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1.
鲜水河断裂带是青藏高原东部川滇地块的一条重要边界断裂,全新世以来活动强烈,断裂带沿线岩土体结构破碎强烈,在断裂活动诱发地震、断裂蠕滑和强降雨等因素作用下,断裂带沿线滑坡、泥石流等地质灾害发育密度大,危害严重。在前人研究的基础上,采用短基线集(SBAS InSAR)的方法,基于日本对地观测卫星(ALOS 1)所获得的2007—2011年期间15景PALSAR数据,对鲜水河断裂带道孚至炉霍段的活动速率进行分析计算,获取了该段断裂带内蠕滑型滑坡5年间的时间序列形变特征。研究结果表明:鲜水河断裂带道孚至炉霍段近年来以蠕滑滑动为主,蠕滑速率为(94±078) mm/a,断裂的蠕滑作用对区域构造应力场和断裂带内滑坡具有重要的控制作用,表现为距离鲜水河断裂带越近,影像间相干性越强,稳定的相干点越多,干涉效果越好,滑坡滑动累计位移越大。沿鲜水河断裂道孚至炉霍段,共识别出98个蠕滑型滑坡,沿鲜水河断裂带两侧呈线性展布,并分析了典型蠕滑型滑坡的地表形变特征。基于SBAS InSAR的雷达数据处理方法,可以有效地分析地表的缓慢变形以及区域性蠕滑型滑坡的发育发展变化规律,研究结果对于鲜水河断裂带沿线防灾减灾及类似构造活动地区的地质灾害研究具有一定的指导作用。  相似文献   

2.
为了探索GPS和跨断层地壳形变数据联合反演效果,本文以鲜水河断裂为研究对象,利用1999~2007期,2009~2013期和2013~2017期中国大陆GPS水平速度场数据,使用贝叶斯反演方法,以跨断层数据为先验条件,估算了川滇菱形块体东边界(主要为鲜水河断裂)的断层运动速率。发现增加跨断层数据后,反演图像的近场和远场速率区别更加显著,不同期次的断层活动速率表现出明显的差异。但是,本方法在震前效果并不明显,尤其是在汶川地震前部分跨断层场地的逆向走滑特征很难表现出来,对于地震预测预报也很难起到优势作用,但从反演效果上来看,可以更直观的反映断层在近场和远场上的速率差异以及地震后断层运动速率的分段特征。最终根据上述研究方法认为鲜水河断裂带在汶川地震后,经过多年的应力调整,目前左旋走滑速率已经基本恢复到震前状态,鲜水河断裂南段持续拉张趋势,川滇菱形块体的顺时针旋转作用持续加强,鲜水河断裂的道孚段和磨西段存均在一定的走滑速率亏损,应注意这两个地区的地震危险性,以及这两个地区地震危险的关联性。  相似文献   

3.
断裂带附近往往是蠕变斜坡地质灾害的多发区,微小变形是指示蠕变斜坡地质灾害的一项重要标志。本文以青藏高原鲜水河活动断裂带为研究区,选用多期ALOS/PALSAR合成孔径雷达数据进行时序干涉(InSAR)观测,获得了毫米级的地表变形量,结合现场调查、遥感解译和地质条件综合分析,揭示了该区域蠕变斜坡地质灾害的类别、变形特征和空间发育规律:(1)断裂沿线主要发育了蠕变滑坡、蠕变泥石流物源和冰碛物流动3种类型蠕变斜坡地质灾害;(2)蠕滑滑坡具有"错乱的等高线状台阶",凸凹不平的主滑方向地形剖面,舌状地貌,无基岩裸露滑床等特征;(3)鲜水河断裂北段古滑坡、历史地震滑坡和震裂斜坡发育,与断裂带直接相交的,大部分存在蠕滑变形,未相交的往往无蠕滑变形,体现了活动断裂对地质灾害发育的控制作用;(4)发育"土石林型"和"坡面松散堆积物型"两种泥石流,识别特征是物源区有分散的缓慢变形体,流域范围内变形体的数量和速率是重要标志;(5)鲜水河断裂带附近4200m高程以上区域广泛存在现代冰碛物沿冰川槽谷滑动变形,其分布范围广、单体规模大、运动速率高,是现今研究区最主要的地表剥蚀形式之一。研究结果也表明,InSAR技术结合地质条件能有效地识别蠕变斜坡地质灾害,适于山区地质灾害众多、调查不便的工作环境,是地质灾害调查技术未来重要发展方向。  相似文献   

