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Multiphase non-darcy flow in gas-condensate reservoirs

机译:凝析气藏中的多相非达西流动

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The understanding of multiphase non-Darcy flow is important to the modeling of production from gas-condensate reservoirs. A pore-scale network model is presented here for gascondensate flow. Porous media are modeled by networks of pore bodies interconnected by pore throats. Pore bodies and throats are characterized by their connectivity, shape, and radii distributions. Pore-level laws are identified from previously published micromodel and multiphase pipe flow experiments. The condensate can flow due to three mechanisms: pressure gradient within the sample-spanning condensate phase, movement of condensate slugs, and condensate droplets carried by the gas flow. The second mechanism appears at high capillary numbers and the third mechanism at high Reynolds numbers. Inertial terms are important for high rate gas flows. This model has been used to identify several flow regimes important to gas-condensate flow. The effect of pore structure is calculated on gas and condensate relative permeabilities in the low capillary number regime. The relative permeabilities and non-Darcy coefficients have been computed for the low condensate saturation-high pressure gradient flow regime.
机译:对多相非达西流的理解对于凝析气藏生产的建模很重要。此处提出了一种针对凝析气流量的孔隙尺度网络模型。多孔介质是通过孔喉相互连接的孔体网络建模的。孔体和喉咙的特征在于它们的连通性,形状和半径分布。孔隙度定律可从先前发表的微模型和多相管道流动实验中确定。凝结水可以通过以下三种机制流动:跨样品的凝结水相内的压力梯度,凝结水渣块的运动以及气流携带的凝结水液滴。第二种机制出现在高毛细管数,第三种机制出现在高雷诺数。惯性项对于高速率气体流量很重要。该模型已用于识别对气体凝结水流动很重要的几种流态。在低毛细管数条件下,计算了孔隙结构对气体和冷凝物相对渗透率的影响。已经针对低凝结水饱和度-高压梯度流态计算了相对渗透率和非达西系数。

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