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1.
宜川—泰安重力剖面穿越了太行—吕梁隆起、华北裂陷、鲁西隆起等地质构造单元,剖面及其附近地区构造活动强烈.依据布格重力异常特征可分为太行山以西的布格重力异常与地形高程"同步型"的变化特征、太行山以东的布格重力异常与地形高程"镜像型"的变化特征,布格异常转换带位于太行山重力梯级带的东缘,反映了大地质构造单元有着不同的深部构造背景.均衡重力异常特征与新构造运动有着良好的一致性,即正异常区对应吕梁山、太行山以及鲁西等隆起地区,负异常区对应临汾、华北断陷盆地.通过对理论均衡地壳厚度与实际地壳厚度进行对比分析发现,在均衡重力状态异常转换带及其附近地区均对应于莫氏界面上隆、上地幔热物质向地壳侵入和运移,由于其在趋于均衡的过程中必然伴随着地壳的差异运动,因此构造活动强烈而产生深大断裂,表现为地震的频繁活动,这些地区应该是地震监测以及震害防御需要重点关注的地区.  相似文献   

2.
泰安—诸城高精度重力观测剖面,位于华北克拉通的东部,是中国东部重要的构造带且是地震活动的重要地段,利用剖面相对重力联测与同址GNSS三维坐标测量数据,得到剖面的重力异常,结合区域布格重力场、地球深部探测及地质构造成果,对剖面进行密度结构反演和剩余密度相关成像研究.结果表明:剖面布格异常变化范围为(-30.1~7.3)×10-5m·s-2,从西往东总体呈上升(泰安至沂源以低背景平缓逐渐上升与相应位置的高程呈现"同步型"变化;马站至张家楼以高背景逐渐上升与地形高程呈现"镜像型"变化)趋势,高低异常背景转折在沂沭断裂带西段150 km左右位置;背景异常是地壳厚度变化的反映,整体形态西深东浅,在沂沐断裂带地壳厚度隆起可能是地壳下地幔物质沿断裂向上入侵时,地壳产生挤压和膨胀隆起所致;剖面地壳密度呈现上、中和下三层结构,鲁西隆起、沂沭断裂带西部中下地壳局部存在低密度体,可能是上地幔物质上涌岩石含部分高温流体和熔融岩体所致,胶东地区保持了比较完整和均一的地壳结构特征,反映了胶东地区地壳活动不强;剖面的主要断裂带位置均能看到布格重力异常和剩余密度的变化,可能是断裂控制了地下介质的发育所致;剖面密度模型显示地下密度的分段特征和深浅构造差异,沂沭断裂带是鲁西隆起和胶东隆起的分界带;本文通过对布格重力异常和密度结构的特征研究,分析了地震活动、动力学背景与地壳密度结构的关系.  相似文献   

3.
考虑到地壳和上地幔密度异常对地表重力的影响,本文提出了修正单纯利用重力资料 反演地壳厚度的算法.该算法利用地震层析成像结果推算出地壳和上地幔密度异常分布,然 后计算由此分布引起的地表重力异常,再从观测布格重力异常中扣除上述密度异常引起的重 力效应,最后在地壳均衡假设的基础上顾及到对反演参考深度的修正,直接反演区域地壳厚 度.本文利用胥颐等地震层析成像的数据,修正了中国西北地区莫霍界面的深度.结果表明, 该区域地壳和上地幔密度异常引起的地表重力异常值为——60times;1O-5m/s2~30times;10-5m/s2. 与直接使用布格重力异常反演地壳厚度相比较,该密度异常对该区域莫霍界面将产生约6 km 的修正.本方法使得利用重力数据反演地壳厚度在理论上更为完备,实际应用中也比较可 行,为更进一步逼近莫霍界面的真实形态提供了一种途径.   相似文献   

