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1.
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   

2.
孙文斌  和跃时 《地震地质》2004,26(1):122-132
分析中国东北地区深震 (mb≥ 6 .0 )及浅震 (MS≥ 5 .0 )的成组性活动特征 ,研究了深震“强震组”与浅震“强震组”的时、空相关性。着重探讨了西太平洋板块与欧亚板块碰撞带的地震分布特征及其与西太平洋俯冲带形态的关系 ,并着重分析了西太平洋板块对欧亚板块地震活动的影响。结果表明 :西太平洋板块俯冲倾角小的地区 ,板块碰撞带地震活动强烈 ,板块俯冲对欧亚大陆的影响也较强 ,俯冲带处于较强的挤压应力状态 ;西太平洋板块俯冲倾角大的地区 ,板块碰撞带地震活动较弱 ,板块俯冲对欧亚大陆的影响也较弱 ,深部俯冲带引张应力增强。分析认为 ,未来 10年中国东北地区将进入浅震“强震组”活动时段 ,期间可能发生MS≥ 5 .0地震 6次左右 ,应加强东北地区的地震监测预报工作  相似文献   

3.
太平洋板块俯冲对中国东北深浅震影响机理的数值模拟   总被引:1,自引:0,他引:1  
张慧  焦明若  刘峡 《地震》2012,32(2):135-144
本文采用与深度有关的不同分层结构模型, 并考虑太平洋板块俯冲角度差异等特征, 建立太平洋板块向中国东北地区俯冲的2D纵向静力学模型。 以太平洋板片俯冲速度为约束条件, 通过变化俯冲板块的俯冲角度, 数值模拟太平洋板块向中国东北的俯冲过程, 探讨太平洋板块俯冲作用对于我国东北深浅震的影响, 得到不同俯冲角度模型的深浅部应力场分布, 揭示区域构造应力场的总体特征和断裂带局部特性, 并讨论了活动断裂带以及邻近区域对东北地区深浅部构造应力场的响应。 结果表明, 太平洋板块俯冲角度的变化对于中国东北地区深浅震的地震活动格局具有重要影响, 断裂带构造环境是浅源地震孕育的基本条件。  相似文献   

4.
正2016年11月25日,美国俄勒冈大学和法国CNRS研究人员在Science联合发文提出大规模地震发生的新机理,该成果对目前已经被普遍认可的大地震产生机制的相关理论提出了挑战。一直以来,被科学家广泛接受的有关大地震产生机制的理论要点包括:大规模地震(震级超过8.5)通常发生在板块俯冲带;在该区域,板块快速汇聚并且发生俯冲的板块  相似文献   

5.
重震反演中国东北地壳上地幔三维密度结构   总被引:5,自引:3,他引:2       下载免费PDF全文
本文利用重力和地震P波到时数据反演得到了中国东北地区地壳上地幔三维密度结构.与单一的重力或地震反演相比,重震反演一方面有效地克服了重力反演结果垂向分辨率低的问题,另一方面也提高了地震反演结果的可靠性.结果显示:中国东北地区的地壳及上地幔剩余密度异常分布与构造单元具有明显的相关性,造山带对应低密度异常,盆地对应高密度异常;区域内火山下方有明显的低密度体存在,可能是由于太平洋板块俯冲进入上地幔并部分滞留,在滞留板块深部脱水和软流圈热物质共同作用下产生了上涌岩浆,喷发后形成了火山.  相似文献   

6.
正西太平洋板块向欧亚大陆板块俯冲(常称为日本俯冲带)经日本海沟向东插入中国东北大陆下方约600km深度并达到中国东北的珲春附近,造成东北地区深源地震活动频发。东北地区作为中国唯一的深源地震区,也被称为中国的深震"试验场",是研究深源地震的理想场所。地震学中将震源深度超过300km的地震称为深源地震,而深源地震与板块俯冲、火山活动、浅震的发生等又有着密不可分的关系。深源地震与浅源地震最明显的区别是余震数  相似文献   

