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    Ma Xiaochen, Wang Jiasheng, Chen Can, Wang Zhou, 2018. Major Element Compositions and Paleoclimatic Implications of Paleo-Regolith on Top Jingeryu Formation in Fangshan, North China. Earth Science, 43(11): 3853-3872. doi: 10.3799/dqkx.2018.235
    Citation: Ma Xiaochen, Wang Jiasheng, Chen Can, Wang Zhou, 2018. Major Element Compositions and Paleoclimatic Implications of Paleo-Regolith on Top Jingeryu Formation in Fangshan, North China. Earth Science, 43(11): 3853-3872. doi: 10.3799/dqkx.2018.235

    Major Element Compositions and Paleoclimatic Implications of Paleo-Regolith on Top Jingeryu Formation in Fangshan, North China

    doi: 10.3799/dqkx.2018.235
    • Received Date: 2018-07-09
    • Publish Date: 2018-11-15
    • The geochemical composition of regolith can reflect its development processes and the background climatic characteristics of weathering processes, and geochemical compositions of the paleo-regolith formed in earth history can reveal the type of paleo-regolith and record paleoclimatic changes. The record between the Late Neoproterozoic (the Jingeryu Formation) and the Cambrian (the Fujunshan Formation) in North China is a stratigraphic hiatus due to the tectonic uplift and erosion. A typical paleo-regolith widely occurs and is supposed to have recorded paleoclimate changes during the Late Neoproterozoic to Early Cambrian. According to the compositions of major elements, enrichment in elemental migrations and coefficient of weathering distribution of paleo-regolith on the topmost Jingeryu Formation in the Fangshan area, North China, this study suggests that:(1) The major element compositions of the paleo-regolith on the topmost Jingeryu Formation are dominated by the elements of SiO2, Al2O3, TFe2O3, CaO. And the elements of Al2O3, TFe2O3, TiO2, K2O are relatively concentrated in the middle-to-upper parts of the regolith while the SiO2 is slightly lost. (2) The vertical variations of geochemical proxies such as SiO2/Al2O3, SiO2/(Al2O3+TFe2O3), chemical index of alteration (CIA), residual coefficient and BA value indicate that the paleo-regolith should have been formed under a warm and humid condition with moderate chemical weathering. The chemical weathering might have gone through an evolution from weak to strong and again to weak in degree. (3) Compared to the element geochemical characteristics of modern regolith on the topmost carbonate settings from Hunan, Guizhou and Yunnan, it is inferred that the paleo-regolith on the topmost Jingeryu Formation has relatively lower deficiency in Si and enrichment in Fe and Al. Consequently, by comprehensive analysis of the geochemical characteristics of paleo-regolith on the topmost Jingeryu Formation and changes in paleo-latitude of the North China block from the Late Neoproterozoic to the Cambria, it is proposed that the paleo-regolith on the topmost Jingeryu Formation might have been formed under conditions of a warm and humid tropical to subtropical climate siallite-clay regolith.

       

    • 致谢: 野外样品采集和室内前处理过程中,北京市房山区上方山国家森林公园管理处朱仕学主任和周口店实践教学团队队长王国庆副教授为论文的顺利完成提供了帮助,王广哲、曹炀、岑越、刘爽给予了大力支持,中国地质大学(武汉)地质过程与矿产资源国家重点实验室肖红艳老师在样品分析测试过程中给予了指导,匿名审稿专家提供了宝贵建议,在此致以衷心的感谢!
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