Crustal deformation across the western Altyn Tagh fault (86° E) from GPS and InSAR
Author:
Affiliation:
1. Geoazur, IRD, CNRS, Observatoire de la Côte d'Azur, Université Côte d'Azur, Valbonne 06905, France
2. State Key Laboratory of Earthquake Dynamics, Institute of Geology, China Earthquake Administration, Beijing 100029, China
Abstract
Funder
National Natural Science Foundation of China
China Earthquake Administration
China Scholarship Council
Publisher
Oxford University Press (OUP)
Subject
Geochemistry and Petrology,Geophysics
Link
http://academic.oup.com/gji/advance-article-pdf/doi/10.1093/gji/ggab403/40510661/ggab403.pdf
Reference41 articles.
1. Geodetic evidence for a low slip rate in the Altyn Tagh fault system;Bendick;Nature,2000
2. Effect of annual signals on geodetic velocity;Blewitt;J. geophys. Res.,2002
3. Geodetic strain across the San Andreas Fault reflects elastic plate thickness variations (rather than fault slip rate);Chéry;Earth planet. Sci. Lett.,2008
4. Fast slip-rate along the northern end of the Karakorum fault system, western Tibet;Chevalier;Geophys. Res. Lett.,2011
5. Is the North Altyn fault part of a strike-slip duplex along the Altyn Tagh fault system?;Cowgill;Geology,2000
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1. Deciphering interseismic strain accumulation and its termination on the central-eastern Altyn Tagh fault from high-resolution velocity fields;Earth and Planetary Science Letters;2024-10
2. Interseismic strain rate distribution model of the Altyn Tagh Fault constrained by InSAR and GPS;Earth and Planetary Science Letters;2024-09
3. Variability in interseismic strain accumulation rate and style along the Altyn Tagh Fault;Nature Communications;2024-08-11
4. Referencing of Continental‐Scale InSAR‐Derived Velocity Fields: Case Study of the Eastern Tibetan Plateau;Journal of Geophysical Research: Solid Earth;2023-07
5. Present‐Day Strike‐Slip Faulting and Intracontinental Deformation of North China: Constraints From Improved GPS Observations;Geochemistry, Geophysics, Geosystems;2023-07
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