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1.
龙陵-澜沧新生断裂带地震破裂分段与地震预测研究   总被引:5,自引:2,他引:5       下载免费PDF全文
龙陵 -澜沧新生断裂带的地震活动具频度高、强度大、周期短等特征 ,并以双震或震群型为主。断裂带由多条次级新生断层组成 ,呈斜列或共轭式展布 ,根据结构、规模、地震活动差异等因素把断裂带划分为 4个一级段、13个二级段 ,其中有 4个二级段又可划分出 8个三级段。历史上发生过大震、强震并有地震断层伴生的断层段为地震破裂单元 ;断裂带上晚第四纪有活动并有古地震事件 ,但无历史地震记载的地段为断层闭锁单元 ;次级断层之间的阶区或连接点为障碍体单元。从地震破裂特征分析 ,断裂带由破裂、闭锁、障碍体单元组成 ,根据地震、古地震、活断层、断层阶区的活动规律 ,断裂带可划分出 9个破裂单元、8个闭锁单元、10个障碍体单元。三者之间呈迁移、触发和转换能量的关系。根据这些关系和地震构造标志 ,对断裂带上未来可能发生大震、强震、中强震的地区分别作了预测。预测的危险区有 9个 ,其中大震区 1个 (永康 -永德地区 ) ,强震区 3个 (马站、石灰窑、酒房-勐混 ) ,中强震区 5个 (下顺江、里仁、大岗山、南明 -澜沧、勐遮  相似文献   

2.
玛多—甘德断裂甘德段晚第四纪活动特征   总被引:5,自引:0,他引:5  
玛多—甘德断裂是巴颜喀拉块体内部的一条活动断裂。 通过野外调查发现, 在玛多-甘德断裂的甘德段保留有一条较好的地震地表破裂带。 破裂带整体走向NW向, 长约为50 km。 野外获得的最大左旋水平位移7.6 m, 最大垂直位移4 m。 沿破裂带有大量地震活动的遗迹, 地表破裂类型十分丰富。 通过对各种地质地貌现象的调查与分析, 认为该破裂带形成时代较新。 断裂带在地貌上发育有线性排列的垭口、 断层三角面、 断层陡坎、 断层泉、 断错水系、 山脊扭错、 断塞塘、 鼓包等现象。 根据野外考察并结合现有资料分析, 该破裂带可能是该区域内历史上一次较为强烈地震的产物。 据此推断, 巴颜喀拉块体内部的玛多—甘德断裂晚第四纪以来可能有过强烈的活动并至今活跃。  相似文献   

3.
地震地表破裂是地壳弹性应变转化为永久性构造变形的表现形式.2001年昆仑山地震在东昆仑断裂带库赛湖段产生的地表破裂带整体长426km,由西部剪切走滑破裂段、中部张剪切破裂段和东部剪切走滑破裂段等3个相对独立的地表破裂段组成,即昆仑山地震由震级为Mw=6.8,Mw=6.2和Mw≤7.8的3次地震破裂事件组成,其中东段Mw≤7.8级地震为昆仑山地震主震,由4次更次级地震事件组成.野外测量表明,不同段落上单条地表破裂宽度一般介于数米至15m,最大不超过30m;组合地表破裂带的宽度主要取决于几何结构,特别是次级地表破裂带斜列区的宽度,具有变形局部化的基本特征.结合东昆仑断裂带第四纪地质速率与GPS监测应变速率一致性,2001年昆仑山地震地表破裂局部化特征说明,青藏高原北部巴颜喀拉与祁连-柴达木两大块体间的构造变形主要表现为东昆仑断裂带宽度有限的剪切走滑错动,东昆仑山断裂带南北两侧块体具有整体运动特征.地震破裂局部化特征对确定重大工程、居民住宅和生命线工程等免遭走滑断层同震地表错动引起直接破坏的避让带宽度具有十分重要现实意义.  相似文献   