7.
正以往的研究结果表明,太平洋板块俯冲至中国东北地区约660km深度,在东北珲春一带引发了一系列深源地震。作为中国大陆唯一的深震带,它的发震时间、空间、强度与日本海沟强震以及东北地区的浅源地震均存在明显的相关性。到目前为止,国内外地震学者十分重视这一现象并从多层面进行了大量的研究,除了证实这一现象外,还从反演、层析成像、统计分析等方面研究了西太平洋板块向欧亚板块俯冲的结构、中国东北地区岩石圈构造、东  相似文献   

8.
中国东北地区地震活动的动力背景及其时空特征分析   总被引:3,自引:0,他引:3  
高立新 《地震》2011,31(1):41-51
本文根据日本海沟、 西太平洋板块俯冲与中国东北地区深源地震的关系、 中国东北地区深源地震的平均震源机制结果以及日本海沟强震与中国东北地区浅源地震的关联性, 概述了中国东北地区地震活动的动力背景, 说明中国东北地区的深源地震与西太平洋板块俯冲具有成因上的联系, 中国东北深震是西太平洋板块高速度、 小倾角向欧亚大陆下俯冲的结果。 中国东北地区深源地震、 浅源地震的时空分布以及依据浅源地震的分期统计资料表明, 中国东北地区浅源地震经历了5个活动周期, 每个活动周期浅源地震的时空分布具有个性差异, 在此基础上, 分析了浅源地震每个活动周期结束地震时空分布特征, 发现每个活动周期结束地震前均经历了平均约4.19年的长时间平静, 结束地震以成对地震为主要表现形式。  相似文献   

9.
我国东北地区地震时空演变特征及其动力学研究   总被引:5,自引:0,他引:5  
本文分析了我国东北地区中强地震空间分布特征和地震构造及震源机制特点,探讨了日本海俯冲带大地震迁移方向对中国东北地区中强地震空间分布的影响。结果表明:东北地区中强地震发震构造以NW向为主,Ms≥5 0的地震NW向发震构造约占67%,Ms≥5 8的地震NW向发震构造约占91%;日本海俯冲带大地震迁移方向对中国东北地区浅震的空间分布产生重要影响,当迁移方向与郯庐断裂带夹角较大时(α≥70°),地震主要发生在松辽盆地及其周边;当迁移方向与郯庐断裂带夹角较小时(α<70°),地震主要发生在郯庐断裂带附近。  相似文献   

10.
太平洋板块向欧亚板块俯冲(常称为日本俯冲带)经日本海沟插入中国东北大陆下约600 km深处,到达吉林珲春一带,造成东北地区频繁发生深震活动.不少研究认为,太平洋板块俯冲是中国东北及邻区岩石圈减薄和伸展作用的重要动力来源.  相似文献   

11.
Abstract Bathymetric data from south of Hokkaido obtained during a cruise of R/V Hakuho-Maru are summarized, and their correlation with earthquake occurrence is discussed. There are structural lineations on the seaward slope of the Kuril Trench, oblique to the Kuril Trench axis and parallel to the magnetic lineations in the Pacific plate. The structural lineations comprise horst-grabens generated by normal faulting. This suggests that Cretaceous tectonic structures originating at the spreading centre affect present seismotectonics around the trench axis. The structural-magnetic relation is compared to the case of the Japan Trench. North-east of the surveyed area, there are two major fracture zones (Nosappu Fracture Zone and Iturup Fracture Zone) that divide the oceanic plate into three segments. If the fracture zones (FZ) and the zone of paleo-mechanical weakness, represented by magnetic lineations, can control the direction of normal faults at a trench, the extent of the resulting topographic roughness on the seaward slope of the trench would be different across an FZ because of the differences in ages. By studying recent large earthquakes occurring in the south Kuril region, it is shown that several main-aftershock distributions for large earthquakes in this region are bounded by the Nosappu FZ and the Iturup FZ. Two models (Barrier model and Rebound model) are presented to interpret earthquake occurrence near the south Kuril Islands. The Barrier model explains seismic boundaries seen in several examples for earthquake occurrence in the south Kuril regions. The fracture zone forming the boundary of two segments with different magnetic lineations is also the boundary of two different normal fault systems on their ocean bottom, and the difference in sea-bottom roughness between two normal fault systems should affect the seismic coupling at a plate interface. Due to the difference of seismic coupling, earthquake occurrence is controlled by an FZ and then the FZ acts as a seismic boundary (Barrier model). Existing normal faults created by plate bending of subducting oceanic plate should rebound after its subduction (Rebound model). This rebound of normal faults may cause intraplate earthquakes with a high-angle reverse-fault mechanism such as the 1994 Shikotan Earthquake. The energy released by an intraplate earthquake generated by normal-fault rebounding is not directly related to that of interplate earthquakes such as low-angle thrust earthquakes. It is a reason why large earthquakes occurred in the same region during a relatively short period.  相似文献   

