• ISSN 2097-1893
  • CN 10-1855/P
赵磊,陈志丹,谢磊,朱志辉,许文斌. 2024. 2024年1月23日MW7.0乌什地震InSAR同震形变场和断层滑动分布. 地球与行星物理论评(中英文),55(4):453-460. DOI: 10.19975/j.dqyxx.2024-010
引用本文: 赵磊,陈志丹,谢磊,朱志辉,许文斌. 2024. 2024年1月23日MW7.0乌什地震InSAR同震形变场和断层滑动分布. 地球与行星物理论评(中英文),55(4):453-460. DOI: 10.19975/j.dqyxx.2024-010
Zhao L, Chen Z D, Xie L, Zhu Z H, Xu W B. 2024. Coseismic deformation and slip model of the 2024 MW7.0 Wushi earthquake obtained from InSAR observation. Reviews of Geophysics and Planetary Physics, 55(4): 453-460 (in Chinese). DOI: 10.19975/j.dqyxx.2024-010
Citation: Zhao L, Chen Z D, Xie L, Zhu Z H, Xu W B. 2024. Coseismic deformation and slip model of the 2024 MW7.0 Wushi earthquake obtained from InSAR observation. Reviews of Geophysics and Planetary Physics, 55(4): 453-460 (in Chinese). DOI: 10.19975/j.dqyxx.2024-010

2024年1月23日MW7.0乌什地震InSAR同震形变场和断层滑动分布

Coseismic deformation and slip model of the 2024 MW7.0 Wushi earthquake obtained from InSAR observation

  • 摘要: 2024年1月23日,新疆维吾尔自治区乌什县发生了MW7.0地震,本次地震是南天山断裂带近一个世纪以来的最大地震事件. 为确定乌什地震的发震断层位置及其产状,本研究基于Sentinel-1A数据和差分干涉测量、像素偏移技术获得乌什地震升降轨同震形变场,并通过贝叶斯非线性反演方法估计了发震断层的几何参数,获得乌什地震同震滑动分布. 研究结果显示,升轨最大视线向抬升形变达80 cm,最大视线向沉降约16 cm. 视线向同震形变与像素偏移量结果表明乌什地震显著的垂向运动特征,而升降轨像素偏移方位向观测的反向运动特征表明乌什地震发震断层明显的左旋走滑运动分量. 反演结果显示乌什地震发震断层为东北东—西南西走向,北西倾的断裂产状,最优断层倾角约67°,平均滑动角约60°,表明乌什地震同震滑动以逆冲运动为主,兼具少量左旋走滑分量. 本文获取的乌什地震变形方式和断层参数与天山南缘盆—山边界的迈丹—沙依拉姆断裂的运动学和几何学相符. 乌什地震的高倾角断层走滑-逆冲活动表明南天山与塔里木盆地之间的斜向汇聚作用,天山地区的地壳缩短由山前新生的逆冲推覆带和造山区的高角度逆断层共同吸收.

     

    Abstract: On January 23, 2024, an MW7.0 earthquake occurred in Wushi County. This earthquake was the largest earthquake event in the south Tianshan Fault Zone in the past century. In order to determine the seismogenic structure of the Wushi earthquake and analyze the regional tectonic stress characteristics, we obtained the coseismic deformation field using radar interferometry and pixel offset based on Sentinel-1A data, and estimated the optimal fault geometric parameters applying the Bayesian nonlinear inversion. The results show that the maximum ascending line-of-sight uplift displacement is ~80 cm, and the maximum line-of-sight subsidence is ~16 cm. The line-of-sight coseismic deformation and pixel offsets indicate the significant vertical deformation characteristics of the Wushi earthquake, while the reverse pixel offset results in the azimuth direction of the ascending and descending orbit indicate obvious left-lateral strike-slip on the seismogenic fault. The inversion results show that the seismogenic fault of the Wushi earthquake is SW trending, NW dipping, with an optimal fault dip angle of ~67° and an average rake angle of ~60°, indicating that the coseismic slip is mainly driven by thrust-slip motion with a minor left-lateral strike-slip component. The deformation pattern and fault geometry parameters of the Wushi earthquake are consistent with the kinematics and geometry of the Maidan-Shayilamu fault at the basin-mountain boundary in the southern margin of the Tianshan Mountains. The high dip angle fault with strike- and thrust-slip activity of the Wushi earthquake indicates oblique convergence between the southern Tianshan Mountains and the Tarim Basin, and emphasizes that crustal shortening in the Tianshan region is absorbed by the nascent thrust nappe belts in the piedmont areas and the reverse faults with high dip angles in the orogenic regions.

     

/

返回文章
返回