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1.
华北地区中小地震应力场的优势方向   总被引:15,自引:0,他引:15       下载免费PDF全文
根据华北地区61次中、小地震(3.0≤M≤5.5)和10次M≥6.0大地震的震源机制结果的统计分析,得到地震释能应力场的优势方向,主压应力轴为70°-80°,主张应力轴为340°-350°,它们的仰角基本上小于45°。这表明,华北地区处于以北东东向水平压应力和北北西向水平张应力为主的现代构造应力场中。指出了这一地区6级以上地震和震源深度大于17公里的中、小地震应力场方向一致性较好,可能更接近构造应力场方向。华北地区一致性应力场的南缘,可能在秦岭、大别山及长江下游一带。  相似文献   

2.
中国大陆地壳应力场与构造运动区域特征研究   总被引:41,自引:16,他引:25       下载免费PDF全文
系统研究了1918~2006年间中国大陆及其周缘发生的3115个M4.6以上中、强地震的震源机制解,得到中国大陆地壳区域应力场的压应力轴和张应力轴空间分布的统计结果.探讨了大陆应力场的结构,以及周围板块运动对中国大陆应力场影响作用范围及其界线.结果表明,中国东部的华北地区受到太平洋板块向欧亚板块俯冲挤压的同时,又受到从贝加尔湖经过大华北直至琉球海沟的广阔范围内存在的方位为170°引张应力场的控制.华北地区大地震的震源机制解反映出,该区地震发生为NEE向挤压应力和NNW向张应力的共同作用结果.印度洋板块向欧亚板块的碰撞挤压运动所产生的强烈的挤压应力,控制了喜马拉雅、青藏高原、乃至延伸到天山及其以北的广大地区.在青藏高原周缘地区和中国西部的大范围内,压应力P轴水平分量位于20°~40°,形成了近北东方向的挤压应力场,大量逆断层型强震集中发生在青藏高原的南、北和西部周缘地区以及天山等地区. 本文结果表明,正断层型地震集中发生在青藏高原中部高海拔的地区.证明了青藏高原周缘区域发生南北向强烈挤压短缩的同时,中部高海拔地区存在着明显的近东西向的扩张运动.根据本文最新结果,得到了华北、华南块体之间地壳区域应力场的控制边界线,发现该分界线与大地构造、岩石圈板块构造图等有较大差异,特别是在大别及其以东地区, 该分界线向东南偏转,在沿海的温州附近转向东,最终穿过东海直至琉球海沟.台湾纵谷断层是菲律宾海板块与欧亚板块之间碰撞挤压边界,来自北西西向运动的菲律宾海板块构造应力控制了从台湾纵谷、华南块体,直到中国南北地震带南段东部地域的应力场. 地震震源机制结果还表明,南北地震带南段西侧其P轴大约为NNE方向,与青藏高原的P轴方位一致.南北地震带南段东侧其P轴大约为NWW方向,与华南块体的P轴方位一致.因此,将中〖JP2〗国大陆分成东、西两部分的南北地震带南段是印度洋板块与菲律宾海板块在中国大陆内部影响控制范围的分界线.  相似文献   

3.
华北地区小震综合断层面解的动态变化   总被引:2,自引:0,他引:2       下载免费PDF全文
本文采用地震学P波初动资料求解小地震综合断层面解方法,使用115个地震台的4000余个小地震初动资料,测定了华北地区近年小震应力场。提出在同一地震构造带上,小震断层面解的主压应力方向具有一致性。大地震前、后区域应力场可能发生变化。分析了1981年菏泽5.9级地震前小震应力场的动态变化特征等。指出随着大地震的发生,区域应力场发生变化是形成复杂的多层次的地震活动性的基础。最后,对华北地区应力场特征及高应力背景区等做了讨论  相似文献   

