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CVD-MPFA full pressure support, coupled unstructured discrete fracture–matrix Darcy-flux approximations

机译:CVD-MPFA全压支持,耦合非结构化离散骨折 - 矩阵达西通量近似

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Abstract Two novel control-volume methods are presented for flow in fractured media, and involve coupling the control-volume distributed multi-point flux approximation (CVD-MPFA) constructed with full pressure support (FPS), to two types of discrete fracture–matrix approximation for simulation on unstructured grids; (i) involving hybrid grids and (ii) a lower dimensional fracture model. Flow is governed by Darcy's law together with mass conservation both in the matrix and the fractures, where large discontinuities in permeability tensors can occur. Finite-volume FPS schemes are more robust than the earlier CVD-MPFA triangular pressure support (TPS) schemes for problems involving highly anisotropic homogeneous and heterogeneous full-tensor permeability fields. We use a cell-centred hybrid-grid method, where fractures are modelled by lower-dimensional interfaces between matrix cells in the physical mesh but expanded to equi-dimensional cells in the computational domain. We present a simple procedure to form a consistent hybrid-grid locally for a dual-cell. We also propose a novel hybrid-grid for intersecting fractures, for the FPS method, which reduces the condition number of the global linear system and leads to larger time steps for tracer transport. The transport equation for tracer flow is coupled with the pressure equation and provides flow parameter assessment of the fracture models. Transport results obtained via TPS and FPS hybrid-grid formulations are compared with the corresponding results of fine-scale explicit equi-dimensional formulations. The results show that the hybrid-grid FPS method applies to general full-tensor fields and provides improved robust approximations compared to the hybrid-grid TPS method for fractured domains, for both weakly anisotropic permeability fields and very strong anisotropic full-tensor permeability fields where the TPS scheme exhibits spurious oscillations. The hybrid-grid FPS formulation is extended to compressible flow and the results demonstrate the method is also robust for transient flow. Furthermore, we present FPS coupled with a lower-dimensional fracture model, where fractures are strictly lower-dimensional in the physical mesh as well as in the computational domain. We present a comparison of the hybrid-grid FPS method and the lower-dimensional fracture model for several cases of isotropic and anisotropic fractured media which illustrate the benefits of the respective methods. ]]>
机译:<![cdata [ Abstract 在裂缝介质中出现了两种新的控制卷方法,涉及耦合控制体积分布式多点通量近似(CVD- MPFA)用全压力支撑(FPS)构造成两种分立的裂缝矩阵近似,用于非结构化网格上的模拟; (i)涉及混合网格和(ii)较低的尺寸裂缝模型。流动受到达西法的管辖,在基质和裂缝中,群众保护,可以发生渗透张量的大不连续性。有限卷FPS方案比早期的CVD-MPFA三角形压力支持(TPS)方案更稳健,用于涉及高度各向异性均匀和异质的全张渗透性磁场的问题。我们使用细胞 - 居中的混合网格方法,其中裂缝是由物理网格中的矩阵单元之间的低维接口建模的,但扩展到计算域中的Equi维单元。我们介绍了一种简单的过程,用于为双单元本地形成一致的混合网格。我们还提出了一种新的混合网格,用于与FPS方法相交的裂缝,这减少了全局线性系统的条件数,并导致示踪传输的更大时间步骤。示踪剂流的传送方程与压力方​​程耦合并提供裂缝模型的流程参数评估。将通过TPS和FPS杂交栅配方获得的运输结果与细尺明确尺寸配方的相应结果进行比较。结果表明,与裂缝结构域的混合网TPS方法相比,混合网FPS方法适用于一般全张磁场,并提供改善的稳健近似,用于弱势各向异性结构域,既有弱极渗透域和非常强大的各向异性全张渗透磁场TPS方案展示了杂散的振荡。杂交栅FPS配方延伸到可压缩流动,结果证明了该方法对于瞬态流量也是坚固的。此外,我们将FPS与低维骨折模型耦合,其中裂缝在物理网格中严格地低于计算域。我们展示了杂交 - 栅FPS方法和低尺寸断裂模型的比较,用于各向同性和各向异性裂缝介质的几例,其说明了各个方法的益处。 ]]>

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