4.
青藏高原东缘鲜水河断裂带磁组构特征及构造意义   总被引:2,自引:0,他引:2  
为了探究鲜水河断裂带的几何学、运动学特征,在野外构造、显微构造分析基础上,研究了鲜水河断裂带296块构造岩定向样品的磁组构特征和热磁特征,结果显示样品的平均磁化率km值总体较小,属微弱磁性到弱磁性;热磁实验及其显微构造表明顺磁性的页硅酸盐(如黑云母)等矿物对糜棱岩类样品磁化率贡献较大;磁化率各向异性度PJ总体较大,表明鲜水河断裂带构造变形强烈;磁化率椭球体形状参数T总体大于0,扁率E总体在1附近分布,说明鲜水河断裂带磁化率椭球体以扁圆形为主,整体上磁面理较磁线理发育,进一步显示出鲜水河断裂带构造变形样式以剪切、压扁为主,伴有拉伸的构造变形,同时也反映出鲜水河断裂带多次变形的综合特征;最小磁化率主轴Kmin方位表明鲜水河断裂带北段和南段分别受近EW向和NE-SW向主压应力控制;同时Kmin方位及其倾伏角特征显示鲜水河断裂带总体以左行走滑剪切为主,北段两侧块体在鲜水河断裂带两次不同的构造活动时期,各自有一定的相对抬升,但抬升幅度均不大;南段则是SW块体相对NE块体抬升,抬升幅度较大;整个断裂带特征显示出鲜水河断裂带在向南发展逐渐转化为挤压构造,这可能与青藏高原物质的向东逃逸受阻以及鲜水河断裂带与龙门山断裂带在此交接的地质背景不无关系.  相似文献   

5.
2022年9月5日12时52分在四川甘孜州泸定县发生Ms6.8级地震,震源深度16 km。这是继2014年康定地震后,发生在鲜水河断裂带上的又一次强震。笔者等通过已有文献资料,结合鲜水河断裂带南段野外地质调查,统计了滑动速率及历史地震资料,并总结了近代鲜水河断裂带强震迁移规律,对认识鲜水河断裂带活动特征及未来地震危险性具有重要意义。主要得出以下几点认识:①鲜水河断裂带各段滑动速率差异较大,以乾宁为界,从NW至SE段整体上呈现出“先减速后加速”的滑动特点;②泸定地震发震构造磨西断裂,为一次左旋走滑事件;③川滇地区近代历史强震活跃期具有“跳跃性”迁移的特点。自1981年道孚地震后,鲜水河断裂带断进入相对平静期,持续了33 a。自2014年康定地震发生,鲜水河断裂带再次进入地震活跃期;④鲜水河断裂带的强震破裂并非单次地震的“贯通型”模式,而是多次地震的渐进式。断层间相互作用尤其是大地震的发生对断裂带强震复发间隔具有重大影响,相同断裂带的强震也会对后续地震的发生概率产生变化。  相似文献   

6.
鲜水河断裂带位于青藏高原东缘,是中国大陆内部地震活动性最强的大型活动断裂带之一。大量研究证据表明,鲜水河断裂带色拉哈—康定段未来几十年内发生破坏性强震的风险较高。目前正在规划建设的国家重大交通基础建设工程——川藏铁路,将在康定折多山地区直接穿越鲜水河活动断裂带。本研究通过高分辨率卫星影像的地质地貌解译和详细的野外构造地质填图,新发现一条发育于色拉哈断裂和折多塘断裂之间折多山花岗岩体内的长约24km的全新世活动断层,该断裂空间上可分成北、中、南三段,呈(正滑)左旋右阶雁行状排列,并将其命名为“木格措南断裂”。该活动断裂的发现对完善鲜水河断裂带色拉哈—康定段的精细几何图像和构造组合特征,准确评价鲜水河断裂带的地震危险性具有重要意义,并为川藏铁路施工建设和安全运营提供了重要科学数据支撑。  相似文献   

