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1.
利用青藏高原东北缘区域数字地震台网43个台站的远震SKS波形资料,采用最小能量法和旋转相关法得到台站下方上地幔介质各向异性的分裂参数:快波偏振方向(φ)和快慢波时间延迟(δt)。研究结果表明:在塔里木盆地东南缘区域,各向异性快波方向与该区域的断裂走向存在明显的夹角,该盆地向柴达木盆地的俯冲方向一致,各向异性归因为古构造运动遗留下的"化石各向异性",且由于壳幔物质的拆沉作用,推测该区域壳幔之间存在解耦作用;在祁连—河西走廊区,SKS快波偏振方向呈NW-SE,与主要断裂带的走向一致;在西秦岭北缘断裂带附近,观测到快慢波时间延迟有着较大的变化,可能是岩石圈变形和软流圈物质流动共同导致;在鄂尔多斯板块内,快波方向呈NW-SE方向,可能暗示青藏高原深部物质分叉绕流运动。青藏高原东北缘不同区域台站下方的各向异性均具有差异性,进一步证实了青藏高原东北缘地区构造变形的复杂性。  相似文献   

2.
四川及邻区上地幔各向异性研究   总被引:7,自引:0,他引:7  
对布设在四川及邻区的固定和流动宽频带地震台网共94个台站记录作远震SKS波形资料偏振分析,采用最小切向能量的网格搜索和叠加分析求得每一个台站的SKS快波偏振方向和快、慢波的延迟时间,获得四川及邻区的上地幔各向异性图像.从得到结果整体看,各向异性快波方向在研究区东北部为NWW-SEE方向,到中部的NW-SE方向,再到西部的近NS方向,有顺时针旋转的趋势,主体以NW—SE方向为主,快、慢波延迟时间是0.47~1.68s.各向异性的快波偏振方向与GPS测量的地壳运动速度场方向变化相一致.通过分析各向异性图像,认为四川及邻区上地幔物质在区域构造应力场的作用下发生了变形,它使橄榄岩中晶格排列方向平行于物质变形方向,研究区壳幔变形可能存在垂直连贯变形特征.汶川地震可能是高原东缘地壳或上地壳物质受上地幔物质SE向的拖曳力作用向东挤压,这种挤压受到四川盆地下的刚性地块的顽强阻挡,经过长期的构造应力能量的积累,最终在龙门山映秀地区突然释放,导致汶川8.0级地震发生.  相似文献   

3.
中国东部上地幔各向异性研究   总被引:9,自引:0,他引:9  
对布设在中国东部的固定和流动宽频带地震台网共65个台站记录作远震SKS波形资料偏振分析,采用SC方法和叠加分析求得每一个台站的SKS快波偏振方向和快、慢波的时间延迟,获得了中国东部上地幔各向异性图像。中国东部的各向异性快波方向从华南的近EW方向到华北的NWW-SEE方向,再到东北的NW-SE方向,由南向北呈顺时针旋转的趋势。快、慢波时间延迟范围是0.41-1.52s。通过分析研究区各向异性特征,认为中国东部上地幔各向异性可能与中国大陆受印度板块与欧亚板块的碰撞以及太平洋板块和菲律宾海板块向欧亚板块下方的俯冲的共同作用有关。在中国西部地壳增厚隆起的同时,物质向东挤出,使得东部上地幔物质向东和东南方向流动。中国东部大陆岩石圈和岩石圈下的上地幔物质在板块的相互作用下产生变形,使上地幔橄榄岩等晶体的晶格优势取向沿物质流动方向。各向异性快波方向与岩石圈的伸展方向和GPS得到的速度场方向一致,表明中国东部壳幔变形具有垂直连贯变形特征。  相似文献   

4.
山东地区上地幔各向异性研究   总被引:1,自引:0,他引:1       下载免费PDF全文
通过分析山东地区数字地震台网37个宽频带地震台站的远震SKS波形资料,使用最小能量法和旋转相关法求得每一个台站的SKS快波偏振方向和快、慢波时间延迟,获得了山东地区上地幔各向异性图像.该研究区的各向异性快波方向基本呈WNW-ESE方向,快、慢波时间延迟为0.73-1.71 s.研究表明,山东地区上地幔存在明显的各向异性...  相似文献   