4.
GPS揭示的郯庐断裂带中南段闭锁及滑动亏损   总被引:1,自引:0,他引:1       下载免费PDF全文
利用华北地区2009—2014年GPS水平运动速度场数据,采用块体负位错模型反演了郯庐断裂带中南段断层深部滑动速率、断层闭锁程度分布、断层滑动亏损速率分布及地震矩积累率,结合地表应变率分布,对郯庐断裂带中南段深、浅部形变、应变特征以及华北地区的地壳形变模式进行了分析.结果表明:郯庐断裂中南段的北端主要为右旋走滑特性,南端则表现为右旋走滑兼拉张性运动,断层滑动速率在0.9mm·a~(-1)至1.2mm·a~(-1),且沿断层走向由北至南逐次增大.断层闭锁程度分布沿走向分布不均一,断层闭锁深度由最北端的27km增加到中段的32km,至最南端变为5km,断层闭锁最深处与1668年郯城MS8.5震中位置相对应.断层滑动亏损速率沿走向由0.9mm·a~(-1)增加到1.2mm·a~(-1),沿倾向由地表至深部逐渐减小为0mm·a~(-1).地震矩积累率在郯庐断裂带中南段郯城附近较大,而地表对应区域为第二应不变分量的低值区.华北地区地壳变形以块体运动为主,块体内部应变及断层闭锁产生的负位错效应次之;郯庐断裂带中南段断层形变沿走向呈条带状分布,形变宽度单侧小于50km,形变量不超过1mm·a~(-1),且上盘形变略大于下盘.  相似文献   

5.
昭通-鲁甸断裂晚第四纪活动及其构造意义   总被引:12,自引:7,他引:5  
昭通-鲁甸断裂带主要由昭通-鲁甸、洒渔河和龙树3条右阶斜列的断裂组成。总体走向40°~60°,洒渔河和龙树断裂倾向SE,昭通-鲁甸断裂倾向NW,它们共同构成几何结构复杂的逆冲断裂系。野外考察表明:沿断裂表现为平直的断层槽地、定向排列的断层三角面、断层陡坎等地貌;大桥边、北闸镇、光明村等地断错了晚更新世—全新世地层;龙树河Ⅰ级阶地上发育高0.5~2.0m的断层陡坎。表明其最新活动时代为晚更新世—全新世,运动性质以逆冲运动为主兼有右旋走滑分量。此外,在NE向断裂间穿插发育的一些NW向断裂,同样表现出晚第四纪活动特征。在2014年鲁甸M6.5地震震区产生了NE和NW向地裂缝和地形反坎等地表形变,与NE和NW向断裂展布基本一致,反映了断裂的新活动特征。由于块体远程变形响应与能量交换传递,在川滇块体东侧形成了凉山次级活动块体,昭通-鲁甸断裂带位于凉山次级活动块体SE向运动的前缘部位。它独特的地理位置和复杂的断裂几何结构成为凉山次级块体构造变形的主要承载体之一,吸收、调节块体SE向运动应变,并构成了凉山次级活动块体的南部边界。从区域构造部位和运动特征分析,昭通-鲁甸断裂带之于凉山次级块体,正如龙门山断裂带之于巴颜喀拉块体。昭通-鲁甸断裂带在活动块体边界和区域构造格架划分上具有重要的构造意义,同时也是滇东北地区重要的地震构造。  相似文献   

6.
沿大型走滑断裂带经常发生导致多个断层段同时破裂的级联破裂地震事件。海原断裂带在1920年海原M 8地震时3个段同时发生破裂,干盐池拉分盆地即为其西段和中段的分段边界。沿该盆地内新生断层的古地震研究揭示了晚更新世末期以来的至少7次古地震事件证据,最新1次事件为1920年海原地震,1920年海原地震之前的1次事件可能与1092年历史地震对应。对比分析表明,这些事件可能均为超过8级的大地震,其复发呈现地震丛集与单个事件相间排列的规律,当前可能处于最近的1个地震丛集期内。该古地震序列与整个海原断裂带的大地震活动历史的对比表明,干盐池拉分盆地内新生断层在级联破裂地震事件发生时并非总是同时破裂,该断层是否参与破裂可能与该次级联破裂事件的震级大小有关。讨论整个走滑断裂带大地震活动历史时应避免仅依据具有一定规模的拉分盆地内部断层的破裂记录。  相似文献   

