2022年1月8日青海门源MS6.9地震震前变形特征分析
CSTR:
作者:
中图分类号:

P315

基金项目:

国家重点研发计划(2018YFE0109700)、中国地震局2022年度震情跟踪定向工作任务(2022010213)共同资助


Analysis of Deformation Characteristics before the Menyuan MS6.9 Earthquake on January 8,2022 in Qinghai Province
Author:
  • 摘要
  • | |
  • 访问统计
  • |
  • 参考文献 [44]
  • |
  • 相似文献 [20]
  • | | |
  • 文章评论
    摘要:

    2022年1月8日1时45分27秒青海海北藏族自治州门源县发生 MS6.9地震,基于大地测量资料详细分析震源区的构造运动、应变演化以及深部变形特征,对于发震机理及震后危险性分析具有重要的意义。本文利用1991—2016、2017—2020期中国大陆地区GNSS速度场,分析了青藏高原东北缘各断裂带的运动学特征、门源地震震中和周边区域的地壳应变及其动态演化特征;结合剖面投影和非线性拟合算法,定量计算了托莱山、冷龙岭断裂的滑动速率和闭锁深度,得到以下认识:①青藏高原东北缘不同断裂带的运动学特征差异较大,整体以地壳缩短运动为主,局部区域伴随旋转运动; ②震中位于面膨胀率和最大剪应变率高值区的边缘,与前人关于强震地点的认识基本一致; ③区域应变参数的时空演化过程显示,震中附近应变特征整体变化不大,表明断层可能处在孕震晚期阶段; ④托莱山断裂带具有较高的滑动速率和闭锁深度,结合库仑应力的研究结果认为,该断裂未来一段时间的地震危险性仍值得关注。

    Abstract:

    The Menyuan MS6.9 earthquake occurred at 1:45:27 on January 8, 2022 in Haibei prefecture,Qinghai Province. Based on geodesic data,a detailed analysis of tectonic movement,strain evolution and deep deformation characteristics in the focal area is of great significance for earthquake mechanism and post-earthquake risk analysis. In this paper,the GNSS velocity field data of the Chinese mainland during 1991 to 2016 is used as the background to analyze the kinematic characteristics of each fault zone in the northeastern margin of the Tibetan Plateau after deducting Euler rotation. Based on GNSS velocity field and by using least square configuration method during 2017 to 2020, the crustal strain and its dynamic evolution characteristics in and around the epicenter were analyzed. With profile projector and using nonlinear fitting method,the depth of the slip velocity and fracture closure of Tuolaishan and Lenglong ridge fault were calculated,and we reached following results: ① In the northeastern margin of Qinghai-Tibet plateau,kinematics characteristics of different fault is various,i.e. the overall is predominant by shortenning crust movement,but local area with rotational deformation; ② The epicenter is located at the edge of the region with high value of surface expansion and maximum shear strain rate,which is basically consistent with the previous understanding of strong earthquake location; ③ The spatial-temporal evolution of regional strain parameters shows that compared with the background field,the overall strain characteristics near the epicenter have little change,indicating that the fault may be in the late seismogenic stage; ④ The Tuolaishan Fault zone has a high slip rate and deep locking depth. Combined with the results of the Coulomb stress analysis,we considered that is still worth to pay attention to the seismic risk of the fault in the future.