5.
首都圈地区SKS波分裂研究   总被引:7,自引:2,他引:5       下载免费PDF全文
通过分析首都圈数字地震台网的49个宽频带和甚宽带台站的远震SKS波形资料,采用最小切向能量的网格搜索法和叠加分析方法,求得每一个台站的SKS快波偏振方向和快、慢波的时间延迟,获得了首都圈地区上地幔各向异性图象.首都圈地区的各向异性快波方向基本上呈WNW-ESE方向,快、慢波时间延迟为0.56-1.56 s.研究表明,首都圈地区上地幔存在明显的各向异性,引起各向异性的主要原因是研究区受太平洋板块俯冲作用下软流圈物质变形,使得上地幔橄榄岩等晶体的晶格优势取向沿物质流动方向.另外,中国大陆受印度板块与欧亚板块的强烈碰撞,大陆西部地壳增厚隆起,同时造成物质东向挤出,使得首都圈地区上地幔物质沿快波方向变形.通过研究区各向异性快波方向和伸展运动方向与GPS测量得到的速度场对比分析,首都圈地区壳幔变形可能具有垂直连贯变形特征.  相似文献   

6.
通过分析首都圈数字地震台网的49个宽频带和甚宽带台站的远震SKS波形资料,采用最小切向能量的网格搜索法和叠加分析方法,求得每一个台站的SKS快波偏振方向和快、慢波的时间延迟,获得了首都圈地区上地幔各向异性图象.首都圈地区的各向异性快波方向基本上呈WNW-ESE方向,快、慢波时间延迟为0.56——1.56s.研究表明,首都圈地区上地幔存在明显的各向异性,引起各向异性的主要原因是研究区受太平洋板块俯冲作用下软流圈物质变形,使得上地幔橄榄岩等晶体的晶格优势取向沿物质流动方向.另外,中国大陆受印度板块与欧亚板块的强烈碰撞,大陆西部地壳增厚隆起,同时造成物质东向挤出,使得首都圈地区上地幔物质沿快波方向变形.通过研究区各向异性快波方向和伸展运动方向与GPS测量得到的速度场对比分析,首都圈地区壳幔变形可能具有垂直连贯变形特征.   相似文献   

7.
收集了喜马拉雅东构造结地震台阵17个宽频带流动地震台站,以及东构造结周边地区布设的32个宽频带流动台站和中国地震台网10个宽频带固定台站的远震波形资料,并对这共计59个台站所记录的XKS(SKS,SKKS和PKS)波形资料作偏振分析,采用最小切向能量的网格搜索法和叠加分析方法求得每一个台站的XKS波的快波偏振方向和快、慢波的时间延迟,并结合其他研究在该区域取得的各向异性参数结果,获得了喜马拉雅东构造结及周边地区上地幔各向异性图像.从得到的结果来看,喜马拉雅东构造结的上地幔快波方向基本为NE-SW方向,其周边地区的快波方向自西向东呈现出NE-SW方向到E-W方向,然后到NW-SE方向,最后为N-S方向的逐步变化,其周边地区的快波方向表现出围绕东构造结顺时针旋转的变化特征.通过该区域快波方向与地表构造走向和运动速度场变化特征的对比分析,喜马拉雅东构造结及周边地区的快波方向与该区域地表构造走向和由GPS得到地表运动速度场运动趋势相一致,说明该区域地表变形特征与深部上地幔变形特征是一致的,其岩石圈变形是一种垂直连贯变形模式.喜马拉雅东构造结的快波方向为NE方向,与印度板块向青藏高原下NE方向的俯冲一致,说明稳定坚硬的印度块体向NE方向俯冲到青藏高原下方是引起该区域岩石圈变形的主要原因.围绕喜马拉雅东构造结的周边地区的快波方向呈现出顺时针旋转的环形变化特征,我们推测稳定坚硬的印度板块对青藏高原NE方向的俯冲作用,又由于缅甸块体下俯冲板片的东向俯冲和西向后撤对缅甸弧后的岩石圈产生了被动的西向拖曳力作用,使得绕喜马拉雅东构造结周边地区岩石圈产生了顺时针旋转的环形变形,进而形成了快波方向绕喜马拉雅东构造结顺时针旋转的各向异性特征.  相似文献   

