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Hydraulic Fracturing Treatment of Low-Permeability Coal Seam Gas Reservoirs with Finely Layered Coals

机译:用细层煤的低渗透煤层气藏的液压压裂处理

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In this paper,a fracture mechanics model that deals with fracture growth in layered low-permeability rocks is presented and applied to hydraulic fracturing stimulation of coal seam gas reservoirs. The model uses the conventional pseudo-3D treatment by which the vertically planar fracture is divided into cells along the horizontal direction. For each cell,the fracture deformation is represented by a 2D plane-strain fracture. To ensure numerical stability,the model uses an optimization method based on the fluid volume increase of each cell and the solutions for each cell can be obtained in parallel when using a computer with multiple CPU cores. The method was verified based on the comparisons with existing solutions and the computational speed can be significantly increased by using parallel computing. Numerical examples are presented to illustrate cases that result in fracture geometrical complexities caused by material properties contrasts between the thin softer coal seams and the adjacent stiffer rocks. The local horizontal stresses in each layer are calculated based on the layer-independent uniform horizontal strain assumption. The overburden stress is given. The fracture length and opening in the coal can be larger than other layers if the coal is subject to a smaller stress. This will promote growth of the fracture plane to include coal seams that do not receive injected fluid at the wellbore. The well developed fracture opening in the coal can be impeded by an increase in the confining stress of the coal. The fracturing produces wide propped channels below the coal seam in the low stress rock that exists there. These conductive channels allow flow of gas and water to the wellbore. The stress uncertainty is considered and interestingly the injection pressure trends are insensitive to the variation of local stresses. There is a process that favors growth in the softer coal seams for all cases,which yields a slight and progressive increase in the injection pressure.
机译:本文介绍了一种折断煤层气储层液压压裂刺激的分层低渗透岩体骨折生长的断裂力学模型。该模型使用传统的伪3D处理,通过该垂直平面裂缝沿水平方向被分成细胞。对于每个细胞,断裂变形由2D平面 - 应变骨折表示。为了确保数值稳定性,该模型使用基于每个小区的流体体积增加的优化方法,并且当使用具有多个CPU核心的计算机时,可以并行地获得每个单元的溶液。根据具有现有解决方案的比较验证该方法,并且通过使用并行计算可以显着增加计算速度。提出了数值例子以说明由薄的更蒸发煤层和相邻的纤维岩之间的材料特性引起的裂缝几何复杂性的情况。基于层无关的均匀水平应变假设来计算每层局部水​​平应力。给出了覆盖压力。如果煤受到较小的应力,则煤中的裂缝长度和开口的裂缝长度可以大于其他层。这将促进断裂面的生长,包括在井筒上没有收到注入的液体的煤层。煤中发育良好的骨折开口可以通过煤的限制应力的增加来阻碍。压裂在存在于那里的低应力岩石中产生宽的支撑通道。这些导电通道允许气体和水流到井筒上。考虑和有趣的不确定度,有趣的是,注射压力趋势对局部应力的变异不敏感。有一个过程可以在所有情况下,较软的煤层中的增长,这产生了注射压力的轻微和逐渐增加。

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