7.
计算和研究了1973—2014年发生在巴颜喀拉块体东-南边界断裂带上的、由9次M_S≥6.3地震组成的强震序列引起的库仑静应力变化图像,分析序列中先发地震破裂对后发地震的应力触发作用。结果表明:(1)1973—1976年在巴颜喀拉块体东边界的虎牙断裂带上发生的4次强震存在着显著的应力触发关系,同时改变了龙门山断裂带中南段及周围区域的应力状态,相继触发了汶川M_S8.0地震和芦山M_S7.0地震;(2)南边界鲜水河断裂带自1973年以来发生的3次强震同样存在应力触发关系,2014年康定M_S6.3地震是巴颜喀拉块体东、南边界强震活动导致的库仑应力变化共同触发的结果;(3)序列中9次地震共同产生的库仑应力变化图像显示:龙门山断裂带南段的汶川地震至芦山地震破裂段之间的空区,鲜水河断裂带南段的道孚地震至康定地震破裂段之间的空区以及鲜水河断裂带、安宁河断裂带、龙门山断裂带交汇的三岔口地区均在库仑应力增加区的覆盖范围之内,需要重点关注。  相似文献   

8.
地震地表破裂是地壳弹性应变转化为永久性构造变形的表现形式.2001年昆仑山地震在东昆仑断裂带库赛湖段产生的地表破裂带整体长426km,由西部剪切走滑破裂段、中部张剪切破裂段和东部剪切走滑破裂段等3个相对独立的地表破裂段组成,即昆仑山地震由震级为Mw=6.8,Mw=6.2和Mw≤7.8的3次地震破裂事件组成,其中东段Mw≤7.8级地震为昆仑山地震主震,由4次更次级地震事件组成.野外测量表明,不同段落上单条地表破裂宽度一般介于数米至15m,最大不超过30m;组合地表破裂带的宽度主要取决于几何结构,特别是次级地表破裂带斜列区的宽度,具有变形局部化的基本特征.结合东昆仑断裂带第四纪地质速率与GPS监测应变速率一致性,2001年昆仑山地震地表破裂局部化特征说明,青藏高原北部巴颜喀拉与祁连.柴达木两大块体间的构造变形主要表现为东昆仑断裂带宽度有限的剪切走滑错动,东昆仑山断裂带南北两侧块体具有整体运动特征.地震破裂局部化特征对确定重大工程、居民住宅和生命线工程等免遭走滑断层同震地表错动引起直接破坏的避让带宽度具有十分重要现实意义.  相似文献   

9.
龙首山断裂带位于青藏高原向北东推挤的最前缘,是河西走廊与阿拉善地块之间的分界断裂之一.虽然观测精度有限,1954年发生在该断裂带上的71/4级地震是该断裂上少有的有现代地震观测和记录的大地震.本次地震仅在龙首山北缘断裂带两个次级断裂段之间的一条转换断层上形成了长7 km左右的连续地震地表破裂带,以北西向右旋兼正断为主要特征,这与区域上近东西向左旋逆断构造运动特征差异较大.经过多次野外调查和地质填图,发现在主断层上没有形成地震地表破裂带,而地震震害的分布又完全受龙首山南北两条断裂所围限,说明地震的孕震可能与龙首山断裂带主断裂有关,转换断层上的地表破裂仅为局部的应力释放.利用震源机制解资料,通过静态库仑应力变化模拟可以看到,如果主震发生在南缘断裂上,对地表破裂有显著的触发作用.综合考虑北缘断层可能存在的动态触发作用,说明目前所见地表破裂是龙首山断裂带主断裂地震的同震响应.小震精定位也显示,龙首山南北两侧的断裂在约10 km范围内形成一狭窄的倒三角形,并有向北扩展的趋势.  相似文献   