    参考文献
    陈文彬,2003. 河西走廊及邻近地区最新构造变形基本特征及构造成因分析. 博士学位论文. 北京:中国地震局地质研究所,1~126.
    葛伟鹏,王敏,沈正康,等,2013. 柴达木-祁连山地块内部震间上地壳块体运动特征与变形模式研究. 地球物理学报,56(9):2994~3010.
    何文贵,刘百篪,袁道阳,等,2000. 冷龙岭活动断裂的滑动速率研究. 西北地震学报,22(1):90~97.
    何文贵,袁道阳,葛伟鹏,等,2010. 祁连山活动断裂带中东段冷龙岭断裂滑动速率的精确厘定. 地震,30(1):131~137.
    胡亚轩,崔笃信,张希,等,2009. 用GPS数据反演分析海原断裂带分段活动特征. 西北地震学报,31(3):227~230,253.
    江在森,方颖,武艳强,等,2009. 汶川8.0级地震前区域地壳运动与变形动态过程. 地球物理学报,52(2):505~518.
    江在森,刘经南,2010. 应用最小二乘配置建立地壳运动速度场与应变场的方法. 地球物理学报,53(5):1109~1117.
    江在森,武艳强,邹镇宇,等,2020. GNSS在中国大陆的地震预测应用研究进展与展望. 中国地震,36(4):693~707.
    江在森,张希,张晶,等,2013. 地壳形变动态图像提取与强震预测技术研究. 北京:地震出版社.
    李彦川,2016. 基于GPS的海原断裂变形特征及强震危险性分析. 硕士学位论文. 青岛:中国石油大学(华东),1~102.
    李延兴,黄珹,胡新康,等,2001. 板内块体的刚性弹塑性运动模型与中国大陆主要块体的应变状态. 地震学报,24(6):565~572.
    李振洪,韩炳权,刘振江,等,2022. InSAR数据约束下2016年和2022年青海门源地震震源参数及其滑动分布. 武汉大学学报·信息科学版,47(6):887~897.
    李智敏,盖海龙,李鑫,等,2022. 2022年青海门源 MS6.9 地震发震构造和地表破裂初步调查. 地质学报,96(1):330~335.
    潘家伟,李海兵,Chevalier M L,等,2022. 2022年青海门源 MS6.9 地震地表破裂带及发震构造研究. 地质学报,96(1):215~231.
    石富强,邵志刚,占伟,等,2018. 青藏高原东北缘活动断裂剪切模量及应力状态数值模拟. 地球物理学报,61(9):3651~3663.
    石耀霖,朱守彪,2006. 用GPS位移资料计算应变方法的讨论. 大地测量与地球动力学,26(1):1~8.
    王启欣,徐锡伟,江在森,2020. 南北地震带现今应变特征及地震危险性分析. 大地测量与地球动力学,40(1):23~29.
    魏文薪,江在森,武艳强,等,2012. 利用GPS数据研究川滇块体东边界主要断裂带运动特性. 武汉大学学报·信息科学版,37(9):1041~1044.
    武艳强,江在森,杨国华,等,2012. 南北地震带北段近期地壳变形特征研究. 武汉大学学报·信息科学版,37(9):1045~1048.
    杨国华,李延兴,韩月萍,等,2002. 由GPS观测结果推导中国大陆现今水平应变场. 地震学报,24(4):337~347.
    张培震,邓起东,张国民,等,2003. 中国大陆的强震活动与活动地块. 中国科学:(D辑),33(增刊I):12-20.
    张培震,徐锡伟,闻学泽,等,2008. 2008年汶川8.0级地震发震断裂的滑动速率、复发周期和构造成因. 地球物理学报,51(4):1066~1073.
    赵静,牛安福,李强,等,2016. 陇西块体周边断层闭锁程度与滑动亏损特征研究. 地震研究,39(3):351~358.
    中国地震局监测预报司,2020. 形变分析预测技术方法工作手册. 北京:地震出版社,118~122.
    朱琳,戴勇,石富强,等,2022. 祁连-海原断裂带库仑应力演化及地震危险性. 地震学报,44(2):223~236.
    朱亚戈,刁法启,付誉超,等,2021. 基于GPS资料约束的2021年玛多地震发震断层的滑动速率. 中国科学:地球科学,51(10):1788~1795.
    邹镇宇,江在森,武艳强,等,2015. 针对一般倾角的走滑/倾滑位移理论公式的改进. 大地测量与地球动力学,35(3):460~463,468.
    邹镇宇,江在森,武艳强,等,2018. 利用带倾角断层形变公式研究川滇块体东边界断裂带形变特征. 武汉大学学报(信息科学版),43(11):1688~1695.
    Burchfiel B C,Royden L H,Hilst R D V,et al,2008. A geological and geophysical context for the Wenchuan earthquake of 12 May 2008,Sichuan,People's Republic of China. GSA Today,18(7):4~11.
    Diao F Q,Xiong X,Wang R J,et al,2019. Slip rate variation along the Kunlun Fault(Tibet):Results from new GPS observations and a viscoelastic earthquake-cycle deformation model. Geophys Res Lett,46(5):2524~2533.
    Gaudemer Y,Tapponnier P,Meyer B,et al,1995. Partitioning of crustal slip between linked,active faults in the eastern Qilian Shan,and evidence for a major seismic gap,the 'Tianzhu gap',on the western Haiyuan Fault,Gansu(China). Geophys J Int,120(3):599~645.
