用户名: 密码: 验证码:
Inversion of two-phase extensional basin systems during subduction of the Paleo-Pacific Plate in the SW Korean Peninsula:Implication for the Mesozoic “Laramide-style” orogeny along East Asian continental margin
详细信息    查看全文 | 推荐本文 |
  • 英文篇名:Inversion of two-phase extensional basin systems during subduction of the Paleo-Pacific Plate in the SW Korean Peninsula:Implication for the Mesozoic “Laramide-style” orogeny along East Asian continental margin
  • 作者:Seung-Ik ; Park ; Jungrae ; Noh ; Hee ; Jun ; Cheong ; Sanghoon ; Kwon ; Yungoo ; Song ; Sung ; Won ; Kim ; M.Santosh
  • 英文作者:Seung-Ik Park;Jungrae Noh;Hee Jun Cheong;Sanghoon Kwon;Yungoo Song;Sung Won Kim;M.Santosh;Department of Geology,Kyungpook National University;Department of Earth System Sciences, Yonsei University;School of Earth Sciences, The Ohio State University;Geology Division, Korea Institute of Geoscience and Mineral Resources;School of Earth Sciences and Resources, China University of Geosciences;Department of Earth Sciences, University of Adelaide;
  • 英文关键词:Two-phase extensional basin systems;;Paleo-Pacific Plate;;Inversion tectonics;;"Laramide-style" orogeny;;East Asian continental margin
  • 中文刊名:Geoscience Frontiers
  • 英文刊名:地学前缘(英文版)
  • 机构:Department of Geology,Kyungpook National University;Department of Earth System Sciences, Yonsei University;School of Earth Sciences, The Ohio State University;Geology Division, Korea Institute of Geoscience and Mineral Resources;School of Earth Sciences and Resources, China University of Geosciences;Department of Earth Sciences, University of Adelaide;
  • 出版日期:2019-05-15
  • 出版单位:Geoscience Frontiers
  • 年:2019
  • 期:03
  • 基金:supported by Basic Science Research Program through National Research Foundation of Korea funded by the Ministry of Education, Science and Technology (2018R1C 186003851)to S.-I. Park and 2015RIDlAIA09058914 and NRF2019R1A2C1002211 to S. Kwon;; supported by the 2017RlA6A1A07015374(Multidisciplinary study forassessment of large earthquake potentials in the Korean Peninsula) through the National Research Foundation of Korea(NRF);; funded by the Ministry of Science and ICT, Korea to S.K
  • 语种:英文;
  • 页:120-136
  • 页数:17
  • CN:11-5920/P
  • ISSN:1674-9871
  • 分类号:P534.5;P542
摘要
During subduction, continental margins experience shortening along with inversion of extensional sedimentary basins. Here we explore a tectonic scenario for the inversion of two-phase extensional basin systems, where the Early-Middle Jurassic intra-arc volcano-sedimentary Oseosan Volcanic Complex was developed on top of the Late Triassic-Early Jurassic post-collisional sequences, namely the Chungnam Basin. The basin shortening was accommodated mostly by contractional faults and related folds. In the basement, regional high-angle reverse faults as well as low-angle thrusts accommodate the overall shortening, and are compatible with those preserved in the cover. This suggests that their spatial and temporal development is strongly dependent on the initial basin geometry and inherited structures.Changes in transport direction observed along the basement-sedimentary cover interface is a characteristic structural feature, reflecting sequential kinematic evolution during basin inversion. Propagation of basement faults also enhanced shortening of the overlying sedimentary cover sequences. We constrain timing of the Late Jurassic-Early Cretaceous(ca. 158-110 Ma) inversion from altered K-feldspar 40 Ar/39 Ar ages in stacked thrust sheets and K-Ar illite ages of fault gouges, along with previously reported geochronological data from the area. This "non-magmatic phase" of the Daebo Orogeny is contemporaneous with the timing of magmatic quiescence across the Korean Peninsula. We propose the role of flat/low-angle subduction of the Paleo-Pacific Plate for the development of the "Laramide-style" basement-involved orogenic event along East Asian continental margin.
        During subduction, continental margins experience shortening along with inversion of extensional sedimentary basins. Here we explore a tectonic scenario for the inversion of two-phase extensional basin systems, where the Early-Middle Jurassic intra-arc volcano-sedimentary Oseosan Volcanic Complex was developed on top of the Late Triassic-Early Jurassic post-collisional sequences, namely the Chungnam Basin. The basin shortening was accommodated mostly by contractional faults and related folds. In the basement, regional high-angle reverse faults as well as low-angle thrusts accommodate the overall shortening, and are compatible with those preserved in the cover. This suggests that their spatial and temporal development is strongly dependent on the initial basin geometry and inherited structures.Changes in transport direction observed along the basement-sedimentary cover interface is a characteristic structural feature, reflecting sequential kinematic evolution during basin inversion. Propagation of basement faults also enhanced shortening of the overlying sedimentary cover sequences. We constrain timing of the Late Jurassic-Early Cretaceous(ca. 158-110 Ma) inversion from altered K-feldspar 40 Ar/39 Ar ages in stacked thrust sheets and K-Ar illite ages of fault gouges, along with previously reported geochronological data from the area. This "non-magmatic phase" of the Daebo Orogeny is contemporaneous with the timing of magmatic quiescence across the Korean Peninsula. We propose the role of flat/low-angle subduction of the Paleo-Pacific Plate for the development of the "Laramide-style" basement-involved orogenic event along East Asian continental margin.
