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1.
青藏高原东缘龙门山构造带是研究青藏高原地壳物质向东侧向挤出的焦点地区.为探索龙门山构造带活动构造特征及其与发震构造的关系,本文通过布置垂直龙门山构造带南段芦山地震震源区的大地电磁测深剖面,运用多种数据处理手段,得到研究区可靠的电性结构,并通过与已有龙门山中段和北段剖面进行对比分析.研究表明:(1)青藏高原东缘岩石圈存在明显的低阻异常带--松潘岩石圈低阻带,该低阻异常带沿龙日坝断裂-岷山断裂-龙门山后山断裂分布,形成松潘-甘孜地块向扬子地块俯冲的深部动力学模式,通过统计研究区的历史强震,发现震源主要沿低阻异常带东侧分布,同时,低阻异常带也是低速度、低密度异常带,松潘岩石圈低阻带可能是扬子地块的西缘边界;(2)青藏高原物质东移过程中,受到克拉通型四川盆地的强烈阻挡,龙门山构造带表层岩块和物质发生仰冲推覆,表现为逆冲推覆特征的薄皮构造,中下地壳和上地幔顶部物质向龙门山构造带岩石圈深部俯冲,印支运动晚期,扬子古板块持续向华北板块俯冲,在上述构造运动作用下,呈现出刚性的上扬子地块西缘高阻楔形体向西插入柔性青藏块体的楔状构造;(3)根据电性结构推断,芦山地震受到深部上里隐伏壳幔韧性剪切带向上扩展的影响,构成芦山地震的深部主要动力来源;汶川地震的发生,在龙门山南段形成应力加载区,是触发或加快芦山地震孕育发生的另一个动力来源.  相似文献   

2.
扇形边界条件下的龙门山壳幔电性结构特征   总被引:10,自引:8,他引:2       下载免费PDF全文
沿甘肃碌曲-四川龙门山-重庆合川布设了长周期大地电磁剖面,对龙门山及邻区进行了壳幔电性结构探测,采用更直观合理的扇形边界条件下的反演算法对长周期大地电磁资料进行二维反演.该剖面电性结果揭示了自北西向南东岩石圈深部的若尔盖壳幔高阻块体、松潘壳幔低阻带、龙门山壳幔高阻块体和川中壳幔高阻块体电性结构特征;龙门山逆冲推覆构造带下方的龙门山壳幔高阻体显示为向北西延伸的楔形构造,推断龙门山及松潘-甘孜地块由于受青藏高原东缘和上扬子地块双向挤压,松潘-甘孜地块地壳物质向龙门山逆冲推覆,中下地壳至上地幔向下向南东俯冲,呈现上扬子地块西缘壳幔高阻楔形体插入青藏高原东缘的态势;初步认为上扬子地块西缘深部以松潘壳幔韧性剪切带作为中新生代以来的边界.  相似文献   

3.
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   

4.
龙门山及其邻区地处青藏高原东缘,地质构造上处于不同构造单元的交汇地区。龙门山断裂带由多条大型推覆构造组成,利用重力资料对该区深部构造进行了研究。中采用Parker-Olclenbrug三维位场反演方法。  相似文献   

5.
汶川Mw7.9级大地震的发震断层具有高角度逆冲滑动特征.通过对高角度逆断层滑动的力学条件的分析表明,龙门山断裂深部可能存在高孔隙流体压力有利于断层的失稳滑动.利用现有的技术手段无法获得中地壳深度断层内的流体特征.龙门山断裂带是一条逆冲推覆的构造带,这使得地质历史早期的龙门山断裂深部的彭灌杂岩体抬升到地表,并保留了当时的深部流体特征和变形特征.研究地表露头的变形花岗岩能够推断过去的龙门山地区的深部环境,从而了解过去该地区的深部强震孕育机理,这能够帮助理解现今龙门山地区类似汶川地震的强震的发生机理.  相似文献   

6.
龙门山活动构造带位于青藏高原断块区巴颜喀喇断块与华南断块区四川断块之间,是青藏高原断块区东部边界构造带中段的一条北东向挤压推覆构造带,它南接川滇南北向构造带,北为岷山-西海固南北向构造带。与后二者历史上均发生过多次7~8级地震不同,龙门山构造带历史地震活动强度却相对较低,只发生过6~612级地震,汶川8.0级地震即发生在青藏高原断块区东部边界构造带中段这一历史地震活动水平相对较低的构造段。  相似文献   