7.
鲜水河断裂带全新世活动性研究进展综述   总被引:8,自引:0,他引:8  
鲜水河断裂带是中国西南山区一条现今活动强烈的大型地震断裂。本文在系统总结前人研究成果的基础上, 结合野外地质调查, 综述了鲜水河断裂带空间展布特征、活动性质及强度、历史地震地表破裂特征、地震危险性等方面的研究进展。前人研究结果表明, 鲜水河断裂带以惠远寺为界可分为两段, 进一步可细分为八段;断裂带全新世以来以左旋走滑为主, 兼具逆冲性质;整条断裂现今走滑活动速率约为10mm/a左右, 垂向变形在2mm/a以内;其中断裂带北西段活动速率为10~20mm/a, 南东段则小于10mm/a, 一般为5mm/a左右;断裂带地震活动频繁, 地震活动性北西段明显高于南东段, 强震迁移呈明显的跳跃式特征并具有原地复发性质;断裂带历史地震地表破裂特征与玉树地震所报道的地表破裂特征一致;断裂带地震危险性评价具很多不确定因素, 研究程度相对较低。   相似文献   

8.
活动断裂几何学特征及滑动速率是研究断裂运动学、动力学机制及其评估区域强震危险性的重要依据。青藏高原东缘左行走滑的鲜水河断裂带是控制高原物质向南东挤出的重要边界,是中国陆内活动性最强的断裂之一。本文以鲜水河断裂带北西段为研究对象,通过高精度遥感影像解译、野外考察、OSL(光释光)和14C测年方法以及LiDAR(激光雷达)扫描获得乾宁段龙灯乡冲积阶地的位错量和废弃年龄。T4和T3′水平位错量分别为106±5 m和77±2 m, T4阶地垂直位错量为9.6±0.5 m。T4和T3′阶地的废弃年龄分别为11±1 ka和7±1 ka。结合对应的年龄和位错量,得到乾宁段晚第四纪走滑速率左行走滑速率为10.5±1 mm/a,垂直滑动速率为0.9±0.1 mm/a,断层倾向北东,具有正断运动学特征。通过重新计算断裂两侧GPS矢量沿断裂方向分量,得到鲜水河断裂带炉霍段、炉霍—康定段、磨西段现今左行走滑速率分别约为8.1 mm/a、8.2 mm/a、9.4 mm/a,整体表现为自北西向南东递增。综合乾宁段晚第四纪走滑速率和最新强震活动的离逝时间估算,认为鲜水河断裂带乾宁段目前应变累积...  相似文献   

9.
基于1992—2002年小震双差重新定位结果,沿鲜水河—安宁河—则木河断裂带走向的震源剖面作b值及局部复发时间TL值的空间扫描,以确定断裂带上可能存在的凹凸体。结果显示,b值沿断裂带走向具明显的空间非均匀性,与地表几何结构的分段变异是相应的。异常短的TL值及低b值出现在鲜水河断裂带的炉霍—道孚间、安宁河断裂带的石棉—冕宁段以及则木河断裂带的西昌—普格段,表明在间震期这些段落破裂产生的小震平均震级大于其他段落上的小震,是断裂带中相对活跃的段落。由b值与应力成反比的关系,推测这些段落可能为断裂带上凹凸体所在地,成为现今应力积累的闭锁段,是未来主震初始破裂最有可能形成的段落,其中石棉—冕宁段的地震危险性最大。而在鲜水河断裂带南东段的乾宁—康定—石棉一带,尽管历史地震与现今小震都异常活跃,但具有异常高的b值及TL值估计,表明现今应力水平较低,目前可能成为以小震活动为主的蠕滑段,不具大震危险性。  相似文献   