10.
摘要鲜水河断裂带是中国大陆内部少有的一条地震活动带,地震活动具有频度高、强度大的特点.沿鲜水河断裂带发育的一系列第四纪断层和一连串的大震所形成的断错水系及地震断层表明,鲜水河断裂是在统一的近东西向水平应力作用下作左旋错动的最新活动断裂,具有世界典型走滑断裂的线状特征.鲜水河断裂的地震断层以1725年康定木格错7.2级地震开始到1981年道孚6.9级地震近250年间,除道孚至乾宁间和乾宁海南至康定一段尚未勾通外,其余地段的地震断层均已连续布满全断裂带.以断裂破裂机制观点推测,这种地震断层只有连续布满全带,才能达到新的平衡,才能完成沿断裂带的地震活动周期,从这种意义上理解,破裂还将继续向断裂中段道孚至乾宁间以及断裂东南段乾宁至康定一段扩展.  相似文献   

11.
The Riyue Mt. Fault is a secondary fault controlled by the major regional boundary faults (East Kunlun Fault and Qilian-Haiyuan Fault). It lies in the interior of Qaidam-Qilianshan block and between the major regional boundary faults. The Riyue Mt. fault zone locates in the special tectonic setting which can provide some evidences for recent activity of outward extension of NE Tibetan plateau, so it is of significance to determine the activity of Riyue Mt. Fault since late Pleistocene to Holocene. In this paper, we have obtained some findings along the Dezhou segment of Riyue Mt. Fault by interpreting the piedmont alluvial fans, measuring fault scarps, and excavating trenches across the fault scarp. The findings are as follows:(1) Since the late Pleistocene, there are an alluvial fan fp and three river terraces T1-T3 formed on the Dezhou segment. The abandonment age of fp is approximately (21.2±0.6) ka, and that of the river terrace T2 is (12.4±0.11) ka. (2) Since the late Pleistocene, the dextral strike-slip rate of the Riyue Mt. Fault is (2.41±0.25) mm/a. In the Holocene, the dextral strike-slip rate of the fault is (2.18±0.40) mm/a, and its vertical displacement rate is (0.24±0.16) mm/a. This result indicates that the dextral strike-slip rate of the Riyue Mt. Fault has not changed since the late Pleistocene. It is believed that, as one of the dextral strikeslip faults, sandwiched between the the regional big left-lateral strike-slip faults, the Riyue Mt. Fault didn't cut the boundary zone of the large block. What's more, the dextral strike-slip faults play an important role in the coordination of deformation between the sub-blocks during the long term growth and expansion of the northeast Tibetan plateau.  相似文献   

12.
莱州湾海域郯庐断裂带活断层探测   总被引:21,自引:0,他引:21       下载免费PDF全文
利用浅地层剖面仪对郯庐断裂带莱州湾段进行了活断层探测,发现郯庐断裂带主干断裂在第四纪晚期以来具有明显的活动,继承了晚第三纪以来的主要构造活动特点,仍是这一区域的主导性构造. 西支KL3断裂由多条高角度正断裂组成,最新活动时代为晚更新世晚期至全新世早期,受到一系列错断晚更新世晚期沉积的北东或近东西向断裂的切割;东支龙口断裂由两段右阶斜列的次级断层组成,沿断裂带不但有明显的晚第四纪断错活动,而且还发育北北东向晚第四纪生长褶皱,表现出明显的晚更新世晚期至全新世活动特征. 在山东陆地区也发现了与龙口断裂相对应的安丘——莒县断裂,安丘段由一系列右阶斜列的次级断层组成. 从安丘向北至莱州湾凹陷,郯庐断裂带东支活断层构成了一条右旋单剪变形带,每一个次级活断层段相当于带内理论上次级压剪面,在第四纪晚期以来仍以右旋走滑活动为主要特征.   相似文献   