引文
Allen, M.B., Saville, C., Blanc, E., Talebian, M., Nissen, E., 2013. Orogenic plateau growth:expansion of the Turkish-Iranian Plateau across the Zagros fold-andthrust belt. Tectonics 32.171-190.
    Barazangi, M., Isacks, B., 1976. Spatial distribution of earthquakes and subduction of the Nazca plate beneath South America. Geology 4, 686-692.
    Baud, P., Louis, L, David, C., Rawling, G.C., Wong, T.-F., 2005. Effects of bedding and foliation on mechanical anisotropy, damage evolution and failure mode. In:Bruhn, D., Burlini, L(Eds.), High-strain Zones:Structure and Physical Properties,vol. 245. Geological Society of London, Special Publication, pp. 223-249.
    Bellahsen, N., Mouthereau, F., Boutoux, A., Bellanger, M., Lacombe, O., Jolivet, L,Rolland, Y., 2014. Collision kinematics in the western external Alps. Tectonics33.1055-1088.
    Bellahsen, N., Sebrier, M., Siame, L, 2016. Crustal shortening at the Sierra Pie de Palo(Sierras Pampeanas, Argentina):near-surface basement folding and thrusting.Geological Magazine 153, 992-1012.
    Bonini, M., Sani, F., Antonielli, B., 2012. Basin inversion and contractional reactivation of inherited normal faults:a review based on previous and new experimental models. Tectonophysics 522-523, 55-88.
    Boutoux. A., Bellahsen, N., Lacomb, 0., Verlaguet, A., Mouthereau, F., 2014. Inversion of pre-orogenic extensional basins in the external Western Alps:structure,microstructures and restoration. Journal of Structural Geology 60,13-29.
    Busby, C.J., 2012. Extensional and transtensional continental arc basins:case studies from the southwestern United States. In:Busby, C.J., Azor, A.(Eds.), Tectonics of Sedimentary Basin:Recent Advanves. Blackwell Publishing Ltd., pp. 382-404
    Carrera, N., Mufioz, J.A., Sàbat, F., Mon, R., Roca, E., 2006. The role of inversion tectonics in the structure of the Cordillera Oriental(NW Argentinean Andes).Journal of Structural Geology 28,1921-1932.
    Cao, W., Paterson, S.R., Memeti, V., Mundil, R., Anderson, LJ., Schmidt, K., 2015.Tracking paleo-strain field in a continental arc:a study of incremental and finite strain in Mesozoic plutons and host rocks, respectively in central Sierra Nevada,California. Lithosphere 7, 296-320.
    Cheong, C.-S., Kee, W.-S., Jeong, Y.-J., Jeong, G.Y., 2006. Multiple deformations along the Honam shear zone in southwestern Korea constrained by Rb-Sr dating of synkinematic fabrics:implications for the Mesozoic tectonic evolution of northeastern Asia. Lithos 87, 289-299.
    Chester, J.S., Chester, F.M., 1990. Fault-propagation folds above thrusts with constant dip. Journal of Structural Geology 12, 903-910.
    Cho, M., Kim, Y., Ahn.J., 2007. Metamorphic evolution of the Imjingang belt, Korea:implications for Permo-Triassic collisional orogeny. International Geology Review 49, 30-51.
    Choi, H.-I., Kim, D.S., Seo, H.G., 1987. Stratigraphy, Depositional Environment and Basin Evolution of the Daedong Strata in the Chungnam Coalfield. KIER Research Report(KR-87-(B)-3). Daejeon, 97 pp(in Korean with English abstract).
    Choi, S.G., Kwon, S.-T., Ree, J.-H., So, C.-S., Pak, S.J., 2005. Origin of Mesozoic gold mineralization in South Korea. The Island Arc 14,102-114.
    Choi, S.G., Rajesh, V.J., Seo, J., Park, J.W., Oh, C.W., Pak, S.J., Kim, S.W., 2009. Petrology,geochronology and tectonic implications of Mesozoic high Ba-Sr granites in the Haemi area, Hongseong Belt, South Korea. Island Arc 18, 266-281.
    Chough, S.K., Kwon, S.-T., Ree,J.-H., Choi, D.K., 2000. Tectonic and sedimentary evolution of the Korean peninsula:a review and new view. Earth-Science Reviews 52.175-235.
    Chun, H.Y., Bong, P.Y., Lee, H.Y., Choi, S.J., 1987. Paleontology and Stratigraphy of the Chungnam Coalfield. KIER Research Report(KR-87-28). Daejeon, 52 pp(in Korean with English abstract).
