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首页> 外文期刊>International Communications in Heat and Mass Transfer >A novel three-dimensional transient model for subsurface heat exchange in enhanced geothermal systems
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A novel three-dimensional transient model for subsurface heat exchange in enhanced geothermal systems

机译:新型地热系统地下热交换的三维瞬态模型

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Understanding the subsurface heat exchange process in enhanced geothermal systems (EGS) is crucial to the efficiency of heat extraction and the sustainable utilization of geothermal reservoir. In the present work we develop a novel three-dimensional transient model for the study of the subsurface heat exchange process in EGS. The novelty of this model is embodied by a couple of salient features. First, the geometry of interest physically consists of multiple domains: open channels for injection and production wells, the artificial heat reservoir, and the rock enclosing the heat reservoir, while computationally we treat it as a single-domain of multiple sub-regions associated with different sets of characteristic properties (porosity and permeability etc.). This circumvents typical difficulties about matching boundary conditions between sub-domains in traditional multi-domain approaches and facilitates numerical implementation and simulation of the complete subsurface heat exchange process. Second, the heat reservoir is treated as an equivalent porous medium of a single porosity, while we consider thermal non-equilibrium between solid and fluid components and introduce two sets of heat transfer equations to describe the heat advection and conduction for fluid in rock apertures and the heat conduction in rock matrix, respectively, thus enabling the simulation and analysis of convective heat exchange between rock matrix and fluid flowing in the apertures. Case study with respect to an imaginary EGS demonstrates the validity and capability of the developed model.
机译:了解增强地热系统(EGS)中的地下热交换过程对于提高热提取效率和可持续利用地热储层至关重要。在目前的工作中,我们开发了一种新颖的三维瞬态模型,用于研究EGS中的地下热交换过程。该模型的新颖性体现在几个显着特征上。首先,感兴趣的几何体在物理上由多个区域组成:用于注入和生产井的明渠,人工储热层和围住储热层的岩石,而在计算上,我们将其视为与多个子区域关联的单个区域不同组的特性(孔隙度和渗透率等)。这规避了在传统的多域方法中匹配子域之间的边界条件的典型困难,并简化了整个地下热交换过程的数值实现和模拟。其次,将储热层视为单一孔隙度的等效多孔介质,同时考虑固体和流体组分之间的热不平衡,并引入两组传热方程式来描述岩石孔隙中流体的热对流和传导。分别在岩石基质中的热传导,从而能够模拟和分析岩石基质与孔中流动的流体之间的对流热交换。关于虚构的EGS的案例研究证明了所开发模型的有效性和能力。

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