7.
龙门山及其邻区地处青藏高原东缘,地质构造上处于不同构造单元的交汇地区。龙门山断裂带由多条大型推覆构造组成,利用重力资料对该区深部构造进行了研究。计算中采用Parker-Olclenburg三维位场反演方法。根据反演结果,综合其它地球物理和区域地质资料,研究了该区的地球物理场和地震的关系。  相似文献   

8.
龙门山断裂带中北段的地壳电性结构及其动力学模型   总被引:1,自引:0,他引:1  
2012年在四川龙门山断裂带的茂县—绵竹段进行了点距约3km、横跨断裂带的大地电磁探测,精细处理并反演获得长70km,深50km的2维电性剖面。通过与同位置的反射地震资料对比进行综合解释,刻画出龙门山断裂带中北段的地壳结构:1)四川盆地上覆地层为低阻,电性结构稳定并叠置于坚固的扬子中下地壳之上;龙门山3条主断裂均表现为低阻—中低阻,其构造形态都沿NW向倾斜,并由陡变缓向下延伸,浅部最陡处60°,深部最缓处30°。2)龙门山断裂带上地壳整体逆冲推覆于扬子板块的刚性基底之上,不仅形成由陡趋缓的3条主断裂,而且多期次的地震活动造成隐伏次级断裂发育;映秀-北川断裂之下具有明显NW倾斜且陡立的电性梯度带,2008年汶川地震余震在该区域内集中分布,其中安县-灌县断裂下盘发育大型隐伏的基底断裂,可能为发震断裂,地震能量沿隐伏次级断裂向上传递导致映秀-北川断裂遭破坏最为严重。3)青藏高原东缘的中下地壳下插,使高阻的扬子中下地壳嵌于龙门山逆冲推覆带和青藏高原东缘中下地壳之间,形成"鳄鱼口"样式的构造格架。龙门山的隆升是由上地壳的逆冲推覆脆性变形和中下地壳的壳内高导物质流的韧性变形共同作用的结果。同时提出,由于中下地壳物质流在龙门山不仅受阻于刚性的扬子块体,而且下插于扬子板块上地幔,形成一种可能的类似"传送带"的动力模式,带动了其上盘发生持续的逆冲推覆脆性变形。  相似文献   

9.
青藏高原东缘龙门山逆冲构造深部电性结构特征   总被引:16,自引:12,他引:4       下载免费PDF全文
通过对汶川地震前观测的碌曲—若尔盖—北川—中江大地电磁剖面的数据处理和反演解释,揭示了沿剖面的松潘—甘孜地块、川西前陆盆地、龙门山构造带及秦岭构造带50 km深度的电性结构特征及相互关系,表明青藏高原东缘向东挤压,迫使向东流动的地壳物质沿高原东缘堆积,并向扬子陆块逆冲推覆.龙门山恰好位于松潘—甘孜地块与扬子陆块对挤部位,主要受松潘—甘孜地块壳内高导层滑脱和四川盆地基底高阻体阻挡的约束,地壳深部存在着西倾且连续展布的壳内低阻层,表明龙门山深部确实存在着逆冲推覆构造,其逆冲断裂系中的三条断裂不仅以不同的倾角向西北倾斜,并且向深部逐渐汇集,但茂县—汶川断裂可能在深部与北川—映秀断裂是分离的.龙门山两翼的四川盆地和松潘甘孜褶皱带的电性结构既具有明显差异性,又具有一定的相关性.四川盆地显示巨厚的低阻沉积盖层和连续稳定的高阻基底的二元电性结构,而松潘—甘孜地块则表现为反向二元结构,即上部大套高阻褶皱带,下部整体为低阻的变化带,龙门山逆冲构造带本身又表现为松潘地块逆冲上覆在四川盆地之上,构成上部高阻褶皱带、中部低阻逆冲断裂带和底部盆地高阻基底的三层电性结构.对比龙门山逆冲构造断裂带的西倾延伸上下盘两侧的两个反对称的二元电性结构,松潘区块深部推断的结晶基底与龙门山断裂带下盘推断的下伏盆地结晶基底又存在某种内在对应关系,推断可能存在一个西延至若尔盖地块的泛扬子陆块.因此,龙门山构造带地壳电性结构研究对于揭示青藏高原东缘陆内造山动力过程,探索汶川大地震的深部生成机理都具有重要意义.  相似文献   

