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Deterministic Pipe Network Modelling for Fractured Rocks

机译:裂缝岩石的确定性管网建模

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The fracture network plays a critical role in controlling flow pathways in fractured rock. Thus, transmissibility study of fracture networks via different flow modelling methods is of importance. Compared with direct flow simulation, the pipe network model is an effective means of modelling fluid flow in fracture network due to its computational efficiency. However, the characterisation of the fracture network topology as well as the equivalent conductivity of the pipes are still challenging to credibly predict the permeability. Also, pipe network models are commonly constructed based on stochastic Discrete Fracture Network (DFN) models with more uncertainties, which also requires a number of stochastic DFN realisations to be created. In this paper, we develop a novel Pipe Network Modelling (PNM) framework for fractured media, where the PNM is constructed based on deterministic DFN models that are directly derived from micro-CT images. By comparing permeability values obtained from PNMs and results from micro-CT images and voxelised DFNs, we conclude that PNM modelling can effectively estimate the permeability of original fracture networks, while requiring significantly less computational cost. In addition to the advantage of computational efficiency, PNM is more preferable for the challenging multi-phase flow simulation.
机译:裂缝网络在控制裂缝岩石中的流动路径中起着关键作用。因此,通过不同流动建模方法对裂缝网络的传导性研究具有重要性。与直流模拟相比,管网模型是由于其计算效率而在裂缝网络中建模流体流动的有效方法。然而,裂缝网络拓扑的表征以及管道的等效电导率仍然挑战可靠地预测渗透性。此外,管网模型通常基于具有更多不确定性的随机离散裂缝网络(DFN)模型构建,这也需要创建许多随机DFN实现。在本文中,我们开发了一种用于裂缝介质的新型管网建模(PNM)框架,其中基于直接导出的Micro-CT图像的确定性DFN模型构建PNM。通过比较从PNMS获得的渗透率和来自微CT图像和体抑制的DFN的结果,我们得出结论,PNM建模可以有效地估计原始裂缝网络的渗透性,同时需要显着较低的计算成本。除了计算效率的优点之外,对于具有挑战性的多相流模拟,PNM更优选。

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