8.
基于青藏高原东北缘甘肃区域台网41个宽频带地震台站的远震记录资料,通过PKS、SKS和SKKS震相的剪切波分裂分析,获取了台站下方介质的各向异性分裂参数,得到该地区上地幔各向异性分布图像,并结合GPS速度场和地壳剪切波各向异性分析青藏高原东北缘各向异性形成机制及壳幔各向异性特征.分析结果认为,在阿尔金断裂带西侧,各向异性快波偏振呈NWW-SEE方向,与断裂带走向有一定夹角,与塔里木盆地向柴达木盆地俯冲方向一致,说明该地区上地幔物质变形主要受古构造运动的影响,属于"化石"各向异性.在祁连山-河西走廊构造区,XKS快波偏振呈NW-SE方向,一致性较好,与区域断层走向方向相同;由区域小震的地壳剪切波分裂分析得到的地壳剪切波快波偏振在该区域呈NE-SW方向,与相对于稳定欧亚大陆GPS运动速率一致,地壳和地幔快波偏振方向的差异表明壳幔变形可能有不同的形变机制.在陇中盆地及其周缘,由于处于活跃青藏地块与稳定鄂尔多斯地块之间的过渡带,相对于其他区域具有更加复杂的构造背景,地壳快波偏振和地幔快波偏振总体上呈NWW-SEE方向,说明壳幔变形机制可能相同;但不同台站结果之间存在一定离散性,推测是由于受局部构造特征差异性造成.  相似文献   

9.
青藏高原及邻区的Rayleigh面波的方位各向异性   总被引:1,自引:0,他引:1  
用Rayleigh波层析成像研究青藏高原地壳上地幔方位各向异性.收集了包括近年来在云南和川西藏东地区布设的流动台网在内的青藏高原及周边地区宽频带地震台站的记录,使得大部分地区有理想的射线覆盖,因此反演结果获得较高的分辨.模型分辨率的测试表明,大于400km范围内的各向异性特征以及大于2%的各向异性强度是可靠的.青藏高原内部的方位各向异性具有与大地构造相似的分区特征.高原东部大部分地区地壳各向异性强度大于2%,且表现为环绕喜马拉雅东构造结的顺时针旋转.在垂直方向上,高原内部的上地壳、下地壳和岩石圈地幔的各向异性方向基本一致,也与GPS所观测到的速度场和SKS快波方向基本一致,揭示高原下方的岩石圈变形是垂直连贯变形.在高原外部的云南地区,地壳和上地幔岩石圈方位各向异性的强度均小于2%,因此SKS波从核幔边界至台站间产生的分裂应主要归因于软流圈.  相似文献   

10.
鄂尔多斯块体及周缘上地幔各向异性研究   总被引:2,自引:0,他引:2  
对布设在鄂尔多斯块体及周缘的固定和流动宽频带地震台网共111个台站记录作远震SKS(SKKS)波形资料偏振分析,采用最小切向能量的网格搜索和叠加分析求得每一个台站的SKS(SKKS)快波偏振方向和快、慢波的延迟时间,获得了鄂尔多斯块体及周缘上地幔各向异性图像.在鄂尔多斯块体西缘和北缘,各向异性的快波方向为NW-SE方向,一致性较好;在鄂尔多斯多斯块体南缘,快波方向主要是NWW-SEE和近EW方向;在鄂尔多斯块体东缘,快波方向总体表现为近EW方向,间有NEE-SWW方向和NWW-SEE方向.在鄂尔多斯块体内部,快波方向在北部是近NS方向,而南部则是近EW方向.快、慢波的时间延迟范围是0.48~1.50s,鄂尔多斯块体内部的时间延迟平均值小于其周缘地区.通过分析研究区各向异性特征,认为构造稳定的鄂尔多斯块体内部的各向异性主要来自于古老的华北克拉通保存的"化石"各向异性;青藏高原东北缘向NE方向的推挤,造成岩石圈NW-SE方向的拉张伸展,鄂尔多斯块体西缘和北缘下的上地幔物质沿NW-SE方向发生了形变,使得上地幔中橄榄岩的晶格排列方向平行于物质形变的方向;在鄂尔多斯块体南缘,刚性的华北块体和扬子块体碰撞作用,使得各向异性快波方向平行于两个刚性块体的碰撞边界和秦岭造山带的走向.结合该区域绝对板块运动和速度结构研究,认为在秦岭造山带下可能存在一个青藏高原物质东流的地幔流通道;在鄂尔多斯块体东缘的汾河地堑和太行山,相对复杂的各向异性特征可能由于西太平板块俯冲、区域伸展构造、造山运动等共同作用引起的.对于YCI台得到的各向异性参数(快波方向变化范围是45°~106°,时间延迟变化范围是0.6~1.5s)随事件反方位角呈现出π/2周期的变化,符合双层各向异性模型.基于0.125Hz的主频和实测的各向异性参数,我们模拟得到了最佳的双层各向异性模型,下层φlower=132°,δtlower=0.8s,上层φupper=83°,δtupper=0.5s.上层各向异性归功于古老克拉通保留的"化石"各向异性,下层各向异性则受到了青藏高原东北缘NE方向推挤导致的岩石圈NW-SE方向的拉张伸展作用.通过该区域各向异性快波方向与全球定位系统(GPS)的观测结果的对比分析,鄂尔多斯块体的周缘壳幔变形符合垂直连贯变形模式,而其内部变形复杂,有待进一步研究.  相似文献   