4.
利用全球震源机制解资料,采用力轴张量计算法,反演中国大陆附近板块边界线上的构造应力场空间分布,其最大主压应力轴的方位角与GPS研究得到的板块运动方向一致,太平洋板块西边界和菲律宾板块琉球岛弧段的最大主压应力轴的倾角与板块俯冲倾角基本相当,因此认为该方法反演的构造应力场真实可靠。1999年、2005年和2011年太平洋板块日本本州段的最大主压应力轴方位角存在转折现象,震例总结显示该转折现象往往对应华北地区5级以上,甚至6级左右地震,但2011年的转折变化对应华北地震的震级在5级左右。根据对太平洋板块西边界的分段研究,认为2011年的转折变化主要是由42°~50°N段的构造应力场转折引起的,而该段从地理位置结合俯冲方向来看,影响的主要地区是东北地区,而对华北的影响相对较小,因此导致对应地震的震级偏低。1992—2000年菲律宾板块琉球岛弧段的最大主压应力轴方位角存在大幅度、长时间的逆时针偏转现象,分析认为是造成同期华北南部地区发生多次具有典型华南应力场特征地震的原因。  相似文献   

5.
由多个小地震推断的华北地区构造应力场的方向   总被引:63,自引:7,他引:63       下载免费PDF全文
许忠淮  阎明  赵仲和 《地震学报》1983,5(3):268-279
利用1966——1978年间华北地区区域地震台记录的5级以下地震的初动方向,通过求平均节面解推断出13个分区的地壳构造应力场的主应力轴方向.通过数值试验论证了利用多个断层面随机取向的地震的 P、B、T 轴推断构造应力主轴方向的可能性.讨论了在推断构造应力场方向时,利用多个小地震资料比利用大地震资料所具有的优越性.用尝试法对所有可能解的三维参数空间以555的间隔进行了扫描搜索,改进了扫描方法,节省了计算时间.   相似文献   

6.
聊城——兰考断裂带及其邻区现代地壳应力场与地震活动   总被引:1,自引:0,他引:1  
本文利用聊城——兰考断裂带及其邻区25个小地震震源机制结果及近期小地震资料,分析了本区现代地壳应力场以及地震活动的基本特征。发现:本区主压应力轴取向为北东东(近东西)向,主张应力轴为北北西(近南北)向,与华北地区应力场相差甚微,与1937年荷泽7级地震震源应力场极为一致;分区应力主轴取向的稳定性有一定差别;相应的地震活动方式(时间、空间特征等)亦不尽相同。  相似文献   

7.
华北地区地下水开采对地壳应力的影响   总被引:1,自引:0,他引:1       下载免费PDF全文
近50年来华北地区遭受持续大面积过量开采地下水,已形成区域地下水漏斗、地面沉降、地陷地裂等地质灾害.然而,地下水的抽取减小了地壳的载荷,造成地壳应力场变化,这一点至今尚未被充分认识.为探索华北地区地下水超采对地壳应力场的影响,本文建立了二维有限元模型,定量计算地下水超采引起地壳变形和应力场变化.结果表明:华北地区地下水开采会引起地表抬升达+12.4cm;漏斗区上、中地壳的水平拉应力增量分别达到70kPa和35kPa;而在地下水开采区外围,水平压应力增量达20kPa;而华北地区构造主压应力积累速率约为0.5kPa·a-1.通过对比华北地区1980年前后5级以上地震的分布状况,本文认为地下水开采对区域构造应力场的扰动不可忽略,其卸载过程可能对华北地区大地震孕震过程存在减缓作用.  相似文献   

8.
京、津、唐、张地区地震应力场的方向特征   总被引:4,自引:2,他引:4       下载免费PDF全文
根据1960年至1977年京、津、唐、张地区地震 P 波初动方向资料求出平均节面解, 给出判别结果可信度的曲线.推断本区构造应力场最大主压应力轴方向为北东65°—75°, 最小主压应力轴方向为北西15°—25°, 中等主应力轴基本直立, 应力场方向显现出均匀性和稳定性.估计地壳岩石的断层角不小于27°.推断引起本区地震的原因是受水平附加张力的作用.未发现唐山大震前平均节面解的显著改变.   相似文献   