10.
李平恩  廖力  奉建州  刘盼 《地球物理学报》2019,62(11):4170-4188
以巴颜喀拉块体为研究对象,考虑区域地质构造差异,主要活动断裂带,活动块体和边界断裂带的划分结果,引入深部三维速度结构,建立能反映地表起伏和岩石圈分层结构的青藏高原地区三维黏弹性有限元模型.以地壳水平运动速率观测值和最大主压应力方向测量值为约束条件重建研究区现今构造背景应力场.在此基础上模拟了自1900年以来巴颜喀拉块体周缘的7级以上强震序列,从库仑破裂应力角度研究了应力演化与强震的关系、强震之间的相互作用关系以及长期构造加载对强震的影响.研究结果表明,巴颜喀拉块体周缘强震的发生可能与震源区总应力的增加有关.2008年汶川地震导致龙门山断裂带南段应力增加,表明汶川地震对2013年芦山地震有促进作用.鲜水河断裂带上的7级以上强震序列对发生在邻近龙门山断裂带上的2008年汶川地震和2013年芦山地震有延迟作用.  相似文献   

11.
本文提出一种基于重力/GPS联合观测数据计算垂向构造应力的新方法.计算步骤如下:(1)通过重力/GPS联合观测数据计算布格重力异常;(2)依据布格重力异常数据推算莫霍面深度;(3)依据GPS观测数据,通过均衡理论计算均衡面深度;(4)依据莫霍面与均衡面之间剩余物质(壳幔物质密度差)所承受的附加浮力,计算地壳承载的垂向构造应力.本文利用上述构造应力新算法,计算了巴颜喀拉块体东边界及周边地区垂向构造应力分布,发现龙泉山断裂带以东地区垂向构造应力基本为零,龙泉山断裂带与龙门山断裂带之间地区垂向构造应力为正值,巴颜喀拉地块东部垂向构造应力为负值.鲜水河断裂带东南段周边蓄积了-40~-50 MPa的垂向构造应力,且梯度变化剧烈;松潘高原蓄积的垂向构造应力大约为-10~-20 MPa,相对较小.  相似文献   

12.
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   

13.
In recent years, strong earthquakes of MS8.0 Wenchuan and MS7.0 Lushan occurred in the central-southern part of Longmenshan fault zone. The distance between the two earthquakes is less than 80 kilometers. So if we can obtain the inner structure of the crust and upper mantle, it will benefit us to understand the mechanism of the two earthquakes. Based on the high resolution dataset of Bouguer gravity anomaly data and the initial model constrained by three-dimensional tomography results of P-wave velocity in Sichuan-Yunnan region, with the help of the preconditioned conjugate gradient(PCG)inversion method, we established the three dimensional density structure model of the crust and upper mantle of the central-southern segment of Longmenshan, the spatial interval of which is 10 kilometers along the horizontal direction and 5 kilometers along the depth which is limited to 0~65km, respectively. This model also provides a new geophysical model for studying the crustal structure of western Sichuan plateau and Sichuan Basin. The results show obvious differences in the crustal density structure on both sides(Songpan-Ganzê block and Sichuan Basin)of Longmenshan fault zone which is a boundary fault and controls the inner crustal structure. In Sichuan Basin, the sedimentary layer is represented as low density structure which is about 10km thick. In contrast, the upper crust of Songpan-Ganzê block shows a thinner sedimentary layer and higher density structure where bedrock is exposed. Furthermore, there is a wide scale low density layer in the middle crust of the Songpan-Ganzê block. Based on this, we inferred that the medium intensity of the Songpan-Ganzê block is significantly lower than that of Sichuan Basin. As a result, the eastward movement of material of the Qinghai-Tibet plateau, blocked by the Sichuan Basin, is inevitably impacted, resulting in compressional deformation and uplift, forming the Longmenshan thrust-nappe tectonic belt at the same time. The result also presents that the crustal structure has a distinct segmental feature along the Longmenshan fault zone, which is characterized by obviously discontinuous changes in crustal density. Moreover, a lot of high- and low-density structures appear around the epicenters of Wenchuan and Lushan earthquakes. Combining with the projection of the precise locating earthquake results, it is found that Longmenshan fault zone in the upper crust shows obvious segmentation, both Wenchuan and Lushan earthquake occurred in the high density side of the density gradient zone. Wenchuan earthquake and its aftershocks are mainly distributed in the west of central Longmenshan fault zone. In the south of Maoxian-Beichuan, its aftershocks occurred in high density area and the majority of them are thrust earthquake. In the north of Maoxian-Beichuan, its aftershocks occurred in the low density area and the majority of them are strike-slip earthquake. The Lushan earthquake and its aftershocks are concentrated near the gradient zone of crustal density and tend to the side of the high density zone. The aftershocks of Lushan earthquake ended at the edge of low-density zone which is in EW direction in the north Baoxing. The leading edge of Sichuan Basin, which has high density in the lower crust, expands toward the Qinghai-Tibet Plateau with the increase of depth, and is close to the west of the Longmenshan fault zone at the top of upper mantle. Our results show that there are a lot of low density bodies in the middle and lower crust of Songpan-Ganzê Block. With the increase of the depth, the low density bodies are moving to the south and its direction changed. This phenomenon shows that the depth and surface structure of Songpan-Ganzê Block are not consistent, suggesting that the crust and upper mantle are decoupled. Although a certain scale of low-density bodies are distributed in the middle and lower crust of Songpan-Ganzê, their connectivity is poor. There are some low-density anomalies in the floor plan. It is hard to give clear evidence to prove whether the lower crust flow exists.  相似文献   