13.
Re-measured GPS data have recently revealed that a broad NE trending dextral shear zone exists in the eastern Bayan Har block about 200 km northwest of the Longmenshan thrust on the eastern margin of the Qinghai-Tibet Plateau. The strain rate along this shear zone may reach up to 4-6 mm/a. Our interpretation of satellite images and field observations indicate that this dextral shear zone corresponds to a newly generated NE trending Longriba fault zone that has been ignored before. The northeast segment of the Longriba fault zone consists of two subparallel N54°±5°E trending branch faults about 30 km apart, and late Quaternary offset landforms are well developed along the strands of these two branch faults. The northern branch fault, the Longriqu fault, has relatively large reverse component, while the southern branch fault, the Maoergai fault, is a pure right-lateral strike slip fault. According to vector synthesizing principle, the average right-lateral strike slip rate along the Longriba fault zone in the late Quaternary is calculated to be 5.4±2.0 mm/a, the vertical slip rate to be 0.7 mm/a, and the rate of crustal shortening to be 0.55 mm/a. The discovery of the Longriba fault zone may provide a new insight into the tectonics and dynamics of the eastern margin of the Qinghai-Tibet Plateau. Taken the Longriba fault zone as a boundary, the Bayan Har block is divided into two sub-blocks: the Ahba sub-block in the west and the Longmenshan sub-block in the east. The shortening and uplifting of the Longmenshan sub-block as a whole reflects that both the Longmenshan thrust and Longriba fault zone are subordinated to a back propagated nappe tectonic system that was formed during the southeastward motion of the Bayan Har block owing to intense resistance of the South China block. This nappe tectonic system has become a boundary tectonic type of an active block supporting crustal deformation along the eastern margin of the Qinghai-Tibet Plateau from late Cenozoic till now. The Longriba fault zone is just an active fault zone newly-generated in late Quaternary along this tectonic system.  相似文献   

14.
The Tan-Lu Fault Zone(TLFZ), a well-known lithosphere fault zone in eastern China, is a boundary tectonic belt of the secondary block within the North China plate, and its seismic risk has always been a focus problem. Previous studies were primarily conducted on the eastern graben faults of the Yishu segment where there are historical earthquake records, but the faults in western graben have seldom been involved. So, there has been no agreement about the activity of the western graben fault from the previous studies. This paper focuses on the activity of the two buried faults in the western graben along the southern segment of Yishu through combination of shallow seismic reflection profile and composite drilling section exploration. Shallow seismic reflection profile reveals that the Tangwu-Gegou Fault(F4)only affects the top surface of Suqian Formation, therefore, the fault may be an early Quaternary fault. The Yishui-Tangtou Fault(F3)has displaced the upper Pleistocene series in the shallow seismic reflection profile, suggesting that the fault may be a late Pleistocene active fault. Drilling was implemented in Caiji Town and Lingcheng Town along the Yishui-Tangtou Fault(F3)respectively, and the result shows that the latest activity time of Yishui-Tangtou Fault(F3)is between(91.2±4.4)ka and(97.0±4.8)ka, therefore, the fault belongs to late Pleistocene active fault. Combined with the latest research on the activity of other faults along TLFZ, both faults in eastern and western graben were active during the late Pleistocene in the southern segment of the Yishu fault zone, however, only the fault in eastern graben was active in the Holocene. This phenomenon is the tectonic response to the subduction of the Pacific and Philippine Sea Plate and collision between India and Asian Plate. The two late Quaternary active faults in the Yishu segment of TLFZ are deep faults and present different forms on the surface and in near surface according to studies of deep seismic reflection profile, seismic wave function and seismic relocation. Considering the tectonic structure of the southern segment of Yishu fault zone, the relationship between deep and shallow structures, and the impact of 1668 Tancheng earthquake(M=8(1/2)), the seismogenic ability of moderate-strong earthquake along the Yishui-Tangtou Fault(F3)can't be ignored.  相似文献   

15.
郯庐断裂带莒县胡家孟晏地震破裂带的发现   总被引:4,自引:3,他引:1       下载免费PDF全文
郯庐断裂带是中国东部最主要的一条活动断裂带。在该断裂带中部,沂沭断裂东地堑的潍坊—嘉山段中发育了1条长360km的全新世活动断裂带(F5),在该全新世断裂带的北段和中段分别发生了公元70年的安丘地震和公元1668年的郯城地震。2003年底我们考察沭河断裂带时,在莒县境内发现了1条长约7km的地震破裂带,作为活动断层应该归属于F5断裂带,但其是一条独立的地震破裂段还是归属于1668年郯城8.5级地震破裂带有待于进一步的研究。尽管如此,探槽揭示出的上覆未经破坏的地层的14C年代表明,该破裂带在(2140±190)aBP以来没有过活动,因此我们认为其作为1条独立破裂段的可能性较大  相似文献   

