THE SURFACE RUPTURE CHARACTERISTICS BASED ON THE GF-7 IMAGES INTERPRETATION AND THE FIELD INVESTIGATION OF THE 2022 MENYUAN Ms6.9 EARTHQUAKE

被引:0
|
作者
Wang L. [1 ]
Xie H. [1 ,2 ]
Yuan D.-Y. [3 ]
Li Z.-M. [4 ]
Xue S.-Y. [1 ]
Su R.-H. [3 ]
Wen Y.-M. [3 ]
Su Q. [5 ]
机构
[1] Lanzhou Institute of Seismology, China Earthquake Administration, Lanzhou
[2] Lanzhou National Observatory of Geophysics, Lanzhou
[3] School of Earth Sciences, Lanzhou University, Lanzhou
[4] Qinghai Earthquake Agency, Xining
[5] Faculty of Arts and Sciences, Beijing Normal University at Zhuhai, Zhuhai
来源
Dizhen Dizhi | 2023年 / 45卷 / 02期
关键词
2022 Menyuan earthquake; co-seismic surface rupture characteristics; GF-7; Lenglongling Fault; Tuolaishan Fault;
D O I
10.3969/j.issn.0253-4967.2023.02.006
中图分类号
学科分类号
摘要
On January 8th, 2022, an Ms6. 9 earthquake occurred around Menyuan County ( 37. 77° N, 101. 26° E), Qinghai Province. The epicenter is located in the northeastern part of the Tibetan plateau, where the western section of the Lenglongling Fault meets the eastern section of the Tolaishan Fault. In order to know the spatial distribution of coseismic surface rupture zone as soon as possible, and determine the seismogenic structure, the post-earthquake GF-7 remote sensing images of the Menyuan Ms6. 9 earthquake were analyzed. Moreover, combining the interpretation of the GF-7 images and the field investigation, the distribution of the co-seismic surface rupture was determined and the typical coseismic landforms, and the image recognition features of various co-seismic landforms are interpreted and summarized. The results show that the earthquake produced two major surface rupture zones with a left-stepped oblique spatial arrangement. The main northern branch rupture distributes on the west side of the Lenglongling Fault, with a length of about 22km and a strike of 100° N~ 120° E, the secondary rupture of the southern branch distributes along the eastern section of the Tuolaishan Fault, with a length of about 4km and a strike of N90°E. The total length of the two rupture zones is about 26km. Along the rupture zones, a series of typical left-lateral strike-slip coseismic landforms were formed, such as tensional fractures, tensional-shear fractures, pressure ridges, pressure bulges, left-lateral strike-slip gullies, as well as left-lateral strike-slip roadbeds, etc. We divided the surface rupture into six segments to conduct detailed observation and analysis, that is, the west of Daohe segment, Liuhuanggou segment, Honggou segment, Yongan River segment and Yikeshugou segment, from west to east among the main rupture zone of the north branch, as well as the secondary rupture zone of the south branch. In general, each co-seismic landform has its distinctive image characteristics, and we obtained them from the interpretation and summarization of the GF-7 images. The shear fractures located at the two ends of the main rupture and in the areas where the surface rupture is weak are zigzaggy on the remote sensing images, while the shear fractures located in the areas where the surface rupture is intense are shown as dark, wide and continuously smooth stripes; thrust scarps are represented on remote sensing images as shaded, narrow and slightly curved strips; the pressure ridges and pressure bulges exhibit black elliptical feature on the images that are parallel or at a smaller angle to the main rupture; tensional-shear fractures are displayed as black strips arranged in en echelon with a 30°-45° intersection angle with the main shear rupture, and their linear features are not as straight as those of shear ruptures yet are still distinct; the coseismic scarps formed on the ice are manifested in the images as traction bend and texture change. Based on the GF-7 images, the cumulative dislocations of typical sinistral landforms along the co-seismic surface rupture on Lenglongling Fault are interpreted and futher compared with the previous study. This is the first time of application of GF-7 to the strong earthquake geohazards monitoring since it was officially launched in August 2020. From this study, it can be seen that with its high resolution, GF-7 can be used to accurately identify faulted features. Not only it could provide information of the geometric roughness, complexity and segmentation of the fracture, but also can record clear dislocations of the landforms. The study of the GF-7 images in the 2022 Menyuan earthquake has showed that the GF-7 images can provide strong data support for the geology and geological hazard studies. © 2023 State Seismology Administration. All rights reserved.
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页码:401 / 421
页数:20
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