Crustal and uppermost mantle structures imaged by teleseismicP-wave traveltime tomography beneath the Southeastern Korean Peninsula: implications for a hydrothermal system controlled by the thermally modified lithosphere

Author:

Lee Sungho12,Song Jung-Hun1ORCID,Heo Dabeen3,Rhie Junkee1ORCID,Kang Tae-Seob3ORCID,Choi Eunseo2ORCID,Kim YoungHee1ORCID,Kim Kwang-Hee4ORCID,Ree Jin-Han5

Affiliation:

1. School of Earth and Environmental Sciences, Seoul National University , Seoul 08826 , Republic of Korea

2. Center for Earthquake Research and Information, University of Memphis , Memphis TN 38152 , USA

3. Division of Earth and Environmental System Science, Pukyong National University , Busan 48513 , Republic of Korea

4. Department of Geological Sciences, Pusan National University , Busan 46241 , Republic of Korea

5. Department of Earth and Environmental Sciences, Korea University , Seoul 02841 , Republic of Korea

Abstract

SUMMARYThe southeastern Korean Peninsula (SeKP) has experienced intense deformation owing to subduction and backarc extension at the eastern continental margin of the Eurasian Plate, leading to the formation of complex tectonic structures. Abnormally high surface heat flux, Cenozoic volcanism, signatures of mantle degassing and hydrothermal alteration, and several active fault systems with extensional sedimentary basins have been identified; however, the major driving forces that promote local seismic events and hydrothermal activities remain enigmatic. Here, we constructed 3-D P-wave velocity of the crust and upper mantle in the SeKP for the first time using a teleseismic traveltime tomography method and an extensive data set obtained from a dense seismic network. Our model revealed three distinct velocity patterns at different depths: (1) in the upper crust (depth ∼0–10 km), a low-velocity anomaly beneath the Cenozoic sedimentary basin exhibiting a prominent lateral velocity contrasts with higher velocities in the Cretaceous sedimentary and plutonic rocks; (2) a N–S trending low-velocity anomaly extending from the lower crust to the uppermost mantle (depth ∼20–35 km) beneath the major active fault systems interpreted as a thermally or mechanically weakened structure that could transfer high surface heat flux and transport mantle-driven gases and (3) a low-velocity anomaly adjacent to the Cenozoic basin in the upper mantle at depths of 35–55 km interpreted as the higher temperature upper mantle. Via a series of geodynamic simulations, we demonstrated that the extensional deformation at the eastern continental margin during the Early to Middle Miocene locally enhanced the temperature of the crust and upper mantle beneath the SeKP. We propose that a hydrothermal system, resulting from the thermally modified lithosphere of the continental margin, has contributed to the enhanced local seismicity and geothermal activities observed in the SeKP region.

Funder

National Science Foundation

Publisher

Oxford University Press (OUP)

Subject

Geochemistry and Petrology,Geophysics

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