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1.
黄骅坳陷孔南地区新生代盆地演化经历了断陷期、断坳期及坳陷期。盆地内部发育复杂断裂系统,根据断层活动特征可以分为沧东伸展断裂系统与徐西右旋走滑断裂系统。沧东断层剖面上具有铲式正断层特征,向深部滑脱,控制了孔南地区的构造变形;徐西断层可以看作是其上盘上的次级断层。在孔店组沉积期,沧东断层与徐西断层均表现出伸展正断层的特征,控制了其上盘孔店组沉积。在沙河街组三段沉积期,受基底断层右旋走滑影响,徐西断层及其上盘分支断层表现出右旋走滑特征。在伸展与走滑的共同作用下,在孔南地区中北部聚集了丰富的油气。  相似文献   

2.
利用地球物理资料对沧东断裂带演化特征的研究   总被引:2,自引:0,他引:2  
本文对横切沧东断裂带的23条地地震剖面进行了分析解,计算出各剖面的地层厚度和断距,并结合重、磁资料,对沧东断裂带和黄骅坳陷西部的构造演化进行了定理研究,发育特征为:沧东断裂带在时间演化上可分为四期,空间演化上可分为六段,且控制了黄骅坳陷西部的反转构造;沧东断裂带作为黄骅坳陷的西界断裂,在中生代早中期为逆冲断层,中生代晚期至新生代转为正断层,它控制了坳陷的构造演化,对油气运移和富集起重要作用;盆地中发育的NWW 向断层在构造样式转换中起重要的调节作用。  相似文献   

3.
鄂尔多斯盆地西缘北区横山堡地区是重要的油气接替区域。本文利用构造解析、地震勘探等技术方法,对研究区构造特征与油气勘探目标进行了研究。结果表明,晚侏罗纪末期,研究区为银川复背斜东翼,喜山期构造调整后转为前缘反冲带,由一系列西冲东倾逆冲断层与断背斜组成;该区可分为西部逆冲断褶带、中部逆冲断阶带和东部过渡构造带3个构造单元。断层可分为4级;以燕山期近南北—北北东向逆断层为主,其次为喜山期近东西向走滑断层,并错断了燕山期逆断层。构造样式为一系列东倾单向叠瓦状冲断组合,由近南北向逆断层及加持于其中的断块组成,断块往往为一些小型断背斜,其轴迹走向以近南北—北北东向为主。地质结构为深层滑脱型单向东倾冲断构造。根据上述研究,在沙亥庙断裂上盘断背斜构造高部位优选出一个钻探目标。  相似文献   

4.
孔令江 《华东地质》2016,(3):182-189
应用埕北断阶带中、低断阶钻井地质及三维地震资料,分析埕北断阶带构造差异性。埕北断阶带沙二、三段油藏于北东向断裂系以东断块、断鼻区呈集中分布,主要受控于沙一沉积期北东向断裂活动与断块翘倾和部分北东向断裂的继承性发育。在低断阶及中断阶开展油藏构造差异性分析,为该区油藏开发指明方向,对埕北低断阶的储量评价具有指导意义。  相似文献   

5.
沧东断裂(天津段)特征及导水导热性质分析   总被引:4,自引:4,他引:0  
沧东断裂是华北平原区一条规模较大的隐伏断裂,经历了中、新生代两个裂陷旋回,一直为地热地质工作者所关注。人工地震表明:沧东断裂是一空间构造形态上陡下缓、走向北东、北部边界已沿至蓟运河断裂附近的大型拆离断裂。以水文地质理论为基础,对沧东断裂附近地热流体的水化学场、温度场特征的研究表明:沧东断裂在下部并不具备控制天津地热热源的构造条件,但断裂上部却具有明显的将深部高位热能以热对流形式向浅部传导的特征;在水力传导方面,除局部地段稍弱外,总体上沧东断裂带在水平和垂直方向上有较强的导水能力。  相似文献   

6.
在研究黄骅坳陷断裂系统的基础上,通过力学分析认为黄骅坳陷在第三系盖层中极难出现明确的走滑断裂,但形成大量斜向滑动断层,具有典型的扭动构造特点。扭动构造包括直扭型和旋扭型两种,其中沧东断裂、徐西断裂、南皮北-盐山隐伏断裂以及皂坡-故县隐伏断裂带所围限的区域以发育直扭型构造样式为主,组成"λ"字形、雁列式及"S"形断裂构造样式等。在豫冀鲁巨型帚状构造体系和边界大断裂共同作用下,以南皮洼陷为漩涡中心,形成帚状旋扭构造样式。这一旋扭构造样式在南皮北-盐山隐伏断裂带南部的乌马营地区表现最为明显,其次为沧东断裂下降盘的舍女寺地区,平面上呈向南西方向收敛、向北东方向撒开,在沙二段、沙三段地层最为明显。张扭性断裂系统对油气聚集的重要控制作用主要表现为圈闭和断裂构造带形成、油气垂向运移通道作用以及控油性差异等3个方面。  相似文献   