16.
The northeastern margin of Tibetan plateau is an active block controlled by the eastern Kunlun fault zone, the Qilian Shan-Haiyuan fault zone, and the Altyn Tagh fault zone. It is the frontier and the sensitive area of neotectonic activity since the Cenozoic. There are widespread folds, thrust faults and stike-slip faults in the northeastern Tibetan plateau produced by the intensive tectonic deformation, indicating that this area is suffering the crustal shortening, left-lateral shear and vertical uplift. The Riyueshan Fault is one of the major faults in the dextral strike-slip faults systems, which lies between the two major large-scale left-lateral strike-slip faults, the Qilian-Haiyuan Fault and the eastern Kunlun Fault. In the process of growing and expanding of the entire Tibetan plateau, the dextral strike-slip faults play an important role in regulating the deformation and transformation between the secondary blocks. In the early Quaternary, because of the northeastward expansion of the northeastern Tibetan plateau, tectonic deformations such as NE-direction extrusion shortening, clockwise rotation, and SEE-direction extrusion occurred in the northeastern margin of the Tibetan plateau, which lead to the left-lateral slip movement of the NWW-trending major regional boundary faults. As the result, the NNW-trending faults which lie between these NWW direction faults are developed. The main geomorphic units developed within the research area are controlled by the Riyueshan Fault, formed due to the northeastward motion of the Tibet block. These geomorphic units could be classified as:Qinghai Lake Basin, Haiyan Basin, Datonghe Basin, Dezhou Basin, and the mountains developed between the basins such as the Datongshan and the Riyueshan. Paleo basins, alluvial fans, multiple levels of terraces are developed at mountain fronts. The climate variation caused the formation of the geomorphic units during the expansion period of the lakes within the northeastern Tibetan plateau. There are two levels of alluvial fans and three levels of fluvial terrace developed in the study area, the sediments of the alluvial fans and fluvial terraces formed by different sources are developed in the same period. The Riyueshan Fault connects with the NNW-trending left-lateral strike-slip north marginal Tuoleshan fault in the north, and obliquely connects with the Lajishan thrust fault in the south. The fault extends for about 180km from north to south, passing through Datonghe, Reshui coal mine, Chaka River, Tuole, Ketu and Xicha, and connecting with the Lajishan thrusts near the Kesuer Basin. The Riyueshan Fault consists of five discontinuous right-step en-echelon sub-fault segments, with a spacing of 2~3km, and pull-apart basins are formed in the stepovers. The Riyueshan Fault is a secondary fault located in the Qaidam-Qilian active block which is controlled by the major boundary faults, such as the East Kunlun Fault and the Qilian-Haiyuan Fault. Its activity characteristics provide information of the outward expansion of the northeastern margin of Tibet. Tectonic landforms are developed along the Riyueshan Fault. Focusing on the distinct geomorphic deformation since late Pleistocene, the paper obtains the vertical displacement along the fault strike by RTK measurement method. Based on the fault growth-linkage theory, the evolution of the Riyueshan Fault and the related kinetic background are discussed. The following three conclusions are obtained:1)According to the characteristics of development of the three-stage 200km-long steep fault scarp developed in the landforms of the late Pleistocene alluvial fans and terraces, the Riyueshan Fault is divided into five segments, with the most important segment located in the third stepover(CD-3); 2)The three-stage displacement distribution pattern of the Riyueshan Fault reveals that the fault was formed by the growths and connections of multiple secondary faults and is in the second stage of fault growth and connection. With CD-3 as the boundary, the faults on the NW side continue to grow and connect; the fault activity time on the SE side is shorter, and the activity intensity is weaker; 3)The extreme value of the fault displacement distribution curve indicates the location of strain concentration and stress accumulation. With the stepover CD-3 as the boundary, the stress and strain on NW side are mainly concentrated in the middle and fault stepovers. The long-term accumulation range of stress on the SE side is relatively dispersed. The stress state may be related to the counterclockwise rotation inside the block under the compression of regional tectonic stress.  相似文献   

