滇西大理红河断裂带深部地热的地表地球化学响应及其指示意义

Surface geochemical signals and insights into genesis of deep geothermal system in Dali-Red River Fault Zone, western Yunnan

  • 摘要: 滇西红河断裂带沿线地热资源禀赋优越,系统的地热地球化学与成因机制研究对区内地热开发利用具有重要意义。通过多介质地球化学综合探测,结合自组织映射与K均值(Self-Organizing Map and K-means, SOM-KM)耦合聚类与正定矩阵因子分解(Positive Matrix Factorization, PMF)-曼特尔检验(Mantel test)物源解析模型机器学习方法,探讨了红河断裂带地热流体、沉积泉华化学特征对深部地热活动的响应特征。结果表明:SOM-KM耦合聚类对滇西地热流体化学形成演化控制因素差异进行了有效区分,断陷盆地蒸发盐层溶滤和古沉积咸水混合、碳酸盐岩溶解和断裂带碳酸盐岩高温裂解脱气、大气降水和地表水及浅层地下水入渗补给、硅酸盐岩水岩作用,以及深部地热母流体升流分别贡献了地热流体水化学组分的38.05%、23.50%、19.41%、9.76%和9.28%。洱源牛街—三营盆地内地热流体通过与洋岛拉斑玄武岩、远洋盆地海相热液沉积碳酸盐岩的水岩作用,继承了与深部地壳相近的大洋中脊热液特征,导致其水化学特征与腾冲热海碱性高温地热流体相近,而非岩浆残余流体直接贡献。从地球化学论据来看,红河断裂带典型地热系统为非岩浆热源深循环水热系统,地热成藏模式总体分为隆起山地断裂深循环对流型和断陷盆地对流传导复合型2类,具有深部幔源供热、中段摩擦剪切增温、浅部对流循环热输送与隐伏侵入岩−变质结晶岩系双基底导热与放射性生热分层热聚敛机制。地热系统热储温度为61.89~186.40 ℃,流体循环深度为1 231.67~6 308.35 m。新生代钾质岩浆岩广泛分布的哀牢山—红河断裂带沿线拆沉作用核心区域能承载更大的流体循环深度,主断裂及其次级断裂与裂陷盆地拉张断裂带的交会区域为中高温地热资源成藏潜力区。

     

    Abstract: The Red River Fault Zone in western Yunnan is endowed with abundant geothermal resources. Systematic investigations of its geochemical signatures and genetic mechanisms are essential for the sustainable development and utilization of regional geothermal energy. Multi-media geochemical surveys with machine learning approaches—including a coupled self-organizing map and K-means (SOM-KM) clustering model and Mantel test-validated positive matrix factorization (PMF) modeling, were employed to elucidate the response of geothermal fluids and associated travertine deposits to deep hydrothermal processes. The results demonstrate that SOM-KM clustering effectively distinguishes the dominant factors controlling the formation and evolution of geothermal fluid chemistry. Quantitative source apportionment identifies five primary processes governing fluid solute compositions: evaporite dissolution and mixing with paleo-saline water within fault-bounded basins (38.05%), carbonate dissolution coupled with high-temperature decarbonation (23.50%), atmospheric precipitation, surface water, and shallow groundwater recharge (19.41%), water-rock interaction with silicate rocks (9.76%), and upwelling of deep primary geothermal fluids (9.28%). Notably, geothermal fluids in the Eryuan Niujie–Sanying Basin exhibit geochemical affinities with mid-ocean ridge hydrothermal systems, driven by intensive water–rock interactions with oceanic island tholeiites and pelagic hydrothermal carbonates. Such geochemical characteristics are consistent with the alkaline high-temperature fluids of the Tengchong Rehai geothermal field, indicating fluid origins dominated by deep crustal circulation rather than direct magmatic input. Collectively, geochemical evidence confirms that the typical geothermal systems along the Red River Fault are non-magmatic, deep-circulation hydrothermal systems. The geothermal accumulation models can be classified as deep-circulation convective type in uplifted mountainous fault zones, and convective-conductive composite type in fault-depression basins. The thermal regime is characterized by a layered heat convergence mechanism involving mantle-derived heat supply at depth, frictional shear heating along fault planes, convective heat transfer in shallow aquifers, and radiogenic heat production within concealed intrusive and metamorphic crystalline basements. Estimated reservoir temperatures in this region range from 61.89 ℃ to 186.40 ℃, with circulation depths varying between 1 231.67 m and 6 308.35 m. Furthermore, the core segment of the Ailaoshan-Red River Fault Zone, characterized by extensive Cenozoic potassic magmatism and lithospheric delamination, provides favorable structural conditions for deep fluid infiltration and circulation. Intersections between primary faults, secondary branch faults, and extensional rift-basin faults are highlighted as high-potential targets for medium- and high-temperature geothermal exploration.

     

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