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Numerical Simulation for Shale Gas Flow in Complex Fracture System of Fractured Horizontal Well

机译:裂缝水平井复合骨折系统中页岩气流的数值模拟

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Complex fracture systems including natural fractures and hydraulic fractures exist in shale gas reservoir with fractured horizontal well development. The flow of shale gas is a multi-scale flow process from microscopic nanometer pores to macroscopic large fractures. Due to the complexity of seepage mechanism and fracture parameters, it is difficult to realize fine numerical simulation for fractured horizontal wells in shale gas reservoirs. Mechanisms of adsorption-desorption on the surface of shale pores, slippage and Knudsen diffusion in the nanometer pores, Darcy and non-Darcy seepage in the matrix block and fractures are considered comprehensively in this paper. Through fine description of the complex fracture systems after horizontal well fracturing in shale gas reservoir, the problems of conventional corner point grids which are inflexible, directional, difficult to geometrically discretize arbitrarily oriented fractures are overcome. Discrete fracture network model based on unstructured perpendicular bisection grids is built in the numerical simulation. The results indicate that the discrete fracture network model can accurately describe fracture parameters including length, azimuth and density, and that the influences of fracture parameters on development effect of fractured horizontal well can be finely simulated. Cumulative production rate of shale gas is positively related to fracture half-length, fracture segments and fracture conductivity. When total fracture length is constant, fracturing effect is better if single fracture half-length or penetration ratio is relatively large and fracturing segments are moderate. Research results provide theoretical support for optimal design of fractured horizontal well in shale gas reservoir.
机译:复杂的骨折系统,包括自然骨折和液压骨折,存在于裂缝水平井开发的页岩气藏。页岩气流是一种从微观纳米孔到宏观大骨折的多尺度流程。由于渗流机构和裂缝参数的复杂性,难以实现页岩气藏的裂缝水平井的优良数值模拟。本文认为,在基质块和裂缝中,在纳米孔,达西和非达西渗透中的吸附吸附在页岩孔隙表面上的吸附机制,达西和非达西渗透。通过细微描述在页岩气藏水平井压裂后复杂的骨折系统,克服了常规角点网格的问题,难以致力于几何离散的裂缝。基于非结构化垂直双分网格的离散断裂网络模型建立在数值模拟中。结果表明,离散断裂网络模型可以准确地描述骨折参数,包括长度,方位角和密度,并且可以精细地模拟裂缝参数对断裂水平井的发展效果的影响。页岩气的累积生产率与骨折半长,断裂段和断裂电导率正相关。当总断裂长度是恒定的时,如果单一骨折半长或渗透率相对较大并且压裂段中等,则压裂效果更好。研究结果为页岩气藏裂缝水平井最优设计提供了理论支持。

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