热流通量约束的热源及其聚集机制以山东省为例

Heat source and its accumulation mechanism constrained by heat flow flux: a case study of Shandong Province

  • 摘要: 华北克拉通破坏诱发了大规模岩浆活动与深部高温热源上涌,在其东缘山东省境内形成了丰富的地热资源。然而,区域地温场特征、大地热流通量分布格局及其热源−水源驱动机制与聚集规律尚缺乏系统研究。基于大地构造分析、岩石热导率及生热率测试、地热井测温,综合计算了地温梯度及传导热流与对流热流,系统厘定了山东省地温场特征及大地热流通量空间分布格局,并圈定出鲁东隆起、郯庐断裂带、齐广断裂带、兰聊断裂带、鲁中南隆起盆山断裂带及鲁西北济阳坳陷古潜山等高热流通量区。在此基础上,构建了“岩石圈减薄→地幔热流抬升→断裂构造改造→浅表热流聚焦”的完整因果链,从深部地球动力学过程出发,揭示了深大断裂构造与岩浆活动对深部热源的输导机制,并进一步阐释了地壳浅部热流聚集的物理过程。研究显示,深达地幔的岩石圈尺度的活动断裂构造带为幔源岩浆及地幔热物质上涌提供了优先通道,其热流通量显著高于所处构造单元的区域背景热流值,形成高热流通量地热异常区,其中对流热通量占比达29%~70%,表明深部对流热上涌是浅部高热流通量异常区的主导热源。在浅表层面,热流聚集受双重物理机制控制:一是潜山凸起区硬质岩高热导率引起的热流折射效应(即高导基底对热流线的侧向汇聚),二是凹陷中心成岩压密水和酸性流体高压力梯度与高温度梯度驱动的热流上涌。研究进一步表明,在区域大地热流编图中纳入以对流为主的热流通量分量,能够更准确地凸显高热流通量地热异常区,为地热靶区优选提供高热流这一关键的直接证据。

     

    Abstract: Driven by the destruction of the North China Craton, large-scale crust-mantle mixed magmatism and concomitant upwelling of deep-seated high-temperature heat sources collectively shaped the anomalously high geothermal background in its eastern margin—Shandong Province, where abundant geothermal resources are preserved. However, the regional geothermal field characteristics, the spatial distribution pattern of terrestrial heat flow, and the heat source-water source driving mechanisms and accumulation patterns remain poorly constrained. Tectonic analysis, measurements of rock thermal conductivity and radiogenic heat production, borehole temperature logging, and calculations of geothermal gradient as well as conductive and advective heat flow were integrated to systematically characterize the geothermal field and the spatial distribution of heat flow across Shandong. Several high-heat-flow zones were identified, including the Jiaodong Uplift, the Tanlu fault zone, Qiguang fault zone, Lanliao fault zone, the basin–range fault zones in the central-southern Shandong Uplift, and the buried hills within the Jiyang Depression of northwestern Shandong. On this basis, a complete causal chain—lithospheric thinning → mantle heat flow uplift → fault-controlled thermal conduit → shallow heat flow focusing—was established which, from a deep geodynamic perspective, reveals the transport mechanisms of deep-seated heat through deep-rooted faults and magmatic activity, and further elucidates the physical processes governing shallow crustal heat accumulation. The results demonstrate that lithospheric-scale active fault zones reaching the mantle provide preferential pathways for the upwelling of mantle-derived magmatic and thermal materials. The heat flow values in these zones are significantly higher than the regional background values of their respective tectonic units, forming high-heat-flow geothermal anomalies, in which the advective heat flow component accounts for 29% to 70% of the total heat flow, confirming that deep convective heat upwelling is the dominant heat source for shallow high-heat-flow anomalies. At the shallow level, heat accumulation is governed by dual physical mechanisms: the thermal refraction effect caused by the high thermal conductivity of hard rocks in buried hill uplift zones—i.e., the lateral focusing of heat flow lines by the high-conductivity basement, and heat flow upwelling driven by high pressure gradients and high temperature gradients of compaction water and acidic fluids in depression centers. This study further demonstrates that incorporating the advective-dominated heat flow component into regional heat flow mapping can more accurately highlight high-heat-flow geothermal anomaly zones, thereby providing high heat flow as a critical and direct line of evidence for optimizing geothermal exploration target selection.

     

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