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1.
2008汶川地震之后,多个研究组对龙门山的新生代剥蚀历史进行了研究,但是在龙门山推覆构造带中段,剥蚀历史研究主要集中在彭灌杂岩,而彭灌杂岩东侧(即中央断裂下盘)的热年代学资料相对缺乏,其剥蚀历史还比较模糊.对于彭灌杂岩东侧岩体的新生代剥蚀历史研究,不仅可以了解龙门山推覆构造带的新生代断层活动历史,而且对于青藏高原东缘的新生代隆升机制具有重要约束作用.在前人热年代学研究基础上,在龙门山推覆构造带中段中央断裂和前山断裂附近补充了一些裂变径迹样品.采用外探测器法(external detector method)对样品进行裂变径迹分析,实验测试在台湾中正大学裂变径迹实验室完成.实验获得了6个锆石裂变径迹和6个磷灰石裂变径迹年龄.前山断裂上盘,AFT(磷灰石裂变径迹)年龄以小鱼洞断裂为界存在明显的差异,其中小鱼洞断裂以南的样品AFT年龄为39Ma,小鱼洞断裂以北的4个AFT年龄介于6—8 Ma之间.研究揭示出中央断裂和前山断裂的新生代活动性以NW向小鱼洞断裂为界存在较大差异:距今8Ma以来,小鱼洞断裂以北,中央断裂和前山断裂的平均垂向滑动速率分别为约0.1mm·a-1和约0.55mm·a-1;小鱼洞断裂以南,平均垂向滑动速率则分别为约0.55mm·a-1和约0.1mm·a-1.低温热年代学方法获得的断层新生代垂向滑动速率与汶川地震断层垂向同震位移分布基本一致.前山断裂(小鱼洞断裂以北)距今8 Ma以来北西-南东向水平缩短量达到8~12km,表明地壳缩短是造成龙门山抬升和剥蚀的重要因素之一.本研究结论不支持下地壳增厚模型对于龙门山隆升的解释.  相似文献   

2.
鄂尔多斯盆地东南缘处于渭北隆起、晋西挠褶带和东秦岭造山带的转折地带,构造位置独特,演化历史复杂.本文选取东缘韩城地区和南缘东秦岭洛南地区上三叠统延长组为研究对象,采集6件砂岩样品进行锆石、磷灰石裂变径迹分析,对关键构造-热事件提供热年代学约束,恢复盆地东南缘不同构造带的热演化史,深化对盆地东南部油气资源赋存条件的认识,以期实现油气勘探的新突破.研究表明韩城和洛南地区的抬升冷却史存在明显差异.磷灰石裂变径迹年龄表现为从南到北减小的趋势.东缘韩城剖面磷灰石裂变径迹记录51.6~66.3 Ma、33 Ma两次抬升冷却的峰值年龄.南缘洛南剖面锆石裂变径迹年龄和磷灰石裂变径迹年龄分别记录89~106 Ma和59~66 Ma的冷却抬升年龄.洛南地区抬升冷却时间较早,剥蚀速率(106m/Ma)大于韩城地区(68m/Ma),且持续时间长.磷灰石裂变径迹(Apatite Fission Track,AFT)热史模拟显示,晚中生代,受燕山运动的影响,东秦岭地区发生强烈的构造岩浆事件,洛南地区热演化程度明显高于韩城地区.洛南剖面的热演化主要受岩浆活动的控制,韩城剖面为埋藏增温型.鄂尔多斯盆地东南缘的裂变径迹年龄格局基本受控于白垩纪以来的抬升冷却事件.  相似文献   

