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941.
云南中甸-大具断裂上新发现的地震地表破裂带 总被引:1,自引:0,他引:1
中甸-大具断裂是川滇菱形块体的西南边界,总体走向310°—320°。近年来我们对该断裂进行了1:50000条带状地质填图,发现了断裂活动的地质地貌证据。其中,在丽江大具盆地内(金沙江右岸)沿断裂新发现一处典型地震地表破裂带,长约600m,宽120m左右,主要表现为地表挤压鼓包、挤压垄脊、张裂缝、挤压阶区等,呈NW走向,与中甸-大具断裂走向基本一致。野外工作中,我们详细记录和测量了地表破裂的破裂样式、破裂规模和相关定量数据,利用旋翼无人机测绘了地表破裂带的形态和展布,获得了高精度DEM,分析了地表破裂表现出的运动性质。在已有资料的基础上讨论了地表破裂的形成时代、归属、震级大小,简要分析了其发震断层。新地震地表破裂带的发现为进一步研究中甸-大具断裂活动特征、古地震及地震危险性提供了基础资料。 相似文献
942.
943.
针对在水库堤坝排水边坡混凝土裂纹的抗震性研究中,未考虑岩土体抗剪强度参数的劣化屈服效应以及混凝土裂纹的老化,存在抗震性判断结果准确率较差等问题,提出水库堤坝排水边坡混凝土考虑老化后产生裂纹的抗震性能研究方法。模拟强震下边坡混凝土的开裂破坏过程,根据D-P屈服准则,实现对闸墩混凝土材料的屈服判断。采用薄层整体单元模拟和分离式裂纹单元,实现混凝土裂纹的数值模拟,加载地震波后,获取混凝土裂纹的强震响应规律与破坏特征。实验结果可知,本文方法对坝体位移变化的研究精度高,得到的混凝土裂纹扩展范围更为准。运用本文方法对水库堤坝排水边坡混凝土的抗震性研究准确率以及可信度较高,说明本文方法具有一定的可取性。 相似文献
944.
945.
应用地震危险性分析理论和地震动人工合成技术,给出Newmark法中所需的地震动时程,解决了斜坡稳定性分析Newmark法中难以选取合适地震动时程的难题。通过对黄土斜坡实例计算,给出了坡体中地震动峰值加速度与深度的关系;在计算坡体位移时,提出了等效峰值加速度的概念;对比了使用地面地震动时程和使用坡体内等效地震动时程的计算结果。 相似文献
946.
由于地震波的信噪比,传播路径效应,震源机制差异和震源过程等因素的影响,传统的谱比法反演的拐角频率结果不精确,离散性大。以谱比法为基础,引入Bootstrap重采样法,KolmogorovSmirnov检验以及谱比趋势检验的筛选方法,对谱比法的反演结果进行精度评定和筛选,提高谱比法反演的拐角频率精度。将此方法应用于汶川地震余震的拐角频率、地震辐射能量、辐射效率以及能矩比等震源参数反演,建立拐角频率与地震矩之间的对应关系,验证谱比法以及三种筛选方法的可靠性。汶川地震余震震源参数反演结果表明,汶川地震余震的拐角频率与地震矩对应关系M0∝fc-3.295±0.25存在与自相似关系M0∝fc-3偏离现象。在地震释放能量方面,存在能矩比随地震矩增大而增大,以及大地震的辐射效率大于小地震的现象。 相似文献
947.
虎牙断裂带作为青藏高原物质东向扩展的前缘断裂之一,其运动方式和强震活动类型表现出显著的南北差异.研究虎牙断裂带运动方式的差异性机理,对于认识地震发生机制与高原东向扩展模式有着重要意义.本文构建包含虎牙断裂带的三维黏弹性有限元模型,研究介质流变性差异与断层几何形态对区域地壳变形及断层三维滑动速率的影响.数值实验结果表明,在青藏高原物质东向挤出的动力学背景下,在虎牙断裂带南段,中下地壳介质流变性横向差异控制着断层以逆冲性质为主的运动,且随着中下地壳断层两侧流变性差异的增大,断层西侧物质的水平运动更易发生向垂向运动的转换.在断层两侧流变强度差1~2个数量级时,断层倾向滑动速率与走向滑动速率的比值达3.3~4.0,表现出显著的逆冲运动,与松潘—平武强震所反映的断层运动特征基本一致.相反,在断裂带北段,考虑断层两侧中下地壳较小的流变性差异时,断层即表现出明显的逆冲运动,这与九寨沟MS7.0等强震反映的断层以走滑性质为主的运动明显不符,表明虎牙断裂带北段可能不存在中下地壳介质流变性的横向差异,断层以走滑为主的运动方式主要受断裂带几何展布控制.研究结果为认识青藏高原东缘同一构造区内断层运动方式差异与发震机制以及高原东向扩展模式提供了理论依据.
相似文献948.
