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Thermal convection of temperature-dependent viscous fluids within three-dimensional faulted geothermal systems: Estimation from linear and numerical analyses

机译:三维断层地热系统中与温度相关的粘性流体的热对流:线性和数值分析的估计

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摘要

Linear stability analysis and numerical simulations of density-driven flow are presented in order to estimate the effects of temperature-dependent fluid viscosity variation on the onset of free thermal convection within a three-dimensional fault embedded into impermeable rocks. The strongly coupled equations of density-driven flow are linearized. The solution was obtained through expansion into Fourier series. Simple polynomial expressions fitting the neutral stability curves are given for a range of fault aspect ratios, fluid viscosity properties, and thermal conductivity heterogeneity, providing a new tool for the estimation of critical Rayleigh numbers in faulted systems. The results are validated against the limiting case of temperature-invariant viscosity (i.e., constant). 3-D numerical simulations of free convection within a fault are run using the finite element technique in order to verify the theoretical results. It turned out that at average geothermal temperature conditions, thermal convection can develop within faults which permeability is up to 4 times lower than the case of a fluid with constant viscosity, in agreement with the developed linear theory. The polynomial expressions of this study can be applied to any numerical model for testing the feasibility of fault convection in 3-D geothermal basin.
机译:为了估计随温度变化的流体粘度变化对埋在不渗透岩石中的三维断层中自由热对流发生的影响,提出了密度驱动流的线性稳定性分析和数值模拟。密度驱动的流动的强耦合方程被线性化。通过扩展为傅立叶级数获得解决方案。给出了适合中性稳定性曲线的简单多项式表达式,以表示一系列断层纵横比,流体粘度特性和热导率非均质性,为估算故障系统中的临界瑞利数提供了一种新工具。针对温度不变粘度(即恒定)的极限情况验证了结果。为了验证理论结果,使用有限元技术对故障内部的自由对流进行了3-D数值模拟。事实证明,在平均地热温度条件下,断层内会产生热对流,这与已发展的线性理论相一致,断层的渗透率比粘度恒定的流体低4倍。这项研究的多项式表达式可以应用于任何数值模型,以测试3-D地热盆地断层对流的可行性。

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  • 来源
    《Water resources research》 |2016年第4期|2855-2867|共13页
  • 作者单位

    Russian Acad Sci, Inst Geol Ore Deposits Petrog Mineral & Geochem I, Lab Radiogeol & Radiogeoecol, Moscow, Russia|D Mendeleyev Univ Chem Technol, Higher Coll Resources Conservat, Moscow, Russia;

    UFZ Helmholtz Ctr Environm Res, Dept Environm Informat ENVINF, Leipzig, Germany|Free Univ Berlin, Dept Hydrogeol, Berlin, Germany;

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