3.
通过对磷灰石裂变径迹(AFT)数据系统的对比,本文从整体上分析了中、上扬子区块各地质单元在晚中生代、新生带抬升冷却特征,并初步构建了区域上中-新生代构造活动与内陆变形的时空关系.它们的构造活动在空间上具有分区性和连续性特征,在时间上具有幕式性特征.空间上的分区性与连续性主要表现在各地质单元隆升特征的差异性,即中扬子北缘江汉盆地、黄陵隆起最早开始冷却到大巴山逆冲带、米仓山-汉南隆起晚侏罗世自北(东)向南(西)的隆升与江南-雪峰山隆起、湘鄂西褶皱带、川东褶皱带及川东北地区自南东向北西依次递进逆冲褶皱变形的差异;构造活动时间上的幕式特征主要表现在阶段性的快速冷却及其相间的缓慢冷却过程.中、上扬子北缘大巴山逆冲带、米仓山-汉南隆起磷灰石裂变径迹年龄从北(东)向南(西)逐渐变小,它们在晚中生代、新生代处于秦岭-大别造山带向扬子地块逆冲挤压变形的动力学背景;而湘鄂西褶皱带、川东褶皱带及川东北地区磷灰石裂变径迹年龄自南东向北西方向减小的趋势主要受控于太平洋板块的俯冲挤压效应.中、上扬子喜山晚期的快速冷却主要是青藏高原隆升及其向东与南东方向构造逃逸挤压作用及亚洲季风等气候变化的响应.磷灰石裂变径迹的系统分析为中、上扬子递进扩展构造变形提供了年代学约束.  相似文献   

4.
热演化历史的研究对于盆地分析和油气勘探具有重要意义.北黄海盆地是中国近海海域油气勘探程度较低的盆地之一,迄今未见专门的热演化研究报道.笔者利用北黄海盆地中生代砂岩的磷灰石裂变径迹分析结果,结合地质条件约束,模拟获得了中生代以来盆地的热演化史.结果表明,北黄海盆地经历了两次增温和两次冷却的热演化过程,并在100-80 Ma时盆地的热历史出现明显变化,表明在晚白垩世北黄海盆地发生过一次较大的构造-热事件.磷灰石裂变径迹分析所表明的北黄海盆地的热历史与盆地原型演化阶段相对应,而这种热历史和盆地的演化过程与区域构造背景相关.磷灰石裂变径迹所揭示的热演化史对于深化认识北黄海盆地的地质演化过程和油气勘探潜力具有重要意义.  相似文献   

5.
青藏高原东部边界扩展过程的磷灰石裂变径迹热历史制约   总被引:7,自引:0,他引:7  
运用裂变径迹年代学方法对藏东甘孜-理塘、龙门山逆冲断裂带及甘孜、理塘走滑断裂上主要花岗岩体样品中的磷灰石进行分析, 取得了测试样品的表观年龄. 并且运用模拟退火法对所有样品进行了热历史模拟, 获得了样品的热演化史, 从而对甘孜-理塘、龙门山逆冲断裂带的活动历史进行分析和解释. 前期活动主要反映在甘孜-理塘逆冲断裂带上, 为中新世早期20~16 Ma; 后期活动主要发生在龙门山断裂带上, 为~5 Ma以来. 裂变径迹结果指示青藏高原的东部边界是分步向外扩展的, 即上部地壳通过走滑断裂及与之相联的逆冲断裂联合作用, 在中新世形成甘孜-理塘边界, 在5 Ma迁移到龙门山边界. 藏东不同阶段的变形被内部的逆冲断裂所吸收, 不存在数百公里级的长距离走滑挤出构造事件.  相似文献   

6.
用裂变径迹法研究断层活动年龄的初步探讨   总被引:5,自引:0,他引:5       下载免费PDF全文
裂变径迹年代测定是研究断层活动年龄的新方法,它基于磷灰石中裂变径迹的退火效应。本文报导了取自郯庐断裂带等地区12个磷灰石和一个榍石的裂变径迹年龄,结果表明,在断裂带中磷灰石裂变径迹的退火效应非常明显,效应随离断层带的距离增加而减弱。结合断层带的活动特点和原岩的年龄,对断层带中磷灰石裂变径迹年龄的解释及今后的研究方向作了探讨  相似文献   