12.
Influence of fluids and magma on earthquakes: seismological evidence   总被引:3,自引:0,他引:3  
In this paper, we present seismological evidence for the influence of fluids and magma on the generation of large earthquakes in the crust and the subducting oceanic slabs under the Japan Islands. The relationship between seismic tomography and large crustal earthquakes (M=5.7-8.0) in Japan during a period of 116 years from 1885 to 2000 is investigated and it is found that most of the large crustal earthquakes occurred in or around the areas of low seismic velocity. The low-velocity zones represent weak sections of the seismogenic crust. The crustal weakening is closely related to the subduction process in this region. Along the volcanic front and in back-arc areas, the crustal weakening is caused by active volcanoes and arc magma resulting from the convective circulation process in the mantle wedge and dehydration reactions in the subducting slab. In the forearc region of southwest Japan, fluids are suggested in the 1995 Kobe earthquake source zone, which have contributed to the rupture nucleation. The fluids originate from the dehydration of the subducting Philippine Sea slab. The recent 2001 Geiyo earthquake (M=6.8) occurred at 50 km depth within the subducting Philippine Sea slab, and it was also related to the slab dehydration process. A detailed 3D velocity structure is determined for the northeast Japan forearc region using data from 598 earthquakes that occurred under the Pacific Ocean with hypocenters well located with SP depth phases. The results show that strong lateral heterogeneities exist along the slab boundary, which represent asperities and results of slab dehydration and affect the degree and extent of the interplate seismic coupling. These results indicate that large earthquakes do not strike anywhere, but only anomalous areas which can be detected with geophysical methods. The generation of a large earthquake is not a pure mechanical process, but is closely related to physical and chemical properties of materials in the crust and upper mantle, such as magma, fluids, etc.  相似文献   

13.
Results are reported from continuous long-term earthquake prediction work for the Kuril-Kamchatka island arc using the patterns of seismic gaps and the seismic cycle. A five-year forecast (April 2006 to April 2011) for all portions of the Kuril-Kamchatka seismogenic zone is presented. According to this, the most likely locations of future M ≥ 7.7 earthquakes include the Petropavlovsk-Kamchatskii area where the probability of an M ≥ 7.7 earthquake causing ground motions of intensity VII to IX in the town of Petropavlovsk-Kamchatskii is 48% for 2006–2011, and the area of Onekotan I. and the Middle Kuril Islands where the probability of an M ≥ 7.7 earthquake was estimated as 26.7%. The forecast was fulfilled on November 15, 2006, when an Ms= 8.2, Mw = 8.3 earthquake occurred in the Middle Kuril Islands area. An updated long-term forecast is presented for the Kuril-Kamchatka arc for the period from November 2006 to October 2011. These forecasts provide good reasons to enhance seismic safety by strengthening buildings and structures in Kamchatka.  相似文献   

