Major unconformities, tectonostratigraphic frameword, and evolution of the superimposed Tarim basin, Northwest China

Changsong Lin , Hao Li , Jingyan Liu

Journal of Earth Science ›› 2012, Vol. 23 ›› Issue (4) : 395 -407.

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Journal of Earth Science ›› 2012, Vol. 23 ›› Issue (4) : 395 -407. DOI: 10.1007/s12583-012-0263-4
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Major unconformities, tectonostratigraphic frameword, and evolution of the superimposed Tarim basin, Northwest China

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Abstract

The Tarim basin experienced a complex tectonic evolutionary history from Sinian to Cenozoic. Eight large-scale and more than 20 subordinate unconformities defining tectonosequences of different protobasins formed in various tectonic settings have been identified within the Phanerozoic in the Tarim basin, their distribution determining the general characteristics of sequence stratigraphic framework of the basin. Tectonostratigraphic unit I (magasequence) consists mainly of the Sinian System, which formed in a rift or aulacogen setting and can been subdivided into two subordinate stratigraphic units (supersequences). Unconformity (Tg9) between Sinian and Cambrian with surface karstification is regarded as a post-rift unconformity. Tectonostratigraphic unit II comprises the Cambrian and the Ordovician and can be divided into six subordinate tectonostratigraphic units, recording the tectonogeographic evolution of the prototype basins from Cambrian to Early Ordovician passive carbonate continental margin or cratonic depression and the Late Ordovician submarine to neritic retroarc foreland and cratonic depressions. The tectonic uplift related to the formation of the unconformity Tg5-2 resulted in the remarkable change in basin tectonic setting from a passive divergent to an active convergent, with the development of the Tazhong (塔中) uplift, the Tangguzibasi (塘古孜巴斯), and the northern depression at the end of the Middle to the early Late Ordovician. The widespread angular unconformity Tg5 formed by a relatively strong compressive deformation, which caused an abrupt tectonogeographic change of the basin from abyssal to a neritic setting in response to the collision and associated tectonic deformation of the North Kunlun (昆仑) orogenesis during the Late Ordovician to the Early Silurian. Tectonostratigraphic unit III is composed of the Silurian and the Lower to Middle Devonian and characterized by the development of fluvial or deltaic and clastic littoral and neritic deposits. Large-scale terrigenous clastic depositional wedges progradated from the north to south in the southeastern slope of the basin indicate the continuously shallowing and uplifting along the northern basin margin. Tectonostratigraphic unit IV includes the Upper Devonian, Carboniferous, and Permian and can be classified into two subordinate tectonostratigraphic sequences. The angular unconformity (Tg3) at the base of the unit is the most widespread unconformity and the strong compression and uplift of the basin during this period has been suggested to be related to the collision of the Tianshan (天山) orogenesis and resulted in fundamental change in tectonic geomorphology with higher to the northeast and lower to the southwest. Tectonostratigraphic unit IV records another tectonic cycle from weak extension to compression in basin setting and is composed mainly of nearshore clastic deposits of embayment basin fills. From the Triassic, the Tarim basin evolved into a period characteristic of development of intracontinental depressions and marginal foreland basins and experienced several cycles from rapid subsidence to strong uplift and deformation, resulting in superimposition and reformation of differently orientated protobasins filled with a series of regional depositional cycles bounded by major unconformities and consisting of extremely thick alluvial and lacustrine deposits. The Kuqa foreland depression in the northwestern basin margin developed since the Triassic and deposited a clastic wedge of the Mesozoic to Cenozoic more than 100 000 m in thickness, which progradated and thin towards the southern Tabei (塔北) forebulge. The large-scale sedimentary cycles from alluvial, fluvial to lacustrine, and finally fluvial deposits are attributed to the results of foreland tectonisim from active to relatively quiet stages. The foreland tectonisim was active during the Triassic, relatively quiet during the Jurassic, and active again from the Late Jurassic to the Cretaceous. To the Eogene, the depression subsided again and the compression intermittently increased, resulting in a series of faulted and folded structural belts.

Keywords

major unconformity / tectonostratigraphic framework / protobasin fill / Tarim basin

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Changsong Lin, Hao Li, Jingyan Liu. Major unconformities, tectonostratigraphic frameword, and evolution of the superimposed Tarim basin, Northwest China. Journal of Earth Science, 2012, 23(4): 395-407 DOI:10.1007/s12583-012-0263-4

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References

[1]

Chen X. J., Cai X. Y., Ji Y. L., . Relationship between Large Scale Unconformity Surface and Weathering Crust Karst of Ordovician in Tazhong. Journal of Tongji University (Natural Science), 2007, 35(8): 1122-1127.

[2]

Huang, J. Q., Ren, J. S., Jiang, C. F., et al., 1990. Geotectonic Evolution of China. Science Press, Beijing. 1-124 (in Chinese with English Abstract)

[3]

Ji Y. L., Ding X. S., Li X. C., . Triassic Paleogeography and Sedimentary Facies of the Kuqa Depression, Tarim Basin. Journal of Geomechanics, 2003, 19(13): 268-274.

