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A coupling flow model for fractured horizontal well and anisotropic tight gas reservoir

机译:裂缝水平井和各向异性闭煤储层的耦合流模型

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The development of multistage fracturing technology in horizontal wells is a great impulsion to the successful development of unconventional resources. The hydraulic fractures distribute regularly along the horizontal wellbore, forming a seepage channel for fluids in tight gas reservoir and greatly improving the productivity of horizontal wells. Based on Green function and Neumann product principle, we establish a flow model of fractured horizontal well coupled with anisotropic tight gas reservoir under both unsteady state and pseudo-steady state and propose a method to solve this model. The calculation results show that flow rate of horizontal well under the early unsteady state is larger than that under the pseudo-steady state. There is no interference among fractures in the early unsteady state, and flow rate is in direct proportion to fracture numbers. Affected by frictional and acceleration pressure drop, flow rate of the end fractures is obviously larger than other fractures in pseudo-steady state. The permeabilities in different directions have great influence on well flow rate distribution. With the increasing?Kx, the interference between the fractures is reduced, and the flow distribution is more balanced. When?Ky?becomes larger, the interference between fractures are stronger, and the “U” shape distribution of the wellbore flow is more significant.
机译:在水平井中的多级压裂技术的发展是对非传统资源的成功发展的巨大冲动。液压骨折定期沿水平井筒分布,形成渗漏气体储层中的流体渗流通道,大大提高水平井的生产率。基于绿色功能和Neumann产品原理,我们在不稳定状态和伪稳态下建立了与各向异性闭气藏的断裂水平井的流动模型,并提出了一种解决该模型的方法。计算结果表明,在未稳态的早期不稳定状态下水平井的流速大于伪稳态下方。早期不稳定状态下的裂缝之间没有干扰,流速与裂缝数量直接成比例。受摩擦和加速度的压降影响,末端骨折的流速明显大于伪稳态的其他骨折。不同方向的渗透性对井流速分布产生了很大的影响。随着越来越多的?Kx,裂缝之间的干涉减小,流量分布更加平衡。当?ky?变大,骨折之间的干扰更强,“U”形状的井筒流的形状分布更为显着。

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