    Chun, H.Y., Kim, D.H., Um, S.H., Bong, P.Y., Lee, H.Y., Choi, S.J., Kim, B.C., et al., 1990.The Study on the Organic Remains of the Separated Sedimentary Basin in Korea.Korea Institute of Energy and Resources, 288 pp(in Korean).
    Chung, D., Song, Y., Park, C.-Y., Kang, I.-M., Choi, S.-J., Khulganakhuu, C., 2014.Reactivated timings of some major faults in the Chugaryeong fault zone since the Cretaceous period. Economic and Environmental Geology 47, 29-38(in Korean with English abstract).
    Cluzel, D., 1991. Late Paleozoic to early Mesozoic geodynamic evolution of the Circum-Pacific orogenic belt in South Korea and Southwest Japan. Earth and Planetary Science Letters 108, 289-305.
    Cluzel, D., 1992. Formation and tectonic evolution of early Mesozoic intramontane basin in the Ogcheon belt(South Korea):a reappraisal of the Jurassic"Daebo orogeny". Journal of Southeast Asian Earth Sciences 7, 223-235.
    Cosgrove, J.W., 1993. The interplay between fluids, folds and thrusts during the deformation of a sedimentary succession. Journal of Structural Geology 15,491-500.
    Cox, S.F., 1995. Faulting processes at high fluid pressures:an example of fault valve behavior from the Wattle Gully Fault, Victoria, Australia. Journal of Geophysical Research 100.12841-12859.
    Coward, M.P., 1994. Inversion tectonics. In:Hancock, P.L(Ed.), Continental Deformation. Pergamon Press, pp. 280-304.
    Coward, M.P., Gillcrist, R., Trudgill, B., 1991. Extensional structures and their tectonic inversion in the W. Alps. In:Roberts, A.M., Yielding, G., Freeman, B.(Eds.), The Geometry of Normal Faults, vol. 56. Geological Society of London, Special Publication, pp. 93-112.
    de Jong, K., Han, S.,Ruffet, G.,2015. Fast cooling following a Late Triassic metamorphic and magmatic pulse:implications for the tectonic evolution of the Korean collision belt. Tectonophysics 662, 271-290.
    Den, J.F., Su, S.G., Niu, Y.L, Liu, C., Zhao, G.C., Zhao, X.G., Zhou, S., Wu,Z.X., 2007.A possible model for the lithospheric thinning of North China Craton:evidence from the Yanshanian(Jura-Cretaceous)magmatism and tectonism. Lithos 96.22-35.
    Dong, S., Zhang, Y., Zhang, F., Cui, J., Chen, X., Zhang, S., Miao, L, Li, J., Shi, W., Li, Z.,Huang, S., Li, H., 2015. Late Jurassic-Early Cretaceous continental convergence and intracontinental orogenesis in East Asia:A synthesis of the Yanshan Revolution. Journal of Asian Earth Sciences 114, 750-770.
    Dumont, T., Champagnac, J.D., Crouzet, C., Rochat, P., 2008. Multistage shortening in the Dauphin6 zone(French Alps):the record of Alpine collision and implications for pre-Alpine restoration. Swiss Journal of Geosciences 101, 89-110.
    Duvall, A.R., Clark, M.K., van der Pluijm, BA, Li, C., 2011. Direct dating of Eocene reverse faulting in northeastern Tibet using Ar-dating of fault clays and lowtemperature thermochronometry. Earth and Planetary Science Letters 304,520-526.
    Egawa, K., Lee, Y.I., 2008. Thermal maturity assessment of the Upper Triassic to Lower Jurassic Nampo Group, mid-west Korea:Reconstruction of thermal history. Island Arc 17.109-128.
    Egawa, K., Lee, Y.I., 2009. Jurassic synorogenic basin filling in western Korea:sedimentary response to inception of the western Circum-Pacific orogeny. Basin Research 21,407-431.
    Egawa, K., Lee, Y.I., 2011. K-Ar dating of illites for time constraint on tectonic burial metamorphism of the Jurassic Nampo Group(West Korea). Geosciences Journal15,131-135.
    Fosdick, J.C., Romans, B.W., Fildani, A., Bernhardt, A., Calder6n, M., Graham, S.A.,2011. Kinematic evolution of the Patagonian retroarc fold-and-thrust belt and Magallanes foreland basin, Chile and Argentina, 51°30'S. Geological Society of America Bulletin 123,1679-1698.
    Fossen, H., Khani, H.F., Faleide, J.I., Ksienzyk, A.K., Dunlap, W.J., 2016. Post-Caledonian extension in the West Norway-northern North Sea region:the role of structural inheritance. In:Childs, C., Holdsworth, R.E., Jackson, C.A.-L.,Manzocchi, T.,Walsh, J.J., Yielding, G.(Eds.), The Geometry and Growth of Normal Faults, vol. 439. Geological Society of London, Special Publication.https://doi.org/10.1144/SP439.6.
    Grant, N.T., Banks, D.A., McCaig, A.M., Yardley, B.W.D., 1990. The chemistry, source and behavior of fluids involved in alpine thrusting of the central pyrenees.Journal of Geophysical Research 95, 9123-9131.