14.
Sources of Tsunami and Tsunamigenic Earthquakes in Subduction Zones   总被引:1,自引:0,他引:1  
—We classified tsunamigenic earthquakes in subduction zones into three types earth quakes at the plate interface (typical interplate events), earthquakes at the outer rise, within the subducting slab or overlying crust (intraplate events), and "tsunami earthquakes" that generate considerably larger tsunamis than expected from seismic waves. The depth range of a typical interplate earthquake source is 10–40km, controlled by temperature and other geological parameters. The slip distribution varies both with depth and along-strike. Recent examples show very different temporal change of slip distribution in the Aleutians and the Japan trench. The tsunamigenic coseismic slip of the 1957 Aleutian earthquake was concentrated on an asperity located in the western half of an aftershock zone 1200km long. This asperity ruptured again in the 1986 Andreanof Islands and 1996 Delarof Islands earthquakes. By contrast, the source of the 1994 Sanriku-oki earthquake corresponds to the low slip region of the previous interplate event, the 1968 Tokachi-oki earthquake. Tsunamis from intraplate earthquakes within the subducting slab can be at least as large as those from interplate earthquakes; tsunami hazard assessments must include such events. Similarity in macroseismic data from two southern Kuril earthquakes illustrates difficulty in distinguishing interplate and slab events on the basis of historical data such as felt reports and tsunami heights. Most moment release of tsunami earthquakes occurs in a narrow region near the trench, and the concentrated slip is responsible for the large tsunami. Numerical modeling of the 1996 Peru earthquake confirms this model, which has been proposed for other tsunami earthquakes, including 1896 Sanriku, 1946 Aleutian and 1992 Nicaragua.  相似文献   

15.
俯冲带地震动特征及其衰减规律探讨   总被引:4,自引:0,他引:4       下载免费PDF全文
随着我国南海不断开发建设,海洋工程的抗震问题日益受到重视.我国南海东部区域位于大陆板块与海洋板块共同作用的俯冲带地区,地震活动频繁,震级较大,潜在地震对南海开发建设有重要影响.为了研究俯冲带地震的地震动特征及其衰减规律,本文基于实际俯冲带地震数据,并结合数值模拟方法,分析和探讨了俯冲带板内、板缘地震与浅地壳地震的地震动特征和衰减规律的差异.研究结果表明:俯冲带地震动存在区域性差异,在地震动衰减特征方面,同一区域的俯冲带板缘地震要比浅地壳地震衰减慢,俯冲带板内地震要比浅地壳地震衰减得快;数值模拟分析不同深度海水对海底地震动的影响表明,海底地震动水平分量几乎不受海水介质的影响,但是竖向分量随海水深度的增加有减小的趋势.最终,基于数值模拟和经验关系的混合方法建立了南海俯冲带地震动衰减关系模型,其结果可为海域区划等相关研究和海域工程建设提供参考.  相似文献   

16.
马尼拉俯冲带缺失中深源地震成因初探   总被引:1,自引:0,他引:1  
马尼拉俯冲带是整个南海地震活动多发区,地震成因与南海的形成和构造演化关系密切.对马尼拉俯冲带地震数据和层析成像结果进行了深入分析.结果表明:马尼拉俯冲带的地震活动主要为密集的浅源地震,缺失中深源地震.进一步分析揭示:①脱水和榴辉岩的形成在南海洋壳到达软流圈前就基本停止.马尼拉俯冲带南部在较浅的深度就转变为塑性变形,并停...  相似文献   

17.
依据青藏高原东北缘与秦岭大地构造格局相关联的地质构造背景,青藏高原物质东流和“稳定”块体的阻挡是华北南部地区构造活动的主要动力来源之一的基本认识,分析了青藏高原东北缘4次8级地震前华北南部地区地震活动的基本特征。8级地震震中区附近地震活动异常变化不明显,但华北南部地区地震异常活跃,其异常活跃过程与青藏高原东北缘强震的孕育与发生存在明显的相关性.具有一定的异地震情指示意义。  相似文献   

