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27篇 您的检索式:作者名="P.Tapponnier"
    题名 作者 年代 出处 被引量
1青藏高原叶城-狮泉河路线地质特征及区域构造演化显示文摘叶城-狮泉河地质路线位于青藏高原西部,全长1056km,它穿过了西昆仑山和喀喇昆仑山东端。中法两国科学家于1989年7月—8月联合考察了这条路线,根据蛇绿岩、古生物、沉积相、岩浆活动、构造变形及变质作用,将路线经过地段,自北而南分为5个地体及四条蛇绿岩缝合带,这些地体时代自北而南有逐渐变新的趋势。潘裕生 王毅 Ph.Matte P.Tapponnier 1994地质学报1994,68,4:88
2阿尔金断裂带晚第四纪左旋走滑速率及其构造运动转换模式讨论显示文摘在高分辨率SPOT卫星数字影像和大比例尺航片处理、断错地貌制图、野外核实与位移测量基础上,利用宇宙成因核素(^(10)Be,^(26)Al)、碳十四(^(14)C)和热释光(TL)等多种测年手段,厘定了各断错地貌面的形成年龄,得到了阿尔金断裂带不同段落全新世左旋走滑速率:阿克赛以西的中、西段左旋走滑速率可达(17.5±2)mm/a,肃北-石包城段为(11±3.5)mm/a左右,疏勒河口段减少到(4.8±1)mm/a左右,东端宽滩山段仅约(2.2±0.2)mm/a,左旋走滑速率突变点位于阿尔金断裂带中东段存在分支活动逆断层向南东扩展的肃北、石包城和疏勒河等三联点上.矢量分析表明,三联点东、西两侧左旋滑动速率的减少量转换成了阿尔金断裂带中东段南盘北西向活动道断层上的地壳缩短和上盘推覆体抬升,形成了党河南山、大雪山、祁连山等条块山地.因此,青藏高原北部物质向东挤出的速率和幅度是有限的,符合“叠瓦状道冲转换——有限挤出模型”.徐锡伟 P.Tapponnier J.Van Der Woerd F.J.Ryerson 王峰 郑荣章 陈文彬 马文涛 于贵华 陈桂华 A.S.Meriaux 2003中国科学(D辑)2003,33,10:109
3大型走滑断层——碰撞后陆内变形的重要形式显示文摘研究陆内变形是当代大地构造学家最感兴趣的问题之一。然而,人们对陆内地块间的大规模滑移和转动而引起的岩石变形,变质和岩浆活动研究得非常不够。本文以云南西部哀牢山-红河断裂为例,说明陆内大规模韧性变形带的几何学、运动学,以及相关的地质演化过程。钟大赉 P.Tapponnier 吴海威 张连生 嵇少丞 钟嘉猷 刘小汉 U.Schaerer R.Lacassin P.Leloup 1989科学通报1989,34,7:90
4阿尔金断裂带最大累积走滑位移量——900km?显示文摘通过变形构造几何学、岩石学和区域构造对比研究,认为阿尔金断裂西北侧的阿尔金山北缘、南缘近EW走向的蓝片岩-榴辉岩高压变质带、榴辉岩超高压变质带分别与阿尔金断裂东南侧的北祁连山、柴北缘NW—SE/NWW—SEE走向的蓝片岩-榴辉岩高压变质带、榴辉岩超高压变质带相对应,并且,高压变质带与超高压变质带的宽度和走向在断裂两侧存在较大的变化。这种在断裂带中宽度变窄、角度趋于与断裂带走向一致的变化是韧性或韧脆性走滑过程中产生的拖曳构造。因此,阿尔金断裂带走滑过程中存在较大的韧性变形,它的最大累积走滑位移量应由韧性和脆性走滑位移量组成,至少大于500km,小于1000km。另外,拖曳构造的几何特征,以及西昆仑库地北蛇绿岩、阿尔金南缘蛇绿岩和柴北缘蛇绿岩在年龄、岩石组合及地球化学特征方面均具有相似之处,暗示在早古生代时期西昆仑和阿尔金南缘、柴北缘很可能处于相同的构造背景之中,后被阿尔金断裂所切割。因此,综合得出了阿尔金断裂带最大累积左旋走滑位移量为900~1000km。李海兵 许志琴 杨经绥 戚学祥 P.Tapponnier 2007地质通报2007,26,10:37
5阿尔金走滑断陷盆地的确定及其与山脉的关系显示文摘阿尔金断裂带中段发育一种特殊的长条状盆地地貌,其长宽比略大于50.盆地两侧的长边界由直线型具走滑分量的正断裂控制,盆地内分布新生代地层,阿尔金主断裂通过盆地,并在盆地内形成一系列走滑地貌.以盆地为中心两侧为反向的逆冲构造,使盆地两侧的由古老变质岩组成的地质体垂向挤出,构成在盆地两侧且平行于盆地的长条形山体(山脉),这种特殊地貌称之为走滑断陷盆地.该巨型长条状走滑断陷盆地于上新世开始形成,晚更新世时期其地貌特征基本形成,它是阿尔金断裂带走滑变形过程中形成的特殊类型的地貌,是转换挤压作用和隆升作用的共同结果.李海兵 杨经绥 史仁灯 吴才来 P.Tapponnier 万渝生 张建新 孟繁聪 2002科学通报2002,47,1:32
