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1.
汶川8.0级地震序列的小震震源机制及应力场特征   总被引:4,自引:1,他引:3  
利用区域地震台网的数字地震波记录资料,由垂直向记录P和S振幅比值,结合部分清晰的P波初动记录资料,反演得到了2008年5月12日至2009年4月12日汶川8.0级地震序列中829个ML≥3.5的小震震源机制解。采用统计和力轴张量计算方法,分析了震源机制解参数并求取了余震区平均应力场。结果表明:用余震区北段小震震源机制解求得的节面为直立或倾斜,走向为NNE-SSW向,主压应力P轴方位为SWW-NEE方向,计算得到的平均应力张量σ1方向为77.1°;用余震区南段小震震源机制解求得的节面倾角较陡,在50°~90°之间,走向相对较分散,平均应力张量σ1方向为92.4°,呈EW向。从余震区南、北段的平均应力场方位随时间演化过程可以看出,余震区在2008年8月、9月、12月和2009年1月处于应力场调整阶段。最后研究了余震区南、北段的震源机制一致性参数θ及逆冲型地震类型随时间的变化,得到了一些有意义的结果。  相似文献   

2.
本文利用34°N以南,105°E以东大陆东南地区中强地震和小震的震源机制解结果,分析了震源机制解与可能的中强震发震构造及潜源区方向的关系.华南及邻区地震震源机制解节面走向和主应力轴方位分布具有明显的优势方向,大部分M≥4.0地震震源机制解中一个节面走向与主要构造走向及大多数潜源区方向对应较好,多数小震的节面走向和主应力轴方位综合统计结果也能为潜源区方向的判定提供比较可靠的依据.同时通过对1996年南黄海Ms6.1地震和1997年福建龙岩-永安Ms5.2地震的震源机制解结果进行分析,并结合区域地质构造、地震活动以及地震的等震线长轴展布、余震分布等资料,探讨了这两个地区潜源区的划分.  相似文献   

3.
本文采用双差定位法对2017年8月8日至10月31日期间四川九寨沟MS7.0主震及5200个余震序列进行相对定位,得到4036个重定位地震事件.采用中国区域地震台网观测到的宽频带垂直分向波形数据和W震相反演方法,得到了主震震源机制解.重定位结果显示,余震序列分别沿NNW和SSE两个方向扩展,展布长度约58 km,且这些余震主要集中在22 km深度之上.余震分布的另一个重要特点是具有分区特性,即在主震NNW方向约5 km处存在明显的西北和东南两区余震活动分界线;西北区的余震由深至浅具有较好连续性,而东南区却在约10 km深度处存在不连续性.余震分布的这种分区特征,说明九寨沟地震震源区的地壳结构存在强烈的不均匀性.余震分布与主震破裂特征的一致性,证实了我们定位结果的可靠性.主震的震源机制解展示出节面Ⅰ的走向/倾角/滑动角分别为246°/83.7°/-177°,而节面Ⅱ的走向/倾角/滑动角为155.7°/87.1°/-6.3°,最佳质心深度为15.5 km,矩震级MW为6.5.根据余震分布较为垂直和主震震源机制解两节面的倾角均在80°以上,并结合野外地质调查结果,推测此次九寨沟地震为与节面Ⅱ参数相近的一次高角度的左旋走滑型事件.  相似文献   