18.
通过吴忠—灵武地区现有的地震活动性资料,并结合该区域过去的几次中强震震例和已有的研究结果,本文梳理与总结了中强震前该区域地震活动乃至中国大陆大震活动的时空特征,而且基于最小完整性震级分析了1970—2019年该区域中小地震的地震活动性特点。综合认为,吴忠—灵武地区中强震的广义前震和中小地震的活动性具有较为鲜明的特征,中强震发生前1—2年内该区域及邻区形成ML2.0以上地震集中区或其西北方向的阿左旗腰坝区域大都出现ML3.0以上信号震,而且一年前其主震的广义前震的确比较发育,存在一定程度的地震增强;地震序列统计分析表明,该区域的多重共轭构造可能是其主要原因,其多震型、双震型和震群型占有相对较高的比例。另外,从大形势角度来看,过去大部分5级以上中强震发生的主导因素很可能由华北地块主导的强震活跃幕引起,该区域的强震危险性不仅仅和局部特殊构造特征、区域前震活动变化有关,更重要的是,华北—东北亚地块大震活动对其也起到了较大的影响作用,相比而言,青藏高原、龙门山断裂带及祁连山构造带等区域的大震活动对吴忠—灵武地区中强地震触发影响不显著,而且吴忠—灵武地区的中强地震活动和华北—东北亚地块的大震活动可能存在一定的构造响应。   相似文献   

19.
Maximum earthquake size varies considerably amongst the subduction zones. This has been interpreted as a variation in the seismic coupling, which is presumably related to the mechanical conditions of the fault zone. The rupture process of a great earthquake indicates the distribution of strong (asperities) and weak regions of the fault. The rupture process of three great earthquakes (1963 Kurile Islands, MW = 8.5; 1965 Rat Islands, MW = 8.7; 1964 Alaska, MW = 9.2) are studied by using WWSSN stations in the core shadow zone. Diffraction around the core attenuates the P-wave amplitudes such that on-scale long-period P-waves are recorded. There are striking differences between the seismograms of the great earthquakes; the Alaskan earthquake has the largest amplitude and a very long-period nature, while the Kurile Islands earthquake appears to be a sequence of magnitude 7.5 events.The source time functions are deconvolved from the observed records. The Kurile Islands rupture process is characterized by the breaking of asperities with a length scale of 40–60 km, and for the Alaskan earthquake the dominant length scale in the epicentral region is 140–200 km. The variation of length scale and MW suggests that larger asperities cause larger earthquakes. The source time function of the 1979 Colombia earthquake (MW = 8.3) is also deconvolved. This earthquake is characterized by a single asperity of length scale 100–120 km, which is consistent with the above pattern, as the Colombia subduction zone was previously ruptured by a great (MW = 8.8) earthquake in 1906.The main result is that maximum earthquake size is related to the asperity distribution on the fault. The subduction zones with the largest earthquakes have very large asperities (e.g. the Alaskan earthquake), while the zones with the smaller great earthquakes (e.g. Kurile Islands) have smaller scattered asperities.  相似文献   

20.
An interpretation of the type, size, and interrelations of sources is proposed for the three large Aleutian earthquakes of March 9, 1957, May 7, 1986, and June 10, 1996, which occurred in structures of the Andreanof Islands. According to our interpretation, the earthquakes were caused by steep reverse faults confined to different structural units of the southern slope of the Andreanof Islands and oriented along the strike of these structures. An E-W reverse fault that generated the largest earthquake of 1957 is located within the Aleutian Terrace and genetically appears to be associated with the development of the submarine Hawley Ridge. The western and eastern boundaries of this source are structurally well expressed by the Adak Canyon in the west (~177°W) and an abrupt change in isobaths in the east (~173°W). The character of the boundaries is reflected in the focal mechanisms. The source of the earthquake of 1957 extends for about 300 km, which agrees well with modern estimates of its magnitude (M w = 8.6). Because the earthquake of 1957 caused, due to its high strength, seismic activation of adjacent areas of the Aleutian island arc, its aftershock zone appreciably exceeded in size the earthquake source. Reverse faults that activated the seismic sources of the earthquakes of 1986 and 1996 were located within the southern slope of the Andreanof Islands, higher than the Aleutian Terrace, outside the seismic source of the 1957 earthquake. The boundaries of these sources are also well expressed in structures and focal mechanisms. According to our estimate, the length of the 1986 earthquake source does not exceed 130–140 km, which does not contradict its magnitude (M w = 8). The length of the 1996 earthquake source is ~100 km, which also agrees with the magnitude of the earthquake (M w = 7.8).  相似文献   

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