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Impact of micro- and macro-scale consistent flows on well performance in fractured shale gas reservoirs

机译:页岩气藏微尺度和宏观尺度一致流动对油井性能的影响

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Shale gas revolution comes from the skillful combination of horizontal drilling and hydraulic fracturing technology that can create a fractured gas reservoir for gas production. The well performance in the fractured shale gas reservoir is significantly impacted by the complicated gas flow regimes in both fracture network and shale matrix. The consistency between the macro-flow in fracture network and the micro-flow in shale matrix determines the gas production curve, thus being a key issue to gas well design. This paper proposes a numerical model to investigate the impact of micro- and macro-scale consistent gas flows on well performance in fractured shale gas reservoirs. In this numerical model, the macro-scale gas flow follows the Darcy law in the fracture network and the micro-flow in the shale matrix is described by a diffusion-controlled gas transport model. Two apparent diffusion coefficients or models are then obtained. They incorporate viscous flow with slip boundary, molecular diffusion (i.e. molecular self-diffusion), Knudsen diffusion, and surface diffusion in the adsorption layer. The performances of these two diffusion models for the gas transport within shale matrix are investigated and compared with two apparent permeability models proposed by Singh and Javadpour (2013) and Darabi et al. (2012). Furthermore, the pressure-dependent anisotropy of fracture permeability and compressibility is incorporated into the numerical model. This numerical model is verified by an analytical solution and history matching for a Barnett shale gas well. Finally, a fractured gas reservoir with different scenarios is numerically simulated and the shapes of production curves are analyzed through parametric study. It is found that the enhancement of gas recovery efficiency and the life of a shale gas well can be effectively designed if the consistency of micro- and macro-flows can be well designed. (C) 2016 Elsevier B.V. All rights reserved.
机译:页岩气的革命来自水平钻井和水力压裂技术的巧妙结合,可为天然气生产创造压裂气藏。页岩气储层中的井眼性能受到裂缝网络和页岩基质中复杂的气体流态的显着影响。裂缝网络中的宏观流动与页岩基质中的微观流动之间的一致性决定了产气曲线,因此是气井设计的关键问题。本文提出了一个数值模型,以研究微观和宏观尺度上一致的气体流量对裂缝性页岩气储层的油井性能的影响。在该数值模型中,裂缝网络中的宏观气体流遵循达西定律,而页岩基质中的微观流由扩散控制的气体传输模型来描述。然后获得两个表观扩散系数或模型。它们结合了具有滑动边界,分子扩散(即分子自扩散),努森扩散和表面扩散的粘性流。研究了这两个扩散模型在页岩基质内气体传输的性能,并与Singh和Javadpour(2013)以及Darabi等人提出的两个表观渗透率模型进行了比较。 (2012)。此外,将压裂渗透率和可压缩性的压力相关各向异性纳入数值模型。该数值模型通过Barnett页岩气井的解析解和历史匹配得到验证。最后,对不同场景的压裂气藏进行了数值模拟,并通过参数研究分析了生产曲线的形状。已经发现,如果可以很好地设计微流和宏观流的一致性,则可以有效地设计提高页岩气井的采气效率和寿命。 (C)2016 Elsevier B.V.保留所有权利。

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