    Lasserre C,Gaudemer Y,Tapponnier P,et al,2002. Fast late Pleistocene slip rate on the Leng Long Ling segment of the Haiyuan fault,Qinghai,China. J Geophys Res:Solid Earth,107(B11):2276.
    Le Beon M,Klinger Y,Amrat A Q,et al,2008. Slip rate and locking depth from GPS profiles across the Southern Dead Sea transform. J Geophys Res:Solid Earth,113(B11):B11403.
    Lozos J C,Oglesby D D,Duan B C,et al,2011. The effects of double fault bends on rupture propagation:a geometrical parameter study. Bull Seismol Soc Am,101(1):385~398.
    Nabavi S T,Alavi S A,Mohammadi S,et al,2018. Mechanical evolution of transpression zones affected by fault interactions:insights from 3D elasto-plastic finite element models. J Struct Geol,106:19~40.
    Savage J C,Burford R O,1973. Geodetic determination of relative plate motion in central California. J Geophys Res:Solid Earth,78(5):832~845.
    Tape C,Musé P,Simons M,et al,2009. Multiscale estimation of GPS velocity fields. Geophys J Int,179(2):945~971.
    Wang H,Liu M,Duan B C,et al,2020a. Rupture propagation along stepovers of strike-slip faults:effects of initial stress and fault geometry. Bull Seismol Soc Am,110(3):1011~1024.
    Wang M,Shen Z K,2020b. Present-day crustal deformation of continental China derived from GPS and its tectonic implications. J Geophys Res:Solid Earth,125(2):e2019JB018774.
    Wu Y Q,Jiang Z S,Zhao J,et al,2015. Crustal Deformation before the 2008 Wenchuan MS8.0 Earthquake studied using GPS Data. J Geodyn,85:11~23.
    Wu Y Q,Jiang Z S,Pang Y J,et al,2022. Statistical correlation of seismicity and geodetic strain rate in the Chinese mainland. Seismol Soc Am,93(1):268~276.
    Yang H F,Wang D,Guo R M,et al,2022. Rapid report of the 8 January 2022 MS6.9 Menyuan earthquake,Qinghai,China. Earthq Res Adv,2(1):100113.
    Zhang P Z,Wen X Z,Shen Z K,et al,2010. Oblique,high-angle,listric-reverse faulting and associated development of strain:the Wenchuan earthquake of May 12,2008,Sichuan,China. Annu Rev Earth Planet Sci,38:353~382.
    Zheng W J,Zhang P Z,He W G,et al,2013. Transformation of displacement between strike-slip and crustal shortening in the northern margin of the Tibetan Plateau:evidence from decadal GPS measurements and late Quaternary slip rates on faults. Tectonophysics,584:267~280.
    引证文献
    网友评论
    网友评论
    分享到微博
    发 布
引用本文

苑争一,赵静,牛安福.2022年1月8日青海门源MS6.9地震震前变形特征分析[J].中国地震,2022,38(3):389-398

复制
分享
文章指标
  • 点击次数:480
  • 下载次数: 1054
  • HTML阅读次数: 437
  • 引用次数: 0
历史
  • 收稿日期:2022-04-26
  • 最后修改日期:2022-08-10
  • 在线发布日期: 2022-11-10
文章二维码
您是第2872900位访问者
中国地震 ® 2025 版权所有
技术支持:北京勤云科技发展有限公司
请使用 Firefox、Chrome、IE10、IE11、360极速模式、搜狗极速模式、QQ极速模式等浏览器,其他浏览器不建议使用!