7.
报道了米仓山-汉南穹窿一带磷灰石裂变径迹分析结果,以制约该区白垩纪以来的剥蚀-演化历史.露头样品磷灰石裂变径迹年龄分布显示从汉南穹窿南部的核部地区向南至四川盆地北部裂变径迹的年龄逐渐变新,这与米仓山地区逆冲断裂以背驮式扩展的构造样式从汉南穹窿向南经米仓山褶皱-逆冲带发育到四川盆地北缘的构造模式相吻合.热模拟的结果显示米仓山-汉南穹窿经历了两期快速的剥蚀,其分别发生在白垩纪(约90 Ma之前)和15 Ma以来.研究区白垩纪的快速剥蚀反映了秦岭-大别造山带白垩纪的区域性剥蚀事件,这可能是对临区诸多构造事件(如西伯利亚-蒙古-中朝板块的碰撞,拉萨-羌塘-思茅-印支块体的碰撞,太平洋板块向欧亚板块的俯冲及其相关的岩浆活动)远场效应的响应;约15 Ma以来的快速剥蚀是对青藏高原隆升向东北方向传递的响应.  相似文献   

8.
在利用磷灰石裂变径迹热年代学方法来约束岩体冷却史的应用中,由于地质条件和磷灰石退火性质的限制,表观年龄往往不能直接代表特定地质事件的时间.利用封闭径迹的长度直方图模式和高程-年龄模式可定性地反映出岩体冷却史是否遭受过干扰.平均径迹长度-年龄(或香蕉图)模式、径迹年龄谱模式以及反演模拟在某种程度上可用来限定地质过程中冷却启动的时间.然而,对于多阶段的冷却史,模式和模拟分析的不确定性仍较显著,对早期时限的定量揭示仍是研究和应用中的一个难点.只有结合多种方法、模式和模拟的运用并考虑地质背景才能较清晰地约束岩体的冷却历史.  相似文献   

9.
利用磷灰石与锆石(U-Th)/He年龄与磷灰石裂变径迹(AFT)、镜质组反射率(Ro)一起模拟了鄂西渝东方斗山-石柱褶皱带侏罗纪以来的构造-热演化特征.结果表明:在约130 Ma(晚侏罗世-早白垩世)研究区达到最高古地温,此后为持续抬升冷却过程.磷灰石裂变径迹与Ro表明自晚侏罗世以来不整合面剥蚀厚度可达3500m.结合...  相似文献   

10.
红河断裂带后期大型右旋走滑运动在地质上表现为: 北段-滇西北的正断裂陷南东向伸展变形和中南段的右旋剪切断错. 通过对剑川、弥渡东南、元江、元阳等典型断裂段中新世以来地层变形与断裂活动关系的研究, 认为红河断裂带于中新世以来有过2期正断剪切为主的断裂右旋活动. 对采自上述典型断裂段内与断裂右旋剪切活动相关的样品进行了磷灰石裂变径迹测年(简称FT测年, 下同), 同时以所测单颗粒年龄及围限径迹长度, 选择Laslet退火模式完成样品所经热历史的反演计算得出: 断裂带在(5.5±1.5)和(2.1±0.8) MaBP, 有过2次明显的断层剪切错动. 断裂中南段元江-元阳—带在3.6~3.8 MaBP及1.6~2.3 MaBP发育2期山体快速隆升, 这与红河断裂中新世末以来存在上述二次右旋正断位错事件相对应.  相似文献   