4.
大别山超高压变质带地壳结构及其构造意义   总被引:9,自引:3,他引:6       下载免费PDF全文
王椿镛  楼海  王飞 《地震学报》1999,21(5):533-544
根据大别山深地震测深剖面的资料,取得了大别山地区的地壳结构模型.二维地壳结构显示了碰撞造山带的特征和超高压变质带的深部地球物理证据.地壳上部的三维速度结构表明:在2 km深度上速度分布与地表的地质构造明显相关,在5~10 km深度上超高压变质带显示相对高速.布格重力异常的观测资料显示大别山地区有较大范围的负异常.在由上部地壳引起的布格重力异常中,超高压变质带则为正异常区.由于在地震剖面的二维地壳模型中,造山带的山根仅有4~5 km厚,且上地幔顶部的速度横向变化不明显,因此可以认为,观测与计算的布格重力异常不一致的原因主要来自地壳,至少在中上地壳内应产生负布格重力异常.超高压变质带中地壳内的物质密度应比周围地区低.这一较低密度的物质与扬子地壳向北俯冲到100 km以下的深度,然后返回地壳的碰撞过程有关.   相似文献   

5.
中国北部及其邻区地壳上地幔三维速度结构   总被引:6,自引:4,他引:6       下载免费PDF全文
本文利用中周期和长周期瑞利面波资料分别反演得到中国北部及其邻区的三维S波带度结构。结果表明,地壳中横向非均匀性非常明显,许多地区显示出构造活动的特征;上地幔速度结构的横向变化相对减小。研究区的地壳厚度从东向西逐渐增大,地壳平均速度分布的格局与地壳厚度分布大体一致。地壳厚度与地壳平均速度的空变带处与布格重力异常梯级带基本一致。从数据上看,地壳厚度远比地壳平均速度与布格重力异常的一致性程度高,因此可以  相似文献   

6.
本文从青藏—蒙古高原东缘构造过渡带的布格重力场特征、地壳厚度和上地幔密度分布状态入手,就该带具有较统一的地球动力学背景的地球物理标志,壳-幔系统动力学模式及重力均衡调整等问题进行了讨论  相似文献   

7.
青藏高原东北缘重力异常多尺度横向构造分析   总被引:8,自引:6,他引:2  
孟小红  石磊  郭良辉  佟拓  张盛 《地球物理学报》2012,55(12):3933-3941
本文研究了青藏高原东北缘地区布格重力异常特征,采用优化滤波法和归一化总水平梯度垂直导数法对研究区重力异常进行多尺度分离和横向构造分析.分离出的多尺度重力异常特征表明:1) 青藏高原东北缘地区大致以东经106°线为界,有一条醒目的重力异常梯级带,即贺兰山-六盘山-川滇南北构造带的北段,其东西两侧布格重力异常特征在形态和走向上截然不同,意味着两侧密度结构和构造特征存在明显差异. 2) 鄂尔多斯地块内部定边以北,重力异常高带走向由北东向转为近南北向,推测定边附近存在一个密度或构造界面,其两侧物质组成和构造特征具有差异,对比大尺度重力异常和中尺度重力异常,表明异常特征的这种差异主要是由上地幔深部结构引起的. 3) 青藏高原东北部各块体深部边界位置与地表构造分布不同,反映出该区构造复杂,深浅构造差异大. 4) 由于印度-欧亚板块碰撞及随后印度板块持续向北的挤压作用,造成青藏高原东北缘中、下地壳物质在巨大的北东向推挤力和鄂尔多斯刚性块体阻挡的共同作用下,沿着相对软弱的秦岭造山带方向蠕动.依据多尺度重力异常及其横向构造特征,综合推断出研究区内五条断裂带,即秦岭地轴北缘断裂带、海原-六盘山断裂带、香山-天景山断裂带、烟筒山断裂带和青铜峡-固原断裂带,并分析了它们在地壳深部的可能展布特征.  相似文献   

8.
重力剖面金川—芦山—犍穿越芦山震区,近垂直于龙门山断裂带南段,长约300km,测点距平均2.5km,采用高精度绝对重力控制下的相对重力联测与同址GPS三维坐标测量,获得了沿剖面的自由空气异常和布格重力异常,并对布格重力异常进行了剩余密度相关成像和密度分层结构正反演研究.结果表明,芦山地震所在的龙门山断裂带南段存在垂直断裂走向的宽广的巨型重力梯级带,重力变化达252×10-5 m·s-2以上(龙泉山以西),反映出四川盆地与松潘—甘孜地块地壳厚度陡变(约14.5km)性质;四川盆地与松潘—甘孜地块过渡区(龙门山断裂带与新津—成都—德阳断裂之间)存在(30~50)×10-5 m·s-2的剩余异常"凹陷",可能与上地壳低密度体、山前剥蚀与松散堆积和推覆体前缘较为破碎有关;剩余密度相关成像显示地壳密度呈现分段性特征,在芦山地震位置出现高低密度变化;地壳呈现三层结构,四川盆地上、中、下地壳底界面平缓,反映其稳定阻挡作用,而松潘—甘孜块体上、中、下地壳底界面明显往盆地逐步抬升,反映出青藏高原往东的强烈挤压作用;松潘—甘孜块体往东推覆变形主要集中在上地壳范围内,推覆深度随离龙门山断裂带愈近而越浅.本文通过对密度分布及结构特征的研究,分析了芦山地震及龙门山地区地壳构造背景和当前活动性的深部动力环境特征.  相似文献   