4.
芦山7.0级地震序列的震源位置与震源机制解特征   总被引:7,自引:0,他引:7       下载免费PDF全文
基于中国国家和四川区域数字地震台网记录,采用HypoDD方法精确定位了四川芦山ML2.0级以上地震序列的震源位置,采用CAP方法反演了36次ML4.0级以上地震的最佳双力偶震源机制解,并利用小震分布和区域应力场拟合了可能存在的发震断层面参数,从而综合分析了芦山地震序列的震源深度、震源机制和震源破裂面特征,探讨可能的发震构造.结果显示,7.0级主震的震源位置为30.30°N、102.97°E,初始破裂深度为15 km左右,震源矩心深度为14 km左右,最佳双力偶震源机制解的两组节面分别为走向209°/倾角46°/滑动角94°和走向23°/倾角44°/滑动角86°,可视为纯逆冲型地震破裂,绝大多数ML4.0级以上余震的震源机制也表现出与主震类似的逆冲破裂特征.ML2.0级以上余震序列发生在主震两侧,集中分布的长轴为30 km左右,震源深度主要集中在5~27 km,ML3.5级以上较大余震则集中分布在9~25 km的深度上,并揭示出发震断层倾向北西的特征.利用小震分布和区域应力场拟合得到发震断层参数为走向207°/倾角50°/滑动角92°,绝大多数余震发生在断层面附近10 km左右的区域.综合地震序列分布特征、主震震源深度和已有破裂过程研究结果,可以推测主震破裂过程自初始点沿断层的两侧扩展破裂,南侧破裂比北侧稍长,滑动量主要集中在初始破裂点附近,可能没有破裂到地表.综合本文研究成果、地震烈度分布和现有的科学考察结果,初步推测发震构造为龙门山山前断裂,也不排除主震震中东侧还存在一条未知的基底断裂发震的可能性.  相似文献   

5.
2008年5月12日四川汶川8.0级地震与部分余震的震源机制解   总被引:4,自引:0,他引:4  
郭祥云  陈学忠  李艳娥 《地震》2010,30(1):50-60
采用区域和远台Pn或Pg初至波初动符号, 利用下半球等面积投影, 求解了2008年5月12日四川汶川8.0级地震和截止到2008年12月10日发生的部分4级以上余震的震源机制解。 汶川8.0级地震的震源机制为: 节面Ⅰ的走向为5°, 倾角为48°, 滑动角为39°; 节面Ⅱ的走向为247°, 倾角为62°, 滑动角为131°。 P轴方位角为309°, 仰角为8°, T轴方位角为208°, 仰角为54 °, B轴方位角为44°, 仰角为35°。 结合地质构造和余震空间分布, 可以确定节面Ⅱ为发震断层面。 根据震源机制解, 引发本次地震的断层活动主要表现为逆冲, 主破裂面为S67°W与该地震所在断层的走向基本一致(断裂总体走向N45°E)[1]; 主压应力轴P轴为N51 °W, 主压应力轴P轴方位与该区域构造应力场方向基本一致。 根据余震震源机制解结果, 龙门山断裂带南段发生的余震与北段发生的余震的震源机制都具有优势分布, 且两者差异明显。 早期发生在南段的余震的破裂是以逆倾滑动为主, 兼有走向滑动; 而随着时间的推移, 余震向北段迁移, 在龙门山构造的北段地震震源的破裂方式以走向滑动为主, 兼有一定的逆倾滑动; 龙门构造带南段震源应力场受主震应力场的控制, 而龙门构造带北段震源应力场不仅受区域应力场的影响, 还受主震应力场的影响。  相似文献   

6.
唐山余震区中小地震震源机制解分区特征的初步研究   总被引:4,自引:1,他引:3  
利用2002~2006年数字化地震资料,分析了该时段发生的中小地震空间分布特征,并采用网格密集值计算方法将唐山余震区细分为5个区域.在每一分区内利用格点尝试法求解小震综合节面解.结果表明:各分区小震震源机制节面解有所不同,P轴方位角存在一定的转向变化.宁河6.9级地震所在的一区以及唐山7.8级主震所在的二区的P轴方位角呈北东东-南西西方向,三区、四区P轴方位角沿中小地震的分布呈东西向,此后五区再次转为北东向.各分区小震综合解的P波初动方向矛盾比也呈现出较大的差异.唐山7.8级主震所在的二区矛盾比最高,达0.41,而没有发生强余震的夏官营一带所在的五区矛盾比较低,仅为0.23.分区研究小震综合节面解,显示出应力场的细微差异,具体勾划了唐山余震区应力场的复杂性.  相似文献   