    Grathoff, G.H., Moore, D.M., 1996. Illite polytype quantification using Wildfire calculated X-ray diffraction patterns. Clays and Clay Minerals 44, 835-842.
    Grathoff. G.H., Moore, D.M., Hay, R.L, Wemmer, K., 2001. Origin of illite in the lower Paleozoic of the Illinois basin; evidence for brine migration. Geological Society of America Bulletin 113,1092-1104.
    Grocott, J., Brown, M., Dallmeyer, R.D., Taylor, G.K., Treloar, P.J., 1994. Mechanisms of continental growth in extensional arcs:an example from the Andean plateboundary zone. Geology 22, 391-394.
    Hamilton, W.B., 1988. Plate tectonics and island arcs. Geological Society of America Bulletin 100.1503-1527.
    Han, R., Ree, J.-H., Cho, D.-L, Kwon, S.-T., Armstrong, R., 2006. SHRIMP U-Pb zircon ages of pyroclastic rocks in the Bansong group, Taebaeksan Basin, South Korea and their implication for the Mesozoic tectonics. Gondwana Research 9,106-117.
    Hayward, A.B., Graham, R.H., 1989. Some geometrical characteristics of inversion.In:Cooper, MA., Williams, G.D.(Eds.), Inversion Tectonics, vol, 44. Geological Society of London, Special Publication, pp. 17-39.
    Hwang, J., 2016. U-Pb Zircon Geochronology of the Bupyeong Circular Structure(M.S. thesis). Yonsei University, 92 pp(in Korean with English abstract).
    Itaya, T., Nagao, K., Inoue, K., Honjou, Y., Okada, T., Ogata, A., 1991. Argon isotope analysis by a newly developed mass spectrometric system for K-Ar dating.Mineralogical Journal 15, 203-221.
    Jackson, J.A., 1980. Reactivation of basement faults and crustal shortening in orogenic belts. Nature 283, 343-346.
    Jamison, W.R., 1987. Geometric analysis of fold development in overthrust terranes.Journal of Structural Geology 9, 207-219.
    Jang, Y., Kwon, S., Yi, K., 2015. Structural style of the Okcheon fold-thrust belt in the Taebaeksan zone, Korea. Journal of Asian Earth Sciences 105.140-154.
    Jang, Y., Kwon, S., Song, Y., Kim, S.W., Kwon, Y.K., Yi, K., 2018. Phanerozoic polyphase orogenies recorded in the northeastern Okcheon Belt, Korea from SHRIMP U-Pb detrital zircon and K-Ar illite geochronologies. Journal of Asian Earth Sciences157,198-217.
    Jarrard, R.D., 1986. Terrane motion by strike-slip faulting of forearc slivers. Geology14, 780-783.
    Jeon, H., Cho, M., Kim, H., Horie, K., Hidaka, H., 2007. Early Archean to Middle Jurassic evolution of the Korean Peninsula and its correlation with Chinese cratons:SHRIMP U-Pb zircon age constraints. Journal of Geology 115, 525-539.
    Jolivet, M., Labaume, P., Monie, P., Brunel, M., Arnaud, N., Campani, M., 2007.Thermochronology constraints for the propagation sequence of the south Pyrenean basement thrust system(France-Spain). Tectonics 26, TC5007. https://doi.org/10.1029/2006TC002080.
    Kee, W.-S., Kim, S.W., Jeong, Y.-J., Kwon, S., 2010. Characteristics of Jurassic continental arc magmatism in South Korea:tectonic implications. Journal of Geology118, 305-323.
    Kim, C.S., Jang, Y., Samuel, V.O., Kwon, S., Park, J.-W., Yi, K., Choi, S.-G., 2018a.Petrogenesis, detrital zircon SHRIMP U-Pb geochronology, and tectonic implications of the Upper Paleoproterozoic Seosan iron formation, western Gyeonggi Massif, Korea. Journal of Asian Earth Sciences 157, 78-91.
    Kim, H.S., Ree, J.-H., Kim, J., 2012. Tectonometamorphic evolution of the PermoTriassic Songrim(Indosinian)orogeny:evidence from the late Paleozoic Pyeongan Supergroup in the northeastern Taebaeksan Basin, South Korea. International Journal of Earth Sciences 101, 483-498.
    Kim, J.,Jeon, S.-I., 2015.~(40)Ar/~(39)Ar age determination using ARGUS VI multiplecollector noble gas mass spectrometer:performance and its application to geosciences. Journal of Analytical Science and Technology 6. https://doi.org/10.1186/s40543-015-0049-2.
    Kim, J.H., 1996. Mesozoic tectonics in Korea. Journal of Southeast Asian Earth Sciences 13, 251-265.
    Kim, S.W., Oh, C.W., Williams, I.S., Rubbato, D., Ryu, I.-C., Rajesh, V.J., Kim, C.-B.,Guo, J., Zhai, M., 2006. Phanerozoic high-pressure eclogite and intermediate pressure granulite facies metamorphism in the Gyeonggi massif, South Korea:implications for the eastward extension of the Dabie-Sulu continental collision zone. Lithos 92, 357-377.
