Meso—Cenozoic Exhumation of the Altai-Sayan Region: Constrained by Available Low-Temperature Thermochronology

Yamei Wang , Jiyuan Yin , Stuart N. Thomson , Wen Chen , Keda Cai , Zengchan Dong , Fucheng Tan

Journal of Earth Science ›› : 1 -6.

PDF
Journal of Earth Science ›› : 1 -6. DOI: 10.1007/s12583-024-2016-6
Editorial

Meso—Cenozoic Exhumation of the Altai-Sayan Region: Constrained by Available Low-Temperature Thermochronology

Author information +
History +
PDF

Abstract

Based on a compilation of AFT, AHe ages and apatite MTLs from previous studies, the following conclusions can be made regarding the spatial and temporal distribution of exhumation in Altai-Sayan region.

(1) The oldest AFT ages, found in the Gobi Altai, suggest that this region has been tectonically stable since the Late Jurassic.

(2) Early Cretaceous rapid cooling is focused in northern Chinese Altai and western Gorny Altai, associated with the Mongol-Okhotsk orogeny. Late Cretaceous rapid cooling identified in most other areas of Altai-Saya region is best explained as being associated with fault reactivation due to the subsequent collapse of the Mongol-Okhotsk Orogen.

(3) Cenozoic reactivation is difficult to be record with low-temperature systems due to very limited exhumation over this time frame. As a result, the timing and mechanism of any Cenozoic reactivation in the Altai-Saya region remains unclear.

(4) At the orogenic scale, the AFT ages in the northern part of the Altai-Saya region are younger than those in the southern part, indicating that the basement of northern part, weakened by its earlier extensional tectonism, was more easily reactivated.

Cite this article

Download citation ▾
Yamei Wang, Jiyuan Yin, Stuart N. Thomson, Wen Chen, Keda Cai, Zengchan Dong, Fucheng Tan. Meso—Cenozoic Exhumation of the Altai-Sayan Region: Constrained by Available Low-Temperature Thermochronology. Journal of Earth Science 1-6 DOI:10.1007/s12583-024-2016-6

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Briggs S M, Yin A, Manning C E, . Late Paleozoic Tectonic History of the Ertix Fault in the Chinese Altai and Its Implications for the Development of the Central Asian Orogenic System. Geological Society of America Bulletin, 2007, 119(7/8): 944-960.

[2]

Buslov M M. Tectonics and Geodynamics of the Central Asian Foldbelt: The Role of Late Paleozoic Large-Amplitude Strike-Slip Faults. Russian Geology and Geophysics, 2011, 52(1): 52-71.

[3]

Buslov M M, Saphonova I Y, Watanabe T, . Evolution of the Paleo-Asian Ocean (Altai-Sayan Region, Central Asia) and Collision of Possible Gondwana-Derived Terranes with the Southern Marginal Part of the Siberian Continent. Geosciences Journal, 2001, 5(3): 203-224.

[4]

Buslov M M, Watanabe T, Fujiwara Y, . Late Paleozoic Faults of the Altai Region, Central Asia: Tectonic Pattern and Model of Formation. Journal of Asian Earth Sciences, 2004, 23(5): 655-671.

[5]

Cai K D, Long X P, Chen H Y, . Accretionary and Collisional Orogenesis in the South Domain of the Western Central Asian Orogenic Belt (CAOB). Journal of Asian Earth Sciences, 2018, 153: 1-8.

[6]

Chang J, Glorie S, Qiu N S, . Late Miocene (10.0–6.0 Ma) Rapid Exhumation of the Chinese South Tianshan: Implications for the Timing of Aridification in the Tarim Basin. Geophysical Research Letters, 2021, 48 3 e2020GL090623

[7]

De Grave J, Buslov M M, Van den Haute P. Distant Effects of India Eurasia Convergence and Mesozoic Intracontinental Deformation in Central Asia: Constraints from Apatite Fission-Track Thermochronology. Journal of Asian Earth Sciences, 2007, 29(2/3): 188-204.

[8]

De Grave J, Buslov M M, Van den Haute P, . Multi-Method Chronometry of the Teletskoye Graben and Its Basement, Siberian Altai Mountains: New Insights on Its Thermo-Tectonic Evolution. Geological Society of London Special Publications, 2009, 324(1): 237-259.

