A Transient Plunger Lift Model for Liquid Unloading from Gas Wells

Jianjun Zhu, Haiwen Zhu, Qingqi Zhao, W. Fu, Yi Shi, Hong-quan Zhang
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引用次数: 3

Abstract

Accompanied with liquid condensation, natural gas production wells suffer from liquid loading if the gas flow rate is insufficient to carry liquids to the surface. With continuous production, the reservoir pressure decreases due to reservoir depletion, resulting in decrease of gas flow rate and inability to carry liquid upward. Then, the produced liquid accumulates in the well bottom and creates a static liquid column, adding a backpressure against reservoir pressure and reducing gas flow rates until the well production ceases. Due to many advantages, such as low operation cost and prevention of paraffin deposition along wellbore, plunger lift has been widely used in gas wells for the removal of liquid column and rescuing dying gas wells from liquid loading. The existing plunger lift models in literature are imperfect due to either limited field applications or oversimplified assumptions, which lead to considerable prediction errors. Starting from Gasbarri and Wiggins (2001) dynamic plunger lift model, several components in the cyclic movement of a plunger can be identified with each comprising a set of specific governing equations, namely, plunger upstroke, gas blowout, plunger fall-down, pressure buildup etc. Considering the gas flows with plunger moving in the tubing, the new model accounts for the instant velocities during plunger rising and falling. Reservoir performance as a component is included in all stages of plunger lift processes. By solving the transient governing equation in each component of plunger lift iteratively, the new model outputs the plunger velocity/acceleration, pressure versus time, production rate versus time etc. Compared to previous plunger lift models, improvements have been made on the equations of plunger rising and falling velocities. The present model also accounts for different reservoir performances. Oil and water cases from previous studies are used to evaluate the present model which provides more accurate and reasonable predictions of plunger rising and falling velocities.
气井卸液柱塞瞬态举升模型
伴随着液体冷凝,如果天然气的流量不足以将液体带到地面,那么天然气生产井就会出现液体负荷。在连续生产过程中,由于储层枯竭,导致储层压力降低,导致气体流速降低,无法向上携液。然后,产出的液体在井底积累,形成一个静态的液柱,增加了反压力,降低了气体流速,直到油井停止生产。柱塞举升由于具有作业成本低、防止井筒结蜡等优点,在气井中被广泛应用于清液柱和挽救快死气井。现有文献中的柱塞举升模型不完善,要么是现场应用有限,要么是假设过于简化,导致预测误差很大。从Gasbarri和Wiggins(2001)的动态柱塞提升模型开始,可以识别出柱塞循环运动中的几个组成部分,每个组成部分都包含一组特定的控制方程,即柱塞上升冲程、气体爆裂、柱塞下降、压力累积等。考虑柱塞在油管中运动时的气体流动,该模型考虑了柱塞上升和下降过程中的瞬时速度。油藏动态作为一个组成部分,包含在柱塞举升过程的所有阶段。该模型通过迭代求解柱塞举升各分量的瞬态控制方程,输出柱塞速度/加速度、压力随时间、产量随时间等参数。与以前的柱塞举升模型相比,改进了柱塞上升和下降速度方程。该模型还考虑了不同储层的动态。利用以往研究中的油水实例对该模型进行了评价,该模型对柱塞上升和下降速度的预测更为准确和合理。
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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