7.
针对2008年8月30日在四川攀枝花-会理发生的Ms6.1地震序列,本研究基于四川和云南两省数字地震台网的宽频带波形记录,采用CAP方法反演了该序列主震及ML≥4.0余震的震源机制解.结果显示:主震震源机制解的两个主应力轴仰角小于10°,其中,主压力轴方位为140°;节面之一走向185°、西倾83°、滑动角5°,显示左旋走滑略兼逆冲分量的断层作用性质.结合余震、烈度分布以及震区的活动构造,判定该节面代表了主震的发震断层面,相应的发震断层应是穿越震区的近南北向红格断裂(南段).本研究还获得主震震源机制解的最佳拟合误差深度为10 km,与该事件的定位结果相一致.该序列中6次ML≥4.0余震也具有与主震类似的震源机制解.分析初步表明:空间上,2008年攀枝花-会理Ms6.1地震序列的震源机制解与研究区内更早地震的震源机制解具有良好的协调性,反映了该序列是在川滇地块SE-SSE向水平运动的背景下、沿近S-N向红格断裂发生左旋走滑略兼逆冲运动的结果.  相似文献   

8.
1996年11月19日新疆和田西南喀喇昆仑山口发生了7.1级地震.极震区烈度达Ⅶ度.区内造成大面积的崩塌、滑坡.此次地震为主-余震型,主震发生后最大余震为5.2级.余震序列衰减较快,至1997年12月发生3.5级以上地震共有67次.震源机制解的节面Ⅱ为此次地震的主破裂面,走向北西西,P轴方位N57°E,仰角10°,地震在北东向水平挤压作用下发生左旋走滑破裂.此次地震发生在规模巨大的喀喇昆仑断裂带上,是喀喇昆仑断裂带近代新活动的表现.  相似文献   

9.
依据1990 ̄1996年期间发生在30° ̄34°N,119.5° ̄123°区域内145次中,小地震的350个初动符号,采用格点尝试法计算了南黄海6.1级地震前各年龄的小震综合节面解。结果表明:平均主应力轴方位由NNE向NEE方向偏移,矛盾符号比由高值趋向低值,反映了震前区内应力场的调整,集中和加强的过程。  相似文献   

10.
李金  王琼 《中国地震研究》2015,29(4):527-538
基于新疆及西藏区域数字地震台网的宽频带资料,采用CAP方法反演了2014年2月12日于田7.3级地震的前震、主震及早期MS≥3.5余震序列的震源机制解。结果显示,此次7.3级强震为带有正断分量的走滑型地震,结合震源区的构造和余震分布,节面I走向241°/倾角90°/滑动角-22°,判定该节面代表了主震的发震断层面。主震主压力轴方位为194o,与该区历史中强震主压应力P轴方位近NS向较为接近。其5.4级前震和主震震源机制解具有较高的一致性。18次余震中有10次为走滑型地震,其中6次为正断型,2次为逆断型,且70%的地震具有近SN向的P轴方位。此次7.3级地震序列震源深度范围5~28km,而大部分地震为15~20km,略大于本文计算得到的主震震源深度10km。  相似文献   