    Kim, S.W., Williams, I.S., Kwon, S., Oh, C.W., 2008. SHRIMP zircon geochronology and geochemical characteristics of metaplutonic rocks from the south-western Gyeonggi block, Korea:implications for Paleoproterozoic to Mesozoic tectonic links between the Korean Peninsula and eastern China. Precambrian Research162, 475-497.
    Kim, S.W., Kwon, S., Ryu, I.-C., 2009. Geochronological constraints on multiple deformations of the Honam Shear Zone, South Korea and its tectonic implication.Gondwana Research 16, 82-89.
    Kim, S.W., Kwon, S., Koh, H.J., Yi, K., Jeong, Y., Santosh, M., 2011a. Geotectonic framework of Permo-Triassic magmatism within the Korean Peninsula. Gondwana Research 20, 865-889.
    Kim, S.W., Kwon, S., Santosh, M., Williams, I.S.. Yi. K.. 2011b. A Paleozoic subduction complex in Korea:SHRIMP zircon U-Pb ages and tectonic implications. Gondwana Research 20. 890-903.
    Kim, S.W., Santosh, M., Park, N., Kwon, S., 2011c. Forearc serpentinite mélange from the Hongseong suture, South Korea. Gondwana Research 20, 852-864.
    Kim, S.W.. Park, S.-I., Ko. K., Lee, H.-J., Koh, H.J., Kihm, Y.H., Lee. S.R., 2014.1:100,000Tectonostratigraphic Map of the Hongseong Area, Map 1:Solid Geology Interpretation. Korea Institution of Geoscience and Mineral Resources.
    Kim, S.W., Kwon, S., Ko, K., Yi, K., Cho, D.-L, Kee, W.-S., Kim, B.C., 2015a. Geochronological and geochemical implications of Early to Middle Jurassic continental adakitic arc magmatism in the Korean Peninsula. Lithos 227, 225-240.
    Kim, S.W., Kwon, S., Park, S.-I., Yi, K., Santosh, M., Ryu, I.-C., 2015b. Early to Middle Paleozoic arc magmatism in the Korean Peninsula:constraints from zircon geochronology and geochemistry. Journal of Asian Earth and Science 113,866-882.
    Kim. S.W., Kwon, S., Park, S.-1., Lee, C., Cho, D.-L, Lee, H.-J., Ko, K., Kim, S.J., 2016.SHRIMP U-Pb dating and geochemistry of the Cretaceous plutonic rocks in the Korean Peninsula:a new tectonic model of the Cretaceous Korean Peninsula.Lithos 262, 88-106.
    Kim, S.W., Kwon, S., Park, S.-I., Yi, K., Santosh, M., Kim, H.S., 2017a. Early to Middle Paleozoic tectonometamorphic evolution of the Hongseong area, central western Korean Peninsula:tectonic implications. Gondwana Research 47, 308-322.
    Kim, S.W., Park,S.-I., Jang, Y., Kwon, S., Kim, S.J., Santosh, M., 2017b. Tracking Paleozoic evolution of the South Korean Peninsula from detrital zircon records:implications for the tectonic history of East Asia. Gondwana Research 50,195-215.
    Kim, S.W., Cho, D.-L, Lee, S.-B., Kwon, S., Park, S.-I., Santosh, M., Kee, W.-S., 2018b.Mesoproterozoic magmatic suites from the central-western Korean Peninsula:imprints of Columbia disruption in East Asia. Precambrian Research 306,155-173.
    Koh, H.-J., 2006. Tectonic implication of the Mungyeong-Jeongseon tectonic line,the Yeongweol Nappe and the Bansong group in the Ogcheon belt. In:Kee, W.-S.(Ed.), Mesozoic Crustal Evolution of Northeast Asia. Institute of Geoscience and Mineral Resources, pp. 228-259(in Korean).
    Kwon, S., Sajeev, K., Mitra, G., Park, Y., Kim. S.W., Ryu, I.-C., 2009. Evidence for Permo-Triassic collision in Far East Asia:the Korean collisional orogen. Earth and Planetary Science Letters 279, 340-349.
    Lacombe, 0., Bellahsen, N., 2016. Thick-skinned tectonics and basement-involved fold-thrust belts:insights from selected Cenozoic orogens. Geological Magazine 153, 763-810.
    Lacombe, O., Mouthereau, F., 2002. Basement-involved shortening and deep detachment tectonics in forelands of orogens:insights from recent collision belts(Taiwan, western Alps, Pyrenees). Tectonics 21, 1030. https://doi.org/10.1029/2001TC901018.
    Lee, D.S., 1987. Geology of Korea. Geological Society of Korea, Kyohaksa, Seoul, 514PP.
    Lee, D.-W., 1999. Strike-slip fault tectonics and basin formation during the Cretaceous in the Korean Peninsula. The Island Arc 8, 218-231.
    Lee, Y., Choi, T., Lim. H.S., Orihashi, Y., 2000. Detrital zircon geochronology of the Cretaceous Sindong group, Southeast Korea:implications for depositional age and Early Cretaceous igneous activity. Island Arc 19, 647-658.
