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11.
周丽云  王瑜  王娜 《地质通报》2015,34(203):400-418
分布于中国东北完达山地区的饶河花岗岩岩体中暗色矿物和斑晶钾长石定向排列,呈北北东走向,其中透镜状闪长质捕掳体近水平排列,局部具有左行剪切的特点。岩体中发育石香肠状石英脉,表明岩体在侵位过程中受到左行剪切作用的影响或制约。对出露的花岗岩进行LA-ICP-MS锆石U-Pb定年,获得年龄121±1Ma和119±1Ma,表明该岩浆流动形成于早白垩世。同时对围岩辉长岩、侵入岩体中的正长岩脉和辉绿岩脉进行锆石U-Pb年龄分析,分别获得160±1Ma、109±2Ma、124±1Ma的年龄结果。根据各样品中继承锆石的特征,围岩辉长岩的年龄数据很集中,不存在古老锆石的年龄信息。岩浆流动岩体及岩脉中都有太古宙、元古宙等各时代的锆石年龄数据,可能表明完达山地区在约120Ma之前已完成古太平洋板块的俯冲拼贴,饶河岩体形成于走滑环境下的陆内变形,为同构造侵入岩。  相似文献   
12.
Qilian Shan and Hexi Corridor, located in the north of Tibetan plateau, are the margin of Tibetan plateau's tectonic deformation and pushing. Its internal deformations and activities can greatly conserve the extension process and characteristics of the Plateau. The research of Qilian Shan and Hexi Corridor consequentially plays a significant role in understanding tectonic deformation mechanism of Tibetan plateau. The northern Yumushan Fault, located in the middle of the northern Qilian Shan thrust belt, is a significant component of Qilian Shan thrust belt which divides Yumushan and intramontane basins in Hexi Corridor. Carrying out the research of Yumushan Fault will help explain the kinematics characteristics of the northern Yumushan active fault and its response to the northeastward growth of the Tibetan plateau.Because of limited technology conditions of the time, different research emphases and some other reasons, previous research results differ dramatically. This paper summarizes the last 20 years researches from the perspectives of fault slip rates, paleao-earthquake characteristics and tectonic deformation. Using aerial-photo morphological analysis, field investigation, optical simulated luminescence(OSL)dating of alluvial surfaces and topographic profiles, we calculate the vertical slip rate and strike-slip rate at the typical site in the northern Yumushan Fault, which is(0.55±0.15)mm/a and(0.95±0.11), respectively. On the controversial problems, namely "the Luotuo(Camel)city scarp" and the 180 A.D. Biaoshi earthquake, we use aerial-photo analysis, particular field investigation and typical profile dating. We concluded that "Luotuo city scarp" is the ruin of ancient diversion works rather than the fault scarp of the 180 A.D. Biaoshi earthquake. Combining the topographic profiles of the mountain range with fault characteristics, we believe Yumu Shan is a part of Qilian Shan. The uplift of Yumu Shan is the result of Qilian Shan and Yumu Shan itself pushing northwards. Topographic profile along the crest of the Yumu Shan illustrates the decrease from its center to the tips, which is similar to the vertical slip rates and the height of fault scarp. These show that Yumu Shan is controlled by fault extension and grows laterally and vertically. At present, fault activities are still concentrated near the north foot of Yumu Shan, and the mountain ranges continue to rise since late Cenozoic.  相似文献   
13.
The Yilan‐Yitong Fault Zone (YYFZ) is considered to be the key branch of the Tancheng‐Lujiang Fault Zone (TLFZ) in northeastern China. Although the Mesozoic and early Cenozoic deformation of the YYFZ has been studied intensively over the past century, few estimates of slip rate and recurrence interval of large earthquakes in the late Quaternary, which are the two most important parameters for understanding the potential seismic hazard of this crucial structure, were obtained. Based on integrated interpretations of high resolution satellite images and detailed geologic and geomorphic mapping, linear landforms were identified, including fault scarps and troughs, along the Shangzhi segment of the YYFZ, which exceeds 25 km in length. Synthesized results of trench excavations and differential GPS measurements of terrace surfaces indicate that two events (E1, E2) occurred along the Shangzhi segment during the late Holocene, which resulted in 3.2 ±0.1 m of total vertical co‐seismic displacement with clear features of thrust motion. 14C dating of samples suggests that event E1 occurred between 440 ±30 years BP and 180 ±30 years BP and that event E2 occurred between 4 090 ±30 years BP and 3 880 ±30 years BP, which indicates that the minimum vertical slip rate of the Shangzhi segment of the YYFZ has been approximately 0.8 ±0.03 mm/year during the late Holocene. Constraints from paleo events and the slip rate suggest that the average recurrence interval of major earthquakes on the YYFZ is 3 800 ±200 years. Historical documents in Korea show that event E1 possibly corresponds to the earthquake that occurred in AD 1810 (the Qing Dynasty in Chinese history) in the Ningguta area, which had surface‐wave magnitude (Ms) of 6.8–7.5. Studies of kinematics show that the right‐lateral strike‐slip with a reverse component has been dominant along the YYFZ during the late Holocene.  相似文献   
14.