9.
华北地区的震源机制   总被引:2,自引:0,他引:2  
本文作出了1980年以来华北中、强地震震源机制;分析整理出1937年以来华北地区85个地震的震源机制资料。结果表明,半个多世纪以来,该区地震主要为走滑断层类型,震源机制两组节面的走向分别为北北东向和北西西向;主压应力P轴大都为北东东—南西西,主张应力T轴大都为北北西—南南东向。通过对不同时段进行研究推测,华北地震的震源机制不仅具有空间上的一致性,而且在时间上具有稳定性。  相似文献   

10.
本文利用地震资料并结合地质资料,讨论了印度板块与欧亚板块在中国周边的相互作用及其对中国应力场的影响,指出两板块在喜马拉雅山前断裂地区碰撞,碰撞边界向西延续到35°N,74°E附近,其主要挤压方向为NNE,并形成SE方向的物质流动.帕米尔地区有强烈的构造运动,并存在俯冲带形态的构造.在26.5°N,97°E附近,板块边界的走向发生突变,并形成东倾的缅甸山弧俯冲带,但印度板块挤压造成的主压应力方向为NNE向.在安达曼-尼科巴-苏门答腊-爪哇岛弧,印度板块俯冲于欧亚板块之下,在中国南海一带形成NNW向或近Ns向的主压应力.  相似文献   

11.
本文研究了兴都库什及帕米尔地区地震的空间分布.发现h<70km的地震分布广泛,h≥100km的地震形成-S形的倾斜中源地震带.在71.5°E以西,中源地震带倾向接近正北,倾角随深度变化,在深部接近垂直,且倾角自西向东逐渐变陡,在71.5°E以东,倾向逐渐由东南变为正南. 分析了121个mb≥5.0地震的机制解.浅源地震机制解的P轴大多位于NS和NNW-SSE方向,且多近水平,反映此区受到NS或NNW-SSE方向挤压.各剖面应力轴分布规律性强,在150km以下,总的趋势是机制解的T轴接近于倾斜的中源地震带的下倾方向,而P轴倾角较小且垂直于倾斜的中源地震带的走向.  相似文献   

12.
HUANG Hao  FU Hong 《地震地质》2019,41(6):1413-1428
Using the seismic waveform data of Xiaowan seismic network and Yunnan seismic network, we determined the focal mechanisms of 36 earthquakes(ML ≥ 3.0)from Jun. 2005 to Dec. 2008 and 51 earthquakes(ML ≥ 2.5)from Jan. 2009 to Dec. 2015 by generalized polarity and amplitude technique. We inverted tectonic stress field of the Xiaowan reservoir before impounding, using the focal mechanisms of 36 earthquakes(ML ≥ 3.0)from Jun. 2005 to Dec. 2008 and CAP solutions of 58 earthquakes(ML ≥ 4.0)collected and the solutions in the Global Centroid Moment Tensor(GCMT)catalog; We inverted local stress field of the reservoir-triggered earthquake clustering area, using 51 earthquakes(ML ≥ 2.5)from Jan. 2009 to Dec. 2015. Focal mechanisms statistics show that, the Weixi-Qiaohou Fault is the seismic fault. Focal mechanisms were strike-slip type in initial stage, but normal fault type in later stage. Focal depths statistics of 51 earthquakes(ML ≥ 2.5)show that, the average value of focal depths in period Ⅰ, period Ⅱ and period Ⅲ are 8.2km, 7.3km and 7.8km respectively and the standard deviations are 4.3km, 3.5km and 6.0km respectively. The average value of focal depths is basically stable in different period, only the standard deviation is slightly different. Therefore, there is not positive connection between focal depth and deviation of focal mechanisms. What's more, there are 2 earthquakes(number 46 and number 47 in Fig.5 and Table 3)with almost the same magnitude, epicenter and focal depth, but they have different faulting types as normal and strike-slip. The focal mechanism of event No.46 is strike:302°, dip:40° and rake:-97° for plane Ⅰ, however, the focal mechanism of event No.47 is strike:292°, dip:82° and rake:140° for plane Ⅰ. Likewise, earthquake of number 3 and number 18 have similar characteristic. Therefore, the obvious focal mechanism difference of similar earthquake pair indicates the complexity of Weixi-Qiaohou Fault. Considering the quiet-active character of reservoir-triggered earthquakes, we discussed the change of local stress field in different period. The σ1 of tectonic stress field was in the near-south direction, with a dip angle of 14° before the impoundment, however, the direction of σ1 of local stress field changed continuously, with the dip angle getting larger after the impoundment. The direction of σ1 of local stress field of reservoir-triggered earthquake clustering area is close to the strike of Weixi-Qiaohou Fault, and reservoir impoundment increased the shear stress in the fault, so the weakening of fault was beneficial to trigger earthquakes. Comprehensive analysis suggests that fluid permeation and pore pressure diffusion caused by the water impounding, and the weakening of fault caused by local stress field are the key factors to trigger earthquake in the Xiaowan reservoir.  相似文献   