[9]

De Grave J, De Pelsmaeker E, Zhimulev F I, . Meso-Cenozoic Building of the Northern Central Asian Orogenic Belt: Thermotectonic History of the Tuva Region. Tectonophysics, 2014, 621: 44-59.

[10]

De Grave J, Glorie S, Buslov M M, . Thermo-Tectonic History of the Issyk-Kul Basement (Kyrgyz Northern Tien Shan, Central Asia). Gondwana Research, 2013, 23(3): 998-1020.

[11]

De Grave J, Glorie S, Zhimulev F I, . Emplacement and Exhumation of the Kuznetsk-Alatau Basement (Siberia): Implications for the Tectonic Evolution of the Central Asian Orogenic Belt and Sediment Supply to the Kuznetsk, Minusa and West Siberian Basins. Terra Nova, 2011, 23(4): 248-256.

[12]

De Grave J, Van den Haute P. Denudation and Cooling of the Lake Teletskoye Region in the Altai Mountains (South Siberia) as Revealed by Apatite Fission-Track Thermochronology. Tectonophysics, 2002, 349(1/2/3/4): 145-159.

[13]

De Grave J, Van den Haute P, Buslov M M, . Apatite Fission-Track Thermochronology Applied to the Chulyshman Plateau, Siberian Altai Region. Radiation Measurements, 2008, 43(1): 38-42.

[14]

Dobretsov N L, Buslov M M. Late Cambrian-Ordovician Tectonics and Geodynamics of Central Asia. Russian Geology and Geophysics, 2007, 48(1): 71-82.

[15]

Dumitru T A, Zhou D, Chang E Z, . Hendrix M S, Davis G A, . Uplift, Exhumation, and Deformation in the Chinese Tian Shan. Paleozoic and Mesozoic Tectonic Evolution of Central and Eastern Asia: From Continental Assembly to Intracontinental Deformation, 2001, 71-99.

[16]

Gao J F, Zhou M F. Magma Mixing in the Genesis of the Kalatongke Dioritic Intrusion: Implications for the Tectonic Switch from Subduction to Post-Collision, Chinese Altay, NW China. Lithos, 2013, 162: 236-250.

[17]

Gleadow A J W, Duddy I R, Green P F, . Confined Fission Track Lengths in Apatite: A Diagnostic Tool for Thermal History Analysis. Contributions to Mineralogy and Petrology, 1986, 94(4): 405-415.

[18]

Glorie S, De Grave J. Exhuming the Meso — Cenozoic Kyrgyz Tianshan and Siberian Altai-Sayan: A Review Based on Low-Temperature Thermochronology. Geoscience Frontiers, 2016, 7(2): 155-170.

[19]

Glorie S, De Grave J, Buslov M M, . Structural Control on Meso-Cenozoic Tectonic Reactivation and Denudation in the Siberian Altai: Insights from Multi-Method Thermochronometry. Tectonophysics, 2012, 544/545: 75-92.

[20]

Glorie S, De Grave J, Delvaux D, . Tectonic History of the Irtysh Shear Zone (NE Kazakhstan): New Constraints from Zircon U/Pb Dating, Apatite Fission Track Dating and Palaeostress Analysis. Journal of Asian Earth Sciences, 2012, 45: 138-149.

[21]

Glorie S, Nixon A L, Jepson G, . Meso-Cenozoic Tectonic History of the Altai: New Insights from Apatite U-Pb and Fission Track Thermochronology for the Fuyun Area (Xinjiang, China). Tectonics, 2023, 42 4 e2022TC007692

[22]

Golonka J, Bocharova N Y, Ford D, . Paleogeographic Reconstructions and Basins Development of the Arctic. Marine and Petroleum Geology, 2003, 20(3/4): 211-248.

[23]

Hendrix M S, Graham S A, Carroll A R, . Sedimentary Record and Climatic Implications of Recurrent Deformation in the Tian Shan: Evidence from Mesozoic Strata of the North Tarim, South Junggar, and Turpan Basins, Northwest China. Geological Society of America Bulletin, 1992, 104(1): 53-79.

[24]

Huangfu P P, Fan W M, Li Z H, . Linkage between the India-Asia Collision and Far-Field Reactivation of the Altai Mountains. Palaeogeography, Palaeoclimatology, Palaeoecology, 2023, 616 111478

[25]

Jolivet M, De Boisgrollier T, Petit C, . How Old is the Baikal Rift Zone? Insight from Apatite Fission Track Thermochronology. Tectonics, 2009, 28 3 TC3008

[26]

Jolivet M, Heilbronn G, Robin C, . Reconstructing the Late Palaeozoic—Mesozoic Topographic Evolution of the Chinese Tian Shan: Available Data and Remaining Uncertainties. Advances in Geosciences, 2013, 37: 7-18.