6Geological and chronological evidence of Indo-Chinese strike-slip movement in the Altyn Tagh fault zone显示文摘A set of granitic and amphibole mylonite are exposed in the Altyn Tagh fault zone. The preliminary study shows that these rocks are the product of the syntectonic anatexis in the process of the left-lat- eral strike-slip shear, and are the result of the ductile transpression. There are two types of zircon sorted from the mylonite formed with syn-shear anatexis. Among them, one is the anatectic long co-lumnar zircon and another is the residual metamorphic sub-rounded columnar zircon. Two groups of age for single zircon measured by ion microprobe (SHRIMP) are obtained: one is 461-547 Ma for the sub-rounded columnar residual metamorphic zircon, and the other is 239-244 Ma for the long-columnar anatectic zircon. This type of zircon is direc-tionally spread in rock, and the long axis direction of its crystal is identical to that of stretching lineation, represent-ing the direction of tectonic stress in the process of the strike-slip. 40Ar-39Ar age of the directional growth horn-blende in the same myloniteLI Haibing YANG Jingsui XU Zhiqin WU Cailai WAN Yusheng SHI Rendeng Juhn G.Liou P.Tapponnier Trevor R.Ireland 2002Chinese Science Bulletin2002,47,1:18
7Determination of the Altyn Tagh strike-slip fault basin and its relationship with mountains显示文摘A special extended basin topography is developed in the middle segment of the Altyn Tagh Fault Zone. The ratio of its length to width is over 50. The long boundaries at the two sides of the basin are controlled by the straight normal faults with strike-slip component. Within the basin, the Cenozoic strata are spread. The Altyn Tagh main fault goes through the basin, and a series of strike-slip topography was formed within the basin. The reverse thrust structures were formed at the two sides of the center of the basin, thus making the geological bodies composed of old metamorphic rocks at the two sides of the basin extrude vertically, and forming the extended massif (mountain) at the sides of the basin and parallel to the basin. This special topography was called the strike-slip fault basin. The giant extended strike-slip fault basin began to form during Pliocene, and its topography was basically formed during the late Pleistocene. It is the special topography formed during the strike-slip deformationLi Haibing Yang Jingsui Shi Rendeng Wu Cailai P.Tapponnier Wan Yusheng Zhang Jianxin Meng Fanchong 2002Chinese Science Bulletin2002,47,7:9
