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青藏高原北缘中生代伸展构造^(40)Ar/^(39)Ar测年和MDD模拟 被引量:30
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作者 陈宣华 尹安 +5 位作者 George E.Gehrels 王小凤 Eric S.Cowgill Marty Grove T.Mark Harrison 陈正乐 《地球学报》 EI CAS CSCD 北大核心 2002年第4期305-310,共6页
沿着青藏高原北缘的阿尔金山脉东段 ,发育了长度大于 30 0km、EW走向的拉配泉断裂。中美合作阿尔金课题组的地质填图结果表明 ,该断层实际上是一条南倾的正断层 ,局部倾角可以低至 30°以下。沉积学和热年代学研究控制了拉配泉断裂... 沿着青藏高原北缘的阿尔金山脉东段 ,发育了长度大于 30 0km、EW走向的拉配泉断裂。中美合作阿尔金课题组的地质填图结果表明 ,该断层实际上是一条南倾的正断层 ,局部倾角可以低至 30°以下。沉积学和热年代学研究控制了拉配泉断裂的活动时代 :早—中侏罗统地层可以解释为断裂上盘的伸展盆地沉积 ;下盘岩石中钾长石40 Ar/ 3 9Ar测年和MDD模拟给出 2个阶段的冷却事件 ,早期事件出现在约 2 2 0~ 187Ma之间 ,晚期事件出现在早白垩世晚期 (约 10 0Ma)。早期事件代表了拉配泉断裂正断作用的主要阶段。 展开更多
关键词 青藏高原 阿尔金山 拉配泉断裂 ^40Ar/^39Ar测年 MDD模拟 氩同位素 中生代
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阿尔金山区域热演化历史的初步研究 被引量:8
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作者 陈宣华 尹安 +6 位作者 高荐 George E.GEHRELS 陈正乐 王小凤 Eric S.COWGILL Marty GROVE T.Mark HARRISON 《地质论评》 CAS CSCD 北大核心 2002年第S1期146-152,共7页
通过地质年龄数据的综合分析,本文探讨了阿尔金山地区自元古宙以来的区域热演化历史。其中,本区自古太古代以来具有多期岩浆活动,其主要活动时期为早古生代晚期(490~385 Ma),高峰期年龄为442Ma左右。同时,具有新元古代、早古生代、中... 通过地质年龄数据的综合分析,本文探讨了阿尔金山地区自元古宙以来的区域热演化历史。其中,本区自古太古代以来具有多期岩浆活动,其主要活动时期为早古生代晚期(490~385 Ma),高峰期年龄为442Ma左右。同时,具有新元古代、早古生代、中生代和新生代4次地壳抬升和冷却事件。其中中生代冷却事件启动时间与阿尔金北缘伸展作用早期活动时间相一致;新生代事件出现在7 Ma左右,与青藏高原隆升具有密切关系。 展开更多
关键词 阿尔金山 热年代学 演化阶段
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柴达木盆地新生代演化及其构造重建——基于地震剖面的解释 被引量:40
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作者 尹安 党玉琪 +7 位作者 陈宣华 汪立群 蒋武明 蒋荣宝 王小凤 周苏平 刘明德 马立协 《地质力学学报》 CSCD 2007年第3期193-211,共19页
柴达木盆地是青藏高原内部最大的坳陷。柴达木盆地构造成因的研究,可以揭示青藏高原形成机制和生长历史。本文分析了柴达木盆地区域地震勘探剖面,得到如下认识:柴达木盆地一级构造为新生代宽缓复向斜,其振幅和半波长分别从柴西的〉1... 柴达木盆地是青藏高原内部最大的坳陷。柴达木盆地构造成因的研究,可以揭示青藏高原形成机制和生长历史。本文分析了柴达木盆地区域地震勘探剖面,得到如下认识:柴达木盆地一级构造为新生代宽缓复向斜,其振幅和半波长分别从柴西的〉16km和~170km变化为柴东的〈4km和~50km。褶皱首先在柴西贴近阿尔金断裂附近形成(65~50.5Ma),并向柴东扩展(23.3Ma)。复向斜的形成与较老的柴北缘逆冲断层系(65~50.5Ma)和较年轻的柴南缘逆冲断层系(35.5~23.3Ma)有关。盆地内部新生代上地壳缩短作用,由柴西的〉48%,向柴东减小到〈1%,说明在柴西和柴东之间,存在地壳加厚机制的渐进转换:柴西主要为上地壳缩短,柴东主要为下地壳缩短。 展开更多
关键词 地震反射剖面 构造重建 新生代 柴达木盆地
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Nd isotopic compositions of the Tethyan Himalayan Sequence in southeastern Tibet 被引量:19
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作者 DAI JinGen YIN An +1 位作者 LIU WenCan WANG ChengShan 《Science China Earth Sciences》 SCIE EI CAS 2008年第9期1306-1316,共11页
The Himalayan orogen consists of three major lithologic units that are separated by two major north-dipping faults: the Lesser Himalayan Sequence (LHS) below the Main Central Thrust (MCT), the Greater Himalayan Crysta... The Himalayan orogen consists of three major lithologic units that are separated by two major north-dipping faults: the Lesser Himalayan Sequence (LHS) below the Main Central Thrust (MCT), the Greater Himalayan Crystalline Complex (GHC) above the MCT, and the Tethyan Himalayan Sequence (THS) juxtaposed by the South Tibet Detachment fault (STD) over the GHC. Due to widespread meta-morphism and intense deformation, differentiating the above three lithologic units is often difficult. This problem has been overcome by the use of Sm-Nd isotopic analysis. The previous studies suggested that the LHS can be clearly distinguished from the GHC and THS by their Nd isotope compositions. However, the lack of detailed and systematic Sm-Nd isotopic studies of the THS across the Himalaya in general has made differentiation of this unit from the nearby GHC impossible, as the two appear to share overlapping Nd compositions and model ages. To address this problem, we systematically sam-pled and analyzed Nd isotopes of the THS in southeastern Tibet directly north of Bhutan. Our study identifies two distinctive fields in a εNd -TDM plot. The first is defined by the εNd(210 Ma) values of -3.45 to -7.34 and TDM values of 1.15 to 1.29 Ga from a Late Triassic turbidite sequence, which are broadly similar to those obtained from the Lhasa block. The second field is derived from the Early Cretaceous meta-sedimentary rocks with εNd(130 Ma) values from -15.24 to -16.61 and TDM values from 1.63 to 2.00 Ga; these values are similar to those obtained from the Greater Himalayan Crystalline Complex in Bhutan directly south of our sampling traverse, which has εNd(130 Ma) values of -10.89 to -16.32 and Nd model ages (TDM) of 1.73 to 2.20 Ga. From the above observations, we suggest that the Late Triassic strata of the southeast Tibetan THS were derived from the Lhasa block in the north, while the Early Cretaceous strata of the THS were derived from a source similar to the High Himalayan Crystalline Complex or Indian craton in the south. Our interpretation is consistent with the existing palaeocurrent data and provenance analysis of the Late Triassic strata in southeastern Tibet, which indicate the sediments derived from a northern source. Thus, we suggest that the Lhasa terrane and the Indian craton were close to one another in the Late Triassic and were separated by a rift valley across which a large submarine fan was transported southward and deposited on the future northern margin of the Indian continent. 展开更多
关键词 HIMALAYAN OROGEN SM-ND isotopic systematics Greater HIMALAYAN Crystalline Complex TETHYAN Himalaya SEQUENCE Lhasa ter- rane Indian CRATON
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