11.
On October 17, 2014, a MS6.6 earthquake occurred in Jinggu, Yunnan. The epicenter was located in the western branch of Wuliang Mountain, the northwest extension line of Puwen Fault. There are 2 faults in the surrounding area, one is a sinistral strike-slip and the other is the dextral. Two faults have mutual intersection with conjugate joints property to form a checkerboard faulting structure. The structure of the area of the focal region is complex. The present-day tectonic movement is strong, and the aftershock distribution indicates the faulting surface trending NNW. There is no obvious surface rupture related to the known fault in the epicenter, and there is a certain distance from the surface of the Puwen fault zone. Regional seismic activity is strong. In 1941, there were two over magnitude 7.0 earthquakes in the south of the epicenter of Jinggu County and Mengzhe Town. In 1988, two mainshock-aftershock type earthquakes occurred in Canglan-Gengma Counties, the principal stress axes of the whole seismic area is in the direction of NNE. Geological method can be adopted to clarify the distribution of surficial fracture caused by active faults, and high-precision seismic positioning and spatial distribution characteristics of seismic sequences can contribute to understand deep seismogenic faults and geometric features. Thus, we can better analyze the three-dimensional spatial distribution characteristics of seismotectonics and the deep and shallow tectonic relationship. The focal mechanism reveals the property and faulting process to a certain extent, which can help us understand not only the active property of faults, but also the important basis for deep tectonic stress and seismogenic mechanism. In order to study the fault characteristic of the Jinggu earthquake, the stress field characteristics of the source area and the geometric parameters of the fault plane, this paper firstly uses the 15 days aftershock data of the Jingsuo MS6.6 earthquake, to precisely locate the main shock and aftershock sequences using double-difference location method. The results show that the aftershock sequences have clustering characteristics along the NW direction, with a depth mainly of 5~15km. Based on the precise location, calculations are made to the focal mechanisms of a total of 46 earthquakes including the main shock and aftershocks with ML ≥ 3.0 of the Jinggu earthquake. The double-couple(DC)component of the focal mechanism of the main shock shows that nodal plane Ⅰ:The strike is 239°, the dip 81°, and the rake -22°; nodal plane Ⅱ, the strike is 333°, the dip 68°, and the rake -170.31°. According to focal mechanism solutions, there are 42 earthquakes with a focal mechanism of strike-slip type, accounting for 91.3%. According to the distribution of the aftershock sequence, it can be inferred that the nodal plane Ⅱ is the seismogenic fault. The obtained focal mechanism is used to invert the stress field in the source region. The distribution of horizontal maximum principal stress orienation is concentrated. The main features of the regional tectonic stress field are under the NNE-SSW compression(P axis)and the NW-SE extension(T axis)and are also affected by NNW direction stress fields in the central region of Yunnan, which indicates that Jinggu earthquake fault, like Gengma earthquake, is a new NW-trending fault which is under domination of large-scale tectonic stress and effected by local tectonic stress environment. In order to define more accurately the occurrence of the fault plane of the Jinggu earthquake, with the precise location results and the stress field in the source region, the global optimal solution of the fault plane parameters and its error are obtained by using both global searching simulated annealing algorithm and local searching Gauss-Newton method. Since the parameters of the fault plane fitting process use the stress parameters obtained by the focal mechanism inversion, the data obtained by the fault plane fitting is more representative of the rupture plane, that is, the strike 332.75°, the dip 89.53°, and the rake -167.12°. The buried depth of the rupture plane is 2.746km, indicating that the source fault has not cut through the surface. Based on the stress field characteristics and the inversion results of the fault plane, it is preliminarily believed that the seismogenic structure of the Jinggu earthquake is a newly generated nearly vertical right-lateral strike-slip fault with normal component. The rupture plane length is about 17.2km, which does not extend to the Puwen fault zone. Jinggu earthquake occurred in Simao-Puer seismic region in the south of Sichuan-Yunnan plate. Its focal mechanism solution is similar to that of the three sub-events of the Gengma earthquake in November 1988. The seismogenic structure of both of them is NW-trending and the principal stress is NE-SW. The rupture plane of the Jinggu main shock(NW direction)is significantly different from the known near NS direction Lancang Fault and the near NE direction Jinggu Fault in the study area. It is preliminarily inferred that the seismogenic structure of this earthquake has a neogenetic feature.  相似文献   

12.
In this paper, a new method for small event detection named Match & Locate(M&L)is used to detect and locate the small earthquakes that are missing in the catalogue of the February 28, 2014 Shizuishan ML4.4 earthquake swarm. A total of 34 earthquakes were detected, which is nearly 3 times as much as the number(13)of earthquakes from Ningxia seismic network. The number of earthquake swarm sequence is greatly increased. Then, it provides the possibility for the fine study of the earthquake swarm activity and seismogenic fault. The best double couple solution of the main shock obtained by the cut and paste method is strike 354°, dip 70° and slip 166° for nodal plane I, and strike 89°, dip 77° and slip 21°for nodal plane Ⅱ. The main shock is a dextral strike-slip earthquake with a small amount of thrust component. And, the depth of the main shock is 7~8km, which is a shallow earthquake, derived from the results of the double difference relocation and the best fitting depth of focal mechanism. Together with the results of deep 3-D seismic tomography of the Yinchuan Basin, our results show that the main shock and the largest aftershock more likely occurred in the upper crust, and the rest of earthquakes mainly occurred at the bottom of sedimentary layer or on the top of the upper crust crystallization basement. We find some interesting phenomena on the pattern of time-space evolution of the earthquake swarm. The distribution of earthquake swarm is in the near north-south direction. Aftershocks are mainly concentrated in the north region of the main shock, which show an obvious trend of extending gradually from the south to the north. Also, the result shows the general trend of shallower focal depth with the development of aftershocks to the north. The results of distribution and depth profile of the earthquake swarm and the focal mechanism of the main shock all show that the sequence probably occurred in the fault at the east foot of Helan Mountain with an eastward dip and a larger dip angle. Surface projection image of the earthquake sequence shows that the epicenter distribution extends northward from the northern end of the fault. This may suggest that the deep part of the fault is likely to extend northward.  相似文献   