9.
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   

10.
华北东部地区上地幔运动与盆地形成关系的模拟研究   总被引:3,自引:0,他引:3  
王春华  廖素琼 《地震地质》1991,13(3):276-282
在综合分析华北东部深部构造、盆地构造及其动力学特征等资料的基础上,运用离心技术讨论了该区盆地形成机制与上地幔运动的关系。这种离心技术采用物质密度差代替温度差是一种新的实验方法。 实验结果表明,上地幔对流、上地幔隆起(或底辟)以及重力均衡作用产生了华北地壳的单向引张力,从而导致箕状盆地的形成。 作者认为,华北东部地区盆地形成和发展的动力源与上地幔的运动和重力作用密切相关  相似文献   

11.
As the most basic geophysical field, the earth gravity field has achieved wide attention, and its spatial anomaly characteristics and dynamic variation can provide important scientific basis for studying the internal structure and dynamics of the Earth. Based on the mobile gravity observation data of the southeastern Tibetan plateau from 2013 to 2016, the dynamic variation tendency and anomaly characteristics of the regional gravity field in different temporal resolutions are obtained before and after the Ludian and Jinggu earthquakes in the study area respectively. The method of wavelet multi-scale decomposition is used to analyze the relationships of gravity field variation with the earth movement, material density change, and strong earthquake preparation. The deep material variation, dynamic process and the mechanism of earthquake inoculation in the southeastern Tibetan plateau are further discussed. Results indicate that the gravity field variation in the source region before the Ludian and Jinggu earthquake respectively is characterized by obvious positive and negative anomalous transition zone and gradient zone that are consistent with the direction of fault tectonics, suggesting the strong crustal movement and mass migration during the earthquake incubation period. The result of wavelet multi-scale decomposition of the gravity field during the period from September 2013 to April 2014 shows that the gravity field variation at different depth and space scale in the crust and upper mantle of the southeastern Tibetan plateau is significantly correlated with seismic distribution and the location of active fault zone. This indicates that the earthquake inoculation in the study area is closely related to the fault movement and the distribution of material density in the crust and upper mantle, which may be affected by the complex deep dynamic process of the material migration in the crust and mantle. The characteristic that strong earthquakes always occur near positive and negative anomaly transition zones and gradient zones of gravity field change is preliminarily explained, based on the dynamic process of material migration in the crust and upper mantle of the southeastern Tibetan plateau. The research results of this paper have some reference value to the study on the earth movement and seismogenic mechanism.  相似文献   

12.
维西—贵阳剖面重力异常与地壳密度结构特征   总被引:3,自引:2,他引:1       下载免费PDF全文
维西—贵阳剖面位于青藏高原东南缘,为青藏高原物质往东南逃逸、东构造结侧向挤压及华南地块北西西向推挤作用的重要地段.利用剖面观测的重力与GPS定位数据,结合区域背景重力场、地质构造及深部地球物理成果,反演研究剖面较为细化的地壳密度结构特征.观测研究表明:剖面布格重力异常总幅差变化达190×10-5 m·s-2,具"斜N"分段变化特征,从西往东呈上升(维西至攀枝花,水平梯变大)—下降(攀枝花至会泽,水平梯变较大)—上升(会泽至贵阳,水平梯变较小)态势;高程与布格重力异常比值的趋势性转折部位为康滇地轴核心和小江断裂带东侧,可能与先存构造或新生构造发育有关;剖面地壳密度结构可分上、中和下三层结构,各层底界面平均埋深分别约20km、35km和51km,金沙江—红河断裂带和鲜水河—小江断裂带为地壳结构相对简单与复杂的过渡带;地壳厚度西深东浅,可能是东构造结的侧向挤压所致;下地壳厚度变化相对较大,可能对地壳增厚起主要作用;华坪—攀枝花附近的Moho面隆起和上地壳高密度体的存在暗示上地幔往上底侵作用,对青藏高原物质向南东逃逸和东构造结的侧向挤压均起到一定阻挡作用;中地壳下伏有限低密度薄层有利于其上物质的南东逃逸和顺时针旋转,有利于其下物质受喜马拉雅东构造结作用下往东向运移.  相似文献   