11.
中上扬子地区印支期以来抬升剥蚀时限的确定   总被引:5,自引:2,他引:3       下载免费PDF全文
采用磷灰石裂变径迹年龄空间分布特征定性分析与径迹长度分布数据定量模拟相结合,约束了中上扬子地区的抬升剥蚀时限.江汉盆地在157~97Ma和10 Ma以来发生了两期大规模抬升剥蚀;湘鄂西-武陵地区、黔中隆起自137Ma开始持续抬升剥蚀;鄂西渝东、川东褶皱带从97 Ma开始持续抬升剥蚀;川东北和川中地区于56 Ma才开始遭受抬升剥蚀;川西-滇西地区则自23 Ma以来经历了较大规模的抬升剥蚀.印支期以来,中上扬子不同地区抬升剥蚀开始的时间存在明显差异性,总体上由东往西逐渐变晚.齐岳山断裂带以东,大规模抬升剥蚀始于中燕山期(J3-K1);齐岳山断裂与华蓥山断裂带之间的川东高陡背斜带抬升剥蚀始于晚燕山期(K2);华蓥山断裂与龙泉山断裂之间的川中和缓褶皱带晚期抬升剥蚀始于喜马拉雅早期(E);龙泉山断裂带以西的川西凹陷晚期抬升剥蚀始于喜马拉雅晚期(N).  相似文献   

12.
Absolute uplift rates, regional uplift patterns, and time limits for uplift and fault movements can be studied with fission tracks in apatite. This is demonstrated for about 50 apatites from the Swiss and Italian Alps. Due to the relatively low thermal stability of tracks in apatite, the fission track ages of apatites from this area define the time when these rocks cooled down to temperatures to 125 ± 20°C.  相似文献   

13.
The Xigaze fore-arc basin is adjacent to the Indian plate and Eurasia collision zone. Understanding the erosion history of the Xigaze fore-arc basin is significant for realizing the impact of the orogenic belt due to the collision between the Indian plate and the Eurasian plate. The different uplift patterns of the plateau will form different denudation characteristics. If all part of Tibet Plateau uplifted at the same time, the erosion rate of exterior Tibet Plateau will be much larger than the interior plateau due to the active tectonic action, relief, and outflow system at the edge. If the plateau grows from the inside to the outside or from the north to south sides, the strong erosion zone will gradually change along the tectonic active zone that expands to the outward, north, or south sides. Therefore, the different uplift patterns are likely to retain corresponding evidence on the erosion information. The Xigaze fore-arc basin is adjacent to the Yarlung Zangbo suture zone. Its burial, deformation and erosion history during or after the collision between the Indian plate and Eurasia are very important to understand the influence of plateau uplift on erosion. In this study, we use the apatite fission track(AFT)ages and zircon and apatite(U-Th)/He(ZHe and AHe)ages, combined with the published low-temperature thermochronological age to explore the thermal evolution process of the Xigaze fore-arc basin. The samples' elevation is in the range of 3 860~4 070m. All zircon and apatite samples were dated by the external detector method, using low~U mica sheets as external detectors for fission track ages. A Zeiss Axioskop microscope(1 250×, dry)and FT Stage 4.04 system at the Fission Track Laboratory of the University of Waikato in New Zealand were used to carry out fission track counting. We crushed our samples finely, and then used standard heavy liquid and magnetic separation with additional handpicking methods to select zircon and apatite grains. The new results show that the ZHe age of the sample M7-01 is(27.06±2.55)Ma(Table 2), and the corresponding AHe age is(9.25±0.76)Ma. The ZHe and AHe ages are significantly smaller than the stratigraphic age, indicating suffering from annealing reset(Table 3). The fission apatite fission track ages are between(74.1±7.8)Ma and(18.7±2.9)Ma, which are less than the corresponding stratigraphic age. The maximum AFT age is(74.1±7.8)Ma, and the minimum AFT age is(18.7±2.9)Ma. There is a significant north~south difference in the apatite fission track ages of the Xigaze fore-arc basin. The apatite fission track ages of the south part are 74~44Ma, the corresponding exhumation rate is 0.03~0.1km/Ma, and the denudation is less than 2km; the apatite fission track ages of the north part range from 27 to 15Ma and the ablation rate is 0.09~0.29km/Ma, but it lacks the exhumation information of the early Cenozoic. The apatite(U-Th)/He age indicates that the north~south Xigaze fore-arc basin has a consistent exhumation history after 15Ma. The results of low temperature thermochronology show that exhumation histories are different between the northern and southern Xigaze fore-arc basin. From 70 to 60Ma, the southern Xigaze fore-arc basin has been maintained in the depth of 0~6km in the near surface, and has not been eroded or buried beyond this depth. The denudation is less than the north. The low-temperature thermochronological data of the northern part only record the exhumation history after 30Ma because of the young low-temperature thermochronological data. During early Early Miocene, the rapid erosion in the northern part of Xigaze fore-arc basin may be related to the river incision of the paleo-Yarlungzangbo River. The impact of Great Count Thrust on regional erosion is limited. The AHe data shows that the exhumation history of the north-south Xigaze fore-arc basin are consistent after 15Ma. In addition, the low-temperature thermochronological data of the northern Xigaze fore-arc basin constrains geographic range of the Kailas conglomerate during the late Oligocene~Miocene along the Yarlung Zangbo suture zone. The Kailas Basin only develops in the narrow, elongated zone between the fore-arc basin and the Gangdese orogenic belt. The southern part of the Xigaze fore-arc basin has been uplifted from the sea level to the plateau at an altitude of 4.2km, despite the collision of the Indian plate with the Eurasian continent and the late fault activity, but the plateau has been slowly denuded since the early Cenozoic. The rise did not directly contribute to the accelerated erosion in the area, which is inconsistent with the assumption that rapid erosion means that the orogenic belt begins to rise.  相似文献   