SPATIAL AND TEMPORAL DISTRIBUTION OF SLIP RATE DEFICIT ACROSS HAIYUAN-LIUPAN SHAN FAULT ZONE CONSTRAINED BY GPS DATA 下载免费PDF全文
As the northeast boundary of the Tibetan plateau, the Haiyuan-Liupan Shan fault zone has separated the intensely tectonic deformed Tibetan plateau from the stable blocks of Ordos and Alxa since Cenozoic era. It is an active fault with high seismic risk in the west of mainland China. Using geology and geodetic techniques, previous studies have obtained the long-term slip rate across the Haiyuan-Liupan Shan fault zone. However, the detailed locking result and slip rate deficit across this fault zone are scarce. After the 2008 Wenchuan MS8.0 earthquake, the tectonic stress field of Longmen Shan Fault and its vicinity was changed, which suggests that the crustal movement and potential seismic risk of Haiyuan-Liupan Shan fault zone should be investigated necessarily.
Utilizing GPS horizontal velocities observed before and after Wenchuan earthquake(1999~2007 and 2009~2014), the spatial and temporal distributions of locking and slip rate deficit across the Haiyuan-Liupan Shan fault zone are inferred. In our model, we assume that the crustal deformation is caused by block rotation, horizontal strain rate within block and locking on block-bounding faults. The inversion results suggest that the Haiyuan fault zone has a left-lateral strike-slip rate deficit, the northern section of Liupan Shan has a thrust dip-slip rate deficit, while the southern section has a normal dip-slip rate deficit. The locking depths of Maomao Shan and west section of Laohu Shan are 25km during two periods, and the maximum left-lateral slip rate deficit is 6mm/a. The locking depths of east section of Laohu Shan and Haiyuan segment are shallow, and creep slip dominates them presently, which indicates that these sections are in the postseismic relaxation process of the 1920 Haiyuan earthquake. The Liupan Shan Fault has a locking depth of 35km with a maximum dip-slip rate deficit of 2mm/a. After the Wenchuan earthquake, the high slip rate deficit across Liupan Shan Fault migrated from its middle to northern section, and the range decreased, while its southern section had a normal-slip rate deficit.
Our results show that the Maomao Shan Fault and west section of Laohu Shan Fault could accumulate strain rapidly and these sections are within the Tianzhu seismic gap. Although the Liupan Shan Fault accumulates strain slowly, a long time has been passed since last large earthquake, and it has accumulated high strain energy possibly. Therefore, the potential seismic risks of these segments are significantly high compared to other segments along the Haiyuan-Liupan Shan fault zone. 相似文献
949.
DETRITAL ZIRCON U-PB DATING OF MODERN RIVERS' DEPOSITS IN PAMIR,SOUTH TIAN SHAN AND THEIR CONVERGENCE ZONE 下载免费PDF全文
By dating detrital zircon U-Pb ages of deposition sequence in foreland basins, we can analyze the provenance of these zircons and further infer the tectonic history of the mountain belts. This is a new direction of the zircon U-Pb chronology. The precondition of using this method is that we have to have all-around understanding to the U-Pb ages of the rocks of the orogenic belts, while the varied topography, high altitude of the zircon U-Pb ages of the orogenic belts are very rare and uneven. This restricts the application of this method. Modern river deposits contain abundant geologic information of their provenances, so we can probe the zircon U-Pb ages of the geological bodies in the provenances by dating the detrital zircon U-Pb ages of modern rivers' deposits. We collected modern river deposits of 14 main rivers draining from Pamir, South Tian Shan and their convergence zone and conducted detrital zircon U-Pb dating. Combining with the massive bed rock zircon U-Pb ages of the magmatic rocks and the detrital zircon U-Pb ages of the modern fluvial deposit of other authors, we obtained the distribution characteristics of zircon U-Pb ages of different tectonic blocks of Pamir and South Tian Shan. Overlaying on the regional geological map, we pointed out the specific provenance geological bodies of different U-Pb age populations and speculated the existence of some new geological bodies. The results show that different tectonic blocks have different age peaks. The main age peaks of South Tian Shan are 270~289Ma and 428~449Ma, that of North Pamir are 205~224Ma and 448~477Ma, Central Pamir 36~40Ma, and South Pamir 80~82Ma and 102~106Ma. The Pamir syntaxis locates at the west end of the India-Eurasia collision zone. The northern boundary of the Pamir is the Main Pamir Thrust(MPT)and the Pamir Front Thrust(PFT). In the Cenozoic, because of the squeezing action of the India Plate, the Pamir thrust a lot toward the north and the internal terranes of the Pamir strongly uplifted. For the far-field effect of the India-Eurasia collision, the Tian Shan on the north margin of the Tarim Basin also uplifted intensely during this period. Extensive exhumation went along with these upliftings. The material of the exhumation was transported to the foreland basin by rivers, which formed the very thick Cenozoic deposition sequence. These age peaks can be used as characteristic ages to recognize these tectonic blocks. These results lay a solid foundation for tracing the convergence process of Pamir and South Tian Shan in Cenozoic with the help of detrital zircon U-Pb ages of sediments in the foreland basin. 相似文献
950.