10.
川藏铁路是中国正在规划建设的重点工程,穿越地形地貌和地质构造都极为复杂的青藏高原东部。铁路沿线活动断裂发育、地震频发,新建铁路雅安—林芝段直接穿越或近距离展布于龙门山断裂带、鲜水河断裂带等10条大型区域性活动断裂带,部分断裂活动速率值达10 mm/a,潜在强震危险性高。在内外动力耦合作用下,铁路沿线地质灾害极为发育,密集分布于大渡河、雅砻江、金沙江、澜沧江、怒江和雅鲁藏布江及其一级支流、活动断裂带和公路沿线,其中高位远程滑坡及链式灾害、深层蠕变-剧滑型滑坡、地震滑坡等灾害危害严重,成为了铁路建设的“拦路虎”。铁路沿线处于以水平构造应力为主导的高地应力环境,穿越华南主体应力区、龙门山—松潘应力区、川滇应力区、墨脱—昌都应力区和喜马拉雅应力区等5个大的一级构造应力区;雅安—康定段最大主应力方向为NWW—NW向,并向林芝方向呈现NNE向偏转,地应力在平面和垂向空间上表现为强烈局部差异性,如折多山某隧道地应力测试结果揭示了在垂向上存在应力释放区。在高地应力条件下,铁路沿线深埋隧道潜在围岩岩爆和大变形危害风险大。铁路建设应加强活动断裂安全避让、重大地质灾害早期识别和监测预警、深埋隧道地应力和岩爆大变形超前预测预报等工作,科学指导铁路选线与防灾减灾。  相似文献   

11.
郯庐断裂南段研究进展与断裂性质讨论   总被引:13,自引:3,他引:13  
据1:5万区域地质调查和专题研究资料,就郯庐断裂带是否南延与消失的原因,其与大别—苏鲁造山带交截形成的假位错效应,以及与中新生代沉积盆地形成演化的关系等作了新的阐述。在此基础上,讨论了郯庐断裂带是否为巨大的左行平移断层或转换断层。认为郯庐断裂带可能是在“古郯庐带”的基础上于早侏罗世重新活动、白垩纪强烈活动的地堑型枢纽断裂带。  相似文献   

12.
龙门山地区关口断裂形成与演化分析   总被引:1,自引:0,他引:1  
根据大量野外露头剖面资料与钻井数据,系统分析了关口断裂形成过程与演化特征。认为关口断裂在印支早、中期为张性大力构造背景下形成的同沉积正断层,在晚三叠世卡尼克期为生长性正断层;印支晚期构造事件中该断裂改变为逆冲断层。关口断裂活动性较强,其中在燕山晚期活动性最强。关口断裂在喜马拉雅期有多期次的、长时期的强烈活动;并且目前仍是一条活动性的断层。  相似文献   

13.
Based on high-resolution remote sensing image interpretation, digital elevation model 3-D analysis, field geologic field investigation, trenching engineering, and ground-penetrating radar, synthetic research on the evolution of the Yuguang Basin South Margin Fault (YBSMF) in northwest Beijing was carried out. We found that the propagation and growth of faults most often occurred often at two locations: the fault overlapping zone and the uneven or rough fault segment. Through detailed observation and analysis of all cropouts of faults along the YBSMF from zone a to zone i, we identified three major factors that dominate or affect fault propagation and growth. First, the irregularity of fault geometry determine the propagation and growth of the fault, and therefore, the faults always propagate and grow at such irregular fault segments. The fault finally cuts off and eliminates its irregularity, making the fault geometry and fault plane smoother than before, which contributes to the slipping movement of the half-graben block in the basin. Second, the scale of the irregularity of the fault geometry affects the result of fault propagation and growth, that is, the degree of the cutting off of fault irregularity. The degree of cutting off decreases as irregularity scale increases. Third, the maximum possible slip displacement of the fault segment influences the duration of fault propagation and growth. The duration at the central segments with a large slip displacement is longer than that at the end segments with a smaller slippage value.  相似文献   