13.
北京时间2020年7月23日04时07分,西藏自治区那曲市尼玛县发生MS6.6地震,震源深度10 km,震中位置为(33.19°N,86.81°E)。主震发生当日18时50分,发生一次MS4.8强余震,震源深度为10 km。本文基于西藏、青海、新疆区域波形资料,采用ISOLA近震全波形方法对这两次地震进行震源机制反演。结果显示,尼玛MS6.6主震的最佳断层面解为:节面Ⅰ走向8°/倾角46°/滑动角?93°,节面Ⅱ走向191°/倾角44°/滑动角?87°;矩震级MW6.4,最佳矩心深度7 km。震源区应力主轴的空间取向为:主压力轴P的方位角220°、倾伏角88°,主张力轴T方位角99°、倾伏角1°。MS4.8强余震的最佳断层面解为:节面Ⅰ走向12°/倾角47°/滑动角?106°,节面Ⅱ走向214°/倾角45°/滑动角?74°;矩震级MW5.0,最佳矩心深度6 km。震源区应力主轴的空间取向为:主压力轴P的方位角207°、倾伏角78°,主张力轴T方位角113°、倾伏角1°。震源机制反演结果表明,这两次地震均为以正断型为主的地震事件,与震源区附近先前地震的震源机制有较好的一致性。结合周边地质构造和余震分布,我们认为尼玛MS6.6地震可能是由位于日干配错断裂和依布茶卡盆地西缘断裂之间的一条正断层活动所引发的。   相似文献   

14.
2022年1月8日青海省海北州门源县发生MS6.9地震,震后产生了长约22 km的地表破裂带,青海、甘肃和宁夏等多地震感强烈。本文基于区域地震台网资料,通过多阶段定位方法对门源MS6.9地震早期序列(2022年1月8日至12日)进行了重定位,并利用gCAP方法反演了主震和MS≥3.4余震的震源机制和震源矩心深度,计算了现今应力场体系在门源MS6.9地震震源机制两个节面产生的相对剪应力和正应力。结果表明:门源MS6.9地震的初始破裂深度为7.8 km,震源矩心深度为4 km,地震序列的优势初始破裂深度主要介于7—8 km之间,而MS≥3.4余震的震源矩心深度为3—7 km;该地震序列的震源深度剖面显示震后24个小时内的地震序列长度约为25 km,与地表破裂带的长度大体一致,整体地震序列长度约为30 km,其中1月8日MS6.9主震和MS5.1余震位于余震区西段,1月12日MS5.2余震位于余震区东段。2022年1月8日门源MS6.9主震的震源机制解节面Ⅰ为走向290°、倾角81°、滑动角16°,节面Ⅱ为走向197°、倾角74°、滑动角171°,根据余震展布的总体趋势估计断层面走向为290°,表明此次地震为近乎直立断层面上的一次左旋走滑型事件;MS≥3.4余震的震源机制解显示这些地震主要为走滑型地震,P轴走向从余震区西段到东段之间大体呈现NE向到EW向的变化。现今应力场体系在门源MS6.9主震震源机制解节面Ⅰ上产生的相对剪应力为0.638,而在节面Ⅱ上的相对剪应力为0.522,表明这两个节面均非构造应力场的最大释放节面,这与2016年门源MS6.4地震逆冲型震源机制为构造应力场的最优释放节面有着明显差异。结合地质构造、震源机制和余震展布,2022年1月8日门源MS6.9主震的发震构造可能为冷龙岭断裂西段,其地震断层错动方式为左旋走滑。根据重定位结果、震级-破裂关系以及剪应力结果,本文认为门源地区存在一定的应力积累且应力未得到充分释放,该地区仍存在发生强震的危险。   相似文献   