13.
蒙古及周边地区重力异常和地壳不均匀体分布   总被引:4,自引:1,他引:3       下载免费PDF全文
基于全球EGM2008自由空气重力异常模型,本文计算了蒙古及周边地区的布格重力异常和AiryHeiskanen均衡重力异常.在此基础上,本文采用Crust 1.0地壳模型为参考,通过重力正演方法,对蒙古及周边地区不同深度地壳密度结构模型的重力异常进行了计算,并对得到的正演布格重力异常与实际重力异常进行了对比和分析.研究结果表明:蒙古西部杭爱山地区与阿尔泰山地区的构造变形差异性明显,现今均衡重力异常中杭爱山周边没有明显的均衡异常高值区,而阿尔泰山地区西南方向存在均衡重力异常高值分布,分析与新构造运动密切相关;Crust 1.0模型给出的壳幔横向密度不均匀体分布对于计算Moho面起伏引起的重力异常作用明显;Crust 1.0给出的地壳内界面变形可以反映深大活动断裂的深部构造变形.研究结果对于认识蒙古东西部构造特征差异,以及现今西部活动断裂的地球物理场特征具有参考意义,也可以为进一步应用Crust 1.0模型为参考开展三维密度结构反演提供一定帮助.  相似文献   

14.
攀西地区重力场特征及地壳密度结构   总被引:3,自引:1,他引:2       下载免费PDF全文
攀西地区位于峨眉山大火成岩省中西部,构造和岩浆特征显著,地震活动强烈.通过对野外重力测量得到的云县—会东和普洱—七甸两条剖面的高精度重力观测数据进行处理和分析,构建了沿剖面的二维地壳密度结构,其中普洱—七甸剖面与孟连—马龙宽角地震剖面部分位置重合.同时结合区域重力异常特征及下地壳视密度填图结果,得到如下初步认识:红河断裂带是南北地震带南段地区重要的构造分界线,断裂带南北向密度结构和莫霍面分布形态存在较大差异,沿走向构造变化.云县—会东剖面上大姚—会东段下地壳底部存在密度较高的壳幔过渡层,结合研究区下地壳底部壳幔过渡层的密度分布特征,认为该过渡层不是攀西裂谷下的"裂谷垫",而是由岩浆底侵作用造成的.  相似文献   

15.
综合利用7条地学断面(GGT)资料研究了大兴安岭重力梯级带附近的壳幔地球物理特征模式.分析了形成上述地球物理特征的3种因素:东亚大陆边缘周边三大板块运动、地幔流运动和地幔热柱。对大兴安岭重力梯级带的重力异常的正演拟合结果表明,壳幔物质密度不均匀和莫霍界面超伏造成该带的重力异常,地应力场的综合作用产生了该重力梯级系列地球物理特征。最后,探讨了大兴安岭重力梯级带成因机制,提出了以“挤”、“涌”为动力的“三结点模型”。  相似文献   