    Li, S.R., Santosh, M., 2017. Geodynamics of heterogeneous gold mineralization in the North China Craton and its relationship to lithospheric destruction. Gondwana Research 50, 267-292.
    Lim, C., Cho, M., 2012. Two-phase contractional deformation of the Jurassic Daebo Orogeny, Chungnam Basin, Korea, and its correlation with the early Yanshanian movement of China. Tectonics 31, TC1004. https://doi.org/10.1029/2011TC002909.
    Lovera, O.M., Grove, M., Harrison, T.M., 2002. Systematic analysis of K-feldspar~(40)Ar/~(39)Ar step heating resultsⅡ:relevance of laboratory argon diffusion properties to nature. Geochimica et Cosmochimica Acta 66,1237-1255.
    Maruyama, S., Liou, J.G., Seno, T., 1989. Mesozoic and Cenozoic evolution of Asia. In:Ben-Avraham, Z.(Ed.), The Evolution of the Pacific Ocean Margins. Oxford University Press, pp. 75-99.
    McClay, K.R., 1989. Analogue models of invesion tectonics.In:Cooper, M.A.,Williams, G.D.(Eds.), Inversion Tectonics, vol. 44. Geological Society of London,Special Publication, pp. 41-59.
    McClay, K.R., Buchanan, P.G.. 1992. Thrust faults in inverted extensional basins.In:McClay, K.R.(Ed.), Thrust Tectonics. Chapman and Hall, London,pp. 93-121.
    Mcdowell, R.J., 1997. Evidence for synchronous thin-skinned and basement deformation in the Cordilleran fold-thrust belt:the Tendoy Mountains, southwestern Montana. Journal of Structural Geology 19, 77-87.
    Mencos, J., Carrera, N., Muf.oz, J.A., 2015. Influence of rift basin geometry on the subsequent postrift sedimentation and basin inversion:the OrganyàBasin and the B6ixols thrust sheet(south central Pyrenees). Tectonics 34,1452-1474.
    Mitra, S., 1990. Fault-propagation folds:geometry, kinematic evolution, and hydrocarbon traps. The American Association of Petroleum Geologists Bulletin 76,921-945.
    Mitra, S., 2002. Fold-accommodation faults. The American Association of Petroleum Geologists Bulletin 86, 671-693.
    Nagao, K., Nishido, H., Itaya, T., Ogata, K., 1984. An age determination by K-Ar method. Bulletin of the Hiruzen Research Institute Okayama University of Science 9,19-38(in Japanese with English abstract).
    Noh, J., Park, S.-I., Kwon, S., 2018. Structural Geometry of the Seongjuri Syncline,Chungnam Basin. Economic and Environmental Geology 51, 579-587(in Korean with English abstract).
    Nomade, S., Renne, P.R., Vogel, N., Deino, A.L, Sharp, W.D., Becker. T.A., Jaouni, A.R.,Mundil, R., 2005. Alder Creek sanidine(ACs-2):a Quaternary 40Ar/39Ar dating standard tied to the Cobb Mountain geomagnetic event. Chemical Geology 218,315-338.
    O'Driscoll, LJ., Richards, M.A., Humphreys, E.D., 2012. Nazca-South America interactions and the late Eocene-late Oligocene flat-slab episode in the central Andes. Tectonics 31, TC2013. https://doi.org/10.1029/2011TC003036.
    Oh, C.W., Kim, S.W., Choi. S.G., Zhai, M.. Guo, J., Sajeev. K., 2005. First finding of eclogite facies metamorphic event in South Korea and its correlation with the Dabie-Sulu collision belt in China. Journal of Geology 113, 226-232.
    Oh. C.W.. Imayama. T., Yi, S.-B., Kim, T., Ryu, I.-C., Jeon, J., Yi, K., 2014. Middle Paleozoic metamorphism in the Hongseong area, South Korea, and tectonic significance for Paleozoic orogeny in northeast Asia. Journal of Asian Earth Sciences 95, 203-216.
    Oveisi, B., Lave, J., van der Beek, P., Carcaillet, J., Benedetti, L, Aubourg. C., 2009.Thick-and thin-skinned deformation rates in the central Zagros simple folded zone(Iran)indicated by displacement of geomorphic surfaces. Geophysical Journal International 176, 627-654.
    Park, S.-I., Noh, J., 2015. Jangsan fault:evidence of structural inversion of the Chungnam Basin. Journal of the Geological Society of Korea 51, 451-469(in Korean with English abstract).
    Park, S.-I., 2017. A preliminary study on the exhumation mechanism of the Paleozoic Gwangcheon Gneiss in the southwestern margin of the Gyeonggi Massif. Economic and Environmental Geology 50, 525-535(in Korean with English abstract).
    Park, S.-I., Kim, S.W., 2016. A report on gneiss dome in the Hongseong area,southwestern margin of the Gyeonggi massif. Economic and Environmental Geology 49, 315-323(in Korean with English abstract).