15.
The Oct.1,2014 M5.0 Yuexi earthquake occurred on the Daliang Shan fault zone where only several historical moderate earthquakes were recorded.Based on the waveform data from Sichuan regional seismic network,we calculated the focal mechanism solution and centroid depth of the M5.0 Yuexi earthquake by CAP (Cut and Paste) waveform inversion method,and preliminarily analyzed the seismogenic structure.We also calculated the apparent stress values of the M5.0 earthquake and other 14 ML≥4.0 events along the Shimian-Qiaojia fault segment of the eastern boundary of the Sichuan-Yunnan block.The result indicates that the parameters of the focal mechanism solution are with a strike of 256°,dip of 62°,and slip of 167° for the nodal plane Ⅰ,and strike of 352°,dip of 79°,and slip of 29° for the nodal plane Ⅱ.The azimuth of the P axis is 121° with dip angle of 11°,the azimuth of T axis is 217° with dip angle of 28°,and the centroid depth is about 11km,and moment magnitude is MW5.1.According to the focal mechanism solution and the fault geometry near the epicenter,we infer that the seismogenic fault is a branch fault,i.e.,the Puxiong Fault,along the central segment of the Daliang Shan fault zone.Thus,the nodal plane Ⅱ was interpreted as the coseismic rupture plane.The M5.0 Yuexi earthquake is a strike-slip faulting event with an oblique component.The above findings reveal the M5.0 Yuexi earthquake resulted from the left-lateral strike-slip faulting of the NNW Dalang Shan fault zone under the nearly horizontal principal compressive stress regime in an NWW-SEE direction.The apparent stress value of the Yuexi earthquake is 0.99MPa,higher than those of the ML ≥ 4.0 earthquakes along the eastern boundary of the Sichuan-Yunnan block since 2008 Wenchuan M8.0 earthquake,implying a relatively high stress level on the seismogenic area and greater potential for the moderate and strong earthquake occurrence.It may also reflect the current increasing stress level of the entire area along the eastern boundary,and therefore,posing the risk of strong earthquakes there.  相似文献   

16.
利用来源于江西区域台网和中国地震台网共6个台的宽频带数字地震记录,采用CAP方法反演了2005年11月26日九江—瑞昌5.7级地震和4.8级强余震的震源机制解,并结合地震序列的精确定位结果和区域地质背景讨论了发震构造.结果显示,5.7级主震的最佳双力偶解为节面Ⅰ走向223°,倾角75°,滑动角144°;节面Ⅱ走向324°,倾角55°,滑动角18°.4.8级强余震的最佳双力偶解为节面Ⅰ走向54°,倾角71°,滑动角-160°;节面Ⅱ走向317°,倾角71°,滑动角-20°,这两次地震的震源机制解不完全一致.地震序列在震中空间分布和震源深度分布上也具有复杂性.5.7级主震发生后,余震活动从SE向NW、从浅部往深部发展,在破裂过程中可能遇到障碍体,触发了4.8级强余震.5.7级主震的发震构造可能为隐伏在瑞昌盆地内的洋鸡山—武山—通江岭NW向断裂,4.8级强余震的发震构造可能为瑞昌盆地西北缘的丁家山—桂林桥—武宁NE向断裂北段.  相似文献   

