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首页> 外文期刊>Journal of Petroleum Science & Engineering >Robust Optimization of Cyclic CO2 flooding through the Gas-Assisted Gravity Drainage process under geological uncertainties
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Robust Optimization of Cyclic CO2 flooding through the Gas-Assisted Gravity Drainage process under geological uncertainties

机译:通过气体辅助重力排水过程的循环二氧化碳洪水的鲁棒优化在地质不确定性下

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摘要

The purpose of this research is to determine an estimate for actual optimal oil recovery through cyclic Gas-Assisted Gravity Drainage (GAGD) process in a heterogeneous sandstone reservoir under geological uncertainties. A robust optimization approach was adopted to determine the optimal durations of gas injection, soaking, and oil production under geological uncertainties. 100 stochastic reservoir realizations of the 3D permeability and porosity distributions were created to honor geological constraints. Ranking was applied through quantifying of reservoir oil response to select P10, P50, and, P90 that represent the overall reservoir uncertainty. A compositional reservoir flow simulation was used for the GAGD process performance evaluation. Approximately 200 simulation jobs were created, including the aforementioned durations and geological uncertainty parameters, through Design of Experiments (DoE). The Latin Hypercube Sampling was adopted to create these 200 simulation jobs that then evaluated by the compositional reservoir simulation to calculate the cumulative oil production by the end of 10 prediction years. The robust optimization approach was then applied to select the true optimal solution of the highest oil recovery by taking into account the geological uncertainties in permeability, porosity, and anisotropy models. The nominal optimization of one single realization was also adopted for the comparison. The robust optimization has shown its feasibility to increase oil production through the cyclic GAGD process from 4.535 to 4.62547 billion barrels. However, the nominal optimization case increased oil production to 5.9726 billion barrels. The presented robust optimization workflow under geological uncertainties resulted in higher oil recovery and net present value than nominal realization optimization, with providing degrees of freedom for the decision-maker to significantly reduce the project risk. It was specifically concluded that the robust optimal solution represents the most economically feasible solution to obtain the highest NPV through the GAGD process for a range $(30-80) per barrel oil prices. However, the base case and nominal solution (no geological uncertainties) were not economical when the oil price declines to be less than 36 and 32, respectively.
机译:该研究的目的是确定通过在地质不确定性的异构砂岩储层中通过循环气体辅助重力排水(GAGD)过程进行实际最佳油回收的估计。采用稳健的优化方法来确定地质不确定性下的气体注射,浸泡和石油产量的最佳持续时间。 100个随机储层的3D渗透性和孔隙度分布的实现以荣誉地质限制。通过量化储层油响应来选择P10,P50,以及代表整体储层不确定性的P90的排名。组合物储层流动模拟用于GAGD工艺性能评估。创建了大约200个模拟作业,包括通过实验设计(DOE)的上述持续时间和地质不确定性参数。采用拉丁超立机采样来创建这些200仿真工作,然后通过组合储层模拟评估,以计算10年底的累积油生产。然后应用稳健的优化方法,以通过考虑渗透性,孔隙率和各向异性模型的地质不确定性来选择最高储油的真实最佳解决方案。还采用了一个单一实现的标称优化进行了比较。稳健的优化表明,通过从4.535到4.6254.7亿桶的循环Gagd工艺增加石油生产的可行性。但是,标称优化案例增加了石油产量为59.726亿桶。在地质不确定性下提出的强大优化工作流程导致较高的储蓄和净目的价值高于标称实现优化,为决策者提供自由度,以显着降低项目风险。具体而言,坚固的最佳解决方案代表了最经济上可行的解决方案,以通过每个桶油价通过GAGD工艺获得最高NPV。然而,当油价下降至36和32时,基本情况和标称解决方案(没有地质不确定性)并不经济。

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