    Park, S.-I., Kim, S.W., Kwon, S., Thanh, N.X., Yi, K., Santosh, M., 2014a. Paleozoic tectonics of the southwestern Gyeonggi massif, South Korea:insight from geochemistry, chromian-spinel chemistry and SHRIMP U-Pb geochronology.Gondwana Research 26, 684-698.
    Park, S.-I., Kwon, S., Kim, S.W., Yi, K., Santosh. M., 2014b. Continental origin of the Bibong eclogite, southwestern Gyeonggi massif, South Korea. Journal of Asian Earth Science 95.192-202.
    Park, S.-I.. Kim, S.W., Kwon, S., Santosh, M., Ko, K., Kee, W.-S., 2017. Nature of Late Mesoproterozoic to Early Neoproterozoic magmatism in the western Gyeonggi massif, Korean Peninsula and its tectonic significance. Gondwana Research 47,291-307.
    Park, S.-I., Kwon, S., Kim, S.W., Hong, P.S., Santosh, M., 2018. A Mesozoic orogenic cycle from post-collision to subduction in the southwestern Korean Peninsula:new structural, geochemical, and chronological evidence. Journal of Asian Earth Sciences 157.166-186.
    Park, Y.S., Kim, S.W., Kee, W.-S., Jeong, Y.-J., Yi, K., Ki, J., 2009. Middle Jurassic tectono-magmatic evolution in the southwestern margin of the Gyeonggi Massif, South Korea. Geosciences Journal 13, 217-231.
    Pevear, D.R., 1992. Illite age analysis, a new tool for basin thermal history analysis.In:Kharaka, Y.K., Maest, A.S.(Eds.), Water-Rock Interaction. Balkema, Rotterdam, pp. 1251-1254.
    Pevear, D.R., 1999. Illite and hydrocarbon exploration. Proceedings of the National Academy of Sciences of the United States of America 96, 3440-3446.
    Paton, D.A., Macdonald,D.I.M.,Underhill, J.R., 2006. Applicability of thin or thick skinned structural models in a region of multiple inversion episodes; southern South Africa. Journal of Structural Geology 28,1933-1947.
    Pfiffner, O.A., 2017. Thick-skinned and thin-skinned tectonics:a global perspective.Geosciences 7. 71. https://doi,org/10.3390/geosciences7030071.
    Rawling, G.C., Baud, P., Wong, T.-F., 2002. Dilatancy, brittle strength and anisotropy of foliated rocks:experimental deformation and micromechanical modeling.Journal of Geophysical Research 107, 2234. https://doi.org/10.1029/2001JB000472.
    Ramos, V.A., Folguera, A., 2009. Andean flat-slab subduction through time. In:Murphy, J.B., Keppie, J.D., Hynes, A.J.(Eds.), Ancient Orogens and Modern Analogues, vol. 327. Geological Society of London, Special Publication, pp. 31-54.
    Reedman, A.J., Um, S.H., 1975. The Geology of Korea. Geological and Mineral Institute of Korea, 139 pp.
    Renne, P.R., Mundil, R., Balco, G., Min, K., Ludwig, K.R., 2010. Joint determination of~(40)K decay constants and~(40)Ar~*-~(40)K for the Fish Canyon sanidine standard, and improved accuracy for~(40)Ar/39Ar geochronology. Geochimica et Cosmochimica Acta 74, 5349-5367.
    Reynolds Jr., R.C., 1994. WILDFIRE:A Computer Program for the Calculation of Three Dimensional X-Ray Diffraction Patterns of Mica Polytypes and Their Disordered Variation. Handover, New Hampshire.
    Sagong, H., Kwon, S.-T., Ree, J.-H., 2005. Mesozoic episodic magmatism in South Korea and its tectonic implication. Tectonics 24. https://doi.org/10.1029/2004TC001720.
    Sagong, H., Kwon, S.-T., Han, R., Ree, J.-H., 2006. Cretaceous thermal event around the Gongsuwon thrust in the northeastern Okcheon belt:evidence from Rb-Sr geochronology of Paleozoic sedimentary rocks. Geosciences Journal 10, 59-66.
    Sajeev, K., Jeong, J., Kwon, S., Kee, W.-S., Kim, S.W., Komiya, T., Itaya, T.,Jung, H.-S.,Park, Y., 2010. High P-T granulite relicts from the Imjingang Belt. South Korea:tectonic significance. Gondwana Research 17, 75-86.
    Sandiford, M., 1999. Mechanics of basin inversion. Tectonophysics 305,109-120.
    Schellart, W.P., 2017. Andean mountain building and magmatic arc migration driven by subduction-induced whole mantle flow. Nature Communications 8, 2010.
    Schleicher, A.M., van der Pluijm, B.A., Warr, LN., 2010. Nanocoatings of clay and creep of the san Andreas fault at Parkfield, California. Geology 38, 667-670.
    Schmandt, B., Humphreys. E., 2011. Seismically imaged relict slab from the 55 Ma Siletzia accretion to the northwest United States. Geology 39,175-178.