石榴石 Sm Nd 等时线法是近年来常用于较新年龄的测年方法。腾冲地块西缘新近发现的基性麻粒岩中石榴石和全岩的 Sm Nd 等时线年龄为 17~25 Ma, 是该麻粒岩经受后期变形变质作用的年龄, 与区内右旋走滑断裂活动时限相一致,为确证腾冲地区的右旋走滑断裂是印支地块逸出的西部边界提供了 Sm Nd 等时线方法的年龄约束。并推断石榴石 Sm Nd 体系的封闭温度较低, 应低于那邦变质基性岩晚期变质作用的640℃~720℃。  相似文献   
15.
Regional Fault Systems of Qaidam Basin and Adjacent Orogenic Belts   总被引:4,自引:0,他引:4  
The purpose of this paper is to analyze the regional fault systems of Qaidam basin and ad-jacent orogenic belts. Field investigation and seismic interpretation indicate that five regional fault sys-tans occurred in the Qaidam and adjacent nment.qin belts, controlling the development and evolution of the Qaidam basin. These fault systems are: (1)north Qaidam-Qilian Mountain fault system; (2) south Qaidam-East Kunhm Mountain fault system;(3)Altun strike-slip fault system; (4) Elashan strike-slip fault system, and (5) Gansen-Xiaochaidan fault system. It is indicated that the fault systems controlled the orientation of the Qaidam basin, the formation and distribution of secondary faults within the basin,the migration of depocenters and the distribution of hydrocarbon accmnulation belt.  相似文献   
16.
地震剖面解释中尚无走滑断层旋向的直接判别标志,本文提出了一个在地震剖面解释中直接判断走滑断层旋向的模型。该模型假定断层作用前既存的某个地层厚度有变化,则垂直或斜交地层厚度变化方向的走滑断层必定在穿过断层的地震剖面中两盘地层厚度不等。确定了地层厚度变化方向,又测定了剖面中两盘地层厚度,则走滑断层的旋向就可以唯一地确定下来。穿过塔里木盆地东部阿拉干北右行走滑断层的地震剖面资料证实了这一模型的适用性。  相似文献   
17.
由于地基材料的非线性,采用传统的叠加法计算地基承载力会带来误差。基于无重土地基破坏模式的承载力系数不适用于考虑地基土重的情况,这是采用叠加法计算地基承载力会产生误差的主要原因。基于滑移线法,分析了由叠加法所带来误差的变化规律,并计算了能有效减小或完全消除该误差的承载力系数。研究表明:采用传统的叠加法计算得出的地基承载力是偏低的,且误差随地基土内摩擦角的增加而增加,随黏聚力的增加而减小。采用考虑土重影响的承载力系数计算地基承载力,能有效减小或完全消除叠加法所带来的误差。  相似文献   
18.
为研究依兰—伊通断裂带黑龙江段构造运动特征,基于2016—2019年GPS和地质资料,解算了该断裂的三维速度场,通过构建断层模型反演了滑动速率。结果显示:依兰—伊通断裂带黑龙江段总体呈下沉趋势,沉降速率在1~2 mm/a,断裂呈右旋走滑态势,闭锁层15 km以下走滑速率为(1.7±0.4)mm/a。佳木斯—萝北段以右旋走滑为主、拉张为辅;五常—佳木斯段以拉张为主、右旋走滑为辅。  相似文献   
19.
有限元强度折减法在公路隧道中的应用探讨   总被引:37,自引:6,他引:37  
将有限元强度折减法应用于隧道的稳定性评价。利用有限元强度折减法求得的安全系数与潜在滑动面,不仅可以评价隧道的稳定性和设计的合理性,还可以对支护参数和施工工艺提出改进建议。计算表明,泊松比? 的取值对塑性区范围影响很大,但对安全系数基本上没有影响;围岩等级越高,达到破坏状态时围岩的塑性区范围越大,破坏区却越小,安全系数越高;上覆岩体增厚,同类围岩塑性区范围和最大塑性应变值都增大,而安全系数减小。破坏时围岩等级高的隧道塑性区大,围岩等级低的反而小,因此,单纯根据塑性区范围大小来评判隧道的安全性是值得商榷的。  相似文献   
20.
天桥沟-黄羊川活动断裂带的几何学和运动学特征   总被引:6,自引:0,他引:6       下载免费PDF全文
依据1 :50 000 地质填图资料,对天桥沟—黄羊川活动断裂带晚更新世以来的几何学和运动学特征进行了详细的论述.认为该断裂带可分为逆走滑( 左旋) 的天桥沟断裂段和正走滑( 左旋) 的黄羊川断裂段,其主要活动时期是晚更新世,滑动速率为4 ~5 m m/a .全新世早期,该断裂带活动强度逐渐减弱,其最后一次活动的时间为距今0 .759 ×104 ~1 .02 ×104 年  相似文献   
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