11.
Seismic anisotropy of upper mantle in Sichuan and adjacent regions   总被引:9,自引:0,他引:9  
Based on the polarization analysis of teleseismic SKS waveform data recorded at 94 broadband seis-mic stations in Sichuan and adjacent regions, the SKS fast-wave direction and the delay time between the fast and slow shear waves were determined at each station using the grid searching method of minimum transverse energy and the stacking analysis method, and the image of upper mantle anisot-ropy was acquired. The fast-wave polarization directions are mainly NW-SE in the study area, NWW-SEE to its northeast and NS to its west. The delay time falls into the interval [0.47 s, 1.68 s]. The spatial variation of the fast-wave directions is similar to the variation of GPS velocity directions. The anisotropic image indicates that the regional tectonic stress field has resulted in deformation and flow of upper mantle material, and made the alignment of upper mantle peridotite lattice parallel to the di-rection of material deformation. The crust-upper mantle deformation in Sichuan and adjacent regions accords with the mode of vertically coherent deformation. In the eastern Tibetan Plateau, the crustal material was extruded to east or southeast due to SE traction force of the upper mantle material. The extrusion might be obstructed by a rigid block under the Sichuan Basin and the crust has been de-formed. After a long-term accumulation of tectonic strain energy, the accumulative energy suddenly released in Yingxiu town of the Longmenshan region, and Wenchuan MS8.0 earthquake occurred.  相似文献   

12.
By using the polarization analysis of teleseismic SKS waveform data recorded at 116 seismic stations which respectively involved in China National Digital Seismograph Network, and Yunnan, Sichuan, Gansu and Qinghai regional digital networks, and portable broadband seismic networks deployed in Sichuan, Yunnan and Tibet, we obtained the SKS fast-wave direction and the delay time between fast and slow waves of each station by use of the stacking analysis method, and finally acquired the fine image of upper mantle anisotropy in the eastern Tibetan Plateau and its adjacent regions. We analyzed the crust-mantle coupling deformation on the basis of combining the GPS observation results and the upper mantle anisotropy distribution in the study area. The Yunnan region out of the plateau has dif-ferent features of crust-mantle deformation from the inside plateau. There exists a lateral transitional zone of crust-mantle coupling in the eastern edge of the Tibetan Plateau, which is located in the region between 26° and 27°N in the west of Sichuan and Yunnan. To the south of transitional zone, the fast-wave direction is gradually turned from S60°―70°E in southwestern Yunnan to near EW in south-eastern Yunnan. To the north of transitional zone in northwestern Yunnan and the south of western Sichuan, the fast-wave direction is nearly NS. From crust to upper mantle, the geophysical parameters (e.g. the crustal thickness, the Bouguer gravity anomaly, and tectonic stress direction) show the feature of lateral variation in the transitional zone, although the fault trend on the ground surface is inconsis-tent with the fast-wave direction. This transitional zone is close by the eastern Himalayan syntaxis, and it may play an important role in the plate boundary dynamics.  相似文献   