13.
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   

14.
缅甸山弧地区Benioff带的形态及其应力状态   总被引:4,自引:1,他引:4       下载免费PDF全文
研究了缅甸山弧附近的中源地震分布,发现h>70km的地震主要分布在20°N-27°N之间,形成明显的条带分布,24°N以南走向近南北,24°N以北走向逐渐接近NE;通过垂直剖面的研究,发现缅甸山弧下的Benioff带形态是变化的,在南北两端倾角较小,且较为平直,延伸深度浅,小于100km;在地震带的中间部分,Benioff带的倾角逐渐加大,且倾角随深度加深而增大,延伸深度可达180km。在一些剖面上出现双地震层,一般出现在45-100km的深度范围内,两层间的距离从10-25km不等;在同一剖面上,两层间在浅部间距大,在深部间距小。研究了沉降带上的应力状态,发现沉降带上P轴的优势方向位于NE-SW,T轴分布较分散;P、T轴随深度没有明显变化;在上地震层中,T轴明显接近于Benioff带的倾向;通过地壳内及沉降带上地震机制解的对比,发现前者的优势方向相对于后者逆时针旋转了一定角度。  相似文献   

15.
通过地震分布及地震机制解所反映的日本海-鄂霍次克海俯冲带的形态及应力状态,研究了俯冲带深部形变及650km间断面的穿透问题.日本海Benioff带较直,连续性较好;鄂霍次克海Benioff带弯度稍大,220-320km深度之间地震很少.两俯冲带在浅部及深部地震密集,100-200km深度之间有双地震层.应力状态随深度变化,200km深度以下P,T轴方向相对集中,P轴接近俯冲方向,在约100-200km深度附近,P,T轴均接近俯冲方向.观测和理论地震图拟合分析表明,地震断层面走向接近俯冲带走向,断裂的结果使俯冲带在深部倾角变小.  相似文献   

16.
靳雅敏  于新昌 《地震学报》1989,11(2):198-203
由微震P波初动方向资料,测定了华北地区(112——122E,35——41N)1981——1983年9月,16个综合断层面解。根据各解应力轴方向分布的不均匀性,对最大、最小和中等主应力轴方位进行模糊聚类分析,得到了各解间动态性的聚类谱系图.截取隶属度大于0.93的样本划分成四类,分析了各类方向特征,并讨论了地质构造与应力场及地震活动的关系.   相似文献   

17.
西太平洋板块俯冲运动与中国东北深震带   总被引:24,自引:10,他引:24       下载免费PDF全文
中国东北地区有一条震源深度达600公里的深震带,从震源剖面投影可以明显地看出,它是西太平洋板块俯冲的结果,俯冲的角度约为26°。 根据板块学说,建立了一个板块俯冲模型,主要考虑地幔物质和岩石层板块的热传导,计算了板块俯冲到一定深度时的温度分布。结果表明,西太平洋板块俯冲到中国东北地区深度达600公里时,其中心温度约为1200℃,仍比周围地幔物质的温度低得多,因而能产生弹性断裂,发生地震。 震源机制的结果表明,中国东北地区深震的主压应力轴方位为93°-113°,正好迎着板块俯冲的方向,仰角为27°-28°,与板块俯冲的角度大体一致。以上结果说明中国东北深震是西太平洋板块俯冲到中国东北大陆之下造成的。  相似文献   

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