14.
龚正  李海兵  唐方头  吴羿锋  王磊 《地质学报》2023,97(7):2111-2125
2008年汶川地震促使人们思考青藏高原东南缘走向和规模与龙门山断裂带相近的丽江- 小金河断裂的活动历史,但受限于地质条件制约断裂尤其是其北段相关研究极其薄弱。基岩断裂带的物质组成与结构特征是断层长期活动的产物,蕴含丰富的历史活动信息。本文以丽江- 小金河断裂盐源段多个天然剖面为研究对象,通过详细的断裂带宏观结构调查、断层岩显微构造及XRD分析发现:① 断层破碎带以一套厚度>20 m的破裂面密集带为特征,优势破裂面走向为NE20°~30°,推测为丽江- 小金河断裂长期活动形成的张剪性破裂;② 断层带核部以断层角砾岩和断层泥为主,灰岩角砾岩黏土矿物含量~2%,以伊利石和伊蒙混层为主,粉砂岩断层泥黏土矿物含量~52%,以坡缕石和绿泥石为主,石英含量36%,缺失长石类矿物。断裂带宏观结构和断层岩微观结构特征均表现为角砾呈棱角状,砾径差异极大且呈零散状分布,符合快速滑动特征,指示断层滑移方式为黏滑。此外,核部断层岩带统计厚5~8 m,这一规模相对于龙门山映秀- 北川断裂带核部180~280 m和安县- 灌县断裂带核部40~50 m显著偏小,表明前者自形成以来的活动性远低于后者,两者的地震行为并不能简单类比。结合断裂在宏观结构特征、断层岩成分与种类以及所反映的滑动方式与隆升剥蚀量的差异,认为丽江- 小金河断裂更可能是鲜水河断裂切断锦屏山- 龙门山构造带之后形成的,晚新生代与龙门山断裂带具有不同的活动历史。  相似文献   

15.
Field investigations allow to constrain the co-seismic surface rupture zone of ~400km with a strike-slip up to 16.3 m associated with the 2001Mw 7.8 Central Kunlun earthquake that occurred along the western segment of the Kunlun fault,northern Tibet.The co-seismic rupture structures are almost duplicated on the pre-existing fault traces of the Kunlun fault.The deformational characteristics of the co-seismic surface ruptures reveal that the earthquake had a nearly pure strike-slip mechanism.Theg eologic and topographice vidence clearly shows that spatial distributions of the co-seismic surface ruptures are re-stricted by the pre-existing geological structures of the Kunlun fault.  相似文献   

