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西秦岭深部结构构造特征:对中-晚新生代壳—幔变形机制的启示
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作者 邓赛科 程斌 鲁如魁 《地质科学》 CAS CSCD 北大核心 2022年第4期1009-1035,共27页
西秦岭中-晚新生代发育强烈的与青藏高原扩展有关的构造活动,其壳—幔变形机制对揭示整个青藏高原东北缘扩展变形方式具有很好的启示意义。本文系统收集并分析了西秦岭浅表地质、地壳—上地幔三维结构与深部变形资料。结果显示:西秦岭中... 西秦岭中-晚新生代发育强烈的与青藏高原扩展有关的构造活动,其壳—幔变形机制对揭示整个青藏高原东北缘扩展变形方式具有很好的启示意义。本文系统收集并分析了西秦岭浅表地质、地壳—上地幔三维结构与深部变形资料。结果显示:西秦岭中-晚新生代地表构造活动呈弥散式分布。西秦岭岩石圈总体表现为低速异常,结合偏低的重力值、较浅的居里面与中-下地壳低阻层,指示该区岩石圈整体较塑性。西秦岭岩石圈广泛发育较强的地震波各向异性,是弱化的岩石圈受青藏高原北东向扩展挤压变形所致。上述变形特征与“块体挤出”模型强调的应力应变集中于深大断裂的特征不符。地震波各向异性揭示的岩石圈地幔和中-下地壳中-晚新生代主体变形方向为NWW-SEE向,与地表构造走向和地表位移方向一致,“垂直连贯变形”模型可以较好地解释该区中-晚新生代耦合的壳—幔变形特征。此外,部分研究发现西秦岭局部地区中-下地壳存在NE-SW向的各向异性,被认为是中-下地壳发生NE向塑性流动导致矿物定向排列造成的,指示了非耦合的壳—幔变形样式,用“中-下地壳流”模型解释似乎更合理。但是目前关于中-下地壳塑性流动是否存在及其分布规模和范围仍存在较大争议。因此,要确定西秦岭中-晚新生代的壳—幔变形机制,急需详细解剖中-下地壳异常结构的规模、分布状态以及精细的变形特征。 展开更多
关键词 西秦岭 中-晚新生代 三维结构 深部变形特征 壳—幔变形机制
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Growth of a polymetallic nodule from northwestern continental margin of the South China Sea and its response to changes in paleoceanographical environment of the late Cenozoic 被引量:6
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作者 ZHANG ZhenGuo DU YuanSheng +4 位作者 WU ChangHang FANG NianQiao YANG ShengXiong LIU Jian SONG ChengBing 《Science China Earth Sciences》 SCIE EI CAS 2013年第3期453-463,共11页
In the northern South China Sea, the accumulation of enormous quantities of terrigenous sediment during Cenozoic rendered well-developed polymetallic nodules very rare. In this study, we analyzed a polymetallic nodule... In the northern South China Sea, the accumulation of enormous quantities of terrigenous sediment during Cenozoic rendered well-developed polymetallic nodules very rare. In this study, we analyzed a polymetallic nodule from the northwestern conti- nental margin of the South China Sea using microscopic mineralogical observation, electron probes, X-ray diffraction (XRD), ICP-MS, and Be isotope dating. We found the nodule's shell layers rich in different types of microstructures, including co- lumnar, laminar, stack-like, petal-like, and porphyritic structures. The major mineral components of the nodule are MnO2. Unlike nodules from the eastern Pacific basin, this nodule has high contents in Fe, Si, A1, and REEs but low contents in Mn, Cu, Co, and Ni. The Mn/Fe ratio is also low and the average REEs content is 1370.4 ppm. There is a strong positive anomaly of Ce; and the Be (beryllium) isotope dating shows the initial time of growth of the nodule to be about 3.29 Ma. The inner compact layer formed from 3.29 Ma to about 1.83 Ma. The laminar and stack-like structures and the low contents of the terri- genous elements such as Fe, Si, REE, and A1 indicate the paleoceanographical environment with weak undersea currents and favorable oxidizing conditions. From 1.83 Ma to 0.73 Ma, the growth rate of the nodule increased by about 3%; the micro- structures formed during this period are stack-like and columnar. The contents of Si and A1 are increased by nearly 10%, indi- cating an increase of terrigenous sediment input in the northern South China Sea. The content of Ce is decreased by about 16% indicating a significant weakening of the oxidizing conditions at the seabed. From 0.73 Ma to 0.69 Ma, the growth rate of the nodule rapidly rose up to 8.27 times that of the nodule's average growth rate, and the contents of Fe, A1, and REEs in the layer also increased, forming a loose layer characterized by oolitic, granular, porphyritic, and petal-like structures, indicating the paleoceanographical environment with a high sedimemtation rate and abundant supply of terrigenous sediment in the northern South China Sea. From 0.69 Ma to 0.22 Ma, the growth rate of the nodule suddenly slowed and the outer compact layer formed. Contents of Fe, Si, REE, A1, Mn, Cu, Co, and Ni in this layer were significantly lower than in other layers. The main structures of the layer are laminar and fissure filling structures. These reflect the paleoceanographical environment with stable undersea currents, poor oxidizing conditions, and other conditions not conducive to nodule growth. The growth process of nodule S04-1DG-1 was found to respond sensitively to the changes of the paleoceanographical environment of the northern South China Sea during the late Cenozoic. 展开更多
关键词 polymetallic nodules growth process late Cenozoic paleoceanographical environment RESPONSE northwestern conti-nental margin of South China Sea
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