Inversion of the density structure of the lithosphere in the North China Craton from GOCE satellite gravity gradient data

被引:0
作者
Yu Tian
Yong Wang
机构
[1] Chinese Academy of Sciences,State Key Laboratory of Geodesy and Earth’s Dynamics, Institute of Geodesy and Geophysics
[2] University of Chinese Academy of Sciences,Consortium for Electromagnetic Modeling and Inversion (CEMI)
[3] University of Utah,undefined
来源
Earth, Planets and Space | / 70卷
关键词
North China Craton; Density inversion; Gravity gradient data; Lithosphere;
D O I
暂无
中图分类号
学科分类号
摘要
Lithospheric thinning in the North China Craton (NCC), one of the oldest cratons on Earth, has been a focus of geoscientists across the globe for a long time. In this study, seismic tomographic P-wave velocity variations are converted to density perturbations as the initial constraint values, and the four components of the GOCE Level-2 gravity gradient product are subjected to topographic effect correction, relief correction on the Moho and sedimentary layer boundary, and long-wavelength correction. In addition, the anomalous gravity gradient effect resulting from the uncertainty of the Moho and sedimentary layer depth is considered. Considering the effects of temperature variations in the lithosphere, which leads to the non-uniform density distribution, the anomalous gravity gradient effect resulting from the temperature variations is corrected at the first time in this area. Inverse computation is performed based on the preconditioned conjugate gradient algorithm. Because the Lagrange empirical parameter in the algorithm exhibits uncertainty in data inversion, the regularization parameter, which is typically an empirical parameter, is replaced with the value of the inflection point of the L-curve. The results show the followings. The non-uniform density distribution in the lithosphere is related not only to the composition but also to the internal temperature variations in the lithosphere. The density of the lithosphere in the NCC is significantly non-uniform in both the horizontal and vertical directions and exhibits a notable segment-wise spatial distribution pattern. Two tectonic units, namely the Taihangshan tectonic zone and the Linfen–Weihe graben, constitute a central gravity gradient transition zone. There is a significant difference in the density distribution on the two sides of this central transition zone.[graphic not available: see fulltext]
引用
收藏
相关论文
共 50 条
[41]   Three-dimensional thermo-rheological structure of the lithosphere in the North China Craton determined by integrating multiple observations: Implications for the formation of rifts [J].
Wang, Kai ;
Xiong, Xiong ;
Zhou, Yuming ;
Feng, Yashan .
SCIENCE CHINA-EARTH SCIENCES, 2020, 63 (07) :969-984
[42]   The role of sub-continental lithosphere mantle in deep F and Cl cycling: Insight from the Dabeigou basalts, North China Craton [J].
Wu, Yadong ;
Yang, Jinhui ;
Sun, Jinfeng ;
Wang, Hao ;
Zhou, Baoquan .
SCIENCE CHINA-EARTH SCIENCES, 2025, 68 (02) :564-580
[43]   Internal Structure and Inclusions: Constraints on the Origin of the Tancheng Alluvial Diamonds from the North China Craton [J].
Lv, Qing ;
Liu, Fei ;
Ge, Yue-Jin ;
Li, Zhao-Ying ;
Liu, Xiao ;
Yao, Yong-Lin ;
Wang, Yu-Feng ;
Wang, Hai-Qin ;
Li, Sheng-Hu ;
Ma, Xiao-Dong ;
Zhang, Yong ;
Xu, Jia-Hong ;
Masoud, Ahmed E. .
MINERALS, 2025, 15 (06)
[44]   Local modification of the lithosphere beneath the central and western North China Craton: 3-D constraints from Rayleigh wave tomography [J].
Jiang, Mingming ;
Ai, Yinshuang ;
Chen, Ling ;
Yang, Yingjie .
GONDWANA RESEARCH, 2013, 24 (3-4) :849-864
[45]   Structure of the Earth’s Crust Based on the Gravity Data of the GOCE Satellite Mission and Spatial Position of Polymetallic Deposits in the Frame of the Siberian and East European Platforms [J].
A. L. Galyamov ;
A. V. Volkov ;
K. V. Lobanov ;
K. Yu. Murashov .
Izvestiya, Atmospheric and Oceanic Physics, 2023, 59 :1028-1044
[46]   Structure of the Earth's Crust Based on the Gravity Data of the GOCE Satellite Mission and Spatial Position of Polymetallic Deposits in the Frame of the Siberian and East European Platforms [J].
Galyamov, A. L. ;
Volkov, A. V. ;
Lobanov, K. V. ;
Murashov, K. Yu. .
IZVESTIYA ATMOSPHERIC AND OCEANIC PHYSICS, 2023, 59 (09) :1028-1044
[47]   Lithosphere thinning beneath west North China Craton: Evidence from geochemical and Sr-Nd-Hf isotope compositions of Jining basalts [J].
Guo, Pengyuan ;
Niu, Yaoling ;
Ye, Lei ;
Liu, Jinju ;
Sun, Pu ;
Cui, Huixia ;
Zhang, Yu ;
Gao, Junping ;
Su, Li ;
Zhao, Jianxin ;
Feng, Yuexing .
LITHOS, 2014, 202 :37-54
[48]   Diverse origins of pyroxenite xenoliths from Yangyuan, North China Craton: implications for the modification of lithosphere by magma underplating and melt-rock interactions [J].
Liu, Ya-Dong ;
Ying, Ji-Feng ;
Li, Jian ;
Sun, Yang ;
Teng, Fang-Zhen .
LITHOS, 2020, 372
[49]   Lithosphere structure along the northern part of EUROBRIDGE in Lithuania; results from integrated interpretation of DSS and gravity data [J].
Kozlovskaya, EG ;
Karatayev, GI ;
Yliniemi, J .
TECTONOPHYSICS, 2001, 339 (1-2) :177-191
[50]   Deep structural characteristics and dynamic significance of the Southeastern margin of the North China Craton: Insights from gravity/ GNSS/seismic observations [J].
Pang, Qipei ;
Wu, Yunlong ;
Chu, Risheng ;
Zhang, Yi ;
Yan, Jianguo ;
Zhang, Lifen ;
Liao, Wulin ;
Sun, Xiaoqian ;
Dokuchits, Emilia Yu ;
Nkwazema, Oscar C. .
TECTONOPHYSICS, 2024, 874