16.
《International Geology Review》2012,54(13):1575-1615
Salinia, as originally defined, is a fault-bounded terrane in westcentral California. As defined, Salinia lies between the Nacimiento fault on the west, and the Northern San Andreas fault (NSAF) and the main trace of the dextral SAF system on the east. This allochthonous terrane was translated from the southern part of the Sierra Nevada batholith and adjacent western Mojave Desert region by Neogene-Quaternary displacement along the SAF system. The Salina crystalline basement formed a westward promontory in the SW Cordilleran Cretaceous batholithic belt, relative to the Sierra Nevada batholith to the north and the Peninsular Ranges batholith to the south, making Salinia batholithic rocks susceptible to capture by the Pacific plate when the San Andreas transform system developed. Proper restoration of offsets on all branches of the San Andreas system is a critical factor in understanding the Salinia problem. When cumulative dextral slip of 171 km (106 mi) along the Hosgri–San Simeon–San Gregorio–Pilarcitos fault zone (S–N), or dextral slip of 200 km (124 mi) along the Hosgri–San Simeon–San Gregorio–Pilarcitos–northern San Andreas fault system, is added to the cumulative dextral slip of 315–322 km (196–200 mi) along the main trace of the SAF north of the San Emigdio–Tehachapi mountains, central California, there is a minimum amount of cumulative dextral slip of 486 km (302 mi) or a maximum amount of cumulative dextral slip of 522 km (324 mi) along the entire SAF system north of the Tehachapi Mountains. When these sums are compared with the offset distance (610–675 km or 379–420 mi) between the batholithic rocks associated with the Navarro structural discontinuity (NSD) in northern California, and those in the ‘tail’ of the southern Sierra Nevada granitic rocks in the San Emigdio–Tehachapi mountains, central California, a minimum deficit of from ~100 km (~62 mi) to a maximum deficit of ~189 km (~118 mi) is needed to restore the crystalline rocks associated with the NSD with the crystalline terranes within the San Emigdio and Tehachapi mountains – the enigma of Salinia. Two principal geologic models compete to explain the enigma (i.e. the discrepancy between measured dextral slip along traces of the SAF system and the amount of separation between the Sierra Nevada batholithic rocks near Point Arena in northern California and the Mesozoic and older crystalline rocks in the San Emigdio and Tehachapi mountains in southern California). (i) One model proposes pre-Neogene (>23 Ma), Late Cretaceous or Maastrichtian (<ca. 71 Ma) to early Palaeocene or Danian (ca. 66 Ma) sinistral slip of 500–600 km (311–373 mi) along the Nacimiento fault and of the western flank of Salinia from the eastern flank of the Peninsular Ranges (sinistral slip but in the opposite sense to later Neogene (<23 Ma) dextral slip along and within the SAF system. (ii) A second model proposes that the crystalline rocks of Salinia comprise a series of 100 km- (60 mi-) scale allochthonous (extensional) nappes that rode southwestward above the Rand schist–Sierra de Salinas (SdS) shear zone subduction extrusion channels. The allochthonous nappes are from NW–SE: (i) Farallon Islands–Santa Cruz Mountains–Montara Mountain, and adjacent batholithic fragments that appear to have been derived from the top of the deep-level Sierra Nevada batholith of the western San Emigdio–Tehachapi mountains; (ii) the Logan Quarry–Loma Prieta Peak fragments that appear to have been derived from the top of a buried detachment fault that forms the basement surface beneath the Maricopa sub-basin of the southernmost Great Valley; (iii) The Pastoria plate–Gabilan Range massif that appears to have been derived from the top of the deep-level SE Sierra Nevada batholith; and (iv) the Santa Lucia–SdS massif, which appears to be lower batholithic crust and underlying extruded schist that were breached westwards from the central to western Mojave Desert region. In this model, lower crustal batholithic blocks underwent ductile stretching above the extrusion channel schists, while mid- to upper-crustal level rocks rode southwestwards and westwards along trenchward dipping detachment faults. Salinian basement rocks of the Santa Lucia Range and the Big Sur area record the most complete geologic history of the displaced terrane. The oldest rocks consist of screens of Palaeozoic marine metasedimentary rocks (the Sur Series), including biotite gneiss and schist, quartzite, granulite gneiss, granofels, and marble. The Sur Series was intruded during Cretaceous high-flux batholithic magmatism by granodiorite, diorite, quartz diorite, and at deepest levels, charnockitic tonalite. Local nonconformable remnants of Campanian–Maastrichtian marine strata lie on the deep-level Salinia basement, and record deposition in an extensional setting. These Cretaceous strata are correlated with the middle to upper Campanian Pigeon Point (PiP) Formation south of San Francisco. The Upper Cretaceous strata, belonging to the Great Valley Sequence, include clasts of the basement rocks and felsic volcanic clasts that in Late Cretaceous time were brought to a coastal region by streams and rivers from Mesozoic felsic volcanic rocks in the Mojave Desert. The Rand and SdS schists of southern California were underplated beneath the southern Sierra Nevada batholith and the adjacent Salinia-Mojave region along a shallow segment of the subducting Farallon plate during Late Cretaceous time. The subduction trajectory of these schists concluded with an abrupt extrusion phase. During extrusion, the schists were transported to the SW from deep- to shallow-crustal levels as the low-angle subduction megathrust surface was transformed into a mylonitic low-angle normal fault system (i.e. Rand fault and Salinas shear zone). The upper batholithic plate(s) was(ere) partially coupled to the extrusion flow pattern, which resulted in 100 km-scale westward displacements of the upper plate(s). Structural stacking, temporal and metamorphic facies relations suggest that the Nacimiento (subduction megathrust) fault formed beneath the Rand-SdS extrusion channel. Metamorphic and structural relations in lower plate Franciscan rocks beneath the Nacimiento fault suggest a terminal phase of extrusion as well, during which the overlying Salinia underwent extension and subsidence to marine conditions. Westward extrusion of the subduction-underplated rocks and their upper batholithic plates rendered these Salinia rocks susceptible to subsequent capture by the SAF system. Evidence supporting the conclusion that the Nacimiento fault is principally a megathrust includes: (i) shear planes of the Nacimiento fault zone in the westcentral Coast Ranges locally dip NE at low angles. (ii) Klippen and/or faulted klippen are locally present along the trace of the Nacimiento fault zone from the Big Creek–Vicente Creek region south of Point Sur near Monterey, to east of San Simeon near San Luis Obispo in central California. Allochthonous detachment sheets and windows into their underplated schists comprise a composite Salinia terrane. The nappe complex forming the allochthon of Salinia was translated westward and northwestward ~100 km (~62 mi) above the Nacimiento megathrust or Franciscan subduction megathrust from SE California between ca. 66 and ca. 61 Ma (i.e. latest Cretaceous–earliest Palaeocene time). Much, or all, of the westward breaching of the Salinia batholithic rocks likely occurred above the extrusion channels of the Rand-SdS schists; following this event, the Franciscan Sur-Obispo terrane was thrust beneath the schists, perhaps during the final stages of extrusion in the upper channel. Later, the Sur-Obispo terrane was partially extruded from beneath the Salinia nappe terrane, during which time the upper plate(s) underwent extension and subsidence to marine conditions. Attenuation of the Salinia nappe sequence during the extrusion of the Franciscan Complex thinned the upper crust, making the upper plates susceptible to erosion from the top of the Franciscan Complex near San Simeon, where it is now exposed. In the San Emigdio Mountains, the relatively thin structural thickness of the upper batholithic plates made them susceptible to late Cenozoic flexural folding and disruption by high-angle dip–slip faults. The ~100 km (~62 mi) of westward and northwestward breaching of the Salinia batholithic rocks above the Rand-SdS channels, and the underlying Nacimiento fault followed by ~510 km (~320 mi) of dextral slip from ~23 Ma to Holocene time along the SAF system, allow for the palinspastic restoration of Salinia with the crystalline rocks of the San Emigdio–Tehachapi mountains and the Mojave terrane, resolving the enigma of Salinia.  相似文献   