14.
前人研究给出, 龙门山断裂带中南段地壳均衡异常显著, 具有发生7级以上大地震的深部动力背景。 2016年6月, 我们围绕该均衡异常显著区域开展重力/GNSS加密观测, 提高了该地区布格重力异常和地壳均衡异常场的空间分辨率。 依据上述观测结果与前期同类观测数据, 反演了汶川MW7.9地震周边地区地壳密度构造。 结果显示, 龙门山断裂带是地壳密度变化的高梯度带, 其东侧地壳较薄, 但其西部明显变厚, 上、 中、 下地壳变化趋势均呈现上述特征; 研究区东侧的莫霍面深度为35~40 km, 西侧为60~65 km。 此外, 利用重力/GNSS联合观测数据计算了汶川MW7.9地震震中区周边地区岩石圈承载的垂向构造应力场, 结果表明, 汶川MW7.9地震震中区北部、 宁强、 峨眉山周边地区蓄积了-30 MPa至-40 MPa的负向构造应力, 龙门山断裂带中南段蓄积了约40 MPa的正向构造应力, 区域最大垂向构造应力分布在龙门山断裂带中南段, 临近芦山MW6.6地震。 统计结果表明, 地震多发生在垂向构造应力高梯度带附近, 或垂向构造应力的高值区域。  相似文献   

15.
芦山—康定地区是川滇块体、松潘—甘孜块体和华南块体三个块体过渡的"Y"型交汇区,构造变形十分强烈.本文对EGM2008计算的布格重力异常进行1~5阶离散小波变换,得到三方向分量平方和的平方根(HVDM)图像;利用实测剖面布格重力异常数据,得到剖面的布格重力异常归一化总梯度(NFG)图像.结果分析表明:(1)垂直于龙门山断裂带南段剖面的NFG图像显示推覆构造体前端切割较浅、后端逐步变深至中地壳,说明松潘—甘孜块体在深约10~30km之间存在滑脱构造,在青藏高原东向挤出和四川盆地的阻挡作用下,造成深、浅部构造差异性运动,形成逆冲推覆的龙门山构造带;(2)HVDM图像和剖面的NFG图像均显示龙门山断裂带西南段与中段和东北段不同,松潘—甘孜块体对四川盆地的逆冲推覆作用沿北东方向具有分段性;(3)雅江—洪雅剖面NFG图像显示鲜水河断裂带和龙门山断裂之间存在高梯度变化带,在鲜水河断裂带下方强变形带不仅在20km左右东倾至龙门山断裂带前缘,且逐渐近垂直向下伸入至少到下地壳,反映了两大断裂带交汇区域变形作用较强.川滇块体内部和四川盆地内部则显示低值,说明其变形作用较弱.强烈左旋剪切的鲜水河断裂带对芦山—康定地区构造活动具有主要的控制作用.  相似文献   

