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Dynamic Self-Optimizing Control for Oil Reservoir Waterflooding

机译:油藏水驱动态自优化控制

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摘要

Waterflooding is a common oil recovery method where water is injected into the reservoir for increased productivity. Optimal operational strategy of waterflooding processes has to consider proceeds realized from produced oil and cost of productions including both injected and produced water. This is a dynamic optimization problem. The problem could be solved through numerical algorithms based on traditional optimal control theory which can provide only open-loop control solutions and rely on an accurate process model. However, reservoir properties are extremely uncertain, and hence open-loop solutions based on a nominal model are not suitable for applications with real reservoirs. Introduction of feedback into the optimization structure to counteract the effect of uncertainties has been proposed recently. In this work, a novel feedback optimization method for optimal waterflooding operation is presented. In the approach, appropriate controlled variables as combinations of measurement histories and manipulated variables are first derived through regression based on simulation data obtained from a nominal model. Then a feedback control law was represented as a linear function of measurement histories from the controlled variables obtained. Through a case study, it was shown that the feedback control solution proposed in this work was able to achieve a near-optimal operational profit with only 0.45 worse than that achieved through the true optimal control (with system's properties assumed to be known a priori), but 95.05 better than that obtained with the open-loop solution under uncertainties.
机译:水驱是一种常见的石油回收方法,将水注入油藏以提高生产率。水驱过程的最佳操作策略必须考虑采出油的收益和生产成本,包括注入水和采出水。这是一个动态优化问题。该问题可以通过基于传统最优控制理论的数值算法来解决,该算法只能提供开环控制解决方案,并依赖于精确的过程模型。然而,储层特性极不稳定,因此基于标称模型的开环解决方案不适合实际储层的应用。最近有人提议在优化结构中引入反馈以抵消不确定性的影响。本文提出了一种新的水驱优化优化反馈优化方法。在该方法中,首先通过基于从名义模型获得的仿真数据的回归来推导适当的控制变量,作为测量历史和操纵变量的组合。然后,反馈控制律被表示为从获得的控制变量中获得的测量历史的线性函数。通过算例分析表明,本工作提出的反馈控制解决方案能够实现接近最优的运营利润,而只有0.比通过真正的最优控制(假设系统属性是先验已知的)获得的差45%,但比在不确定情况下使用开环解获得的效果好95.05%。

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