New Integrated Analytical Approach for Multiphase Inflow Performance Relationship

S. Al-Rbeawi
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Abstract

This paper introduces an analytical approach for generating the inflow performance relationships (IPR) of different reservoirs depleted by different wellbore types at different conditions. The main focus of this paper is given to multiphase flow (oil, gas, water) and two-phase flow (oil, gas) during transient and pseudo-steady state flow conditions. The proposed approach presents new integrated models for the IPR that correlates the wellbore pressure with the multiphase total flow rate or the normalized pressure and rate by the bubble point pressure and single-phase flow rate at this pressure. These models consider the changes in reservoir fluid physical properties and reservoir relative permeabilities by coupling PVT data and relative permeability curves. The motivation of this study is reducing the uncertainty in the IPR of reservoirs undergoing the multiphase flow. Predicting multiphase IPRs may go throughout three tasks. The first is developing the pressure functions of reservoir mobility and total compressibility by developing several correlations for reservoir fluid properties such as oil, gas, and water formation volume factor as well as gas solubility in oil and water. Several correlations are needed also for relative permeability behavior of the three fluids with the pressure. These correlations can be generated by the multi-regression analysis of PVT data and relative permeability curves. The second represents developing the analytical models for the flow regimes that could be developed during the entire production life of the reservoirs. The single and multiphase flow IPRs for different flow regimes are predicted in the third task. The proposed IPR in this study is plotted between the wellbore pressure and the total flow rate at reservoir condition or the normalized reservoir pressure and flow rate. The observations obtained from this study are: 1) The proposed approach for the multiphase flow IPRs is not only time-variant but also depends on the flow condition whether transient or pseudo-steady state flow. 2) The IPR of the multiphase flow gives lower performance than the single-phase flow. 3) The IPR of the early time transient production is better than the late time pseudo-steady state production. 4) It is highly recommended to develop the models of fluid properties for each reservoir instead of using the models presented in the literature. The novel points presented in this paper are: 1) Introducing a new approach for the inflow performance relationships in the reservoirs experiencing multiphase flow and depleted by horizontal wells or multiple hydraulic fractures. 2) Introducing the pressure functions of the multiphase flow reservoir mobility and multiphase flow total reservoir compressibility that consider the changes in reservoir fluid properties and relative permeabilities with production time and pressure in constructing the IPRs.
多相流入动态关系综合分析新方法
本文介绍了一种计算不同井型、不同工况下不同油藏流入动态关系的分析方法。本文主要研究了瞬态和准稳态流动条件下的多相流(油、气、水)和两相流(油、气)。该方法提出了新的IPR集成模型,该模型将井筒压力与多相总流量或归一化压力和速率关联为该压力下的泡点压力和单相流量。这些模型通过耦合PVT数据和相对渗透率曲线,考虑了储层流体物性和储层相对渗透率的变化。本研究的动机是减少多相流油藏IPR的不确定性。预测多相知识产权可能涉及三个任务。首先是通过建立储层流体性质(如油、气、水地层体积因子以及气在油水中的溶解度)的若干相关性,开发储层流动性和总压缩性的压力函数。三种流体的相对渗透率随压力的变化还需要几个关系式。这些相关性可以通过PVT数据和相对渗透率曲线的多元回归分析得到。二是建立油藏整个生产周期内流动流态的分析模型。在第三个任务中,预测了不同流型下的单相流和多相流ipr。本研究提出的IPR是在油藏条件下井筒压力与总流量或归一化油藏压力和流量之间绘制的。研究结果表明:1)所提出的多相流ipr方法不仅时变,而且取决于流动条件是瞬态流动还是准稳态流动。2)多相流的IPR性能低于单相流。3)早期瞬态生产的IPR优于后期伪稳态生产。4)强烈建议为每个储层建立流体性质模型,而不是使用文献中的模型。本文的新颖之处在于:1)引入了多相流水平井或多裂缝枯竭油藏流入动态关系的新方法。2)引入多相流油藏流动性和多相流油藏总压缩性的压力函数,考虑油藏流体性质和相对渗透率随生产时间和压力的变化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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