[27]

Jolivet M, Ritz J F, Vassallo R, . Mongolian Summits: An Uplifted, Flat, Old but still Preserved Erosion Surface. Geology, 2007, 35(10): 871-874.

[28]

Long X P, Sun M, Yuan C, . Detrital Zircon Age and Hf Isotopic Studies for Metasedimentary Rocks from the Chinese Altai: Implications for the Early Paleozoic Tectonic Evolution of the Central Asian Orogenic Belt. Tectonics, 2007, 26 5 TC5015

[29]

Molnar P, Tapponnier P. Cenozoic Tectonics of Asia: Effects of a Continental Collision: Features of Recent Continental Tectonics in Asia can be Interpreted as Results of the India-Eurasia Collision. Science, 1975, 419-426.

[30]

Ota T, Utsunomiya A, Uchio Y, . Geology of the Gorny Altai Subduction Accretion Complex, Southern Siberia: Tectonic Evolution of an Ediacaran Cambrian Intra-Oceanic Arc-Trench System. Journal of Asian Earth Sciences, 2007, 30(5/6): 666-695.

[31]

Peng H, Wang J Q, Liu C Y, . Mesozoic Tectonothermal Evolution of the Southern Central Asian Orogenic Belt: Evidence from Apatite Fission-Track Thermochronology in Shalazha Mountain, Inner Mongolia. Journal of Earth Science, 2023, 34(1): 37-53.

[32]

Pullen A, Banaszynski M, Kapp P, . A Mid-Cretaceous Change from Fast to Slow Exhumation of the Western Chinese Altai Mountains: A Climate Driven Exhumation Signal?. Journal of Asian Earth Sciences, 2020, 197 104387

[33]

Vassallo R, Jolivet M, Ritz J F, . Uplift Age and Rates of the Gurvan Bogd System (Gobi-Altay) by Apatite Fission Track Analysis. Earth and Planetary Science Letters, 2007, 259(3/4): 333-346.

[34]

Vetrov E, De Grave J, Vetrova N, . Tectonic History of the South Tannuol Fault Zone (Tuva Region of the Northern Central Asian Orogenic Belt, Russia): Constraints from Multi-Method Geochronology. Minerals, 2020, 10 56

[35]

Wang Y M, Wang Y N, Yin J Y, . Mesozoic Exhumation of the Northern West Junggar, NW China: Insights from Low-Temperature Thermochronometers. Tectonophysics, 2023, 862 229939

[36]

Windley B F, Alexeiev D, Xiao W J, . Tectonic Models for Accretion of the Central Asian Orogenic Belt. Journal of the Geological Society, 2007, 164(1): 31-47.

[37]

Wu M X, Yin J Y, He Z Y, . Mesozoic Thermo-Tectonic Evolution of the Western Altai Orogenic Belt (NW China): Insights from Low-Temperature Thermochronology. Lithosphere, 2023, 2023 8161000

[38]

Xiao W J, Huang B C, Han C M, . A Review of the Western Part of the Altaids: A Key to Understanding the Architecture of Accretionary Orogens. Gondwana Research, 2010, 18(2/3): 253-273.

[39]

Xiao W J, Windley B F, Han C M, . Late Paleozoic to Early Triassic Multiple Roll-back and Oroclinal Bending of the Mongolia Collage in Central Asia. Earth-Science Reviews, 2018, 186: 94-128.

[40]

Yin A. Cenozoic Tectonic Evolution of Asia: A Preliminary Synthesis. Tectonophysics, 2010, 488(1/2/3/4): 293-325.

[41]

Yin J Y, Wang Y N, Hodges K V, . Episodic Long-Term Exhumation of the Tianshan Orogenic Belt: New Insights from Multiple Low-Temperature Thermochronometers. Tectonics, 2023, 42 4 e2022TC007469

[42]

Zhou J L, Li Y H, Han W, . Cretaceous-Neogene Exhumation of the Daqing Shan, North China Constrained by Apatite Fission Track Thermochronology. Journal of Earth Science, 2024, 35(1): 99-111.

AI Summary AI Mindmap
PDF

580

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/