    Seo, H.G., Kim, D.S., Park, S.H., Lim, S.B., Cho, M.C., Bae, D.J., Lee, C.B., Lee, D.Y.,Ryu, Y.S., Park, J.S., Chang, Y.H., 1980. Geology of the Seongju Area, Chungnam Coalfield(1). Korea Institute of Energy and Resources, Daejeon, 42 pp(in Korean with English abstract).
    Seo, J., Choi, S.-G., Oh, C.W., 2010. Petrology, geochemistry, and geochronology of the post-collisional Triassic mangerite and syenite in the Gwangcheon area,Hongseong Belt South Korea. Gondwana Research 18.479-496.
    Sibson, R.H., 1985. A note on fault reactivation. Journal of Structural Geology 7,751-754.
    Sibson, R.H., 1995. Selective fault reactivation during basin inversion:potential for fluid redistribution through fault-valve action. In:Buchanan, J.G., Buchanan, P.G.(Eds.),Basin Inversion, vol. 88. Geological Society of London, Special Publication, pp. 3-19.
    Sibson, R.H., Robert, F., Poulsen, K.H., 1988. High-angle reverse faults, fluid-pressure cycling, and mesothermal gold-quartz deposits. Geology 16, 551-555.
    Song, Y., 2012. Illite polytypes:the characteristics and the application to the fault age determination. Economic and Environmental Geology 45, 181-188(in Korean with English abstract).
    Song, Y., Chung, D., Choi, S.-J., Kang, I.-M., Park, C., Itaya, T., Yi, K., 2014. K-Ar illite dating to constrain multiple events in shallow crustal rocks:implications forthe Late Phanerozoic evolution of NE Asia. Journal of Asian Earth Sciences 95,313-322.
    Steiger, R., J(a|¨)ger, E., 1977. Subcommission of geochronology:convention on the use of decay constants in geo-and cosmo-chronology. Earth and Planetary Science Letters 36, 359-362.
    Turner, J.P., Williams, GA., 2004. Sedimentary basin inversion and intra-plate shortening. Earth-Science Reviews 65, 277-304.
    Uyeda, S., 1982. Subduction zones:an introduction to comparative subductology.Tectonophysics 81,133-159.
    Vacherat, A., Mouthereau, F., Pik, R., Bernet, M., Gautheron, C., Masini, E., Le Pourhiet, L, Tibari, B., Lahfid, A., 2014. Thermal imprint of rift-related processes in orogens as recorded in the Pyrenees. Earth and Planetary Science Letters 408,296-306.
    van der Pluijm, B.A., Hall, C.M., Vrolijk, P.J., Pevear, D.R., Covey, M.C, 2001. The dating of shallow faults in the Earth's crust. Nature 412,172-175.
    van der Pluijm, BA, Vrolijk, P.J., Pevear, D.R., Hall, C.M., Solum, J.G., 2006. Fault dating in the Canadian rocky mountains:evidence for late cretaceous and early eocene orogenic pulse. Geology 34, 837-840.
    Vrolijk, P., van der Pluijm, BA, 1999. Clay gouge. Journal of Structural Geology 21,1039-1048.
    Wang, J.Y., Santosh, M., Li, S.S., Kim, S.W., 2019. Magmatic and hydrothermal zircon growth during multiple orogenic cycles in an evolving mantle wedge. Geoscience Frontiers 10(2), 439-452. https://doi.org/10.1016/j.gsf.2018.07.003.
    Williams, G.D., Powell, C.M., Cooper, M.A, 1989. Geometry and kinematics of inversion tectonics. In:Cooper, MA, Williams, G.D.(Eds.), Inversion Tectonics,vol. 44. Geological Society of London, Special Publication, pp. 3-15.
    Williams, I.S., Cho, D.L, Kim, S.W., 2009. Geochronology, and geochemical and NdSr isotopic characteristics, of Triassic plutonic rocks in the Gyeonggi Massif,South Korea:constraints on Triassic post-collisional magmatism. Lithos 107,239-256.
    Withjack, M.O., Baum, M.S., Schlische, R.W., 2010. Influence of preexisting fault fabric on inversion-related deformation:a case study of the inverted Fundy rift basin, southeastern Canada. Tectonics 29, TC6004. https://doi.org/10.1029/2010TC002744.
    Yonkee, A., Weil, A.B., Mitra, G., 2013. Transect of the Sevier and Laramide orogenic belts, northern Utah to Wyoming:evolution of a complex geodynamic system.In:Abbott, L.D., Hancock, G.S.(Eds.), Classic Concepts and New Directions:Exploring 125 Years of GSA Discoveries in the Rocky Mountain Region, vol. 33.Geological Society of America Field Guide, pp. 1-55.
    Zhang, X.H., Wang, H., Ma, Y.J., 2003.~(40)Ar/39Ar age constraints on two ductile shear zones, Yanshan intraplate orogen, north China Craton. International Geology Review 45, 936-947.

© 2004-2018 中国地质图书馆版权所有 京ICP备05064691号 京公网安备11010802017129号

地址:北京市海淀区学院路29号 邮编:100083

电话:办公室:(+86 10)66554848;文献借阅、咨询服务、科技查新:66554700