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A New Mathematical Formulation for Estimating Flow Capacity and Phase Mobility in Oil-Water Segregated Flow Systems

机译:用于估算油水隔离流动系统流量和相流动性的新数学制剂

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A new analytical procedure is introduced for the interpretation of pressure transient data in oil producers with pronounced water production.The new mathematical model is applicable to flow conditions where segregated flow dominates the displacement process in the reservoir.Here,formation flow capacity and individual magnitudes of oil-and water-phase mobility are also determined,allowing accurate reservoir characterization under such complex flow conditions.Segregated flow is very common in natural porous rocks and is characterized by a sharp interface between oil and water.Therefore,our new mathematical model mimics the dynamics of this flow mechanism by taking into consideration the individual contributions of oil and water from each reservoir zone.This novel mathematical model is utilized to extract formation flow capacity and mobility for both phases.An average fluid saturation can also be determined with a reasonable accuracy.The reservoir system in hand is represented by a two-layer model with no crossflow between the different zones in the reservoir.Because of gravity effects,oil is produced from the top layer while water is produced from the bottom one.Each reservoir layer has its own distinct static and dynamic properties,such as porosity,permeability,thickness,and petrophysical properties.A case study based on synthetic reservoir data is presented to demonstrate the application of the mathematical model in characterizing formation rocks.It is observed that conventional well testing methods could produce inaccurate results when applied to reservoir systems influenced by segregated flow.Using the new model,a correction factor is derived to estimate absolute permeability values from the conventional well testing analysis,producing a one-to-one transformation between dispersed and segregated flow.The conventional way of interpreting pressure transient data for two-phase flow displacements under segregated conditions is based on an equivalent single-phase flow model that might produce inaccurate results and invalid estimates of flow capacity and phase mobility.Our new approach,therefore,is more representative for the system under consideration and captures the flow mechanism more robustly.
机译:引入了一种新的分析程序,用于解释具有明显的水产物的石油生产者中的压力瞬态数据。新的数学模型适用于流量的流动条件,其中隔离流动占据了储存器中的位移过程中的形成流量和单个大小还确定了油和水相迁移率,允许在这种复杂的流动条件下进行精确的储层表征。在天然多孔岩石中起导流动非常常见,其特点是油和水之间的尖锐界面。因此,我们的新数学模型模仿了通过考虑到每个储层区域的石油和水的个体贡献来改进该流动机制的动态。本新的数学模型用于提取两相的形成流量和移动性。也可以以合理的准确度确定平均流体饱和度。手中的储库系统由双洛杉矶代表YER模型在储存器中不同区域之间没有交叉流量。因为重力效应,油由顶层产生,而水由底部产生水,但储层层具有自身独特的静态和动态性质,如孔隙率,渗透性,厚度和岩石物理特性。提出了基于合成储层数据的情况研究,以证明数学模型在表征形成岩石中的应用。观察到常规井测试方法在应用于受水库系统时可能产生不准确的结果被隔离的流动。推导出新模型,以估计来自传统孔测试分析的绝对渗透率值,在分散和隔离流动之间产生一对一的变换。解释两个 - 两个 - 解释压力瞬态数据的传统方式在隔离条件下的相流位移基于等同的单相流量因此,可能产生不准确的结果和对流量和相位移动的无效估计。因此,新方法更像是所考虑的系统的更具代表性,并更加强大地捕获流量机制。

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