16.
The main rupture of Ludian MS6.5 earthquake is directed to the northwest, which occurred in the east of Xianshuihe-Xiaojiang fault zone. The epicenter is in the transitional zone of the Sichuan-Yunnan block and the South China block, where there are many slip and nappe structures. Some controversy still remains on the earthquake tectonic environment. So, Bouguer gravity anomalies calculated by EGM2008 were broken down into 1-5 ranks using the way of Discrete Wavelet Transform(DWT), then we get the lateral heterogeneity in different depths of the crust. The distribution characteristics of Bouguer gravity anomaly are analyzed using measured gravity profile data. We also get its normalized full gradient(NFG)picture, and study the differences between different depths in crust. The results show that: (1)the characteristic of Buoguer gravity anomaly in southwest to northeast is high-low-high between the Lianfeng Fault(LFF)and Zhaotong-Ludian Fault(ZLF). The mainshock and aftershocks are distributed in the middle of the low-value zone, which means that the east moving materials of Qinghai-Tibet plateau broke through the southern section of Lianfeng Fault(LFF), moving along the Baogunao-Xiaohe zone(low-value belt)to the southeast, stopped by the Zhaotong-Ludian Fault(ZLF), and then earthquake occurred.(2)The third-order discrete wavelet transform(DWT)details show that: there is a good consistency between the negative gravity anomaly in upper crust and the distribution of major faults, which reflects that the rupture caused by the movements of the faults in crust has reduced gravity anomaly. There is a NW-trending negative anomaly belt near the epicenter, which may has some relationship to the southward development of the Daliangshan Fault(DLSF). So we speculate that the southward movement of Daliangshan Fault is the main direct force source of Ludian earthquake.(3)In the picture of the fourth-order DWT details, there is an obvious positive gravity anomaly under the epicenter of Ludian earthquake, which confirms the presence of a high-density body in the middle crust. While the fifth-order DWT details show that: A positive anomaly belt is below the epicenter too, which may be caused by mantle material intruding to the lower crust. Tensile force in crust caused by mantle uplift and extrusion-torsion force caused by Indian plate push are the main force source in the tensile and strike slip movement of the Ludian earthquake.(4)The normalized total gradient of Bouguer gravity anomalies of Huili-Ludian-Zhaotong profile shows that: there is obvious ‘deformation’ in the Xiaojiang fault zone which dips to the east and controls the local crust movement. There is a local ‘constant body’ at the bottom of the epicenter. The stable constant body in density has limiting effects to the earthquake rupture, which is the reason that the earthquake rupture' scale in strike and in depth are limited.(5)The ability of earthquake preparation in Zhaotong-Ludian Fault is lower than the Xianshuihe-Xiaojiang fault zone, and the maximum earthquake capacity in this area should be around magnitude 7.  相似文献   

17.
Introduction Sichuan-Yunnan region, located in the east margin of Qinghai-Xizang (Tibetean) Plateau, is a transitional zone between the rapidly upheaving Tibetean Plateau and relatively steady Yangtze Platform. Under the pressure exerted by the northward movement of Indian Plate, Sichuan-Yunnan region has been undergone strong deformation and regmagenesis, becoming one of the regions with the most intensive seismicity in the world. The research on the tectonics and seismicity there is alw…  相似文献   

18.
Based on the first arrival P and S data of 4 625 regional earthquakes recorded at 174 stations dispersed in the Yunnan and Sichuan Provinces, the 3-D velocity structure of crust and upper mantle in the region is determined, incorporating with previous deep geophysical data. In the upper crust, a positive anomaly velocity zone exists in the Sichuan basin, whereas a negative anomaly velocity zone exists in the western Sichuan plateau. The boundary between the positive and negative anomaly zones is the Longmenshan fault zone. The images of lower crust and upper mantle in the Longmenshan fault, Xianshuihe fault, Honghe fault and others show the characteristic of tectonic boundary, indicating that the faults likely penetrate the Moho discontinuity. The negative velocity anomalies at the depth of 50 km in the Tengchong volcanic area and the Panxi tectonic zone appear to be associated with the temperature and composition variations in the upper mantle. The overall features of the crustal and the upper mantle structures in the Sichuan-Yunnan region are the lower average velocity in both crust and uppermost mantle, the large crustal thickness variations, and the existence of high conductivity layer in the crust or/and upper mantle, and higher geothermal value. All these features are closely related to the collision between the India and the Asia plates. The crustal velocity in the Sichuan-Yunnan rhombic block generally shows normal value or positive anomaly, while the negative anomaly exists in the area along the large strike-slip faults as the block boundary. It is conducive to the crustal block side-pressing out along the faults. In the major seismic zones, the seismicity is relative to the negative anomaly velocity. Most strong earthquakes occurred in the upper-mid crust with positive anomaly or normal velocity, where the negative anomaly zone generally exists below. Foundation item: National Scientific and Technological Development Program (95-973-02-02), the Climb Program (95-S-05-01) of National Scientific and Technological Ministry of China, and the State Natural Sciences Foundation of China (49874021). Contribution No. 02FE2004, Institute of Geophysics, China Seismological Bureau.  相似文献   

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