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A discontinuity roughness parameter combined with shear failure mechanism and its correlation with JRC
Heterogeneous incorporation of trace elements at the microscale and nanoscale during episodic epitaxial growth of pyrite
Calculation of oil saturation in water-flooded layers based on the modified Archie model
Pyrite oxidation under a carbonate buffer and its environmental implications: a case study from the Shangmanggang gold deposit, SW China
Two‐Staged Rupture of the 19 October 2020 M w 7.6 Strike‐Slip Earthquake Illuminated the Boundary of Coupling Variation in the Shumagin Islands, Alaska
Source Process Featuring Asymmetric Rupture Velocities of the 2021 M w 7.4 Maduo, China, Earthquake from Teleseismic and Geodetic Data
Reproducing the Spatial Characteristics of High‐Frequency Ground Motions for the 1850 M 7.5 Xichang Earthquake
Depositional characteristics of fluvial facies in gentle slope zone of lacustrine rift basins: The third member of the Dongying Formation in the Wen’an Slope of Baxian Sag, Bohai Bay Basin, China
Coseismic Slip Model of the 2018 M w 7.9 Gulf of Alaska Earthquake and Its Seismic Hazard Implications
Some signals are not the same as they appear: How do erosional landscapes transform tectonic history into sediment flux records?
Scaling the Response of Deltas To Relative-Sea-Level Cycles By Autogenic Space and Time Scales: A Laboratory Study
Storage thresholds for relative sea-level signals in the stratigraphic record
Abstract The Nyalam detachment is part of the east-west striking South Tibetan Detachment System exposed in the Nyalam area, southern Tibet. Seventeen muscovite and biotite 40 Ar/ 39 Ar age spectra and three K-feldspar multidiffusion domain modelling and cooling ages are presented for metamorphic rocks, leucogranite, granite and mylonite, collected from the Nyalam detachment and surrounding areas. The majority of the 40 Ar/ 39 Ar results are cooling ages related to exhumation, which therefore place important constraints on formation of the Nyalam detachment and exhumation history of the region. Muscovite 40 Ar/ 39 Ar ages from mylonite within the normal fault system and from the footwall of the fault are 16.1–15.2 Ma. Biotite 40 Ar/ 39 Ar ages from the same samples are 15.6–14.8 Ma, slightly younger than the muscovite cooling ages. K-feldspar multidiffusion domain modelling suggests that samples collected from both mylonite on the fault surface and from footwall rocks underwent rapid cooling between 16.1 Ma and 11.7 Ma. Ages and cooling histories in the Nyalam detachment and Greater Himalayan metamorphic sequence have similar characteristics and time constraints: the K-feldspar modelling indicates a sudden change in cooling rates for these regions during 15.5–14.0 Ma and c . 12 Ma, respectively. Taking the regional thermal history into account, cooling could be associated with significant northward surface movement triggered by detachment normal faulting in the Nyalam area. The Nyalam detachment and Greater Himalayan metamorphic sequence experienced similar cooling and exhumation histories during c . 17.0–11.7 Ma. Formation of the Nyalam detachment may have accompanied the southward extrusion of the Greater Himalaya zone along shear zones formed in response to underthrusting of the Indian plate beneath southern Tibet.