17.
The Quaternary activity of the faults at the eastern end of the Altyn Tagh fault, including the Dengdengshan–Chijiaciwo, Kuantanshan and Heishan faults, was studied on the basis of interpretation of satellite images, trenching, geomorphologic offset measurements and dating. The Altyn Tagh fault has extended eastwards to Kuantanshan Mountain. The left–slip rates of the Altyn Tagh fault decreased through the Qilianshan fault and were transformed into thrust and folds deformation of many NW–trending faults within the Jiuxi basin. Meanwhile, under NE–directed compression of the Tibetan plateau, thrust dominated the Dengdengshan–Chijiaciwo fault northeast of the Kuantanshan uplift with a rate lower than that of every fault in the Jiuxi basin south of the uplift, implying that tectonic deformation is mainly confined to the plateau interior and the Hexi Corridor area. From continual northeastward enlargement of the Altyn Tagh fault, the Kuantanshan uplift became a triangular wedge intruding to the east, while the Kuantanshan area at the end of this wedge rose up strongly. In future, the Altyn Tagh fault will continue to spread eastward along the Heishan and Jintananshan faults. The results have implications for understanding the propagation of crustal deformation and the mechanism of the India–Eurasian collision.  相似文献   

18.
研究表明,黄河口凹陷沙河街组三段中亚段发育的沉积相类型有辫状河三角洲相、扇三角洲相、湖底扇相和湖泊相。同沉积断裂特征对沉积具有控制作用,陡坡带活动盆缘断裂控制扇三角洲的分布,缓坡带活动盆缘断裂控制辫状河三角洲分布;二级断裂对湖底扇和深水沉积区有明显的控制作用,东部断阶带中部发育的F20东西向同沉积断裂,控制了物源的主要注入通道——沟谷,对东部物源的注入具有长期影响。  相似文献   

19.
华熊地块马超营断裂走滑特征及演化   总被引:11,自引:0,他引:11  
对华熊地块南部的马超营断裂带的几何样式、组成特征及其变形特点等研究结果表明,马超营断裂带经历了韧性变形和脆性变形期。韧性变形分布于该断裂带的南侧,并发生了绿片岩相的动力变质作用,其中的S-C组构特征所指示的运动方向在其南北两侧,分别为向南和向北逆冲,呈现正花状特点,反映了该断裂带具有走滑逆冲性质的断裂。韧性变形主要发生于前印支期。燕山期,全面陆-陆碰撞期间其主要表现为脆性变形特征。脆性变形主要发育于其北侧,北东向的康山-七里坪断裂、红庄-陶村断裂是其次一级的派生断裂。通过对北东向断裂运动方向和前人的成果分析,以及这些构造的平面分布样式对比认为该断裂为一条左行走滑特征的断裂带。在此基础上,结合区域动力学背景,进而讨论了它的演化特征。  相似文献   

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