[4]

Jia C. Z.. Tectonic Characteristics and Petroleum in Tarim Basin of China, 1997, Beijing: Petroleum Industry Press

[5]

Jin Z. J., Wang Q. C.. Recent Developments in Study of the Typical Superimposed Basins and Petroleum Accumulation in China: Exemplified by Tarim Basin. Science in China (Ser. D), 2004, 47(Suppl.2): 1-15.

[6]

Kang, Y. Z., Kang, Z. H., 1994. Tectonic Evolution and Hydrocarbon of Tarim Basin. Acta Geoscientica Sinica, (3–4): 180–191 (in Chinese with English Abstract)

[7]

Lin C. S., Li S. T., Liu J. Y., . Tectonic Framework and Paleogeographic Evolution of the Tarim Basin during the Paleozoic Major Evolutionary Stages. Acta Petrologica Sinica, 2011, 27(1): 210-218.

[8]

Lin C. S., Liu J. Y., Zhang Y. M., . Depositional Architecture of the Tertiary Tectonic Sequences and Their Response to Foreland Tectonism in the Kuqa Depression, the Tarim Basin. Science in China (Ser. D), 2002, 45(3): 251-258.

[9]

Lin C. S., Wang Q. H., Xiao J. X., . Depositional Sequence Architecture and Filling Response Model of the Cretaceous in the Kuqa Depression, the Tarim Basin. Science in China (Ser. D), 2004, 47(2): 86-96.

[10]

Lin C. S., Yang H. J., Liu J. Y., . Paleostructural Geomorphology of the Paleozoic Central Uplift Belt and Its Constraint on the Development of Depositional Facies in Tarim Basin. Science in China (Ser. D), 2009, 52(6): 823-834.

[11]

Lin C. S., Yang H. J., Liu J. Y., . Distribution and Erosion of the Paleozoic Tectonic Unconformities in the Tarim Basin, Northwest China: Significance for the Evolution of Paleo-Uplifts and Tectonic Geography during Deformation. Journal of Asian Earth Sciences, 2012, 46: 1-19.

[12]

Liu J. Y., Lin C. S., Peng L., . Distribution Patterns of the End of the Middle Devonian Tectonic Unconformity and Their Constrain on the Development and Distribution of Favorable Stratigraphic Traps in the Tarim Basin. Oil & Gas Geology, 2008, 29(2): 268-275.

[13]

Moldowan J. K., Fago F. J., Cathy Y. L., . Sedimentary 24-n-Propylcholestanes, Molecular Fossils Diagnostic of Marine Algae. Science, 1990, 247(4940): 309-312.

[14]

Pang X. Q., Zhou X. Y., Lin C. S., . Classification of Complex Reservoirs in Superimposed Basins of Western China. Acta Geologica Sinica, 2010, 84(5): 1011-1034.

[15]

Sobel E. R.. Basin Analysis of the Jurassic-Lower Cretaceous Southwest Tarim Basin, Northwest China. Geological Society of America Bulletin, 1999, 111(5): 709-724.

[16]

Tian Z. Y., Zhang Q. C.. Discussion of Hydrocarbon-Bearing Depositional Basin of China, 1996, Beijing: Petroleum Industry Press

[17]

Vail P. R., Bowman S. A., Eisner P. N., . Einsele G., Ricken W., Seilacher A., . The Stratigraphic Signatures of Tectonics, Eustasy and Sedimentology—An Overview. Cycles and Events in Stratigraphy, 1991, Heidelberg: Springer-Verlag Berlin Heidelberg 617 659

[18]

Wang F., Wang B., Shu L. S.. Continental Tholeiitic Basalt of the Akesu Area (NW China) and Its Implication for the Neoproterozoic Rifting in the Northern Tarim. Aata Petrologica Sinica, 2010, 26(2): 547-558.

[19]

Wang H. Z., Shi X. Y., Wang X. L., . Research on the Sequence Stratigraphy of China, 2000, Guangzhou: Guangdong Science & Technology Press 457

[20]

Wu C. D., Lin C. S., Shen Y. P., . Composition of Sandstone and Heavy Minerals Implies the Provenance of Kuqa Depression in Jurassic, Tarim Basin, China. Progress in Natural Science, 2005, 15(7): 633-640.

[21]

Xiao X. C., Tang Y. Q., Feng Y. M., . Tectonic Evolution of Northern Xinjiang and Its Adjacent Regions, 1992, Beijing: Geological Publishing House 1 169

[22]

Zhang L. F., Ai Y. L., Li X. P., . Triassic Collision of Western Tianshan Orogenic Belt, China: Evidence from SHRIMP U-Pb Dating of Zircon from HP/UHP Eclogitic Rocks. Lithos, 2007, 96: 266-280.

[23]

Zhang Y. T., Liu J. Q., Guo Z. F.. Permian Basaltic Rocks in the Tarim Basin, NW China: Implications for Plume-Lithosphere Interaction. Gondwana Research, 2010, 18(4): 596-610.

[24]

Zhang Y. W., Jin Z. Z., Liu G. C., . Study on the Formation of Unconformities and the Amount of Eroded Sedimentation in Tarim Basin. Earth Science Frontiers, 2000, 7(4): 449-457.

[25]

Zhu X.. Tectonic Characteristics and Evolution of Mesozoic and Cenozoic Basins in China, 1983, Beijing: Scientific Publishing 1 80

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