17.
滇东南楔形构造区发震构造背景探讨   总被引:2,自引:4,他引:2       下载免费PDF全文
何宏林 《地震地质》1992,14(3):217-226
滇东南楔形构造区的区域断裂几何结构突出地表现为半棋盘格式。具有区域应力场分界意义的红河断裂,把其它几条断裂限制在其北部,并与小江断裂带构成第一级的半断块。构造区内,曲江断裂被李浩寨断裂限制在其西侧;后者与异龙湖断裂交汇于建水盆地中;建水断裂把黑泥地断裂限制于其东,并与李浩寨断裂构成建水盆地右阶拉分岩桥区,向南终止于山花。 深部构造、区域形变及断裂活动表明该构造区是一个断块挤压隆起构造区。最后,对楔形构造区的地震活动与挤压隆起断块运动的关系作了简要的分析  相似文献   

18.
论广州地区的地震构造及其发震危险性   总被引:2,自引:2,他引:2  
潘建雄 《华南地震》1992,12(4):32-41
广州的主要断裂构造是北北东向的广州—从化断裂带与近东西向的瘦狗岭断裂带与广州—三水断裂带。在北西西—南东东向区域构造应力场作用下,上述两条近东西向的断裂带组成右行左阶排列,导致岩桥区出现近东西向的附加挤压应力场,酿成广州—从化断裂带广州段内发生右行剪切运动,它是广州地区历史上数十次地震的发生带,是广州地区的主要发震构造;而右行左阶排列的近东西向断裂带的活动则是蕴育广州地震的原因。由于广州地区之主要发震构造规模不大,地震最大强度将以中强震为主,其极震区之地震烈度一般为六度,少数情况下可能接近七度。  相似文献   

19.
Neotectonic activity and formation mechanism of the Yishu Fault Zone   总被引:3,自引:0,他引:3  
On the basis of comprehensive analyses of fault textures and geometry, the active methods, stress field, mechanism and time of the Yishu Fault Zone during the neotectonic period are discussed in this paper. The results show that the Yishu Fault Zone is a major mobile belt since the Quaternary. It consists of four major active faults with reverse dextral slip. Their active intensity increases eastwards and southwards. Fault-slip data from many active faults in the fault zone demonstrate that ENE-WSW compression predominated in the neotectonic period. Detailed field investigation shows that formation mechanism of shallow, active faults in the Yishu Fault Zone includes direct boundary fault reactivity, buried fault propagation, and reactivity of antithetic and truncating faults. In most cases, shallow, active faults in the fault zone are developed through direct reactivity or upward propagation of the previous four graben boundary faults.  相似文献   

20.
通过卫星影像解译、野外实地调查与地质填图,对滇西南地区黑河断裂中西段晚第四纪构造活动特征进行了研究.结果表明,黑河断裂为一条规模较大的区域性活动断裂带,西起沧源县南,向东南止于澜沧江断裂,全长约168 km,走向280°~310°.该断裂晚第四纪新活动性具有一定的差异性和分段性.根据其几何结构、最新活动性及1988年澜沧7.6级地震破裂带特征,可将黑河断裂从西向东划分为沧源-木戛、木戛-南代和南代-勐往三条次级断裂段.其中的中、西段长约88 km,全新世活动显著,活动性质以右旋走滑为主.沿断裂形成了丰富的断错地貌现象.西段断裂的最新活动断错了全新世晚期地层;中段是1988年澜沧7.6级地震的发震断裂之一.根据对断错冲沟的测量和年代测试,得到其全新世以来右旋滑动速率为(3.54±0.78)mm/a,与区域上其它断裂的滑动速率大致相当,反映了其区域构造活动的整体性和协调性.  相似文献   

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