热液对早寒武世海相黑色页岩有机质是否有稀释作用?

IF 3.6 2区 地球科学 Q1 GEOSCIENCES, MULTIDISCIPLINARY
Hezheng Dong , Dongsheng Zhou , Xiaowei Huang , Yufei Liang , Lei Huang , Jie Xu
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引用次数: 0

摘要

热液流体在黑色页岩的形成中起着重要作用。然而,以往的研究大多集中在它们对有机质形成和富集的积极影响上,而忽视了潜在的稀释效应。利用有机地球化学、元素地球化学和场发射扫描电镜(FE-SEM)对皖南洪涛剖面下寒武统河塘组和贵州杨条剖面同时期牛蹄塘组海相黑色页岩进行了研究。系统分析了不同有机质丰度黑色页岩形成的古环境条件和热液活动的影响。研究结果表明,不同OM丰度的黑色页岩在古生产力、古氧化还原条件和沉积速率方面表现出相似的特征,均表现出热液沉积的特征。值得注意的是,热液活动显著影响非陆相硅(Siex)含量,其与总有机碳(TOC)呈强烈负相关。这表明,由于热液过程导致硅通量增加导致OM稀释。此外,我们还探讨了硅的来源,认为热液源是页岩硅的重要来源。我们建立了黑色页岩形成的硅循环模型,该模型强调了热液活动的双重作用:促进OM的形成和富集,同时也导致稀释。本研究强调了在评价热液活动对黑色页岩形成的影响时,同时考虑营养物质输送、缺氧增强和OM稀释的重要性。我们的发现为热液过程与有机质动力学之间复杂的相互作用提供了新的见解,为更深入地了解黑色页岩的形成提供了重要的科学意义。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Do hydrothermal fluids cause a dilution effect on organic matter in the Early Cambrian marine black shales?
Hydrothermal fluids play a significant role in the formation of black shales. However, most previous studies have focused on their positive impacts on the formation and enrichment of organic matter (OM), while overlooking potential dilution effects. This study uses organic geochemistry, elemental geochemistry, and field emission scanning electron microscopy (FE-SEM) to examine the marine black shales of the Lower Cambrian Hetang Formation at the Hongtao (HT) section in southern Anhui Province and the contemporaneous Niutitang Formation at the Yangtiao (YT) section in Guizhou Province, China. We systematically analyze the paleo-environmental conditions and the influence of hydrothermal activity during the formation of black shales with varying OM abundances. Our findings show that black shales with different OM abundances in the HT and YT section exhibit similar paleo-productivity, paleo-redox conditions, and sedimentation rates, and all show evidence of hydrothermal sedimentation. Notably, hydrothermal activity significantly affects the content of non-terrestrial silicon (Siex), which strongly correlates negatively with total organic carbon (TOC). This suggests that an increased silicon flux due to hydrothermal processes leads to OM dilution. Additionally, we explore the origin of silicon, suggesting that hydrothermal sources are a critical contributor to silicon in shales. We develop a silicon cycling model for black shale formation, which highlights the dual role of hydrothermal activity: promoting OM formation and enrichment yet also causing dilution. This study emphasizes the importance of considering both nutrient transport, enhanced anoxia, and OM dilution when evaluating the influence of hydrothermal activity on black shale formation. Our findings offer new insights into the complex interactions between hydrothermal processes and OM dynamics, providing significant scientific implications for a deeper understanding of black shale formation.
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来源期刊
Marine and Petroleum Geology
Marine and Petroleum Geology 地学-地球科学综合
CiteScore
8.80
自引率
14.30%
发文量
475
审稿时长
63 days
期刊介绍: Marine and Petroleum Geology is the pre-eminent international forum for the exchange of multidisciplinary concepts, interpretations and techniques for all concerned with marine and petroleum geology in industry, government and academia. Rapid bimonthly publication allows early communications of papers or short communications to the geoscience community. Marine and Petroleum Geology is essential reading for geologists, geophysicists and explorationists in industry, government and academia working in the following areas: marine geology; basin analysis and evaluation; organic geochemistry; reserve/resource estimation; seismic stratigraphy; thermal models of basic evolution; sedimentary geology; continental margins; geophysical interpretation; structural geology/tectonics; formation evaluation techniques; well logging.
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