13.
南北构造带北段上地幔各向异性特征   总被引:9,自引:5,他引:4       下载免费PDF全文
对布设在南北构造带北段的中国地震科学探测台阵项目二期674个宽频带流动台站和鄂尔多斯台阵21个宽频带流动台站记录的远震XKS(SKS、SKKS和PKS)波形资料作偏振分析,采用最小切向能量的网格搜索法和"叠加"分析方法求得每一个台站的XKS波的快波偏振方向和快、慢波的时间延迟,并结合该区域出版的122个固定台站的分裂结果,获得了南北构造带北段上地幔各向异性图像.快波方向分布显示青藏高原东北缘、阿拉善块体和鄂尔多斯块体西缘的快波方向主要表现为NW—SE方向,秦岭造山带的快波方向为近E—W方向,鄂尔多斯块体内部的快波方向在北部为近N—S方向,南部表现为近E—W方向.时间延迟分布来看,鄂尔多斯块体的时间延迟不仅明显小于其周缘地区,而且小于其他构造单元,特别是在高原东北缘、阿拉善块体和鄂尔多斯块体的交汇地区的时间延迟很大,反映了构造稳定单元的时间延迟小于构造活跃单元.通过比较快波方向的横波分裂测量值与地表变形场模拟的预测值,并结合研究区地质构造和岩石圈结构特征分析表明,在青藏高原东北缘、阿拉善块体和鄂尔多斯块体西缘各向异性主要由岩石圈变形引起,地表变形与地幔变形一致,地壳耦合于地幔,是一种垂直连贯变形模式;秦岭造山带的各向异性不仅来自于岩石圈,而且其岩石圈板块驱动的软流圈地幔流作用不可忽视;鄂尔多斯块体内部深浅变形不一致,具有弱的各向异性、厚的岩石圈和构造稳定的特征,我们认为其各向异性可能保留了古老克拉通的"化石"各向异性.  相似文献   

14.
本文对布设在华北克拉通东西两块体交界区域的宽频带流动地震观测台阵和部分固定台站的远震波形记录开展了SKS波分裂研究.结果显示,鄂尔多斯块体内部的各向异性比较弱,剪切波分裂导致的时间延迟一般小于0.7s.鄂尔多斯块体东缘的山西断陷带和太行山以及华北平原西部均表现出了比较强的各向异性,时间延迟大于1.0s.特别是在太行山地区观测到的ENE趋向的快波偏振方向明显不同于鄂尔多斯块体和华北平原地区的近E-W和ESE方向的快波偏振方向.在华北克拉通东西两块体交界过渡带的太行山地区观测到的显著上地幔各向异性及变化可能对应于围绕鄂尔多斯块体东南角的局部软流圈绕流,而后者可能起因于鄂尔多斯块体的逆时针旋转以及青藏高原软流圈沿秦岭大别造山带向东的流动.  相似文献   

15.
The crustal and upper mantle azimuthal anisotropy of the Tibetan Plateau and adjacent areas was studied by Rayleigh wave tomography. We collected sufficient broadband digital seismograms trav-ersing the Tibetan Plateau and adjacent areas from available stations, including especially some data from the temporary stations newly deployed in Yunnan, eastern Tibet, and western Sichuan. They made an adequate path coverage in most regions to achieve a reasonable resolution for the inversion. The model resolution tests show that the anisotropic features of scope greater than 400 km and strength greater than 2% are reliable. The azimuthal anisotropy pattern inside the Tibetan Plateau was similar to the characteristic of tectonic partition. The crustal anisotropy strength is greater than 2% in most re-gions of East Tibet, and the anisotropy shows clockwise rotation surrounding the eastern Himalayan syntaxis. Vertically, the anisotropy direction indicates a coherent pattern within the upper crust, lower crust, and lithosphere mantle of the Tibetan Plateau, which also is consistent with GPS velocity field and SKS fast polarization directions. The result supports that the crust-mantle deformation beneath the Tibetan Plateau is vertically coherent. The anisotropy strength of crust and lithospheric upper mantle in Yunnan outside the Tibetan Plateau is lower than 2%, so SKS splitting from core-mantle boundary to station should largely be attributed to the anisotropy of asthenosphere.  相似文献   

16.
Based on the polarization analysis of teleseismic SKS waveform data recorded at 49 seismic stations in Capital Area Seismograph Network,the SKS fast-wave direction and the delay time between the fast and slow shear waves at each station were determined by using the grid searching method of minimum transverse energy and the stacking analysis method,and then we acquired the image of upper mantle anisotropy in Capital area.In the study area,the fast-wave polarization direction is basically WNW-ESE,and the delay time falls into the interval from 0.56 s to 1.56 s.The results imply that the upper mantle anisotropy in Capital area is mainly caused by the subduc-tion of the Pacific plate to Eurasian plate.The subduction has resulted in the asthenospheric material deformation in Capital area,and made the alignment of upper mantle peridotite lattice parallel to the deformation direction.And the collision between the Indian and Eurasian plates made the crust of western China thickening and uplifting and material eastwards extruding,and then caused the upper mantle flow eastwards,and made the upper mantle de-formation direction parallel to the fast-wave direction.The deformation model of the crust and upper mantle is possibly vertically coherent deformation by comparing the fast-wave polarization direction with the direction of lithospheric extension and the GPS velocity direction.  相似文献   