7.
歧口凹陷新生代构造演化与油气   总被引:18,自引:1,他引:18  
歧口凹陷是地壳拆离断层(NE-NNE向沧东断层)NW-SE向伸展作用和NNE向深断裂带走滑作用叠加的产物.新生代演化分为3个时期:始新世,由于NW-SE向区域伸展作用,凹陷是一个由沧东断层控制的断坡凹陷;渐新世,凹陷受NW-SE向区域伸展和NNE向深断裂带右旋走滑的共同作用;晚第三纪到第四纪,区域伸展作用基本停止,走滑作用仍在继续,由走滑作用导致的SN向局部伸展作用显得更加突出.构造演化对凹陷油气形成和分布有控制作用,凹陷西部和南部是有利的油气勘探区.  相似文献   

8.
玉东-玛东构造带位于塔里木盆地,是在中寒武统膏盐层上滑脱的大规模褶皱冲断带,内部发育多种断层相关褶皱。目前对此构造带的研究,多关注了构造带的局部以及断裂变形。本文根据断层相关褶皱理论,利用地震资料,分析了玉东-玛东构造带内构造样式上的差异性,并通过二维构造正演模拟,建立了典型构造样式的运动学模式。认为研究区内玉东、玛东、塘北3个分区,具有不同的构造样式。玉东地区主要发育和铲式逆断层相关的断弯褶皱,玛东、塘北地区则发育断层突破的滑脱褶皱,突破断层在玛东地区为铲式断裂,而在塘北地区为坪-坡-坪式断裂。根据上奥陶统变形特征及其顶面不整合面之上的地层年代,认为玉东-玛东构造带的变形始于晚奥陶世,主要断裂及其相关褶皱形成于晚奥陶世末期。玉东地区在晚奥陶世早期,形成基底-盖层的低幅褶皱,在晚奥陶世末,形成铲式断裂及断弯褶皱;玛东和塘北地区变形发生在上奥陶统沉积之后,经历了滑脱褶皱和断层突破阶段。通过对比分析认为,断层相关褶皱样式的差异,与膏盐层岩性、厚度,上奥陶统岩性、厚度及构造转换作用有关。本研究有助于完善对塔里木盆地早古生代末期构造变形及演化的认识。  相似文献   

9.
歧口凹陷古近纪构造演化及其对油气成藏的影响   总被引:1,自引:0,他引:1  
歧口凹陷古近纪构造活动以断陷为主,演化形成的NW-SE方向多次凹复式箕状断陷结构和N-S方向歧口主凹双断复式地堑结构。通过分析其演化趋势和伸展断裂过程,发现歧口凹陷古近纪受伸展旋转走滑的双重构造作用影响,沧东伸展断裂系统对其的影响大于歧口伸展断裂系统,形成一个菱形或多边形的断陷湖盆,断陷边缘及内部发育一系列构造带。断陷湖盆的持续性沉降,使得烃源岩大量发育。主干断层切割生油层,为油气运移提供输导通道。歧口凹陷古近系断陷构造形成多凸多凹、多物源、近物源的古地理背景,在断陷演化的不同阶段,有多种类型砂岩储集体发育。在断陷湖盆的陡坡带、缓坡带、断阶带、盆内坡折带形成4种油气成藏模式。针对歧口凹陷古近系断陷构造演化的特点,优选勘探目标区,经钻探实例验证,取得良好效果。  相似文献   

10.
查干凹陷中央构造带被巴润断裂系分隔成多个断阶,东侧第一断阶和第二断阶含油范围小而西侧第三断阶和第四断阶含油范围大。东部断阶原油成熟度高而西侧断阶原油成熟度低,表现为:第一断阶和第二断阶CPI大多数大于1.20,OEP多数大于1.30,Pr/Ph多数在0.60以下,Ph/nC_(18)普遍高于1.00;第三断阶和第四断阶CPI和OEP小于1.20,Pr/Ph多数在0.60以上,Ph/nC_(18)普遍小于1.00。通过规则甾烷分布特征和原油成熟度特征的分析,确定靠近洼陷的第三和第四断阶的原油更多来自于洼陷中心的烃源岩供烃,而第一断阶和第二断阶则主要是构造带本地烃源岩供烃。钻井、测井资料表明,断层发育诱导裂缝带和滑动破碎带,其中滑动破碎带物性较差,具有良好的封堵性能。非线性随机反演结果表明,巴润3号断层南段致密滑动破碎带稳定发育。断层生长指数研究表明,断层主要在苏二晚期活动,并且巴润3号断层活动性较弱。研究区断层SGR普遍在25%以上,在断层静止期具有良好的封闭性。烃源岩生排烃史模拟和流体包裹体均一温度分析表明,中央构造带主要成藏时间为苏二末期—银根早期,成藏期巴润3号断层由于活动强度较弱,同时沿着断层致密滑动破碎带发育,导致洼陷中形成的原油不易穿过3号断层继续向构造带东侧运移;因此第一断阶和第二断阶主要依赖本地烃源岩供烃,而第三第四断阶为洼陷中心供烃,烃源岩的差异最终导致了不同断阶带原油成熟度的差异。  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.
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   

20.
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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