8Geology Along the Line from Yecheng to Shiquanhe and Tectonic Evolution of the Region Involved显示文摘The geotraverse from Yecheng to Shiquanhe, on the western Qinghai-Tibet Plateau, totalling 1056 km in length, passes the western Kunlun Mountains and the eastern end of the Karakorum Mountains. The Chinese and French scientists made a joint investigation along the line from July to August, 1989. Based on the outcropped ophiolites, palaeontology, sedimentary facies, magmatism, tectonic deformation and metamorphism, the region involved may be divided from north to south into five terranes and four ophiolitic suture zones. The ages of these terranes have a tendency to become increasingly younger from north to south.Ph.Matte P.Tapponnier 1995Acta Geologica Sinica(English Edition)1995,69,2:4
9利用卫星资料对阿尔金断裂带阿克塞以西进行阶地面对比和位错量分析显示文摘利用高精度的 Spot卫星资料 ,通过详细的地质解译 ,对研究区域内的河流及其形成的河流阶地进行了系统的对比。通过区域对比 ,得到了阿尔金活动断裂带在阿克塞附近的最近一段时期以来的可靠的河流阶地的位错。在研究区域内 ,规模相近的河流形成的同级的河流阶地具有相近的水平位错 ,T3 阶地的水平位错约为 3 80 m,T4 阶地的水平位错约为 1 3 0 0 m,T6阶地的水平位错约为 3 0 0 0 m。王峰 徐锡伟 P.Tapponnier 2001华北地震科学2001,19,4:4
10东秦岭造山带的变形特征及构造演化显示文摘许志琴 卢一伦 汤耀庆 M.Mattauer Ph.Matte J.Malavieille P.Tapponnier H.Maluski 1986地质学报1986,,03:1
11东秦岭造山带的变形特征及构造演化显示文摘许志琴 卢一伦 汤耀庆 M.Mattauer Ph.Matte J.Malavieille P.Tapponnier H.Maluski 1986地质学报1986,,03:1
12东秦岭造山带的变形特征及构造演化显示文摘许志琴 卢一伦 汤耀庆 M.Mattauer Ph.Matte J.Malavieille P.Tapponnier H.Maluski 1986地质学报1986,,03:1
13东秦岭造山带的变形特征及构造演化显示文摘许志琴 卢一伦 汤耀庆 M.Mattauer Ph.Matte J.Malavieille P.Tapponnier H.Maluski 1986地质学报1986,,03:1
14东秦岭造山带的变形特征及构造演化显示文摘许志琴 卢一伦 汤耀庆 M.Mattauer Ph.Matte J.Malavieille P.Tapponnier H.Maluski 1986地质学报1986,,03:1
15东秦岭造山带的变形特征及构造演化显示文摘许志琴 卢一伦 汤耀庆 M.Mattauer Ph.Matte J.Malavieille P.Tapponnier H.Maluski 1986地质学报1986,,03:1
16东秦岭造山带的变形特征及构造演化显示文摘许志琴 卢一伦 汤耀庆 M.Mattauer Ph.Matte J.Malavieille P.Tapponnier H.Maluski 1986地质学报1986,,03:1
17东秦岭造山带的变形特征及构造演化显示文摘许志琴 卢一伦 汤耀庆 M.Mattauer Ph.Matte J.Malavieille P.Tapponnier H.Maluski 1986地质学报1986,,03:1
18东秦岭造山带的变形特征及构造演化显示文摘许志琴 卢一伦 汤耀庆 M.Mattauer Ph.Matte J.Malavieille P.Tapponnier H.Maluski 1986地质学报1986,,03:1
19东秦岭造山带的变形特征及构造演化显示文摘许志琴 卢一伦 汤耀庆 M.Mattauer Ph.Matte J.Malavieille P.Tapponnier H.Maluski 1986地质学报1986,,03:1
20东秦岭造山带的变形特征及构造演化显示文摘许志琴 卢一伦 汤耀庆 M.Mattauer Ph.Matte J.Malavieille P.Tapponnier H.Maluski 1986地质学报1986,,03:1
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