14.
Fission track analysis of apatites from basement rocks of the Wright Valley in southern Victoria Land provides information about the timing, the amount and hence the rate of uplift of the Transantarctic Mountains in this area. Apatite ages increase systematically with elevation, and a pronounced break in the age versus elevation profile has been recognised at about 800 m on Mt. Doorly near the mouth of Wright Valley. The apatite age of about 50 Ma at this point approximates the time at which uplift of the mountain range began. Samples lying above the break in slope lay within the apatite fission track annealing zone prior to uplift, during a Cretaceous to Early Cenozoic period of relative thermal and tectonic stability. At the lower elevations samples had a zero apatite fission track age before the onset of rapid uplift and have track length distributions indicating rapid cooling. Some 4.8–5.3 km of uplift are estimated to have occurred at an average rate of about 100 ± 5m/Ma since uplift began. From the total stratigraphic thickness known above the uplifted apatite annealing zone it can be estimated that the Late Cretaceous/Early Cenozoic thermal gradient in the area was about 25–30°C/km.The occurrence and pattern of differential uplift across the Transantarctic Mountains can be estimated from the vertical offsets of different apatite fission track age profiles sampled across the range. These show the structure of the mountain range to be that of a large tilt block, dipping gently to the west under the polar ice-cap and bounded by a major fault zone on its eastern side. Offset dolerite sills at Mt. Doorly show the mountain front to be step-faulted by 1000 m or more down to the McMurdo Sound coast from an axis of maximum uplift just inland from Mt. Doorly.  相似文献   

15.
Tectonically,the large-scale right-lateral strike-slip movement along the Red River fault zone is characterized at its late phase with the southeastward extension and deformation of the Northwestern Yunnan normal fault depression on its northern segment,and the dextral shear displacement on its central-southern segment.Research of the relations between stratum deformation and fault movement on the typical fault segments,such as Jianchuan,southeast Midu,Yuanjiang River,Yuanyang,etc.since the Miocene Epoch shows that there are two times dextral faulting dominated by normal shearing occurring along the Red River fault zone since the Miocene Epoch.The fission track dating (abbreviated to FT dating,the same below) is conducted on apatite samples collected from the above fault segments and relating to these movements.Based on the measured single grain's age and the confined track length,we choose the Laslet annealing model to retrieve the thermal history of the samples,and the results show that the fault zone experienced two times obvious shear displacement,one in 5.5 ±1.5 MaBP and the other in 2.1±0.8 MaBP.The central-southern segment sees two intensive uplifts of mountain mass in the Yuanjiang River-Yuanyang region at 3.6-3.8 MaBP and 1.6-2.3 MaBP,which correspond to the above-mentioned two dextral normal displacement events since the late Miocene Epoch.  相似文献   