17.
利用甘肃和青海两省固定宽频带地震台记录的远震波形资料,挑选高质量SKS震相,联合使用最小切向能量方法和旋转互相关方法获得230对高信噪比分裂参数;同时对接收函数中Pms震相随方位角的变化进行拟合,得到了24个台站的地壳各向异性分裂参数.整个区域SKS分裂快波方向均值为123°,Pms分裂快波方向均值为132°,且大部分区域SKS、Pms快波方向与地表构造走向相一致,说明青藏高原东北缘以岩石圈垂直连贯变形为主,地壳上地幔相互耦合.SKS、Pms分裂时差均值分别为1.0s和0.6s,显示地壳各向异性对于SKS分裂时差有较大贡献.昆仑断裂附近Pms、SKS分裂快波方向与昆仑断裂走向基本一致,说明昆仑断裂可能是岩石圈尺度深大断裂;而阿尔金断裂东缘二者快波方向显著差异意味着阿尔金断裂在东缘可能仅为地壳尺度的断裂.  相似文献   

18.
Polarization analysis of teleseismic data has been used to determine the XKS(SKS,SKKS,and PKS)fast polarization directions and delay times between fast and slow shear waves for 59 seismic stations of both temporary and permanent broadband seismograph networks deployed in the eastern Himalayan syntaxis(EHS)and surrounding regions.The analysis employed both the grid searching method of the minimum tangential energy and stacking analysis methods to develop an image of upper mantle anisotropy in the EHS and surrounding regions using the newly obtained shear wave splitting parameters and previously published results.The fast polarization directions are oriented along a NE-SW azimuth in the EHS.However,within the surrounding regions,the fast directions show a clockwise rotation pattern around the EHS from NE-SW,to E-W,to NW-SE,and then to N-S.In the EHS and surrounding regions,the fast directions of seismic anisotropy determined using shear wave splitting analysis correlate with surficial geological features including major sutures and faults and with the surface deformation fields derived from global positioning system(GPS)data.The coincidence between structural features in the crust,surface deformation fields and mantle anisotropy suggests that the deformation in the crust and lithospheric mantle is mechanically coupled.In the EHS,the coherence between the fast directions and the NE direction of the subduction of the Indian Plate beneath the Tibetan Plateau suggests that the lithospheric deformation is caused mainly by subduction.In the regions surrounding the EHS,we speculate that a westward retreat of the Burma slab could contribute to the curved anisotropy pattern.The Tibetan Plateau is acted upon by a NE-trending force due to the subduction of the Indian Plate,and also affected by a westward drag force due to the westward retreat produced by the eastward subduction of the Burma slab.The two forces contribute to a curved lithospheric deformation that results in the alignment of the upper mantle peridotite lattice parallel to the deformation direction,and thus generates a curved pattern of fast directions around the EHS.  相似文献   

19.
华北上地幔各向异性研究   总被引:9,自引:6,他引:3       下载免费PDF全文
对华北地震科学台阵的200个宽频带和甚宽带地震台站所记录的远震SKS(SKKS)波形资料作偏振分析,采用最小切向能量的网格搜索法和叠加分析方法求得每一个台站的SKS(SKKS)快波偏振方向和快、慢波的时间延迟,并结合已发表的固定台站的结果,获得了华北上地幔各向异性图像.从得到结果看,华北东部各向异性快波方向基本为NWW-SEE方向,而西部的快波方向转到NW-SE或NNW-SSE.快、慢波时间延迟范围是0.50~1.47 s,华北西部的平均快、慢波时间延迟小于华北东部.在华北东部,快波方向与绝对板块运动(APM)方向基本一致,预示了NWW向的软流圈地幔流是引起该区域上地幔各向异性的主要原因,它使得上地幔橄榄岩等晶体的晶格优势取向沿地幔物质流动方向,从而导致了NWW趋向的快波方向.然而,在稳定的西部,快波方向既不与绝对板块运动方向一致,也不与构造走向一致,这种弱各向异性很可能是遗留在古老克拉通的厚的岩石圈内的"化石"各向异性.  相似文献   

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