Use of Horizontal Drift-Flux Models For Simulating Wellbore Flow in SAGD Operations

M. Heidari, Christopher Istchenko, W. Bailey, T. Stone
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引用次数: 1

Abstract

The paper examines new horizontal drift-flux correlations for their ability to accurately model phase flow rates and pressure drops in horizontal and undulating wells that are part of a Steam-Assisted Gravity Drainage (SAGD) field operation. Pressure profiles within each well correlate to the overall performance of the pair. SAGD is a low-pressure process that is sensitive to reservoir heterogeneity and other factors, hence accurate simulation of in situ wellbore pressures is critical for both mitigating uneven steam chamber evolution and optimizing wellbore design and operation. Recently published horizontal drift-flux correlations have been implemented in a commercial thermal reservoir simulator with a multi-segment well model. Valid for horizontally drilled wells with undulations, they complement previously reported drift-flux models developed for vertical and inclined wells down to approximately 5 degrees from horizontal. The formulation of these correlations has a high degree of nonlinearity. These models are tested in simulations of SAGD field operations. First, an overview of drift-flux models is discussed. This differentiates those based on vertical flow with gravity segregation to those that model horizontal flow with stratified and slug flow regimes. Second, the most recent and significant drift-flux correlation by Bailey et al. (2018, and hereafter referred to as Bailey-Tang-Stone) was robustly designed to be used in the well model of a reservoir simulator, can handle all inclination angles and was optimized to experimental data from the largest available databases to date. This and earlier drift-flux models are reviewed as to their strengths and weaknesses. Third, governing equations and implementation details are given of the Bailey-Tang-Stone model. Fourth, six case studies are presented that illustrate homogeneous and drift-flux flow model differences for various well scenarios.
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利用水平漂移通量模型模拟SAGD作业中的井筒流动
本文研究了新的水平漂移通量相关性,以准确模拟蒸汽辅助重力泄油(SAGD)现场作业中水平和起伏井的相流速率和压降。每口井内的压力分布与该副的整体性能相关。SAGD是一个低压过程,对储层非均质性和其他因素很敏感,因此准确模拟现场井筒压力对于减轻蒸汽室演化不均匀性以及优化井筒设计和操作至关重要。最近发表的水平漂移通量相关性已经在一个商业热油藏模拟器中实现,该模拟器具有多段井模型。该模型适用于具有波动的水平钻井,补充了先前报道的用于垂直和倾斜井的漂移通量模型,该模型与水平井相差约5度。这些相关性的表述具有高度的非线性。这些模型在SAGD现场作业模拟中得到了验证。首先,讨论了漂通量模型的概况。这就区分了那些基于重力分离的垂直流动模型和那些基于分层和段塞流的水平流动模型。其次,Bailey等人(2018年,以下称为Bailey- tang - stone)最新且最重要的漂移通量相关性被稳健地设计用于油藏模拟器的井模型,可以处理所有倾角,并针对迄今为止最大的可用数据库中的实验数据进行了优化。本文评述了这种模型和以前的漂通量模型的优缺点。第三,给出了Bailey-Tang-Stone模型的控制方程和实现细节。第四,给出了六个案例研究,说明了不同井况下均匀流模型和漂移流模型的差异。
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