This study uses apatite fission track(AFT)dating of samples from a45-km-long section crossing the Great Himalaya Crystalline Complex(GHC)in the Nyalam area,southern Tibet,to constrain the timing and rate of late Cenozoic denudation.The AFT ages can be divided into two groups:(1)15–6 Ma,to the north of Nyalam town,for which the bestfit line of elevation-age has a gentle slope of 0.05,and for which a denudation rate of 0.27 mm/a is calculated;and(2)3–1 Ma,south of Nyalam town,for which the best-fit line has a steep slope of 0.64,and for which a denudation rate of 1.32 mm/a is calculated.The whole AFT ages has a positive correlation with sample elevation(i.e.,older ages are found at higher elevations),and the geographical location of the point of inflexion of the two fitted lines corresponds closely to the junction of Poqu River near Nyalam town.By integrating the AFT data with thermotectonic modeling,it can be inferred that the GHC has experienced two different periods of denudation:(1)slow denudation during middle to late Miocene(15–6 Ma)is recorded in the northern part of the GHC;and(2)rapid denudation from the Pliocene to the Pleistocene(3–1 Ma)is recorded in the southern part of the GHC.An abrupt change in denudation rate occurred between the two periods,with the Pliocene–Pleistocene denudation rate being five times higher than that during the Miocene.This abrupt change in denudation rate during Pliocene pervaded the Himalayan orogen,and was roughly synchronous with a marked change in global climate at 4–3 Ma,and intensification of the Asian monsoon.Importantly,the later period of rapid denudation in the study region closely coupled to the mean annual precipitation,while there is no clear evidence for large-scale faulting activity and a
Yong ZhengJinjiang ZhangJiamin WangBo ZhangXiaoxian WangMeng Wang
关键词:喜马拉雅造山带剥蚀速率
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