17.
The Wulong MS5.0 earthquake on 23 November 2017, located in the Wolong sap between Wenfu, Furong and Mawu faults, is the biggest instrumentally recorded earthquake in the southeastern Chongqing. It occurred unexpectedly in a weak earthquake background with no knowledge of dramatically active faults. The complete earthquake sequences offered a significant source information example for focal mechanism solution, seismotectonics and seismogenic mechanism, which is helpful for the estimation of potential seismic sources and level of the future seismic risk in the region. In this study, we firstly calculated the focal mechanism solutions of the main shock using CAP waveform inversion method and then relocated the main shock and aftershocks by the method of double-difference algorithm. Secondly, we determined the seismogenic fault responsible for the MS5.0 Wulong earthquake based on these calculated results. Finally, we explored the seismogenic mechanism of the Wulong earthquake and future potential seismic risk level of the region. The results show the parameters of the focal mechanism solution, which are:strike24°, dip 16°, and rake -108° for the nodal plane Ⅰ, and strike223°, dip 75°, and rake -85° for the nodal plane Ⅱ. The calculations are supported by the results of different agencies and other methods. Additionally, the relocated results show that the Wulong MS5.0 earthquake sequence is within a rectangular strip with 4.7km in length and 2.4km in width, which is approximately consistent with the scales by empirical relationship of Wells and Coppersmith(1994). Most of the relocated aftershocks are distributed in the southwest of the mainshock. The NW-SE cross sections show that the predominant focal depth is 5~8km. The earthquake sequences suggest the occurrence features of the fault that dips northwest with dip angle of 63° by the least square method, which is largely consistent with nodal planeⅡof the focal mechanism solution. Coincidentally, the field outcrop survey results show that the Wenfu Fault is a normal fault striking southwest and dipping 60°~73° by previous studies. According to the above data, we infer that the Wenfu Fault is the seismogenic structure responsible for Wulong MS5.0 earthquake. We also propose two preliminary genetic mechanisms of "local stress adjustment" and "fluid activation effect". The "local stress adjustment" model is that several strong earthquakes in Sichuan, such as M8.0 Wenchuan earthquake, M7.0 Luzhou earthquake and M7.0 Jiuzhaigou earthquake, have changed the stress regime of the eastern margin of the Sichuan Basin by stress transference. Within the changed stress regime, a minor local stress adjustment has the possibility of making a notable earthquake event. In contract, the "fluid activation effect" model is mainly supported by the three evidences as follows:1)the maximum principle stress axial azimuth is against the regional stress field, which reflects NWW-SEE direction thrusting type; 2)the Wujiang River crosscuts the pre-existing Wenfu normal fault and offers the fluid source; and 3)fractures along the Wenfu Fault formed by karst dissolution offer the important fluid flow channels.  相似文献   

18.
选用Hayes和Guangfu Shao等给出的震源破裂模型(2011年3月网上公布)、哈佛CMT目录和日本F-net目录给出的余震目录,使用Coulomb3.2软件,对2011年3月11日发生在日本本州东海岸附近海域的M_W9.0地震序列间的静态库仑应力触发关系进行了初步研究。结果表明:1)3月9日发生的M_W7.2前震破裂分布产生的库仑应力对随后发生的M_W9.0主震存在触发作用;2)M_W9.0主震对余震的触发统计结果表明,选用不同的主震模型、余震目录、等效摩擦系数和震源机制解中不同的节面作为接收断层面时,会得到不同的触发统计结果,该研究得到的主震对余震的触发率最小为56.8%,最大为75.3%;3)利用震源机制解计算库仑应力时,理论上震源机制解的2个节面上的剪切应力是相同的,但在实际计算中可能由于2个节面的非正交或震源机制解结果的取整,导致2个节面上计算出的剪切应力不同,但一般差异很小。由于节面的选取对接收断层面上的剪切应力有一定影响,而对接收断层面上正应力的影响较大,因而会影响到库仑应力的计算结果,因此讨论某个具体余震是否被触发或统计余震触发率时,对接收断层面的选取应加以注意。  相似文献   

19.
翟亮  张晓东  王伟君 《地震学报》2019,41(3):314-328
为确定2017年8月9日精河MS6.6地震的发震构造,本文使用双差定位方法对发震时刻至2017年10月震源区所发生的余震进行了精定位,同时利用CAP波形反演方法,得到了主震的震源机制解,同时使用GPAT方法反演得到了部分余震的震源机制解,并基于两者对本次地震的发震构造予以分析。结果显示:精定位后主震位于(44.27°N,82.85°E),震源深度为17 km;主震最佳双力偶解对应的节面Ⅰ的走向为260°、倾角为51°、滑动角为84°,节面Ⅱ的走向为89.5°、倾角为39.4°、滑动角为97.4°;余震序列位于主震东侧,并向东展布约30 km,在3—18 km深度范围内均有分布,其优势方向为近EW向,次优势方向为SW向。结果表明,本次地震是一次逆冲型地震,通过反演得到的大量小震震源机制解的结果与主震震源机制解结果相一致。结合余震震中分布、主震及余震的震源机制解以及震源区的地质构造,本文推断近EW走向具有逆冲性质的库松木楔克山前断裂为精河主震的发震构造。   相似文献   

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