16.
基于SIO(Scripps Institute of Oceanography)最新全球重力和高程模型,计算了巴颜喀拉地块东部及邻区的布格重力异常、均衡重力异常、岩石圈有效弹性厚度及荷载比.结合大地热流、地震速度结构、地震活动和断裂构造分布等,分析了地壳均衡状态和岩石圈有效弹性厚度、地质构造单元间的差异及与地震活动的相关性特征.研究结果表明,该区域布格重力变化范围约为-500~0mGal(1mGal=10~(-5)m·s~(-2),下同),在巴颜喀拉块体东部区域形成弧形重力梯度带,近年来的中强地震活动频发于该梯度带不同部位,应与其应力依次释放有关;均衡重力异常结果表明,其变化范围约为-80~+100mGal,且大部分区域处于±20mGal以内的被认为处于重力均衡的状态,重力非均衡(正或负)多出现于块体边界带附近,地震多发生在靠近块体边界的均衡重力异常(正或负,主要为正)区域内;巴颜喀拉地块东部及邻区岩石圈有效弹性厚度(T_e)为10~65km,不同构造单元之间T_e空间分布差异明显,较低的T_e值出现在龙门山构造带附近,T_e值为20km左右,岩石圈荷载加载比为0.5~0.8,表明现今的岩石圈挠曲状态主要由莫霍面加载形成.进一步分析表明,巴颜喀拉地块东部挤压增生与横向流动同时发生,是造成该区域地震发生与重力均衡异常高值重合、岩石圈有效弹性厚度和大地热流值较低的主要原因.本文获得的地壳均衡特征及岩石圈有效弹性强度结果,加深了对巴颜喀拉东部及邻区岩石圈构造演化过程的认识.  相似文献   

17.
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   

18.
川西高原重磁异常特征与构造背景分析   总被引:5,自引:1,他引:4       下载免费PDF全文
高玲举  张健  董淼 《地球物理学报》2015,58(8):2996-3008
川西高原位于青藏高原东缘,是我国大陆地壳构造变形及地震活动最强烈的区域.利用最新重力、航磁资料,通过异常分析和反演计算,研究了该区鲜水河断裂、理塘断裂、金沙江断裂的重磁异常特征、莫霍面特征、居里面特征,分析得出了这些断裂的深部地质结构与构造背景.计算表明:川西高原莫霍面东南浅、西北深,地壳厚度在43~63km之间.居里面特征表现为条带状,深度在17~23km之间.其中,鲜水河断裂带对应莫霍面深度梯度带,居里面为高低起伏圈闭.理塘断裂带北段莫霍面局部隆坳相间,南段莫霍面逐渐抬升,居里面呈现由西向东加深的梯度带.金沙江断裂带,居里面形成局部抬升,深部可能存在高温地热异常源.综合分析认为,川西高原地壳结构主要特点为:增厚的下地壳,热-塑性变形的中地壳,脆性变形的上地壳.  相似文献   

19.
继2008年汶川MS8.0地震之后, 2013年4月20日又发生了芦山MS7.0地震, 两次地震的发震构造同属龙门山断裂带. 根据最新的重力和地形资料, 采用岩石层弹性板模型, 计算了龙门山断裂带及其周边地区的二维岩石层有效弹性厚度分布, 并从岩石层的力学特征分析了穿过两次地震震中位置的重力剖面特征; 结合以往在该地区的研究成果, 分析了岩石层的力学变形问题. 结果表明, 以龙门山为界, 四川盆地所在的扬子板块弹性厚度为33(±4) km, 龙门山西北的松潘—甘孜地块的弹性厚度为13(±4) km, 两侧岩石层存在明显的力学强度差异. 包括两次地震震中范围的龙门山断裂带南部区域的有效弹性厚度值小于北部地区, 说明该区域的岩石层更容易发生变形, 可以解释在构造上具备强震发生的岩石层动力学条件.   相似文献   

20.
The eastern Tibetan plateau has been getting more and more attention because it combines active faults, uplifting, and large earthquakes together in a high-population region. Based on the previous researches, the most of Cenozoic tectonic activities were related to the regional structure of the local blocks within the crustal scale. Thus, a better understanding of the crustal structure of the regional tectonic blocks is an important topic for further study. In this paper, we combined the simple Bouguer gravity anomaly with the Moho depths from previous studies to investigate the crustal structure in this area. To highlight the crustal structures, the gravity anomaly caused by the Moho relief has been reduced by forward modeling calculations. A total horizontal derivative (THD) had been applied on the gravity residuals. The results indicated that the crustal gravity residual is compatible with the topography and the geological settings of the regional blocks, including the Sichuan basin, the Chuxiong basin, the Xiaojiang fault, and the Jinhe fault, as well as the Longmenshan fault zone. The THD emphasized the west margin of Yangtze block, i.e., the Longriba fault zone and the Xiaojiang fault cut through the Yangtze block. The checkboard pattern of the gravity residual in the Songpan-Garze fold belt and Chuandian fragment shows that the crust is undergoing a southward and SE-directed extrusion, which is coincident with the flowing direction indicated from the GPS measurements. By integrating the interpretations, the stepwise extensional mechanism of the eastern Tibetan plateau is supported by the southeastward crustal deformation, and the extrusion of Chuandian fragment is achieved by Xianshuihe fault.  相似文献   

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