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Halogenases of Qarhan Salt Lake in the Qaidam Basin: Evidence From Halite Fluid Inclusions

石盐 地质学 钾盐 地球化学 卤水 构造学 流体包裹体 蒸发岩 矿物学 构造盆地 石英 地貌学 化学 沉积岩 古生物学 有机化学
作者
Jun Li,Xiying Zhang,Mingyue Hu,Wenxia Li,Weiliang Miao,Xiaolong Yuan,Yongshou Li,Qiliang Tang,Wenxia Han,Haizhou Ma
出处
期刊:Frontiers in Earth Science [Frontiers Media]
卷期号:9 被引量:3
标识
DOI:10.3389/feart.2021.698229
摘要

The fluid inclusion composition of halite can help track chemical composition of ancient fluids and, thus, serves as a reliable index to analyze ancient brine in salt lakes. Qarhan Salt Lake (QSL) is the largest potash brine deposit in China. Although the mixing of modern river water and Ca-Cl deep water is widely accepted as potassium formation, the mixing characteristics in the time domain and driving factors of deep water are still unclear. Here, the chemical composition of fluid inclusions in primary halite samples collected from the ISL1A borehole in QSL was measured by LA-ICP-MS technology. The analysis results show that, during the formation stage of the S 4 salt layer in QSL, the main potassium salt layer, the contents of Ca 2+ and Sr 2+ in brine increased significantly. There is evidence confirming that Ca-Cl deep water is beneficial to the enrichment of potassium and the surrounding rivers generally develop terraces. It suggests that, during the formation stage of the QSL potassium salt layer, more Ca-Cl inflow water of the northern margin supplies the salt lake, inferring that it was driven by tectonic activities. In addition, the chemical composition of halite fluid inclusions shows that there is an anomaly in geochemistry at the early stage of salt formation in QSL. By combining the time of tectonic activities, it is inferred that the anomaly is not caused by tectonic activities but maybe caused by a salt-forming event. This work indicates that deep water and tectonic movement have a huge impact on the evolution of salt lakes. Therefore, it is necessary to consider the influence of deep water and tectonic activities on the salt-forming evolution stage of salt lakes when studying the salt-forming evolution stage of salt lakes and paleoclimate by using salt lake deposition.
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