16.
磷灰石裂变径迹退火动力学模型研究进展综述   总被引:4,自引:2,他引:4  
裂变径迹退火过程是非线性动力学过程,在一系列磷灰石裂变径迹室内退火实验基础上,研究者提出许多经验退火模型,其中扇型模型与实验数据拟合最好,多组分退火模型将扇型模型的应用扩展到复杂物源成分的磷灰石,理论物理退火模型建立在原子尺度动力机制上,并经由实验数据确定具物理意义的未知参数,目前还不如经验模型成功,室内退火实验表明除了温度、受热时间,退火行为与磷灰石的化学成分,径迹与结晶c轴的方位关系、由Dpar定量表征的颗粒溶蚀度等因素有密切关系。  相似文献   

17.
鲜水河断裂是青藏高原东南缘的一条北西向大型左旋走滑断裂,其南东段逐渐向南偏转,并与近南北向的安宁河断裂相接,在两个断裂相接处西侧耸立着海拔7556 m高的贡嘎山.磷灰石裂变径迹(AFT)测试可知,贡嘎山及其邻区12个样品的年龄分布在0.2±0.1 Ma~2.7±0.7 Ma之间,平均径迹长度在13.64~15.19 μm之间,表明贡嘎山及其邻区第四纪时期一直处于快速剥蚀状态.结合前人在此地区的低温热年代研究成果,揭示出两个现象:(1)贡嘎山岩体及鲜水河断裂与龙门山断裂所夹的三角区域为快速隆升区域,而其西侧、北侧的高原腹地的隆升速率远低于这两个区域;(2)贡嘎山岩体从北向南隆升速率逐渐变大,其最南端1 Ma以来的隆升速率超过3.3±0.8 mm/a.这些现象表明青藏高原在整体横向挤出、缓慢隆升的基础上,还存在着一些特殊的局部快速隆升区域.通过对川滇地块水平运动的矢量分解,我们认为贡嘎山花岗岩体是鲜水河断裂至安宁河断裂间挤压弯曲段吸收、转换川滇地块南东向水平运动导致局部快速隆升的产物,在这一过程中,由于垂直于断裂的挤压分量从北到南逐渐增大,导致了岩体从北往南的隆升速率逐渐增大.  相似文献   

18.
Tectonically, the large-scale right-lateral strike-slip movement along the Red River fault zone is char-acterized at its late phase with the southeastward extension and deformation of the Northwestern Yunnan normal fault depression on its northern segment, and the dextral shear displacement on its central-southern segment. Research of the relations between stratum deformation and fault movement on the typical fault segments, such as Jianchuan, southeast Midu, Yuanjiang River, Yuanyang, etc. since the Miocene Epoch shows that there are two times dextral faulting dominated by normal shearing occurring along the Red River fault zone since the Miocene Epoch. The fission track dating (abbrevi-ated to FT dating, the same below) is conducted on apatite samples collected from the above fault segments and relating to these movements. Based on the measured single grain’s age and the con-fined track length, we choose the Laslet annealing model to retrieve the thermal history of the samples, and the results show that the fault zone experienced two times obvious shear displacement, one in 5.5 ± 1.5 MaBP and the other in 2.1± 0.8 MaBP. The central-southern segment sees two intensive uplifts of mountain mass in the Yuanjiang River-Yuanyang region at 3.6―3.8 MaBP and 1.6―2.3 MaBP, which correspond to the above-mentioned two dextral normal displacement events since the late Miocene Epoch.  相似文献   

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