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Using Transient Inflow Performance Relationships To Model The Dynamic Interaction Between Reservoir And Wellbore During Pressure Testing

机译:在压力测试过程中,使用瞬态流入性能关系来建模储层与井眼之间的动态相互作用

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The fundamental understanding of the dynamic interactions between multiphase flow in the reservoir and that in the wellbore remains surprisingly weak. The classical way of dealing with these interactions is via inflow performance relationships (IPRs), where the inflow from the reservoir is related to the pressure at the bottom of the well, which is a function of the multiphase flow behavior in the well, A steady-state IPRs are normally adopted, but their use may be erroneous when transient multiphase flow conditions occur. The transient multiphase flow in the wellbore causes problems in well test interpretation when the well is shut-in at the surface and the bottomhole pressure is measured. The pressure buildup (PBU) data recorded during a test can be dominated by transient wellbore effects (e.g., phase change, flow reversal, and re-entry of the denser phase into the producing zone), making it difficult to distinguish between true reservoir features and transient wellbore artifacts. This paper introduces a method to derive the transient IPRs at bottomhole conditions in order to link the wellbore to the reservoir during PBU. A commercial numerical simulator was used to build a simplified reservoir model (single well, radial coordinates, homogeneous rock properties) using published data from a gas condensate field in the North Sea. In order to exclude wellbore effects from the investigation of the transient inflow from the reservoir, the simulation of the wellbore was omitted from the model. Rather than the traditional flow rate at surface conditions, bottomhole pressure was imposed to constrain the simulation. This procedure allowed the flow rate at the sand face to be different from zero during the early times of the PBU, even if the surface flow rate is equal to zero. As a result, a transient IPR at bottomhole conditions was obtained for the given field case and for a specific set of time intervals, time steps, and bottomhole pressure. In order to validate the above simulation approach, a preliminary evaluation of the required experimental setup was carried out. The setup would allow the investigation of the dynamic interaction between the reservoir, the near-wellbore region, and the well, represented by a pressured vessel, a cylindrical porous medium, and a vertical pipe, respectively.
机译:对储层中多相流与井眼中多相流之间的动力相互作用的基本认识仍然很薄弱。处理这些相互作用的经典方法是通过流入性能关系(IPR),其中来自储层的流入与井底压力有关,这是井中多相流行为的函数,状态IPR通常被采用,但是当出现瞬态多相流动条件时,它们的使用可能是错误的。当井在地面关闭并且测量井底压力时,井眼中的瞬态多相流动会导致试井解释方面的问题。在测试期间记录的压力累积(PBU)数据可能受瞬态井筒效应(例如,相变,流动逆转以及密相重新进入生产区)的支配,从而难以区分真实的储层特征和瞬态井眼人为因素。本文介绍了一种在井底条件下导出瞬态IPR的方法,以便在PBU期间将井眼与储层联系起来。商业数值模拟器用于使用北海天然气凝析气田的公开数据建立简化的储层模型(单井,径向坐标,均质岩石特性)。为了从研究来自储层的瞬时流入中排除井眼的影响,模型中省略了井眼的模拟。而不是在地面条件下的传统流速,而是施加井底压力来约束模拟。即使表面流速等于零,该程序也可以使PBU早期砂面的流速不同于零。结果,对于给定的现场情况以及对于一组特定的时间间隔,时间步长和井底压力,获得了井底条件下的瞬态IPR。为了验证上述模拟方法,对所需的实验装置进行了初步评估。该装置将允许研究储层,近井眼区域和井之间的动态相互作用,分别由压力容器,圆柱形多孔介质和垂直管表示。

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