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Thermal maturity assessment of the Upper Triassic to Lower Jurassic Nampo Group, mid-west Korea: Reconstruction of thermal history

机译:中西部上三叠统至下侏罗统南浦组的热成熟度评估:热史的重建

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摘要

Thermal maturity of the Upper Triassic to Lower Jurassic Nampo Group, a sediment-fill of the Chungnam Basin located in the central western part of South Korea, was assessed by illite crystallinity measurement and sandstone microtexture analysis. The Nampo Group consists of a fluvio-lacustrine deposit bearing meta-anthracitic coals and was over-thrusted by the basement rocks. Sandstones are characterized by down sequence increasing illite crystallinity, from anchizone to epizone, which is strongly suggestive of burial heating. Deep-burial diagenesis and deformation are evidenced by well-developed pressure solution textures, whose intensity tends to increase down sequence, and by ductile deformation in the lowermost strata. On the basis of the result of illite crystallinity measurement, the maximum paleo-temperature and total burial depth of the Nampo Group are estimated to be ca 340 degrees C and 10 km, respectively; these conditions are in good agreement with the observed ductile deformation features. The absence of strata younger than the Nampo Group in and around the Chungnam Basin suggests that deep burial of the Nampo Group was caused by tectonic crustal loading. The tectonic overload was because of basement over-thrusting that occurred during the Jurassic Daebo orogeny, which is closely related to the orthogonal subduction of the Izanagi Plate beneath the East Asian continent. Subsequent hydrothermal alteration disturbed the thermal maturity pattern, resulting in anomalously high illite crystallinity and meta-anthracitization.
机译:通过伊利石结晶度测量和砂岩微纹理分析评估了上三叠统至下侏罗统南浦组的热成熟度,这是位于韩国中西部的忠南盆地的沉积物。南浦组由含准无烟煤的河流湖相沉积物组成,并被基底岩石过度推覆。砂岩的特征是从裂隙层到表层裂隙的伊利石结晶度下降,这强烈暗示了埋藏加热。深埋的成岩作用和变形表现为压力溶液质地发达,其强度趋于向下增加,而最底层的韧性变形表现出来。根据伊利石结晶度测量结果,估计南浦群的最高古温度和总埋藏深度分别约为340摄氏度和10 km。这些条件与观察到的韧性变形特征非常吻合。忠南盆地及其周边地区没有比南浦组年轻的地层,这表明南浦组的深埋是由构造地壳载荷引起的。构造超负荷是由于侏罗纪大波造山过程中发生的基底超推作用,这与东亚大陆下方的Izanagi板块的正交俯冲密切相关。随后的热液蚀变扰动了热成熟度模式,导致伊利石异常高结晶度和亚炭化。

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